Claims
- 1. An electrolytic capacitor comprising:
a hermetically sealed capacitor case defining an interior case chamber, the case having a case side wall extending to a side wall upper opening edge, and a cover hermetically sealed against the side wall upper opening edge to enclose the interior case chamber, an electrode stack assembly and electrolyte located within the interior case chamber, the electrode stack further comprising a plurality of capacitor layers stacked in registration upon one another, each capacitor layer comprising a cathode layer having a cathode tab, an anode sub-assembly comprising at least one anode layer having an anode tab, and a separator layer located between adjacent anode and cathode layers, whereby all adjacent cathode layers and anode layers of the stack are electrically insulated from one another by a separator layer, anode terminal means extending through said capacitor case side wall for electrically connecting a plurality of said anode tabs to one another and providing an anode connection terminal at the exterior of said case in relation to an external encapsulation area of the case side wall; cathode terminal means extending through an encapsulation area of said capacitor case side wall for electrically connecting a plurality of said cathode tabs to one another and providing a cathode connection terminal at the exterior of said case in relation to said external encapsulation area; a connector assembly electrically attached to said anode connection terminal for making electrical connection with said anode tabs and electrically attached to said cathode connection terminal for making electrical connection with said cathode tabs; and a connector block formed of an epoxy droplet adhered to the encapsulation area of said capacitor side wall surrounding and encapsulating said anode and cathode connection terminals and the electrical connections with the connector assembly.
- 2. The capacitor of claim 1, wherein the anode terminal means comprises a feedthrough assembly fitted into an anode opening in said encapsulation area of said capacitor case side wall and further comprising a feedthrough pin coupled at an internal pin end with said plurality of anode tabs and means for supporting and electrically insulating said feedthrough pin from said capacitor case and disposing an external pin end away from said case to provide said anode connection terminal.
- 3. The capacitor of claim 2, wherein said supporting means of said feedthrough assembly further comprises an insulating spacer through which said feedthrough pin extends and a portion of said epoxy droplet.
- 4. The capacitor of claim 1, wherein the cathode terminal means comprises a feedthrough assembly comprising a feedthrough pin coupled at an internal pin end with said plurality of cathode tabs, and means for supporting and electrically insulating said feedthrough pin from said capacitor case and disposing an external pin end away from said case to provide said cathode connection terminal.
- 5. The capacitor of claim 1, wherein said supporting means of said feedthrough assembly further comprises an insulating spacer through which said feedthrough pin extends and a portion of said epoxy droplet.
- 6. The capacitor of claim 1, wherein the cathode terminal means comprises means for electrically connecting said plurality of cathode tabs to said case side wall to provide said cathode connection terminal upon said case side wall within said encapsulation area.
- 7. The capacitor of claim 1, wherein the cathode terminal means comprises a cathode feedthrough pin extending through a cathode opening in said case side wall having an internal pin end connected to said plurality of cathode tabs and an external pin end extending away from said case to provide said cathode connection terminal, said cathode feedthrough pin electrically connected with said case.
- 8. The capacitor of claim 1, wherein the anode terminal means comprises an insulating guide fitted into an anode opening in said encapsulation area of said capacitor case side wall and an anode pin coupled at an internal pin end with said plurality of anode tabs and extending through said insulating guide supporting and electrically insulating said anode pin from said capacitor case and disposing an external pin end away from said case to provide said anode connection terminal.
- 9. The capacitor of claim 1, wherein the cathode terminal means comprises a cathode pin extending through a cathode opening in said case side wall having an internal pin end connected to said plurality of cathode tabs and an external pin end extending away from said case to provide said cathode connection terminal, and said epoxy droplet fills any gap between the cathode pin and the case side wall.
- 10. The capacitor of claim 1, wherein:
the cathode terminal means comprises a cathode pin extending through a cathode opening in said case side wall having an internal pin end connected to said plurality of cathode tabs and an external pin end extending at least to the external surface of said case side wall; and said connector assembly comprises a cathode connector wire surface welded to said case side wall adjacent said external pin end.
- 11. An implantable medical device comprising:
a housing; an electronics module disposed within the housing; an energy source disposed within the housing and electrically coupled to the electronics module; and an electrolytic capacitor disposed within the housing and electrically coupled to the electronics module, the capacitor further comprising:
a hermetically sealed capacitor case defining an interior case chamber, the case having a case side wall extending to a side wall upper opening edge, and a cover hermetically sealed against the side wall upper opening edge to enclose the interior case chamber, an electrode stack assembly and electrolyte located within the interior case chamber, the electrode stack further comprising a plurality of capacitor layers stacked in registration upon one another, each capacitor layer comprising a cathode layer having a cathode tab, an anode sub-assembly comprising at least one anode layer having an anode tab, and a separator layer located between adjacent anode and cathode layers, whereby all adjacent cathode layers and anode layers of the stack are electrically insulated from one another by a separator layer, anode terminal means extending through said capacitor case side wall for electrically connecting a plurality of said anode tabs to one another and providing an anode connection terminal at the exterior of said case in relation to an external encapsulation area of the case side wall; cathode terminal means extending through an encapsulation area of said capacitor case side wall for electrically connecting a plurality of said cathode tabs to one another and providing a cathode connection terminal at the exterior of said case in relation to said external encapsulation area; a connector assembly electrically attached to said anode connection terminal for making electrical connection with said anode tabs and electrically attached to said cathode connection terminal for making electrical connection with said cathode tabs; and a connector block formed of an epoxy droplet adhered to said encapsulation area of said capacitor side wall surrounding and encapsulating said anode and cathode connection terminals and the electrical connections with the connector assembly.
