Capacitors with recessed rivets allow smaller implantable defibrillators

Information

  • Patent Grant
  • 6385490
  • Patent Number
    6,385,490
  • Date Filed
    Friday, June 30, 2000
    24 years ago
  • Date Issued
    Tuesday, May 7, 2002
    22 years ago
Abstract
Implantable defibrillators are implanted into the chests of patients prone to suffering ventricular fibrillation, a potentially fatal heart condition. Critical components in these devices are aluminum electrolytic capacitors, which store and deliver one or more life-saving bursts of electric charge to a fibrillating heart. These capacitors make up about one third the total size of the defibrillators. Unfortunately, manufacturers of these capacitors have paid little or no attention to reducing the size of these capacitors through improved capacitor packaging. Accordingly, the inventors devised a unique capacitor lid, or header, assembly that allows size reduction. Specifically, one embodiment of the header assembly includes two recesses, each with a depth that allows the head of a rivet (or other fastener) to be substantially flush, or coplanar, with the underside of the header. Another embodiment includes a single recess to receive two rivet heads. The recesses reduce the vertical space necessary to ensure separation of the rivets from internal components of the capacitor and thus allow reduction in the overall height of the capacitor and size of devices, such as implantable defibrillators, that use them.
Description




BACKGROUND OF THE INVENTION




The present invention concerns capacitors, particularly those for use in medical devices, such as implantable defibrillators.




Every year more than half a million people in the United States suffer from heart attacks, more precisely cardiac arrests. Many of these cardiac arrests stem from the heart chaotically twitching, or fibrillating, and thus failing to rhythmically expand and contract as necessary to pump blood. Fibrillation can cause complete loss of cardiac function and death within minutes. To restore normal heart contraction and expansion, paramedics and other medical workers use a device, called a defibrillator, to electrically shock a fibrillating heart.




Since the early 1980s, thousands of patients prone to fibrillation episodes have had miniature defibrillators implanted in their bodies, typically in the left breast region above the heart. These implantable defibrillators detect onset of fibrillation and automatically shock the heart, restoring normal heart function without human intervention. The typical implantable defibrillator includes a set of electrical leads, which extend from a sealed housing into the heart of a patient after implantation. Within the housing are a battery for supplying power, heart-monitoring circuitry for detecting fibrillation, and a capacitor for storing and delivering a burst of electric charge through the leads to the heart.




The capacitor is typically an aluminum electrolytic capacitor. This type of capacitor usually includes stacked strips of aluminum foil and paper rolled up to form a cylindrical structure called an active element. The active element is typically placed in a round tubular can which is sealed shut with a flat circular lid, known as a header. (The header usually consists of two thin bonded layers, one rubber and the other phenolic resin.) Extending from the header are two terminals connected to the rolled up foils in the active element. The terminals are usually fastened to the lid using two rivets.




Each rivet has a short shank, or rod, with a broad head on one end. (The rivet head, typically round like the head of a nail, has a diameter of about four millimeters (three sixteenths of an inch) and a thickness of about one millimeter.) The shank extends through holes in the terminal and the header, with the head resting against the interior side of the header and its opposite end extending from the exterior side. The opposite end is flattened or otherwise deformed to prevent the shank from passing back through its hole, thereby fastening the terminal to the header.




In recent years, manufacturers of electrolytic capacitors have focused almost single-mindedly on improving the active element by developing aluminum foils, electrolytes, and multiple-anode arrangements that improve capacitor performance, specifically energy density—the amount of energy or charge a capacitor stores per unit volume. For example, because energy density is directly proportional to the surface area of the aluminum foil making up the active element, manufacturers have developed methods of etching microscopic hills and valleys into foil to increase its effective surface area.




In comparison, capacitor manufacturers have made little or no effort to reduce the size of capacitors through space-saving assembly techniques. For example, the inventors determined that the conventional use of rivets to fasten terminals to the capacitor lid, or header, wastes space. Specifically, they determined that conventional capacitor manufacturers generally increase capacitor height (or reduce foil dimensions) to accommodate the heads of the rivets that fasten terminals to headers. The rivet heads are electrically conductive and must be prevented from touching, or contacting, the foils in the active element. So, capacitor manufacturers increase the height of the case to provide clearance between the rivet heads and the foils. Unfortunately, this increases not only the size of the capacitors, but also the size of devices, such as implantable defibrillators, that incorporate them.




