IP Library Granted Patent US 7,655,530
Granted Patent B2
US 7,655,530 · App. 12/243,777 · Granted Feb 2, 2010

Segmented end electrode capacitor and method of segmenting an end electrode of a capacitor

Assignee: SB Electronics, Inc.
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Quick Facts
Patent No.
US 7,655,530
App. No.
12/243,777
Granted
Feb 2, 2010
Kind
B2
Abstract

An exemplary embodiment providing one or more improvements includes a capacitor with a segmented end electrode and methods for segmenting an end electrode of a capacitor for reducing or eliminating instances of thermally induced damage of the capacitor.

Claims (29)

1. A method for manufacturing a capacitor which resists thermally induced damage, the method comprising:

forming a capacitor body by positioning a first electrically conductive layer in a spaced apart relationship with a second electrically conductive layer using a dielectric material in between the first and second layers, said first layer having a first layer lengthwise edge at a first end of said capacitor body and said second layer having a second layer lengthwise edge at a second, opposing end of said capacitor body;

spraying an end spray metal into contact with the first layer lengthwise edge at the first end of the capacitor body to create a first end electrode and spraying the end spray metal into contact with the second layer lengthwise edge at the second end of the capacitor body to create a second end electrode, the end spray metal having a coefficient of thermal expansion that is different than a coefficient of thermal expansion of the dielectric material;

dividing the first end electrode into first electrode segments which are each electrically connected to different portions of the first layer lengthwise edge at the first end, the first electrode segments arranged to allow the dielectric material to thermally expand and contract while the segments remain electrically connected to the different portions of the lengthwise edge at the first end; and

connecting the first electrode segments together with flexible electrical conductors to electrically connect the first electrode segments together while allowing the first electrode segments to move substantially independently from one another, where the capacitor exhibits a capacitance between the connected first electrode segments and the second end electrode.

2. A method as defined in claim 1 , further comprising:

dividing the second end electrode into second electrode segments which are each electrically connected to a different portion of the second layer lengthwise edge at the second end to allow the dielectric material to thermally expand and contract while the second electrode segments remain connected to the second layer lengthwise edge; and

connecting the second electrode segments together with flexible electrical conductors to electrically connect the second electrode segments together while allowing the second electrode segments to move substantially independently from one another, where the capacitor exhibits said capacitance between the connected first electrode segments and the connected second electrode segments.

3. A method as defined in claim 1 wherein a metallized polymer film is used in forming the electrically conductive layers and the dielectric.

4. A method as defined in claim 1 wherein the first end electrode is divided into first electrode segments by sawing the first end electrodes.

5. A method as defined in claim 1 wherein the first end electrode is divided into first electrode segments by masking the first end of the capacitor body before spraying the end spray metal into contact with the first layer lengthwise edge.

6. A method as defined in claim 5 wherein the first end is masked with a metal mask which includes metal rods.

7. A method as defined in claim 1 wherein the end electrodes are divided using a cutter tip.

8. A method as defined in claim 1 wherein the first end electrode has a generally circular shape defined by a first radius extending from a first center point and the first electrode segments include a segment circular shape that is defined by a second radius extending from a second center point, where the first and second center points are at different locations.

9. A method for reducing thermally induced damage in a metallized film capacitor having an arrangement of first and second internal electrodes made with layers of metallized film that are electrically isolated from one another and where the first internal electrode is electrically connected to a first end electrode at a first end and the second internal electrode is electrically connected to a second end electrode at a second end, where the first and second end electrodes are substantially rigid have a coefficient of thermal expansion that is different from a coefficient of thermal expansion of the metallized film, the method comprising:

dividing the end electrodes into electrode segments to allow the metallized film to thermally expand and contract while the first internal electrode remains electrically connected to the first end electrode and the second internal electrode remains electrically connected to the second end electrode; and

connecting the electrode segments of each end electrode to one another electrically with one or more flexible electrical connectors.

10. A method as defined in claim 9 wherein the end electrodes are divided into segments by sawing the end electrodes after the end electrodes are spraying onto the internal electrodes in a molten state.

11. A method as defined in claim 9 wherein the end electrodes are divided into electrode segments by masking the ends of the internal electrodes and spraying the end electrodes into contact with the internal electrodes on the ends.

12. A method as defined in claim 11 wherein the segments are masked with a metal mask which includes metal rods.

13. A method as defined in claim 9 wherein the end electrodes are divided using a cutter tip.

14. A method as defined in claim 9 further comprising electrically connecting electrode segments of one end together with one another and electrically connecting electrode segments of the other end together with one another, where the electrode segments of one end are electrically isolated from the electrode segments of the other end.

15. A method as defined in claim 9 wherein the metallized films are arranged in alternating layers by rolling the metallized films into a generally cylindrical shape.

16. In producing a capacitor with metal end electrodes connected to a wound metallized film having a dielectric that thermally expands and contracts, a method comprising:

dividing each of the end electrodes into a plurality of electrode segments which can move substantially independently from one another while remaining connected to the metallized film responsive to thermal expansion and contraction; and

connecting the electrode segments of each end electrode to one another electrically with one or more flexible electrical connectors.

17. A method as defined in claim 16 wherein the electrode segments are connected to one another electrically using one or more braided cable electrical connectors.

18. A method as defined in claim 16 wherein the end electrodes are divided using a cutter tip.

19. A method as defined in claim 16 wherein the metal end electrodes have a generally circular shape defined by a first radius extending from a first center point and the segments include a segment circular shape that is defined by a second radius extending from a second center point, where the first and second center points are at different locations.

Assignments (2)
SECURITY AGREEMENT Recorded Jul 19, 2011
From: S B E, INC.
To: VERMONT ECONOMIC DEVELOPMENT AUTHORITY
Reel/Frame 026611/0338 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 1, 2008
From: HOSKING, TERRY
To: SB ELECTRONICS, INCORPORATED
Reel/Frame 021619/0117 →
Continuity (3)
Division 1149544700 · Jul 28, 2006
Provisional Application 6059578300 · Aug 5, 2005
Related Publication 20090031543A1 · Feb 5, 2009