GB2481263A - Terminal for a thermally responsive electric switch - Google Patents

Terminal for a thermally responsive electric switch Download PDF

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Publication number
GB2481263A
GB2481263A GB1016712.0A GB201016712A GB2481263A GB 2481263 A GB2481263 A GB 2481263A GB 201016712 A GB201016712 A GB 201016712A GB 2481263 A GB2481263 A GB 2481263A
Authority
GB
United Kingdom
Prior art keywords
switch
actuator
terminal
thermally responsive
metal plate
Prior art date
Legal status (The legal status 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 status listed.)
Granted
Application number
GB1016712.0A
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GB2481263B (en
GB201016712D0 (en
Inventor
Mark Heywood
Andrew Rixham
Mark Sherratt
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Otter Controls Ltd
Original Assignee
Otter Controls Ltd
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 Otter Controls Ltd filed Critical Otter Controls Ltd
Publication of GB201016712D0 publication Critical patent/GB201016712D0/en
Priority to PCT/GB2011/051112 priority Critical patent/WO2011158023A2/en
Priority to CN201180029863.6A priority patent/CN102947907B/en
Priority to EP11741680.0A priority patent/EP2583292B1/en
Priority to CN2011202113449U priority patent/CN202142471U/en
Publication of GB2481263A publication Critical patent/GB2481263A/en
Application granted granted Critical
Publication of GB2481263B publication Critical patent/GB2481263B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

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Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H37/00Thermally-actuated switches
    • H01H37/02Details
    • H01H37/32Thermally-sensitive members
    • H01H37/52Thermally-sensitive members actuated due to deflection of bimetallic element
    • H01H37/54Thermally-sensitive members actuated due to deflection of bimetallic element wherein the bimetallic element is inherently snap acting
    • H01H37/5418Thermally-sensitive members actuated due to deflection of bimetallic element wherein the bimetallic element is inherently snap acting using cantilevered bimetallic snap elements
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H71/00Details of the protective switches or relays covered by groups H01H73/00 - H01H83/00
    • H01H71/10Operating or release mechanisms
    • H01H71/12Automatic release mechanisms with or without manual release
    • H01H71/14Electrothermal mechanisms
    • H01H71/16Electrothermal mechanisms with bimetal element
    • H01H71/164Heating elements
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H71/00Details of the protective switches or relays covered by groups H01H73/00 - H01H83/00
    • H01H71/08Terminals; Connections
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H1/00Contacts
    • H01H1/58Electric connections to or between contacts; Terminals
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H37/00Thermally-actuated switches
    • H01H37/02Details
    • H01H37/04Bases; Housings; Mountings
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H37/00Thermally-actuated switches
    • H01H37/02Details
    • H01H37/12Means for adjustment of "on" or "off" operating temperature
    • H01H37/14Means for adjustment of "on" or "off" operating temperature by anticipatory electric heater
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H37/00Thermally-actuated switches
    • H01H37/02Details
    • H01H37/32Thermally-sensitive members
    • H01H37/52Thermally-sensitive members actuated due to deflection of bimetallic element
    • H01H37/54Thermally-sensitive members actuated due to deflection of bimetallic element wherein the bimetallic element is inherently snap acting
    • H01H37/5427Thermally-sensitive members actuated due to deflection of bimetallic element wherein the bimetallic element is inherently snap acting encapsulated in sealed miniaturised housing
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R4/00Electrically-conductive connections between two or more conductive members in direct contact, i.e. touching one another; Means for effecting or maintaining such contact; Electrically-conductive connections having two or more spaced connecting locations for conductors and using contact members penetrating insulation
    • H01R4/02Soldered or welded connections
    • H01R4/028Soldered or welded connections comprising means for preventing flowing or wicking of solder or flux in parts not desired
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H1/00Contacts
    • H01H1/58Electric connections to or between contacts; Terminals
    • H01H2001/5894Electric connections to or between contacts; Terminals the extension of the contact being welded to a wire or a bus
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H9/00Details of switching devices, not covered by groups H01H1/00 - H01H7/00
    • H01H9/02Bases, casings, or covers
    • H01H2009/0285Casings overmoulded over assembled switch or relay
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H37/00Thermally-actuated switches
    • H01H37/02Details
    • H01H37/32Thermally-sensitive members
    • H01H37/52Thermally-sensitive members actuated due to deflection of bimetallic element
    • H01H37/54Thermally-sensitive members actuated due to deflection of bimetallic element wherein the bimetallic element is inherently snap acting
    • H01H2037/5463Thermally-sensitive members actuated due to deflection of bimetallic element wherein the bimetallic element is inherently snap acting the bimetallic snap element forming part of switched circuit

Abstract

A terminal 25 for a thermally responsive switch has a surface portion 32 arranged to prevent solder or flux from entering a contact area of the switch during or after a soldering process. The surface portion can be textured, abraded, etched or stamped into the terminal. The texture can comprise lines that are diagonal (fig 8a), cross-hatched, extend away from the contact area, indented into or raised above the surface. The surface portion can comprise a line 34 between the texture and the contact area; that can be perpendicular to the flow of solder or flux, indented into or raised above the surface. The thermal switch can comprise an insulating housing (fig 1, 9) sandwiched by metal plates (fig 1, 4,11) connected to terminals (fig 1, 24, 25); a bimetallic actuator (fig 1, 6) and a heater (fig 1, 8) and be used to protect a motor from over heating.

