Volumetric efficiency wet electrolyte capacitor having a fill port and terminations for surface mounting
10600576 ยท 2020-03-24
Assignee
Inventors
- Alex Eidelman (Beer-Sheva, IL)
- Pavel Vaisman (Omer, IL)
- Gabi Shilo (Beer-Sheva, IL)
- Evgeny Petukhov (Beer-Sheva, IL)
- Andrey Mitiagin (Dimona, IL)
Cpc classification
International classification
H01G13/00
ELECTRICITY
Abstract
A wet electrolytic surface mount capacitor has a body defining an interior area and having a fill port formed through a wall of the body. A capacitive element is positioned in an interior of the body and is isolated from the body. A surface mount anode termination is in electrical communication with the capacitive element and isolated from the body. A surface mount cathode termination is in electrical communication with the body. An electrolyte is contained in the interior area of the body, and is introduced into the interior area of the body through the fill port. A fill port plug is positioned adjacent the fill port. A fill port cover compresses the fill port plug against the fill port to seal the fill port, and may be welded in place. A method of forming the capacitor is also provided.
Claims
1. A wet electrolytic capacitor, comprising: a body defining an interior area and comprising a fill port formed through a wall of the body, the body having a first portion and a second portion; a compressible fill port plug positioned adjacent the fill port; a fill port cover welded to the body and covering the fill port plug and configured to compress the fill port plug against the fill port to seal the fill port.
2. The wet electrolytic capacitor of claim 1, further comprising a capacitive element positioned in the interior of the body and isolated from the body, the capacitive element comprising an anode wire extending from a surface of the capacitive element toward the second portion of the body and accessible externally from the body.
3. The wet electrolytic capacitor of claim 2, a surface mount anode termination in electrical communication with the capacitive element and isolated from the body, and a surface mount cathode termination in electrical communication with the body.
4. The wet electrolytic capacitor of claim 3, further comprising an insulative insert positioned within the interior area of the body adjacent the first portion of the body, the insulative insert shaped to engage the capacitive element and configured to isolate the capacitive element from the body.
5. The wet electrolytic capacitor of claim 4, wherein the second portion of the body is open, and wherein the body further comprises a cover adjacent the second portion positioned to close the open second portion.
6. The wet electrolytic capacitor of claim 5, wherein the cover comprises a glass-to-metal-seal (GTMS) cover.
7. The wet electrolytic capacitor of claim 6, further comprising an isolative shim positioned between the anode termination and the cover, wherein an anode tube extends through a channel formed through the anode termination and isolative shim.
8. The wet electrolytic capacitor of claim 7, further comprising an insulative wrapping covering at least a portion of the body.
9. The wet electrolytic capacitor of claim 3, wherein the surface mount anode termination and the surface mount cathode termination each have a portion on a bottom side of the capacitor body.
10. The wet electrolytic capacitor of claim 3, wherein the fill port is positioned on a different side of the body than any portion of the surface mount anode termination or any portion of the surface mount cathode termination.
11. The wet electrolytic capacitor of claim 1, wherein the fill port is positioned on a portion of the body other than at the second portion or the first portion.
12. A wet electrolytic capacitor, comprising: a body defining an interior area and comprising a fill port formed through a wall of the body, the body having a first portion and a second portion; a compressible fill port plug positioned adjacent the fill port; a fill port cover welded to the body and covering the fill port plug and configured to compress the fill port plug against the fill port to seal the fill port; a capacitive element positioned in the interior of the body and isolated from the body; and, a fluid electrolyte contained in the interior area of the body.
13. The wet electrolytic capacitor of claim 12, a surface mount anode termination in electrical communication with the capacitive element and isolated from the body, and a surface mount cathode termination in electrical communication with the body.
14. The wet electrolytic capacitor of claim 13, further comprising an insulative insert positioned within the interior area of the body adjacent the first portion of the body, the insulative insert shaped to engage the capacitive element and configured to isolate the capacitive element from the body.
15. The wet electrolytic capacitor of claim 14, wherein the second portion of the body is open, and wherein the body further comprises a cover adjacent the second portion positioned to close the open second portion.
16. The wet electrolytic capacitor of claim 15, wherein the cover comprises a glass-to-metal-seal (GTMS) cover.
17. The wet electrolytic capacitor of claim 16, further comprising an isolative shim positioned between the anode termination and the cover, wherein an anode tube extends through a channel formed through the anode termination and isolative shim.
18. The wet electrolytic capacitor of claim 17, further comprising an insulative wrapping covering at least a portion of the body.
19. The wet electrolytic capacitor of claim 13, wherein the fill port is positioned on a different side of the body than any portion of the surface mount anode termination or any portion of the surface mount cathode termination.
