Claims
- 1. An implantable medical device comprising:
a housing; an electronics module disposed within the housing; an energy source within the housing electrically coupled to the electronics module; a capacitor assembly within the housing electrically coupled to the electronics module, the capacitor further comprising:
a sealed capacitor case defining an interior case chamber, the case having a base having a base peripheral edge, a case side wall extending between the base peripheral edge through a side wall height to a side wall opening edge defining a case opening edge and a case chamber height Hcw; a cover adapted to be sealed against the case opening edge to enclose an interior case chamber, whereby the interior case chamber has a case chamber periphery defined by said case side wall; and an electrode stack assembly located within the interior case chamber, the electrode stack assembly having a stack periphery configured in mating relation with the case chamber periphery and further comprising a plurality of N capacitor layers stacked in registration upon one another and between the case base and the cover through a stack height HN selected to be equal to or less than the case chamber height Hcw by a predetermined tolerance, wherein N1 capacitor layers of the N capacitor layers each have a first capacitor layer thickness TCL1 and N2 capacitor layers of the N capacitor layers each have a second capacitor layer thickness TCL2,
whereby the stack height HN is dependent upon N1*TCL1+N2*TCL2.
- 2. 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 a capacitor assembly disposed within the housing and electrically coupled to the electronics module, the capacitor assembly further comprising:
a sealed capacitor case defining an interior case chamber, the case having a base having a base peripheral edge, a case side wall extending between the base peripheral edge to a side wall opening edge defining a case opening edge, and a cover sealed against the case opening edge to enclose the interior case chamber, whereby the interior case chamber has a case chamber periphery and a case chamber height Hcw; and an electrode stack assembly located within the interior case chamber comprising N capacitor layers stacked in registration upon one another and between the case base and the cover having a stack height HN selected to be equal to or less than the case chamber height Hcw by a predetermined tolerance,
wherein N1 capacitor layers of the N capacitor layers each have a first capacitor layer thickness TCL1 and each further comprise:
a cathode layer having a cathode layer thickness and a cathode peripheral edge extending toward the case side wall throughout a major portion of said case chamber periphery and having a cathode tab extending toward the case side wall in a minor portion of said case chamber periphery; an anode sub-assembly comprising x anode layers each having anode layer thickness tx and an anode layer peripheral edge extending toward the case side wall throughout a major length of said base peripheral edge, whereby each anode sub-assembly has an anode sub-assembly thickness Tx and further comprises an anode tab extending toward the case side wall in a minor portion of said case chamber periphery; and a plurality of electrolyte bearing separator layers each having a separator peripheral edge extending toward the case side wall, the electrolyte bearing separator layers disposed on each side of the anode sub-assembly and the cathode layer of the capacitor layer, whereby the first capacitor layer thickness TCL1 is dependent upon the thickness of the plurality of separator layers, the cathode layer thickness and the anode sub-assembly thickness Tx; and wherein N2 of the N capacitor layers each have a second capacitor layer thickness TCL2 and each comprise:
a cathode layer having a cathode layer thickness and a cathode peripheral edge extending toward the case side wall throughout a major portion of said case chamber periphery and having a cathode tab extending toward the case side wall in a minor portion of said case chamber periphery; an anode sub-assembly comprising y anode layers each having anode layer thickness ty and an anode layer peripheral edge extending toward the case side wall throughout a major length of said base peripheral edge, whereby each anode sub-assembly has an anode sub-assembly thickness Ty and further comprises an anode tab extending toward the case side wall in a minor portion of said case chamber periphery; and a plurality of electrolyte bearing separator layers each having a separator peripheral edge extending toward the case side wall, the electrolyte bearing separator layers disposed on each side of the anode sub-assembly and the cathode layer of the capacitor layer, whereby the first capacitor layer thickness TCL1 is dependent upon the thickness of the plurality of separator layers, the cathode layer thickness and the anode sub-assembly thickness Tx; and whereby the stack height HN is dependent upon N1*TCL1+N2*TCL2.
- 3. The implantable medical device of claim 2, wherein the number x anode layers is not equal to the number y anode layers.
