Document 1g6gB2Joyxk0mw5DXk1qgm6Kj
i\Io' *o~ y~ ' . f).,is."'\ C^-'jy
THE PROPER HANDLING
OF AROCLQRS
`
IN THE '
' ;' '- - .
ELECTRICAL INDOSTRY
Vj4 4! '
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Monsanto Chemical Co.
Monsanto Orgqnic Div. SaUs Oept. 800 N. Lindbiroh flvd.
Hi m. fSt, leuiitl~
'ITT --.
A
.4
P. G. BENIGNUS Rvid ;
Jonuopy 1980
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TOWOLDMON0032269 WATER_PCB-00016738
INDEX
Introduction - Page 1-2
Chapter 1 - Page 3-12
Page 3 Page 4 Page 12
Chapter 2 - Page 13-19 Page 13 Page 17
Chapter 3 - Page 20-21A Page 20
Page 21
Chapter 4 - Page 22-25 Page 22
. Page 23 Page 25
Chapter 5 - Page 26-28 Page 26
Chapter 6 - Page 29-61 Page 29 Page 31
Page 31 Page 32 Page 38
The Proper Handling Of Aroclors And Their Mixtures In The Electrical InduBtry
Procedure For Unloading Tankcar3 Of Aroclors And Aroolor Mixtures
(A) Description of the Cars (B) Procedure for Unloading the Ca:
(c) Drum Packaging
Storage Tanks
(A) General Description (B) Detailed Description
Gasketing and Pump Packing
(A) Suggested Types Of Packing and Gasketing Materials
(B) Gaskets For Askarel Capacitors and Transformers
Sampling Methods
(A) The ASTM Standard Method (B) Monsanto Methods (C) Drum Sampling
Laboratory Analysis and Procedure
(A) For Treating Aroclors and Their Mixtures with Earth
Test Procedures
(A) General Information (B) Detailed Instruction and
Testing Methods
1. Procedure for Cleaning Eleotrodes
2. Dielectric Constant and Power Factor
3. Dielectric Strength
0<.3?Sf,7
TOWOLDMON0032270 WATER_PCB-00016739
Page 44 Page 47 Page 49 Page 51 Page 52 Page 55 Page 59
Chapter 7 - Page 62-73 Page 64 Page 65 Page 66 Page 67 Page 68 Page 69 Page 70 Page 71 Page 72 Page 73
Chapter 8 - Page 74-76
Page 74
Page 74 Page 75
Chapter 9 - Page 77-79
Page 77 Page 77 Page 78
Page 79
4. Resistivity 5. Corrosion and Chemical
Stability 6. Inorganic Chlorides 7. Acid Number 8. Moisture 9. Hydrolysis Stability Test
for Aroolor 10. Thermal Stability Method
for Aroclors
Typical Properties
Aroclor 1232 Aroclor 1242 Aroclor 1248 Aroclor 1254 Aroclor 1260 Pyranol 1481 Fyranol 1488 Pyranol 1467 Pyranol 1470 Inerteen PPO
Quality Requirements of Aroclors Prior to Use in the Electrical Industry
Quality as Supplied to the Electrioal Industry Typical Electrioal Quality of Aroclors Used in the Industry Capaoitor Impregnation Transformer Pilling
Earth Refinement of Aroclors to Arrive at the Desired Elec.trical Qualities
Earth Treatment in the Laboratory Preparatory to Analysis Earth Treatment by the Plant Manufacturing the Askarel Earth Refinement by the User
Capacitor Manufacturers Transformer Manufacturers The Effect of Earth Refinement on Removal of Tin Tetraphenyl Scavengers from Transformer Askarel
o*3?5b8
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TOWOLDMON0032271 WATER_PCB-00016740
Chapter 10 - Page 80-93 Page 80 Page 83
Contamination
Avoldanoe of Contaminating Askarel Capacitors Avoidance of Contaminating Askarel Transformers
Chapter 11 - Page 94-97
Page 94 Page 95
Reworking Contaminated Transformer Askarel
Normal Conditions Arced Conditions
Chapter 12 - Page 98-IOO
Page 98 Page 99 Page 100
Dermatology and Toxicology
Skin Exposure Exposure to Vapors Vapors from a Severely Arced Askarel Transformer
Attachments:
Drawing No. 31-20847, The Tank Car Drawing No. 31-20848, Dome Detail Drawing No. 9C-8170-5, The Horizontal Storage Tank Drawing No. D-13362, The Vertical Storage Tank Drawing No. 9C-8248, The Breather Drawing No. 9C-8278, The Varec Oauge Drawing No. 9C-8178, The Unloading Platform
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TOWOLDMON0032272 WATER_PCB-00016741
THE PROPER HANDLING OP AROCLORS* AND THEIR MIXTURES IN THE ELECTRICAL INDUSTRY
INTRODUCTION
Monsanto's Aroclors*, especially the chlorinated biphenyls
| n 11-,
-
Including types/(1242, 1248> 1254 and- 1260; used alone or In
combination with chlorinated benzenes, are commonly used die lectric materials of the askarel1 class.
Askarel is a generic name referring to liquid dielectrics
derived from halogenated aromatic hydrocarbons possessing excellent chemical and dielectric stability and fire-resistance
over the temperature ranges and operating conditions required
of transformers and capacitors in the electrical industry. The properties of Aroclors and their mixtures, used as
dielectrics are described in detail in Chapter 7 entitled, "Typical Properties". These dielectrics are manufactured under
very carefully controlled conditions in order to meet the strict and exacting electrical requirements and properties.
The electrical industry's use of these fluids has been
largely in accordance with the General Electric Company's patents and developments.
.
"Aroclors - Monsanto's chlorinated biphenyls and chlorinated polyphenyls, Registered U.S. Patent Office.
JF. M. Clark, "Electrical Insulation", Chem. Engg. News 25, 2977 (19^7).
-1-
TOWOLDMON0032273 WATER_PCB-00016742
Resulting from the wide use of these materials In the Industry, trade names have been established to Identify them by different manufacturers of electrical equipment. Listed alphabetically the trade names include, "Chlorextol," Allis Chalmers; "Diaclor," Sangamo Electric; "Dykanol," Cornell Dubilier; "Elemex," Line Materials; "Hyvol," Aerovox; "Inerteen," Westinghouse Electric; "Noflamol," Wagner Eleotrlc; and Pyranol," General Electric Company.
The purpose of this bulletin is to assist the industry with the proper and safe handling of these dielectric materials in their operations.
-2-
TOWOLDMON0032274 WATER_PCB-00016743
CHAPTER 1
PROCEDURE FOR UNLOADING TANKCARS OF AROCLORS AND AROCLOR MIXTURES
A. Description of the Cars
Aroclor and mixtures of Aroolors with chlorinated benzenes
are shipped by Monsanto In two types of insulated tankcars-
both of which are either aluminum lined or zinc-tin metallized. v.\
One type of car has heating coils Inside of the tank and these
are In direct contact with the product. The other, a more
widely used type of car, Is a double-shell tank with heating
coils between the Inner and outer shells. The steam coil
connections are at the bottom of the car. Both types of tank-
cars are tested for 60 pounds pressure and their steam coils
are tested for 200 pounds gauge pressure.
The cars are top-unloaded by displacement with dry air
containing 10 mg. H0/cu. ft. maximum.
There are two or three connections on the tankcar dome
depending on the type of car. Where three connections exist,
one is a two inch diameter unloading line which extends to the
bottom of the car, the second is a one inch diameter air inlet
connection and the third is a two inch diameter pressure safety ^
vent, which is a thin lead disc adjusted to release any pressure
in excess of 60 pounds gauge. This safety vent is hooded for
protection against dust, dirt or accidental bumping.
Where only two connections exist on the dome, one is the
two inch diameter unloading line and the other is the safety
vent. On these cars, it is necessary to remove the safety vent
and introduce the displacement air through that connection.
0<.3?S77
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-3-
TOWOLDMON0032275
WATER_PCB-00016744
*#*
While the tankcar drawing gives, much detail, we have been asked about the following points not given In the drawing:
1. The distance from the rail track to the top of the dome of the oars Is variable. It Is 13 feet and 4 inches for the 71000 gallon cars and ranges from 11 feet to 14 feet for the 8,000 gallon oars.
2. The steam connections are located under the center of the cars.'
3. The steam pipe connection is usually a two inch pipe, but on some cars the pipe size is 1-1/4 inches.
4. American Standard taper pipe threads are used.
****
-3A-
0*37^73
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TOWOLDMON0032276 WATER_PCB-00016745
Drawing No. 31-20(48 shows in detail the dome of a tankcar with three connections. "A" is the two inch unloading line which extends to a small sump at the bottom of the car. "B" is the one inch air inlet connection. "C" is the hooded safety vent. The car dome cover with fitted bolts is shown in th; center. It is fitted with an aluminum envelope Ooetze gasket^v ^ ^This drawing also shows a bottom opening in the car. ThiB can be opened only from the inside of the car and its purpose is for oleaning operations. It has no use at all in unloading the car.
Drawing No. 31-20847 shows the overall dimensions of the 8,000 gallon Aroclor tankcar.
B. Procedure for Unloading the Cars The car should be spotted at an unloading dock similar to
the one shown by Drawing No. 9C-8178. The oar muBt be level and the brakeB set properly. "STOP - TANKCAR CONNECTED" signs should be placed fore and aft the car to warn switching crews.
If it is raning or snowing or the humidity is extremely high, it is not advisable to open the car. In case the car must be sampled and opened during bad weather, a canvas canopy must be plaoed over the dome of the car. It is preferable to unload the cars under roof or inside the factory. Unless it is absolutely necessary because of following described situations the dome cover should not be opened until ready for sampling. The dome cover is sealed with a standard railroad wire and seal, and Monsanto should be notified if this seal is found broken upon receipt of the car.
TOWOLDMON0032277 WATER_PCB-00016746
The first step in unloading is to lnspeot the dome and
clean around the dome cover to remove all loose dirt, water oi
snow. Wiping rags and a brush should be used to clean before
the dome cover and connections are opened.
Then, the screwed hood over the air-inlet valve should be
removed and this valve opened fully and left open while heatinj
the car. A Weston or metal encased thermometer should be
inserted through this air-inlet valve opening and the tempera
ture of the interior of the car determined.
If the car temperature is below the caution temperature
shown in the following Table 1, it will be necessary to take
the special step of Inserting a "hair-pin" heating coll through
the dome of the car to preclude rupturing the tankcar seams
during the heating period.
TABLE I
Product
ASTK Pour Point C.
Temperature C. Below which Caution Must Be Used in Heating
Aroclor 1260
+30
+40
Aroclor 1254
+10
+20
-Aroclor 1248
-7
+5
^Aroclor 1242.
101b
Inerteen PPGW30
- 19-a.o
"
Pre-heating is not required''
Pyr-ano-1 1467
Pre-heating- is- not required*
P-yranol -1470
Pre-heating-is- not-requlred*
i.Pyranol ato4o8. i4i^^B'44-3
-Pre-heating is not required*
- '4
- <}
Except if the material has cooled below -10C.
and crystals of scavenger have separated. Then,
the material should be heated to 70C. (158F.)
until complete solution has been accomplished.
0<,^?S7b -5.
TOWOLDMON0032278
WATEFLPCB-00016747
If the dome of the oar Is to be opened for the pre-heating operation, it is necessary that it be covered with a clean canvas. Extreme care must be taken to avoid getting dirt or moisture into the car.
It is due to the relatively high viscosity of some of the Aroclors at low temperatures that it becomes necessary to form a column of molten material from top to bottom of the car, in the center, to prevent hydraulic pressure build-up which may rupture the tank shell if there is too rapid localized heating when employing the main steam oolls.
When such pre-heating is required, a satisfactory vent hole can be made by inserting a "hair-pin" coil (1/2 inch diameter brass, galvanized, or stainless steel pipe) into the open dome of the car and introducing steam through the coil until there is a column of fluid Aroolor from top to bottom.
After the vent hole is melted through the material to the bottom of the car, the "hair-pin" coil should be removed and the dome cover replaced and bolted.
Steam is then Introduced into the main coils. It is recommended that the steam pressure be limited to 100 pounds gauge pressure, particularly when the colls are in direct contact with the Aroclor. The steam coll outlet should be trapped or throttled with a valve.
It will require eight to twenty hours to bring the material to pumping temperature - depending upon weather conditions. It is essential that the air inlet valve be open during the heat ing period in order to vent the tank.
6 - -
0<i3?b76
TOWOLDMON0032279 WATER_PCB-00016748
Some calculations have been made to Indicate the heat
requirements for an Aroclor car. Data for an 8,000 gallon
car of Aroclor 1254 are:
Specific Gravity
= 1.5
Specific Heat
: 0.26 Btu/lb./F.
Heat requirement for heating Aroclor from 30C. (86F.) to
110C. (230F.) is:
8000 x 1.5 x 8.33 x 0.26 x (230-86) = 3,774,000 Btu.
For heating from 30C. (86F.) to only 75 C. (l67F.), the
heat required is 2,110,000 Btu.
A nine horse power boiler operating at 80 psig produces
263 lbs./hr. of steam with no reused condensate. Returning
condensate at 200F. will increase the steam output to 296 lbs./hr.
at 80 psig.
In the first case, heating to 110C., the over-all heat
transfer co-effloient is assumed to be too low to utilize the
iOO# capacity of the boiler. A value of 1500 for BA with an
average t T of 133F. indicates that the useable steam is
202,000 Btu/hr. or 226 lbs./hr. steam at 80 psig.
In the second case the ^ I is lower and the entire
output of the boiler is useable. TaUe II sums up the approximate
time calculated to heat Aroolor 1254 in an 8,000 gallon car.
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o^n
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TOWOLDMON0032280 WATER_PCB-00016749
TABLE II
Nine HP Boiler
Lbs. Steam/Hr. 30-110C. 30-75C
100$ cap. (no reused condensate)
263
-- 9 hrs
75$ cap. (no reused condensate)
--
18 hrB.
12 hrs
(86$ cap)
100$ cap. (condensate @ 200F.)
296
-- 8 hrs
75$ cap. (condensate @ 200F.)
--
18 hrs.
11 hrs
(76$ cap)
Calculations on a five horse power boiler give heating times of the
following order:
Five HP Boiler
Lbs. Steam/Hr. 30-110C. 30-75C
100$ cap. (no reused condensate)
146
28 hrs.
16 hrs
100$ cap. (condensate @ 200"?.)
164
23 hrs.
14 hrs
Aroclor cars can be heated by steam (80-100 psig) to the proper
handling temperatures in a reasonable time by using a boiler source
capable of producing 200,000 to 300>000 Btu/hr. The times given here
are approximate and will act as a guide until experience shows the
exact time for this operation.
o<.i?578
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TOWOLDMON0032281 WATER_PCB-00016750
The proper handling temperature for the various fluids is given in the following Table III, which indicates correspond ing viscosity values:
TABhE III
Product
Handling and Pumping Temperature C.
Approximate Viscosity, S.U.S.
Aroclor-1260 Aroclor 1254
95 - 130 75 - HO
100 - 43 100 - 42
Aroclor-1248
50 - 85
100 - 40
Aroclor 1242
C'0
Pyranol l48l
'I VvfW'ot f\ 1'^ t*,v (V, '
Pyranol-1467
35 - 75 >0 -75 30 - 75
[) - r
20--55*
100 - 4o 10 0 - 'lo 100 - 4o
100----40
Pyranol 1470
15 - 45*
100--- 40
Inerteen PPG 7i>/3o
go- - 55
100 - 40
mo 7
3? ^
100 - `10
J'lf any of the scavenger is out of solution, then
the material must be heated at 70C. (158?.) until
it has dissolved.
Selection of pumping temperatures for any dielectric not
shown on this list or which may be developed in the future should
be based on a viscosity of about 100 Saybolt Universal Seconds
for average pumping and about 40 S.U.S. for fast pumping.
When, the material has been heated to pumping temperature,
a one-half inch diameter pipe "oross" arrangement containing
a pressure gauge, air inlet, pressure relief valve to relieve
at 30 Pslg, and vent connections, should be connected to the dome
air inlet pipe. Then the unloading line should be connected.
\VY1' y^-1 Rust free and clean galvanized piping or^stalnless steel pipe
should be used for the unloading line.
o^7,,1Q
I
TOWOLDMON0032282 WATER_PCB-00016751
(At this point a sample 1b taken as described In Chapter 4,)
Dry* air Is then introduced into the tankcar and pressure built
up to 15 poundB gauge. The two inch valve cock on the stand pipe
is opened and the discharge pipe observed to be sure the
liquid is being unloaded. To protect the seams in the tankcar,
the pressure must not exceed 30 pounds. The car will begin to
unload at about 12 pounds pressure.
When the car is empty, the air pressure will drop off
rapidly and air will blow out of the vent on the receiving tank.
The air flow may be stopped at this point and the tankcar
pressure released through the vent valve on the "cross" arrangemen
After inspecting the car to be sure that it has been completely
unloaded, all connections and dome cover should be closed
tightly. It is essential that the empty tankcar be sealed
immediately after the car is unloaded in order to keep the car
filled with dry air during return shipment.
*It is essential that the displacement air used for
unloading be dried thoroughly by some dehumidfying
unit such as soda lime, activated alumina or similar
dehydrating agent drying unit. It may be necessary
to recharge the dehumldifying unit each time that a
car is unloaded. For unloading a tankcar of Aroclor
within three hours, 15 standard cubic feet a minute
of air at 15 pounds per square inoh gauge pressure
and a -100'F. dew point should be supplied. If the
_
dry air unit is to be used only for unloading tankcars, '
a small single tower dryer unit containing a self-
contained reactivating heater is suggested. Two
manufacturers of air dryers of this type are:
C. M. Kemp Mfg. Co., 405 E. Oliver Street, Baltimore
2, Maryland and Pittsburgh Lectrodryer Corporation,
Foot of 32nd Street, Pittsburgh, Pennsylvania.
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TOWOLDMON0032283 WATER_PCB-00016752
As a final step. It Is desired that a standard railroad
wire seal be Inserted through the slotted bolts of the
car fittings. Steam should be released from the oar
colls and all condensate removed from the colls by
blowing with air with the steam trap by-passed. All
connections must be replaced as received. Adequate care
should be taken in preparing and sealing the car for
return shipment.
Unloading with dry air as described is the preferred
and recommended procedure because it is done with the oar
dome closed whloh avoids contamination.
