Document O3zk2BmGLepY0vx68gDoZJEgM
ELiCTHIC
GENERAL ELECTRIC COMPANY, *70 LEXINGTON AVENUE. NEW YORK. N. Y. 10022
Phon* (212)
technical
RESOURCES
SUBJECT: Benefits of PCB Use
December 30, 1971
Dr. Edward J. Burger, Jr,
'
Executive Office of the President
Office of Science and Technology
Room 4224, New Executive Office Building
Washington, D. C. 20506
Dear Dr. Burger,
.
Accompanying this letter Is a statement descrlting the benefits to the public arising from the use of polychlorinated biphenyls in the electrical Industry. It is submitted in response to your invitation to prepare material for the consideration of the Office of Science and Technology in supporting the work of the Interagency Task Force on PCB.
Whereas there is a growing body of literature on the wide dispersal, toxicology, and ecological significance of this class of materials, nowhere do we find adequate treatment of the unique proper ties which have occasioned its use in electrical apparatus, nor of the advantages of safety, reliability, and economy which have ensued. Our paper is offered to help remedy this lack and thereby assist in arriving at a balanced comparison of pxfclic risk with public benefit.
There is ample indication that the environment carries a significant burden of some forms of PCB. This burden derives, we believe, in some measure from the untutored waste disposal practices of the recent past, but principally from the nonelectrical uses (e. g., as plasticizers in paints and plastic materials and as hydraulic and heattransfer fluids in industrial machinery). It is our belief that the pattern of restricted use, process control, and waste disposal engineering now being put in place by voluntary Industry initiatives in the U. S. and England will, if adopted also in other PCB-producing countries, prevent significant increase in this burden. The key feature of this program is to limit
HONS 207047
GENERAL^ ELECTRIC
Dr. Edward J. Burger, Jr.
-2
December 30, 1971
application to sealed electrical apparatus. Our calculations indicate that tho portion of electrical PCB possibly reaching the environment from field disposal and repair activities is being rapidly reduced and may be already below 1 percent of total electrical industry usage in the United States. In the near future, this class of waste should be the only category remaining, as effluent from manufacturing plants approaches zero and the nonelectrical applications are cut off at the source. The residual field waste from electrical apparatus is itself subject to further improvement, and ways to accomplish this are now under study by the C -107 Committee of ANSI. If these efforts succeed in preventing an absolute increase in such discharges as the power industry continues to grow, the contribution to the nation's total environmental burden would be so low as to require more than a thousand years to double the burden.
To the extent that this assessment is confirmed by further study and future developments, it would appear that we need have less, concern for the technical problem itself than for the possibility of legislation or regulatory rulings which fail to take into account the special circumstances of electrical industry usage or the public benefits which would fall victim to any undifferentiated prohibition of PCB use.
The attached report has been prepared by a team of General
Electric scientists and engineers in less than two weeks, in accordance
with your recommendation of a preliminary document at the earliest
possible moment. Accordingly it is neither exhaustive in its treatment
nor completely consistent in the format of presentation for the various
applications involved.
Please let us know if you or your colleagues desire more information on any of the points covered in the statement, or clarification of any obscurities, and we shall do our test to supply the deficiency. Thank you for the opportunity to introduce consideration of PCB benefits into the deliberations on this important public question.
JFM/rs Att.
WV
I J-r/n,-- i
ijpeiy * * ! I iF'f
V/j. F. McAllister
Manager-Product Quality Corporate Executive Staff i General Electric Company
MONS 207048
I -3-
IHTR0DUCTI01T
Fol'chlorlnated blphenyle (FCB) have baan uaad In a vide
variety of Induatrlal and eonauaar appllcatlona ovar tha paat 40
yaari, but It vaa only racantly that avldanea began to appear that theaa material* had bean widely dlaparaad throughout the environ
ment. By latter dated February lg, 1970 tha Moneanto Company,
a
aola US producer of FCB'a, notified ell of Ita cuetomere of'tha
potential problem of environmental contamination" by theaa llqulda and recommended "that all poaelble care ahould be taken in tha
application, proceeelng, and affluent dlapoael of theaa producta
to prevent them becoming environmental contamlnanta." Moneanto
haa begun a program to dlacontlnue aalaa of FCB'a for uaa in palnta,
plaatlclaara, epaclalty lnka, adhaalvaa, paper coatlnga and all
other opan-ayatem appllcatlona.
`
Tha Moneanto Company haa declared, however, that It will
continue to aall FCB'a for cloaed-ayatem electrical uaaa. Thla declalon la a tacit recognition of tha Important role that FCB'a play In tha aafa, reliable, end efficient delivery of electric power from the generating plant to tha uaar. In tha apete of
publlahad raporta and atatamanta that have appeared in recent
f
yeara on FCB'a there haa bean no meaningful axpoeltlon of thla role
of FCB'a In electrical equipment -- why, where, and how they are
uaad; what eltarnetlvea are available; and what tha conaequencea
would be to the uaara of auch equipment If FCB'a ware no longer avr.llable. Ua hope that thla report will provide ouch an
*w*%*a l,F 4 a*
MONS 207049
-4JWCKCROUHD
PC*'* Are ued by tha elactrlcal induatry a* components f
cartaln cypaa of transformers and eapacltora. Tha nature and function of thoaa davlcaa ara da'acrlbad In tha aaparata aectlona
of thla report davotad to than. At thla point It la sufficient
to aayi
'
1, Tranafornara ara davlcaa for converting alactrleal
power froa one voltage and currant level to another
and tha conducting perta of thaaa davlcaa auat be
separated froa .each other by a suitable Inaulatlng
*aadlua*
2* Capacitora ara devleee for atorlng electrical energy
through tha phyalcal aaparatlon of charged aetel aurfacaa by an Inaulatlng medium.
