NZ196568A - Electric blanket:automatic disconnection with element open circuit - Google Patents

Electric blanket:automatic disconnection with element open circuit

Info

Publication number
NZ196568A
NZ196568A NZ196568A NZ19656881A NZ196568A NZ 196568 A NZ196568 A NZ 196568A NZ 196568 A NZ196568 A NZ 196568A NZ 19656881 A NZ19656881 A NZ 19656881A NZ 196568 A NZ196568 A NZ 196568A
Authority
NZ
New Zealand
Prior art keywords
fuse
conductors
electric blanket
circuit
conductor
Prior art date
Application number
NZ196568A
Inventor
G C Crowley
G S Carlson
Original Assignee
Sunbeam Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Sunbeam Corp filed Critical Sunbeam Corp
Publication of NZ196568A publication Critical patent/NZ196568A/en

Links

Classifications

    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B3/00Ohmic-resistance heating
    • H05B3/40Heating elements having the shape of rods or tubes
    • H05B3/54Heating elements having the shape of rods or tubes flexible
    • H05B3/56Heating cables
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02HEMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
    • H02H5/00Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection
    • H02H5/04Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection responsive to abnormal temperature
    • H02H5/042Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection responsive to abnormal temperature using temperature dependent resistors
    • H02H5/043Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection responsive to abnormal temperature using temperature dependent resistors the temperature dependent resistor being disposed parallel to a heating wire, e.g. in a heating blanket
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B3/00Ohmic-resistance heating
    • H05B3/20Heating elements having extended surface area substantially in a two-dimensional plane, e.g. plate-heater
    • H05B3/34Heating elements having extended surface area substantially in a two-dimensional plane, e.g. plate-heater flexible, e.g. heating nets or webs
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02HEMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
    • H02H5/00Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection
    • H02H5/10Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection responsive to mechanical injury, e.g. rupture of line, breakage of earth connection
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/011Heaters using laterally extending conductive material as connecting means
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/02Heaters using heating elements having a positive temperature coefficient

Landscapes

  • Control Of Resistance Heating (AREA)
  • Control Of Temperature (AREA)