'
Dry nitrogen may be used instead of dry air. If
nitrogen is used it is essential to notify us (the supplier)
so that we can take required safety precautions relative
to replacing the nitrogen with air in the returned car prior
to sending our men into it for cleaning.
If the car is unloaded by pumping out of the top, whloh
required opening the dome, it is most desirable that the car
be set inside of a building. If this cannot be done, then
a canopy or roof should be provided over the car dome, and
the unloading should be done when the weather is dear.
A clean centrifugal pump with minimum capaolty of
4o gpm. is suggested. It will be necessary to prime-the
pump and only clean askarel should be used to do this.
Another method for priming the pump is to use a Penberthy
steam Jet, No. 22A available from Penberthy Injector Co.,
1242 Holden Ave., Detroit 2, Michigan. (Further pump detail
is given on page 17).
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TOWOLDMON0032284 WATER_PCB-00016753
C. Drum Packaging
Drum packaging 1b made with new and carefully lnspected/
55-gallon drums. These steel drums are lined with a specially
5Cv'.'f'.7/
selected baked phenolic coating. An example is,(NESCQ--No-r--3 '
\JycOA\^ ' fA! n ( Vl WdU
I \ r t , 1 1 / ' ' > .
lining offered by the Hati-onal-^nameTlng-and-Stamping-Company,
Long-Island,--New.-yor-k. Contents of the drums should not be
heated by direct application of flame or strip heaters. Radiant
heat from steam colls or hot air In a heated room Is to be
preferred. The screw plug in the drum head is fitted with a
metal cap as a safe guard against tampering.
The drums should be stored indoors. If outdoor Btorage
cannot be avoided, the drums should be placed in a horizontal
position and covered with a tarpaulin.
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TOWOLDMON0032285 WATER_PCB-00016754
CHAPTER 2 STORAGE TANKS
A. General Description The storage tanks should be a minimum of 10,000 gallons
and preferably 12,000 to 15,000 gallons capacity to accommodate the normal 8,000 gallon tankcars.
It Is preferable to locate the tanks above ground where they are easily accessible for any changes or repairs. Underground location presents difficulty In this respeot.
Especially In cold climates, it is preferable to locate the tanks inside of a building. The tanks should be located conveniently with reference to the tankcar unloading facilities and the area where the dielectric Is used.
Although Aroclors are non-corrosive to metals, corrosion or rusting of iron and steel equipment (by oxidation) may occur resulting in contamination of the products. The resistance of Aroclors to materials of construction Is given in Monsanto Technical Bulletin, OP-115, entitled, "The Aroclors", Page 6.
Stainless steel tanks are very satisfactory but relatively expensive. Stainless Bteel pipe is relatively difficult to ' fabricate and it is difficult to make tight leak-proof connec tions .
Storage tanks may be of steel construction if properly metallized with zinc-tin or aluminum on the interior surfaces coming in contact with the Aroclors.
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043P583
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TOWOLDMON0032286 WATER_PCB-00016755
The metallizing should be done aocording to the following
procedure s 1. Clean an area of the aurfaoe by sand blasting, or a similar method to give a perfectly clean and roughened surfaoe. The area cleaned should not be greater than can be completely metallized within a few hours after oleanlng. 2. If zinc-tin metallizing is used, a ooating of zinc 0.005 inches thick should be sprayed on to the cleaned surface. This is followed immediately by a coating of tin 0.007 inches thick. 3. Aluminum metallized surfacing should be about 0.01 inch thick.
The detailed procedure for metallizing and cleaning is out lined as follows:
a) Sand blast, b) Coat with iron, 0.005 inches thick. (The purpose of this coating is to provide a rougher and better bond for the finish coat of aluminum or the zinc-tin combination.) c) Apply the selected finish coat, d) Fill the tank with tap
water and warm it with steam. (If an open steam line is used, do not allow the steam to impinge direotly onto the metallized surface of the tank.) e) Drain the tank, f) Fill with cold
water and drain, g) Wipe dry and clean with clean diaper cloth
or other fabric relatively free of lint, h) Heat the tank to at lea?t 100C. (212F.) to expell moist air. It would be benefi cial to heat the tank, allow it to oool and pull dry air through it using a dehumidfying breather in the air line, heat again
etc., until the tank is full of comparatively dry air. i) Spray about 100 gallons of new, electrical grade Aroclor (not high in
viscosity) or electrical grade triohlorobenzene onto the inner walls of the tank, washing the walls thoroughly (avoid breathing
any fumes), j) Attach the circulating pump, the lines used, and
TOWOLDMON0032287 WATER_PCB-00016756
the filter press fitted with dry paper and circulate the fluid
through the system and the tank. Install new dry filter paper
several times in the press during this drying and oleaning
operation. Discard the dielectric fluid used for cleaning,
k) Partially fill the tank with new Aroclor dielectric and
analyze It electrically and chemically to determine whether
It meets specifications. If all tests are met, then fill
the tank with the dielectric.
The tanks should be insulated using, preferably, glass
foam beads as supplied by Dow-Cornlng or Libby-Owens-Ford.
The suggested thickness of the glass insulation is one inch
minimum to two Inches maximum. The glass insulation may be
covered with tar material oommonly used for weather-proofing.
Another type of insulation which may be used instead of the
glass is 85# Magnesia-Wool which should be covered also with
the weather-proofing tar. The advantage of the glass insul
ation 1b that it is not moisture sensitive as is the case
with Magnesia-Wool.
If the storage tank is located outdoors, it is best that
the insulation be covered with riveted or bolted tin sheeting
painted with aluminum pa.int. This type of metal surface
weatherB well and is cleaned easily. All piping must be s1"'"'1
'* , <>T galvanized and screwed fittings must be back brazed to assure tightness. All handling pipe lines must be traced with steam
lines and insulation applied over the two lines in order to
keep the handling lines and the material up to the desired
pumping temperature. Usually a one-fourth inch copper steam
line running parallel with the handling line will suffice.
0<t3?585
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TOWOLDMON0032288 WATER_PCB-00016757
Under very severe conditions of low temperatures, it would be
desirable to wind the steam line around the handling line about
two turns to the foot.
The tanks must be provided with ample pressurized heating
coil surface to supply sufficient heat to the material to
bring it to the proper temperature for pumping and handling
as indicated in Table III. Heating coils should be either
metallized steel, or preferably steel coils which have been
galvanized after fabrication. It is recommended that the
steam pressure on all heating coils should not exceed 100
pounds per square inch gauge; lower pressures may be used
where practicable. It is essential that all steam ooils be
completely free from even minute leaks since this will intro
duce water Into the product.
The steam ooils may be Introduced as "hair-pin" colls
through a manhole at the side and bottom of the tank, or as
is most often done, inserted through the manhole at the top
of the tank and then located near the bottom.
External heating colls located in the Jacket of the tank
may be used but this construction.is more expensive and less
efficient than the internal ooils.
The storage tanks may be fitted with a stirrer, either
through the top, side, or bottom of the tank and the propeller
blade should be located near the bottom of the tank. However,
insertion of a stirrer through the side offers possible source
of a leak and since these materials are homogeneous, it is
not essential to provide such agitation for the purpose of
mixing.
^ 0<i32*,8f>
TOWOLDMON0032289 WATER_PCB-00016758
Adequate circulation can also be aooompllBhed by using
a centrifugal type pump. Gear pumpB or other equipment
where wear or chipping of metal parts may introduce contam
ination should not be used. The pumps must be of the type
designed to handle hot oil. All wetted pump parts should
be either stainless steel or bronze. The centrifugal pumps
must be provided with a deep stuffing box and proper packing
used, as described in Chapter 3- As examples of pumps found
completely satisfactory for this service, reference is made
to Worthington Worthite pumps. Blackmer pumps. Dean Bros.,
Peerless and Dayton Dowd Type C pumps for handling hot oil.
Also, a very satisfactory arrangement for mixing or
circulating and pumping the fluid from the storage tank is
to use a vertical sump pump such as a Taber pump.
All storage tanks must be amply provided with a dehu-
midifying breather suoh as soda lime, activated alumina,
etc., units. This is essential to prevent moist air from
coming in contact with the dielectric. A moisture content
above 35 ppm adversely affects the electrical resistivity
of these products. Provision shoulti be made to preclude
possible leakage of the drier material back into the storage
tank and the drier should be inspected periodically to make
sure rtnot/.le
that_ it *
is open rf'
and
not
plugged tat
/IvnotWr t* Y\ '.\*S'y
B. Detailed Description
flOifcirrttr A' lo tart*
Drawing No. 9C-8170 shows the detailed construction of a
horizontal 15,000 gallon storage tank for Aroclor and its
mixtures which has been found completely satisfactory.
"17"
0*132587
*I
TOWOLDMON0032290 WATER_PCB-00016759
The various nozzles on this tank are used aB follows considering them In order from left to right on the drawing:
3" nozzle
Inlet for recirculation
24" nozzle
For future agitator if required (not used)
3" nozzle
For soda lime or calcium chloride breather connection.
36" manhole
For inspection, etc. The float guage is located in the center of this manhole.
3" nozzle
Not used.
24" nozzle
For future agitator if required (not used)
3" nozzle
Not used.
3" nozzle
Filling inlet connection.
18" x 26" Oval nozzle
For sump pump
3" nozzle
For thermometer well (see detail)
The two 24" nozzles were originally installed for installa
tion of agitators, if required. However, it has been found
unnecessary to use agitators in the storage tanks, and these
nozzles could be omitted.
It has been found that circulation of the fluid by the sump
pump, and into the nozzle at the opposite end of the tank, for
several hours gives satisfactory blending of the tank contents.
For pumping the dielectric from the storage tank, a Taber
Pump Company all bronze 2-1/2" x 2" vertical sump pump with
monel shaft has been found to be quite satisfactory for the appli
cation.
-18-
0*32S88
I
TOWOLDMON0032291 WATER_PCB-00016760
The liquid level gauge used in the storage must be gas-tight. The storage tanks are equipped with Vapor Recovery Systems Co.'s "Varec", gas-tight, automatic tank gauge as shown by drawing No. 9C-8278.
The storage tanks should be provided with an operating plat form suitable to the customer's conditions of operation.
The dehumidifying units used as breathers on the storage tanks can be constructed as shown by Drawing No. 9C-8248. The upper portion of the chamber is charged with anhydrous soda lime or another drying agent. Periodic inspection of the drying agent will show the formation of a cake of damp material on top about 1 to 1-1/2 Inches deep. This cake should be removed and fresh material recharged. Any Buitable construction similar to that shown on Drawing No. 9C-8248 may be used for the breather units.
Drawing No. D-13362 shows design detail of a 13,000 gallon vertical storage tank. The vertical type tank would seem especi ally desirable when Insufficient space is available to accomodate the horizontal type tank.
TOWOLDMON0032292 WATER_PCB-00016761
CHAPTER 3
GASKETING AND PUMP PACKING
Aroclors and their mixtures soften and swell natural
rubber and many of the synthetio "rubber" materials. Such
material not recommended for use include, Hycar P, Koroseal,
Perbunan, Neoprene, etc. These materials are known sources
of contamination.
SUGGESTED TYPES OF PACKING AND GASKETING MATERIALS
INCLUDE:
1. For Welded Flanged Pipe Connections: Garlock Packing Co., No. 901 or No. 7021, l/8 inch asbestos fiber sheet. A ring of thin aluminum drawn tightly at the flange connections may be used satisfactorily also.
2. For Pumps: Garlock No. 234, No. 431, and Cheveron
No. 705O-C are satisfactory paokings. Likewise, Durnmetalllo'8 spiral asbestos fiber may be used. Johns-Manville and others have comparable packing materials.
3. For Valves: Garlock No. 117 braided packing or its equivalent 1b suggested.
4. Othei' Resistant Materials: It is indicated that
duPont's Teflon, poly tetrafluoroethylene is not
.attacked by hot (130C.) Aroclor and is to be recom
mended as a gasket material, Dow-cornlng's Silastic,
Silicone 180, is very resistant to Aroclor and is
suggested for gasket purposes.
5. In some cases cork impregnated under pressure with Chrysler's Cycloweld 55-9 or Armstrong Cork Co.'s
1162-J and oured at 170C. may be usod as a gasket material. These are baked phenolic type coatings.
6. Pipe Thread Compounds: When necessary to use pipe thread compounds, the following should be satisfac tory if care is taken to prevent the pipe compound from getting on the inside of the pipe.
(a) Plastic Lead Seal - manufactured by Durametallic Corporation
(b) ordinary white lead
TOWOLDMON0032293 WATER_PCB-00016762
Usually it Is not necessary to use pipe thread compounds since all screwed pipe fittings should be sealed by back brazing.
7. All new lines and fittings should be cleaned thoroughly by steaming (for two hours) and dried with air or heat.
GASKETS FOR ASKAREL CAPACITORS AND TRANSFORMERS
1. For small capacitors requiring ring seals on the terminals, properly selected Silastic (silicone) tubing is cut to make the ring gasket.
2. The most effective and trouble free seal for transformer lids or covers is to weld the cover onto the transformer shell. To remove the welded covex* a weld cutting tool or bar is used.
3. Cork - Nitrile rubber composition gaskets are sometimes used to combine the desired flow limiting property of cork with the resiliency of nitrile rubber. Only fine grained cork should be used in making this composition gasket. Special gasket cementing compounds such as OE's No. 1276 or No. 880 are used to coat the gaskets to further seal them against the transformer fluid and to accomplish firm bonding to the metal surface.
^. Nitrile rubber gaskets are also used and require no adhesive to make a liquid-tight seal. Exposure of nitrile rubber gaskets to transformer askarel should be kept at a minimum and the gasket should
not be compressed beyond 2/3 of the original thick ness .
After long time exposure to transformer askarel fluid or its vapor, nitrile rubber is measurably deteriorated. While gaskets made of silicone or Teflon are not attacked, these materials are relatively expensive for use in lax'ge sizes. Accordingly, for the most efficient performance it is suggested that welded covers be used on askarel transformers.
5. Instruments, such as temperature gauges, etc. may
be attached to the transformer using flange con nection to pipe located below the liquid level of the fluid in the transformer. Such flange con nections are usually not large in diameter. Accordingly, it seems practical to use Teflon or
Silastic gaskets to make these seals, especially since it is known that askarel can migrate thru
cork or composition cork gaskets used under the liquid level.
"21"
oO**'"
TOWOLDMON0032294 WATER PCB-00016763
Another satisfactory approach used is to machine the flange surfaces of this type connection. Then a Spiritallic gasket made of stainless steel ring with asbestos Inter liner for resiliency can he used satisfactorily.
Screwed pipe fittings on askarel transformers require thorough cleaning of the threads to remove oil, grease and dirt. Then the threads are coated with.a compound such as GE's No. 880 and then tightened.
-21A-
|
TOWOLDMON0032295 WATER_PCB-00016764
CHAPTER 4 SAMPLING METHODS
1.) The ASTM Standard Method for sampling electrical insulating oils is described in ASTM Designation: D923-49. This describes glass and melal thiefs for sampling drums, cans, and tankcars. A specially designed thief or bomb for sampling tankcars is described, also. A very good Instrument of this type is the stainless-steel Bacon Bomb Thief with which samples of the liquid can be drawn from any level of the tankcar.
The ASTM procedure describes sample containers, their cleaning and storage.
Under general precautions, the ASTM mentions that, "Samples of the fluid shall not be taken until the oil is at least as warm as the surrounding air, because cold oil may condense enough moisture from a humid atmosphere to affect seriously Its Insulation properties. (In the case of tankcar lots, on some occasions there may be no choice, as it may be necessary to procure samples from a tankcar when the temperature is not above the surrounding air. On such occasions, the teniperat: of oil and air also the humidity if possible, should be noted in the report of test results.) It is undesirable to do any sampling when the relative humidity of the atmosphere exceeds 75 percent, and samples shall never be taken in the rain".
-22-
oaV*93
|
TOWOLDMON0032296 WATER_PCB-00016765
Several electrical manufacturers using Aroclor dielectrics,
switch the tankcars directly into the plant building or under
roof before sampling and unloading.
These precautions in handling are taken to avoid any
contamination of the fluids which are manufactured under very
strict specifications. For example, the specificaticn for
ionizable. chlorides allows no detectable amount, (less than
0.10 parts per million). Moisture may not exceed 20 to 35
parts per million.
Tankcars are cleaned and prepared under close inspection
before they are filled. When filled, and analysis shows the
material in the car to be satisfactory, the car is then sealed
with a standard railroad wire and seal inserted through the
slots of the dome fittings.
Likewise, after the tankcars have been unloaded in the
industry, it is requested that the dome fittings should be
sealed with a railroad wire and seal.
2.) Monsanto Methods used for sampling tankcars differ
somewhat from the ASTM procedure. The modified techniques are
used because of their greater simplicity and they have beep
entirely satisfactory as employed over many years.
A sample i3 never taken when it is raining or snowing, or
when there is any chance of contaminated atmosphere moving
in the direction of the car. However, in case of an
emergency during inclement weather, a canopy is placed over
-23-
I
TOWOLDMON0032297 WATER_PCB-00016766
the car dome before sampling.
A satisfactory sample bottle is a five pint, round
amber glass, packer type container fitted with a 38 millimeter
Bakelite screw cap with an aluminum or tin cup liner. Bothies
of this description can be purchased from the Northwestern
Bottle Company, 3144 North Broadway, St. Louis, Missouri
according to their No. A-7233.
Only new bottles and caps are used. When a shipment of
bottles is received, the bottles are capped immediately and
stored in their receiving cartons. Prior to use, the exterior
of the bottles is wiped with a clean cloth.
The simplest sampling device used is a clean stainless
steel or aluminum dipper. However, this is not a generally
preferred device because it permits sampling the car from the
near surface, only.
The sampling device commonly used consists of a stainless
steel tube, seven feet long with one end bent into a hook, to
serve as a handle and on the other end there is a stainless
steel bucket with a perforated bottom. This bucket is about
5-1/4 inches InBide diameter and 6 Inches deep to hold the
five pint bottle.
'
This bottle is held firmly by a stainless steel collar
made to slide along the shaft of the sampling device. This
collar has a clamp attachment for fixing it tightly into place
where desired around the neck of the bottle.
When a car is to be sampled, a new sample bottle is
clamped firmly in the bucket.
-24
........
IOWOLDMON0032298 WATER_PCB-00016767
All dirt- is brushed and wiped away from the car dome area using a clean rag.
The car dome Is opened and the cap is then removed from the sample bottle.
The sampling device is inserted into the car so that the neck of the bottle is at least twelve to eighteen Inches
t>v3rC t ^
below the surface of the fluid. The sample taken ls^'discarded as its purpose is to rinse the bottle. A portion of the sample is used to rinse the interior of the bottle cap.