Prior to 1930 tha most coaaonly uaod Inaulatlng aedlua waa alnaral oil. Tha aarly 1930'a aav tha coaaarclal davalopaent of Inaulatlng liquids that vara mixtures of aynthatle chlorinated aro-
aetlc hydrocarbona, principally varloua polychlorinated blphenyla.
By controlling tha eoapoaltlon of theae alxturaa, the aanufncturer could obtain daalrad coablnatlona of theraal, chealcal and dielectric propertlaa that reaultad in Inaulatlng liquids with auch greater
oxidation and flra raalatance than alnaral olla. During the paat 40 yaara theae liquids have becoae widely uaed in cartaln cypaa
of tranaforaara and eapacltora and bra racognlaed aa a dlatlnct
claaa of Inaulatlng aetarlala dealgnated by tha International
'
tern "aakarel". The definition of tha tara *'aakarel", the composi tions- of tha liquid that eoaprlaa thla claaa of aetarlala, and the varloua tradeaarke by which they are known eoaaarclally are described
In tha following section heeded'"Aakarel".* _
MONS 207050
-5Tho particular askarels used in transformers and capacitors
are different; so also ere the reasons for, end the extent end -
consequences of, their use In these two types of electricel equip
ment. However, certain general comments can be made et this point
concerning their use in both types of equipment}
1. .`.skarel-insulated transformers end capacitors are
delivered to customers as sealed units from whleh
there Is no escape of askeral under normsl operation
during their expected lifetimes of 10 to more than 30
*
years. Hovevor, certain types of equipment failures
can rupture the case and permit the loss of some
askarel to the environment. Such failures occur
at a rate of about 0.02X of the units In service
per year,
2. fCB's can get Into the environment during the menu-
*
facture, delivery, Improper use, maintenance, repair,
and disposal of transformers and capacitors. In
' sddltlon to specific control measures Instituted
by Individual menufecturere and recommended by
them to the equipment users, the American Rational
Standards Institute has established ANSI Committee
C107 on Use end Disposal of Askarel Used in Electrical
Equipment. Its memberships (see Appendix 1) Is
divided Into separate working groups on transformers
- and capacitors whleh will recommend national standards
end procedures necessary to prevent the loss of fCB's
to the environment et ell stages from equipment
t
manufacture through.ultimate, disposal.
e
3. The record of reliable end safe performance that
_________ eskarel-lnsulsted transformers end capacitors hsve
HONS 207051
"6compiled during Che past, four decade* is reflected in Che various codes, standards, and regulations th'at now effectively require or encourage the continued use of esksre1-Insulated equipment in any applications*
HONS 207052
I -7A$ KAREL
Pc CInltlons'
1. A Synthetic nonflammable Insulating liquid which, when
decomposed by the electric ere, evolves only nonflammable gaseous
mixtures.
. '.
(From the Netlonel Electrical Code 1971 end the
American Netlonel Standards Institute C-42 series,
"Definitions of Electrical Terms.")
2, The tern asksrel generally describee widely used,
broed class of nonflemma'ble synthetic hslogeneted hydrocerbon
e
insulating liquids used ss electrical Insulating media.
Askerels of various compositional types are used. Under
arcing conditions the gases produced, while consisting of predonl.
nsntly non-eombustlble hydrogen chloride, can yield varying amounts of combustible gases depending upon the eskarel type.
Insulation systems Incorporating these sskerels end
celluloslc or other organic materials may, when arced,
*
gaseous mixtures which are moderately flammable*. <, . */
(From ASTM (American Society for Testing end
produce
t
Materials) Method D 2283-71, Fart 29, 1971 issue;
will also appear in the 1972 issue of the IEEE
(Institute of Electronic end Electrical Engineers)
"Guide for Acceptance and Maintenance of Transformer _o
Askerels in Equipment.", Adoption was also recommended
to the International Electrotechnical. Commission by
Its Subcommittee 101 (Insulating Liquids Other then Hydrocerbon Oils) 'of Committee 10 (Liquid end Gaseous Dielectrics) as reported In Item number 9 of minutes
l 'A4(SC^10B *..Merch,,1971.
HONS 207053
Polychlorinated biphenyls are derivatives of the hydrocarbon,
biphenyl, which haa the chealcal fornula C12H1(). From one to ten
of the hydrogen atone la a aolecule of blphonyl can be replaced
by chlorine atoae, end the chemical Identity of the resulting
chlorinated compound depends both on the number of chlorine atone
that have been Introduced Into the aolecule end on the specific
sites In the molecular structure et which they ere Introduced.
The commercial material aanufectured by Monsanto under Its
registered trademark Aroclor consists of mixtures of these specific
chlorinated compounds. They ere usually Identified by the weight
percent of chlorine In the total mixtures, e.g. Aroclor 1254 con
tains 541 chlorine. The Aroclors commonly used In the electrical
Industry are Aroclore' 1260, 1254, and 1242.
,f Aroclor 1242, used primarily In capacitors, contains about
71 of pentachloroblphanyls and higher. In September 1971 Monsanto
Introduced a new capacitor-grade askarel, Aroclor MCS-1016, which
Is essentially Aroclor 1242 that has been specially proceesed to
reduce the content of pentachloroblphanyls and higher to lose than
i/
*
0.4X.
