IP Library › Granted Patent US 9,511,216
Granted Patent B2
US 9,511,216 · App. 14/345,366 · Granted Dec 6, 2016

Modular biomedical implants

Inventor: Wantjinarjo Suwito (Longmont, CO)
Assignee: ADVANCED BIONICS AG
A61N1/05A61N1/0541A61N1/36032A61N1/372A61N1/3752H01R13/2414H01R13/5224H01R13/622H01R2201/12
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Quick Facts
Patent No.
US 9,511,216
App. No.
14/345,366
Granted
Dec 6, 2016
Kind
B2
Abstract

A modular biomedical implant includes a processor, an electrode array, and a cable. The first end of the cable is attached to the electrode array and a second end of the cable terminates in a first array of contacts. A second array of contacts is electrically connected to the processor. A separate anisotropic conductor is disposed between the first array of contacts and the second array of contacts and forms electrical connections between the first array of contacts and the second array of contacts. A method for replacing a processor of a modular biomedical implant is also provided.

Claims (34)

1. A modular biomedical implant comprising:

a processor;

an electrode array;

a cable, a first end of the cable attached to the electrode array and a second end of the cable terminating in a first array of contacts;

a second array of contacts electrically connected to the processor;

a separate anisotropic conductor disposed between the first array of contacts and the second array of contacts, the anisotropic conductor forming electrical connections between the first array of contacts and the second array of contacts; and

a compression spring configured to press the second array of contacts against the anisotropic conductor.

2. The implant of claim 1 , further comprising a compression plate overlying the anisotropic conductor, in which the compression spring is compressed by screwing a cap onto a base.

3. A modular biomedical implant comprising:

a processor:

an electrode array;

a cable, a first end of the cable attached to the electrode array and a second end of the cable terminating in a first array of contacts:

a second array of contacts electrically connected to the processor: and

a separate anisotropic conductor disposed between the first array of contacts and the second array of contacts, the anisotropic conductor forming electrical connections between the first array of contacts and the second array of contacts:

in which the processor is retained within a base by a snap ring.

4. A method for replacing a processor of a modular biomedical device comprising a processor; an electrode array; a cable, a first end of the cable attached to the electrode array and a second end of the cable terminating in a first array of contacts; a second array of contacts electrically connected to the processor; and a separate anisotropic conductor disposed between the first array of contacts and the second array of contacts, the anisotropic conductor forming electrical connections between the first array of contacts and the second array of contacts, the method comprising:

surgically exposing a connector between the processor and the electrode array;

removing a locking device of the connector to separate the second array of contacts connected to the processor from the anisotropic conductor;

removing the processor and the anisotropic conductor;

replacing the processor with a new processor and a new anisotropic conductor;

and replacing the locking device to press the second array of contacts connected to the new processor against the new anisotropic conductor.

5. The method of claim 4 , in which removing the processor further comprises removing an antenna.

6. The method of claim 4 , in which removing a locking device comprises:

grasping a base of the connector on two opposing sides with a surgical tool to hold the base stationary; and

grasping a cap of the connector with the surgical tool and rotating the cap with the surgical tool while holding the base stationary.

7. The method of claim 6 , in which surgically exposing the connector comprises reopening a original incision; the surgical tool being inserted horizontally into the original incision and grasping the base and cap from the side.

8. The method of claim 6 , in which surgically exposing the connector comprises making a new incision midline of the modular biomedical device and inserting the surgical tool vertically through the new incision to access the base and cap from the top.

9. A modular biomedical implant comprising:

a processor;

an electrode array:

a cable, a first end of the cable attached to the electrode array and a second end of the cable terminating in a first array of contacts:

a second array of contacts electrically connected to the processor: and

a separate anisotropic conductor disposed between the first array of contacts and the second array of contacts, the anisotropic conductor forming electrical connections between the first array of contacts and the second array of contacts:

wherein the anisotropic conductor is configured to conduct electricity through a thickness of the anisotropic conductor between the first array of contacts and the second array of contacts, but to not conduct electricity laterally to an axis running between the first array of contacts and the second array of contacts.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2014
From: SUWITO, WANTJINARJO
To: ADVANCED BIONICS AG
Reel/Frame 032455/0766 →
Continuity (1)
Related Publication 20140350652A1 · Nov 27, 2014