Description

« % /? 5 J Priority Date(s}: .!. Af.°.
Ccmpfat* Specification Filed: Clm* lf.°.
Fubteeation Date: ... 3.0.APR .1355....
P.O. Journal, Wo: I NEW ZEALAND PATENTS ACT, 1953 No.: Date: COMPLETE SPECIFICATION "IMPROVED ELECTRIC BLANKET SAFETY CIRCUIT" jq^We, SUNBEAM CORPORATION, a corporation organized and existing under the laws of the State of Delaware, of 5400 West Roosevelt Road, Chicago, Illinois 60650, United States of America hereby declare the invention for whichxk/ we PraY that a patent may be granted to r&ac/us, ^nd the method by which it is to be performed, to be particularly described in and by the following statement: - The present invention relates to a safety circuit for use in connection with an electrically heated blanket or bed cover. More particularly, it relates to a circuit intended for use in a blanket of the type using a positive temperature coefficient material as the heating element.
Electric blankets are typically formed with fabric shells which include passageways throughout the area of the blanket in which a tortuous low wattage heating element is threaded. The blanket must be provided with some means for sensing overheat conditions along the heating element within the blanket so that the current to the blanket can be shut off or reduced before damage or injury is caused by the overheat condition. The various means for sensing such overheat conditions have included discrete bimetallic thermostats positioned at spaced intervals along the blanket. In addition, continuous sensing wires have been used in conjunction with the heating element wire. The sensing wire responds to overheat conditions to operate a relay which opens the circuit to the main heating element.
More recently, there has been consideration of the use of positive temperature coefficient materials for the heating element so as to provide a blanket wire which would be self-limiting from a temperature standpoint in any areas in which an overheat condition occurred. The possible structure of such a wire and the manner in which the wire operates to supply heat to the blanket and to respond to overheat conditions is described in the U.S. patent to Sandford et al No. 3,410,984. As described in the Sandford -V <" et al patent, the blanket wire consists of two spaced conductors which are enclosed by a positive temperature co-efficient material comprising polyethylene with carbon black particles mixed therewith. The electrical current passes through the positive temperature coefficient material in passing from the one conductor to the other conductor and the PTC material acts as a heating element.
The formulation of the PTC material and the physical dimensions of its extrusion is selected so that the resistance, and, therefore, the heat dissipation per foot of length are reasonably constant at any given temperature. At low temperatures, the heat dissipation per foot will be greater than at normal room temperatures. When in an overheat or high temperature condition, the heat dissipation will be less than normal. The PTC material self limits to produce a given heat dissipation or wire temperature for every different ambient and insulation system. In this way, when a section of the heater is bunched up or abnormally restricted insofar as heat transfer is concerned (something on top of the blankets), the PTC wire reacts to the new environment and reduces its heat dissipation in that area, trying to keep its temperature reasonably constant.
Under normal circumstances, the type of PTC blanket wire described above operates well and eliminates the necessity for either the discrete bimetallic thermostats within the blanket or the various types of distributed sensing wires paralleling the heater wires in the blanket. 4 ^ < r? ^ I "> w '• O However, it has been ascertained that significant problems arise when a broken or open circuit occurs in connection with one of the two conductors in the PTC wire. In such an event, there occurs arcing or overheating at the specific areas in which the break occurred. It would be desirable, therefore, to provide some means in connection with a positive temperature coefficient heating wire blanket to interrupt the circuit to the blanket prior to there being a dangerous condition caused by the arcing of a broken conductor.
It is well known in the electric blanket art to provide overheat protection means which include means to blow a fuse in the event of such an overheat condition. One such circuit is shown in the U.S. Patent to Crowley No. 3,628,098 in which a short circuit is created in connection with an overheat means and such short circuit is used to blow a protective fuse in the circuit. Another piece of prior art in which the safety circuit blows a fuse in connection with a malfunction in a blanket is the U.S. Patent to Crowley No. 4,034,185.
There are also many examples of protective circuits which include means for blowing the circuit fuse to protect the load in the event of an overvoltage condition. Examples of these patents are Muench, Jr. No. 3,600,634; Wilson No. 3,968,407; Vorhoeve No. 3,878,434, Hurdle No. 3,493,815 and Shatuck et al No. 3,215,896. Also of possible interest is the patent to McNulty No. 3,325,718 which senses a condition in a load and 1 ~ 1 i v.:y provides a circuit to overload and blow the circuit fuse to disconnect the load from the power supply. Also of interest relative to the specific circuitry used in such protective circuits is Lawson No. 3,845,355 which shows a photoresistor controlling an overload relay.