- 4. The implantable medical device of claim 2, wherein the anode layer thickness tx is equal to the anode layer thickness ty, and the number x anode layers is not equal to the number y anode layers.
- 5. The implantable medical device of claim 4, wherein the x anode layers comprise at least two anode layers and the y anode layers exceed the number of x anode layers.
- 6. The implantable medical device of claim 2, wherein the anode layer thickness tx is not equal to the anode layer thickness ty, and the number x anode layers is not equal to the number y anode layers.
- 7. The implantable medical device of claim 2, wherein the anode layer thickness tx is not equal to the anode layer thickness ty, and the number x anode layers is equal to the number y anode layers.
- 8. The implantable medical device of claim 2, wherein certain or all of the x anode layers have differing anode layer thicknesses tx1, tx2, et seq., and certain or all of the y anode layers have differing anode layer thicknesses ty1, ty2, et seq., wherein tx1≠ty1, tx2≠ty2, et seq., and therefore either condition x≠y or x=y is sufficient in order to achieve differing anode sub-assembly thicknesses Tx and Ty.
- 9. The implantable medical device of claim 2, wherein certain or all of the x anode layers have differing anode layer thicknesses tx1, tx2, et seq., and certain or all of the y anode layers have differing anode layer thicknesses ty1, ty2, et seq., wherein tx1=ty1, tx2=ty2, et seq., and therefore the condition x≠y is necessary in order to achieve differing anode sub-assembly thicknesses Tx and Ty.
- 10. An electrolytic capacitor comprising:
a sealed capacitor case defining an interior case chamber, the case having a base having a base peripheral edge, a case side wall extending between the base peripheral edge through a side wall height to a side wall opening edge defining a case opening edge and a case chamber height Hcw; a cover adapted to be sealed against the case opening edge to enclose an interior case chamber, whereby the interior case chamber has a case chamber periphery defined by said case side wall; and an electrode stack assembly located within the interior case chamber, the electrode stack assembly having a stack periphery configured in mating relation with the case chamber periphery and further comprising a plurality of N capacitor layers stacked in registration upon one another and between the case base and the cover through a stack height HN selected to be equal to or less than the case chamber height Hcw by a predetermined tolerance, wherein N1 capacitor layers of the N capacitor layers each have a first capacitor layer thickness TCL1 and N2 capacitor layers of the N capacitor layers each have a second capacitor layer thickness TCL2, whereby the stack height HN is dependent upon N1*TCL1+N2*TCL2.
- 11. An electrolytic capacitor assembly comprising:
a sealed capacitor case defining an interior case chamber, the case having a base having a base peripheral edge, a case side wall extending between the base peripheral edge to a side wall opening edge defining a case opening edge, and a cover sealed against the case opening edge to enclose the interior case chamber, whereby the interior case chamber has a case chamber periphery and a case chamber height Hcw; and an electrode stack assembly located within the interior case chamber comprising N capacitor layers stacked in registration upon one another and between the case base and the cover having a stack height HN selected to be equal to or less than the case chamber height Hcw by a predetermined tolerance,
wherein N1 capacitor layers of the N capacitor layers each have a first capacitor layer thickness TCL1 and each further comprise:
a cathode layer having a cathode layer thickness and a cathode peripheral edge extending toward the case side wall throughout a major portion of said case chamber periphery and having a cathode tab extending toward the case side wall in a minor portion of said case chamber periphery; an anode sub-assembly comprising x anode layers each having anode layer thickness tx and an anode layer peripheral edge extending toward the case side wall throughout a major length of said base peripheral edge, whereby each anode sub-assembly has an anode sub-assembly thickness Tx and further comprises an anode tab extending toward the case side wall in a minor portion of said case chamber periphery; and a plurality of electrolyte bearing separator layers each having a separator peripheral edge extending toward the case side wall, the electrolyte bearing separator layers disposed on each side of the anode sub-assembly and the cathode layer of the capacitor layer; whereby the first capacitor layer thickness TCL1 is dependent upon the thickness of the plurality of separator layers, the cathode layer thickness and the anode sub-assembly thickness Tx; and wherein N2 of the N capacitor layers each have a second capacitor layer thickness TCL2 and each comprise:
a cathode layer having a cathode layer thickness and a cathode peripheral edge extending toward the case side wall throughout a major portion of said case chamber periphery and having a cathode tab extending toward the case side wall in a minor portion of said case chamber periphery; an anode sub-assembly comprising y anode layers each having anode layer thickness ty and an anode layer peripheral edge extending toward the case side wall throughout a major length of said base peripheral edge, whereby each anode sub-assembly has an anode sub-assembly thickness Ty and further comprises an anode tab extending toward the case side wall in a minor portion of said case chamber periphery; and a plurality of electrolyte bearing separator layers each having a separator peripheral edge extending toward the case side wall, the electrolyte bearing separator layers disposed on each side of the anode sub-assembly and the cathode layer of the capacitor layer; whereby the first capacitor layer thickness TCL1 is dependent upon the thickness of the plurality of separator layers, the cathode layer thickness and the anode sub-assembly thickness Tx; and whereby the stack height HN is dependent upon N1*TCL1+N2*TCL2.