Description

Thermally Responsive Electric Switches
Field of the Invention
[0001] This invention concerns improvements relating to thermally responsive electrical switches employing thermal actuators such as bimetallic elements, and more particularly, but not exclusively, concerns thermally responsive switches employed in the overheat protection of electrical motors.
Background of the Invention
[0002] Many kinds of electrical switches employing bimetallic actuators are known and likewise many different forms of bimetallic switch actuators are known. Early bimetallic switches simply employed a plain bimetal blade which moved relatively slowly in response to temperature changes and gave rise to arcing problems in the switch. The development of the snap-acting bimetallic actuator, constructed as a dished bimetallic element capable of moving between oppositely curved configurations with a snap action, provided a major advance in the art. Various forms of snap-acting bimetallic actuators are known, such as those disclosed in GB-A-600055, GB-A-657434, GB-A-1064643, GB-A-1542252 and GB-A-2124429, for example.
[0003] Likewise, various forms of electric switches employing such bimetallic actuators are known; GB-A-2 124429 abovementioned, for example, discloses the utilisation of a pear-shaped snap-acting bimetallic actuator in a current-sensitive switch, where the heating of the bimetal by flow of electric current therethrough is designed to trip the switch in a current overload situation.
[0004] In WO-A-92/20086 there is described a miniature electrical switch employing a snap-acting bimetallic actuator, the switch being well suited to automatic manufacture and installation and comprising a small number of parts. The switch comprises a moulded plastics body portion, which captures therein first and second terminal conductors; a snap-acting bimetallic actuator is secured to one of the two conductors and carries a contact which constitutes the moving contact of the switch and is arranged for cooperation in switching operations with the other of the two conductors. The possibility is further described of providing a silver or silver alloy coating, for example a silver antimony coating as described in WO-A-92/14282, on the terminal conductor which co-operates with the moving switch contact carried by the bimetal so as to enable an otherwise plain conductor to be utilised without need for attachment of a discrete contact to the conductor. To enhance the current sensitivity of the switch, the possibility is further disclosed to provide a series-connected heating element in the switch for injecting heat into the bimetallic actuator when the switch is in closed condition, and in a particularly convenient arrangement, this is achieved by forming the heating element as a portion of one or other, or both, of the two terminal conductors.
[0005] In GB-A-2275 823 a switch with similar construction to WO-A-92/20086 is described, in which the moulded plastic body is formed of a polymeric PTC material, such that the break and remake characteristics of the thermally responsive switches can be tuned for specific applications.
[0006] In GB-A-2280785 there is disclosed a further variation of a thermally responsive switch in which the components are designed specifically for automatic assembly (commonly known as lead frame) whereby the major components are stamped out of continuous metal strip. Welding, riveting and plastic insert or over moulding can all be carried out in the strip form and brought together in strip form to the final assembly machine. Variations in, for example, terminal configurations can be included in the strip form with redundant parts cropped ahead of or during the final assembly. GB-A-2280785 also deals with the issues of reducing the working stress in bimetals to increase the life of the thermally responsive switches.
[0007] The above patents described methods of continuously improving assembly and material characteristics aiming to provide solutions for a wide range of motor application requirements, whilst effectively minimising the tooling and parts count. Generally the above patents disclose designs that employ the use of plastics and polymers for manufacturing, assembly, electrical insulation and the isolation and protection of the finished switch and especially the insert or over moulding of plastics and polymers to facilitate electrical insulation between metal parts.
[0008] Other patents, for example US-A-4476452, rely upon mainly metal materials in the design and rely upon separate gaskets for electrically insulating electrical parts. This in itself provides problems in ensuring the rigidity of the separate parts and also the ingress of dirt and dust into the working parts of the thermally responsive switch. These problems are increased when the thermally responsive switch also includes a series-connected heating element within the design.
[0009] In recent years the size, performance and assembly methods of electrical motors have changed. Thermally responsive switches employed in the over heat protection of these electrical motors can be subjected to higher temperatures during the assembly of the motor; for example, the use of lead free solders has resulted in increased processing temperatures.
[0010] Furthermore, electrical motors have become smaller and lighter and therefore more prone to overheating. Yet at the same time the thermally responsive switches are expected to function alongside electronic control circuits which may necessitate longer energisation times in the fault condition enabling the electronic controls to run through a predetermined logic sequence ahead of the biinetal switching.
[0011] There may be benefits, in higher ambient temperatures, for thermally responsive switches made from mainly metal materials; however in these circumstances there may be compromises in the production processes, electrical insulation and long term reliability compared to thermally responsive switches that rely in some part on components made from plastics and polymers.
10012] Care needs to be taken when soldering wires or conductors onto terminals to ensure that flux does not transfer along the terminal and contaminate internal parts of the switch.
Also, elevated temperatures during normal or abnormal use may cause excess flux on the terminal to melt and flow to subsequently contaminate the internal parts of the switch.
Statement of the Invention
[0013] According to one aspect of the invention, there is provided a thermally responsive switch comprising first and second electrical terminals, a thermally responsive switch actuator, and a housing comprising a metal plate in electrical contact with the first electrical terminal. The metal plate, forming part of the housing, may thereby improve heat loss from the switch, for example during the period that the motor is running allowing higher load currents to be carried.
[0014] According to another aspect of this invention there is provided a thermally responsive control in which a proportion of the component parts are manufactured in advanced plastic polymers suitable for ambient temperatures in excess of 320°C.
[0015J According to another aspect of this invention there is provided a thermally responsive control in which a proportion of component parts are manufactured in advanced plastic polymers suitable for ambient temperatures in excess of 320°C and the polymer assists in the isolation of the internal electrical parts.
[0016] According to another aspect of the invention there is provided a thermally responsive control in which a proportion of metal parts and the advanced plastic polymers are assembled together by an insert or over moulding process.