The invention consists in an electric blanket comprising an elongated wire heating element including a pair of spaced conductors having a positive temperature coefficient material between said conductors, means for connecting opposite ends of said wire to a source of electrical power with one end of one conductor and the distal end of the other conductor being joined by said connecting means to said power source, current interrupting means in series with said connecting means and said wire; sensing means connected across the length of said wire to cause said current interrupting means to open said circuit externally of said wire when there is an open circuit in either of said conductors.
The instant invention provides an electric circuit for use with a positive temperature coefficient blanket which cuts off the power to the blanket whenever an open circuit has occurred in one of the conductors. The circuit has a characteristic which permits it to operate selectively on the overvoltage condition produced by the conductor breakage while not responding to the types of momentary overvoltage conditions which are frequently found in household electrical power supply. The circuit is connected to respond to a break in either one of the two conductors in the blanket wire to create an effective short circuit across & /? r~* •cvi the ends of the heating element thereby overloading the series fuse to open the circuit before any damage in the way of igniting the PTC material or the gas produced by arcing at the break is concerned.
The fuse provided is preferably a slow blow type so that during the normal high inrush current encountered in the PTC material when first energized, the fuse will not blow out even though the peak currents are two or three times the fuse rating. This initial current surge is caused by the fact that the PTC wire when cool has a very low resistance which rises quickly upon energization of the circuit. If, however, there is a shorted condition in the blanket wire, the fuse will quickly blow out and de-energize the circuit. The fuse was selected to give the best protection during operation at all normal ambient temperatures and cold wire energization.
It is, therefore, an object of the present invention to provide an improved electric blanket having a positive temperature coefficient heating element with a sensing circuit connected to the element to disable the circuit in the event of a break in either of the heater conductor wires.
Further objects and advantages will become aparent as the following description proceeds and the features of novelty which characterize the invention will be pointed out in the claims annexed to and forming a part of the specification. 196568 196518 Preferred forms of the invention will now be described with reference to the accompanying drawings in which: Figure 1 is a schematic diagram of an electric blanket including a safety control, circuit embodying our invention, Figure 2 is an enlarged sectional view of the heating element wire which may be used in the electric blanket of figure 1, Figure 3 is a further schematic diagram of the blanket of figure 1 showing tlie heating element wire schematically to illustrate the connection to the safety control circuit, 1 Figure 4 is a schematic diagram of . an alternative circuit embodying our invention, Figure 5 is a schematic diagram of an alternative circuit embodying our invention, Figure 6 is a schematic diagram of an alternative circuit embodying our invention, Figure 7 is an enlarged showing of one of the gas tubes shown in Figure 6, and Figure 8 is a schematic diagram of an alternative circuit embodying our invention.
Referring to figure 1 of the drawings, there is shown a schematic :circuit diagram of a preferred embodiment of our invention wherein the electric blanket wire and the associated safety circuit are generally referred to by reference numeral 10. Included therein is an elongated blanket wire 12 which is typically on the order of 119 feet long for twin bed blankets and 162 feed long for double bed blankets and is looped back and forth through channels formed in an electric blanket shell 13 to provide heat evenly across the surface of the blanket in a well-known manner. The blanket wire 12 is of the type utilizing a positive temperature coefficient material 14 which is ' 7 extruded between and around a pair of spaced conductors 16 and 18 as is shown best in the sectional view of figure 2.
The general type of wire involved is disclosed in the U.S. Patent to Sandford et al No. 3,410,984. The PTC material is typically a polyethylene, silicone rubber or the like having carbon black particles mixed therein in such a manner as to give the desired temperature/resistance characteristics. As is indicated in the aforementioned Sandford et al patent, the conductors are spaced apart and enveloped by the PTC material which is extended into intimate engagement with the conductors. A suitable electrically insulating layer 19 is extruded over the PTC material.