As a general rule, the nonflammability of liquid FCB's, their
vapors, and their are-formed gaseous products Is greater the higher
the degree of chlorination of the liquid. Studies by Monsanto
suggest that the resistance of FCB's to degradation In the environ '*
ment may also Increase with Increasing chlorine content* Analytical
methods for low levsle f-FCl'a (reported In parts per million or
parts per billion) In marine, aquatic, and wildlife environments
do not always Identify the specific compounds that ere present,
but In Its letter of February 19, 1970 to Its ouatomers, Monsanto
stated' thst "FCB's with,a chlorine content of less then 541 have
HONS 207054
-9-
not been found in the environment and appear to proeent no potential
problem to tha environment."
Trademarks
`
''
t
Tho following tradonarka are uaed by cloetrlcal manufacturer*
to designate the askorels usod ip their products!
Manufacturer
Trademark
AtrovoK i
.
Allis-Cbalmers .
Hyvol Chlorextol
American Corp.
Abestol
Cornell Dubilier
Dykanol
General Electric
Pyranol
Kuhlman Electric
Saf-T-Kuhl
Slemex
Sangamo Electric
'
Disc lor
Wagner Electric
Noflamol
Westinghouse Electric
Inerteen
Toxic and Biological Effect* of PCB'a
Systematic investigations of the toxic and biological effects
of FCE's have been undertaken only within the past few years, and
the description and evaluation of the results is beyond the scope
of this report* Some investigators suggest that reports of certain
toxic reactions may be ceused by highly poisonous compounds (e.g.
chlorinated dlbensofurans) found to be contaminants in some PCS
preparations* In the United States, medical records show that
over a nearly 40*year period the only adverse health effects
experienced by US workers exposed' to PCB's, either during the
manufacture of these liquids or of electrical equipment containing
these liquids ,have been limited to occasional eases of non>chronlc * t*
chloracno or other temporary skin lesions or irritations*
HONS 207055
-10TRANSFORMERS
Definition ,
. ..
A transformer ! device for transferring electrical energy from one
alternating current circuit to another fey electromagnetic means. It haa no
moving parte and performs lte function fey linking two electric current
carrying circuits (the coils, ^usually copper wire} via a comon magnetic
v *'
flux carryIng-circult (the core, usually a special gradesf Iron). A
transformer may be designed to effect a change In voltage or current from
one circuit to the other or simply to ofetaln elcctrifesl energy from one
electrical circuit without making a conductive connection between It and a
second electrical circuit,
-
The transmission of electrical energy from one point to another Is
t
essentially tho transmission of a retired number of kilovolt-amperes (kvs).
By Mans of transformers the kva's may fee generated at a low voltage suitable
for the windings of generators, stepped up to higher voltages and lower
currents suitable for transmission of electricity over long distance wires,
snd then at the desired destination stepped down to a lower voltage and
larger current suitable for utilisation fey electrically powered equipment.
The almost universal use of the alternating current system for the trans
mission and distribution of electrical energy la largely due to this ability
of transformers to link up circuits of different voltages and currents. Thus
the generator, the transmission lines, the secondary distribution system, and
finally the great variety of ultimate loads can each fee operated at the vol ,/
tage most suitable to Its particular function. Without this unique ability
of the transformer to adapt the circuit voltage to the Individual require
ments of the different parts of the system, the enormous development and
progress
In
the
transmission
and * distributiof n
of
electrical
energy
during
the past 60 years would udt have been possible,
~ HONS 207056
-11Why Asksrels are Used in Transformers
The coll* end coro of most transformers ere enclosed in tested me tel
tsnks thet ere filled with en Insulating liquid, ususlly mineral oil. Under
certeln conditions of sudden power surges high-current electric ercs ere
producod Inside the transformer which cen generste end ignite flesmable end
explosive ges mixtures formed from the mineral oil end other celluloelc In-
"**
sulstlng components In the trensformer* '
,,
Beceuse of the nonflammablllty of liquid sskerels, their vapors, end
their erc-formed geeeous products, trensformer* filled with etkerels ere
free of these fire end explosion hazards end may be used In locations whers
fellures of oll-lnsuleted transformers would present e potential danger to
life end'property. This safety factor Is the only advantage thet askarel*
Insulated trensformers have over oll-lnsulated transformers of the seme site
end rating. The density of sskerels Is about 1.7 times thet of mineral oil,
so askarel-lnsulated trensformer* ere heavier than their oil-filled counter
parts. Askerels themselves ere more expensive than mineral oils, end their
solvent characteristics require the use of more expensive Insulation compo
nents on the Internal parts of the trensformer, so the complete units ere
more expensive.
As a consequence, askarel-lnsulated transformers have captured only
those market applications (less than 51, hut growing) where considerations
of safety and reliability are paramount. Their use In such applications Is
usually required or encouraged by the provisions of electrical codes, fire
underwriting policies, or governmental regulations.
#
Wote: Prior to the add-1950's the liquid used In askarel-lnsulated
transformers was a 50-50 weight mixture of Aroclor 1260 (60S chlorine) with
trlchlorobcntenes; then the benzene component was changed to a mixture of
trl- end tetrachlorbcnzenes; and I*n 1971 the Aroclor component was changed
to Aroclor 1254 (541 chlorine)*
-'
_
HONS 207057
-12-
Types and Application) of Aakarol-Insulatcd Transformers
Thoro iri two broad clasc1 float Ion* of transformer: power
transformer*, which aro usod to step up voltages; and distribution
transformors, which n used to *tp down voltages, Tha many typos
of transformer* that are Included within these two classifications
era listed in Appondlx 2, The applications that accompany tha
listing apply only to those unit* of a given type that are manu
factured with askarel a* the insulating liquid. Meat unite of-
tha typos Hated are still oil-insulated.
We estlmata that tha total number of askarel-insulated units
that have baen put into service in the United States since 1932 is
125,000, and virtually all of these units are still in service,
The lifetime-before-failure is often longer than 30 years, and
almost all units that do fall are rebuilt and returned to service.