[0017] According to another aspect of this invention there is provided a thermally responsive control in which there are two sub-assemblies that are assembled together by a mechanical clamping process, the first assembly being reliant upon insert or overmoulding of high temperature polymers to provide a moulded unit to enclose and or attach first electrical connection means, base portions, an in-series electrical heater and a fixed contact, the second sub-assembly being made up of a second electrical connection means, a bimetal blade part including a second contact and an integral metal housing, such that the two sub-assemblies are electrically connected when the bimetal blade is in the cold state and electrically separate when the bimetal blade part is in the hot state.
[0018] According to another aspect of the invention there is provided a thermally responsive switch in which one side of the assembly is sealed against ingress of dirt and debris by an insert moulded bridge.
[0019] According to another aspect of the invention there is provided a thermally responsive control in which the bimetal blade part is assembled to the blade mount part in such a way as to reduce the working stress in the bimetal.
[0020] According to another aspect of this invention there is provided a thermally responsive control including parts manufactured in plastic polymers in which the first break time of the control is greater than four seconds in a motor with a 30 amp stall current and the subsequent cycling of the control limits the winding temperature of the motor to less than 300°C for a short term duration and 250°C for a long term duration.
[0021] According to another aspect of the invention there is provided a thermally responsive switch in which a portion of the terminal surface is textured and/or formed to prevent or restrict the flow of flux or solder from the external portion of the terminal into the internal areas of the switch.
[0022] Embodiments of the present invention provide the ability to develop a suite of thermally responsive controls designed to protect a range of electrical motors so that only a minimum of parts are required to be modified to cover the range.
[0023] Embodiments of the invention may provide thermally responsive switches to meet the new requirements in the art whilst enabling the switch to be manufactured in an automated process with the minimum of components.
Brief Description of the Drawings
100241 There now follows, by way of example only, a detailed description of preferred embodiments of the present invention, with reference to the figures identified below.
Figure 1 shows an exploded view of the complete assembly of the first embodiment.
Figure 2a shows an exploded view from above of the two main sub-assemblies, which are the base sub-assembly and the cover sub-assembly.
Figure 2b shows an exploded view from the underside of the sub-assemblies in 2a.
Figures 3a to 3c show an assembly sequence of the cover sub-assembly.
Figures 3d to 3f show an alternative assembly sequence of the cover sub-assembly Figure 3g shows a perspective cross section of a variant with a discrete rivet.
Figure 4a shows a plan view of the base sub-assembly of the first embodiment including a heater.
Figure 4b shows a plan view of the base sub-assembly of a second embodiment that does not include a heater.
Figure 5a shows a cross section of the first embodiment.
Figure Sb shows a cross section a second embodiment.
Figure 6a shows a top view of the complete assembly whereby the left hand terminal of the cover sub-assembly is redundant so the terminals are at the same end of the assembly.
Figure 6b shows a top view of the complete assembly whereby the right hand terminal of the cover sub-assembly is redundant so the assembly terminals are in line.
Figure 7a shows an underside view of the mould retention features in the base sub-assembly of the first embodiment.
Figure 7b shows an underside view of alternative mould retention features in the base sub-assembly of the first embodiment.
Figure 7c shows an underside view of alternative mould retention features in the base sub-assembly in an alternative configuration of the first embodiment.
Figure 8a shows an underside view of the cover and in line terminal showing a textured surface detail.
Figure 8b shows an underside view of the cover and in line terminal showing an alternative textured surface detail.
Figure 8c shows an underside view of the cover and in line terminal showing another alternative textured surface detail.
Detailed Description of the Embodiments
[0025] In the following description, functionally similar parts carry the same reference numerals between different embodiments. Reference is made to the proprietor's above- mentioned patent publications GB-A-2124429, WO-A-92/20086, GB-A-2275823 and GB-A-2280785 which describe the functions of the various control types; the following description will focus on improvements to these control types.
First Embodiment -Thermally Responsive Switch with Integral Heater [0026] Figure 1 is an exploded view of the first embodiment. The individual components are as follows. A base terminal plate 11 is formed from an electrically conductive strip material and includes the base terminal 12. The base terminal plate 11 includes mould retention features 16 and a heater pad 14 for a first connection of the in-series electrical heater 8. A base contact plate 13, which is formed from the same electrically conductive strip material as the base terminal plate 11. The base contact plate 13 includes a heater pad 14 for a second connection of the in-series electrical heater 8 and a platform 15 to which the fixed contact 10 will be assembled.
100271 A fixed electrical contact 10 is assembled to the base contact plate 13 by a welding process, by riveting or any other suitable method. The contact can be made of a silver alloy, silver-plated copper, silver wire, layered contact tape or any other low resistance material suitable for meeting the electrical switching requirements.
[0028] A moulded unit 9 is formed during an overmoulding process which takes place whilst the base plates 11 & 13 are in the sfrip form. The moulded unit 9 serves to support the base plates 11 & 13 by the formation of moulded plastic rivets 27 formed by molten plastic during the moulding process and/or the molten plastic flowing around preformed chamfers 23 or stamped profiles 28 around the edges of the base plates 11 & 13. The moulded unit 9 has four vertical sides and the moulding process fills and seals the gap between the two base plates 11 & 13. Tn use, the moulded unit 9 will be subjected to radiated and conducted heat from the in-series electrical heater 8 along with ambient heat from the electrical motor and the motor assembly processes, therefore the plastic should preferably have a heat deflection temperature above 320°C and melt temperature of greater than 375°C.
[0029] The in-series electrical heater 8 is connected to the heater pads 14. This heater 8, in collaboration with specially selected bimetal specifications, can be used to fine tune the break and remake characteristics of the assembled thermally responsive switch.
[0030] A cover 4 is formed from an electrically conductive strip material. This may be the same conductive strip material from which the base plates 11 & 13 are formed or it may be a second conductive strip material. The cover 4 includes the second electrical terminal 24 or 25. The cover 4 may also include a blade mount platform 3 from which a rivet 18 is formed.
In an alternative embodiment a discrete rivet 18 may be utilised. The rivet 18 may be formed by cropping a continuous feed of wire material, for example an alloy wire with both ends being flattened or coined' over during the assembly process.
[0031] A bimetal blade 6 may be stamped out of a coil of suitable bimetal material. The blade 6 includes a reciprocating rivet hole 5. The blade 6 is subjected to a process, known as tooling, that will set the make and break characteristics of the bimetal. The tooling may take place whilst the blade 6 is in the strip form.