The conductors 16 and 18 are shown schematically in figure 2 as closely spaced with parallel resistances positioned between the conductors. There are actually no discrete resistances between the conductors 16 and 18 since the PTC material 14 which is positioned between the conductors 16 and 18 throughout the entire length acts as a single, continuous resistance heater as the current flows through the PTC material from the conductor 16 to the conductor 18. The conductors 16 and 18 have their opposite ends connected to a suitable source of electrical power by means of leads 20 and 22 respectively. In order to have a uniform voltage drop between the conductors 16 and 18 at any point throughout the length of the blanket wire 12, the power leads 20 and 22 are connected to opposite ends of the blanket wire 12 as is best shown schematically in Figure 3. With such an arrangement, the voltage drop between the adjacent conductors 16 and 18 at any point is 1 96 5 c n essentially equal to the line voltage less the voltage drop resulting from the current passing through one length of either the. conductor 16 or 18. As an example, at the end of conductor 16 adjacent the power lead 20, the voltage would equal the line voltage less the drop caused by the current passing through the length of conductor 18. Similarly, at the end of conductor 18 adjacent the power lead 22, the voltage drop between the conductors 16 and 18 would equal the line voltage less the voltage drop caused from the current passing through the length of the conductor 16. Similarly, at the middle of the blanket wire 12, the drop across the conductors 16 and 18 would equal the line voltage less the voltage drop caused by the current passing through half of the conductor 16 and half of the conductor 18. This arrangement results in a uniform heating effect being obtained throughout the length of the blanket wire 12.
Electric blankets are conventionally used in much the same manner as a nonelectric blanket being spread across a bed and overlying the user. During use:and between uses, the blanket may be flexed or folded repeatedly. In addition, when stored or when washed, the electric blanket is again subjected to repeated folding and flexing. In view of the demands made on an electric blanket in normal use, it is necessary that the blanket wire 12 including the associated conductors 16 and 18, the PTC material 14 and the coating 19 be made of suitable dimensions and materials so that they can be repeatedly flexed without breaking or causing any other problems. In spite of careful design and I ^ w C 4P manufacture of the blanket wire, there will be occasions in which a break or fault will develop in the conductors 16 and 18. When such a break or fault occurs and the blanket is connected to a source of electrical power, an electrical arc will often occur at the break. This arc will often cause burning of the PTC material.
In order to prevent any such condition, the electric blanket of the instant invention is provided with a safety circuit designated generally by reference numerial 25 and shown in figure 1 enclosed in dotted lines. The safety circuit includes a fuse .26 which is connected in series with the power lead 20 to interrupt the circuit when the current to the blanket exceeds a predetermined minimum. In a preferred embodiment, the fuse 26 was a slow blow fuse which would blow after the current exceeded 2 amperes for a period of more than eight miliseconds. As will be explained in greater detail below, it is important that the fuse be capable of withstanding brief pulses of current in excess of two amp rating due to the inrush current caused by the low cold resistance of the PTC material, and it would be. undesirable to have the fuse blown on such occasions..
For the purpose of responding to overvoltage conditions in either of the conductors 16 or 18, there is provided a pair of neon lights 28 and 30 which are connected across the conductors 16 and 18 respectively as best shown in figure 3. The neon lights 28 and 30 require a voltage of 65 volts minimum to break down and, as a consequence during normal operating conditions for the blanket, the lights 28 (f^ /? r? * J W and 30 are nonconducting. Associated with the neon lights 28 and 30 is a photoresistor 32. The two neon lights and the photoresistor 32 are enclosed in a light-tight enclosure 34 so that the photoresistor 32 will respond only to the light from the neon lights 28 and 30. A suitable conductor 35 connects one terminal of the photoresistor 32 to the power lead 22 while the other terminal of the photoresistor is connected by a wire 36 to the gate 38 of a triac 40. The triac 40 is connected by wires 42 and 44 across the power leads 20 and 22 and is essentially in parallel with the blanket wire 12. Also connected in series with the triac 40 is a two or four ohm resistor 46 which is intended to protect the triac 40 and control the blowing time of the fuse.
To permit washing the blanket 13, there are separable connections in the conductors extending between the circuit 25 and the heater 12 contained in the blanket. This arrangement presents the possibility that the circuit 25 may be energized while the heater 12 is not connected as shown in figure 1 and 3. In such circumstances, leakage currents present in the circuit may result in the breakdown of the neon lights 28 and 30 and conduction by the triac 40 causing the fuse 26 to blow in an undesired manner. To overcome this problem, a pair of one megohm leakage shunting resistances 47 have been connected across the neon lights 28 and 30. These resistances 47 prevent the above-described blowing of the fuse 26 from occurring.
In normal operation of the safety circuit 25, either of the neon lights 28 or 30 may sense an overvoltage created by a break in either of the conductors 16 or 18. When any such break occurs, the voltage across the conductor in which the break occurs rises over the 65 volt breakdown level and the neon light associated with that conductor conducts and is illuminated. Illumination of either the lights 28 or 30 causes the photoresistor 32 to decrease in resistance thereby causing the triac 40 to become conductive. Since the triac 40 and the limiting resistor 46 are connected across the power leads 20 and 22, conduction of the triac 40 causes a high current which results in blowing the fuse 20. Even though a slow blow fuse is employed, the safety circuit 25 reacts quickly enough to prevent arcing which would otherwise be associated with the open in the conductor 16 or the conductor 18.
