Claims
- 1. A process for making an anode layer for use in an electrolytic capacitor comprising the steps of:
providing a thin metallic anode foil; etching said thin metallic anode foil to form pores extending part way through the thin metallic anode foil thereby forming an etched anode foil providing enhanced surface area; following said etching step, cutting a shape in the etched anode foil to provide an etched anode sheet having first and second opposed major surfaces bounded by an anode sheet edge and an anode sheet thickness; forming a plurality of through-holes extending between said first and second opposed major surfaces and through said anode sheet thickness of said etched anode sheet; forming an oxide layer overlying the pore and through-hole surfaces of said etched anode sheet; and assembling a plurality of said etched anode sheets into an anode layer.
- 2. The process of claim 1, wherein said step of providing a metallic foil comprises providing an aluminum foil.
- 3. The process of claim 2, wherein the step of forming through-holes further comprises forming said plurality of through holes spaced apart from one another by a relatively uniform distance.
- 4. The process of claim 1, wherein the step of forming through-holes further comprises forming said plurality of through holes spaced apart from one another by a relatively uniform distance.
- 5. The process of claim 1, wherein said step of forming a plurality of through-holes further comprises one of the group selected from punching, mechanically drilling, and laser boring.
- 6. The process of claim 1, wherein said through-holes are sized in cross-section and length and distributed in density so as to minimize equivalent series resistance and maximize capacitance.
- 7. A process of making an electrolytic capacitor comprising the steps of:
(a) providing a thin metallic anode foil; (b) etching said thin metallic anode foil to form pores extending part way through the thin metallic anode foil thereby forming an etched anode foil providing enhanced surface area; (c) cutting the etched anode foil to provide an etched anode sheet having first and second opposed major surfaces bounded by an anode sheet edge and an anode sheet thickness; (d) forming a plurality of through-holes extending between said first and second opposed major surfaces and through said anode sheet thickness of said etched anode sheet; (e) forming an oxide layer overlying the pore and through-hole surfaces of said etched anode sheet; (f) assembling a plurality of said etched anode sheets into an anode layer; (g) providing a separator layer and a cathode sheet; (h) assembling said separator layer between a first major surface of said anode layer and one major surface of said cathode sheet to form a capacitor layer having exposed second major surfaces of said anode layer and said cathode sheet; (i) providing a capacitor case having a capacitor interior chamber sized to receive said capacitor layer; (j) inserting said capacitor layer into said capacitor interior chamber; and (k) filling said capacitor interior chamber with electrolyte to impregnate said capacitor layer with electrolyte.
- 8. The process of claim 7, further comprising the steps of:
providing a further plurality of separator layers forming a plurality of capacitor layers in accordance with steps (a)-(h) with the additional step of applying at least one separator layer overlying one of the exposed second major surfaces of the anode layer and cathode sheet of each capacitor layer; stacking said plurality of capacitor layers into an electrode stack assembly wherein all anode layers and cathode sheets are separated by at least one separator layer.
- 9. The process of claim 8, wherein the step of forming through-holes further comprises forming said plurality of through holes spaced apart from one another by a relatively uniform distance.
- 10. The process of claim 7, wherein the step of forming through-holes further comprises forming said plurality of through holes spaced apart from one another by a relatively uniform distance.
- 11. The process of claim 7, wherein said step of providing a metallic foil comprises providing an aluminum foil.
- 12. The process of claim 7, wherein said step of forming a plurality of through-holes further comprises one of the group selected from punching, mechanically drilling, and laser boring.
- 13. The process of claim 7, wherein said through-holes are sized in cross-section and length and distributed in density so as to minimize equivalent series resistance and maximize capacitance.
- 14. A layered aluminum electrolytic capacitor comprising:
an anode layer having opposed major anode layer surfaces and an anode layer edge around the periphery of said opposed major surfaces, said anode layer formed of at least one thin metallic anode sheet etched to form pores extending part way through the anode sheet thereby providing enhanced surface area, said etched anode sheet having first and second opposed major anode sheet surfaces bounded by an anode sheet edge and an anode sheet thickness, said etched anode sheet having a plurality of through-holes bored to extend between said first and second opposed major surfaces and through said anode sheet thickness of said etched anode sheet and an oxide layer overlying the exposed surfaces of the pores and through-holes; a cathode layer; a separator layer positioned between said anode layer and said cathode layer; and an electrolyte.
- 15. The capacitor of claim 14, wherein a plurality of anode layers, cathode layers and separator layers are stacked together to form an electrode stack assembly with said anode layers electrically coupled together and said cathode layers electrically coupled together.
- 16. The capacitor of claim 15, and further including:
a capacitor case having a case interior chamber for enclosing said electrode stack assembly and said electrolyte; an anode electrical contact extending from said coupled anode layers to an anode connection terminal outside said housing; and a cathode electrical contact extending from said coupled cathode layers to outside said housing.