[0032J A moving contact 7 is assembled to the bimetal blade 6 by a welding process, or alternatively by a rivet or other suitable attachment. As with the fixed contact 10, this can be manufactured from a suitable low resistance material.
[0033] The base terminal plate 11, base contact plate 13, moulded unit 9, heater 8 and fixed contact 10 form the first sub-assembly la. The cover 4, rivet 18, blade 6 and moving contact 7 form the second sub-assembly lb. 10034] Figure 2a shows the view from above of the two sub-assemblies la, lb before the final assembly. Tn this view, the internal parts of the first sub-assembly can be clearly seen in place. Any or all of the heater pads 14, contact platform 15, fixed contacts 10 and in-series heater 8 may be added to the base plates 11 & 13 whilst still in the strip form either before or after the moulding process.
[0035] Figure 2b shows the view from the underside of the two sub-assemblies la, lb before the final assembly. In this view, the moulded rivet 27 features of the first sub-assembly are clearly visible, together with the bridge 26 between the two base plates 11, 13.
This bridge 26 prevents access to live parts and also prevents ingress of debris into the contact and bimetal area of the switch.
10036] Figure 2b also shows the internal details of the second sub-assembly in its assembled form. The bimetal blade 6 is attached to the cover 4 by two separate methods each with its own purpose. The rivet 18 is formed from the cover 4 so as to remove the need for an additional component. The rivet 18 provides excellent mechanical strength, essentially forming a pivot or fulcrum about which the bimetal blade 6 moves. However it is known that the constant movement of a rivet over the life of an appliance can compromise the electrical connection through the rivet. The weld 17 provides excellent electrical contact but it is known that a weld 17 causes stress in a bimetal which can compromise the mechanical strength of the bimetal 6 over the life of the appliance. By placing the rivet 18 between the active, moveable part of the bimetal 6 and the weld 17, the number of cycles achieved before failure can be increased, for example by 50%.
[0037] The rivet hole 5 may be positioned on the centre line of the bimetal blade 6 with the weld 17 located within an arc-shaped zone beyond the outer perimeter of the rivet 8, the arc being a maximum of 60° either side of the centre line with the apex of the arc at the centre point of the rivet 18. The weld 17 should preferably be as close as possible to the outside rim of the rivet 18 without actually being in contact with the rivet 18. This may enable the overall length of the inactive part of the blade 6 to be minimised, which in turn may reduce the overall package size of the finished switch and the cost of the materials.
[0038] In another alternative, there may be an interference fit or engagement between a part of the blade mount platform 3 and the blade 6, without the need for a rivet. For example a strip of material 19 may be formed at the rear of blade mount platform 3 which may be folded over onto the end of the bimetal blade 6 before the weld process. The bimetal blade 6 is then welded through this strip 19 onto the blade mount platform 3. The additional strip 19 may become the equivalent of a weld slug' which would normally need to be supplied as a separate part. The strip 19, afler welding, may provide the fulcrum for the bimetal blade 6 without the need for an additional rivet. This strip of material 19 would be formed from what would otherwise be waste material in the strip that forms the cover 4.
[0039] Figures 3a to 3c show the assembly sequence of the integral rivet 18 and weld 17. In embodiments that include either an integral or discrete rivet 18, the preferred sequence is to make the rivet 18 first followed by the weld 17; however, this sequence may be reversed if required. The moving contact 7 may be fixed to the bimetal blade 6 whilst the bimetal is in the strip form.
[00401 Figure 3g is a cross sectional view of the previously described variant with a discrete rivet.
[0041] In an alternative embodiment, the rivet 18 may be replaced by another suitable fixing means, such as an interference fit or engagement between a part of the blade mount platform 3 and the blade 6. In an alternative embodiment, the weld 17 may be replaced by a braze or
other suitable join.
[0042] The bimetal blade 6 is the active element of the thermally responsive control and its function is well known. Briefly, in a closed position the moving electrical contact 7 contacts the fixed contact 10 on the base contact plate 13, which closes the circuit through the switch.
The bimetal 6 is both temperature and current sensitive and is caused to dish or snap in the opposite direction when the ambient temperature, the self-heating properties of the bimetal due to the current, or a combination of the two reach a set limit. The movement of the blade 6 moves the moving electrical contact 7 out of electrical contact with the fixed contact 10 SO that the electrical contact breaks and the switch opens.
[0043] The bimetal blade 6 reverts to its original position when it has cooled below the specified reset temperature. Different bimetal materials with different resistivity can be used. In some circumstances the bimetal materials may have more than two layers.
[0044] Figure 4a shows a plan view of the heater 8 attached to the base plates 11 & 13. The heater 8 can be produced from any of a range of materials, or in any of a range of thicknesses, lengths and/or shapes, to give the desired resistance value. This enables the performance of the thermally sensitive switch to be tuned to the requirements of the particular application. The heater 8 has two ends which are welded to the individual heater pads 14, bridging the electrical circuit between the two base plates 11 & 13. Alternative heaters may be as described in WO-A-92/20086 or GB-A-2275823, for example.
10045] The materials from which the individual components are manufactured also influence the way in which the switch performs; for example the cover 4 may either assist or inhibit the heat loss during the cycle. Alternatively the material of the cover 4 and/or base plates 11 & 13 may influence the electrical resistance and subsequently the heat generation of these parts.
[0046] The following criteria can be modified to fine tune the performance of the switch: * Choice of bimetal material.
* Tooling of the bimetal.
* Heater resistance and output * Material of the cover 4 * Material of Base Plate * Material and mass of Contacts Any or all of the above may enable standard design components to a meet a broad range of protection requirements in electrical motors, for example automobile window lift motors, seat adjustment motors, and windscreen wiper motors.
[0047] The performance characteristics of the switch are expected to be within the following broad ranges, with the aim to provide an average off/on ratio of four to one.
Carry current: 3 to 20 Amps Stall current: 7 to 50 amps First break time under fault conditions: up to 10 seconds First remake: less than 10 seconds Second remake: greater than 10 seconds Winding temperature -short term: maximum 300°C Winding temperature -long term maximum 250°C [0048] It can be seen that the heater 8, moulded unit 9 and the fixed contact 10 are provided in the first sub-assembly and the bimetal blade 6, moving contact 7 and metal cover 4 are provided in the second sub-assembly. The first and second sub-assemblies are brought together as part of the final assembly when the cover 4 is clenched onto the moulded unit 9 to form the complete switch as shown in Figure 5. The plastic material specified for the moulded unit 9 is preferably capable of withstanding the process of clenching and also is capable of withstanding the pull off forces that can be exercised on the moulded unit 9 by both the cover 4 and the base plates 11 & 13.
