EP0277961A4 - Capacitor circuit interruption. - Google Patents

Capacitor circuit interruption.

Info

Publication number
EP0277961A4
EP0277961A4 EP19870904173 EP87904173A EP0277961A4 EP 0277961 A4 EP0277961 A4 EP 0277961A4 EP 19870904173 EP19870904173 EP 19870904173 EP 87904173 A EP87904173 A EP 87904173A EP 0277961 A4 EP0277961 A4 EP 0277961A4
Authority
EP
European Patent Office
Prior art keywords
capacitor
housing
actuator
terminals
capacitive element
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.)
Withdrawn
Application number
EP19870904173
Other languages
German (de)
French (fr)
Other versions
EP0277961A1 (en
Inventor
Jeffrey A Bentley
Thomas A Murphy
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.)
Aerovox Corp
Original Assignee
Aerovox 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 Aerovox Corp filed Critical Aerovox Corp
Publication of EP0277961A1 publication Critical patent/EP0277961A1/en
Publication of EP0277961A4 publication Critical patent/EP0277961A4/en
Withdrawn legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02HEMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
    • H02H7/00Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions
    • H02H7/16Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions for capacitors
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES, LIGHT-SENSITIVE OR TEMPERATURE-SENSITIVE DEVICES OF THE ELECTROLYTIC TYPE
    • H01G2/00Details of capacitors not covered by a single one of groups H01G4/00-H01G11/00
    • H01G2/14Protection against electric or thermal overload