Tha current production rate of new askarel-insulated transformers
units is about 5,000 par year,
.
Most of these transformers are located inside public, commer
cial, or industrial buildings; on tha roof tope of such buildings;
or in close proximity to such buildings, and require no special
enclosures other than what are necessary to prevsnt accidental
haaardous mechanical or electrical contact of persons with the
equipment* However, the National Electrical Code does specify
vault# for the Indoor installation of askarel-insulated transformers
rated more than 35,000 volts* Askarel-lnsulatsd transformers are
,4
limited by the electrlal properties of these liquids to ratings
below 69,000 volte*
'
The amount of askarel used in various types of transformers
ranges from 40 to 500 gals. (516 to 6,450 lbs.) with an average
of about 235 gals. (3,032 lbs,). During 1966, the last complete
"normal" year for the electrical industry, the total amount of
HONS 207058
-13l'Clt'e used 1 tran former! was approximately 1.3 million p.olloni (C.4 thousand tons).
Piciicnt Alternative! to Agkarcl-Insulated Trans formert
If TCB'c were Lo be no longer available for closed-syiten
electrical uses > as they are no longer available from Monsanto for
open.system applications - vhat alternatives to askarcl-Insulated
transformers could now be supplied by the electrical Industry, and
vhat would be the effect upon the user should sskere1-lnsulated
transformers no longer be available either as new or replacement
units?
'
..
The only present alternatives to askaral-lnsulatad transformers
are oll-lnsulatcd transformers or dry-type transformers (either
those open to the atmosphere or thoee that arc gas-filled and sealed)
i
'
A. 011-1nsulstcd transformers
' 1. If one disregards safety considerations, there sre
no technical reasons why oll-lnsulsted transformers
could, not be directly substituted for asksrol-lneulatcd
transformers. The also of the unit'would be unchanged;
. . the weight end cost would be lessj
2, There ere legal' restrictions' to such a direct
substitution*
_
, , a* Some local regulations (e.g. Chicago) prohibit
* the use of oll-lnsulatcd unite In certain locn- '
clone whoro aakarol-lnsulated unite are allowed,
b. Where oil-lneulatod transformers would not be
specifically prohibited oe^on-elto replacements
for asUsre1-insulated units, the National
.Electrical Codo imposes special restrictions
*
*
upon their uodc of installation* Although
HONS 207059
-14-
3 5000 volet mutt bo installed In vaults,
til o11-lntultted Crtntformer require vaults,
except that eltornetive fire protection srrsnge-
nente tre permitted for unite rated not over
600 volts. Assuming that specs were evellsble
Inside en existing building to accommodate
these special auxiliary safety provisions,
the cost of their construction could range
from $5,000 to $50,000 per transformer,
c. Oil-Insulated units can be Installed outdoors
. if they are suitably Isolated from flammable
structures or If these structures are suitably
safeguarded against fires originating in the
. transformers. The power output must then
be brought to the point of use inside the
building via cables or Insulated buses, and
the eoet of cable and bus Installation could
also range from $5,000 to $50,000 per trans
former* The outdoor transformer would have
to be of a higher rating than the Indoor one
It would replace because of voltage drop and
- consequent power losses la the cable or bus
. rums.
i g. Pry-type transformers
,
In most locations, dry-type transformers (either those
open to the atmosphere or those that are gas-filled
and sealed) eould not be directly substituted for
ssks'rel-insuleted'transformers. There are several
- restrictions to such a dlroct substitution:
r r
- HONS 207060
-15-
1, The provision! of Che National Electrical Code
ere more stringent for certain cleeeee of dry-
type tranifoneera then for comparable liberal-
insulated units.
'-
2. Present technology' Is not available for design
ing and manufacturing reliable dry-type trans
formers above
KVA end/or 15 KV.
5, The reliability of dry-type transformers Is lass
than that of comparably rated llquld-lnsulated
transformers* Oil- and aakarel-lnsulated units
show muchgreetor resistance to switching end
lightning surges then do dry-type units. An EE1
survey of failures In network transformer banks
showed e 71 per year failure rate for dry-type
units comparod to 0.21 for llquld-lnsulated
units* Furthermore, llquld-lnsulated transformers
have e much greater overload capability. Many
llquld-lnsulated units can sustain a 1001 over-
load for 8 hours and e 2001 overload for 2 hours. t
These transformers ere able to maintain continuity
of electrical service during periods of tsmporery
outage of related equipment* ,
4* Some dry-type transformers ere larger by 10 to 301
then comparably rated llquld-lnsulated units, end
(
moat ere more expensive.
t
*
5, Dry-type trensformere are noisier by 5-10 dg then
ere llquld-lnsulated transformers.
t. Seceuso their Insides require regular cleaning, .* . the maintenance costs for open dry-type transformers
arehlgher then those for seeled dry-type transformers
HONS 207061
or for liquid-insulated transformer, which arc
also sealed.
7. Open dry-type tranaformera, which are cheaper * than sealed dry-type transformers, cannot bo
used in certain corrosive or hatardous atmospheres,
e. g. on furnaces or on electrostatic precipitators
near hot stacks.
*
Summary
.
1, For technical or legal reasons It would be Impossible
to replace most askarel-lnsulated transformers now
In service by oll-lnsulated units of equivalent
rating and reliability wLthout major construction
changes that would be required to compensate for
the fire and explosion resistance of the aakarel-
lnsulated units.
2. For certain applications and locations, dry-type
transformers could replace askars1-insulated trans
formers, but with a significant reduction In system
' reliability.
HONS 207062
-17-
CAPACITORS
Pc finitlon t A capacitor 1* a device that stores electrical energy, it
consists of two metal eurfecee or electrode# separated by an insulating medium euch a# air, paper, plastic film, or oil. When a voltage ie applied acroaa the electrode#, electrostatic energy i# stored in the insulating aadlua.