[00491 The strip material provides the option to include additional features on the metal parts in which the redundant parts can be cropped as necessary, dependant upon which configuration is required. Figure 6a and 6b shows an example of this which provides the option of the second terminal 24 on the same side as the first terminal 12 or the second terminal 25 in line with the first terminal 12.
[0050J Figure 7a shows the countersunk hole detail 28 of the moulded rivets 27 that are formed during the moulding process.
[0051] Figure 7b shows an alternative embodiment to Figure 7a in which the retention of the moulded units 9 to the base plates 11 & 13 is achieved by the moulded unit 9 being formed around the chamfered edges 23 of the base plates 11 & 13.
[00521 Figure 7c shows an alternative configuration to Figure 7b in which the edges of the base plates 11 & 13 include a stamped profile 29 instead of the chamfered edge. The profile 29 is designed to provide enhanced retention between the base plates 11 & 13 and moulded unit 9. Other profiles may be utilised and further embodiments may include a combination of rivet, chamfer and stamped profile.
[0053] In Figures 7a, 7b and 7c the molten plastic forms a bridge 26 between the two base plates 11 & 13 to enhance the rigidity of the assembly and/or to close the gap against ingress of foreign particles from the motor assembly, such as carbon dust.
[0054] The motor assembly industry is moving towards lead free soldering which melts at a higher temperature than the leaded varieties; this requires the thermally responsive switch to withstand elevated temperatures during installation. In addition, automated motor assembly lines may employ belt ovens to process the lead free solder, which in turn requires the switch to withstand elevated temperatures for longer periods.
[0055] As previously detailed, the moulded unit 9 also will be subjected to radiated and conducted heat from the in-series electrical heater 8 along with the ambient heat from the electrical motor, therefore the polymer material of the moulded unit 9 should preferably have a heat deflection temperature of 320°C or above and a final melt temperature of over 375°C. The moulded unit 9 will also need to be able withstand the pull off forces that can be exercised on the moulded unit 9 by both the cover 4 and the base units 11 & 13. It has been found that a high temperature liquid crystal polymer (LCP) is suitable for this purpose.
Second Embodiment -Thermally Responsive Switch without Integral Heater [0056] In some applications it may not be necessary to include a heater 8 to achieve the performance requirements, therefore in the second embodiment there is provided a thermally responsive switch with a single base plate 22 as detailed in Figures 4b and Sb.
Advantageously the design of the components may allow the moulding and assembly tooling for the single base plate 22 to be interchangeable with the two-piece base plates 11 &13.
[0057] The resultant switch will to some extent be subjected to less heat than the first embodiment but will still be subject to the extremes temperatures of the production line and/or the application, and therefore may still benefit from the improvements to materials, retention features and production techniques detailed in the first embodiment.
Terminals with Textured Finish [0058] In motor applications where wires or conductors are soldered onto the terminals 12, 24, 25 a textured finish may be added onto the terminals 12, 24, 25 to prevent and/or inhibit the flux flowing along the terminal 12, 24, 25 and into the internal part of the switch assembly 1. The texture may be formed by any of a number of methods, for example abrasion, shot blasting, etching or stamping, and the texture may be random (e.g. roughened) or formed by geometric shapes. The distal area of the terminal 12, 24, 25 onto which the wire or conductor is to be soldered is preferably kept free of the texture.
[0059] Figure 8a illustrates an embodiment where the inline cover terminal 25 includes a textured surface 32 between a distal area of the terminal 25 and the moulded unit 9 so as to prevent solder or flux entering the switch housing and passing into the area of the contacts 7, 10 during the assembly of, or during the life of the switch. The textured surface 32 could alternatively or additionally be positioned within the switch housing, but between the moulded unit and the area of the contacts 7, 10. For example, the textured surface 32 could form a barrier partially or completely around the contacts 7, 0.
[0060] As shown in Figure 8a, the textured surface may take the form of diagonal lines which are preferably stamped into the terminal 25 whilst the material is in strip form. Tt is preferred that the lines extend to the side edges of the terminal 25.
[0061] Figure 8b illustrates an alternative embodiment where the textured surface 32 takes the form of cross hatched diagonal lines stamped into the terminal 25.
[0062] In the embodiments of Figures 8a and 8b, the diagonal lines are at an angle of approximately 30° to the transverse direction of the terminal 25, but this angle may be between approximately 45° and 0°, so that any solder or flux that may flow during the assembly or during the life of the switch is directed away from the switch contacts 7, 10.
Figure 8c shows an embodiment in which the lines extend transversely across the terminal.
10063] The lines may be indented as grooves or channels, or raised as ridges or steps from the surface of the terminal 25.
[0064] It is preferred that there is a small raised step or barrier 34 at the end of the textured surface 32 closest to contacts 7, 10, to act as a barrier if an excessive amount of solder or flux is used during the assembly. Alternatively or additionally, as shown in Fig. 8c, a raised step or barrier may be formed at the end of the textured surface towards the distal end of the terminal 25. The resultant line extends substantially perpendicularly to the expected direction of flow of the solder or flux, and is generally deeper or higher than the lines of the textured surface 32. The line may be curved, depending on the geometry of the terminal and switch. As an alternative to the raised step or barrier 34, there may be provided a groove or channel.
Alternative Embodiments [0065] The present invention is not limited to the above embodiments. For example a PTC or NTC heater could be included in the assembly 1 to increase the remake time of the bimetal blade 6. Alternatively, the heat input from the PTC or NTC heater could be such that it is not possible to reactivate the switch until the power has been switched off from an external source and the assembly has been allowed to cool down.
[0066] In other embodiments, the contact 10 on the base plate 13 could be formed as part of the base plate 11 and, if required, that contact may be plated in a low resistance material.
10067] In other embodiments, the bimetal blade 6 could be mounted on the base plate 22 or the two-part base plate 11 & 13, in which case the fixed contact 10 would be on the cover 4.
The cover 4 could be made of insulating material 9, moulded around the terminal 24 on which the fixed contact 10 is mounted directly.
[0068] In other embodiments the moulded unit 9 may extend beneath one or both of the base plates 11 and 13, or the base plate 22, so that the moulding may form either an additional insulation layer and/or electrical isolation, for example if one side of the switch is close to an additional heat source or is to be housed close to live electrical parts.
[0069J The method of texturing the contact areas to prevent the flow of solder and flux on terminals is not limited to the present switch embodiments and can be employed on any soldered joint in any application.
[0070] The embodiments described above are illustrative of rather than limiting to the present invention. Alternative embodiments apparent on reading the above description may nevertheless fall within the scope of the invention.