Definitions

  • This invention relates to circuit interruption in electrical capacitors. Deterioration of a capacitor typically generates gasses that increase the internal presure within the sealed capacitor case, eventually causing rupture and leakage of the liquid dielectric. Pressure sensitive interrupters are sometimes used within the capacitor case to prevent rupture by breaking the electrical connection to the capacitive element in response to the internal pressure, thus stopping the gas buildup.
  • a general feature of the invention is a capacitor in which the interruption mechanism includes an actuator that moves in response to a predetermined physical condition within the capacitor to cause electrical disconnection, and in which the actuator has a range of motion through a limited number of stable positions and is mechanically pre-biased to move toward one of the stable positions when not already in one of the stable positions.
  • the physical condition is internal gas pressure within the capacitor, and the actuator moves in response to the pressure.
  • the actuator comprises a portion of a wall (e.g., the lid) of the housing; the actuator is attached to the housing by a support having at least one rigid section connected to the wall portion and the housing by hinge regions.
  • the wall portion is a disk
  • the support is a rigid annular rim
  • the hinge regions are flexible annular rings.
  • the capacitor terminals are mounted on the actuator.
  • the electrical connections include conductors between the terminals and the capacitive element and the interruption mechanism further comprises means for retaining each conductor in a fixed position relative to motion of the actuator.
  • the capacitive element includes a core that is ultrasonically welded to the inside of the housing. In other embodiments, a panel is interposed between the capacitive element and the terminals.
  • the housing is plastic and includes a lid on which the actuator is located.
  • the actuator is polypropylene.
  • the capacitor element includes a dielectric impregnant (i.e., a blend of polybutene and polyethylene) having a drop point that is above the normal operating temperature of the capacitor, and is below a temperature that would occur following failure of the capacitor winding. In other embodiments, there is a liquid dielectric impregnant (e.g., polybutene) that is compatible with the plastic of the housing.
  • Another general feature of the invention is a capacitor in which the terminals are mounted on and project from the housing and the housing includes a rim that surrounds the terminals and is filled with a dielectric material that insulates the terminals.
  • the capacitive element is quickly and effectively disconnected when pressure builds up.
  • the actuator pops up to aid in the disconnection and stably remains in its popped up position to reduce the chance of reconnection.
  • the entire capacitor is easily made. Mounting the terminals on the actuator assures positive motion of terminals away from the capacitive element. When the terminals are fully insulated, the capacitor can be used safely in tight quarters.
  • Fig. 1 is a perspective view of a capacitor.
  • Fig. 2 is a diagrammatic sectional side view at
  • Fig. 3 is an enlarged sectional side view, broken away, along 2-2 of the capacitor of claim 1.
  • Fig. 4 is a sectional side view of a fragment near the bottom of the capacitor case of Fig. 1.
  • Fig. 5 is a partial top view of the floor of the capacitor case of Fig. 1.
  • Figs. 6, 7 are sectional side view and plan view respectively of the capactive element core of Fig. 3.
  • Fig. 8 is a view like Fig. 3 after disconnection.
  • Figs. 9A, 9B, 9C are a sequence of sectional side views of a fragment of the capacitor lid of Fig. 1, showing three discrete positions of a lid using an alternative hinge arrangement.
  • Fig. 10 is a sectional side view of one-half of an alternative embodiment to Fig. 3.
  • Fig. 11 is a sectional side view of a portion of an alternative capacitor cover.
  • Fig. 12 is a sectional side view of a portion of an alternative capacitive element core.
  • Figs. 13, 14 are isometric and sectional side views of an alternative capacitor cover. Structure
  • a capacitor 10 includes a capacitor roll 12 inside an injection molded round polypropylene plastic case 14 having an injection molded polypropylene cover 16 (made, e.g., from polypropylene product no. PP-402 available from Monmouth Plastics, or Polyflam RPP 1058 available from A. Schul an) in which two terminals 18, 20 are mounted.
  • Case 14 has a segmented outer rim at the top end for mounting the capacitor.
  • terminal 20 is electrically connected (in a conventional manner) to the top of capacitor roll 12 via an uninsulated tinned copper or tinned copperweld wire 30; terminal 18 is electrically connected (also in a conventional manner) to the bottom of roll 12 via an insulated wire 32 which passes through a hollow polypropylene capacitor core 34 or around the outside of the capacitive element.
  • Capacitor roll 12 is surrounded by and embedded in a dielectric material 36.
  • terminals 18, 20 are of eyelet design and include tubular portions -40 inserted through access holes 42 in a rigid central disk section 44 of cover 16. The ends 46 of tubular portion 40 are bent back against the underside of disk 44 to hold terminals 18, 20 in place.
  • Wire 30 is pulled taut and attached to terminal 20 by solder 50 and includes a carefully machined nick 51 by which the amount of tension (e.g., 15 lbs) needed to sever the wire can be carefully controlled.