Accordingly, the inventors identified an unmet need to reduce the size of electrolytic capacitors, especially those intended for implantable defibrillators, through better techniques and structures for fastening terminals to capacitor headers.




SUMMARY OF THE INVENTION




To address this and other needs, the inventors devised a capacitor having a header which includes one or more recesses. The recess receives the head of a rivet or other fastener and thus reduces or eliminates the need to increase capacitor height or reduce foil dimensions to achieve clearance between the fasteners and other capacitor parts, such as active-element foils. More particularly, the exemplary embodiment includes a header having two recesses, each with a depth that allows the head of a rivet to be substantially flush, or coplanar, with the underside of the header. In another embodiment, the header has a single recess to receive two rivet heads.




In devising this improvement, the inventors departed from at least two conventional capacitor design objectives: reducing the number of assembly steps per capacitor and reducing manufacturing waste or cost. Conventional capacitor manufacturers make hundreds of thousands or even millions of capacitors every year and are thus continually seeking ways to reduce capacitor assembly time. Indeed, saving (that is, omitting or skipping) even one manufacturing step amounts to considerable time and cost savings when multiplied by hundreds of thousands or millions of capacitors. Conversely, adding a step, such as forming one or more recesses in a header, to the manufacture of each capacitor generally increases assembly time and cost.




Similarly, conventional capacitor manufacturers who make thousands or millions of capacitors may also be concerned about reducing material waste, particularly seeking and developing capacitor designs and assembly practices which minimize or reduce the risk of destroying an entire capacitor or capacitor part during manufacture. Indeed, designs and manufacturing steps which pose a high risk of destroying an entire capacitor or capacitor part, such as a header, are generally avoided. Conventional headers are only about 2.5 millimeters thick and comprise two bonded layers of material. Forming one or more recesses in this type header not only adds a step to the manufacturing process, but also presents a risk of destroying it and thus increasing manufacturing waste and cost.











BRIEF DESCRIPTION OF THE DRAWINGS





FIG. 1

is a perspective view of an exemplary cylindrical electrolytic capacitor


10


embodying the present invention.





FIG. 2

is a cross-sectional view of capacitor


10


in

FIG. 1

taken along line


2





2


to show internal details of the capacitor, including an exemplary header assembly


14


having a recess


14




c


which receives a rivet head


17




a.







FIG. 3

is a top perspective view of a header assembly


14


which comprises a recess


16


for the heads of rivets


15




a


and


17




a.







FIG. 4

is a bottom prospective view of header assembly


14


, showing rivet heads


15




b


and


17




b


within a recess


14




c.







FIG. 5

is a prospective view of an alternative embodiment of header assembly


14


, which provides two recesses


14




c


for rivet heads


15




b


and


17




b.







FIG. 6

is a block diagram of an implantable defibrillator


30


which includes one or more electrolytic capacitors


36




a


in accord with the invention.











DESCRIPTION OF THE PREFERRED EMBODIMENTS




The following detailed description, which references and incorporates

FIGS. 1-6

, describes and illustrates one or more specific embodiments of the invention. These embodiments, offered not to limit but only to exemplify and teach, are shown and described in sufficient detail to enable those skilled in the art to implement or practice the invention. Thus, where appropriate to avoid obscuring the invention, the description may omit certain information known to those of skill in the art.





FIG. 1

shows a perspective view of an exemplary electrolytic capacitor


10


which incorporates a space-saving header assembly according to the present invention. Capacitor


10


, which has a height


10




h


and a diameter


10




d,


includes a cylindrical aluminum case, a header (or lid) assembly


14


, and two electrically conductive terminals


16


and


18


. (Height


10




h


is measured along a longitudinal axis.) Two aluminum rivets


15


and


17


respectively fasten terminals


16


and


18


, which for example comprise solid aluminum or steel with a solder plate, to header assembly


14


. Rivets


15


and


17


include respective upper heads


15




a


and


17




a,


and respective lower heads


15




b


and


17




b,


which are joined via respective intermediate rods, or shanks,


15




c


and


17




c.