Claims (91)

  1. Claims 1. A terminal (12; 24; 25) for a thermally responsive switch (1), the terminal having a surface portion (32, 34) arranged to prevent flux or solder from entering a contact area of the switch (1) during or after a soldering process.
  2. 2. The terminal (12; 24; 25) of claim 1, wherein the surface portion comprises a textured surface (32).
  3. 3. The terminal of claim 2, wherein the textured surface (32) comprises an abraded surface.
  4. 4. The terminal of claim 2, wherein the textured surface (32) comprises an etched surface.
  5. 5. The terminal of claim 2, wherein the textured surface (32) is stamped into the terminal (12; 24; 25).
  6. 6. The terminal of any one of claims 2 to 5, wherein the textured surface (32) comprises a plurality of lines.
  7. 7. The terminal of claim 6, in which the lines are diagonal to the axis of the terminal.
  8. 8. The terminal of claim 6 or 7, in which the lines are cross-hatched.
  9. 9. The terminal of any one of claims 6 to 8, in which the lines extend in a direction away from a contact area of the switch (1).
  10. 10. The terminal of any one of claims 6 to 9, wherein the lines are indented into the surface.
  11. 11. The terminal of any one of claims 6 to 9, wherein the lines are raised above the surface.
  12. 12. The terminal of any preceding claim, wherein the surface portion includes a line substantially perpendicular to the direction of flow of flux or solder (34).
  13. 13. The terminal of claim 12, wherein the line is indented into the surface.
  14. 14. The terminal of claim 12, wherein the line is raised above the surface.
  15. 15. The terminal of any one of claims 12 to 14, each when dependent on claim 2, wherein the line (34) is positioned between the textured surface (32) and a contact area (7, 10) of the switch (1).
  16. 16. A thermally responsive switch (1) including at least one terminal as claimed in any preceding claim.
  17. 17. A method of forming the switch (1) of claim 16, in which the terminal (12; 24; 25) is formed from strip material, and the surface portion (32, 34) is applied to the strip material.
  18. 18. A thermally responsive switch (1) comprising electrical terminals (12, 24; 25), a thermally responsive switch actuator (6), and a housing comprising a metal plate (4; 11; 13; 22) electrically connected to one of the electrical terminals (12; 24; 25), the housing further comprising insulating material (9).
  19. 19. The switch of claim 18, wherein the metal plate comprises first and second plate portions (11, 13) electrically connected in series by a heater (8) for heating the actuator (6).
  20. 20. The switch of claim 19, wherein the first and second plate portions (11, 13) are separated by an insulating portion (26).
  21. 21. The switch of claim 20, wherein the insulating portion (26) is integral with said insulating material (9).
  22. 22. The switch of any preceding claim, wherein the metal plate (4; 11; 22) is integral with the electrical terminal (12; 24; 25) to which it is electrically connected.
  23. 23. The switch of any preceding claim, wherein one or more of the metal plate (4; 11, 13; 22) and the electrical terminals (12; 24; 25) comprises a metal strip.
  24. 24. The switch of any preceding claim, wherein the thermally responsive actuator (6) is mounted on the metal plate (4).
  25. 25. The switch of any preceding claim, wherein the electrical terminals comprise first and second electrical terminals, the first electrical terminal (12) being electrically connected to the first said metal plate (11; 22), wherein the housing further comprises a second metal plate (4) electrically connected to the second electrical terminal (24; 25).
  26. 26. The switch of claim 25, wherein the second metal plate (4) is integral with the second electrical terminal (24; 25).
  27. 27. The switch of claim 25 or 26, wherein the second metal plate (4) and the second electrical terminal (24; 25) comprise a metal strip.
  28. 28. The switch of any one of claims 25 to 27 when dependent on any one of claims ito 23, wherein the thermally responsive actuator (6) is mounted on the second metal plate (4).
  29. 29. The switch of claim 24 or 28, wherein the actuator (6) is mounted by a first mounting means (18), which provides a fulcrum for the switch actuator (6), and a second mounting means (17) which provides an electrical connection to the switch actuator (6).
  30. 30. The switch of claim 29, wherein the first mounting means comprises a rivet (18).
  31. 31. The switch of claim 30, wherein the rivet (18) is integral with the metal plate (4) on which the actuator (6) is mounted.
  32. 32. The switch of any one of claims 29 to 31, wherein the second mounting means comprises a weld (17).
  33. 33. The switch of claim 24 or 28, wherein the actuator (6) is mounted by a portion (19) of themetalplate(4, 11,22).
  34. 34. The switch of claim 33, wherein the portion (19) is folded over a portion of the actuator (6).
  35. 35. The switch of claim 33 or 34, wherein the portion (19) is welded to the actuator (6).
  36. 36. The switch of claim 35 when dependent on claim 34, wherein the portion of the actuator (6) is welded between said folded-over portion (19) and the metal plate (4).
  37. 37. The switch of claim 35 or 36, wherein the portion (19) provides an electrical connection to the actuator (6).
  38. 38. The switch of any one of claims 33 to 37, wherein the portion (19) provides a fulcrum for the actuator (6).
  39. 39. The switch of any one of claims 25 to 32, wherein the insulating material (9) is disposed between the first and second metal plates (4, 11, 13; 22).
  40. 40. The switch of claim 39, wherein the insulating material (9) substantially seals a contact area of the switch (1).
  41. 41. The switch of any preceding claim, wherein the insulating material (9) has a heat deflection temperature of at least 320°C.
  42. 42. The switch of any preceding claim, wherein the insulating material (9) has a melt temperature of over 375°C.
  43. 43. A thermally responsive switch comprising electrical terminals (12, 24; 25), a thermally responsive switch actuator (6), and insulating material (9) having a heat deflection temperature of at least 320°C.
  44. 44. A thermally responsive switch comprising electrical terminals (12, 24; 25), a thermally responsive switch actuator (6), and insulating material (9) having a melt temperature of over 375°C.
  45. 45. The switch of any preceding claim, wherein the insulating material (9) comprises high temperature liquid crystal polymer.
  46. 46. A thermally responsive switch comprising first and second electrical terminals (12, 24; 25), and a thermally responsive switch actuator (6) mounted in electrical contact with one of the terminals (12, 24; 25) by a first mounting means (18), which acts as a fulcrum for the switch actuator (6), and a second mounting means (17) which acts as an electrical connection to the switch actuator (6).
  47. 47. The switch of claim 46, wherein the first mounting means comprises a rivet (18).
  48. 48. The switch of claim 46 or 47, wherein the second mounting means comprises a weld (17).
  49. 49. The switch of any one of claims 46 to 48, wherein the second mounting means (18) is located between the first mounting means (17) and a moveable part of the actuator (6).
  50. SO. A thermally responsive switch (1) comprising electrical terminals (12, 24; 25), a thermally responsive switch actuator (6), and a metal plate (4) electrically connected to one of the electrical terminals (24; 25), wherein the actuator (6) is mounted by a portion (19) of the metal plate (4).
  51. 51. The switch of claim 50, wherein the portion (19) is folded over a portion of the actuator (6).