  • Insulated wire 32 is stripped to expose an uninsulated tinned copper conductor (which may also be nicked) that is similarly pulled taut and attached to terminal 18 by solder 52. If wire 32 is not nicked, it is not pulled taut, but is left with slack to allow cover 16 to move and break the nick in wire 30.
  • cover 16 In addition to central disk 44, cover 16 includes a rigid L-shaped (in cross-section) peripheral portion 56 ultrasonically welded to the inner wall of case 14. A panel 54 on cover 16 forms an insulative barrier between terminals 18 and 20. A hinged portion 58 connects peripheral portion 56 and central disk 44. Hinged portion 58 is ring-shaped, disposed at an angle of preferably 30-45° (a) with respect to the vertical, and includes a rigid part 59.
  • Grooves 60, ' 62, 66, 68 are arranged in pairs with the interior groove and the exterior groove of each pair, e.g., 60, 66, vertically aligned, thus defining two flexible annular rings (hinge regions) 71, 73 which bend when the internal pressure in the can rises.
  • central disk 44 is 0.062" thick
  • part 59 is 0.044" thick
  • grooves- 60, 62, 66, 68 have typical radii of 0.031".
  • the centers of radius of grooves 60, 62, 66, 68 lie at the intersections of planes that extend from the upper and lower surfaces of part 59, central disk 44, and peripheral portion 56.
  • capacitor 10 includes equally spaced vertical ribs 70 along inside wall 72 of case 14 and an ultrasonic energy directing grid 74 molded into the bottom 76 of case 14.
  • ribs 72 extend 0.02 inches into case 14 and are spaced 15° apart about the central axis of case 14.
  • Grid 74 is 0.75 inches in diameter and is concentric with the bottom of case 14.
  • Grid 74 includes upwardly extending peaks 80 and recessed rectangular regions 82.
  • the lower section of core 34 includes hexagonal bore 90 and circular bore 92.
  • Energy directing flange 94 extends around the bottom of core 34, and, when placed in case 14, contacts the top of peaks 80 of grid 74 at a limited number of sharply defined contact points at which ultrasonic welding can be accomplished.
  • Dielectric material 36 may be liquid polybutene as described in copending patent application, U.S. Serial No. 762,542, filed August 2, 1985, assigned to the same assignee as this application, and incorporated herein by reference.
  • Polybutene has an advantage of not attacking the polypropylene material of case 14.
  • the capacitor may be formed as a "dry" capacitor by substituting a waxlike blend for dielectric material 36.
  • the blend can be a mixture of polyethylene and polybutene chosen to be non-liquid at normal operating temperatures. As the capacitor begins to fail, the resulting temperature rise causes softening of the mixture, allowing gas to escape to the upper part of the interior of the capacitor case, to trigger operation of the disconnection mechanism. Additional details concerning the blend are set forth in patent application, Bentley, U.S. Serial No. 870,717, Impregnation and Encapsulating Material, filed on the same day as this application, assigned to the same assignee, and incorporated herein by reference. Assembly
  • Terminals 18, 20 are mounted on cover 16 by inserting unbent tubular portions 40 through access holes 42 and bending ends 46 of portions 40 back against the underside of disk 44.
  • Roll 12 and hollow core 34 are fixed inside case 14 by ultrasonically welding the flange 94 of core 34 to the peaks 80 of grid 74.
  • the sharp lower edge of flange 94 and the sharp upper edges of peaks 80 serve to direct the ultrasonic energy to the contact points between peaks 80 and flange 94, creating a strong weld.
  • hinged portion 200 could include three (or more) interior grooves 202, 204, 206 and three (or more) exterior grooves 208, 210, 212.
  • FIG. 9B as central disk 214 moves outward portion 200 may bend first at grooves 204, 210, 206, 212 to form a V-shape.
  • Fig. 9C as disk 214 continues to move outward additional force on portion 200 causes it to bend at grooves 202, 208. Eventually disk 214 reaches the final position shown in Fig. 9C and portion 200 is once again fully extended. Referring to Fig.
  • terminal 318 may be electrically connected to capacitor roll 312 via tinned steel terminal rivets 330 spot welded to tinned copper tabs 332.
  • Terminals 318 are mounted on cover 316 by inserting rivets 330 through cover 316 and welding terminals 318 to rivets 330 while applying a clamping force between rivet shoulders 338 and terminals 318. Rivet tips 340 are then inserted through holes 342 in panel 344. Tabs 332 (previously connected to capacitor rolls 312) are spot welded to tips 340.
  • Panel 344 and cover 316 are ultrasonically welded to the inner wall of case 314.
  • case 14 and core 34 are chosen from the same organic polymer family to permit ultrasonic welding. More than two terminals could be used. The- externally
  • 10 exposed parts of the terminal could be encased in an insulator.
  • hinged portion 58 may simply be a thinned down region 400 without grooves defining separate hinge regions.
  • the capacitive element core may be formed by countersinking 402 the end of the core.
  • cover 16 may include an annular rim 404 that rises above the level of in terminals 406. Wires 408 are attached to terminals 406, and passed through ports 410. Then the space within rim 404 is potted with a dielectric resin material 412, thus eliminating all exposed conductive elements. Such a capacitor is especially useful in close quarters to 25 prevent unintentional contacts, e.g., in HID type lamp ballasts.