(Lower heads


15




b


and


17




b


and shank


15




c


and


17




c


are visible in this perspective view. With the exception of shank


15




c,


which is not visible in any of the Figures, shank


17




c


and heads


15




b


and


17




b


are shown respectively in FIG.


2


and in

FIGS. 4 and 5

.) Other embodiments of the invention substitute other types of fasteners, for example, screws or bolts, for rivet


15


or


17


. Thus, the present invention is not limited to any particular fastener.




Aluminum case


12


includes a circumferential seating groove


12




a


and a rolled lip


12




b


which secure header assembly


14


within an otherwise open end of case


12


. (In this exemplary embodiment, an aluminum plate fused or formed integrally with case


12


closes the opposite end, or bottom of case


12


. However, in other embodiments it could be advantageous to close the bottom end with a second header assembly.) Seating groove


12




a


has an exemplary radius of about 0.035 inches. Lip


12




b,


which can be formed by rolling over the top edge of case


12


, has an exemplary radius of about 0.015 inches.

FIG. 2

also shows that seating groove


12




a


is a distance


12




d,


for example 0.145 inches, from rolled lip


12




b.







FIG. 2

, a cross-section taken along line


2





2


in

FIG. 1

, generally shows that case


12


, which has a thickness


12




t,


houses an active element


20


. Active element


20


conventionally comprises a rolled assembly of an anode foil, a cathode foil, and at least one insulative separator, with each foil connected respectively to one of lower rivet heads


15




b


and


17




b


via an aluminum foil tab, such as tab


25


. Lower rivet heads


15




b


and


17




b,


in the exemplary embodiment, are ultrasonically welded to a respective aluminum foil tab, with the ultrasonics applied in a shear direction relative the tab and the rivet head. An exemplary technique uses a 40 Megahertz Ultrasonic Welder from Amtech Corporation with the following operating criteria:





















Energy:




11-18 Joules







Clamp Force:




13-18 pounds per square inch







Pressure:




18-28 pounds per square inch







Amplitude:




11-12 micrometers







Time Limit:




0.15-0.50 seconds







Power:




55-110 watts.















However, other embodiments use different welders with different operating criteria.





FIG. 2

also shows that header assembly


14


comprises two bonded layers


14




a


and


14




b,


which provide a total header thickness


14




t


between upper and lower planar surfaces


14




u


and


14




l.


In the exemplary embodiment, header thickness


14




t


is about 2.5 millimeters, with layers


14




a


and


14




b


each being about 1.25 millimeters thick. Layer


14




a


consists of rubber and layer


14




b


consists of a phenolic resin. However, in other embodiments, header assembly


14


comprises three or more layers with a lesser or greater total thickness or one layer with an equal, lesser, or greater total thickness. Additionally, other embodiments form header assembly


14


from other materials: for example, thermoplastics, epoxies, and inert polymers using suitable molding technologies. Thus, header assembly


14


is not limited to any particular layered structure, dimensional selection, or composition.




Header assembly


14


also includes at least one recess


14




c,


which has a recess depth


14




d


less than the thickness of layer


14




b


in the exemplary embodiment, but more generally less than header thickness


14




t.


Recess


14




c


receives lower rivet head


17




b,


thereby reducing or preventing its extension below lower planar surface


14




l.


Recess depth


14




d,


in the exemplary embodiment, leaves the lower-most surface of lower rivet head


17




b


(or more generally fastener head


17




b


) lower than lower surface


14




l


of header assembly


14


. However, in other embodiments of the invention, recess depth


14




d


allows the lower-most surface or portion of head


17




b


to be substantially flush, or coplanar, with lower surface


14




l.


Moreover, in yet other embodiments, recess depth


14




d


allows the lower-most surface or portion of head


17




b


to be above lower surface


14




l.


Thus, the invention is not limited to any particular recess depth


14




d


or recess profile. Likewise, the peripheral shape and size of recess


14




c,


though not visible in this view, are theoretically unlimited.





FIGS. 3

,


4


, and


5


are perspective views, showing further aspects of header assembly


14


not clearly evident in

FIGS. 1 and 2

. In particular,

FIG. 3

is a top perspective view of assembly


14


, showing layers


14




a


and


14




b,


terminals


16


and


18


, and upper rivet heads


15




a


and


17




a.