  52. 52. The switch of claim 50 or 51, wherein the portion (19) is welded to the actuator (6).
  53. 53. The switch of claim 52 when dependent on claim 51, wherein the portion of the actuator (6) is welded between said folded-over portion (19) and the metal plate (4).
  54. 54. The switch of claim 52 or 53, wherein the portion (19) provides an electrical connection to the actuator (6)
  55. 55. The switch of any one of claims 50 to 54, wherein the portion (19) provides a fulcrum for the actuator (6).
  56. 56. A thermally responsive switch (1) comprising electrical terminals (12, 24; 25), a thermally responsive switch actuator (6), and first and second metal plate portions (1 1, 13) electrically connected in series by a heater (8) for heating the actuator (6).
  57. 57. The switch of claim 56, wherein the first and second metal plate portions (11, 13) are separated by an insulating portion (26).
  58. 58. The switch of claim 57, wherein the insulating portion (26) is integral with an insulating housing portion (9) of the switch (1).
  59. 59. The switch of any one of claims 50 to 58, wherein the first metal plate portion (11) is integral with one of the electrical terminals (12).
  60. 60. The switch of any one of claims 50 to 59, wherein at least one of the metal plate portions (11, 13) and electrical terminals comprises a metal strip.
  61. 61. A thermally responsive switch (1) comprising first and second electrical terminals (12, 24; 25) in electrical contact with respective first and second metal plates (4, 11, 13; 22), insulating material (9) disposed between the first and second metal plates (4, 11, 13; 22); and a thermally responsive switch actuator (6) mounted on the first metal plate (4).
  62. 62. The switch of claim 61, wherein the second metal plate comprises first and second plate portions (11, 13) separated by an insulating portion (26) and electrically connected in series by a heater (8) for heating the actuator (6).
  63. 63. A method of assembling a thermally responsive switch, comprising: a. providing first and second metal plates (4, 11, 13; 22), electrically connected with respective first and second electrical terminals (12, 24; 25), and b. assembling the first and second metal plates (4, 11, 13; 22) together by means of an insulating material (9).
  64. 64. The method of claim 63, wherein the insulating material (9) and the first and second metal plates (4, 11, 13; 22) comprise a housing for the switch (1).
  65. 65. The method of claim 63 or 64, wherein the insulating material (9) is moulded to at least one of the first and second metal plates (4, 11, 13; 22).
  66. 66. The method of claim 65, wherein the insulating material (9) is fixed to the first and/or second metal plates (4, 11, 13; 22) by moulding to one or more fixing features (23, 28) thereof.
  67. 67. The method of claim 65 or 66, wherein the moulding process comprises an overmoulding process.
  68. 68. The method of claim 65 or 66, wherein the moulding process comprises an insert moulding process.
  69. 69. The method of any one of claims 63 to 68, wherein the first and second metal plates (4, 11, 13; 22) are assembled together by a mechanical clamping process.
  70. 70. The method of any one of claims 63 to 69, wherein one of the metal plates (4; 22) has a thermally responsive switch actuator (6) mounted thereon.
  71. 71. The method of any one of claims 63 to 70, wherein the thermally responsive switch actuator (6) is mounted to said one of the metal plates (4; 22) by riveting.
  72. 72. The method of claim 71, wherein the rivet (18) is integral with said one of the metal plates (4, 11, 13;22).
  73. 73. The method of any one of claims 63 to 72, wherein the thermally responsive switch actuator is mounted to said one of the metal plates (4; 22) by welding.
  74. 74. The method of any one of claims 63 to 73, wherein at least one of the first and second metal plates comprises first and second plate portions (11, 13) electrically connected in series by a heater (8).
  75. 75. The method of claim 74, wherein the first and second plate portions (11, 13) are separated by a portion (26) of said insulating material (9).
  76. 76. A method of assembling a thermally responsive switch, comprising: a. providing a first subassembly (la) comprising a first metal plate (11, 13; 22) electrically connected to a first electrical terminal (12); b. providing a second subassembly (ib) comprising a second metal plate (4) electrically connected to a second electrical terminal (24; 25), and having a thermally responsive switch actuator (6) mounted thereon; wherein one of the first and second subassemblies (la) has insulating material (9) moulded thereto; the method further comprising: c. clamping the other one of the subassemblies (ib) to the insulating material (9).
  77. 77. The method of any one of claims 63 to 76, wherein the insulating material (9) substantially seals a contact area of the switch (1).
  78. 78. The method of any one of claims 63 to 77, wherein the insulating material (9) has a heat deflection temperature of at least 320°C.
  79. 79. The method of any one of claims 63 to 78, wherein the insulating material (9) has a melt temperature of over 375°C.
  80. 80. The method of any one of claims 63 to 79, wherein the insulating material (9) comprises high temperature liquid crystal polymer.
  81. 81. A method of assembling a thermally responsive switch (1), comprising mounting a thermally responsive switch actuator (6) in electrical contact with a switch terminal (24) by a first mounting means (18), which acts as a fulcrum for the switch actuator (6), and a second mounting means (17) which acts as an electrical connection to the switch actuator (6).
  82. 82. The method of claim 81, wherein the first mounting means comprises a rivet (18).
  83. 83. The method of claim 81 or 82, wherein the second mounting means comprises a weld (17).
  84. 84. The method of any one of claims 81 to 83, wherein the second mounting means (18) is located between the first mounting means (17) and a movable part of the actuator (6).
  85. 85. A method of assembling a thermally responsive switch (1) comprising mounting a thermally responsive switch actuator (6) on a metal plate (4; 11; 22) electrically connected to an electrical terminal (12; 24; 25), wherein the actuator (6) is mounted by a portion (19) of the metal plate (4, 11,22).
  86. 86. The method of claim 85, wherein the portion (19) is folded over a portion of the actuator (6).
  87. 87. The method of claim 85 or 86, wherein the portion (19) is welded to the actuator (6).
  88. 88. A method of assembling a thermally responsive switch (1), including: a. providing a metal plate (4) having a plurality of terminal portions (24, 25), each for providing a first terminal of the switch (1); and b. removing at least one of the terminal portions (24, 25).
  89. 89. The method of claim 88, further comprising providing a second metal plate (11) electrically connected to a second terminal (12) of the switch (1); wherein one of the terminal portions (24) is on the same side of the switch (1) as the second terminal (12), and another of the terminal portions (25) is on the opposite side of the switch (1) from the second terminal (12).
  90. 90. A thermally responsive electric switch substantially as herein described with reference to and/or as shown in the accompanying drawings.
  91. 91. A method of assembling a thermally responsive switch substantially as herein described with reference to and/or as shown in the accompanying drawings.
GB1016712.0A 2010-06-17 2010-10-05 Thermally responsive electric switches Active GB2481263B (en)