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Microelectronics & Electronic Packaging (AREA)
  • Fixed Capacitors And Capacitor Manufacturing Machines (AREA)

Abstract

A circuit interrupter in electrical capacitors is activated by an interruption mechanism that moves an actuator (44) in response to a predetermined physical condition within the capacitor to cause electrical disconnection. The actuator has a range of motions through a limited number of stable positions and is mechanically pre-biased to move towards one of the stable positions when not already in one of the stable positions. Previously, pressure sensitive interrupters would be reconnected when the cover and terminals settled back due to pressure drop which could cause arcing. The present capacitor (12) is quickly and effectively disconnected when pressure builds up and stably remains in its popped up position to reduce the chance of reconnection. Capacitor terminals (18 and 20) are mounted on the actuator which is attached to a housing (54) by hinge regions (58) which provide a stable position upon build up of a pressure.

Description

Capacitor Circuit Interruption
Background of the Invention This invention relates to circuit interruption in electrical capacitors. Deterioration of a capacitor typically generates gasses that increase the internal presure within the sealed capacitor case, eventually causing rupture and leakage of the liquid dielectric. Pressure sensitive interrupters are sometimes used within the capacitor case to prevent rupture by breaking the electrical connection to the capacitive element in response to the internal pressure, thus stopping the gas buildup.
Published European patent application 0-093-455-A2 shows an interrupter in which the capacitor has terminals attached to a central disk that is part of the plastic can cover. The central disk is connected to the peripheral rim of the cover by an intermediate deformable "annular wall portion or web of reduced wall thickness" that permits the central disk to move away from the can in response to internal pressure. The capacitive element is held down by a rim around the inside of the plastic can so that as the central disk moves upward it eventually breaks the metal conductors that connect the terminals to the capacitive element. Sometimes, after a pressure sensitive interrupter has broken the electrical connections, the internal pressure drops and the cover and terminals settle back to their original positions where electrical reconnection or arcing may occur.
Summary of the Invention A general feature of the invention is a capacitor in which the interruption mechanism includes an actuator that moves in response to a predetermined physical condition within the capacitor to cause electrical disconnection, and in which the actuator has a range of motion through a limited number of stable positions and is mechanically pre-biased to move toward one of the stable positions when not already in one of the stable positions.
Preferred embodiments of the invention include the following features. The physical condition is internal gas pressure within the capacitor, and the actuator moves in response to the pressure. The actuator comprises a portion of a wall (e.g., the lid) of the housing; the actuator is attached to the housing by a support having at least one rigid section connected to the wall portion and the housing by hinge regions. The wall portion is a disk, the support is a rigid annular rim, and the hinge regions are flexible annular rings. In some embodiments, there is one rigid section, two hinge regions, and two stable positions. In other embodiments, there are two rigid sections interconnected by a hinge region, and three stable positions. In other embodiments, there is an annular rim that is thinner than the wall portion. The capacitor terminals are mounted on the actuator. The electrical connections include conductors between the terminals and the capacitive element and the interruption mechanism further comprises means for retaining each conductor in a fixed position relative to motion of the actuator. The capacitive element includes a core that is ultrasonically welded to the inside of the housing. In other embodiments, a panel is interposed between the capacitive element and the terminals. The housing is plastic and includes a lid on which the actuator is located. The actuator is polypropylene. The capacitor element includes a dielectric impregnant (i.e., a blend of polybutene and polyethylene) having a drop point that is above the normal operating temperature of the capacitor, and is below a temperature that would occur following failure of the capacitor winding. In other embodiments, there is a liquid dielectric impregnant (e.g., polybutene) that is compatible with the plastic of the housing.
Another general feature of the invention is a capacitor in which the terminals are mounted on and project from the housing and the housing includes a rim that surrounds the terminals and is filled with a dielectric material that insulates the terminals. The capacitive element is quickly and effectively disconnected when pressure builds up. The actuator pops up to aid in the disconnection and stably remains in its popped up position to reduce the chance of reconnection. The entire capacitor is easily made. Mounting the terminals on the actuator assures positive motion of terminals away from the capacitive element. When the terminals are fully insulated, the capacitor can be used safely in tight quarters.
Other advantages and features will become apparent from the following description of the preferred embodiment and from the claims.