- 12. The implantable medical device of claim 11, wherein the anode terminal means comprises a feedthrough assembly fitted into an opening in said encapsulation area of said capacitor case side wall and further comprising a feedthrough pin coupled at an internal pin end with said plurality of anode tabs and means for supporting and electrically insulating said feedthrough pin from said capacitor case and disposing an external pin end away from said case to provide said anode connection terminal.
- 13. The implantable medical device of claim 12, wherein said supporting means of said feedthrough assembly further comprises an insulating spacer through which said feedthrough pin extends and a portion of said epoxy droplet.
- 14. The implantable medical device of claim 11, wherein the cathode terminal means comprises a feedthrough assembly comprising a feedthrough pin coupled at an internal pin end with said plurality of cathode tabs, and means for supporting and electrically insulating said feedthrough pin from said capacitor case and disposing an external pin end away from said case to provide said cathode connection terminal.
- 15. The implantable medical device of claim 11, wherein said supporting means of said feedthrough assembly further comprises an insulating spacer through which said feedthrough pin extends and a portion of said epoxy droplet. case to provide said cathode connection terminal.
- 16. The implantable medical device of claim 11, wherein the cathode terminal means comprises means for electrically connecting said plurality of cathode tabs to said case side wall to provide said cathode connection terminal upon said case side wall within said encapsulation area.
- 17. The implantable medical device of claim 11, wherein the anode terminal means comprises an insulating guide fitted into an anode opening in said encapsulation area of said capacitor case side wall and an anode pin coupled at an internal pin end with said plurality of anode tabs and extending through said insulating guide supporting and electrically insulating said anode pin from said capacitor case and disposing an external pin end away from said case to provide said anode connection terminal.
- 18. The implantable medical device of claim 11, wherein the cathode terminal means comprises a cathode pin extending through a cathode opening in said case side wall having an internal pin end connected to said plurality of cathode tabs and an external pin end extending away from said case to provide said cathode connection terminal, and said epoxy droplet fills any gap between the cathode pin and the case side wall.
- 19. The implantable medical device of claim 11, wherein:
the cathode terminal means comprises a cathode pin extending through a cathode opening in said case side wall having an internal pin end connected to said plurality of cathode tabs and an external pin end extending at least to the external surface of said case side wall; and said connector assembly comprises a cathode connector wire surface welded to said case side wall adjacent said external pin end.
- 20. The implantable medical device of claim 11, wherein the cathode terminal means comprises a cathode feedthrough pin extending through said case side wall having an internal pin end connected to said plurality of cathode tabs and an external pin end extending away from said case to provide said cathode connection terminal, said cathode feedthrough pin electrically connected with said case.
- 21. A method of making an electrolytic capacitor comprising:
providing a capacitor case defining an interior case chamber, the case having a case side wall extending to a side wall upper opening edge, providing a cover adapted to be sealed against the side wall upper opening edge to enclose the interior case chamber, forming an electrode stack assembly, the electrode stack further comprising a plurality of capacitor layers stacked in registration upon one another, each capacitor layer comprising a cathode layer having a cathode tab, an anode sub-assembly comprising at least one anode layer having an anode tab, and a separator layer located between adjacent anode and cathode layers, whereby all adjacent cathode layers and anode layers of the stack are electrically insulated from one another by a separator layer, disposing the electrode stack assembly within the interior case chamber, electrically connecting the anode tabs to an anode terminal pin; extending the anode terminal pin through an anode opening of the capacitor case side wall providing an anode connection terminal at the exterior of said case in relation to an external encapsulation area of the case side wall; electrically connecting the cathode tabs to a cathode terminal pin; extending the cathode terminal pin to one of the capacitor case or through a cathode opening of the capacitor case side wall providing a cathode connection terminal in relation to said external encapsulation area; attaching a connector assembly to said anode and cathode connection terminals thereby making electrical connection with said anode and cathode tabs, thereby forming a capacitor assembly; applying epoxy to said external encapsulation area; and curing said applied epoxy to form an epoxy droplet adhered to the encapsulation area of said capacitor side wall surrounding and encapsulating said anode and cathode connection terminals and the electrical connections with the connector assembly.
- 22. The method of claim 21, wherein the step of extending an anode terminal pin further comprises:
providing an anode feedthrough assembly further comprising a feedthrough pin having internal and external pin ends and a pin supporting insulating spacer; coupling said internal pin end with said plurality of anode tabs; fitting said pin supporting insulating spacer in the anode opening in said encapsulation area of said capacitor case side wall; and extending said external pin end through said pin supporting insulating spacer thereby disposing an external pin end away from said case to provide said anode connection terminal.