In typical industrial capacitore the electrode Material la aluminuM foil and the insulating aadlua or dielectric is paper tissue and/or plastic flla,which for aany applications la impregnated with a liquid dielectric. A liquid lapregnent la uaed to fill the volda within the paper or plaetlc flla structure, to fill the voids between sheets, end to contribute to the capacitance or charge* carrying ability of the coaposlte. Voids aust be ellalnated within capacitors that ere to be used above 200*300 volts, which exceeds ths dielectric breakdown strength of air.
In our definition of transforaers we eaphaslaed their importance In the transmission and distribution of electrical power (kilovolt amperes) froa the generating plant to the ultimate load. If the load were purely resistive (e.g, an electric heating element) no further Modification of the power supply deliverod to it would be required. Other loads (o*g* induction aotors) aay require that a portion of the kllovolt-aaperes delivered to thea be used to pro vide a Magnetising current, which does not contribute directly to the useful power output of the load. This portion of the total kva delivered to the load la designated as reeetlve kilovolt-amperes (kvars). It has bean found aore econoaleal to produce kvars from
' *4
total kva's noar the point of load rather than near the point of generation, and capacitors provide the aost efficient way of
HONS 207063
-18-
cffecting thi* tran*formation tc Che point of load. Why Aakarcl* are Ued in Capacitor*
Prior to 1930 noat liquid-filled capacitor* vara made with
ainaral oil* Tha aubaaquant aubatitution.o aakaral* for tainaral oil taada poaaibla algnlflcant taehnical laprovaaanta 1ft tha alee, reliability, and Ufa of thaaa capacitor**
A. Siaa Tha tingle aoat important propart/ of a liquid to ba uaad in a capacitor ia ita dialactric eonatant
(tha ratio of ita ability to atora alactroatatic
energy ralatlva-to air). Tha dielectric eonatant of capaeitor-grada aakaral (Aroclor 1242) ia 5.85 while
that of ainaral oil la 2*25* Whan capacitor tiaaue
la impregnated with the** liquid* the dialactric
*i
i
eonatant of the paper-liquid coapoaita la 6*1 for
, aakaral and 2.9 for ainaral oil. Furthermore,
bacauaa of the relatively clone aatch between the
dielectric conatanta ofcelluloaa, (8.8) and aakaral
(5.85), It la poaaibla to atraaa aakarel-*lapregneted
paper to 400-500 volta'/all*, while the atraaae* that
can be applied to comparable paper-alneral oil
capacitor* are Halted to 300-350 volta/all. The
combined effect of theae technical advantage* of
aakarele haa beam to peralt a reduction of capacitor . also* to leaa then 14X of whet theywere la 1924*
_ In 1985 e new dielectric ayatem conalatlng of paparpolypropylene flla-eakarel waa Introduced with atreaa
capability up to 900 volta/all. overall. Bealdoa . favorable atreaa dlatrlbutlona, the ability of aakarel
--------- -
* n. t ner*a aft'.-t he ,,d la 1 a c tr 1c atrength of polypropylene
HONS 207064
-19-
is partly responsible Cor this Improvement.
Reliability and life
Askarels are thermally and oxidatively mors stable
9
than alncrel oils, and dischargee, which can occur
In capacitors, ara less likely to generate gaaaa
Iron askarele than Iron mlnoral oils. The chsmlcal
stability of askarels In the presence of capacitor tissue and plastic films and the favorable stress distributions between solid and liquid referred to
above have made It possible to design low-coat
capacitors with a life expectancy of more than 10
.years life In lighting applications and more than
20 years In electric utility applleatlona. In
each application the first-year failure rates are
less than 0.2X, This lsvel of life and reliability
had not been achieved prior to the Introduction of '
askarels, Furthermore, the non-flammablllty of
askarala la greater than that of mineral oil, which
reduces the fire hasard that might otherwise
accompany those failures that result In' ruptura of '
the case.
`
Uhcreae the transformer manufacturer has had to
essentially "deelgn around" the properties of
askarels in order to be able to take advantage of
the safety factor that they Impart to hie equipment,
the capacitor manufacturer has been able to "dselgn with" the properties of askarala and obtain significant
technical improvements along with the Improved safety
* ** factor. As a.result askarels have virtually supplanted
mineral oils in mors than 90X of the power and Industrial
.e
V'11 * *
ihm J ^ ****** PI' w T*
HONS 207065
Hotc ;
I -20Prior to 1952 the liquid used In sskare1 -imprcgnated
capacitor* va* Aroclor 1254 (54% ehloTin*)} It vn then replaced
t
by Aroclor 1242 (42% chlorine), which ha* batter aleetrical propertle
and a* noted in the. "Aakarel" section, in September 1971 Monsanto
introduced new capacitor-grade askarel, Aroclor MCS-1016, which
1* a modified Aroclor 1242. Unlike askare1-lnsulated transformer*, the liquid in askare1-imprognated capacitors contains only Aroclora
and does not contain added chlorobanxenes.
Type* and Application* of Askar*1-impregnated Capacitors
The principal types of askarel-lmpregnat*d capacitors and
their applications aro described in Appendix 3. Almost 80 million
such capacitors sre manufactured annually, most of them for first
time use. Unlike transformers, capacitors are not rebuilt and,
returned to service after failure* They are disposed of (ee*
"Background" section, item concerning ANSI Committ* C107) and
replaced by new capacitors.
.
Capacitors used in lighting and air conditioning applications
contain 0*005 to fesftM gals. (0.05 to 1.0 lbs.) of askarel per
unit. The largest power capacitors' contain about 6.7 gals (77 lbs.)
of askarel* The most popular slse contains about 3.1 (36 lbs.)