This procedure is repeated until a minimum of three rinses has been made; each time the sample taken is not put back into
M/ the ear. These rinses should be.discarded.
Then the sample is taken and the cap of the bottle is screwed down tightly.
When the sample has been obtained, the car dome is replaced. Immediately.
The exterior of the sample bottle is wiped with a clean cloth and when returned to the laboratory it is further cleaned with a cloth dampened with pure trichlorobenzene. If the sample is to be shipped, the cap is taped with Scotch Tape.
The sampling device is also cleaned with pure trlchlorobenzene and is stored in a dust free, air conditioned room.
3-) Drum Sampling; A glass thief, thoroughly cleaned with pure trichlorobenzene and dried is used to sample drums.
-25-
TOWOLDMON0032299 WATEFLPCB-00016768
CHAPTER 5 LABORATORY ANALYSIS AND PROCEDURE FOR TREATING AROCLORS AND THEIR MIXTURES WITH EARTH
A sample of the Aroclor or Aroclor mixture taken from the tankcar, or drums, as described in Chapter ;4, is analyzed in the laboratory to determine its quality in accordance with the property values given in Chapter 7-
For capacitor use, usually the important properties tested are resistivity, power factor, chlorides, and moisture. For transformer use dielectric strength, resistivity, moisture and chlorides are the important properties.
If the sample is out of line with the shipping specifica tions, it is indicated that the sample has become contaminated. In this case, another sample is to be taken and the properties redetermined. If still out of specifications, the sample should be given treatment with earth.
Treatment of the dielectric with conditioned Attapulgus earth will bring the electrical properties to the maximum attainable values. While there is complete agreement on the benefits derived from treating with conditioned earth, there is difference of opinion on details of the method, arising from factors such as the following. No doubt, there are differences in the absorbent power of various types of dlatomaceous earth with respect to removing moisture, impurities and additives such as stabilizers or scavengers from the dielectric
-26-
TOWOLDMON0032300 WATER_PCB-00016769
materials. The size of the earth particles, temperature and
conditions of activation of the earth, the concentrations
used and the temperature, the degree of agitation and time
interval at which the dielectric is given earth treatment
are all possible variables which are still being studied in
various laboratories.
The method used by Monsanto for treating the fluid with
activated earth in the laboratory is:
The absorbent is minus 200 mesh Attapulgus* earth acti
vated Just prior to use by heating in shallow trays for four
hours at AOO'C. (752'F.) or for at least twelve hours at
250'C. (482F.).
'
At least one quart of the dielectric sample is placed
into a clean two liter Pyrex beaker or three necked flask.
The beaker or flask should be cleaned Just prior to use in a
manner similar to the procedure described in Chapter 6, Method
No. 11,751, "Procedure for Cleaning of Electrodes, G.E. Cell
and Accessories".
The flask or beaker is fitted with a glass or stainless
Bteel agitator. Heat is applied using either a hot plate or
a Glas-Col mantle and is controlled by a thermostat such as '
a Fenwal thermo switch with a stainless steel sheath.
About 0.1 to 0.2$ of the activated earth, based on the
weight of the liquid is added.
#Attapulgus Division, Minerals & Chemicals Corp. of America, 210 West Washington Square, Philadelphia 5, Pennsylvania
-27-
TOWOLDMON0032301 WATER_PCB-00016770
The more viscous dielectrics such as Aroclors 1248 and 1254 are heated at about 70 to 80C. (158 - 176F.) and the less viscous materials such as Aroclor 1242 and Pyranols 1481, 1467, and 1470 are heated at about 50 to 60C. (122 to l4oF.)._
After heating and stirring the sample for about four hours, it Is filtered using a clean Pyrex glass suction flask and a Buchner funnel fitted with a Whatman No. 1 or No. 3 filter paper. This apparatus and the bottle into which the treated sample of dielectric is transferred should have been cleaned in a manner similar to the cleaning procedure des cribed in Chapter 6.
The earth treated and "up-graded" sample is then ready for final analysis of its electrical properties.
-28-
1
TOWOLDMON0032302 WATEFLPCB-00016771
CHAPTER 6 TEST PROCEDURES
A. General Information
The Monsanto test methods described here with the special
equipment used are some of the control tests employed to maintain
the quality of Aroclors for dielectric use. They are suggested
as a guide for test work needed to Indicate the quality of the
dielectrics used In the manufacture of electrical goods.
The most significant electrical tests made on Aroclors for
capacitors are:
1. Dielectric constant.
2. Power Factor.
3- Resistivity.
For transformer use the most significant electrical tests
of Aroclor mixtures are:
1. Dielectric Strength
.
2. Resistivity.
Other than electrical tests, significant measurements of
quality include, moisture, chlorides, thermal and chemical
stability.
,
The following terms are defined:
Dielectric Constant:
The dielectric constant (sometimes called specific inductive
capacity) of any substance is equal to the ratio of the capa
citance of a condenser when that substance is used as the dielectr
to the capacitance when there is a vacuum between the conductors
(for all practical purposes air at ordinary pressures may be used
Instead of a vacuum).
-29-
oAl?feO0
TOWOLDMON0032303 WATER_PCB-00016772
Dielectric Strength:
Dielectric strength Is the rupturing strength of an
insulating material when subjected to voltage stress under
specific conditions and expressed in kilovolts. Breakdown
varies with the shape of the electrodes and does not increase
directly in proportion to the thickness of the dleleotric.
Power Factor:
The power factor of a dielectric is the ratio of the energy
loss in the dielectric to the "apparent power" in the dielectric.
Resistivity :
Resistivity is electrical resistance offered to the passage
of a steady current. The volume resistivity in ohms-centin.eter
of an oil is the ratio of the d-c potential gradient in volts
per centimeter paralleling the current flow within the sample,
to the current density in amperes per square centimeter at a
given Instant of time and under prescribed conditions. Volume
resistivity is expressed In ohm-cm.
The analytical procedures described in detail include:
1. METHOD NO. 11,751, "PROCEDURE FOR CLEANING OF ELECTRODES , G.E. CELL AND ACCESSORIES."
2.
METHOD FACTOR,
N11 O.
11,608,
"DIELECTRIC CONSTANT AND POWER
3. METHOD NO. 11,605, "DIELECTRIC STRENGTH." U. METHOD NO. 11,607, "RESISTIVITY." 5. METHOD NO. 10,126, "CORROSION AND CHEMICAL STABILITY 6. METHOD NO. 10,118, "INORGANIC CHLORIDES."
7. METHOD NO. 10,087, "ACID NUMBER." 8. METHOD (MODIFIED) NO. 10,620, "MOISTURE (WATER)."
04 3? 601
TOWOLDMON0032304 WATER_PCB-00016773
9. Hydrolysis Stability Test.
10. Thermal Stability Test.
B. Detailed Instruction and Testing Methods.
1. METHOD NO. 11,751, "PROCEDURE FOR CLEANING} OF ELEC TRODES, O.E. "
Cell and Accessories.
a. The Electrode Cleaning Procedure:
1) Place the electrodes in hot electrical grade Trichlorobenzene for ten minutes.
2) Wash with unheated TCB.
3) Rinse twice with methanol and twice with tap water.
4) Place the electrodes In hot 10$ Trl Sodium
Phosphate solution. Soak and heat for ten minutes.
5) Wash thoroughly with tap water.
CAUTION: After Step 5 -- DO NOT TOUCH THE ELECTRODES WITH HANDS!
6) Wash with distilled water twice.
7) Dry in drying oven for at least two hours at 120C.
b. The G.E. Cell Cleaning:
1) Reclean the cell before use, when more than
8 hours have elapsed since the previous
cleaning.
'
2) Follow the procedure for the electrodes starting at Step 4.
c. Cleaning of the Accessories:
1) Apply the same cleaning procedure as given for the electrodes (Steps 1 to 7) to prepare the glass spacer and beaker for next test.
2) Clean the thermometer in the same manner as the electrodes, except for Step 7.
3) Place the wet thermometer (after Step 6)
directly in position in the temperature Heating Unit (Modified Fisher Isotemp Oven) and allow to dry.
TOWOLDMON0032305 WATER_PCB-00016774
METHOD NO. 11,608. "DIELECTRIC CONSTANT AND POWER FACTOR."
I Apparatus
A. Oscilloscope: Heathkit Model 0-6.
B. Constant Temperature Heating unit: Fisher Isotemp oven. Model 13-245A, modified to Include inter wall connectors.
C. A. C. Generator: General Radio Type 1302-A
D. Amplifier and Null Detector: General Radio type 1231-B with type 1261-A power supply.
E. Capacitance Bridge: General Radio Co. Capacitance Bridge type 716-C.
F. Test cells: G. E. type, concentric cylinder electrodes Catalog //l,559*663. (G.E., Pittsfield. Mass. Transformer Lab.)
G. Class B driver transformer: This is used for bO cycle measurements to excite the bridge directly from the domestic power line. It has 50 volts output with a 4800 ohm resistor in service.
H. Tuned Circuit Filters: General Radio Type 1231-P2 (400 and 1000 cycle) and 1231-P3 (60 cycle). These filters aid in obtaining a more accurate frequency for the measurements by removing harmonics, noise, hum, etc.
II. Adjustment of Controls on Electrical Appartus
A. On Panel No, 1 (Top Panel, Amplifier and Null
DetecTpry
'
a. Turn the 4-way (main power) switch on the upper right hand side to the #3 position to determine the Dielectric Constant at 1000 cycles. Turn thi_s switch ^o the #2 position for measurements at~6>0 cycles.
b. Allow the equipment to warm up 10 minutes.
c. Turn "GAIN CONTROL" to 6.
d. Depress "INPUT 0.03V." button. B. On Panel No, 2 (Oscilloscope)
0437603
a. Turn "INTEN." to about the 12 o'clock position.
CAUTION:
Do not allow a high intensity spot to remain stationary on the screen for any length of time.
-32-
TOWOLDMON0032306 WATER_PCB-00016775
.b Using "HOR. POSITION" and "VERT, POSITION"
controls center the image on the screen.
,c Adjust "FOCUS" for sharp line.
d. Turn "FREQ. SELECTOR" to LOOKC.
e, Turn "FREQ. VERNIER" to 80.
.f Turn "VERTICAL GAIN" to 5.
g. Turn "VERTICAL INPUT" to "10 VOLT MAX.".
h. Turn "HORIZONTAL GAIN" to about 20.
.1 Turn "SYNCHORONIZING" to + 20.
J. Turn "SYN." to "EXT. SYN."
k. Turn "GEN." to "SWEEP GEN."
On Panel No. 3 (Capacitance Bridge)
.a Turn "RANGE SELECTOR" switch to "100 C"
for 60 cycle measurements and to "1 KC" for 1000 cycle measurements.
b. Turn "METHOD SWITCH" to direct.
c. Turn "DISSIPATION FACTOR" selector switch to "0".
D. On Panel No. *4 (oscillator)
a. Disregard this panel for measurements at 60 cycles.
b. On 1000 cycle measurements, depress the No. 10 "MULTIPLY BY" button.
c. Set "FREQUENCY DIAL" to 100.
_
d. Turn "OUTPUT" dial so that pointer Is at the end of the arrow.
e. Depress the "UNBAL. 5000 OHMS" button.
When all of the above adjustments are made, the electrical
apparatus Is ready for measurement of Dielectric Constant and
Power Factor.
-33-
oO?*'0''
TOWOLDMON0032307 WATER_PCB-00016776
III. Determination of Constants for the Apparatus
1. Carefully assemble the cell which has been cleaned and dried within the last 8 hours. Refer to Method
No, 11,751 for the procedure to use In cleaning tTIe cells.
2. Place the cell assembly in the Fisher oven which has been adjusted to 25C.
3. Connect the back wire inside the oven to the lead on the inner cylinder of the cell and the front wire to the lead-on the outer cylinder of the cell.
4. Connect the cable from the capacitance bridge
to the terminals on top of the oven so that the inner wire of the cable goes to the back terminal
ancTThe outside mesh casing of the caETe (the ground)
goes to the front terminal.
5. P.emove the thermometer from the top of the oven Before going o"n ' wltlTThe tesl . " THTs~TB~Tniportant.
6. Make all adjustments on the electrical apparatus as directed In Part I of this method.
7. Balance the bridge by rotating the "CAPACITANCE" and "DISSIPATION FACTOR" dials on Panel No. 3 until the wide vertical band on the oscilliscope is adjusted to a minimum width.
8. Record the sum of the readings on the "CAPACITANCE" dial and vernier and call this value A.
9. Remove the beaker containing the cell from the oven
and fill it with C.P. benzene to a level 0.737 Inches (ca. 3/4 Inch) above the top of the concentric cylin ders of the cell.
10. Adjust the temperature of the benzene to 25C. while stirring with a thermometer.
'
11. Replace the cell In the oven (at 25C.) and make the same electrical connections as in Steps 3 and
4. DO NOT interchange connections.
12. Balance the bridge again as in Step 7.
04 3P605
13- Record the sum of the readings on the "CAPACITANCE" dial and vernier and call this value B.
14. Calculate the cell constant by the following equation;
Cell Constant, K - B
- A (this is usually
2 .7 - 1 ,"0 around 70 mmfd .)
-34-
TOWOLDMON0032308 WATER_PCB-00016777
15. Remove the cell from the oven and balance the bridge as in Step 7 with the "CAPACITANCE" and "DISSIPATION" "FACTOR" dials.
16. Record the sum of the readings on the "CAPACITANCE"
dial and vernier and call this value F. (capacitance
of connecting cable.)
~
17. Calculate the CELL LEAD CAPACITANCE by the following equation.
CELL LEAD CAPACITANCE, G A - F - K (this is usually around 3 ttimfd . )
WHERE:
A - CAPACITANCE OF ENTIRE SYSTEM IN AIR (SYSTEM CONSTANT')
G = CAPACITANCE OF THE CELL LEADS (CELL LEAD CONSTANT)
F = CAPACITANCE OF CABLE AND WIRES WHICH CONNECT THE CELL AND CELL LEADS TO THE BRIDGE. (CONNECTOR CONSTANT)
K = CAPACITANCE OF THE CELL ALONE (THE CELL CONSTANT)
Tabulate the system Constant (A), the Cell Lead Constant (G), the Connector Constant (F), and the Cell Constant (K; on a piece of stiff paper and post them near the instru ment where they can be easily referred to for comparison and calculations.
These constants must be checked at least once every three months and In all caBes where the Dielectric Constant and/or Power Factor are out of specification.
Measurement of Dielectric constant and Power Factor on RrocTors, PyranoTs, Iherteensand~ Trl-TetracKlorobenzene Blende.
A. Test Run on Cell to Determine whether it is Clean and~F?roperiy~nigned.
1. Carefully assemble a cell which has been cleaned and dried within the past 8 hours.
NOTE: Refer to method No. 11,751 for procedure to use in cleaning cells.
-35-
o<.i2h0b
|
TOWOLDMON0032309 WATER_PCB-00016778
2. Adjust the oven control to hold at a temperature of 100C. for all materials except Tri-Tetra BlendB. If a Tri-Tetra blend is to be tested, adjust the oven to hold a temperature of 25C.
3. Place the empty cell assembly in the oven and connect the back wire inside the oven to the lead on the inner cylinder of the cell, and connect the other (front) wire to the lead on the outer cylinder.
4. Connect the cables from the capacitance bridge to the terminals on top of the oven so that the inner wire of the cable goes to the back terminal anci the outside metal casing (ground}-goes to the front terminal.
5. Allow 15 minutes for the cell to reach temperature equilibrium inside the oven.
6. Remove the thermometer from the top of the oven before Taking any measurements on the bridge" This is important.
7. Make all the adjustments on the electrical apparatus as directed in Part I of this method.
8. Balance the bridge by rotating the "CAPACITANCE" and "DISSIPATION FACTOR" dials on Panel No. 3 until the wide vertical band on the oscilloscope screen is adjusted to a minimum width.
9. Record the sum of the readings on the "CAPACITANCE" dial and vernier and compare this value with the SYSTEM CONSTANT determined in Part II of this method.
IMPORTANT: If the value obtained In Step 9 does not agree with the System Constant A (Part II) within 5 uuf, the cell must be re-cleaned, re-dried, re-assembled, and the te3t run for the System Constant must be repeated.
NOTE: Although the above test run must be made prior to each analysis, the value obtained in Step 9 Is not to be used In calculations but Is to be used only as a check on the cleanliness and alignment of the-cell.
-36-
0*3760 7
TOWOLDMON0032310 WATER_PCB-00016779
B. Procedure for Test?r,g Materials
10. Remove the cell from the oven and fill the beaker with the material to be tested to a level 0.737 inches (ca 3/4 inch) above the cylinders of the cell.
11. Adjust the temperature of the sample tc 100C. (use hot plate) for all materials except Trl-Tetra blends. For Tri-Tetra blends, adjust the tempera ture of the sample to 25C. using an ice-water bath if necessary.
NOTE: Stir sample continuously with a thermometer while adjusting the temperature.
12. Place the cell and sample in the oven and make
the 3ame connections from the cell to the bridge
as in Steps 3 and 4. DO NOT interchange connec
tions.
'
13. Allow 15 minutes for the cell to reach temperature equilibrium inside the oven.
14. Remove thermometer from the oven before taking a mcasuremeTTET This ls~~TmporEa'nF.
15- Make the adjustment of controls on the electrical apparatus as directed in Part I of this method.
16. Balance the bridge by rotating the "CAPACITANCE"
and "DISSIPATION FACTOR" dials on Panel No. 3 until the wide vertical band on the oscilloscope screen is adjusted to a minimum width.
17. Record the sum of the readings on the "CAPACITANCE" dial and vernier, and call this value X.
18. Record the sum of the readings or the "DISSIPATION
FACTOR" dial and switch. Call this value D.
'
Calculations :
Dielectric Constant r
X-F- G ------- K-------
Where: X . Capacitance reading from Step 17. F Connector Constant (Determined in Part II) G a Cell Lead Constant (Determined in Part II) K r. Cell Constant (Determined in Part II)
-37-
<H3?fa08
I
TOWOLDMON0032311 WATER_PCB-00016780
'/a Power Factor f x D TT-
Where:
f = Test Frequency (60 cycles or 1000 cycles) f0= Frequency of "Range Selector" on Pane} No.3 D = Dissipation Factor reading from Step'l8.