The fuse 2 6 must be a slow blow fuse to prevent blowing the fuse when there are simply high voltage transients in the line or high inrush currents and no overvoltage created by a break in either of the conductors 16 or 18. The safety circuit 25, therefore, provides a simple and effective means for interrupting the power to the blanket 10 in the event of a break or arcing condition in the conductors 16 and 18.
As an alternative embodiment to the circuit of figure 1, it would be possible and practical to substitute a high power photocell or a light activated SCR or triac for the photo-resistor 32 and thereby eliminate the triac 40 as shown in figure 4. In the embodiment of figure 4, a high power photocell 80 is connected to power leads 20 and 22 in parallel with the blanket wire 12 providing a short circuit route in series with the fuse 2 6 between the leads 20 and 22 to be operative in the event that there were a break in either the conductor 16 or conductor 18. The photocell 80 is enclosed in a light-tight envelope 82 along with neon lights 84 and.86 which break down in the same manner described above in connection with neon lights 28 and 30. However, the photocell becomes sufficiently conductive to blow the fuse 26 eliminating the need for the separate triac 40 included in the embodiment of figures 1 and 3.
A further alternative embodiment is shown in the circuit of figure 5. In lieu of the neon lights 28 and 30, there are provided coils 50 and 52 which are portions of a two coil relay 54 having one of the coils connected across each of the conductors 16 and 18. The relay 54 includes a switch 56 connected across the leads 2 0 and 22 in order to short out the power supply through the fuse 26 in the event of an interruption in either of the conductors 16 and 18. The coils are associated with a core and armature for closing switch 56 at a voltage which would be produced in the case of an open circuit in either of the conductors 16 and 18.
Under the normal blanket operating conditions, there would not be sufficient flux developed to close the switch 56. However, in the event of a break in either of the conductors 16 or 18, the relay 54 closes switch 56 to provide the short circuit through the fuse 26 which, in turn, blows the fuse. /? f*» V W ') In figure 6, there is shown an embodiment of the invention which makes use of a three element gas switch in lieu of the neon lights and photoresistor of the preferred embodiment. As shown in figure 6, a three element gas switch 60 is connected across each of the conductors 16 and 18. As is shown in figure 7, each of the tubes 60 has three terminals 60a, 60b and 60c which are connected as shown to three elements 60d, 60e and 60f within the tube. When there is sufficient voltage applied to terminals 60a and 60b, in excess of 65 volts, the gas ionizes and there is conduction through the tube 60. The element 60d includes a U-shaped bimetallic portion 6 4 which deflects when the tube 6 0 begins to conduct. This deflection of bimetallic portion .64 causes a switch 66 connecting elements 60d and 6Of to close. As is evident from figure 6, the terminals 60a and 60b of each of the gas tubes 60 are connected to opposite ends of the conductors 16 and 18 while the terminal 60c is connected to the opposite side of the line from its respective terminal 60a.
When the potential between elements 60d and 60e reaches 65 volts, the tube 60 begins to conduct. This results in a bimetallic portion 64 associated with the numbered terminal 60a to deflect closing the switch 66 and resulting in a connection between terminals 60a and 60c of the tube 60. Thus, when either of the tubes 60 are subjected to an overvoltage condition in either of the conductors 16 or 18, the tubes 60 begin conducting which results in the closing of switch 66 thereby providing a short circuit across the line through the fuse 26. This results in the fuse 26 being blown thereby preventing any arcing or fire in connection with the break which has occurred in the conductors 16 or 18.
In figure 8, there is shown a further alternative embodiment for deactivating the circuit by blowing the fuse in the event of a break in either of the conductors 16 or 18. In figure 8, a thermal fuse 70 is employed rather than the more conventional current responsive fuse element. The thermal fuse 70 includes a fuseable element 72 and heaters 74 and 76 arranged in close proximity to the fuse element 72. When there is a break in either of the conductors 16 or 18, there will be a higher voltage applied to the heaters 74 or 76 which will generate sufficient heat to melt the fuse element 72 thereby opening the circuit.
Although there have been disclosed a number of different embodiments of the invention for deactivating a blanket heater circuit in the event of a break occurring in either of the conductors included in the blanket wire, all of the various applications serve to eliminate the arcing and fire hazard associated with such PTC wire.
While several embodiments of the present invention have been shown, it will be understood that various changes and modifications will occur to those skilled in the art, and it is contemplated in the appended claims to cover all such changes and modifications as fall within the true spirit and scope of the present invention.
I

