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772
CHAPTER 48
1965 Guide And Data Book
temperatures to avoid tbe possibility of ofl-eludge formation. With operating temperature continually creeping upward it is necessary to carefully select the type of lubricant used in these systems. Combinations of variables--refrigerants, oils, water content, air, temperature, and mgtnla--studied by Walker,*Rosea, and Levy* show the bad effects of air and high temperature.
2. Oil Additive*. Among the additives investigated for'use are: (a) pour point depressants, (b) floe point depressants,' (c) vis cosity index improvers, (d) thermal stability improvers, (e) ex treme pressure additives, (f) rust inhibitors, (g) anti-foaming agents, (h) copper plating inhibitors, and (i) oxidation inhibi tors.*'
Ofls which contain certain additives have given highly satis factory service, and in many cases their use is completely justi fiable. Not all additives continue to be effective in the* system, since they may eventually be retained in the drier, or elsewhere in the system. Additives may also be soluble in refrigerant, and be removed from the oil, and deposited elsewhere. Extreme pressure additives have been known to contribute to the cloggingif capil lary tubes. Pour point "nd floe point depressants and anti-foam agents are generally regarded with suspicion because of question able permanency. Selected additives, used judiciously, are bene ficial and significantly improve certain properties. On the other hand, the user must be alert to the possibility that additives may react unfavorably with other components in the system.*1
Hermetic Motor Insulation
In motore the magnet wire covering, used in windings,, is
chapter, but worthy of note doe to the fact that failure of the
electrical insulation does contribute to a contaminated rrfrigera^
tion system environment, the following factors must be considered
in selection of electrical insulating materials:
n
a. Physical. Do they soften, dissolve, disintegrate?
b. Electrical. Does the refrigeration system environment de
grade their dielectric properties without any other apparent
effects?
,
c. ChanicaL Do they react chemically with the refrigeration
system environment to the detriment of their physical and
electrical properties?
2. What is their effect on the refrigeration system environment? The following factors are important, from a contaminants view-; point, in the selection of an electrical insulation material:
a. Does the material contribute extractable* to the refrigeration system environment? If it does, what are the nature of these extractable*? Are they subject to temperature dependent
solubility? Will they deposit an adhesive-cohesive nw somewhere else in the system? Are they apt to enter into
degrading chemical reactions with other elements of the system?
b. Does the material enter into degrading chemical reactions deleterious to the refrigeration system? If it does, within the anticipated operating limits, what are the nature of these *
reactions and what are the degradation products? *' e. Does the material serve as a nonreacting catalyst to degra
dation reactions between other elements of the refrigeration system environment?
the primary electrical insulation; it may be a continuous film
Despite the promise inherent in newer materials, cellulose
of an organic resin, die coated on the wire and baked to cure it, a composite of organic resin film and fiber wrapping, or a
is still a major factor in the ground and phase insulation of both large and Email random wound motore due to its economy
fiber wrapping over, the bare conductor.
, and serviceability if properly utilized. When cellulose is
With the continuous film coatings,-which account for the employed under conditions where its performance capability
major volume of magnet wire used in hermetic motor con limits are apt to be exceeded, its effect on the refrigeration
struction, many different types of resins and polymers have system environment must be given consideration. As is well
been investigated, with polyvinyl formal formulations having known, thermal degradation of even properly dehydrated
had the greatest acceptance. Carefully prepared, these coat cellulose will yield large amounts of moisture, noncondensable
ings have proven satisfactory with Refrigerant 12 and eves gases, tare mid other objectionable contaminants. It should
with Refrigerant 22 within limitations discussed below.'- Re be kept in mind that cellulose and substantially all of the
cently, continuous film wifttingw baaed on a polyacrylic system newer synthetic insulating materials are of organic origin and,
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and on an isocyanate modified polyvinyl formal system have accounted for a considerable volume of the continuous film
therefore,
thermally stable than metallic or inorganic *
materials used in other parts of the system.
coated magnet wire utilised in hermetic motors.*
Excessive overheating causes chemical changes (depolymer;
The advent of large sized hermetic reciprocating systems ization and actual decomposition) which degrades the physi
utilising random wound motors and hermetic centrifugal sys^ cal properties of the resins used for wire coating and as
terns utilising form-wound motors has renewed interest in varnishes. Failure through embrittlement is the most frequent
composite (organic film and fiber wrapping) and fiber wrapped result although the softening of enamels and varnishes by
conductors. The most utilised seems to be a polyester glass Refrigerant 22 certainly is often a cause of conductor shorts
fiber wrapping over a polyvinyl formal film coated conductor and hence failure. However, thermal degradation is; always
The major volume of sheet insulating material, involved in elot'finers, wedges, phase insulation,-and tie point insulation, is at present divided between a high quality electrical insula^
associated with an insulation failure even though it may not be apparent at the time of inspection.
