Claims
- 1. An elongate self-regulating heater which comprises
- (1) a melt-extruded element composed of a conductive polymer composition which comprises conductive carbon black dispersed in a crystalline polymeric material, said crystalline polymeric material consisting essentially of
- (a) a mixture of polyethylene and a copolymer of ethylene and a vinyl ester, the mixture containing at least 50% by weight of the polyethylene;
- (b) a mixture of polyethylene and a copolymer of ethylene and ethylacrylate, the mixture containing at least 50% by weight of the polyethylene; or
- (c) one or more of polyethylene, polypropylene, poly(dodecamethylene pyromellitimide), ethylene-propylene copolymers, terpolymers of ethylene, propylene and one or more non-conjugated dienes, polyvinylidene fluoride, and copolymers of vinylidene fluoride and tetra fluoroethylene; and
- (2) a pair of elongate parallel electrodes which are disposed in spaced-apart relation along and embedded in said element and are jointed by a web of said composition, and which can be connected to a source of electrical power to cause current to pass through the element, the percentage by weight(L) of conductive carbon black in said composition, based on the total weight thereof, being not greater than about 15, and the room temperature resistivity (R) in ohm-cm of said conductive polymer being such that
- 2 L+5 log.sub.10 R.ltoreq.45.
- 2. A heater according to claim 1 wherein 2 L+5 log.sub.10 R.ltoreq.40.
- 3. A heater according to claim 1, the polymeric material of said composition having been cross-linked.
- 4. A heater according to claim 1 wherein L is less than about 10.
- 5. A heater according to claim 1 wherein the polymeric material consists essentially of a mixture of polyethylene and a copolymer of ethylene and a vinyl ester, the mixture containing at least 50% by weight of the polyethylene.
- 6. A method of preparing a self-regulating heater which comprises the steps of
- (1) melt-extruding over a pair of elongate parallel electrodes held in spaced-apart relation an electrode-interconnecting web of a conductive polymer composition which comprises (a) a thermoplastic polymeric material exhibiting overall at least about 20% crystallinity as determined by x-ray diffraction and (b) conductive carbon black dispersed in said polymeric material, thereby forming an elongate element composed of said composition with the electrodes encapsulated therein and electrically connected to each other by a web of said composition, the percentage by weight (L) of carbon black based on the total weight of said composition being not more than about 10, and
- (2) heating the extruded element at or above the melting range of the polymeric material for a time sufficient to substantially reduce the resistivity of the composition.
- 7. A method of preparing an self-regulating heater which comprises the steps of
- (1) melt-extruding over a pair of elongate parallel electrodes held in spaced-apart relation an electrode-interconnecting web of a conductive polymer composition which comprises )a) a thermoplastic polymeric material exhibiting overall at least about 20% crystallinity as determined by x-ray diffraction and (b) conductive carbon black dispersed in said polymeric material, thereby forming an elongate element composed of said composition with the electrodes encapsulated thereon and electrically connected to each other by a web of said composition, the percentage by weight (L) of carbon black based on the total weight of said composition being not greater than about 15, and the polymeric material consisting essentially of
- (a) a mixture of polyethylene and a copolymer of ethylene and a vinyl ester, the mixture containing at least 50% by weight of the polyethylene;
- (b) a mixture of polyethylene and a copolymer of ethylene and ethylacrylate, the mixture containing at least 50% by weight of the polyethylene; or
- (c) one or more of polyethylene, polypropylene, poly(dodecamethylene pyromellitimide), ethylene-propylene copolymers, terpolymers of ethylene, propylene and one or more non-conjugated dienes, polyvinylidene fluoride, and copolymers of vinylidene fluoride and tetrafluoroethylene; and
- (2) heating the extruded element at or above the melting range of the polymeric material for a time sufficient to substantially reduce the resistivity of the composition.
- 8. A method according to claim 7 wherein annealing is performed at a temperature of at least about 300.degree. F. for a period of time sufficient to reduce R to satisfaction of the equation
- 2 L+5 log.sub.10 R.ltoreq.40.
- 9. A method according to claim 7 wherein L is not more than about 10 and annealing is performed at a temperature of at least about 300.degree. F. over a period of not less than about 15 hours.
- 10. A method according to claim 7 wherein the polymeric material consists essentially of a mixture of polyethylene and a copolymer of ethylene and a vinyl ester, the mixture containing less than 50% by weight of the polyethylene.
- 11. A heater according to claim 1 wherein the polymeric material consists essentially of polyethylene or a mixture of polyethylene and a copolymer of ethylene and ethylacrylate.
- 12. A heater according to claim 1 wherein the polymeric material consists essentially of polyvinylidene fluoride.
- 13. A heater according to claim 1 wherein the polymeric material consists essentially of polypropylene or a mixture of polyethylene and polypropylene.
- 14. An elongate self-regulating heater which comprises
- (1) a melt-extruded element composed of a conductive polymer composition which comprises conductive carbon black dispersed in a crystalline polymeric material, and
- (2) a pair of elongate parallel electrodes which are disposed in spaced-apart relation along and embedded in said element and are joined by a web of said composition, and which can be connected to a source of electrical power to cause current to pass through the element, the percentage by weight (L) of conductive carbon black in said composition based on the total weight thereof being less than about 10, and the room temperature resistivity (R) in ohm-cm of said conductive polymer being such that
- 2 L+5 log.sub.10 R.ltoreq.45.
- 15. A heater according to claim 14 wherein the polymeric material consists of essentially of a mixture of polyethylene and a copolymer of ethylene and a vinyl ester, the mixture containing at least 50% by weight of the polyethylene.
- 16. A heater according to claim 14 wherein the polymeric material consists essentially of polyethylene or a mixture of polyethylene and a copolymer of ethylene and ethylacylate.
- 17. A heater according to claim 14 wherein the polymeric material consists essentially of polyvinylidene fluoride.
- 18. A heater according to claim 14 wherein the polymeric material consists essentially of polypropylene or a mixture of polyethylene and polypropylene.
Parent Case Info
This application is a continuation of copending Ser. No. 475,885 filed Mar. 16, 1983, now abandoned, which is a continuation of Ser. No. 175,356 filed Aug. 4, 1980 (now abandoned), which is a divisional of Ser. No. 868,517 filed Jan. 11, 1978 (now U.S. Pat. No. 4,286,376), which is a continuation of Ser. No. 542,592, filed Jan. 20, 1975 (now abandoned), which is a continuation of Ser. No. 287,444 filed Sept. 8, 1972 (now U.S. Pat. No. 3,861,029). The disclosure of each of the above-mentioned applications is incorporated herein by reference.
US Referenced Citations (20)
Foreign Referenced Citations (6)
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FRX |
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JPX |
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Entry |
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Divisions (1)
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Number |
Date |
Country |
Parent |
868517 |
Jan 1978 |
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Continuations (4)
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Number |
Date |
Country |
Parent |
475885 |
Mar 1983 |
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Parent |
175356 |
Aug 1980 |
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Parent |
542592 |
Jan 1975 |
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Parent |
287444 |
Sep 1972 |
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