9
The National llectrlcal Cod* requires'that any Installation of
capacitor* in which any single unit contains more than 3 galloqj
of combustible liquid shall be in * vault Ilka that required
for transformers. .During 1968, the last complete,"normal" year *
for the electrical Industry, the total amount of PCI's used in
capacitors was approximately 14.4 thousand tons.
HONS 207006
f*sit
1` r e ' < i' L A 1 nni' t 1 v r r. to A 1 1 ..u i 1 - T npi r, n.it^d Capacitors
. I rcu's were to be no longer available fur closed.system electrical uses -- ac they arc no longer available from Wonr-onto for
open-syatew`applications -- what alternatives to aekarel-imprcgnatcd
capacitor* could now be supplied by the olcctrleal industry, and vhat would be the effect upon the user should askarcl-imprcgnatcd
capacitors no longer be available cither as now or replacement units? Possible alternatives to askar el -itr.pr c gnat ad capacitors arc
copncitorn impregnated with mineral oil, or capacitors impregnated
with certain other liquids. I
A> Wineral Oil
-
-.
' Roplacement of aakarela by mineral oil would essentially
return capacitor technology to its prc-1932 level. Some
specific consequences of such a replacement would ba; 1. Safety. Kona of tha possible liquid alternatives
to askarels are nonflammable, and a fire hazard
' would be created by any capacitor failures that 1 were accompanied by rupture of the case. Presently
the use of copaeitors containing flammable liquid Is governed by the National Electrical Code *Articlcc
4C0 and SOI.
-
' a,- Size and Cost. A few specific examples wl.il illustrate
. the size and eost penalties associated with a switch
from sskarel to mineral oil in capacitors. The most
, popular slzod power capacitors today arc rated at
200 UVAR. If mlnaro'l oil were substituted for
askarel the volume of the capacitor would be
_
quadrupled nnd the direct labor and material cost*
associated with Jtfs manufacture would Increase by 70U. Today power capacitors arc available in 400 uvak
HONS 207067
*. *
KVAIt becoMie of increased hct di*siption problem*
with Increased volume. In addition to increases in
dirset costs, the povor capacitor Industry would
face lncrossed capital expenses estimated at
$2,000,000 to provide the increased velum* of material at projected X.VAR requirements.
Steel companies faced with increased sice, cost
and flsmmabllity of capacitor banks for induction
heating furnaces vould probably not install new
'
induction heating capability* Utilities would
have difficulty with substatlon-site in crowded
urban areas. An increase in the sit* of capacitors
for air conditioning would not ba critical.
In lighting applications a 3.75/.075 uf 540 VAC
rating for high output applications is typical.
If mineral oil war* substituted for askaral, tho
capacitor vould be 71% larger and materials would
coat 46% more. Lamp ballast manufacturers vould
have to Increase the sice of the ballast to accommo-
ii
.t
data the larger capacitor. This vould change the
thermal performance of tha unit and require U.L.
approval of new ballast deslgne. Lighting fixture
manufacturers vould also face redesign costa to
take larger ballasts. 3. Reliability. User* of capacitors lnall application
areas, have come to expect long life and very low
initial failure rates. The present performance stan
dards have been achieved after many years of field
testing and accelerated testing by manufacturer* and users. i The reliability of designs containing
HONS 207068
-23-
mineral oil in many applications would be uncertain. Available records show that capacitor reliability
# prior to the availability of askarel vae only a
fraction of what it la today.
4. Replacement Market. The implicationa of changes
in capacitor sice have been, discussed in terma of
new designs. In each major application area soma
capacitors ere sold for replacement business.
Power and induction heating capacitors are generally
installed in recks of a few to thousands of capa
citors. It would not be possible to make simple
substitutions for failed capacitors while main
taining the system rating.
In air conditioners replacement of failed capa
citors might be as simple ee Installation of
new brackets* On the other hand,' tight designs
might ni>t take a larger capacitor at all.
Lighting systems would be seriously affected by
increases in capacitor else. Larger replacement
ballasts would not fit into existing fixtures
without altered mounting arrangements. It is
possible that apace requirements would force
complete replacement of lighting fixtures for the
want of a replacement ballast.
5. Material Sources, Mineral oil is currently used
in a relatively small number of specialty capaci
tors* In this country there is a single source
of capeeitor-grgde mineral oil with limited
e
facilities for acid refining of crudes from a
single oil field.
mpr*irm >
* * *
Increased demand would require
e y ~
s * * * * *
w* -m,
HONS 207069
-2/1.
expanded facilities and Investment and considerable
development In defining technical requirements for
copacitorgrade mineral oil.
a
Efficient use of. mineral oil in capacitor designs
would require higher density capacitor tissue
.
than Is currently produced In this country* At
the least this would require extensive paper
machine modification. Capacitor winding techniques
and machines would need to be developed for winding
tighter rolls.
'
B. Other Liquids .
*
1. Castor Oil* The dielectric constant of castor
ell is 4,5 and this material la useful as an
lmpregnant in D.C. energy storage capecltors.