- 23. The method of claim 22, wherein said epoxy applying step further comprises applying epoxy into said anode opening to fill any spaces and gaps of the supporting insulating spacer, the feedthrough pin and the anode opening.
- 24. The method of claim 21, wherein the step of extending a cathode terminal pin further comprises:
providing a cathode feedthrough assembly further comprising a feedthrough pin having internal and external pin ends and a pin supporting insulating spacer; coupling said internal pin end with said plurality of cathode tabs; fitting said pin supporting insulating spacer in the cathode opening in said encapsulation area of said capacitor case side wall; and extending said external pin end through said pin supporting insulating spacer thereby disposing an external pin end away from said case to provide said cathode connection terminal.
- 25. The method of claim 24, wherein said epoxy applying step further comprises applying epoxy into said cathode opening to fill any spaces and gaps of the supporting insulating spacer, the feedthrough pin and the cathode opening.
- 26. The method of claim 21, wherein the step of extending a cathode terminal pin further comprises:
extending the cathode terminal pin into said cathode opening of the capacitor case side wall; trimming said cathode terminal pin; and welding the cathode terminal pin in the cathode opening to seal the cathode opening thereby disposing an external pin end flush with said case side wall to provide said cathode connection terminal within said external encapsulation area.
- 27. The method of claim 26, wherein the step of extending a cathode terminal pin further comprises:
extending the cathode terminal pin through said cathode opening of the capacitor case side wall providing a cathode connection terminal extending outward in relation to said external encapsulation area; and welding the cathode terminal pin in the cathode opening to seal the cathode opening thereby disposing an external pin end away from said case to provide said cathode connection terminal.
- 28. The method of claim 21, wherein:
said applying step further comprises applying a metered amount of uncured liquid epoxy to said external encapsulation area; and said curing step further comprises rotating said capacitor assembly during curing of said applied epoxy to form an epoxy droplet adhered to the encapsulation area of said capacitor side wall surrounding and encapsulating said anode and cathode connection terminals and the electrical connections with the connector assembly having a bulbous droplet shape.
- 29. The method of claim 21, wherein:
said applying step further comprises applying a metered amount of uncured liquid epoxy to said external encapsulation area; and said curing step further comprises disposing said capacitor assembly in an elevated temperature environment and rotating said capacitor assembly during curing of said applied epoxy for a predetermined time to form an epoxy droplet adhered to the encapsulation area of said capacitor side wall surrounding and encapsulating said anode and cathode connection terminals and the electrical connections with the connector assembly having a bulbous droplet shape.
- 30. The method of claim 21, wherein:
said applying step further comprises masking at least one edge of the encapsulation area to inhibit flow of applied epoxy from the encapsulation area and applying a metered amount of uncured liquid epoxy to said external encapsulation area; and said curing step further comprises rotating said capacitor assembly during curing of said applied epoxy to form an epoxy droplet adhered to the encapsulation area of said capacitor side wall surrounding and encapsulating said anode and cathode connection terminals and the electrical connections with the connector assembly having a bulbous droplet shape.
- 31. The method of claim 21, wherein:
said applying step further comprises masking at least one edge of the encapsulation area to inhibit flow of applied epoxy from the encapsulation area and applying a metered amount of uncured liquid epoxy to said external encapsulation area; and said curing step further comprises disposing said capacitor assembly in an elevated temperature environment and rotating said capacitor assembly during curing of said applied epoxy for a predetermined time to form an epoxy droplet adhered to the encapsulation area of said capacitor side wall surrounding and encapsulating said anode and cathode connection terminals and the electrical connections with the connector assembly having a bulbous droplet shape.
- 32. The method of claim 21, wherein:
the step of extending a cathode terminal pin further comprises extending said cathode terminal pin through said cathode opening; and said epoxy applying step further comprises applying epoxy into said cathode opening to fill any spaces and gaps of the cathode terminal pin and the case side wall around the cathode opening.
RELATED APPLICATIONS
[0001] This application claims priority and other benefits from U.S. Provisional Patent Application Serial No. 60/080,564, filed Apr. 3, 1998, entitled FLAT ALUMINUM ELECTROLYTIC CAPACITOR.
[0002] This application is a continuation-in-part of U.S. patent application Ser. No. 09/104,104 filed Jun. 24, 1998 in the names of William L. Johnson et al., and entitled IMPLANTABLE MEDICAL DEVICE HAVING FLAT ELECTROLYTIC CAPACITOR WITH CONNECTOR BLOCK AND SEALED FEEDTHROUGH.
Provisional Applications (1)
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Number |
Date |
Country |
|
60080564 |
Apr 1998 |
US |
Divisions (1)
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Number |
Date |
Country |
Parent |
09608246 |
Jun 2000 |
US |
Child |
10136799 |
Apr 2002 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09104104 |
Jun 1998 |
US |
Child |
09608246 |
Jun 2000 |
US |