- 12. The capacitor of claim 11, wherein the number x anode layers is not equal to the number y anode layers.
- 13. The capacitor of claim 11, wherein the anode layer thickness tx is equal to the anode layer thickness ty, and the number x anode layers is not equal to the number y anode layers.
- 14. The capacitor of claim 13, wherein the x anode layers comprise at least two anode layers and the y anode layers exceed the number of x anode layers.
- 15. The capacitor of claim 11, wherein the anode layer thickness tx is not equal to the anode layer thickness ty, and the number x anode layers is not equal to the number y anode layers.
- 16. The capacitor of claim 11, wherein the anode layer thickness tx is not equal to the anode layer thickness ty, and the number x anode layers is equal to the number y anode layers.
- 17. The capacitor of claim 11, wherein certain or all of the x anode layers have differing anode layer thicknesses tx1, tx2, et seq., and certain or all of the y anode layers have differing anode layer thicknesses ty1, ty2, et seq., wherein tx1≠ty1, tx2≠ty2, et seq., and therefore either condition x≠y or x=y is sufficient in order to achieve differing anode sub-assembly thicknesses Tx and Ty.
- 18. The capacitor of claim 11, wherein certain or all of the x anode layers have differing anode layer thicknesses tx1, tx2, et seq., and certain or all of the y anode layers have differing anode layer thicknesses ty1, ty2, et seq., wherein tx1=ty1, tx2=ty2, et seq., and therefore the condition x≠y is necessary in order to achieve differing anode sub-assembly thicknesses Tx and Ty.
- 19. A method of assembling an implantable medical device comprising:
providing a housing; disposing an electronics module within the housing; disposing an energy source within the housing; electrically coupling the energy source to the electronics module; forming a capacitor assembly through the steps of:
providing a sealed capacitor case defining an interior case chamber, the case having a base having a base peripheral edge, a case side wall extending between the base peripheral edge through a side wall height to a side wall opening edge defining a case opening edge and a case chamber height hcw; providing a cover adapted to be sealed against the case opening edge to enclose the interior case chamber, whereby the interior case chamber has a case chamber periphery defined by said case side wall; and forming an electrode stack assembly adapted to be located within the interior case chamber, the electrode stack assembly having a stack periphery configured in mating relation with the case chamber periphery and further comprising a plurality of N capacitor layers stacked in registration upon one another and between the case base and the cover through a stack height HN selected to be equal to or less than the case chamber height Hcw by a predetermined tolerance, wherein N1 capacitor layers of the N capacitor layers each have a first capacitor layer thickness TCL1 and N2 capacitor layers of the N capacitor layers each have a second capacitor layer thickness TCL2, whereby the stack height HN is dependent upon N1*TCL1+N2*TCL2; disposing the electrode stack assembly in the interior case chamber; hermetically sealing the case cover to the side wall opening edge; disposing the capacitor assembly within the housing; and electrically coupling the capacitor assembly to the electronics module.