However* A*C* capacitors filled with this liquid
have relatively ehort lives and are not very stable
under A.C* dischargee and in the presence of water
derivable from the celluloslc paper*
2* Plbutyl sebaeate* This ester Is especially useful
In high frequency parallel plate capacitors because
of its low, flat lose characteristics over a broad
frequency ranged In this type of construction the
. liquid la the sole dielectric material* When used
In conjunction with paper* this eater la also
unstable* ' .
e
3* Silicons Fluids, These materials have a dielectric
constant of 2*7 end would generally be subject to
a
.the seme disadvantages ae mineral oil' ' t,
C. Alternative Pe'algna
'
In addition to liquid dlalactrlc substitutes* alternatives
^ ' t*
'T f i
HONS 207070
-25 to the paper-liquid dielectric night bo considered These would involve the use of plastic film costed with aluminum foil or vapor-deposited aluminum m electrodes. Since the free volume of the system is lees then that of paper the capacitance of the syaten is less dependent on the dielectric constant of the liquid end the stress distribution between the plastic films and low dielectric constant liquids is more v closely balanced. Such dielectric systene are difficult to construct completely free of voids. It la expected that several years will be required to achieve the required level of reliability in such dielectric systems.
HONS 207071
possiiii.r nnvn.nrMi'.NT or nnu tnmji.ai'tnc; i.tquxds
The coat ftf askfircl liquids is about $2.00 per gallon, compared to about $0.30 per gallon for mineral oil. Thus, long before there were any environ* mental concerns about PCD's there was a strong economic lnoentlvo to find
o.tlicr less--xpensive insulating liquids with the dfesirable characteristics
of aeknrolt, Since the 1930's, at least 10 major chemical or electrical
companies have Invested large amounts of time and money in this search, all
with no success. There arc todsy no flulda that can be uacd aa one-for-one
replacements for PCB't.
The continued search for new fluids would probably stsrt with fluorochemicals.
Fluorochemical! arc nonflammable, nbntoxlc, and as far as is presently known
represent no environmental hazard. High-boiling fluorochemicals might thus
be potential replacements for PCD's. Considerable laboratory study, over st
* least a one-year period, of the physical, chemical, and dielectric properties
of these materials would bo required in order to identify specific candidate
materials,
.
At lceat another year would be required to develop e finished product based
upon a fluorochomical. On one hand, the physical and dielectric properties would
certainly be sufficiently different so that substantial engineering redesign by `
electrical manufacturers would bo required to accommodate a fluorochemical. On
the other hand, a one-year lead time la needed to construct a chemical plant to
produce the identified fluorochemical In the millions of pounds that would
be required par year.
Furthermore, a significant program of environ
mental testing would be needed to ensure that the new material was indeed not an ecological hazard. The foregoing arc all highly optimistic time cotina
The cost of manufacturing fluorochemicals la inherently high. Prices of
.'
high-boiling liquids are $10 - 15 per pound, orhlglicr. At best one would Jiopc
MONS 207072
I ._
that in aufficient volume the price might epproech that of Teflon, currently $3 - it per pound. Even thia optimletic figure le approximately twenty tine* the coat of PCS'a, and ainca the value of PCS in a tranaformer la roughly onc-tcnth the total value of tha tranaformer, the total coat of a fluorochemical-lnaulated tranaformer would be at leaat three tlmea that of an equivalent aakarel unit.
HOMS 207073 >****. *yr
-28-
t
Appendix 1
ftenbcrahip of ANSI Committee C107 on Use and Disposal of AaVcarel Used In Electrical Equipment
Humber of Represent*tivea
2
2
1
1
1
1
2
1
1
5
2
2
1
1
Organisetlon Represented
Department of the Army
*
Environmental Protection Agency f
U.S. Department of Agriculture
Tannaaaaa Valley Authority
Ceneral Services Administration
national Bureau of Standards
Certified Ballast Manufacturers Association
Edlaon Electric Inatltuta
Institute of Electronic & Electrical Engineers
National Electrical Manufacturera Association
Monsanto Company
Commercial Haste Disposal Companies
Engineering Consulting Firm
Capacitor Manufacturer Serving as an Independent Member
HONS 207074
I Appendix 2
Typci of AsVerel-Insultted Transformer*
*
A. Distribution Trent former*
,`
,
1. Network (up to 2500 KVA)
2. Single- end three-pheee (up to 2500 KVA)
3. Pole-nounted end etetlon (up to 500 KVA)
.
'
The epplleetlon of these transformer* in power dlsttibution eye tent
pieces e greet premium upon their reliability end high overload capability
(which they there with comparable oil-insulated units): such es 1001
overlotd for S hours end 2002 overloed for 2. hours.
,4, Precipitation (high voltage DC)
These trensforners ere pert of the power supply for electrostatic
precipitators, which ere gaining increasing use in preventing sir
pollution by particulate natter. They ere generally installed close
*
to hot gas stacks in an etnosphere that would be a fire haeard to
oll-lnsulated transformers and a corrosion haxard to open dry-type
transformers. Sealed dry-type transformers are impractical for high
voltage DC.
' * 1,
B. Power Transformers
-
*
1, Secondary substation
, '
*
..
*
a. Load center units
'-
.
b. Secondary substation generation unite
c. Switchboard unite
,,
d. Integral unite -\
a. Kotor control unite
*
' .'
,,
"
These5carpels* the largest group of aakarel-insulated transformer*,
i*
end tbsy find widespread application in the automobile, paper,
.* ,
HONS 207075
-30i
.
$3
chemical, textile, eteel, uonferroua me tel, cement, mining, end
pottoleum induetriee. They ere uaed in commercial end public
bulldinge, euch ee echoole end hoapltala; in defence end
nucleer energy inetelletione; end by prlvete end public
utilitlee.
2. Meater unit aubetetlon, '
4
3. Primary unit eubetation
4. Limited ampere eubetation
5. Induatriel furnace
.