NOTE:
When D (dissipation factor) is less than 0.1, the dissipation and power factors differ oy less than 0.0005- Therefore, for our measure ments, power factors and dissipation factors are equal.
Precision: (Reference: General Radio Manual for Model 716-C Capacitance Bridge)
a. Capacitance readings are precise to + 2 mmfd. x mul tiplier reading (+ 0.2^! of full scale for each range) when the dissipation factor is less than 0.01.
b. Dissipation Factor (Power Factor) readings are pre cise to + 0.0005 r + 2% of the dial reading which ever is larger, for values less than 0.1 for D (Dissipation Factor),
METHOD NO. 11,605, "DIELECTRIC STRENGTH."
a. Apparatus and General Information
The electrical equipment necessary to provide high
voltage to permit the determination of dielectric
strength of liquid dielectric at commercial power
frequencies is basically quite simple.
The equipment assembled in the laboratory consists , of a high voltage transformer of good design and with a current capacity of 2.43 KVA and with equip ment for control of the voltage and a means of measuring the voltage and to provide safety for the operator.
-38-
43?609
J
TOWOLDMON0032312 WATER_PCB-00016781
It is enclosed in a steel gray crackle finished
cabinet measuring 42" high, 22" wide, 17" deep
and set on truck casters for easy mobility.
Protective equipment incorporated in this apparatus
prevents the application of high voltage unless all
safeguards are complied with. The door on rear of
cabinet must be closed. The cover over the oil must be all the way down and the voltage control
must be at 0 position. Failure to comply with these
requirements will prevent any action when the red
button is depressed.
The test cup; Transformers, Voltmeters, and Accessories
The askarel testing cup type No. 224809 supplied by
General Electric Company is mounted on the top
rear of the cabinet. It is protected by a heavy plastic cover, hinged at the rear for accessibility
to the receptical.
It is equipped with safety contactor so placed that
the circuit energizing the high voltage contactor
cannot be completed unless the protective cover Is
completely lowered and In place. It is impossible
for the operator or anyone else to touch the testing
cup when high voltage Is applied.
The High Voltage Transformer manufactured by the
Kelly-Koett Manufacturing Co. is of the closed core,
oil immersed, shell type design. Rate @ 81,000 volt
@ 40 mlllampers. It was recovered from a used X-ray
machine purchased quite inexpensively.
o*3;>fcio
j '
....
TOWOLDMON0032313 WATER_PCB-00016782
An auto transformer- from the same X-ray machine is connected so as to limit the out-put voltage of the high voltage secondary to 50,000 volts.
The primary of the auto transformer Is connected to the secondary of a 2-1/2 KVA powerstat variable auto transformer supplied by the Superior Electric Company.
Power to the powerstat is controlled by a A con tact 30 amp. solenoid circuit breaker.
The voltmeter mounted on top near front edge is connected across the powerstat secondary and Is calibrated to read directly in Kilovolts In the range of 0 - 50 K.V.
The overload circuit breaker consists of a small
relay connected between one side of the high
voltage transformer secondary center tap and
ground. It Is adjusted to break contact on a
.
current drain of about 50 milliampers. The circuit
for the coll of the solenoid circuit breaker is wired
through the contacts of this relay.
-40~
TOWOLDMON0032314 WATER_PCB-00016783
Safety and Operating Controls
1) Door interlock switch located on rear door.
2) Test cup cover Interlock switch.
3) Powerstat switch mounted on rear of unit .arranged so that high voltage contactor cannot be closed unless powerstat Is at zero position.
4) Main power switch on Trent panel.
5) Powerstat voltage control on front panel,
6) High voltage contactor push button on front panel (red).
7) Signal lamps mounted on top around voltmeter. Purpose and operation described in method of use.
Procedure
1) Ascertain that the temperature of the material under test is 25 ( 0.5)C.
NOTE: Testing at other temperature is likely to grve"'variable results which may be misleading.
2) Shake the sample container so as to thoroughly mix the askarel before filling the test cup.
NOTE: This operation is especially important with usecT"Aroclor as the impurities may settle to the bottom and the test may be misleading.
3) Rinse the testing cup three times with small ' portions of the sample to be tested.
,
4) Immediately after final rinse, fill the cup to a height of not less than 20 mm. (0.787 in.) above the top of the electrodes.
5) Rock the cup a few times in order that any entrapped air may escape. Close cover over oil test cup.
6) Allow to stand 3 minutes. CAUTION: THIS IS IMPORTANT ,,
7. Turn main toggle switch on front panel to "ON" (or up) position. Both green and amber pilot lights on the top at either side of the voltmeter
will now glow.
TOWOLDMON0032315 WATEFLPCB-00016784
NOTEt
The green signal light is connected across tne
115 volt ln-pub and denotes that line voltage has been applied to operating control circuit.
Amber light is connected in series with sensitive switoh located under high voltage contactors and connected to its armature. It indicates that high voltage contactor is In its rest position and away from contacts energizing auto transformer.
8) Turn voltage control (large knob on front) to extreme counter--clockwise position.
9) Depress red button on front. This energizes high voltage transformer and circuit breaker and is indicated by amber light going out and
the red light directly over voItmeIerwlTl light.
10) Watch the voltmeter and, while holding the button "IN", turn the voltage control at such speed that will cause voltage as indicated on voltmeter to rise at a rate of
3 K.V. per second.
11) Note and Record the voltmeter reading at break down.
12) Repeat the test until two successive breakdowns occur on each of two fillings of the test cup
which do not differ by more than 10$.
Report the average value of these two readings (Step 12) as the Dielectric Strength. If the limit pf the Instrument is reached before breakdown, report
the Dielectric Strength as 50 K.V. at 25C.
Cleaning of the test oupi After the test is completed, drain the cup. Plush the cup with benzene. Then fill with Aroclor 1248 and let stand, until the next analysis.
-42-
04J2613
|
TOWOLDMON0032316 WATER_PCB-00016785
MOTE: An exception, when samples of oil from the plant . are brought in for test, the cup must be thoroughly cleaned with benzene and carbon tetrachloride before and after running the test The electrodes:
The testing cup has two electrodes. Both electrodes are movable and have twenty threads to the inch with index notches on both the electrodes and the . lock nuts. To set the Gap: Arrange one of the electrodes and the lock nuts with the index marks in line. Move the other elec trode until it comes in firm contact with the first electrode and lock it. Now unscrew the electrode with the index marks in line (Step 1) two complete turns and lock it. This will leave a gap of 0.1 inch between faces of the electrodes. Cleaning of the electrodes and the test cup free of carbon coating: The following ASTM method of cleaning shall be followed when it is apparent from visual inspection that the electrode discs of the cup are coated with carbon. Wipe clean with dry calendered tissue paper the v electrodes and the test cup.
-43-
0<.3?614
I
TOWOLDMON0032317 WATER_PCB-00016786
CAUTION: It is important to avoid touching the electrodes with the finger or with portion of the tissue paper which ha3 been in contact with hands. Rinse the electrodes and cup with dry lead-free gaso line, Stoddard Solvent (or dry, waterwhite Kerosene) until they are entirely clean. Care should be taken not to touch the electrodes or the inside of the cup after cleaning so as to avoid possible contamination. METHOD NO. 11,607, "RESISTIVITY." a. Apparatus:
General Radio Company Megohm Bridge Type 544-B. This is a combination of Wheatstone bridge and vacuum tube voltmeter for indicating null. The direct measurement of resistance up to 1,000,000 megohms is made possible by the use of a vacuum tube detector which absorbs negligible amount of power. The voltage applied to the unknown resistor is held approximately constant, regardless of the value of the unknown resistance. This condition is necessary to measure resistance properly. The accuracy of the Instrument in the range en countered in the measurement of Aroclor resis tivity, 100 to 1000 megohm is + 6$?>.
-44-
TOWOLDMON0032318 WATER_PCB-00016787
The instrument is equipped with a 115 volt AC power supply which supplies all operating voltages for the bridge indicating circuits and in addition supplies 500 V DC for application to the material under test. The instrument is completely enclosed in a waxed finish shielded oak cabinet measuring 8-1/2" wide, 22-1/2" long and 8" high. Approximate weight--?6 pounds.
Test Electrodes;
Two concentric nickel cylinders with feet, obtained
from General Electric Company. The inner electrode
has outside diameter of 2.8" and a height of 3.25"
with area of 184 sq. cm. The outer electrode has an
inside diameter of 3" and a height of 3.25" with
area of 198 sq. cm. The distance between electrodes
is, therefore, 0.1" or 0.254 cm.
By theory, electrode constant (K) area/length is
191/0.254 or 752 where average area is 191 sq. cm.
Also K - 36 ,x 10" x C (farads with air as dielectric)
of 11.29 x C (mmfd. with air as dielectric).
,
Glass Plate: Pyrex about 3-1/2" diameter with concentric grooves to assist in spacing electrodes. Obtained from Generai Electric Company.
Heating Unit; Assembled in the laboratory and is the same unit
TOWOLDMON0032319 WATER_PCB-00016788
described In Dielectric Constant Apparatus (see Method No. 11,608; Equipment).
Procedure:
1) Assemble the test cell. Place the recently
cleaned (within the last 8 hours--see Method
No. ll,751j Step 9) electrodes In an 800 ml. beaker.
2) Measure the capacitance of the test cell (C<j) according to Method No. 11,608 (Dielectric Constant and Power Factor measurements.)
3) Fill the cell assembly until the liquid level is 3/4 inch above the top of the electrodes.
4) Heat the assembly on the hot plate to 100 (+ 0.5)C.
5) Place the assembly Inside of the testing oven.
6) Attach top lead (+) on the megohm bridge to inner electrode.
7) Attach other lead to outer electrode.
8) Throw the three switches at the top of the megohm bridge to "ON" position.
9) Allow 10 minutes for assembly to reach temperature equilibrium inside the oven.
DANGER: Make sure control knob Is in "CHECK" position. Ohherwlse, painful shock will result if leads are
touched
10) Bring the galvanometer pointer to zero by turn
ing the "ZERO ADJUST" knob in the direction in
'
which the pointer of the galvanometer 3hould move.
11) Turn the control knob to "CHARGE" position for 30 seconds.
12) Turn the control knob to "OPERATE" position and return the galvanometer pointer to zero by ad justment of the "MULTIPHY BY" switch and the megohm dial.
13) Read after 30 seconds.
-46-
|
TOWOLDMON0032320 WATER_PCB-00016789
Calculation; Resistivity* - Megohm dial reading (Step 12) x "Multiply By" reading (Step 11) x capacitance of cell (Step 2) in mmfd. x 11.29 x 0.001. Report the result in units of 109 ohm-cm. Values of resistivity are qualified by designation
of temperature and voltage. These are for this test, 100C and 500 volts PC.
MOTE; It is important that the product under test, electrodes, and beaker be at uniform temperature for this determination. Temperature variations in ' different parts of the sample will cause the galva nometer zero to change constantly and give misleading results.
CAUTION: Inasmuch as measurements must be made at a potential of 500 volts DC a shock hazard exists in the handling of this appartus. With the control knob in the charge and operate position full voltage of the bridge (500 volts) is applied to the positive and low terminals and through the test leads to the electrodes. Do not attempt to handle the electrodes of the test leads unless the control knob is in the "CHECK" position. Possible penalty for failure to observe this precaution -- Painful Shock. METHOD HO. 10,126 "CORROSION AND CHEMICAL STABILITY." a. Apparatus; G.E. Corrosion Apparatus consists of
the following: 1) A Corrosion Flask - It is a 300-ml. Pyrex flask
-
TOWOLDMON0032321 WATER_PCB-00016790
with a ground glass 24/40 joint equipped with
a 12-inch straight tube as an air cooled con denser. The air- c or.densei; Is painted on the outside with aluminum.
2) The Corrosion Apparatus; A transits box 32" Tong x B" wT3e 5T ^"Seep. The top of the box represents a spilt translte board with 5 holes cut to fit the flasks.
'
The box is heated by two 500-watt, 15 volt G.E. Strip heaters with off-set terminals at one end (23.5" overall length).
The heating length of the heating element is covered by a copper strip 19-1/2" long x 4" wide x 1/4" thick.
The temperature is controlled by an automatic thermostat with temperature setting Indicator.
Procedure:
1) Roll a rectangular (2" x 4") piece of aluminum foil sc that it will pass through a ground glass 24/40 joint of the corrosion test flask.
C//UT10N: Be careful that after rolling the specimen does not touch Itself at any point.
2) Wash the aluminum foil (Step 1) scrupulously with acetone, distilled water, acetone, benzene, and chloride-free ether.
3) Then place the foil on a clean watch-glass and dry In an oven at 110C. for 30 min. After
" cleaning handle the specimen with tongs or Torcepa only'.
4) Weigh accurately on an analytical balance the specimen (Step 3) at room'temperature.
-
5) Drop the weighed aluminum foil Into the chloridefree corrosion flask of the "G.E. Corrosion Appa ratus." Rinse out flask with sample and rinse end of condenser with Bample.
6) Add 200 ml. of the product under test to the aluminum foil (Step 4 and 5)
7) Set the corrosion flask In the corrosion test appa ratus .
-48-
TOWOLDMON0032322 WATER_PCB-00016791
8) Attach a 12-lnch straight-tube air-cooled condenser, the outside of which is painted with aluminum.
9) Cover the exposed part of the flask with aluminum foil.
10) Heat the flask for 6 (+0.1) hours at 210 (+ 5)C.
The temperature of the liquid in the test flask is mea sured indirectly using a thermometer inserted through a cork stopper and into similar liquid contained in an identical flask seated adjacent to the test flask on the heating chamber.
11) At the end of the heating period, detach condenser from the flask before removing it from TOe hoVpiaSe.
12) Remove the flask from the hot plate and cover all of the flask with aluminum foil (when the flask is not on the hot plate.)
13) Without removing the aluminum foil covering of the flask, analyze the product (Step 6) remaining in the corrosion apparatus for:
a| Appearance, Color, and Condition. b) Inorganic (Free) Chlorides--Apply Method Ho.10,118 c) Acidity (Acid Number) - Follow Method No. 10,087
14) With a pair of clean, straight nichrome tongs, remove the aluminum foil specimen (Step 5), wash thoroughly, dry and weigh accurately on an analytical balance in the same manner as before (Steps 2, 3 and A),
Report the corrosion as loss or gain in weight to the nearest (57T)0(3l g, and the Chemical Stability, as indicated by the analysis of the products "After Corrosion Test", in the same way as reported for the original (as received) material.
METHOD NO. 10,118, "INORGANIC CHLORIDES."
a. Preparation of Standards:
1) Make a primary standard of .100,0 ppm by weighing 0.1648 g. C.P. NaCl into a chloride-free 1 liter volumetric flask. Dilute to the mark and mix thoroughly. Make a 10.0 ppm standard by diluting 100 ml. of the primary standard to 1 liter, and mixing well. For every 0.1 ppm standard, dilute to 10 ml. of the 10 ppm standard to one liter and
-49-
|
03?6?0
I
TOWOLDMON0032323 WATER_PCB-00016792
mix well. A 0.1 ppm beam is considered '-he very
faintest beam perceptible to me eye between 15-^5 seconds after adding the AgNG-* solution. If the beam intensity is not vis.'ble"av all., or If easily visible (too strong', discard the solutions and make new standards,
2) Weigh 20.0 g. O.P. AgNOa, Into a chloride free dark bottle. Add 20 mil' C.P. HNOo (enloridefree). Dilute to 200 ml with wa.er.
3) All solutions should be freshly prepared every
two weeks and stored in glass-stoppered Pyrex
bottles.
'
b. Light Source:
Employ the 2 battery Per.lite flashlight, having a 3-d mm. light aperture. New batteries must be used frequently in order to perceive beams properly.
c. Procedures
1) Thoroughly rinse two separatory funnels with
chloride-free water three or four times. Then
take an aliquot from each funnel in a test tube
which has been rinsed with chloride-free water.
Test these aliquots for Tyndall beams by aoding
3-5 drops of AgNOq and allowing 45 sec. for full
beam to evolve. Absolutely no dust or chloride
beam should be present. "(74 beam is present,
rinse all equipment with 1:1 HNO^ and repeat
Step 1).
~
,2) When funnels are beam-free, drain out all the water except 50 ml. in one and. 25 ml. in the
other. Heat the water in both funnels tc boiling. (Hold stopper while heating as steam may cause stopper to fail.)
3) Transfer 50 ml, of the sample from the sample bottle at a temperature of 95-lOOC. into the separatory funnel containing the 50 ml. of boiling water. (As a precautionary measure, pour some of-tne sample from the 3ample bottle into a waste beaker before adding the 50 ml. to the funnel.)
4)
Stop>per the funnel and shake vigorously for at _lea_st 1 minute, venting frequently through the stopcock. (Care must be exercised at all times to touch neither the lower part of the funnel stem nor the ground part of the stopcock.)
-50-
TOWOLDMON0032324 WATER_PCB-00016793
5) Allow the layers to separate and drain off the sample Into the second funnel containing the 25 ml. of boiling water. , (As before, drain off a few ml. of the sample Into a waste beaker before draining the sample Into the second separatory funnel.) It may be necessary to heat the sample when transferring the sample to the second funnel; e.g., Aroclor 1260.
6) Repeat step 4 and allow the layers to separate. Then drain off the sample Into a waste beaker.
7) Combine both water extracts In one funnel and shake thoroughly.
8) Take approximately a 10 ml. aliquot of the water
extract out through the bottom of the funnel into a 3/4" x 6" test tube. Again, first allow a few ml. to drain out before taking the aliquot. (The test tube used should be rinsed with chloridefree water several times before using.)
9) Add approximately an equal portion of chloridefree ether. (The ether Is tested by Bhoking a portion of It with chloride-free water and testing for Tyndall beam at the end of 45 sec. If beam is present, wash ether several times with chloridefree water until washings show no beam after adding
3-5 drops AgNOj).
10) Shake the ether-water mixture until the emulsion in the sample disappears and the water layer is
completely beam free before adding AgNOq. If emulsion is difficult to break, add sample drop
. wise through the ether and then shake.
11) '
Add 3-5 drops of 10$ AgNOq solution and test for chloride beam for 45 sec, exactly. If no beam is
present at the end of 45 seconds, report as <0.1 ppm. The very faintest of beams is considered . 0.1 ppm. If beam is stronger it will be necessary to compare with standards of 0.15, 0.20 up to 1.0 ppm, adding the 3-5 drops of AgNOq and comparing at the end of 45 sec.
The method is precise to the nearest 0.1 ppm. Report results to the nearest 0.1 ppm.