The arid which may develop in an operating system has a
tion grade paper and polyethylene terephthalate film. Miscellaneous insulation material* also - involved in the
very deleterious effect on cellulose motor insulation. Arid causes loss of strength, embrittlement, and eventual charring
construction of the motor include the tie cord, which may be either a specially treated cotton or synthetic fiber; the lead
of cellulose! For example, it has been found that electrical insulating paper exposed to 0.026 percent hydrogen chloride
wire insulation which is generally a composite system; sheet dissolved in an anhydrous organic liquid for three hours at
insulation in tape or sheet form used in wrapped coil con struction; and the final impregnating varnish which must be
150 F was not charred but had lost more than 90 percent of its strength.*7 In this regard experimental work by Elsey mid
carefully selected for compatibility with the other insulating materials in addition to its performance capability in the refrigeration system environment. Of these the lead wire insulation system exhibits the greatest variety in commercial utilization including: heavy multiple layer cotton or synthetic
Flowers*7 has indicated that Refrigerant 22 reacts at 257 F to form hydrochloric acid when an acid acceptor is present. This reaction proceeds at lower temperatures but at progressively slower rates. Electrical insulation paper was the acid acceptor in their work. These tests, conducted in glass tubes containing
fiber braid; cotton or synthetic fiber braid over an extruded Refrigerant 22 and electrical insulation paper held at 257 F
elastomer jacket; woven glass fiber varnish impregnated; produced a Harkening and loss of strength in the insulating
and synthetic fiber braid over a polyethylene terephthalate film.
paper. At the end of four weeks at 257 F the insulating paper would crumble to powder when removed. Elsey and Flowers
All of the organic electrical insulating materials, should be given careful scrutiny on two points.**-?*
believe that the reaction between cellulose and Refrigerant 22 is the factor which limits the temperatures applied to the
L What is the effect of the refrigeration system environment on their performance capability? Of secondary importance to this
motor windings in hermetic refrigerating systems. The nonhygroscopic character of polyethylene terephthai-
Contaminant Confrol in Refrigerant Systems
773
ate relative to paper, results in shorter and more effec
tive dehydration cycles and the absence of a tendency to
contribute moisture to the refrigeration system under ab
normal operating conditions. However, a thermoplastic defor
mation point is a definite disadvantage in use of this film. .
These films, like most polyesters, tend to suffer degradation
of their properties by hydrolysis degradation reactions if water
is present in sufficient amounts but the quantity of water
required to effect serious degradation has been shown to be in
eyopgq of that tolerable in the average refrigeration system.*1-41
A recent paper by Bughouse*1 presents data to show that
polyethylene terephthalate films tend to suffer an accelerated
degradation in the presence of certain alcohols and particu
larly with methanol at elevated temperatures within* the
range of operating hermetic motors. The practice of relying
upon even email amounts of ordinary antifreeze alcohols for
correction of excessive moisture conditions * thus becomes
subject to criticism when the prevalence of polyethylene
terephthalate in the modem hermetic motor is considered.
Care should also be observed that the polyethylene
terephthalate film selected contains a minimum of the lower
molecular weight polymer molecules which exhibit a tem
perature-dependent solubility in mineral lubricating,oils and
tend to precipitate as non-cohesive granules at temperatures
lower than those experienced in the motor.
.:
A corona discharge due to ionization of the gas surrounding
an electrical conductor also causes insulation breakdown. It
has been found that Refrigerant 12 decomposes in the presence
of an electrical discharge to form chlorine. Refrigerant 22,
Refrigerant 14, Refrigerant 114, and tetrafluoroethylerie.*?
The chlorine is a highly reactive material and attacks the
insulation or reacts with other materials such as oil or mtela
that may be present in the system. The corona effect depends
upon tire voltage gradient which exists between the motor
winding and ground. It has been determined that it does not
normally occur below 1000 volts RMS. Surge voltages in this
range and higher have been reported to occur momentarily,
during start-up of a motor. Therefore during start-up and per
haps under certain abnormal conditions corona can be a' factor
in insulation breakdown.