Description of the Preferred Embodiment We first briefly describe the drawings. Drawings
Fig. 1 is a perspective view of a capacitor. Fig. 2 is a diagrammatic sectional side view at
2-2 of the capacitor of Fig. 1.
Fig. 3 is an enlarged sectional side view, broken away, along 2-2 of the capacitor of claim 1. Fig. 4 is a sectional side view of a fragment near the bottom of the capacitor case of Fig. 1.
Fig. 5 is a partial top view of the floor of the capacitor case of Fig. 1. Figs. 6, 7 are sectional side view and plan view respectively of the capactive element core of Fig. 3.
Fig. 8 is a view like Fig. 3 after disconnection. Figs. 9A, 9B, 9C are a sequence of sectional side views of a fragment of the capacitor lid of Fig. 1, showing three discrete positions of a lid using an alternative hinge arrangement.
Fig. 10 is a sectional side view of one-half of an alternative embodiment to Fig. 3.
Fig. 11 is a sectional side view of a portion of an alternative capacitor cover.
Fig. 12 is a sectional side view of a portion of an alternative capacitive element core. Figs. 13, 14 are isometric and sectional side views of an alternative capacitor cover. Structure
Referring to Fig. 1, a capacitor 10 includes a capacitor roll 12 inside an injection molded round polypropylene plastic case 14 having an injection molded polypropylene cover 16 (made, e.g., from polypropylene product no. PP-402 available from Monmouth Plastics, or Polyflam RPP 1058 available from A. Schul an) in which two terminals 18, 20 are mounted. Case 14 has a segmented outer rim at the top end for mounting the capacitor.
Referring to Fig. 2, terminal 20 is electrically connected (in a conventional manner) to the top of capacitor roll 12 via an uninsulated tinned copper or tinned copperweld wire 30; terminal 18 is electrically connected (also in a conventional manner) to the bottom of roll 12 via an insulated wire 32 which passes through a hollow polypropylene capacitor core 34 or around the outside of the capacitive element.
Capacitor roll 12 is surrounded by and embedded in a dielectric material 36.
Referring to Fig. 3, terminals 18, 20 are of eyelet design and include tubular portions -40 inserted through access holes 42 in a rigid central disk section 44 of cover 16. The ends 46 of tubular portion 40 are bent back against the underside of disk 44 to hold terminals 18, 20 in place.
Wire 30 is pulled taut and attached to terminal 20 by solder 50 and includes a carefully machined nick 51 by which the amount of tension (e.g., 15 lbs) needed to sever the wire can be carefully controlled. Insulated wire 32 is stripped to expose an uninsulated tinned copper conductor (which may also be nicked) that is similarly pulled taut and attached to terminal 18 by solder 52. If wire 32 is not nicked, it is not pulled taut, but is left with slack to allow cover 16 to move and break the nick in wire 30.
In addition to central disk 44, cover 16 includes a rigid L-shaped (in cross-section) peripheral portion 56 ultrasonically welded to the inner wall of case 14. A panel 54 on cover 16 forms an insulative barrier between terminals 18 and 20. A hinged portion 58 connects peripheral portion 56 and central disk 44. Hinged portion 58 is ring-shaped, disposed at an angle of preferably 30-45° (a) with respect to the vertical, and includes a rigid part 59.
Extending around the outer edge of rigid part 59 (where it joins peripheral portion 56) and around the inner edge of part 59 (where it joins central disk 44) are interior grooves 60, 62 and exterior grooves 66, 68.
Grooves 60, '62, 66, 68 are arranged in pairs with the interior groove and the exterior groove of each pair, e.g., 60, 66, vertically aligned, thus defining two flexible annular rings (hinge regions) 71, 73 which bend when the internal pressure in the can rises.
In one example, central disk 44 is 0.062" thick, part 59 is 0.044" thick, and grooves- 60, 62, 66, 68 have typical radii of 0.031". The centers of radius of grooves 60, 62, 66, 68 lie at the intersections of planes that extend from the upper and lower surfaces of part 59, central disk 44, and peripheral portion 56. Referring to Fig. 4, capacitor 10 includes equally spaced vertical ribs 70 along inside wall 72 of case 14 and an ultrasonic energy directing grid 74 molded into the bottom 76 of case 14.
Referring to Fig. 5, ribs 72 extend 0.02 inches into case 14 and are spaced 15° apart about the central axis of case 14. Grid 74 is 0.75 inches in diameter and is concentric with the bottom of case 14. Grid 74 includes upwardly extending peaks 80 and recessed rectangular regions 82.
Referring to Fig. 6, 7, the lower section of core 34 includes hexagonal bore 90 and circular bore 92. Energy directing flange 94 extends around the bottom of core 34, and, when placed in case 14, contacts the top of peaks 80 of grid 74 at a limited number of sharply defined contact points at which ultrasonic welding can be accomplished.
Dielectric material 36 may be liquid polybutene as described in copending patent application, U.S. Serial No. 762,542, filed August 2, 1985, assigned to the same assignee as this application, and incorporated herein by reference. Polybutene has an advantage of not attacking the polypropylene material of case 14.
Alternatively, the capacitor may be formed as a "dry" capacitor by substituting a waxlike blend for dielectric material 36. For example, the blend can be a mixture of polyethylene and polybutene chosen to be non-liquid at normal operating temperatures. As the capacitor begins to fail, the resulting temperature rise causes softening of the mixture, allowing gas to escape to the upper part of the interior of the capacitor case, to trigger operation of the disconnection mechanism. Additional details concerning the blend are set forth in patent application, Bentley, U.S. Serial No. 870,717, Impregnation and Encapsulating Material, filed on the same day as this application, assigned to the same assignee, and incorporated herein by reference. Assembly