20. The wet electrolytic capacitor of claim 12, wherein the fill port is positioned on a portion of the body other than at the second portion or the first portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more detailed understanding may be had from the following description, given by way of example in conjunction with the accompanying drawings wherein:
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DETAILED DESCRIPTION
(20) Certain terminology is used in the following description for convenience only and is not limiting. The words right, left, top, and bottom designate directions in the drawings to which reference is made. The words a and one, as used in the claims and in the corresponding portions of the specification, are defined as including one or more of the referenced item unless specifically stated otherwise. This terminology includes the words above specifically mentioned, derivatives thereof, and words of similar import. The phrase at least one followed by a list of two or more items, such as A, B, or C, means any individual one of A, B or C, as well as any combination thereof.
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(22) As shown in
(23) As shown in
(24) As shown in
(25) As shown in
(26) As shown in
(27) As shown in
(28) As stated, the capacitive element comprises a solid pellet anode body 230, with an embedded or welded wire in the anode body. A dielectric layer is formed by oxidation of the anode body and an electrolyte layer forms over the dielectric layer.
(29) Considering the capacitor 200 from the anode end 206, a glass-to-metal seal (GTMS) cover 234 is positioned adjacent the anode end 206 within the walls of the body 202 of the capacitor 200, and is welded in place to effectively seal the originally open anode end 206. The cover 234 includes a conductive metal outer portion 237 formed from tantalum, and a non-conductive central insert portion 236 formed from glass and including an anode tube 242. As shown in
(30) The GTMS cover 234 is placed at the anode end opening of the tantalum case 202, while the anode wire 232 is inserted into the anode tube 242. The anode tube 242 is electrically isolated from the tantalum outer portion 237 by a glass bead forming the insert portion 236 that is inserted into the GTMS (glass-to-metal-seal) structure. During manufacture, the GTMS cover 234 is welded to the case 202 while the anode wire 232 is welded to the anode tube 242 within the GTMS central insert portion 236 creating the anode of the capacitor. Accordingly, the GTMS cover 234 comprises several components that are essentially fused together to form a single cover 234 unit: the tantalum (metal) outer portion 237, glass (non-conductive) central insert portion 236, and the tantalum anode tube 242.
(31) As shown, for example, in
(32) An anode termination 254 includes a first wall portion 256 and a second wall portion 258 that is bent generally perpendicularly to the first wall portion 256. The first wall portion 256 is positioned vertically in the orientation of the Figures, and includes an opening 260 aligned with opening 244 and opening 252. The first wall portion 256 may have inwardly angled edges adjacent its top corners, as shown in
(33) As shown in
(34) A cathode termination 280 includes a first wall portion 282 and a second wall portion 284 that is bent generally perpendicularly to the first wall portion 282. The first wall portion 282 is positioned vertically in the orientation of the Figures, and is positioned adjacent the cathode end 208 of the body 202. The cathode termination 280 is essentially L-shaped. The second wall portion 284 is positioned horizontally in the orientation of the Figures, and is positioned along the bottom 216 of the body 202, and adjacent the cathode end 208.
(35) A fluid electrolyte 300 is introduced into the interior area 203 of the capacitor 200 through the fill port 218. A fill port plug 302 is used to close the fill port 218, and is positioned adjacent the fill port 218 along an outer surface of the body 202. The fill port plug 302 preferably comprises a compressible material such as rubber, for example a synthetic rubber, and/or a fluoropolymer elastomer or plastic. The fill port plug 302 is compressible, and may be a, oblong, spherical, or funnel-shaped plug so as to fit in a complimentary manner within the funnel-shaped fill port 218. A fill port cover 304, which preferably comprises tantalum, is provided over the fill port plug 302, and compresses the fill port plug 302 into the fill port 218, thus effectively sealing the fill port 218 and thus the body of the capacitor. The fill port cover 304 may preferably be welded to the body 202. The electrolyte 300 fills the space of the interior area 203 between the capacitive element 230 and the cathode layer 211 and body 202, and provides for electrical communication between those.
(36) As shown schematically as flow diagrams in
(37) As illustrated in
(38) As illustrated in
(39) The capacitor assembly is illustrated in
(40) An insulative wrapping 215 is provided to cover the body 202 [528].
(41) An isolative shim 249 is placed over the cover 234 [530], with the openings in the isolative shim 249 and the anode tube 242 aligned. An anode termination 254 is placed over the isolative shim 249 and the raised lip portion 262 of the anode termination is welded to the anode tube 242 [532].
(42) A cathode termination 280 is placed over the cathode end 208 of the body 202 [534], and the first wall portion 282 of the cathode termination 280 is welded to the capacitor body 202 adjacent the cathode end 208.
(43) It is appreciated that the steps shown in
(44) As described herein, a wet electrolytic surface mount capacitor is provided having an increased volumetric efficiency, by virtue of, inter alia, providing a fill port through a wall of a capacitor body in order to introduce the fluid electrolyte into the interior area of the capacitor body. The single fill port-plug-cover arrangement of the invention saves critical space for various components of the capacitor, and provides more flexibility in positioning, sizing and arranging various components of the capacitor. In addition, the anode terminal and the cathode termination form surface mount terminations for mounting the capacitor to, for example, a printed circuit board.
(45) Although the features and elements of the present invention are described in the example embodiments in particular combinations, each feature may be used alone without the other features and elements of the example embodiments or in various combinations with or without other features and elements of the present invention.