METHOD NO. 10,087, "ACID NUMBER." a. Reagents!
1) Nitration grade benzol.
-51-
o'll?*'2''
TOWOLDMON0032325 WATER_PCB-00016794
2) Anhydrous methanol.
3) A saturated solution of phenol red (phenol sulfonphthaleln) In methanol (approx. 0.1$).
4) A 0.01 N solution of KOH in methanol.
b. Procedures
1) Place 100 ml. of bensol, 100 ml. of methanol and 0.5 ml. (pipette) of phenol red indicator Into one of two clean dry 500 ml. Erlenmeyer flasks.
2) Neutralise carefully with the 0.01 N KOH (to be first definite pink color.)
3) Pour the mixture back and forth between the two flasks several times. If the solution Is still neutral, divide it equally between the two flasks. If not, repeat steps 2 and 3.
i|) Weigh (+ 0.05 g.) into one of the flasks a 75.0 + 5.0 g, sample and titrate with the 0.01 N, KOH until the sample matches the blank.
c. Calculations:
Acid No. (mg. KOH/gram sample) = ml. 0.01 N KOH x 0,56 Sample WeigTvE
Report the results to the nearest 0.001 if they are below 0.1, otherwise to the nearest 0.01.
The method is precise to + 0.002 for acid numbers below 0.01 and to + 0.01 Tn the range of 0.1 to 0.01.
NOTE 1: To convert mg. KOH/gram to mg. NaOH/gram, . multiply by 0.715-
METHOD MODIFIED NO. 10,620, "MOISTURE (WATER)".
a. Introductory Comment:
The Karl Fischer Reagent titration method U3ed in the analytical laboratory Involves use of an analyt ical balance to weigh accurately about one drop of water used In preparing the standard. Since an analytical balance may not be available, the method has been modified and uses a purchased standard water solution as described below. Also, in the laboratory a "Dead Stop" potentiometrlc method for determining
-52-
432623
I
TOWOLDMON0032326 WATER_PCB-00016795
the end point is often used. However, as this equipment may not be available, the procedure described below uses the visual Indicator change for determining the end point.
b. Apparatus and Reagents:
1) Karl Fischer Burett, Automatic Pyrex Mo. 5750, 25 ml. capacity. Ace Glass Company, Vineland,
New Jersey.
2) Water Standard In Methanol. No. SO-W-2 (1 ml. = 1 mg. HgO) Fisher Scientific Company, 2800 Jefferson Ave., St. Louis, Missouri.
3) Karl Fischer Reagent Solution No. SO-K-2, Fisher Scientific Company.
o. Standardization of Karl Fischer Reagent
Into a 500 ml. clean, dry Erlenmeyer flask, place
about 100 ml. "Anhydrous" methanol (commercially
available, 99-95%) Add Karl Fischer reagent to
this blank until the first color change from lemon
Jrellow. It is not necessary to read the burette
at this point. Carefully pipette 50 ml. of standard
water solution into the blanked methanol. Refill
the Karl Fischer burette. Titrate the solution
with gentle swirling to mix, until the same color
is obtained as was obtained for the blank. Now
read the burette.
.
Moisture value of K.F. reagent in terms of grams
HgO per ml.
.
(Moisture value of
(Ml. Standard H2O solution) standard water so
lution in gm. per
____________________ ___ ________ ml, stated on label.)
, ml.' Karl Fischer Reagent'"
d. Solvent Mixture 1
Since the solubility of the different askarels varies, the following solvent mixtures are suggested:
Material
Anhydrous Benzene
Anhydrous Methanol
Pyranol 1478 pyranol 1488 Pyranol 1467
Pyranol l48l
Pyranol 1495 All Aroclors Inerteen PPO
0 ml. 100 ml.
100 ml. 100 ml. 100 ml. 110 ml. 100 ml.
300 ml 200 ml
200 ml 200 ml
200 ml 190 mi . 200 ml
-53-
0`i3?62`i
TOWOLDMONOQ32327 WATER_PCB-00016796
Procedure, "Visual End Point.'1 1) Place 100-300 ml. of dry solvent mixture (c) in
a dry 500 ml. ground glass-stoppered Erlenmeyer flask. 2) Titrate the solvent with K.F. reagent to the visual endpoint, i.e., the first change from the yellow to reddish orange that persists for 30 seconds. Refill the burette. _3) Using a beam balance, weigh to the nearest 0.1 gram by difference, a sample containing 0.03 to 0.06 grams H2O into the flask. 4) Stopper and shake until the sample is in solution. 5) Titrate the solution with K.F. reagent to the endpoint described in Step 2. Record the volume of K.F. reagent used. Calculations 56 H20 = ml, of K.F. reagent x HpO factor x 100
' Sample Weight References: Mitchell, J. and Smith, D.M., Chemical Analysis, Vol. 5, Aquametry, Interscience Publishers, Inc., New York, (1948)
C43?6P5
TOWOLDMON0032328 WATER_PCB-00016797
9. 'HYDROLYSIS STABILITY TEST FOR ARCOLOR
Purpose
To quantitatively determine the presence of unstable ohlorine compounds in chlorinated biphenyls (askarels).
Principle
The method is based upon the hydrolysis of unstable chlorine compounds in askarels by metbanoiic sodium hydroxide. The resulting chloride ion is determined potentiometrically by titration with silver nitrate solution in an essentially nonaqueous medium. The measured chloride ion, reported as parts per million in the askarel sample, is indicative of the relative stability of the askarel in a dielectric system.
Reagents
1. Methanol (chloride free) - 5 liters of methanol are refluxed with 0.5g Analytical Reagent Grade AgNO? for 1/2 hour. The methanol is then distilled from the AgNDv, discarding the first 100 ml. to flush the apparatus. g0% of the charge is distilled from the flask and the contents of the flask are discarded. The methanol should be checked to assure purity by titration. The chloride ion concentration should be less than 0.01 ml. of 0.005N AgNOj per 100 ml. of methanol.
2. Sodium Hydroxide Reagent - Analytical Reagent Grade NaOII (may be obtained from Malllnckrodt Chemical Company) is used to prepare this reagent. A 0.1N solution is prepared by dissolving 4.0'grams of analytical reagent grade NaOH in 1 liter of chloride free methanol. ,
3. Sulfuric acid - Prepared by a 50:50 volumetric dilution of Analytical Reagent Grade concentrated sulfuric acid (can be obtained from Malllnckrodt Chemical Company) with chloride free (deionized'or distilled) water. The acid is always poured into the water with constant stirring to prevent any dangerous build-up of heat.
4. 0.005N AgNO^ and 0.0025N AgNO-g - Prepared by dilution of an
ampoule of concentrated aqueous AgNOo. These ampoules can be
obtained from Anachemlca Chemical Limited, Champlain, New York. This reagent may also be prepared by dissolving 0.8495 g. of
Analytical Reagent Grade AgNOo crystals (may be obtained from
Malllnckrodt Chemical Company! in one liter of chloride free water containing 3- ml. of concentrated nitric acid. This solution
should be standardized against a pure chloride standard. A sodium
chloride crystal such as used in infrared spectrometer cells is a good source of pure riaCl. The AgNOs solutions should be checked (at least monthly) to assure a consistent reagent.
-55-
U^3^6?6
|
TOWOLDMON0032329 WATER_PCB-00016798
5. Acetone (chloride free) - Prepared by distillation from AgNO-a as described above, for methanol and should also be checked by potentiometric titration to assure optimum purity. Normally a chloride content of less than 0.01 ml. of 0.0025N AgNOg per 100 ml. is derived by this method.
6. Benzene - Analytical Reagent Grade benzene should be used. This material is normally chloride free but should be checked by potentiometric titration to be certain. Analyti cal Reagent Grade benzene may be obtained from Malllnckrodt Chemical Co.
Equipment
1. 200 ml. tall form beaker (Berzelius type).
2. Magnetic stirrer - A suitable magnetic stirrer with ring stand baBe can be obtained from Fisher Scientific Co. Cat. #14-511-1. ThiB Btirrer has a built-in rheostat and should be set at full speed and operated through a variac to adjust its speed. This will prevent heating of the stirrer during the stirring operation.
3. Teflon magnetic stirring bar - The bar should be cylindrical in shape and of one piece molded construction, one inch long, may be obtained from Fisher Scientific Co., Cat. #9-311-9-
4. Microburet graduated in 0.01 ml. divisions - A suitable buret may be obtained from Scientific Glass Apparatus Co., Inc. Bloomfield, New Jersey Cat. #JM-570.
5. Silver electrode - The Beckman silver billet electrode Cat #39261 is the preferred type.
6. Glass electrode - A standard glass electrode such as Beckman electrode Cat. #40498.
7. pH meter suitable for use with glass electrode - A model GS Beckman pH meter can be used. This instrument haB the expanded scale and provides greatest sensitivity to incre- mental emf changes. A somewhat less sensitive but, nonethe less, useable meter such as Beckman "Zeromatio" or the Leeds Northrup line operated pH meter can be used.
8. Water bath - An individual glass water bath 150mm in diameter 75mm high and containing 600 ml. of water heated to 40C. + 1C. is used. This glass water bath can be obtained from Corning Glass Co., Corning, N.Y. Cat. #3140.
9. Usual laboratory glassware - 25 ml. pipette, buret or pipette graduated to deliver 0.5 ml., wash bottles for pure acetone methanol, water and a sturdy ringstand.
-56-
I
TOWOLDMON0032330 WATER_PCB-00016799
Procedure for 1242 Aroclor (1499 Pyranol)
1. Twenty five grams of askarel is weighed into a tared 200 ml. beaker to the nearest 0.01 gram on a suitable balance.
2. The magnetic stirring bar is then added to the beaker
containing the sample (without the bar touching the operators'
hands).
3. Twenty five ml. 0.1N NaOH (methanollc) Is added by means of a 25 ml. pipette and the beaker is covered with a watch glass.
4. The sample beaker is immersed to a depth of 1 1/4 Inches
in the 40 + 1C. water bath on a magnetic stirrer and clamped securely to a firm support. The sample is stirred at as fast a speed as possible, without pronounced splashing, for 1 houf. The water bath is not heated. No effort is made to maintain the temperature at 40C., and it will drift toward equilibrium with room temperature.
5. After the 1 hour stir, the sample beaker is removed from the bath, 0.5 ml. of dilute sulfuric acid is added to the sample by means of a suitable pipette or buret. 125 ml. of chloride free acetone is then added (a graduated cylinder is suitable for this purpose).
6. The sample Is then titrated with 0.005N AgNOg solution uBing the silver-glass electrode system.
Normal samples of askarel require extremely small amounts
of AgNOj, for this reason the titration is run using 0.01
ml. additions and allowing sufficient time for equilibrium
to be established before recording the emf change. If a
change of less than lmv per 0.01 ml. addition is observed
for 3 or 4 .01 ml. Increments, larger additions of AgNOo
may be used for instance .05 mmll. until such a c1 hange is
observed. The additions then are reduced to 0
ml. again
to complete the titration. The endpoint norma! is defined
by two 50mv changes. A :normal titration would
following typical data.
MV dMV* ML dML dMV/dML X 10~:
400 0 .06 0
392 8 .07 .01 352 8 . .08 .01
341 31
.09 .01
321 20
.10 .01
271 50
.11 .01
221 50
.12 .01
201 20
.13 .01
285 16
.14 .01
0 8 8
11 20
50 50 20 16
0<t326?8
Using the OS pH meter the change is measured in 0.2mv units and hence the meter changes observed would be 5 timeB this value (l.e. 25 units for 5mv).
-57-
TOWOLDMON0032331 WATER_PCB-00016800
To calculate the change per 0.01 ml. observed, the mv change is divided by the volume of AgNOg. By plotting dmv/dml vs. ml., the endpoint may be found to the nearest 0.001 ml. This gives a sensitivity of + 0.007ppm - to define the endpoint to + .01 ml. no plotting Is necessary and a sensitivity of + 15.07ppm is assumed.
7. A reagent blank Is run exactly as above omitting the askarel sample.
Calculations
Subtract the reagent blank from the total volume of AgNO? and for the sample then:
Reactive Chlorine (ppm) > Net Volume AgNO^XNormallty AgNOgXSS-^XloS
' ~ ' '~
weight
^
Procedure for 125^ and 1260 Aroclors (more viscous askarels)
The procedure is followed exactly as above except that under Procedure, Step 2, 5 ml. of benzene is immediately added to the askarel sample and stirring bar. The sample Is heated until
It dissolves In the benzene and cooled to room temperature before proceeding to Step 3-
The benzene, of course, should be included in the reagent blank determination.
Procedure for Micro Test
The dechlorination test may also be run on 5 gram samples of askarels with a reduction in sensitivity. It is run exactly as the 25 gram test above except that the amount of reagents then used are 5-01 ml. NaOH (0.1N methanollc), 0.1 ml. HgSO^ for acidification, and 50 ml. of acetone to dilute the sample. 0.0025N AgNOj is U3ed to titrate this size sample. The sensi tivity is then + 0.l8ppm rather than + 0.07ppm given by the 25 8 sample (without plotting the endpoint).
General Comments
.
A rapid titration can be made to the nearest 0.1 ml. using
the normal potential at the equivalence point or use can be made of an automatic titrator for routine control procedures. The sensitivity in either case should be within + 0.7ppm of the value obtained by more refined techniques with 0.005N AgNOj and a 25 gram sample.
The usual analytical precautions should be exercised in using this test method to prevent cross contamination from other
sources of halogen in the laboratory. This moans that all
glassware, apparatus, and the area in which this teal' i3 run
3piouTcTbe analytlca'lTy~clean,
-58-
oO*`'*q
TOWOLDMON0032332 WATER_PCB-00016801
10.
'Thermal stability method for aroclors "
Scope
This method measures the thermal stability (chloride content) of chlorinated biphenyls used primarily as dielectrics. It is used for determining the quality of finished Aroclors.
Principle
Certain impurities if present in chlorinated biphenyls will break down at elevated temperatures with the liberation of HC1. The volatile HC1 is swept out of the sample with air, absorbed in water and titrated with silver nitrate solution.
The results are expressed as parts per million chloride obtained during a 16 hour thermal stability test period.
Reagents
1. Acetone. No special grade is required. It must contain no tltratable chlorides.
2. HNOj. Dilute 1 ml. concentrated HNO3 to 100 ml.
3. 0.005 NAgNOj. 0.8495g to 1000 ml. 5 ml. 0.1 NAgNOv (if
available) to 100 ml.
J
Apparatus
1. Pressure Regulator. Moore - Model 40 - 2 - 0-50" Water.
Moore Products Co. H & Lycoming St., Philadelphia 24, Pennsylvania.
2. Thermoregulator. Cenco - 99015 - (Central Scientific Co.)
3. Relay. Ebert Mlcrelay SPST Std. Type. Ebert Electronics
Corp., Queens Village, N.Y. (Any sensitive, reliable relay ' can be used).
4. Stirring Motor. Bodine NSI-13 B-2224 1/40 HP. 1725 R.P.M.
5. Bath Fluid. Dow Corning 550. 5 gallons
6. Leeds & Northrup ac. operated pH Meter - Cat. No. 7664
7. Silver wire electrode
0'i3?630
8. Mercurous Suifate Reference Electrode. Modified L & N calomel reference electrode prepared as follows. Dismantle the internal element from the salt bridge tube of a standard
L & N calomel reference electrode. Discard the saturated
KC1 solution from the tube and clean out the mercurous
-59-
TOWOLDMON0032333 WATER_PCB-00016802
chloride ar.d mercury from the internal element. Clean parts thoroughly. Add sufficient new clean mercury to the interna] element to make contact with electrode wire and repack chamber of Internal element with mercurous sulfate moistened with 0.5M potassium sulfate. Seal the chamber with non-absorbant cotton. Fill the salt bridge tube with 0.5M potassium sulfate and reassemble units.
9. Burette. 1.0 ml. microburette - Koch - Fisher Scientific Co. - 20-110.
10. Magnetic Stirrer and glass covered stirring bar.
11. Glass Apparatus for Samples in Bath. See attached diagram.
12. Capillaries. Glass capillaries approximately 0.2 mm in diameter and cut to a length that permits a flow of A5 ml. per min. of air.
13. Variac. 2 KVA.
14. Air Supply. Air under Ao lb. pressure is available in our
laboratories. This air is purified by passing through a scrubber bottle containing 40$ NaOH, an empty bottle which
serves as a safety, a second bottle containing cone. H2SO4 and a trap Immersed In dry ice and acetone. The purified air is connected to a glass manifold having one connection for each sample. Capillaries of the appropriate length are connected between the manifold and the outlet for each sample. In this manner a constant flow of air can be obtained on all samples by applying a constant pressure to the manifold.
13- Heating Bath. A stainless steel bath constructed according to the specifications given in the attached diagram is used.
The bath is heated by applying 85 Volts to 3-500 Watt G.E. strip heaters bolted to the bottom of the bath. One 500 Watt Immersion heater is connected to the thermostat. Dow Corning 550 silicone is used as the bath liquid. The tem perature is maintained at 210 + 0.2C. The bath Bhould
be placed in hood and the tests carried out in total dark ness. Two 3 X 5" stainless steel plates not shown in the
sketch are placed on top of the straightening vanes in the bottom of the bath. This provides better stirring to the ends of the bath. Twelve samples can be run in the bath at one time.
procedure
oJi32('31
Weigh a 290 + 1 g sample of Aroclor into the 300 ml. Erlenmeyer flask. Insert the gas inlet tube and position the flask in the
210 + O^C. bath. The bath fluid level should be approximately one inch below the bottom of the ground glass Joint on the flask.
Place 10 ml. distilled water in the Volhard flask absorber and attach to the receiver tube from the Erlenmeyer flask. Connect the purified air supply from the capillary to the inlet down tube
___________ . ______
____
-60-
TOWOLDMON0032334 WATER_PCB-00016803
in the flask. Bubble air through the sample for 16 hours at the rate of 35 to 45 ml. per minute. (The apparatus and/or sample must be kept In the dark during the 16 hour period). Transfer the water from the absorber to a 100 ml. beaker using approximately 50 ml. acetone, and 2 drops 1$ HNOo solution and titrate with 0.005N AgNOj solution using a magnetic stirrer. The titration is stopped at 75 mv. which represents the point of maximum potential change and the titration endpoint. Silver wire and mercurous sulfate electrodes (Ag-Hg, HggSOij, 0.5M KgSOjj system) are used for the titration.
Calculations
(Total ml. 0.005 NAgNOj used) (0.6l) * ppm chloride
1 ml. 0.005 NAgNOj is equivalent to 0.00017736. chloride or 0.6l ppm.