, Theae tranafoimera are uaed in the hot, dirty atmoephere in
proximity to gleea melting end Induction furnacea, which require
high current, low voltage power auppllea (more then 2500 KVA at
no more then 13.8 XV). Exiatlng technology doea not permit conatruc-
tlon of aealed dry*type trenaformere for theae power retlnga,
8. Rectifier
Theae trenaformere ere uaed for large rolling milla end DC
induatriel power auppllea, end ere covered by the aame commente
given for induatriel furnace trenaformere,
*'
^,
7. Tranaportatioa
e. Third rail
-
'
Theae trenaformere ere uaed for rapid trenalt ayateaa, end ere
baaically aervlng e rectifier function,
b. Locomotive
`
Trior to 1932, ell on-board trenaformere were open drytype.
Beceuae of probleme with them, rallroada went to eekerel-lnaulated
trenaformere. The changea in locomotive deelgn alnce the 1930'a
r, would not now accomodate open dry-type trenaformere ee replacementa
HONS 207076
T^P
-31-
for askarel units. A recent trend has been to replace aakarel by
611 units, and this will continue unless new DOT regulation*
require nonflammability.
8. Multiple-unit car (MU)
These transformers are mounted under the flat-bed of passenger cars.
They ride along In this location, about 8 inches above the rail, at
speeds up to 150 mph. The transformer must be ruggedly built to with
stand the impact of flying debris and constant vibration. Power to
the cars la brought in through an overhead catenary and la fed to the
underside of the car where the transformer, controls, and propulsion
equipment are located. Present voltage la 11 KV. but new electrification
la expected to be 25 XV.
,
Space and weight are critical in this application, There are only
about 33 inches above the'rail. The width of the transformer la
limited by the width of the car.
Only oil- or asksrel-lnsulated units would provide the required
performance levels in the apace available. A* with locomotive applications,
present DOT regulations do not restrict the use of flammable liquids, i"
and tha use of askarel units has been dictated largely by the economic
considerations of firs Insurance rates.
HONS 207077
- J i. -
i
. I (' ' _ ' Appendix 3
-
Types of Askarol-Insulated Capacitors '
* 'i*
Hlfch Volteae Power * ,
`
. Generally AC capacitors are uaed Co improve the power factor of
a circuit. Power fcctor la the ratio of true power in watta to the
apparont power aa obtained by multiplying the currant flowing to Che
load by Che circuit voltage. The power factor correction can be made
directly at the load or ac utility aubatatlona. In the latter caaa
high voltage unlca will be dealgned for 4,600 to 13,600 vole earvica.
To the utility engineer .the uaa of cepaeltore ir purely a matter of
econdmlea. The main beneflta chat rtault from tha uae of capacitora
are i
1. Reduction of loaaaa aaaociatad with tha delivery of alectrl-
, cal power to tha point of uae.
2. Reduction of tha lnveataant required in equipment for da*
llverlng electrical power to the point of uaa, which may be
broken down into)
a. Reduction of currant for the aerne kilowatt load.
b. , Reduction of tha kva racing of equipment required to
' handle the came kilowatt load.
e. Reduction of the voltage drop for a given kilowatt load.
4, Control of. delivered voltage if the capacitor kv la
varied.
.
** t
Slactrlc utilities also use capacitor banka in aarlea with diatri-
butlon clrculta to Improve voltage regulation. High voltage utility
capacitora, low voltage power capacitora, and induction heating
capacitora are manufactured at tha rata of 200,000 per year, about 2 to ' *
31 of which are for replacementa; tha balance are for new installations.
* , **
.
-V
k * i 4 e * * 1
' e % . HONS 2070 78
-33-
B. Lou Voltage Power Capacitors Inatailed In induetrlel plants *t the demand eite (typi
cally large motors and welders) are designed for 230 to 575 volt service.
Capacitors Installed near the loads are the-most efficient way to supply
the magnetising current to produce the flux necessary for the operation
of in'uctive devices. Bates for the sale of power are generally struc
tured to encourage power factor correction at the site* eliminating the
noed for the electric utility to transmit both power-producing current
and magnetising current all the way from the generator to the plant site.
The same considerations apply to Induction heating applications, the
principal difference belhg that capacitors for this rapidly growing appll-
' cation are designed for operation at 960 to 9600 Ha.
C. Lighting
Capacitors Improve the efficiency of lighting systems. A fluorescent
or mercury vapor lamp`can be ballasted without the use of a capacitor, but
the power factor of the lighting system would then be In the range of 50
to 601. For comsierclel or industrial lighting with either fluorescent or
high Intensity discharge lamps* the use of a capacitor in the circuit
b provides part of the lamp ballasting and brings system power factor into
the range of 90 to 9)1. The current market for these applications is
about 44*000,000 units annually of which about 101 are estimated to be
replacement ballasts,
ji
0. ftlr Conditlonina
'
' '
As in the lighting applications, the capacitor improves system effi
ciency. Air conditioners could be made to operate without capacitors,
as do home refrigerators* but because of the higher capacity required for current
air conditioners* the resultant line/would virtually eliminate home "plug-
1
lne" and would still further overburden.a seriously threatened national
HONS 207079
* J -
power network. Almost all air conditioner pump motors are of the split
winding type on which the capacitor provides phase differential for the
. so-celled start winding,
thus delivering good starting torque. The
proper size capacitor permits high (90% ) power factor after start-up.
The current market for this application is about 12,000,000 units an
nually, with about 5% of these estimated to be for replacement usage.
E. Industrial Electronics
This market category la a catchall covering many varied eppllcationa,
two important ones being motor run and power aupply applications. Motor
run appliestions are for pumps, fans, and farm feed equipment, and do
not differ significantly from air conditioning applications. Ths power
supply market uses capacitors principally to provldt high power factor,
but through careful design ths capacitor can also provide wave shaping
whera deslrtd. The market ia estimated et 23,000,000 units per year
with no estimate as to ths ralatlvt slat of ths replacement market.
HONS 207080