Claims (15)

WHAT WE CLAIM IS:
1. An electric blanket comprising an elongated wire heating element including a pair of spaced conductors having a positive temperature coefficient material between said conductors, a safety circuit connecting opposite ends of said wire to a source of electrical power with the proximal end of one conductor and the distal end of the other conductor being connected to said power source, said safety circuit including current interrupting means connected in series with one said conductor and sensing means connected across the length of each said conductor to cause said current interrupting means to open said circuit externally of said wire when there is an open circuit in either of said conductors.
2. The electric blanket of claim 1 wherein said spaced conductors are of low resistance, a heating effect which is produced by energizing said wire resulting primarily from the current flow through said positive temperature coefficient material.
3. The electric blanket of claim 1 or claim 2 including a fabric shell having spaced layers between which said elongated wire is disposed in a tortous configuration to deliver heat to the entire blanket shell.
4. The electric blanket of any one of claims 1 to 3 wherein said sensing means is a voltage sensing means, and said safety circuit further including switch means operated by said voltage sensing means to short circuit said wire to activate said current interrupting means when there is an open circuit in either of said conductors. 16
5. The electric blanket of any one of claims 1 to 4 wherein said current interrupting means is a fuse connected in series with one of said conductors.
6. The electric blanket of claim 5 wherein said fuse is a slow-blow fuse.
7. The electric blanket of claim 5 wherein a sheet of electrically insulating material encloses said conductors and said resistance material, and said voltage sensing means is a voltage sensitive element connected across each of said conductors which elements sense an increase in voltage caused by a break in the conductor it is connected across.
8. The electric blanket of claim 7 wherein each voltage sensing element comprises a neon bulb which conducts at a voltage in excess of the drop across the length of each conductor, and wherein a photoresistor is associated with said neon bulbs to actuate said switch means in the event of an open circuit in one of said conductors.
9. The electric blanket of claim 8 wherein said switch means comprises a triac connected in parallel with said heating element.
10. The electric blanket of claim 7 wherein said positive temperature coefficient material comprises a material which will ignite if heated by an arc formed between the ends of a broken conductor, said fuse having slow response characteristics so as to be unaffected by surges caused by normal voltage transients which will be sensed by said voltage sensing element and results in momentary actuation of said switch means, said fuse interrupting said circuit in the event of an open circuit in said conductors prior to ignition of said PTC material.
11. The electric blanket of claim 7 wherein said voltage sensitive elements comprise coils of relay, said relay including a mechanical switch connected in parallel with said heating element and in series with said fuse.
12. The electric blanket of claim 7 wherein said voltage sensing elements comprise neon lights which conduct and become lighted at a voltage in excess of the drop across the length of each' conductor, and said switch means includes a light responsive cell which conducts when either of said lights becomes conductive to cause the fuse to interrupt the circuit at the fuse.
13. The electric blanket of claim 7 wherein said voltage sensing elements comprise gas tubes which conduct when the voltage exceeds the normal drop across the length of each conductor, said switch means including a bimetallic switch within each of said gas tubes responding to conduction in each of said tubes to close the respective bimetallic switch in the conducting tube to cause the fuse to interrupt the circuit at the fuse.
14. The electric blanket of claim 7 wherein said voltage sensing elements comprise heating elements in close heat transfer association with said fuse, said fuse being a thermal fuse which opens the circuit in response to overvoltage conditions caused by an open circuit in either of said conductors. i 96: *"
15. An electric blanket having a positive temperature coefficient resistance material as a heating element with a safety circuit substantially as hereinbefore described with reference to the accompanying drawings. By S^/their authorised Agents, A. J. PARK. & SON. psrf | ^-<
NZ196568A 1980-04-01 1981-03-19 Electric blanket:automatic disconnection with element open circuit NZ196568A (en)