FIG. 4

, a bottom perspective view of header assembly


14


based on

FIG. 3

, shows that layer


14




b


includes a single recess


14




c


which receives both of lower rivet heads


15




b


and


17




b.



FIG. 5

, another bottom perspective view of assembly


14


, shows two recesses


14




c:


one which receives lower rivet head


15




b


and another which receives lower rivet head


17




b.


Thus, a header assembly in accord with the present invention includes one or more recesses of any desirable shape and depth or combination of shapes and depths.




EXEMPLARY IMPLANTABLE DEFIBRILLATOR





FIG. 6

shows one of the many applications for space-saving electrolytic capacitor


10


: a generic implantable defibrillator


30


. Defibrillator


30


includes a lead system


32


, which after implantation electrically contact strategic portions of a patient's heart, a monitoring circuit


34


for monitoring heart activity through one or more of the leads of lead system


32


, and a therapy circuit


36


which incorporates one or more capacitors


36




a


similar to capacitor


10


. Defibrillator


30


operates according to well known and understood principles.




In addition to implantable defibrillators and other cardiac rhythm management devices, such as pacemakers, the innovations of capacitor


10


can be incorporated into photographic flash equipment. Indeed, these innovations are pertinent to any application where small, high energy, low equivalent-series-resistance (ERS) capacitors are desirable.




CONCLUSION




In furtherance of the art, the inventors have devised a unique space-saving header for capacitors, particularly those for use in implantable defibrillators. In particular, the space-saving header includes at least one recess for mounting the head of a rivet flush (or more nearly flush) with the undersurface of the header, thereby allowing reduction in the height or volume of the capacitor and/or increases in the dimensions of other components, such as aluminum foils.




The embodiments described above are intended only to illustrate and teach one or more ways of practicing or implementing the present invention, not to restrict its breadth or scope. The actual scope of the invention, which embraces all ways of practicing or implementing the teachings of the invention, is defined only by the following claims and their equivalents.



Claims
  • 1. An implantable heart rhythm management device comprising: one or more leads for sensing electrical signals of a patient or for applyingelectrical energy to the patient; a monitoring circuit for monitoring heart activity of the patient through one or more of the leads; and a therapy circuit for delivering electrical energy through one or more of the leads to a heart of the patient, wherein the therapy circuit includes one or more aluminum electrolytic capacitors, each comprising: one or more terminals; a header having a header thickness and one or more recesses, with each recess having a depth less than the header thickness; one or more aluminum fasteners, with each fastener fastening one of the terminals to the header and having a head at least partially within one of the recesses; and an active element including one or more aluminum foils, with at least one of the foils electrically coupled to one of the aluminum fasteners.
  • 2. The implantable heart rhythm management device of claim 1, wherein the header comprises first and second bonded layers, with the second bonded layer having a second thickness and with each recess having a depth less than the second thickness.
  • 3. The implantable heart rhythm management device of claim 1, wherein the header comprises first and second bonded layers, with the first layer consisting essentially of rubber and the second layer consisting essentially of phenolic resin.
  • 4. The implantable heart rhythm management device of claim 1, wherein the device is a defibrillator; one or more of the aluminum fasteners is a rivet; the active element includes one or more tabs coupled to one or more of the aluminum foils; and the rivet is ultrasonically welded to at least one of the tabs.
  • 5. The implantable heart rhythm management device of claim 1, wherein each recess has a depth less than on e half the header thickness.
  • 6. The implantable heart rhythm management device of claim 1, wherein each recess faces the active element.
  • 7. An implantable heart rhythm management device comprising:one or more capacitors, with each capacitor comprising: a tubular housing having a longitudinal axis and having an opening defining a plane intersecting the longitudinal axis; a header filling or covering at least a portion of the opening, having a maximum thickness in a dimension parallel to the longitudinal axis, and having one or more recesses, each with a depth, measured in the dimension parallel to the longitudinal axis, which is less than the maximum thickness of the header; and one or more terminals fastened to the header with one or one or more fasteners, each fastener having a head at least partly within one of the recesses.
  • 8. The implantable heart rhythm management device of claim 7, wherein each recess has a depth less than one half the header thickness.
  • 9. The implantable heart rhythm management device of claim 7, wherein each capacitor further comprises an active element within the tubular housing and wherein each recess faces the active element.
  • 10. The implantable heart rhythm management device of claim 7, wherein the housing and terminals consist essentially of aluminum.
  • 11. An implantable heart rhythm management device comprising:one or more capacitors, with each capacitor comprising: a tubular housing having a longitudinal axis and having a closed end and an open end, each defining a plane intersecting the longitudinal axis; a header filling or covering at least a portion of the opening, having a maximum thickness in a dimension parallel to the longitudinal axis of the housing, and having one or more recesses, each with a depth, measured in the dimension parallel to the longitudinal axis, which is less than the maximum thickness of the header; an active element within the tubular housing between the closed end and the header, the active element including one or more conductive members; and one or more terminals fastened to the header with one or more conductive fasteners, each fastener having a head electrically coupled to one or more of the conducive members and at least partly within one of the recesses.
  • 12. The implantable heart rhythm management device of claim 11, wherein each recess has a depth less than one half the maximum thickness of the header.
  • 13. The implantable heart rhythm management device of claim 11, wherein each recess faces the active element.
  • 14. An implantable heart rhythm management device comprising:one or more capacitors, with each capacitor including: capacitor casing means which defines an interior volume of the capacitor; header means having a header thickness attached to the capacitor casing means and having one or more each recess having a depth less than the header thickness; and terminating means fastened to the header with one or more fasteners, each fastener having a head at least partly within one of the one or more recesses.
CROSS REFERENCE TO RELATED APPLICATIONS