With certain combinations of wire coating and refrigerant,
excessive softening of the wire mating can occur due entirely
to the effect of the refrigerant. Wire coatings are permeable
to both Refrigerant 12 and Refrigerant 22 and most wire
coatings, as well as impregnating varnishes, are softened by
Refrigerant 22. The extent of softening varies greatly from
one material to another and the extent of the' damage is a
function, not only of the chemical nature, but of the degreeof
curve. This softening is frequently a contributing factor in the
failure of the insulation. The details of this effect on a specific
polyvinyl formal wire coating formulation are given in Table 4.
Unfortunately, the phase-to-ground resistance of systems
using Refrigerant 22 is not an indication of the presence of
moisture. By measurements on actual refrigerant systems,
Beacham and Divers4* have found that in air or. under
vacuum the phase-to-ground resistance for a particular com
pressor motor was about 20,000 megohms. When Refrigerant
22 was added the phase-to-ground resistance dropped within
seconds and in five minutes was only 68 megohms, eventually
leveling.off to 1.0 to 1.5 megohms. On the other hand, a
shnilar experiment involving Refrigerant 12 indicated a
sharp phase-to-ground resistance drop to 2000 megohms ami
within five minutes a recovery to a plateau of about 10,000
megohm. These experiments revealed that the: polyvinyl
formal is permeable, to both refrigerants and that the finil
pbase-to-ground resistance illustrated that the two' `refrigerant
saturated wire-coatings involved had distinctly* diffprant
Table 4 .... Effect of.-Liqutds on Polyvinyl.Formal Type Wire Coating**4*.
. No Effect
SBpfct Softening
PoefiWTfh* - omadty
PMl)
Carbontetiachloride
Refrigerant 11
Refrigerant 12
Toluene
Refrigerant 2! Chloroform'
Methyl ether Refrigerant 22 Trichlor-* ethylene
Ethyl Aloohol Methylene
Refrigerant '13* Refrigerant 114
Methyl chloride Acetone
Benzene Keroaioe
Refrigeration Oil Petroleum ether Ethyl ether
Chlorobenzene
Methyl v ' '* Alcohol
* At loom tesipentare.
volume resistivities. The higher conductivity of wire coatings saturated with Refrigerant 22 impose limitations on the motor designer, particularly for larger sizes and higher voltages.
Motor Burnouts
The final result of hermetic motor, insulation failure is a
motor burnout. During burnout high temperatures and arc
discharges contribute to severe deterioration of the insulation,
producing large amounts of carbonaceous sludge, acid, water,
and other contaminants and severe deterioration, of the re
frigerant and oil, producing highly corrosive inorganic acids,
organic acids and carbonaceous sludges.* In many cases the
products of the burnout escape into the system and cause con
siderable difficulty in. clean-up. If these decomposition prod
ucts are not removed from the system,-additional failures of
replacement motors can be expected with increasing frequency.
There is no universally accepted method for cleaning sys^
terns following a motor burnout. Many of -those in use are
modifications or combinations of two general procedures--
flushing with liquid Refrigerant 11 (or Refrigerant 113) or
temporary installation of a suction line filter-drier or suction
line filter. Flushing with. the cleaning Refrigerant, is most
effective if the solvent is recirculated through the system by
mAft.no of a mechanical pump until the acids ftnH sludge* are
removed. In the <me~pass methods, the cleaning Refrigerant is
forced through the lines using compressed air, nitrogen or
other sources of pressure. This method may be adequate, for
mildly contaminated systems: However; in cases of extensive
contamination, the one-pass method may' require.excessive
amounts of the cleaning refrigerant or not provide, sufficient
cleaning.
' *
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The installation of a temporary suction! line filter-drier
protects the new compressor from acid, sludge, .and.finely
divided carbon that may be-in the system after bnrnout.
Normal*,circulation of the refrigerant brings* these contami
nants to the' filter-drier during the first few days of operation!.
When the contaminants have been collected, the suction
filter-drier.is'removed and normal operation is continued.
This procedure *is applicable to most units'and permits the
re-use of the refrigerant in some cases.; v.; !.iS
In large systems an effective method of removing contami
nants consists of-frequent oil changes combined with the use
of a high-side filter-drier.--' ' '
.*
In all cases of motor burnout, the cleaning procedure recoup
mEnded by the manufacturer'of the equipnient should'.be
followed and the oil charge replaced if it is dark-or acidic: if