Applications Claiming Priority (1)

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US13620280A 1980-04-01 1980-04-01

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NZ196568A true NZ196568A (en) 1985-04-30

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NZ196568A NZ196568A (en) 1980-04-01 1981-03-19 Electric blanket:automatic disconnection with element open circuit

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JP (1) JPS57864A (en)
AR (1) AR227041A1 (en)
AU (1) AU542163B2 (en)
BE (1) BE888195A (en)
BR (1) BR8101977A (en)
CA (1) CA1156300A (en)
DE (1) DE3111911A1 (en)
FR (1) FR2485285B1 (en)
GB (1) GB2075777B (en)
MX (1) MX149294A (en)
NL (1) NL8101632A (en)
NZ (1) NZ196568A (en)
ZA (1) ZA812180B (en)

Families Citing this family (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4436986A (en) * 1981-11-23 1984-03-13 Sunbeam Corporation Electric blanket safety circuit
DE3203128A1 (en) * 1982-01-30 1983-08-04 Braun Ag, 6000 Frankfurt CIRCUIT BREAKER
JPS6091583A (en) * 1983-10-24 1985-05-22 松下電器産業株式会社 Heat generator
GB2159354B (en) * 1984-04-03 1987-10-28 Birmid Qualcast Electrical protective devices
GB8417547D0 (en) * 1984-07-10 1984-08-15 Dreamland Electrical Apliances Electric blankets
CA1244863A (en) * 1984-12-06 1988-11-15 George C. Crowley Electric blanket or pad having improved positive temperature coefficient heater circuit
US4662204A (en) * 1985-01-17 1987-05-05 Usui Kokusai Sangyo Kabushiki Kaisha Apparatus for automatically bending metallic tubes
GB2200001A (en) * 1987-01-12 1988-07-20 Duraplug Elect Ltd Electric cable assembly with safety device
US4928423A (en) * 1988-07-20 1990-05-29 Yoshikazu Furuta Fishhook and method for producing the same
US5801914A (en) * 1996-05-23 1998-09-01 Sunbeam Products, Inc. Electrical safety circuit with a breakable conductive element
EP3481146A1 (en) * 2017-11-03 2019-05-08 Pentair Thermal Management LLC Inrush limit of self-regulating heating cables

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
BE628620A (en) * 1962-02-21
GB1155118A (en) * 1966-10-10 1969-06-18 Dreamland Electrical Appliance Protective Electric Circuits for Electrically-heated Blankets or Pads
US3493815A (en) * 1967-07-19 1970-02-03 Gen Electric Electric protective system
US3727105A (en) * 1971-06-24 1973-04-10 Anthony S Mfg Co Fail-safe power cut-out device
GB1600256A (en) * 1976-12-13 1981-10-14 Raychem Corp Process for the manufacture of electrical devices comprising conductive polymer compositions
GB1599709A (en) * 1978-01-31 1981-10-07 Dreamland Electrical Appliance Heating circuits
NZ191174A (en) * 1978-08-24 1983-03-15 Dreamland Electrical Appliance Electric blanket heating and overheating disconnect circuit

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NL8101632A (en) 1981-11-02
FR2485285A1 (en) 1981-12-24
GB2075777A (en) 1981-11-18
BR8101977A (en) 1981-10-06
DE3111911A1 (en) 1982-03-04
CA1156300A (en) 1983-11-01
AU542163B2 (en) 1985-02-07
AU6881681A (en) 1981-10-08
JPS57864A (en) 1982-01-05
JPS6412073B2 (en) 1989-02-28
GB2075777B (en) 1983-09-21
AR227041A1 (en) 1982-09-15
MX149294A (en) 1983-10-10
BE888195A (en) 1981-07-16
FR2485285B1 (en) 1985-07-12
ZA812180B (en) 1982-07-28

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