Terminals 18, 20 are mounted on cover 16 by inserting unbent tubular portions 40 through access holes 42 and bending ends 46 of portions 40 back against the underside of disk 44.
Roll 12 and hollow core 34 are fixed inside case 14 by ultrasonically welding the flange 94 of core 34 to the peaks 80 of grid 74. The sharp lower edge of flange 94 and the sharp upper edges of peaks 80 serve to direct the ultrasonic energy to the contact points between peaks 80 and flange 94, creating a strong weld.
Next, roll 12 and core 34 are encased in material 36. Cover 16 is then placed into the top of case 14 and wires 30, 32, previously connected to roll 12, are fed up through tubular portions 40. Peripheral portion 56 is ultrasonically welded to case 14. Finally, wires 30, 32 are pulled taut and soldered into place. Operation
Referring to Fig. 3, when the internal pressure inside case 14 increases, an outward force is exerted on central disk 44 (in the direction indicated by arrow 100.)
Eventually the internal pressure becomes large enough to cause central disk 44 to pop outward to occupy a second stable position as shown in Fig. 8.
As disk 44 moves to its new position, it pulls on wire 30, causing it to break at nick 51. Wire 32 may also break if taut and nicked. This halts the flow of electric current through roll 12 and in turn the generation of gasses and the building of increased internal pressure. Rupture of case 14 is thus prevented. The effect of the design is to provide an actuator that has two stable positions, and is pre-biased to move toward one or the other stable position when not already in one of the stable positions. Thus, as the central disk 44 rises under pressure it reaches a point in its travel where it pops up to its upper position thus aiding rapid and complete disconnect. Once in the upper position the central disk resists downward movement except under a force that exceeds the pre-bias force. Other Embodiments
Other embodiments are within the following claims.
For example, referring to Fig. 9A, hinged portion 200 could include three (or more) interior grooves 202, 204, 206 and three (or more) exterior grooves 208, 210, 212. Referring to Fig. 9B, as central disk 214 moves outward portion 200 may bend first at grooves 204, 210, 206, 212 to form a V-shape. Referring to Fig. 9C, as disk 214 continues to move outward additional force on portion 200 causes it to bend at grooves 202, 208. Eventually disk 214 reaches the final position shown in Fig. 9C and portion 200 is once again fully extended. Referring to Fig. 10, in other embodiments, terminal 318 may be electrically connected to capacitor roll 312 via tinned steel terminal rivets 330 spot welded to tinned copper tabs 332. Terminals 318 are mounted on cover 316 by inserting rivets 330 through cover 316 and welding terminals 318 to rivets 330 while applying a clamping force between rivet shoulders 338 and terminals 318. Rivet tips 340 are then inserted through holes 342 in panel 344. Tabs 332 (previously connected to capacitor rolls 312) are spot welded to tips 340. Panel 344 and cover 316 are ultrasonically welded to the inner wall of case 314. As central disk 336 moves outward terminals 318 and rivets 330 also move outward causing an outward force to be exerted on foil tabs 332 and on the welds connecting tabs 332 to rivet tips 340. Tabs 332 are drawn outward until they come in contact with interrupter panel 344. As central disk 336 continues outward, the force exerted on the welds between tips 340 and tabs 332 causes tabs 332 to tear away from tips 340. This breaks the electrical connection between terminals 318 and capacitor roll
312. In the embodiment of Fig. 10, it is not necessary to attach the capacitor roll to the bottom of the case since panel 344 will prevent roll 312 from rising. The dimensions of the central disk 44 (actuator), part 59, and grooves 60, 62, 68 can be varied to change the flexibility of the hinges and thus control the dynamic characteristics of the interruption mechanism. When the dielectric impregnant is liquid, other impregnants can be substituted for polybutene, e.g., dioctyl phthalate (DOP), caster oil, or mineral oil, provided that it is not a liquid that will attack the capacitor case.
Other materials can be used for case 14 and core 34 provided that they are chosen from the same organic polymer family to permit ultrasonic welding. More than two terminals could be used. The- externally
10 exposed parts of the terminal could be encased in an insulator.
Referring to Fig. 11, hinged portion 58 may simply be a thinned down region 400 without grooves defining separate hinge regions. 5 Referring to Fig. 12, the capacitive element core may be formed by countersinking 402 the end of the core.
Referring to Figs. 13, 14, cover 16 may include an annular rim 404 that rises above the level of in terminals 406. Wires 408 are attached to terminals 406, and passed through ports 410. Then the space within rim 404 is potted with a dielectric resin material 412, thus eliminating all exposed conductive elements. Such a capacitor is especially useful in close quarters to 25 prevent unintentional contacts, e.g., in HID type lamp ballasts.
Other materials can be used for the cover provided that they have appropriate physical, thermal, and electrical properties to provide the required
30 mechanical operating features and also to satisfy the requirements of the particular application.