This application is a continuation of U.S. patent application Ser. No. 09/465,095, filed on Dec. 16, 1999, the specification of which is incorporated herein by reference now abandoned.

US Referenced Citations (85)
Number Name Date Kind
3398333 Zeppieri Aug 1968 A
3555369 Yoshino et al. Jan 1971 A
3659615 Enger May 1972 A
3765956 Li Oct 1973 A
3789502 Callins et al. Feb 1974 A
3918460 King et al. Nov 1975 A
3943937 King et al. Mar 1976 A
4041955 Kelly et al. Aug 1977 A
4041956 Purdy et al. Aug 1977 A
4136435 Li Jan 1979 A
4183600 Schroeder Jan 1980 A
4243042 Ware Jan 1981 A
4333469 Jeffcoat et al. Jun 1982 A
4371406 Li Feb 1983 A
4385342 Puppolo et al. May 1983 A
4395305 Whitman Jul 1983 A
4521830 Aultman et al. Jun 1985 A
4546415 Kent et al. Oct 1985 A
4663824 Kenmochi May 1987 A
4690714 Li Sep 1987 A
4692147 Duggan Sep 1987 A
4771362 Behn Sep 1988 A
4782235 Lejeune et al. Nov 1988 A
4907130 Boulloy et al. Mar 1990 A
4942501 MacFarlane et al. Jul 1990 A
4944300 Saksena Jul 1990 A
4987519 Hutchins et al. Jan 1991 A
5055889 Beall Oct 1991 A
5055975 Behrend Oct 1991 A
5086374 MacFarlane et al. Feb 1992 A
5131388 Pless et al. Jul 1992 A
5146391 MacFarlane et al. Sep 1992 A
5153820 MacFarlane et al. Oct 1992 A
5245499 Senes Sep 1993 A
5275621 Mehra Jan 1994 A
5324910 Isawa Jun 1994 A
5370663 Lin Dec 1994 A
5380341 Matthews et al. Jan 1995 A
5439760 Howard et al. Aug 1995 A
5456698 Byland et al. Oct 1995 A
5468984 Efland et al. Nov 1995 A
5500534 Robinson et al. Mar 1996 A
5522851 Fayram Jun 1996 A
5536960 Hayashi Jul 1996 A
5536964 Green et al. Jul 1996 A
5545184 Dougherty Aug 1996 A
5584890 MacFarlane et al. Dec 1996 A
5591211 Meltzer Jan 1997 A
5597658 Kejha Jan 1997 A
5628801 MacFarlane et al. May 1997 A
5642252 Sakamoto et al. Jun 1997 A
5660737 Elias et al. Aug 1997 A
5661625 Yang Aug 1997 A
5661629 MacFarlane et al. Aug 1997 A
5674260 Weinberg Oct 1997 A
5677539 Apotovsky et al. Oct 1997 A
5679033 Eavey et al. Oct 1997 A
5688698 Robinson et al. Nov 1997 A
5697953 Kroll et al. Dec 1997 A
5698453 Green et al. Dec 1997 A
5711861 Ward et al. Jan 1998 A
5711988 Tsai et al. Jan 1998 A
5728594 Efland et al. Mar 1998 A
5748439 MacFarlane et al. May 1998 A
5776628 Kraft et al. Jul 1998 A
5800857 Ahmad et al. Sep 1998 A
5808857 Stevens Sep 1998 A
5814082 Fayram et al. Sep 1998 A
5837995 Chow et al. Nov 1998 A
5859456 Efland et al. Jan 1999 A
5867363 Tsai et al. Feb 1999 A
5895416 Barreras, Sr. et al. Apr 1999 A
5895733 Crespi et al. Apr 1999 A