Precision and Reliability
The precision of the test (standard deviation) is 0.02 ppm at the 0.5 ppm chloride level and 0.06 ppm at the 2.8 ppm levil. The method as written does not necessarily quantitatively measure the total unstable chlorides present. For screening purposes a total chloride figure is not necessary. Experience has shown that there is good correlation between the chloride figures obtained by this 16 hour thermal stability test and the quality of chlorinated biphenyls.
Discussion
The air supply can be checked for chloride contamination by passing the air through an empty sample flask immersed in the bath. Not more than 0.03 ml. 0.005 NAgNOo should be required to give the endpoint. The air supply can be checked for ammonia by measuring the pH of the absorber solution or titrating with 0.01N HC1. The pH should be between 6 and 7< Compressed cylinder air available for breathing purposes can perhaps be used without, any purification. Experience has shown that nitrogen gives low chloride figures. This indicates that air is a neces- sary part of this test and that nitrogen cannot be used as a substitute, Oum rubber tubing is used in making all connections. The apparatus is cleaned with acetone.
-61-
0 0 761?
TOWOLDMON0032335 WATER_PCB-00016804
CHAPTER 7 TYPICAL PROPERTIES
The 1200 series members of the Aroclor family are chlor
inated biphenyls, and are made by chlorinating biphenyl to
approximately the percentage of chlorine, by weight, in
dicated by the last two digits of the serial number. For
example, Aroclor 1254 is approximately 54$ chlorine on a
weight basis. Accordingly, these Aroclors are not single
or simple compounds. They are a mixture of isomeric com
pounds composed predominately of the chemical compound in
dicated below as being their approximate equivalent:
Aroclor 1242
Trlchloroblphenyl
Aroclor'1248
Tetrachlorobiphenyl
Aroclor 1254
Pentachlorobiphenyl
ArocJor-1260
Hexachlorobiphenyl
A'O''"- iv t.
For transformer use and some capacitor use where lower
viscosity is required for better low temperature operation
than offered by the above Aroclors, these products are mixed
with pour point depressants, particularly trichlorobenzene
resulting ir. various General-Ele-otrio-Company Pyranols v f-7*.
described' briefly as follows:
Transformer Pyranol 1467*
j\ / \/
( ./
X^
j 60$ of Aroclor 1260
j 40$ of Elec, Grade j Trichlorobenzene 0.125$pt Tin Tetraphenyl
Transformer Pyr'inal/1^7bt' 45$qf Aroclor 126Q''
v---^
of Elec. Grade'" TrlchioroTetrachlorpbenzene Mixture j/Ovl255S of Tin Tetraphenyl
"Use of tir. tetraphenyl scavenger ip subject to G.F.. patents and license: Royalty arrangements Should be checked before
using Pyranol 1467. Questions about license concerning the use of anthraquinone stabilizer for DC capacitors should be referred to Western Electric, 195 Broadway, N.Y.Ct
0.3?h!l
I
I I I
I
TOWOLDMON0032336 WATER_PCB-00016805
Wol6r 1232 ' U--
PROPERTY
Vise. @ 37.8C. (ASTM D88)
Specific Gravity @ 25/15.5G.
(ASTM D287)
Color, APHA
Condition
Clear
Acidity, mg. KOH/g.
PourPoint, C. (ASTM D97)
Inorganic Chlorides, ppm.
Refractive Index 25C.
Distillation Range (ASTM D20)
Corrected for stem ahd
barometic pressure \
Corrosion
\
\
Water Content, ppm
Resistivity'100C., 500 volts DC 0.1"gap
Dielectric constant I00C. % 1000 cycles (ASTM D924)
Sulfates (ASTM-D117/31)* Fixed Chlorine content (Carius)* Dielectric Strength (KV;
(ASTM D877)* / Hydrolysis Stability Test
Chlorides, pprii. Thermal Stability Test
Chlorides /^ppm.
TYPICAL 44 - 51
/ /
1.270 - 1.280/
50 Max.
/
0.014 Max/
-30 or Power 0.10 m/x.
1.6290 - 1.6220 10%/- 293C. min.
50/- 310 - 320 C, 9056 - 360C. max. /fter heating with 'aluminum for six hours
at 210C. 10C. the aluminum must not be corroded either on visual or weight inspection and the Aroclor 1242 should meet the following specs:
Color, APHA
100 max.
Acidity, mg.KOH/g. 0.014 max.
Inorg. Chlorides,
ppm.
, 0.10 max.
Condition
Clear
35 max.
500 x 10 Ohm-cm., min. 4.3 - 4.5
None 31.5 - 32.5 35 min.
-
'
3.0 (tentative) max. 0.5 (tentative) max.
*Not determined unless by special request.
-64-
0`.32f>^
I
TOWOLDMON0032337 WATER_PCB-00016806
AROCLOR 1242
PROPERTY
TYPICAL
Vise. at/7.8C. (ASTM D88) Specific Gravity at 25/15.pC.
('ASTM D2S7) Color, APHA Condition Acidity, mg. KOH/g.
Pour Pt., C. (ASTM D97) Inorganic Chlorides, ppm. Refractive Index at 25 C. Distillation Range (ASTM D20)
Corrected for stem and barometric pressure
Corrosion
82 - 92 seconds Saybolt Univer. 1.381 - 1.392
50 max. Clear 0.01 max. -14 or lower No detectable amount 1.6240 - 1.6260 10# 325C. min. 90# 36011(2...max.
After heating with aluminum for six hours at 210C + 10C, the aluminum must not be cor roded either on visual or weight inspection and the Aroclor 1242 should meet the following specs:
Water Content, ppm Resistivity 100C. 500 volts
DC at 0.1" gap Dielectric Constant 100C.
at 1000 cycles (ASTM D924)
rlash Point Cleve. Open Cup* Fire Point C.
Sulfates (ASTM-D117-31)* Fixed chlorine content (Carlus)* Specific Heat at 25C.* Evaporation at 100C for 6 hrs.*
Dielectric Strength (KV) (ASTM D877)*
Color, APHA
60 max.
Acidity, mg.KOH/g. 0.01 max.
Inorg.Chlorides,ppm no detectable
amount
Condition
Clear
35 max.
00 x 109 ohm-cm,, min. .7 - 4.9
170 - 200C. None to boiling point None '
43 + 0.5#0
0.29 0.4# max.
35 Min.
.
'Not determined unless by special request.
Hydrolysis Stability Test chlorides, ppm
Thermal Stability Test
chlorides, ppm
1.0 (tentative) max. 0.40 (tentative) max.
TOWOLDMON0032338 WATER_PCB-00016807
AROCLOfi 1248
PROPERTY
Vise, at 54.AC. (ASTM D-88)
Spec. Gravity at 65/l5.5C.
(ASTM D-287)
Color, APHA
.
Condition
Acidity, mg. KOH/g.
Pour Point C. (ASTM D-97)
Refrac. Index at 20C.
Dist. Range (ASTM D-20)
Water Content, ppm.
Resist. 100C. 500 v D.C.
at 0.1" gap
Dielectric constant, 100C/
1000 cycle
/
Dielectric Strength 25Co*
Flashpoint, (C.O.C.)*/
Fixed Chlorine (Carius)*
Specific heat at 25C.*
Inorganic chlorides, ppm.
TYPICAL
73 80, Sec. Saybold Universal 1.405 - 1.415
100 Max. Clear 0.01 max. -7 1.6285 - I.6305 First drop 310 C. min. 1056 - 345C. Min.
' 385C. Max.
x 108 Ohm-cm. , min.
4.6 35 KV min. 193C. 47.5 - 48.5# 0.27 0.10 max.
*Not determined unless by special request.
Hydrolysis Stability Test chlorides, ppm.
Thermal Stability Test chlorides, ppm.
3-0 (tentative)*max. 0.5 (tentative) max.
-66-
TOWOLDMON0032339 WATEFLPCB-00016808
AROCLOR 1254
PROPERTY
'
Vise, at 98.9<'C. (ASTM D88) Specific Gravity at 65/15-5C.
(ASTM 1)287) Color, APHA Condition
Acidity, mg.KOH/g. Pour Pt. C. (ASTM D97) Inorganic Chlorides, ppm.
Refractive Index at 25C. Distillation Range (ASTM D20)
Corrected for stem and
Barometric Pressure Corrosion
TYPICAL
.
44 - 48 sec. Saybolt Univer. 1.495 - 1.505
100 max.
Clear
0.01 max.
7-12 No detectable amount
1.6370 - I.639O
10 366 - 378C.
50$ 371 - 383C.
9056 379 - 394"C.
'
After heating with aluminum for
6 hours at 210C. plus or minus
10C. the aluminum must not be
corroded either on visual or
weight inspection and the Aroclo:
1254 should meet the following
specs :
Water Content, ppm. Resistivity 100'C., 500 v D.C.
at 0.1" gap Dielectric Constant, 100C.
1000 cycles Dielectric Strength, 25C.* Burn Point (ASTM D92)* Sulfates (ASTM D-117-31)* Fixed Chlorine Content (Carlus)* Evaporation at 100C. for 6 hrs.* Stability*
Ageing Characteristics*
Specific Heat at 25C.*
Color, APHA
150 max.
Acidity, mg.KOH/g.
0.01 max
Free Chlorides,ppm. No detec
table amount
Condition
Clear
35 max.
500 x 10^ ohm-cm., min.
4.15 - 4.35 35 KV, min. Higher than 350C. None
55 + 0.5# 0.4j max. There shall be no liberation of
chlorine or chlorides when the material is heated at 100C. in glass vessels in contact' with
air for periods of at least one month. No loss in resistivity over original value on heating in air for 96 hrs. at 100C. 0.26
*Not determined unless by special
st.
Hydrolysis Stability Test Chlorides, ppm.
Thermal Stability Test Chlorides, ppm.
3.0 (tentative)max. 0.5 (tentative)max.
0432637
|
TOWOLDMON0032340 WATER_PCB-00016809
AROCLOR 1260'''
PROPERTY
Vise, at 98.9C. (ASTM D88) Specific Gravity at 90C./15.5C,
;ASTM D287) Color, APHA Condition Acidity, mg.KOH/g. Pour Ft.,C.(ASTM D97 ) Inorganic chlorides, ppm.. Pefractive Index, 25"C. Distillation Range (ASTM D20)
Corrected for stem and barometric pressure. Corrosion
TYPICAL
72 - 78 Sec. Saybolt Univ. 1.555 - 1.566
150 max. Clear 0.01 max. 25 - 3/1 No detectable amount 1.6^53 1,6470 log 385 - S98c. 50$ 390 - 4o4C. 90% 400 - 420C. After heating with aluminum for 6 hrs, at aiO'C. + 10C. the aluminum must not be cor roded either on visual or weight inspection and the Aroclor 1260 should meet the following specs;
Water content, ppm, Resistivity,100C. 500 volt/
at 0.1" gap Dielectric Strength 50C/ Dielectric Strength 100/ Dielectric Constant lp0C.
at 1000 cycles* ' Burn Ft, (ASTM D92)* Sulfates (ASTM 11117-31)* Fixed chlorine content (Carius)* Evaporation at 100C. for 6 hrs.* Stability* '
Specific Heat at 85C,(
Color, APHA
150 max.
Free Chlorides,ppm. No detec
table amount.
Acidity,mg.KOH/g. 0.02 max.
Condition
Clear
35 max,
500 x 109 ohm-cm., min.
30 KV., min. 30 KV., min. 3.6 - 3.8
Higher than 350C. None
60 + 0.9% 0.2j? max.
There shall be no liberation of chlorine or chlorides when the material is heated at IDO'C. in a glass vessel in contact with air for periods of at least one month,
0.23
*Kot determined unless by special request.
Hydrolysis Stability Test chi or Ides,ppm.
Thermal Stability Test chlorides, ppm.
3.0 (tentative) max. 0.7 (tentative) max.
-68-
TOWOLDMON0032341 WATER_PCB-00016810
PYRANOL 1481
PROPERTIES
Viscosity at 37.8C. Spec. Gravity at 15.5/15-5C. Color, APHA Condition Acidity, mg. KOH/g. Pour Pt., C. Inorganic Chlorides, ppm. Refractive Index at 25C. Distillation Range
Corrected for stem and barometric pressure.
First drop
25$ max. 90$ Corrosion Test Change in Weight Color, APHA Acidity, after test, mg.KOH/g Free Chlorides, ppm. Condition after test Water Content, ppm. Resistivity at 100C 500 volts, DC, 0.1"gap Dielectric Constant (100C., 1000 cycles) Hydrolysis Stability Test chlorides, ppm. . Thermal Stability Test chlorides, ppm.
TYPICAL 70 - 82 sec. Saybolt Unlv 1.525 - 1.535 150 max. Clear 0.01 max. -15 or lower 0,10 max. 1.6205 - 1.6215
205C. min. Below 270C. 380 - 395C.
100 x lo9 ohm-cm.,min. 4.1- 4.6 3.0 (tentative) max. 0.5 (tentative) max.
-69-
0't32f'3`>
I
TOWOLDMON0032342 WATER_PCB-00016811
/^
PYRANOL 1 kgs'
PROPERTIES
TYPICAL
Vise, at 37.8C.
Spec. Grav. at 15.5/i5.5C.
Color, ABHA
Acidity (Mg KOH/g)
Water, ppm.
.
Condition
Refrac. Index at 25C.
p'ree Chloride, ppm.
Pour Point, C.
Resls. at 100C., 500 v D.C.
1" gap
Dielectric Strength (25C.)
Corrosion:
Loss of Aluminum
54-2 Sec. Saybolt Unlv. 1.560 - I.568
150 max. ,014 max.
35 max.
Clear
1.6137 - 1.6147
0.10 max.
1
Lower than -32C.
100 x l09 ohm-cm min. Over 35 KV
None Heating with aluminum for 6
rs. at 200-220C. The Pyranol after heating should meet the following specs:
Dielectric Constant at 1000
cycles at 100C.*
Distilling Range (corrected)*
1st drop
'
Below 270C.
90$ point
Burn Point (ASTM D-92)*
Fixed Chlorines*
Arc Formed Gases*
(Oxygen-free liquid at 25C.)
Color, APHA Acidity (MgKOH/g) Free Chlorides ppm
Condition
200 max. .014 max. .10 max.
Clear
3.7 - 4.0
200C. min. 4o$ max. 295 - 4l5c. None up to boiling point
59-1$ min. Less than 1.0$ total com
bustible gases including carbon monoxide, hydrogen,
and volatile hydrocarbons.
*Not determined unless by special request.
*0 3?<>`*0
|
TOWOLDMON0032343 WATER_PCB-00016812
PYRANOL 1467
PROPERTIES
Vise. at 37.8C., (ASTM d88) Specific Gravity at 155/15-5C.
(ASTM D-287) Color, APHA Condition Acidity, mg. KOH/g. Pour Point, "C. (ASTM D-97) Inorganic Chlorides, ppm. Refractive Index at 25C. Distillation Range (ASTM D20)
Corrected for stem and barometric pressure Corrosion
TYPICAL
54 +_ 2 sec. Saybolt Univ.
I.56O -1,568 150 max. Clear 0.01 max. -32C. or lower 0.10 max. 1.6137 - 1.6147 1st drop - 200'C. min. Below 270'C. - 40$ max. 90$ - 395 - 415"C. After heating with aluminum for 6 hrs. at 200-220`C., the aluminum must not he corroded either on visual or weight in spection and the Pyranol should meet the following specs:
Color, APHA Acidity, mg.KOH/g. Inorganic Chlorides
ppm. Condition
200 max. 0.01 max. 5 max.
Clear
Water Content, ppm.
Resistivity, 100"C. 500 volts, 0.1" gap
Dielectric Strength, B5C.
Dielectric Constant, 100'C. 1000 cycles*
Tin Tetraphenyl* Burn Point, (ASTM D92)* Fixed Chlorine* Arc Formed Gases*
(Oxygen Free Liquid at 25C.)
30 max.
100 x 109 ohm-cm., min. 35 KV., min.
3.7 - 4.0 0.125$ + 0.01$ by weight None up to Boiling Point 59.1$ min. Less than 1.0$ Total combustible gases including carbon monoxide, , hydrogen and volatile hydro carbons .
Not determined unless by special request. -71-
TOWOLDMON0032344 WATER_PCB-00016813
PYRANOL 1^70
I'ROPEnTIES
TYPICAL
Vise, at 37.8C. (ASTM D88)
Snec. Gravity at 15-5/15.5 C., (ASTM D287)
Color, APHA Condition Acidity, mg. KOH/g. Pour rt., C., (ASTM D97) Inorganic Chlorides, ppm. Refractive Index at 25C. Distillation Range (ASTM D20)
Corrected for stem and
barometric pressure First drop
35/ 55/ 65/ 95/ Corrosion
41-45 Sec. Saybolt Univ.
1.563 - 1.571 150 max. Clear' 0.01 max. -44c., or lower 0.10 max. 1.6075 - 1.6085
210C., min. 240 - 2560C. 90 - 330'C. 385 - 400C. 395 - 415C. After heating with aluminum for 6 hrs. at 200-220C., the aluminum must not be corroded either on visual or weight Inspection and the Pyranol should meet the following specs
VJater Content, ppm. Resistivity, 100C., 500 v.,
0.1"gap Dielectric Strength, 25C. Dielectric Constant, 100C.,
1000 cycle.3* Tin Tetraphenyl* Burn Point, (ASTM D92)* Fixed Chlorine* Arc Formed Gases*
(Oxygen Free Liquid at 25C.)
Electrical Stability*
Color, APHA Acidity, mg.KOH/g. Inorg.Chlorides,ppm
Condition 30 max.
200 max. 0.01 max. 5 max.
Clear
100 x 10y ohm-cm., min. 35 KV., min.
3.8 - 4.3 0.125/ + 0.01/ by weight , None up to Bolling Point 60.5 4- 0.5 Total combustible gases in cluding carbon monoxide, hydro gen and volatile hydrocarbons.
After heating for 96 hrs. at 100C. In a closed container,
the resistivity should not decrease more than 10/.
*.Iot determined unless by special request.
-72-
0A32
I
TOWOLDMON0032345 WATER_PCB-00016814
PROPERTIES
Vise. @ 37.8C., (ASTM D88) Specific Gravity @ 15.5/15.5C.