Claims

Claims
1. A capacitor comprising a capacitive element, a housing containing said element, terminals on said housing for making electrical connection to said capacitive element, and an interruption mechanism for electrically disconnecting said capacitive element in response to a predetermined physical condition within said capacitor, said mechanism including an actuator that moves in response to said condition to cause said electrical disconnection, said actuator having a range of motion through a limited number of stable positions, said actuator being mechanically pre-biased to move toward one of said stable positions when not already in one of said stable positions.
2. The capacitor of claim 1 wherein said physical condition comprises internal gas pressure within said capacitor, and said actuator moves in response to said pressure.
3. The capacitor of claim 1 wherein said actuator comprises a portion of a wall of said housing.
4. The capacitor of claim 1 wherein said wall portion is attached to said housing by a support.
5. The capacitor of claim 4 wherein said support comprises at least one rigid section connected to said wall portion and said housing by hinge regions.
6. The capacitor of claim 5 wherein said wall portion comprises a disk, said support comprises a rigid annular rim, and said hinge regions comprises flexible annular rings. 7. The capacitor of claim 5 wherein there is one said rigid section, two said hinge regions, and two said stable positions.
8. The capacitor of claim 5 wherein there are two said rigid sections interconnected by a said hinge region, and three said stable positions.
9. The capacitor of claim 1 wherein said terminals are mounted on said actuator.
10. The capacitor of claim 1 wherein said electrical connections include conductors between said terminals and said capacitive element and said interruption mechanism further comprises means for retaining each said conductor in a fixed position relative to motion of said actuator. 11. The capacitor of claim 10 wherein said capacitive element includes a core that is ultrasonically welded to the inside of said housing.
12. The capacitor of claim 10 wherein said means for retaining comprises a panel interposed between said terminals and said capacitive element.
13. The capacitor of claim 1 wherein said housing is plastic and includes a lid on which said actuator is located.
14. The capacitor of claim 1 wherein said actuator is polypropylene.
15. The capacitor of claim 1 wherein said capacitive element comprises a dielectric impregnant having a softening point above the normal operating temperature of said capacitor, and below a temperature that would occur following failure of the capacitor winding.
16. The capacitor of claim 15 wherein said impregnant comprises a blend of at least two components one of which is polybutene. 17. The capacitors of claim 16 wherein a second said component comprises polyethylene.
18. The capacitor of claim 13 wherein said capacitive element comprises a liquid dielectric impregnant that is compatible with said plastic.
19. The capacitor of claim 18 wherein said impregnant comprises polybutene.
20. A capacitor comprising a capacitor element, a housing containing said element, terminals mounted on and projecting from said housing for making connection to said capacitive element, said housing comprising an integral rim surrounding said terminals and projecting from said housing, said rim projecting further from said housing, than said terminals, and a dielectric material filling the space within said rim, whereby said terminals are insulated from the space surrounding said housing. 21. The capacitor of claim 4 wherein said support comprises an annular rim that is thinner than said wall portion.
EP19870904173 1986-06-04 1987-06-04 Capacitor circuit interruption. Withdrawn EP0277961A4 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US87062386A 1986-06-04 1986-06-04
US870623 1986-06-04