5904514 Konuma et al. May 1999 A
5908151 Elias Jun 1999 A
5926357 Elias et al. Jul 1999 A
5930109 Fishler Jul 1999 A
5949638 Greenwood, Jr. et al. Sep 1999 A
5959535 Remsburg Sep 1999 A
5963418 Greenwood, Jr. et al. Oct 1999 A
5968210 Strange et al. Oct 1999 A
5980977 Deng et al. Nov 1999 A
5983472 Fayram et al. Nov 1999 A
6006133 Lessar et al. Dec 1999 A
6009348 Rorvick et al. Dec 1999 A
Foreign Referenced Citations (6)
Number Date Country
0753868 Jan 1997 EP
0851446 Jul 1998 EP
9951301 Oct 1999 WO
9951302 Oct 1999 WO
9951303 Oct 1999 WO
9966985 Dec 1999 WO
Non-Patent Literature Citations (14)
Entry
Database WPI Abstract XP-002126511, An-1997-031410 (03), Publication No. JP 08293430, Derwent Publications Ltd., London GB, 1 p., (Nov. 5, 1996).
Patent Abstracts of Japan, 15 (40), Publication No. 02276222 (U. Noriki), 1 p., (Nov. 13, 1990).
Patent Abstracts of Japan, 16 (134), Publication No. 03296207 (K. Kaname), 1 p., (Dec. 26, 1991).
Patent Abstracts of Japan, 16 (291), Publication No. 04074409 (A. Akiyoshi), p., (Jul. 16, 1990).
Patent Abstracts of Japan, 18 (3), Publication No. 05251283 (T. Fumiyasu), 1 p., (Sep. 28, 1993).
Patent Abstracts of Japan, 1996 (6), Publication No. 08055762 (E. Akira), 1 p., (Feb. 27, 1996).
Patent Abstracts of Japan, 97 (12), Publication No. 09219343 (I. Toshihiko), 1 p., (Aug. 19, 1997).
“Understanding Aluminum Electrolytic Capacitors”, United Chemi-Con, 7 p., (Date Unknown).
Jenkins, et al., “Diagnosis of Atrial Fibrillation Using Electrogram from Chronic Leads: Evaluation of Computer Algorithm”, PACE, 11, pp. 622-632, (1988).
Lunsman, P., et al., “High-Energy Density Capacitors for Implantable Defibrillators”, Proceedings of the 16th Capacitor and Resistor Technology Symposium, Monteleone Hotel, New Orleans, Louisiana, pp. 277-280, (Mar. 11-15, 1996).
Morris, et al., “Intracardiac Electrogram Transformation: Morphometric Implications for Implantable Devices”, Journal of Electrocardiology, 29 Supplement, pp. 124-129 (1996).
Moynihan, J.D., et al., “Theory, Design and Application of Electrolytic Capacitors”, Copyright by John D. Moynihan, 136 p., (1982).
Schuller, et al., “Far Field R-Wave Sensing—An Old Problem Repeating”, PACE, 19, Part II, NASPE Abstract No. 264, p. 631 (1996).
Stephany, et al., “Real-Time Estimation of Magnitude-Square Coherence for Use in Implantable Devices”, IEEE Computers in Cardiology, pp. 375-378 (1992).
Continuations (1)
Number Date Country
Parent 09/465095 Dec 1999 US
Child 09/607382 US