- 20. The method of claim 19 wherein the step of forming an electrode stack assembly further comprises:
forming the N1 capacitor layers each having a first capacitor layer thickness TCL1 by:
forming a cathode layer having a cathode layer thickness and a cathode peripheral edge extending toward the case side wall throughout a major portion of said case chamber periphery and having a cathode tab extending toward the case side wall in a minor portion of said case chamber periphery; forming an anode sub-assembly comprising x anode layers each having anode layer thickness tx and an anode layer peripheral edge extending toward the case side wall throughout a major length of said base peripheral edge, whereby each anode sub-assembly has an anode sub-assembly thickness Tx and further comprises an anode tab extending toward the case side wall in a minor portion of said case chamber periphery; and disposing a plurality of electrolyte bearing separator layers each having a separator peripheral edge extending toward the case side wall on each side of the anode sub-assembly and the cathode layer of the capacitor layer; and forming the N2 capacitor layers each having a first capacitor layer thickness TCL2 by:
forming a cathode layer having a cathode layer thickness and a cathode peripheral edge extending toward the case side wall throughout a major portion of said case chamber periphery and having a cathode tab extending toward the case side wall in a minor portion of said case chamber periphery; forming an anode sub-assembly comprising y anode layers each having anode layer thickness ty and an anode layer peripheral edge extending toward the case side wall throughout a major length of said base peripheral edge, whereby each anode sub-assembly has an anode sub-assembly thickness Ty and further comprises an anode tab extending toward the case side wall in a minor portion of said case chamber periphery; and disposing a plurality of electrolyte bearing separator layers each having a separator peripheral edge extending toward the case side wall on each side of the anode sub-assembly and the cathode layer of the capacitor layer.
- 21. The method of claim 19, wherein the number x anode layers is not equal to the number y anode layers.
- 22. The method of claim 19, wherein the anode layer thickness tx is equal to the anode layer thickness ty, and the number x anode layers is not equal to the number y anode layers.
- 23. The method of claim 22, wherein the x anode layers comprise at least two anode layers and the y anode layers exceed the number of x anode layers.
- 24. The method of claim 19, wherein the anode layer thickness tx is not equal to the anode layer thickness ty, and the number x anode layers is not equal to the number y anode layers.
- 25. The method of claim 19, wherein the anode layer thickness t1 is not equal to the anode layer thickness ty, and the number x anode layers is equal to the number y anode layers.
- 26. The method of claim 19, wherein certain or all of the x anode layers have differing anode layer thicknesses tx1, tx2, et seq., and certain or all of the y anode layers have differing anode layer thicknesses ty1, ty2, et seq., wherein tx1≠ty1, tx2≠ty2, et seq., and therefore either condition x≠y or x=y is sufficient in order to achieve differing anode sub-assembly thicknesses Tx and Ty.
- 27. The method of claim 19, wherein certain or all of the x anode layers have differing anode layer thicknesses tx1, tx2, et seq., and certain or all of the y anode layers have differing anode layer thicknesses ty1, ty2, et seq., wherein tx1=ty1, tx2=ty2, et seq., and therefore the condition x≠y is necessary in order to achieve differing anode sub-assembly thicknesses Tx and Ty.
