Claims
- 1. An implantable organ compression apparatus for selectively assisting blood pumping through an organ, the apparatus comprising:
at least one finger, wherein said at least one finger comprises a metal hydride sponge encapsulated with a first bladder that is inflated and deflated with hydrogen gas causing said at least one finger to compress and release the organ; and at least one thermoelectric cell for cyclically heating and cooling said metal hydride sponge causing said hydrogen gas to desorb and absorb into said first bladder.
- 2. The invention of claim 1 wherein said hydrogen gas is used to push a piston to inflate a second bladder containing a biocompatable gas to inflate and deflate said first bladder.
- 3. The invention of claim 1 wherein said at least one finger further comprises a pressure sensor.
- 4. The invention of claim 1 wherein said at least one finger further comprises a motion sensor.
- 5. The invention of claim 1 further comprising a control apparatus for controlling the at least one thermoelectric cell.
- 6. The invention of claim 5 wherein said controller comprises a microprocessor to control the at least one thermoelectric cell to operate in synchrony and harmony with natural systolic and diastolic motions of a heart.
- 7. The invention of claim 1 further comprising an energy source.
- 8. The invention of claim 1 where said metal hydride sponge comprises a member from the group consisting of LaNi, TiFe, MgNi, and TiMn.
- 9. The invention of claim 1 where the organ comprises the aorta.
- 10. The invention of claim 1 comprising a plurality of fingers comprising a peristaltic compression on said organ.
- 11. The invention of claim I wherein said implantable organ compression apparatus comprises and endoscopically implantable organ compression apparatus.
- 12. An implantable organ compression apparatus for selectively assisting blood pumping through the organ, the apparatus comprising:
at least one finger, wherein said at least one finger comprises an electroactive polymer sensor and actuator; and a controller for cyclically activating and deactivating said actuator for compressing and releasing compression from the organ, and for monitoring said sensor.
- 13. The invention of claim 12 wherein said at least one finger comprises affixing said at least one finger to the organ.
- 14. The invention of claim 12 wherein said electroactive polymer sensor and actuator comprises a polymeric artificial muscle.
- 15. The invention of claim 12 where the organ comprises the aorta.
- 16. The invention of claim 12 wherein said controller comprises a microprocessor to control the actuator cell to operate in synchrony and harmony with natural systolic and diastolic motions of the heart.
- 17. The invention of claim 12 comprising a plurality of fingers comprising a peristaltic compression on said organ.
- 18. The invention of claim 1 wherein said implantable organ compression apparatus comprises and endoscopically implantable organ compression apparatus.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is based on U.S. Provisional Application Serial No. 60/124,840, entitled “Electrically-Controllable Multi-Fingered Resilient Heart Compression Devices”, filed on Mar. 17, 1999, and is a divisional application of U.S. patent application Ser. No. 09/626,038, entitled “Electrically-Controllable Multi-Fingered Resilient Heart Compression Devices”, filed on Mar. 15, 2000, the teachings of which are incorporated herein by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09526038 |
Mar 2000 |
US |
Child |
10244857 |
Sep 2002 |
US |