Publications (2)

Publication Number Publication Date
EP0277961A1 EP0277961A1 (en) 1988-08-17
EP0277961A4 true EP0277961A4 (en) 1990-04-10

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EP19870904173 Withdrawn EP0277961A4 (en) 1986-06-04 1987-06-04 Capacitor circuit interruption.

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EP (1) EP0277961A4 (en)
JP (1) JPS63503500A (en)
KR (1) KR880701484A (en)
CA (1) CA1291227C (en)
FI (1) FI880363A0 (en)
WO (1) WO1987007780A1 (en)

Families Citing this family (5)

* Cited by examiner, † Cited by third party
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ITBO20020192A1 (en) * 2002-04-11 2003-10-13 Italfarad Spa PROCEDURE FOR THE HERMETIC CLOSURE OF THE CLASSIC CASE OF A CAPACITOR AND CAPACITOR SO OBTAINED
DE102005041604A1 (en) * 2005-09-01 2007-03-15 Siemens Ag Device with at least one double-layer capacitor
ES2624533T3 (en) * 2005-09-20 2017-07-14 Abb Schweiz Ag A protection element for a capacitor with self-regenerating properties
US10637108B1 (en) 2016-12-09 2020-04-28 Cornell Dubilier Marketing, Inc. Apparatus for detecting expansion of an energy storage device case

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2580114A1 (en) * 1985-04-09 1986-10-10 Precision Lyonnaise Electrical capacitor with anti-explosion safety

Family Cites Families (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3221225A (en) * 1962-01-31 1965-11-30 Ericsson Telefon Ab L M Electric condenser enclosed in a metal envelope and provided with a protector breakable by an interior overpressure
US3248617A (en) * 1963-11-12 1966-04-26 Sprague Electric Co Nonbursting electrical capacitor
US3553542A (en) * 1969-08-21 1971-01-05 Sprague Electric Co Capacitor disconnect device
NL164991C (en) * 1975-08-08 1981-02-16 Philips Nv WRAPPING CAPACITOR WITH PRESSURE PROTECTION.
US4106068A (en) * 1977-01-27 1978-08-08 General Electric Company Pressure sensitive interrupter
US4107758A (en) * 1977-05-16 1978-08-15 Sprague Electric Company Fused oil filled capacitor
US4209815A (en) * 1978-04-17 1980-06-24 Jard, Inc. Capacitor protective circuit
FR2441911A1 (en) * 1978-11-20 1980-06-13 Radiotechnique Compelec SAFETY CAPACITOR WITH METALLIC DIELECTRIC
US4186417A (en) * 1978-12-07 1980-01-29 General Electric Company Capacitor protective system
US4240126A (en) * 1979-02-16 1980-12-16 Icar Industria Condensatori Applicazioni Elettroelettroniche S.P.A. Electric capacitor constructed to prevent explosion
US4286302A (en) * 1979-05-25 1981-08-25 General Electric Company Electrical capacitor protective arrangement
US4486809A (en) * 1981-02-23 1984-12-04 Emhart Industries, Inc. Anchoring means for a capacitor
IT8221776V0 (en) * 1982-05-05 1982-05-05 Ducati Elettrotecnica Spa DEVICE FOR THE AUTOMATIC EXCLUSION OF AN ELECTRIC SHORT-CIRCUIT CONDENSER.

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2580114A1 (en) * 1985-04-09 1986-10-10 Precision Lyonnaise Electrical capacitor with anti-explosion safety

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of WO8707780A1 *

Also Published As

Publication number Publication date
FI880363A (en) 1988-01-27
FI880363A0 (en) 1988-01-27
WO1987007780A1 (en) 1987-12-17
CA1291227C (en) 1991-10-22
EP0277961A1 (en) 1988-08-17
JPS63503500A (en) 1988-12-15
KR880701484A (en) 1988-07-27

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