- 17. The capacitor of claim 15, wherein said anode layer is formed of a plurality of said anode sheets that are stacked so that first and second major anode sheet surfaces of adjacent stacked anode sheets are in at least partial contact.
- 18. The capacitor of claim 14, wherein said plurality of through-holes are spaced apart from one another by a relatively uniform distance.
- 19. The capacitor of claim 14, wherein said metallic anode sheet comprises aluminum foil.
- 20. The capacitor of claim 14, wherein said plurality of through-holes are formed by one of the group selected from punching, mechanically drilling, and laser boring.
- 21. The capacitor of claim 14, wherein said through-holes are sized in cross-section and length and distributed in density so as to minimize equivalent series resistance and maximize capacitance.
- 22. A layered aluminum electrolytic capacitor comprising:
an anode layer having opposed major anode layer surfaces and an anode layer edge around the periphery of said opposed major surfaces, said anode layer formed of at least first, second and third anode sheets etched to form pores extending part way through the anode sheets thereby providing enhanced surface area, each said first, second and third etched anode sheet having first and second opposed major anode sheet surfaces bounded by an anode sheet edge and an anode sheet thickness, said first and second etched anode sheets having a plurality of through-holes bored to extend between said first and second opposed major surfaces thereof and through said anode sheet thickness of said first and second etched anode sheets, said third etched anode sheet disposed between said first and second etched anode sheets; an oxide layer overlying the exposed surfaces of the pores of the first second and third etched anode sheets and the through-holes of the first and second anode sheets; a cathode layer; a separator layer positioned between said anode layer and said cathode layer; and an electrolyte.
- 23. The capacitor of claim 22, wherein a plurality of anode layers, cathode layers and separator layers are stacked together to form an electrode stack assembly with said anode layers electrically coupled together and said cathode layers electrically coupled together.
- 24. The capacitor of claim 23, and further including:
a capacitor case having a case interior chamber for enclosing said electrode stack assembly and said electrolyte; an anode electrical contact extending from said coupled anode layers to an anode connection terminal outside said housing; and a cathode electrical contact extending from said coupled cathode layers to outside said housing.
- 25. The capacitor of claim 22, wherein said plurality of through-holes are spaced apart from one another by a relatively uniform distance.
- 26. The capacitor of claim 22, wherein said metallic anode sheet comprises aluminum foil.
- 27. The capacitor of claim 22, wherein said plurality of through-holes are formed by one of the group selected from punching, mechanically drilling, and laser boring.
- 28. The capacitor of claim 22, wherein said through-holes are sized in cross-section and length and distributed in density so as to minimize equivalent series resistance and maximize capacitance.
- 29. A process for making an anode layer for use in an electrolytic capacitor comprising the steps of:
(a) providing a thin metallic anode foil; (b) etching said thin metallic anode foil to form pores extending part way through the thin metallic anode foil thereby forming an etched anode foil providing enhanced surface area; (c) cutting the etched anode foil to provide first, second and third etched anode sheets each having first and second opposed major surfaces bounded by an anode sheet edge and an anode sheet thickness; (d) forming a plurality of through-holes extending between said first and second opposed major surfaces and through said anode sheet thickness of said first and second etched anode sheets; (e) forming an oxide layer overlying the pore and through-hole surfaces of said first and second etched anode sheet and the pore surfaces of the second etched anode sheet; and (f) assembling said first, second and third etched anode sheets into an anode layer having the third etched anode sheet assembled between the first and second etched anode sheets.
- 30. The process of claim 29, wherein said step of providing a metallic foil comprises providing an aluminum foil.
- 31. The process of claim 29, wherein:
the cutting step (c) further comprises cutting fourth and fifth etched anode sheets; the forming step (d) further comprises forming a plurality of through-holes extending between said first and second opposed major surfaces and through said anode sheet thickness of said fourth and fifth etched anode sheets; the forming step (e) comprises forming an oxide layer overlying the pore and through-hole surfaces of said fourth and fifth etched anode sheets; and the assembling step (f) comprises assembling the first major surfaces of said fourth and fifth etched anode sheets against the second major surfaces of said first and second etched anode sheets into an anode layer having the third etched anode sheet assembled between the first and fourth etched anode sheets and the second and fifth etched anode sheets.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] Reference is hereby made to commonly assigned, co-pending U.S. patent application Ser. No. (P-7820.00) filed on even date herewith for IMPLANTABLE MEDICAL DEVICE HAVING FLAT ELECTROLYTIC CAPACITOR FORMED WITH PARTIALLY THROUGH-ETCHED AND THROUGH-HOLE PUNCTURED ANODE SHEETS filed in the names of Yan et al.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09608576 |
Jun 2000 |
US |
Child |
10136774 |
Apr 2002 |
US |