(ASTM D-287) Color APHA Condition Acidity, mg. KOH/g. Pour point, C. (ASTM D-97) Inorganic Chlorides, ppm. Refractive Index @ 25C. Distillation range (ASTM D20)
Corrected for stem and barometic pressure Corrosion
Water content, ppm. Resist., 100C. 500 Volts,
0.1" gap Dielectric Strength, 25C. Dielectric constant, 100C.
1000 cycles* Phenoxy Propene Oxide or Glycidyl Phenyl Ether Burn point, (ASTM D92)* Fixed Chlorine* Arc formed gases* (Oxygen free liquid @ 25C.)
TYPICAL 5V!--'''sec . Saybolt Universal
1.560 - 1.568 150 max.
Clear 0.014 max.
-32C. or lower 0.10 max.
1.6137 - 1.6147 First drop - 200C. min.
Below 270C. - 40$ max.
90$ - 395 - 4l5C. After heating with aluminum for 6 hours at 200 - 22CC. the aluminum must not be corroded either on visual or weight inspection and the askarel should meet the follow ing specs:
Color, APHA
20C r.->
Acidity, mg.KOH/g.
0.014 r
Inorganic Chlorides, ppm. 2 max.
Condition
Clear
30 max.
100 x 108 Ohm-cm., min. 35 KV., min.
3.7 - 4.0 0.18$ - 0.22$ by weight
None up to boiling point
59.1$ min.
Less than 1.0$
Total combustible gases
Including carbon monoxide,
hydrogen and volatile hydro
carbons .
*Nct determined unless by special request.
-73-
TOWOLDMON0032346 WATER_PCB-00016815
CHATTER 8
QUALITY REQUIREMENTS OF ARCOLORS PRIOR TO USE IH THE ELECTRICAL ] NDU3TRY
V_.sUty ar> Supplied to the Electrlcal Industry Aroclors and their mixtures supplied to the electrical
industry must meet the strict requirements specified by the industry and given in the specifications shown in Chapter 7. The electrical qualities, such as resistivity and power factor of the materials, as supplied, are not the maximum attainable. It is Impractical for the manufacturer to furnish these dielectrics to the customer at the maximum attainable qualities because even with careful packaging, sampling, shipping, and handling, these fluids may pick up traces of contaminants from "clean" tank cars, drums, pipe lines, pumps, etc. However, as supplied in accordance with the specifications, the fluids must respond readily to "up-grading" by earth treatment to arrive at the desired maximum refinement required for use by the electrical Industry.
TyplcaI Electrical Quality of Aroolors Used in the Industry
Capa cl tor ] mpregnation
Table IV indicates the desirable minimum resistivity
values of Arcelor dielectrics immediately after earth refinever;t
by the user when ready to impregnate capacitors. These values
are compared with the similar values of the material after the
capacitor Impregnation lias been completed In a relatively clean
system.
-7Ji-
I
TOWOLDMON0032347 WATER_PCB-00016816
TABLE IV
Dielectric
Volume Resistivity Ohm-cm at
100C. and 500 volts DC.
Prior to
After
Impregnation
impregnation
Aroclor 1254
2.500 x 10s
890 x 10e
Aroclor 1242
1.500 x 10
600 x 10s
Pyranol--1481
60O'5Ti0e
Aqo-'IT'io9
The power factor of earth refined Aroclor prior to capacitor
impregnation should not exceed 0.1 percent at 100C. and 1000
cycles.
Transformer Pilling
The minimum resistivity of transformer askarel as
specified for supply to the electrical industry is 100 x 10B
Ohm-cm. at 100C., 500 volts and 0,1 inch gap. While power
factor is not part of the suppliers1 official specification,
this value for freshly made transformer askarel ranges from
0.1 to 0.3 percent at 100C. and 1000 cycles. This would be
approximately 0.05 percent at 20C. and 60 cycles.
In order to arrive at higher and yet practical dielectric
values the transformer manufacturer needs to earth refine the
fluids immediately prior to using.
It is reasonable to strive for a volume resistivity
value around 1,500 x 109 Ohm-cm. at 100"C. and power factor
values of about 0.05 percent at 20C. and 60 cycles or 2 percent
at 100C. and 60 cycles.
-75-
0'i3?64`>
TOWOLDMON0032348 WATER_PCB-00016817
Table V compares resistivity readings with the corres
ponding power factor values obtained on the given samples of
typical transformer askarel.
. TABLE V
Volume Resistivity 10e Ohm-crn. at 100C.
Power Factor 60 cy. 100C. 60 cy. 20C.
1,500 500 100
60-70
2# 5$ i556 20-25$
0.05$ 0.1$ 0.7$ 2.0$
When adequately earth refined to give a resistivity in
the range of 500 to 1500 x 108 Ohm-cm. at 100C., sample of
such transformer askarel taken after filling a newly constructed
and relatively clean transformer should have a resistivity of at
least 200 x 10s Ohm-cm. at 100C. and a corresponding power
factor less than 12 percent at 100C. and 60 cycles.
0<t326,'<'
TOWOLDMON0032349 WATER_PCB-00016818
CHAPTER 9
EARTH REFINEMENT OP AROCLORS TO ARRIVE AT THE DESIRED ELECTRICAL QUALITIES
Earth Treatment in the Laboratory Preparatory to Analysis In Chapter 5 on Page 27 the laboratory procedure
for preparing the test sample using 0.1 to 0.2 percent of activated earth is given. It is also stated that the absorbent is minus 200 mesh Attapulgus earth activated just prior to use by heating in shallow trays for four hours at 400C. (752F.) or for at least 12 hours at 250C. (482F.)
Earth Treatment by the Plant Manufacturing the Askarel
:
Earth refinement in the plant is essentially the same
as used when preparing the laboratory sample. The same amount
of freshly conditioned earth ^0.1 percent to 0.2 percent by
weight) is added to the askarel and the mixture is agitated
thoroughly and heated for about four hours.
The more viscous dielectrics, such as ArocTor--1-248'
Aroclor 1254 are heated at about JO to 80C. (158 to 176F.)
and the less viscous materials such as Aroclor 1242 and^Pyranel-s
l48l-^467--and--lA7GT~er^-3rnerie-errTPG are heated at about 50
to 60C. (122 to 140F. )
0
After about four hours contact the earth is removed
from the dielectric fluids using a Sparkler or Sweetland or a
comparable filter press, previously fitted with filter paper _
^fvvi\pv
,1 r*rj> . 1)'
liners such as supplied by arl--Schleicher--&.Schual--Company, .
f\~l
Inc--. Keene. 11cm--Hampshire The paper is usually--26-mi-L&--thi-Ck.
-77-
TOWOLDMON0032350 WATER_PCB-00016819
and must be dried at 100C. to remove moisture prior to use in the filter press. Earth Refinement by the User
Capacitor Manufacturers: Capacitor manufacturers usually use the same procedure for earth refining as employed by the manufacturer of.the askarels. Because this method employs loose earth which can be thoroughly mixed into the askarel, it is believed to be the most efficient and is certainly known to give very good results. However, towers (cylinders) filled with relatively coarse earth through which the dielectric fluids are pumped and recirculated have also been used by capacitor manufacturers.
Transformer Manufacturers: The large manufacturers of askarel transformers usually use the same type of procedure for refinement with loose earth as employed by the manufacturer of the askarel dielectrics. Handling relatively large amounts of the askarel transformer fluid justifies installing the tanks and filter presses required. This earth refining equipment is usually supplemented with portable cartridge type filters or a small portable platen frame type filter press. This latter equipment is then used when newly made askarel transformers are . filled with the fluid and it is necessary to clean the transformer and the fluid by draining out the fluid pumping it through the filter press or cartridges containing the earth and recirculating until the desired electrical properties are attained.
likewise, smaller manufacturers of askarel transformers can use most conveniently the portable cartridge or platen frame type filters
-78-
TOWOLDMON0032351 WATEFLPCB-00016820
The Effect of Earth Refinement on Removal of Tifi Scavengers from the Transformer Askarel; As indicated
above, normally transformer askarels respond readily to up-grading by the use of 0.1 to 0.2 percent by weight of earth based on the total weight of the fluid. However, if the fluids are unusually contaminated, larger amounts of earth are required to up-grade the dielectrics. This raises question about the selective adsorption of the scavengers by the earth treatment. It is indicated that to Selectively adsorb significant amounts of the scavengers, repeated treatment with 1 percent or more of earth is required^ as shown"in-the following table!--------ci___
TABLE VI REMOVAL OF TIN-TETRAPHENYL BY REPEATED TREATMENT
-79-
I
TOWOLDMON0032352 WATER_PCB-00016821
CHAPTER 10
CONTAMINATION
Askarels as supplied by the manufacturer respond readily
to earth refining resulting in a very high order of dielectric
properties. For example, it is possible to attain volume resistivity values up to 20,000 or 30,000 x 10^ Ohm-Cm. at 100C.,
500 volts, 0.1 inch gap and power factor values no more than
0.05$ at 100C. and 1000 cycles.
Except for very special situations, it is not practical to
refine these dielectrics to this extent. In commercial use,
transfer of the fluids from one clean container to another which
may result in contacting traces of conducting impurities does not
allow maintaining such a high order of dielectric properties.
Referring to electrical values, this accounts for the more
practical order of specification values as indicated in Chapter 7
,and to which the electric industry has committed the supplier of
the dielectrics. This also accounts for the desirability and need
of the user of askarel dielectrics to earth refine Immediately prior
to use in order to arrive at the maximum and yet practical dielectric
values for his given purpose. Such quality values relative to
,
askarels for capacitors and transformer work were indicated in the
preceding Chapter 8.
AVOIDANCE OF CONTAMINATING ASKAREL CAPACITORS It is necessary, practical and economical that all steps possible be taken to avoid contaminating influences in the manu facture of askarel capacitors.
TOWOLDMON0032353 WATER_PCB-00016822
Sometimes capacitor manufacturers strive to attain the very
high order of dielectric qualities possible for askarel as mentioned
above. Since it is very difficult, if not almost impossible to
maintain such a high order, usually capacitor manufacturers comply
with the more practical schedule attainable by normal earth
refining practices as shown in Table IV Chapter 8.
Equal care must be exercised in selecting, conditioning and
handling the other construction materials of the askarel capacitor.
For example, the water used in manufacturing capacitor tissue is
either distilled or deionized. Quality control of the capacitor
paper requires chemical tests to characterize the fiber and its
purity. Physical and electrical tests to determine moisture and
power factor are essential. Acceptable dielectric loss values of
the dry and unimpregnated paper do not suffice for judging quality
because in some Instances after impregnation with good quality
askarel, higher dielectric losses increasing rapidly with temperature
may be obtained.
The aluminum foil used must be extremely pure and free from
residual traces of rolling oils or compounds. Accordingly, the
term usually applied to the foil is "dry" foil. Similar care and _
purity requirements apply to the aluminum tabs used.
The paper and aluminum foil is wound to form the core in an
air conditioned room and often the machine operators are required
to wear cotton gloves to prevent oil from the operators skin
contaminating the cores.
o*3,?65l
The steel cans or turn plate capacitor cans require thorough
cleansing and degreasing with perchloroethylene of required purity
and free of any objectionable stabilizing agents. Similarly, the -81-
TOWOLDMON0032354 WATER_PCB-00016823
capacitor impregnating equipment and chambers must be kept clean.
To facilitate maintenance of cleanliness, sometimes stainless
steel construction is used. However, ordinary steel equipment
is common and when "conditioned", that is to say, coated with a
thin film of clean Aroclor, this type of construction material is
entirely satisfactory. To condition a new plant or clean an old
one, askarel is circulated through the system, then purified by
earth refining and recirculated. This process is repeated until
all contaminating influences have been removed.
Moisture, probably the most obvious contaminent in askarel
impregnated capacitors, increases the dielectric loss under AC .
voltage and decreases the capacitor life. Therefore, very efficient
vacuum, as low as 5 or 10 microns, and heat carefully controlled
up to 130C. are employed to expel the moisture from the capacitor
cores prior to impregnation. Also to avoid moisture entering the
askarel during storage, it Is common practice to warm the dielectric
in the storage tank to about 50C. in the presence of mild vacuum.
Traces of any substances soluble in askarel and capable of
Ionization will have a marked adversed effect on the dielectric loss of the askarel or the finished capacitor. Therefore, much
r
care is required to avoid contamination with solder flux. For
example, the use of rosin core solder is known to cause contamination.
When rlrn sealing compounds are used in the lids of small capacitors,
there must be assurance that the catalyst or other ingredients
UBed in such materials do not cause contamination. Improperly
selected pipe sealing compounds used on the threads on the fittings
for sight glasses and instruments on the Btorage and impregnating
equipment are known to have caused contamination.
TOWOLDMON0032355 WATER_PCB-00016824
****** *
All these factor-s about contamination must be kept in mind when impregnating capacitors, especially by the chamber method but also by the manifold method.
The moisture content of the paper used in the capacitor cores may easily introduce several gallons of water into the'average impregnating chamber. This water is removed from the capacitors prior to impregnation -- usually by heating the chamber to 130C. in the presence of efficient vacuum, 100 microns or less.
If the chamber is not made of the preferred materials of construction, slight corrosion (iron rusting) may occur and the film of askarel on the interior surface of the tank may become contaminated and introduce traces of impurities into the clean dielectric fluid entering the chamber for impregnating the capacitors. In fact, because of this possibility of contamination, in some operations the capacitors are conditioned and dried in a separate oven or chamber. Then when thoroughly dried, they are then transferred into a second chamber used only for impregnation.
In the case of relatively large sized capacitors, such as power factor correction units, a manifold with branches may be used to handle each unit individually rather than by the batch -- chamber method.
The unimpregnated capacitors are placed into an oven and vacuum is applied to the individual units attached to the manifold. After the capacitors have been evacuated and dried, the askarel Is introduced through the manifold and its branches. Care must be taken that moist air or contaminants do not collect in the branches through which the dielectric is introduced.
* ******
-82A-
TOWOLDMON0032356 WATER_PCB-00016825
Care must be taken to avoid contamination with any kind of grease, oil, packing material and "rubber" gaskets used with the machinery, such as pumps, etc., connected with the handling and impregnating facilities.
It is not practical to discuss all possible sources of contamination and it should suffice to say that the manufacturers of askarel capacitors need to and do exercise all known precautions to avoid contamination and should evaluate and life test represent ative units before supplying the finished merchandise.
AVOIDANCE OF CONTAMINATING ASKAREL TRANSFORMERS Obviously, in the manufacture of askarel transformers it is
impractical and impossible to employ purification or refinements
as required, for example, in the production of askarel power factor
correction capacitors.
In a transformer, heat from the dielectric losses of "slightly"
contaminated askarel is negligible compared with heat generated
by the transformer core. While power factor and resistivity of the
transformer fluid are important, they are not as critical as is
the case when similar askarels are used in capacitors.
However, 'this does not excuse the askarel transformer manufac-;
turer from striving to meet the practical quality requirements as
given in Chapter 8. In order to meet these requirements, it is
necessary to earth refine the transformer askarel Immediately prior
to filling the unit. After the initial fill, the fluid should be
withdrawn from the transformer, circulated through an earthen filter,
then pumped back into the transformer and recirculated through the
filter until both the fluid and transformer are clean and show the
desired power factor and resistivity values. -83-
0..4.J.J>654
'
. `
TOWOLDMON0032357 WATER_PCB-00016826
If such normal earth refinement falls to give the desired
results. It will be necessary to study the quality of the materials
of construction and look for all possible sources of contamination
in the transformer and handling equipment.
The characteristic high dielectric strength of transformer
askarel is not a good criterion of purity because with the exception
of being adversely affected by moisture, it is not impaired irre
spective of the contamination of soluble products which give increased
power factor. F. M. Clark of General Electric Company tabulated
the following values of transformer askarel selected from hundreds of
askarel samples taken from commercially operating transformers to
show lack of reduction of dielectric strength with marked increase
of power factor values.
TABLE VII
DIELECTRIC STRENGTH AND POWER FACTORS OF ASKAREL IN USED TRANSFORMERS
.Sample
Power Factor, 60 cy. at 250., per cent
Dielectric Strength at 25C. KV
No. 1
'
. 0.1
38
No . 2
0.5 35
No. 3
5
45
No. 4
15 39
No. 8
30 ^3
However, the need for care and proper selection of transformer
construction materials is emphasized in the following tabulation
which shows the marked increase of power factor resulting from
contamination of the askarel with synthetic rubber materials and
varnished cloth, as compared with acceptable materials of construction
given in Table VIII.
-84-
0<i3?fcS5
TOWOLDMON0032358 WATER_PCB-00016827
TABLE VIII
POWER FACTOR CONTAMINATION PRODUCED BY TRANSFORMER MATERIALS AGED IN ASKAREL AT 100C. FOR 96 HOURS
Material
Askarel Power Factor, Percent
Dielectric Strength, KV
None Biack varnished cloth
1.0 85.0
35 42
Copper Press Board
1-52.0
40 37
Manila Paper Phenolic resin
1.5 39 1.6 4l
Shellac
6.0 36
Iron
5.0 39
Synthetic rubber
70.0
39
Contaminants which cause a high power factor will of oourse
also impair resistivity values.
The following Table IX shows the degree to which acceptable
and good commonly used materials of construction lower resistivity
from the original high values possessed by the askarel.
. TABLE IX
EFFECT OF COMMONLY USED INSULATION MATERIALS ON THE RESISTIVITY OF TRANSFORMER ASKAREL
Sample
1 . Freshly made aBkarel before heat aging
Volume Resistivity x 10B Ohm-cm. at 100C.
2,000
2. Same as 1, after heat aging
1,900
3. After heat aging with the following materials added
a - Phenolic resin tap changer material
b - Paper c - Grade A press board (tan)
1,200 500
750043/6*6
-85-
TOWOLDMON0032359 WATER_PCB-00016828
d - Grade A press board (gray) e - Grade A press board, laminated strip f - Cotton wrapping g - Glyptal 1276 cement, cured 48 hours
at 110C.
500 400 300
100
The procedure used to evaluate materials of construction
Is simple and should be employed by all makers of askarel trans
formers .
One Inch square samples of the surface of the construction
materials are Immersed In one liter of good quality transformer
askarel and heated for 96 hours at 100C. The Increase In power
factor and reduction of resistivity of the fluid after such exposure
are compared with the values of the original fluid heated similarly
but In the absence of the construction materials.
The following Table X gives such a comparison and illustrates
the unacceptable properties of the varnished cambric and black
binding tape.
