IP Library Granted Patent US 12,213,929
Granted Patent B2
US 12,213,929 · App. 17/449,159 · Granted Feb 4, 2025

Method, apparatus, and system for teleoperated, motorized rehabilitative cycling

Inventors: Warren E. Dixon (Gainesville, FL); Kimberly J. Stubbs (Middleburg, FL); Brendon Allen (Gainesville, FL)
Assignee: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INCORPORATED
A61H1/0214A61H1/0274A61N1/36003A61N1/36031A61H2201/10A61H2201/1215A61H2201/501A61H2201/5064
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Quick Facts
Patent No.
US 12,213,929
App. No.
17/449,159
Granted
Feb 4, 2025
Kind
B2
Abstract

Provided herein is a method, apparatus, and system for teleoperated, functional electric stimulation actuated rehabilitative cycling. Methods may include: receiving, at a master system, rotational input generating master system sensor input having a master system cadence; providing the master system sensor input including the master system cadence to a controller based on the rotational input from a rehabilitation participant or a remote therapist received at the master system; receiving, at a slave system, rotational input from the rehabilitation participant generating slave sensor input having a slave system cadence; providing the slave system sensor input including the slave system cadence to the controller based on the rotational input from the participant received at the slave system; and providing, from the controller, feedback through the master system in response to a difference between the master system cadence and the slave system cadence.

Claims (34)

1. A system for rehabilitation comprising:

a master controller system, wherein the master controller system is configured to be driven by a master controller system operator's volitional efforts as rotational input at a master system cadence;

a leg-cycle system comprising a motor, wherein the leg-cycle system is configured to be driven by both functional electric stimulation of a rehabilitation participant and the motor; and

a controller for receiving sensor input from the master controller system comprising the master system cadence and to control driving of the leg-cycle system by the functional electric stimulation of the rehabilitation participant and the motor responsive to sensor input from the master controller system and the master system cadence.

2. The system for rehabilitation of claim 1 , wherein the controller is configured to apply a variable operator to the motor of the leg-cycle system during functional electric stimulation.

3. The system for rehabilitation of claim 1 , wherein the controller controls driving of the leg-cycle system by the motor responsive to sensor input from the master controller system to generate position and velocity of the leg-cycle system based on a position and velocity of the master controller system.

4. The system for rehabilitation of claim 3 , wherein the controller is configured to control application of resistive motor effort to the master controller system indicative of a difference between operation of the master controller system and the leg-cycle system by the rehabilitation participant.

5. The system for rehabilitation of claim 1 , wherein the leg-cycle system is a split-crank leg-cycle system whereby two legs of a rehabilitation participant pedals the leg-cycle system independently.

6. The system for rehabilitation of claim 1 , wherein the controller comprises a communications module for receiving control signals from the leg-cycle system at a remotely located therapist, wherein the control signals from the leg-cycle system provide haptic feedback to the remotely located therapist through the master controller system.

7. A method for rehabilitation comprising:

receiving, at a master system, rotational input generating master system sensor input having a master system cadence;

providing the master system sensor input including the master system cadence to a controller based on the rotational input from a rehabilitation participant or a remote therapist received at the master system;

receiving, at a slave system, rotational input from a rehabilitation participant generating slave system sensor input having a slave system cadence;

providing the slave system sensor input including the slave system cadence to the controller based on the rotational input from the rehabilitation participant received at the slave system;

providing, from the controller, feedback through the master system in response to a difference between the master system cadence and the slave system cadence, wherein rotation of the master system and rotation of the slave system are not mechanically coupled; and

controlling the slave system with a motor of the slave system based on the master system cadence.

8. The method of claim 7 , further comprising:

providing a signal to a motor coupled to the slave system based on rotational input at the master system.

9. The method of claim 7 , further comprising:

transmitting feedback to the master system operated by the rehabilitation participant or the remote therapist; and

receiving input to the controller to control haptic feedback to the master system.

10. The method of claim 7 , further comprising:

transmitting feedback from the master system to the slave system; and

receiving input to the controller to control motor input to the slave system.

11. The method of claim 7 , wherein the master system comprises a hand-cycle system and wherein the slave system comprises a leg-cycle system.

12. A system for rehabilitation comprising:

a master system driven by a master system operator's volitional efforts, wherein the master system includes at least one of a hand-cycle system or a leg-cycle system;

a slave system driven by a participant's functional electric stimulation actuated muscle effort and a motor, wherein the slave system includes at least one of a hand-cycle system or a leg-cycle system; and

a controller for receiving sensor input from the slave system and to control driving of the slave system by the motor responsive to sensor input from the master system.

13. The system for rehabilitation of claim 12 , wherein the controller is configured to apply a variable operator to the motor of the slave system during functional electric stimulation.

14. The system for rehabilitation of claim 12 , wherein the controller controls driving of the slave system by the motor and the functional electric stimulation actuated muscle effort responsive to sensor input from the master system to generate position and velocity of the slave system based on a position and velocity of the master system.

15. The system for rehabilitation of claim 14 , wherein the controller controls resistive motor input applied to the master system indicative of a difference between operation of the master system and the slave system.

16. The system for rehabilitation of claim 12 , wherein the slave system is a split-crank leg-cycle system whereby two legs of the participant pedal the leg-cycle system independently.

17. The system for rehabilitation of claim 12 , wherein the controller comprises a communications module for communicating between the master system and the slave system, wherein the master system is located remotely from the slave system, and wherein the master system provides haptic feedback based on sensor input received at the slave system.

Assignments (2)
CONFIRMATORY LICENSE Recorded Apr 16, 2025
From: UNIVERSITY OF FLORIDA
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 070865/0080 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 29, 2021
From: DIXON, WARREN E.; STUBBS, KIMBERLY J.; ALLEN, BRENDON
To: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INCORPORATED
Reel/Frame 058223/0556 →
Continuity (2)
Provisional Application 63086394 · Oct 1, 2020
Related Publication 20220104989A1 · Apr 7, 2022
References Cited (9)
US 5466213A · Hogan · 1995 [cited by examiner]
US 20060247095A1 · Rummerfield · 2006 [cited by examiner]
US 20150165265A1 · Tholkes · 2015 [cited by examiner]
US 20170157396A1 · Dixon · 2017 [cited by examiner]
US 20210134457A1 · Mason · 2021 [cited by examiner]
US 20210228862A1 · Campos Uribe · 2021 [cited by examiner]
Wang X, Leung KW, Fang Y, Chen S, Tong RK. Design of Functional Electrical Stimulation Cycling System for Lower-Limb Rehabilitation of Stroke Patients. Annu Int Conf IEEE Eng Med Biol Soc. Jul. 2018;2018:2337-2340. doi:… [cited by examiner]
V. H. Duenas, C. A. Cousin, A. Parikh, P. Freeborn, E. J. Fox and W. E. Dixon, “Motorized and Functional Electrical Stimulation Induced Cycling via Switched Repetitive Learning Control,” in IEEE Transactions on Control … [cited by examiner]
C.A. Rouse, C.A. Cousin, B.C. Allen, and W.E. Dixon. “Split-Crank Cadence Tracking for Switched Motorized FES-Cycling with Volition Pedaling”. pp. 4393-4398 of American Control Conference 2019. Conference held Jul. 10, … [cited by examiner]