- 28. A method of assembling an electrolytic capacitor comprising:
providing a sealed capacitor case defining an interior case chamber, the case having a base having a base peripheral edge, a case side wall extending between the base peripheral edge through a side wall height to a side wall opening edge defining a case opening edge and a case chamber height Hcw; providing a cover adapted to be sealed against the case opening edge to enclose the interior case chamber, whereby the interior case chamber has a case chamber periphery defined by said case side wall; forming an electrode stack assembly adapted to be located within the interior case chamber, the electrode stack assembly having a stack periphery configured in mating relation with the case chamber periphery and further comprising a plurality of N capacitor layers stacked in registration upon one another and between the case base and the cover through a stack height HN selected to be equal to or less than the case chamber height Hcw by a predetermined tolerance, wherein N1 capacitor layers of the N capacitor layers each have a first capacitor layer thickness TCL1 and N2 capacitor layers of the N capacitor layers each have a second capacitor layer thickness TCL2, whereby the stack height HN is dependent upon N1*TCL1+N2*TCL2; disposing the electrode stack assembly within the interior case chamber; and hermetically sealing the case cover to the side wall opening edge;
- 29. The method of claim 28 wherein the step of forming an electrode stack assembly further comprises:
forming the N1 capacitor layers each having a first capacitor layer thickness TCL1 by:
forming a cathode layer having a cathode layer thickness and a cathode peripheral edge extending toward the case side wall throughout a major portion of said case chamber periphery and having a cathode tab extending toward the case side wall in a minor portion of said case chamber periphery; forming an anode sub-assembly comprising x anode layers each having anode layer thickness tx and an anode layer peripheral edge extending toward the case side wall throughout a major length of said base peripheral edge, whereby each anode sub-assembly has an anode sub-assembly thickness Tx and further comprises an anode tab extending toward the case side wall in a minor portion of said case chamber periphery; and disposing a plurality of electrolyte bearing separator layers each having a separator peripheral edge extending toward the case side wall on each side of the anode sub-assembly and the cathode layer of the capacitor layer; and forming the N2 capacitor layers each having a first capacitor layer thickness TCL2 by:
forming a cathode layer having a cathode layer thickness and a cathode peripheral edge extending toward the case side wall throughout a major portion of said case chamber periphery and having a cathode tab extending toward the case side wall in a minor portion of said case chamber periphery; forming an anode sub-assembly comprising y anode layers each having anode layer thickness ty and an anode layer peripheral edge extending toward the case side wall throughout a major length of said base peripheral edge, whereby each anode sub-assembly has an anode sub-assembly thickness Ty and further comprises an anode tab extending toward the case side wall in a minor portion of said case chamber periphery; and disposing a plurality of electrolyte bearing separator layers each having a separator peripheral edge extending toward the case side wall on each side of the anode sub-assembly and the cathode layer of the capacitor layer.
- 30. The method of claim 28, wherein the number x anode layers is not equal to the number y anode layers.
- 31. The method of claim 28, wherein the anode layer thickness tx is equal to the anode layer thickness ty, and the number x anode layers is not equal to the number y anode layers.
- 32. The method of claim 31, wherein the x anode layers comprise at least two anode layers and the y anode layers exceed the number of x anode layers.
- 33. The method of claim 28, wherein the anode layer thickness tx is not equal to the anode layer thickness ty, and the number x anode layers is not equal to the number y anode layers.
- 34. The method of claim 28, wherein the anode layer thickness tx is not equal to the anode layer thickness ty, and the number x anode layers is equal to the number y anode layers.
- 35. The method of claim 28, wherein certain or all of the x anode layers have differing anode layer thicknesses tx1, tx2, et seq., and certain or all of the y anode layers have differing anode layer thicknesses ty1, ty2, et seq., wherein tx1≠ty1, tx2≠ty2, et seq., and therefore either condition x≠y or x=y is sufficient in order to achieve differing anode sub-assembly thicknesses Tx and Ty.
- 36. The method of claim 28, wherein certain or all of the x anode layers have differing anode layer thicknesses tx1, tx2, et seq., and certain or all of the y anode layers have differing anode layer thicknesses ty1, ty2, et seq., wherein tx1=ty1, tx2=ty2, et seq., and therefore the condition x≠y is necessary in order to achieve differing anode sub-assembly thicknesses Tx and Ty.
RELATED APPLICATION
[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. 09/103,843 filed Jun. 24, 1998 in the names of Mark D. Breyen et al. and entitled IMPLANTABLE MEDICAL DEVICE HAVING A FLAT ELECTROLYTIC CAPACITOR WITH LIQUID ELECTROLYTE FILL TUBE.
Provisional Applications (1)
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60080564 |
Apr 1998 |
US |
Divisions (1)
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Number |
Date |
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Parent |
09607833 |
Jun 2000 |
US |
Child |
10062373 |
Jan 2002 |
US |
Continuation in Parts (1)
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Number |
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09103843 |
Jun 1998 |
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09607833 |
Jun 2000 |
US |