TABLE X
PROPERTY
'
FRESHLY MADE TRANSFORMER
ASKAREL
SAME FLUID EXPOSED TO FIBER BOARD VARNISHED CAMB1
OR BLACK BINDIt TAPE
PF, 100oC,, 1 KC
Resistlvlty,Q100C. Ohm-cm. x 10y
0.2^ 2,500
0.4555 436
1% 18
pjelectric Strength at 25C.
45 KV
45 KV
45 KV
When the askarel fluid contaminated with varnished cambric or
the black binding tape was treated for one hour at 75C. with one
percent by weight of attapulgus earth, the power factor and reslstlvli
values were restored to those of the original fluid.
-86-
TOWOLDMON0032360 WATER_PCB-00016829
While there eeem to be no reports of askarel transformers
failing in service as a result of contamination from the use of
questionable materials of construction, as discussed above, their
unwise use is readily detectable and leads to embarrassing questior
about impairment of the transformer's life.
Such a case is illustrated by an askarel transformer giving
a megger reading reading as low as 3, after two years service life.
The transformer had not been subjected to arcing and the dielectric
strength of the askarel remained above 35 KV at 25C., or well
within the specification of new askarel. Maintenance of high
dielectric strength in the presence of contamination appears to
account for the transformer not failing.
The following Table XI compares the properties of freshly
made askarel with the similar values of the fluid taken from the
transformer after two years use and also with the same contaminatec
fluid following refinement by earth treatment.
TABLE XI
COMPARISON OF PROPERTIES OF CONTAMINATED TRANSFORMER ASKAREL BEFORE AND AFTER EARTH REFINEMENT
PROPERTY
TYPICAL OF NEW ASKAREL
SAMPLE FROM TRANSFORMER USED 2 YEARS
SAME SAMPLE AFTER EARTH TREATMENT 1 HOUR WITH \% OF EAR!
PF., 100C.
CO Cycles
` 1 to 2j<
PF., 100C. 1 Kc.
0.2%
Resist. 100C Ohm-cm. x 10 500 to 1500
150#(dissipation factor)
15*
6
1* 0.1* 2600
Dielectric Strength 25C
45
Moisture ppm. 25
Acidity mg. KOH/g. 0.01
40 80
0.02
45 20
0.005
Color APHA
70
--........ . '
1000 -87-
275
0V32688
TOWOLDMONOQ32361 WATER_PCB-00016830
In the above case It was determined that a varnished insula
ting material used in the transformer was the source of contaminate
Since this continuously dissolved in the askarel, obviously, removaj
of the fluid, followed by earth refinement and refilling the trans
former accomplished nothing. The situation pertained at the time
of the initial fill persisted until the deleterious component was
removed.
Newly built or rebuilt transformers using acceptable materials
of construction often contain undeterminable traces of impurities
and "dirt" which effect power factor and resistivity, but can be
removed by repeated flushing with clean askarel. The following
Table XII compares the properties of the askarel sampled after the
initial fill with similar values after earth refinement and "soakint
or flushing the transformer, twice with good askarel. After the
"dirt" or contamination was removed from the transformer the askarel
fluid remained in good condition in the unit as shown in Table Xll. |
TABLE XII
PROPERTY
SAMPLE AS RECEIVED
AFTER TREATMENT
Resistivity @ 100C.
30 x 108
2600 X 10e
Dielectric constant @ 100C.
3.9
Power Factor @ 100C., 1000 Cycles 2$.
3-9 0.27%
Moisture
60 ppm.
25 ppm.
Moisture solubility in askarel at 2&C. is about 110 parts
per million and the specification for new askarel allows a maximum
of 30 parts per million of water.
<H3?6S9
Essentially, moisture-free askarel was found by Clark to have
a dielectric strength of 70 KV. With Increased amounts of dissolved
-88-
TOWOLDMON0032362 WATER_PCB-00016831
water the dielectric strength gradually decreased and appeared
to level off at a value of about 38 KV when the water content
reached 80 parts per million.
Water exceeding tne solubility limit in asicarel has a marked
adverse affect on the power factor and resistivity of the dieleof.r.:
fluid, which mey, however, maintain its high breakdown strength
even though water accumulates as a separate phase on the Eurface.
Undissolved moisture can be removed readily from transformer
askarel by warming the fluid to 70"C. and blowing with dry nitrcger
or by treatment with dry, conditioned earth and filtering through
a press fitted with dry filter papers or through an earthen,
cartridge type filter.
As indicated previously, moisture must be kept out of askarel
transformers by using adequate gaskets, as described in Chapter 3,
and preferably sealing the device with dry nitrogen over the
askarel.
Mineral oil is soluble in these fire-resistant transformer
askarels and is regarded to be a contaminant. Petroleum hydro
carbons cannot be removed from askarels and the permissabie
amount may not exceed 2 percent by volume lest the fire-resistant
values of the askarel is imp'aired beyond acceptable limits ,
.
Possible contaminants in transformer manufacture include
welding and solder fluxes, oils and greases, bituminous materials,
pipe thread lubricants, and contamination from bushing and pot
head compounds. Paint or varnish coatings must not touch the
interior of the transformer shell. Adhesives or coatings applied
to gaskets must not touch the interior of the transformer,
-89-
O'llPfcfaO
TOWOLDMON0032363 WATER_PCB-00016832
All natural or synthetic rubber plastics or polymeric
materials, resins, varnishes and lacquers and adhesives must be
regarded as contaminants unless included in the very few acceptable classes and proved suitable by actual testing.
It is disappointing to find an askarel transformer manufacturer exercising precautions against contamination, and employing earth
refinement, and yet inadvertently using a neoprene or other
objectionable hose line to transfer the fluid economically!!
If flexible hose needs be used, it should be a flexible stainless
steel type or a "rubber" hose lined with Teflon. When using any of the following suggested suitable materials
of construction, it is prudent to employ appropriate control evalua
tion tests to be certain that the given material within a class regarded as acceptable will meet the requirements from a physical and electrical standpoint.
TABLE XIII ACCEPTABLE MATERIAL FOR CONSTRUCTION OF ASKAREL TRANSFORMERS Structural Materials and Fillings
Metals - Commonly used metals including steel, copper, " ~ aluminum, tin and brass are suitable if clean.
Wood - Suitable if dry and free of natural gums and ~ resins.
Paper - Suitable PresB Board - Suitable
Cotton - Suitable Asbestos - Suitable
Glass - Suitable Ceramics - Suitable
u<i3^<>61
Phenol-formaldehyde resins - Suitable if adequately cured. -90-
TOWOLDMON0032364 WATER_PCB-00016833
Melamine-formaldehyde resins - Suitable if adequately cured.
Cellulose acetate - Suitable
Cellulose tri-acetate - Suitable
Cork - Suitable
Gasketing Materials and Adhesives
Metals - (As above)
TeTIon - Suitable
Silastlc (silicone) - Suitable if adequately cured.
Polyurethane - Suitable if adequately cured.
Cork (fine grain and bonded with phenolic resin) - Suitable, but susceptible to penetration by askarel.
Nitrile rubber - Sometimes used for gaskets - but susceptible ' to attack by askarel.
Cork Nitrile rubber - Often used
Dewaxed Orange Shellac - Suitable
Epoxy - Suitable if adequately cured.
,
Isocyanate - Suitable if adequately cured.
Tar.es and Wire
Insulation
Cotton - Suitable
Paper - Suitable
Asbestos - Suitable
Glajss - Suitable
Rayon - Suitable
Cellulose acetate - Suitable
Teflon - Suitable
Silicone - Suitable
-91-
0rt?bb2
|
TOWOLDMON0032365 WATER_PCB-00016834
Surface Coating for Transformer Exterior Baked Phenol-Formaldehyde - Suitable Baked Melamine-Formaldehyde - Suitable Baked Epoxies - Suitable Polyurethane Coatings - Suitable
Surface Coating for Interior of Transformer Shell to Prevent Rusting In Storage
25 parts Aroclor- 5460 dissolved In 75 parts lacquer thinner.
The need for clean shop practice and avoidance of contaminating
influences when building askarel transformers Is emphasized by the
following information submitted by a highly qualified manufacturer
to indicate the condition of askarel sampled from normally opera
ting apparatus after a number of years service. Fluid sampled
from the top and bottom of at least 25 askarel transformers operatln
satisfactorily in different part of the country was analyzed,
comprehensively. The following general conclusions were drawn:
!
1. The residual condition of the askarel samples for the
most part was satisfactory, but in a few instances excessive
dirt or sediment was noted.
2. Moisture content ranged from 19 to 61 parts per million with most samples between 25 and 35 ppm. This reflects a very good degree of dryness.
I '
3. Acidity values were all below 0.01 mg. NaOH/g., which corresponds with the level of freshly made askarel.
-92-
` ............
TOWOLDMON0032366 WATER_PCB-00016835
4. In most oases the free chlorides did not exceed 0.1 ppm., the specification limit of new askarel. The highest reading was 0.15 ppm.
5. Dielectric strength values ranged from a maximum of 46 KV to a minimum of 28 KV which values are considrea satisfactory.
6. Volume resistivity at 100C. ranged from 20 to 75 x 108 Ohm-cm. which is considered to be satisfactory and may be compared with the specification for new askarel at 100 x 10s 0hm-cm., minimum.
7. Power factor values at 100 C. and 60 cycles ranged from 19 to 75 percent with most samples below 60 percent.
Prom the above data considered typical and satisfactory relative
to all of these askarel transformers operating in a normal manner,
it is seen that under satisfactory service life the resistivity of
the askarel will decrease and the power factor will increase, as
indicated, from similar values of fresh askarel.
These observations emphasize the need for askarel transformer
makers to:
1. Earth refine the askarel immediately prior to use
in order to arrive at the highest practical electrical
values from the fluid.
.
2. Avoid construction materials which are a source of contaminate
3. In using acceptable and satisfactorily tested construction
materials - to flush the transformer to remove traces of
contaminating Influences and "dirt". -93-
(M3?66'i
TOWOLDMON0032367 WATER_PCB-00016836
CHAPTER 11 REWORKING CONTAMINATED TRANSFORMER ASKAREL Normal Conditions Askarel contaminated during manufacture of the transformer or after years of -normal service life should respond very readily to refinement by treatment with a few tenths of a percent of dry Fullers earth, or Attapulgus clay. This was discussed in detail in previous chapters. About askarel transformers, after years of normal service life and having continued satisfactory performance, question (difficult to answer) arises as to how high may be the power factor. Also, how low may be the volume resistivity. The case histories given in the preceding chapter seem helpful in arriving at an answer. Doble Engineering suggests to their clients that, "When used askarel is found to have a power factor of 2.0 percent or more, the cause of high power factor should be determined." (This refers to power factor measured at 20C. and 60 cycles.) Doble qualifies this suggestion stating, "If the high power factor is caused by water or other conducting matter, free chlorides or high neutralization number, the askarel is probably an operating hazard." Also, "If the high power factor is not due to these causes, it is probably not an operating hazard except that when the power factor is quite high, it may result in excessive heating of the device in which it is used."
'
-9*1-
041?6t>S
TOWOLDMON0032368 WATER_PCB-00016837
Since heat resulting from power factor increase of the
askarel in most any commercial transformer is negligible compared
with heat generated by the core of the transformer, this considerateo
does not appear important.
If the suggestion were limited to a 2 percent power factor,
it would appear low and probably subject to considerable objection.
However, when stated as 2 percent or more, the intention and purpose
of this suggestion justifies earnest consideration, although in
absence of more knowledge, it appears that conclusive answer to
this question is not at hand.
However, it should be apparent that when the' power factor
of the askarel is 2, 5, or 7 percent or higher at 20C. and 60
cycles, and volume resistivity at 100C. is 20 x 108 Ohm-cm.
or lower, contamination Is present. As it is likely that such
a condition can be rectified by simple earth treatment and filtra
tion, there should be little question about desirability of
doing this purification work to assure the best possible perform
ance of the transformer.
.
Arced Conditions
It is fortunate that there seem to be very few cases of
'
significantly arced transformer askarel, as it is difficult to
estimate the possible success of reclaiming the fluid. Particularly,
it is not easy to lower the free and also the after corrosion
chloride levels within the extremely low specification limits
for now askarel.
-95-
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TOWOLDMON0032369 WATER_PCB-00016838
Treatment with dry earth as usually used to refine contamina ted askarel, probably will not rectify arced askarel. Special
refinement, including hydrolysis of the spent scavenger material,
water extraction of excess chlorides, treatment with wet earth,
special drying and finally treatment with dry earth is required.
The following example is considered typical:
During routine testing of a transformer filled with askarel, a short occurred in the winding, and the arc resulted in formation
of easily seen carbon particles in the fluid. The following
shows the ineffectiveness of dry earth treatment and the need
for wet or water treatment to reclaim a sample of this material in the laboratory.
Passing the damaged fluid through filter paper failed to remove the carbon. The carbon was removed by filtering through
paper fitted with a one-half inch pad of Attapulgus earth. At
this stage, analysis Indicated the following pertinent properties
as compared with the specification limits:
PROPERTIES OP TRANSFORMER ASKARELS
'
Specification
Sample
Inorganic chlorides Acidity, mg. KOH/g. Moisture ;
0.01 ppm. max. 0.010 max. 30 ppm. max.
0.25 PP. 0.004 75 ppm.
Then 0.2 percent by weight of Attapulgus earth was added and
the mixture held at 90C. and agitated for two hours and filtered. This reduced the water to 15 ppm., but the chlorides remained at
0.25 ppm. Another portion of the original sample was treated with 0.5
percent of earth, held at 50C. and agitated for two hours and filtered. This lower temperature treatment reduced the water to
only 60 ppm. and the chlorides remained at 0.25 ppm.
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TOWOLDMON0032370 WATER_PCB-00016839
At this stage, the electrical properties were determined and
found to be well within specification limits.
Property
Specification
Sample
Resistivity @ 100C. x 10 Ohm-ctn.
Power Factor @ 100C. and 1,000 Cycles
100
--
576
o
1 1--
Co
00 -sr
i
CO
on
Dielectric Constant @ 100C.
4.2
The above reclaiming tests were repeated using "wet" earth
which contained 15 percent moisture. Again, the chlorides remained
at the original level of 0.25 ppm., well out of specification.
Then a sample of the askarel was extracted with water, using
20 percent based on the weight of the dielectric fluid. This
reduced the chlorides to 0.15 ppm., and a second aqueous extrac
tion using 10 percent of water was required to reduce the chlorides
to no detectable amount. The excess moisture was then removed
by blowing with dry air and finally filtering through dry earth
and filter paper.
Although transformer askarel is several times as expensive
as mineral oil, the material is not a'high cost item. Therefore,
the economies of undertaking work as described above must be ,
weighed against the cost of new askarel.
,
in any event a fair estimate of the reclaiming cost plus
packaging, shipment to location for the work, the cost of several
analyses involved, then repackaging in new containers and cost
of return freight will indicate at least 50 percent of the cost
of new askarel. Accordingly, usually the most practical expedient
is to purchase new askarel to replace the arced material:.
TOWOLDMON0032371 WATER_PCB-00016840
CHAPTER 12 DERMATOLOGY AND TOXICOLOGY
Skin Exposure
Aroclors, or askarels, accidentally spilled on the
skin do not cause an acute toxicity hazard, nor will they
cause serious irritation. The materials should be washed
from the skin with soap and water. Prolonged skin contact
should be avoided. If work clothes become impregnated with
these fluids, they should be removed and washed.
When sampling tank cars, canvas gloves and Bafety
glasses, or goggles, should be worn. No special clothing
is required, but the workers' garments should be laundered
at least weekly and changed, if Aroclors or askarels are
spilled on the clothes.
.
If accidental burns occur from contact with hot askarels,
the burn should be treated the same as any ordinary burn.
Aroclor, or askarel, adhering to the burned area need not be
removed immediately unless treatment of the burn demands it
in which case, soap and water, or repeated washings with a
vegetable oil should be used. Accidental contact with the '
eyes results in painful irritation, but not permanent damage
to the tissues or the sight. In event of such contact, the
eyes should be flushed with a large amount of water for at
least 15 minutes. The patient should then be referred to
a physician who will treat with an ointment to soothe the eye.
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TOWOLDMON0032372 WATER_PCB-00016841
Exposure to Vapors
Vapors from hot Aroclor, or askarel, have a degree of
toxicity and should not be inhaled over a prolonged period
of time. Experimental work on animals indicates that the
maximum safe concentrations of vapors in work rooms is in
the range of 0.5 to 1.0 mg. per cubic meter of air. Harmful
amounts of the materials are readily detectable by odor and
irritation to the eyes. Usually, people can detect concen
trations of askarels in the amount of 1.0 mg. per cubic meter
of air, which is the level regarded as the safe work room
limit for an 8 hour day exposure.
Capacitor impregnations may be done at temperatures as
high as 266F. (130C.). Following impregnation and draining
the chamber, exhaust ventilation should be applied to the
chamber to prevent askarel vapors entering the work room.
Also, when opening a heated capacitor Impregnating chamber,
the workmen should wear a respirator during this short interval
of exposure.
If transformer askarels are used at temperatures above
125 to 150F. to fill an open transformer, exhaust ventilation
should be provided in the immediate area,
The many years of satisfactory and safe use of Aroclors,
or askarels, by the electrical industry for impregnating
capacitors and filling transformers has demonstrated the
industry's ability to handle these fluids without hazard to
the workmen.
0437670
It is both simple and in line with "good housekeeping"
and personal cleanliness to exercise the suggested precautions
in all cases.
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TOWOLDMON0032373 WATER_PCB-00016842
Vapors from a Severely Arced Askarel Transformer
Experimental data indicate that when askarel is decomposed by an electric arc, insignificant amounts of chlorine and phosgene gas are liberated. The gas is almost entirely hydrogen chloride, which is readily detectable by its odor and its irritating characteristics in even small amounts. Thereby, adequate warning of its presence is provided and significant amounts of fumes would be likely to cause a hazard only in a closed area. Individuals would not voluntarily expose themselves to serious toxic levels of the hydrogen chloride gas fumes.
-100-
TOWOLDMON0032374 WATER_PCB-00016843
Vapors from a Severely Arced Askarel Transformer
Experimental data indicate that when askarel is decomposed by an electric arc, insignificant amounts of chlorine and phosgene gas are liberated. The gas is almost entirely hydrogen chloride, which is readily detectable by its odor and its irritating characteristics in even small amounts. Thereby, adequate warning of its presence is provided and significant amounts of fumes would be likely to cause a hazard only in a closed area. Individuals would not voluntarily expose themselves to serious toxic levels of the hydrogen chloride gas fumes.
100-
043?677
TOWOLDMON0032375 WATER_PCB-00016844
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