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PCT/GB2011/051112 WO2011158023A2 (en) 2010-06-17 2011-06-14 Thermally responsive electric switches
CN201180029863.6A CN102947907B (en) 2010-06-17 2011-06-14 Thermally responsive electrical switch
EP11741680.0A EP2583292B1 (en) 2010-06-17 2011-06-14 Thermally responsive electric switches
CN2011202113449U CN202142471U (en) 2010-06-17 2011-06-14 Thermal response electric switch

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GB1010182.2A GB2481240B (en) 2010-06-17 2010-06-17 Thermally responsive electric switches

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Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2481240B (en) * 2010-06-17 2017-04-12 Otter Controls Ltd Thermally responsive electric switches
CN102496520A (en) * 2011-12-23 2012-06-13 贵州航天电器股份有限公司 Temperature relay
US20200343066A1 (en) * 2019-04-25 2020-10-29 Sensata Technologies, Inc. Electrical contact assembly using silver graphite

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0058372A1 (en) * 1981-02-11 1982-08-25 Limitor AG Thermal switch with bimetallic element
GB2111329A (en) * 1981-11-25 1983-06-29 Schurter Ag Fuse carrier
US4620175A (en) * 1985-10-11 1986-10-28 North American Philips Corporation Simple thermostat for dip mounting
FR2599553A1 (en) * 1986-06-02 1987-12-04 Itt Composants Instr Circuit breaker, in particular for printed circuit boards
JP2008251208A (en) * 2007-03-29 2008-10-16 Nikko Fuji Electronics Co Ltd Terminal with solder rising barrier portion, and its manufacturing method

Family Cites Families (34)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB600055A (en) 1946-05-07 1948-03-30 Eric Hardman Taylor Thermally controlled electric switches
GB657434A (en) 1949-02-07 1951-09-19 Eric Hardman Taylor Improvements in or relating to snap-action actuating members for electric switches
US2820870A (en) * 1956-07-19 1958-01-21 Metals & Controls Corp Thermostatic switch
US3104296A (en) * 1959-05-11 1963-09-17 Texas Instruments Inc Thermostatic switches
GB1064643A (en) 1964-06-10 1967-04-05 Taylor John C Improvements in or relating to thermally responsive switch actuating members and switches incorporating them
GB1061865A (en) * 1964-08-24 1967-03-15 Taylor John C Improvements in thermally-controlled electric switches
GB1237634A (en) * 1968-04-03 1971-06-30 Texas Instruments Inc Thermostatic devices
IT1019376B (en) * 1974-09-24 1977-11-10 Texas Instruments Italia Spa MINIATURIZED AMPEROMETRIC AND STATIC THERMO DEVICE PARTICULARLY SUITABLE FOR THE PROTECTION OF ELECTRIC MOTORS
GB1542252A (en) 1975-10-30 1979-03-14 Taylor J Snap-acting thermally responsive bimetallic actuators
GB2124429B (en) 1982-07-29 1986-07-30 Otter Controls Ltd Bimetallic actuators
US4476452A (en) * 1982-09-27 1984-10-09 Texas Instruments Incorporated Motor protector
US4755787A (en) * 1987-12-07 1988-07-05 Portage Electric Products, Inc. Means for mounting a bimetal blade in a thermostatic switch
JP2507171B2 (en) * 1990-11-06 1996-06-12 松下冷機株式会社 Motor overload protection device
GB9102062D0 (en) 1991-01-31 1991-03-13 Otter Controls Ltd Improvements relating to conductors for switching applications
GB9109316D0 (en) 1991-04-30 1991-06-19 Otter Controls Ltd Improvements relating to electric switches
US5268664A (en) * 1993-01-25 1993-12-07 Portage Electric Products, Inc. Low profile thermostat
GB2275823B (en) 1993-02-18 1996-11-27 Otter Controls Ltd Improvements relating to electric switches
GB2280785B (en) 1993-08-03 1997-10-01 Otter Controls Ltd Improvements relating to electric switches
DE4345350C2 (en) * 1993-10-30 1997-05-22 Hofsaes Geb Zeitz Ulrika Temp. dependent switch
CN2172526Y (en) * 1993-12-07 1994-07-20 江维亮 Improved circuit breaker without fuse
JP2733499B2 (en) * 1994-12-09 1998-03-30 ウチヤ・サーモスタット株式会社 thermostat
DE19609310C2 (en) * 1996-03-09 1999-07-15 Thermik Geraetebau Gmbh Switch with a temperature-dependent switching mechanism
DE19609577C2 (en) * 1996-03-12 1998-02-19 Thermik Geraetebau Gmbh Switch with a temperature-dependent switching mechanism
US6069551A (en) * 1997-05-02 2000-05-30 Therm-O-Disc, Incorporated Thermal switch assembly
DE19748589C2 (en) * 1997-11-04 1999-12-09 Marcel Hofsaes Switch with a temperature-dependent switching mechanism
US5844464A (en) * 1997-11-24 1998-12-01 Therm-O-Disc, Incorporated Thermal switch
DE19752581C2 (en) * 1997-11-27 1999-12-23 Marcel Hofsaes Switch with a temperature-dependent switching mechanism
DE19847209C2 (en) * 1998-10-13 2002-04-25 Marcel Hofsaes Switch with an insulating carrier
JP3820055B2 (en) * 1999-04-16 2006-09-13 ウチヤ・サーモスタット株式会社 Thermal protector
DE10257201A1 (en) * 2001-12-07 2003-07-17 Furukawa Electric Co Ltd Thermal protector
JP2005203311A (en) * 2004-01-19 2005-07-28 Japan Thermostat Kk Thermostat
CN201122558Y (en) * 2007-08-17 2008-09-24 森萨塔科技公司 Temperature current protector
DE102008048554B3 (en) * 2008-09-16 2010-02-04 Hofsaess, Marcel P. Temperature-dependent switch
GB2481240B (en) * 2010-06-17 2017-04-12 Otter Controls Ltd Thermally responsive electric switches

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0058372A1 (en) * 1981-02-11 1982-08-25 Limitor AG Thermal switch with bimetallic element
GB2111329A (en) * 1981-11-25 1983-06-29 Schurter Ag Fuse carrier
US4620175A (en) * 1985-10-11 1986-10-28 North American Philips Corporation Simple thermostat for dip mounting
FR2599553A1 (en) * 1986-06-02 1987-12-04 Itt Composants Instr Circuit breaker, in particular for printed circuit boards
JP2008251208A (en) * 2007-03-29 2008-10-16 Nikko Fuji Electronics Co Ltd Terminal with solder rising barrier portion, and its manufacturing method

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CN202142471U (en) 2012-02-08
GB2481263B (en) 2017-03-01
GB2481240B (en) 2017-04-12
EP2583292B1 (en) 2017-09-27
CN102947907A (en) 2013-02-27
GB201016712D0 (en) 2010-11-17
WO2011158023A2 (en) 2011-12-22
CN102947907B (en) 2016-06-22
GB201010182D0 (en) 2010-07-21
WO2011158023A3 (en) 2012-03-29
EP2583292A2 (en) 2013-04-24
GB2481240A (en) 2011-12-21

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