Document NNd208RxqyBwXZr4Qybq70me8
PCB ALTERNATIVES AND THEIR CHARACTERISTICS FOR AC CAPACITORS
March 1976
HONS 045795
Richard L. Rollins Vice-President Engineering
JARD Company, Inc. Bennington, Vermont
ALTERNATIVES TO PCBs
Askarels provide favorable capacitor characteristics of long life, high reliability, and safe failure inodes.
Tho proposed alternatives not only must provide these characteristics but in addition must not cause environmental problems.
Today there are no dielectric fluids available which can be considered as acceptable substitutes for PCBs in the broad range of AC capacitors.
Characteristic Requirements for Capacitor Fluid Impregnants
Physical characteristics of impregnants must include that: 1. the boiling
point, the freezing point, and the pour point should be beyond the capacitor
operational temperature range, 2. the flash point should be greater than
300K, and 3. the vapor pressure at 100C and low vacuum (better than
500 microns) should be negligible for ease of vacuum impregnation processing, and 4. the viscosity at 100C should be 1000 centipoiae or less for
processing.
Electrical characteristics requirements include; 1. a dielectric constant
greater than about 2 but smaller than about 10, 2. Volume resistivity
should be in excess of
ohm-cm in the cepecitor operating temperature
range, and 3. Power factor should be less than 0.1 percent end preferably
less than 0.05 percent. 4. Dielectric strength greater than 30KV/.1 inch.
Chemical characteristics have to include: 1; Stability over the capacitor operating range <-35C to 4-95C) whilo under electrical stress, 2. Biodegradability and toxicity to prevent environmental or health problems, and 3. Non corrosivity with other capacitor materials.
1- MGNS 045796
Discussion* The word"askarelsMdesignatcs a synthetic, fire-retardant, insulating liquid which when dccomjxinod by an electric arc evolves only gaseous mixtures of hydrogon chloride and carbon. These fluids are not subject to oxidation and provide significant freedom from chemical and electrical degradation. The basis for these beneficial properties and the detrimental lack of biodegradability in the environment is in part due to the fact that the compounds are chlorinated.
Candidate fluids which arc more environmentally acceptable such as mineral oils create a concern of safety in the capacitor applications. Fire and explosion is an over present hazard using these fluids because electrical failures may lead to conflagration and loss of life. Mot only from the oil flammability may a problem arise but also from the gases formed upon decomposition of the oil by an electric arc.
The flammability of a liquid is usually indicated by reference to the flash and fire points. The use of these as an indicator of flammability is helpful but not completely satisfactory in evaluating the fire and explosion characteristics in appllcations. The flammability of condensed oil mists or sprays can be of equal or greater iiqportance. Atomisation may occur when intomal pressure mounts as during an electrical failure aod a small hole exists in the capacitor case. Such suspension of oil drops can propagate flame when ignited even though the liquid is essentially non-volatilo and not capable of forming a flammable vapor mixture with air. If flammablo gases are evolved during orcing, high internal pressures may exist within the capacitor case, causing rupture and subsequent fire and explosion.
MQNS 045797 2-
The electrical stress on a composite dielectric system, such as oil and kraft
paper, divides inversely to the dielectric constants of the individual materials.
Thus, as in an askarel- kraft paper system where the dielectric constants are nearly
matched, the electric stress is divided approximately equally. However, if a fluid has
a significantly lower dielectric constant than the kraft in the composite system,
the fluid is stressed inordinately. As is typical of most proposed non-chlorinated
dielectric fluids, the fluid will be the weakest link in the dielectric system
because of its characteristics and it will have a substantially worse performance
characteristic if it also has too low of a dielectric constant. The fluid which
has a dielectric constant significantly higher (about 10) than the kraft paper,
will frequently have ionic materials present acting as contamination causing excess
heat development and reduced life.
Listed below is a summary of required characteristics of PCB alternatives)
TABLE I
CHARACTERISTIC
LEVEL
Boiling Point
Greater than maximum operating temperature (95C)
Plash Point
Greater than 300F
Freezing Point
Lower than minimum operating temperature (-35C)
Pour Point Vapor Pressure
Viscosity
Lower than minimum operating temperature (-35C)
Negligible at approx. 100C and low vacuum (better than 500 microns)
1000 centipoise at impregnation
Dielectric Constant
Greater than 2 but less than 10
Dielectric Strength
Creator than 30KV per 0.1 inch
Power Factor Volume Resistivity
Much loss than 10 percent
10 10A ohm-cm
M0 NS 045798
Biodogrndability
Groatcr than 15% degradation per 48 hour cycle with semi-continuous activated sludge.*
-3*Dasod on Aroclor 1254 being found in the environment and food chain and the paper presented by dames Mueire, Monsanto, Characterisation of Polychlorinated Biphenyl Table IV (Given at National Conference on Polychlorinated Biphenyls, Nov. 1975, Chicago)
TABLE I > Con't
CHARACTERISTIC Acute Toxicity
LEVEL
Ho significant levels to humans exposed during processing capacitors
Chronic Toxicity
No significant effects on humans after long term exposures
Bioaccumulation and Bioconcentration
No significant build up in human food chain*if appreciable human chronic toxicity
TABLE IX
PROPOSED CANDIDATES* FOR PGB SUBSTITUTION AND THEIR CHARACTERISTICS
CHARACTERISTIC
PCS (1016)
Substituted Aromatic
Compound
CANDIDATES
Phthalate Esters
Synthetic Hydrocarbons
Silicone Oil
Mineral Oil
Bolling Point (C)
>300
>300
>300
296*C
>300 >300
Flash Point/Fire Polnt(F) 356/Mona 345/390 430/495 303/326
605/660 300/374
Pour Point (C)
-19
Vapor Prassura Viscosity (CS) Dialsctric Constant
Negligible 2.1 5.9
Dlslsctric Strengtn (KV/.1" )
35
Power Factor (%) Volume Resietlvlty
1.0 1012
Relative Capacitor Site Relative Capacitor Cost
1.0
-45
Nag. 4.4 35 1.0 10"
1.23
-45
Meg. 4.3 5.0
35 2.5
1012
1.03
-47
Meg, 2.0 6.1
35 2.0
1012
.97
-50
-45
Meg. 20 2.8 35
Meg. 3 2.2
30
0.05 1014
0.1 1012
1.39
1.51
The candidates are listed under their general classifications but this does not inply all variations of fluids within those classes will have the characteristics given.
MGNS 045799 -4-