Claims
- 1. A scanning electrode system for a neuroprosthetic device, the system for providing facile adjustment and fine-tuning of a spatial distribution of a local electrical stimulation field across a scanning electrode, by a system user, the scanning electrode system comprising:
(a) at least one scanning electrode for the neuroprosthetic device, said scanning electrode for performing functional electrical stimulation (FES) of at least one muscle of a limb of the user; (b) a distribution mechanism for distributing a current to said at least one scanning electrode so as to produce a biased electrical stimulation field across said at least one scanning electrode, said distribution mechanism for operative connection to a muscle stimulator providing electrical stimulation to the scanning electrode system, and (c) control means for adjustment of said biased electrical stimulation field by means of said distribution mechanism, said control means designed and configured so as to be accessable to and operable by the system user.
- 2. The scanning electrode system of claim 1, wherein said scanning electrode is a transcutaneous stimulation electrode for covering at least a portion of a skin surface of said limb.
- 3. The scanning electrode system of claim 1, wherein said electrical stimulation field is biased in a substantially monotonic fashion.
- 4. The scanning electrode system of claim 1, wherein said at least one scanning electrode has two adjacent conductive regions, each of said regions being electrically connected with said distribution means, said regions being electrically isolated from one another.
- 5. The scanning electrode system of claim 1, wherein said distribution mechanism includes a potentiometer.
- 6. The scanning electrode system of claim 1, wherein said control means are designed and configured for facile adjustment of said biased electrical field by a typical user.
- 7. The scanning electrode system of claim 1, wherein said control means are intuitive control means.
- 8. The scanning electrode system of claim 7, wherein said intuitive control means are proprioceptive control means.
- 9. The scanning electrode system of claim 7, wherein said control means are designed and configured such that a movement of said control means in a first direction effects a limb movement correction of said limb in said direction.
- 10. The scanning electrode system of claim 1, wherein said distribution mechanism and said control means are designed and configured such that said adjustment of said biased electrical stimulation field is effected simultaneously with said functional electrical stimulation of said muscle.
- 11. The scanning electrode system of claim 7, further comprising:
(d) a voice command unit for operating said control means.
- 12. The scanning electrode system of claim 7, wherein said control means is operated by electromyograph-triggered commands.
- 13. The scanning electrode system of claim 2, wherein said control means are designed and configured such that said adjustment of said biased electrical stimulation field is effected in a continuous fashion.
- 14. The scanning electrode system of claim 1, further comprising:
(d) an electrogoniometer, disposed on said limb, said control means being responsive to input from said electrogoniometer.
- 15. A method of performing functional electrical stimulation (FES) using a scanning electrode system for a neuroprosthetic device, so as to enable facile adjustment and fine-tuning of a spatial distribution of a local electrical stimulation field across a scanning electrode, by a user, the method comprising the steps of:
(a) providing a device including:
(i) at least one scanning electrode for the neuroprosthetic device, said scanning electrode for performing functional electrical stimulation (FES) of at least one muscle of a limb of the user; (ii) a distribution mechanism for distributing current to said at least one scanning electrode, said distribution mechanism for operative connection to a muscle stimulator providing power to the scanning electrode system, and (iii) control means for adjustment of said biased electrical stimulation field by means of said distribution mechanism, said control means designed and configured so as to be accessable to and operable by the user, and (b) operating said control means to produce a biased electrical field across said at least one scanning electrode, so as to adjust a response of said muscle.
- 16. The method of claim 15, wherein said operating of said control means is performed by the user.
- 17. The method of claim 15, wherein said operating of said control means is performed by a typical user.
- 18. The method of claim 15, wherein said distribution mechanism includes a potentiometer.
- 19. The method of claim 15, wherein said control means are intuitive control means.
- 20. The method of claim 19, wherein said intuitive control means are proprioceptive control means.
- 21. The method of claim 19, wherein said operating of said control means in a first direction effects a limb movement correction of said limb in said first direction.
- 22. The method of claim 15, wherein said operating of said control means is effected simultaneously with said functional electrical stimulation of said muscle of the user.
- 23. The method of claim 15, wherein said operating of said control means is performed using a voice control.
- 24. The method of claim 15, wherein said operating of said control means is performed using electromyographic control.
- 25. The method of claim 15, wherein said control means are designed and configured such that said adjustment of said biased electrical field is effected in a continuous fashion.
- 26. The method of claim 15, wherein said scanning electrode is a transcutaneous stimulation electrode for covering at least a portion of a skin surface of said limb.
- 27. The method of claim 15, wherein said electrical field is biased in a substantially monotonic fashion.
- 28. The method of claim 15, wherein said at least one scanning electrode has two adjacent conductive regions, each of said regions being electrically connected with said distribution means, said regions being electrically isolated from one another.
- 29. The method of claim 15, wherein said operating of said control means to produce a biased electrical field across said at least one scanning electrode is performed so as to achieve an optimal muscle response.
- 30. A scanning electrode system for a neuroprosthetic device, the system for providing facile adjustment and fine-tuning of a spatial distribution of a local electrical stimulation field across a scanning electrode, by a system user, the scanning electrode system comprising:
(a) at least one scanning electrode for the neuroprosthetic device, said scanning electrode for performing functional electrical stimulation (FES) of at least one muscle of a limb of the user; (b) a distribution mechanism for distributing current to said at least one scanning electrode so as to produce a biased electrical stimulation field across said at least one scanning electrode, said distribution mechanism for operative connection to a muscle stimulator providing electrical stimulation to the scanning electrode system, and (c) control means for adjustment of said biased electrical stimulation field by means of said distribution mechanism, wherein said distribution mechanism is designed and configured to bias said electrical field in a substantially monotonic fashion.
- 31. The scanning electrode system of claim 30, wherein said control means are proprioceptive control means.
- 32. The scanning electrode system of claim 30, wherein said distribution mechanism and said control means are designed and configured such that said adjustment of said biased electrical field is effected simultaneously with said functional electrical stimulation of said muscle.
- 33. The scanning electrode system of claim 30, wherein said control means are designed and configured such that said adjustment of said biased electrical field is effected in a continuous fashion.
- 34. The scanning electrode system of claim 30, further comprising:
(d) an electrogoniometer, disposed on said limb, said control means being responsive to input from said electrogoniometer.
- 35. The scanning electrode system of claim 30, wherein said at least one scanning electrode has two adjacent conductive regions, each of said regions being electrically connected with said distribution means, said regions being electrically isolated from one another.
Parent Case Info
[0001] This application draws priority from U.S. Provisional Patent Application Serial No. 60/340,277, filed Dec. 18, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60340277 |
Dec 2001 |
US |