IP Library › Granted Patent US 12,016,813
Granted Patent B2
US 12,016,813 · App. 16/757,342 · Granted Jun 25, 2024

Motorized rehabilitation device

Inventors: Rajni V. Patel (London, CA); Vahid Mehrabi (London, CA); Seyed Farokh Atashzar (London, CA)
Assignee: The University of Western Ontario
A61H1/005A61H1/0266A61H1/0285A61H2201/0157A61H2201/1207A61H2201/1659A61H2201/501A61H2201/5064
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Quick Facts
Patent No.
US 12,016,813
App. No.
16/757,342
Granted
Jun 25, 2024
Kind
B2
Abstract

A motorized rehabilitation device includes a mobile base bound by a lower surface and an upper surface. A first motorized wheel assembly is supported on the upper surface of the mobile base. The mobile base also includes a second motorized wheel assembly at least partially extending below the lower surface of the base. A dome is bound by an exterior convex surface and an interior concave surface. The dome is biased for friction contact of the interior concave surface with the first motorized wheel assembly. An end-effector is positioned above the exterior concave surface. The end-effector is configured to engage an animal body part.

Claims (34)

1. A motorized rehabilitation device comprising:

a mobile base bound by a lower surface and an upper surface, wherein the mobile base comprises a motorized wheel assembly at least partially extending below the lower surface of the base;

a motorized cable-winch assembly supported on the upper surface of the mobile base;

a central rod extending from the upper surface of the base, a rotational joint connecting a first end of the central rod to the base; a dome connected to the central rod; and

an end-effector positioned at a second end of the central rod, the end-effector configured to engage an animal body part.

2. The device of claim 1 , wherein the motorized wheel assembly comprises at least 3 wheels, each wheel driven by a motor, and each motor is slidable from a first position providing a first power transmission to a second position providing a second power transmission.

3. The device of claim 2 , wherein the first power transmission is a first set of gears operably communicative between the motor in the first position and the wheel and the second power transmission is a second set of gears operably communicative between the motor in the second position and the wheel.

4. The device of claim 2 , wherein the first power transmission is configured for an upper extremity therapy and the second power transmission is configured for a lower extremity therapy, the second power transmission transmitting greater power to the wheel than the first power transmission.

5. The device of claim 1 , wherein the motorized cable-winch assembly comprises at least 3 motorized cable-winch units, a cable from each unit connected to the central rod, and each motor of the at least 3 motorized cable-winch units is slidable from a first position providing a first power transmission to a second position providing a second power transmission.

6. The device of claim 5 , wherein the first power transmission is a first set of gears operably communicative between the motor in the first position and the cable and the second power transmission is a second set of gears operably communicative between the motor in the second position and the cable.

7. The device of claim 5 , wherein the first power transmission is configured for an upper extremity therapy and the second power transmission is configured for a lower extremity therapy, the second power transmission transmitting greater power to the cable than the first power transmission.

8. The device of claim 5 , further comprising a clutch operably communicative with a motor and a winch drum in each of the at least 3 motorized cable-winch units.

9. The device of claim 8 , wherein the clutch is a friction clutch.

10. A robotic rehabilitation system comprising:

the device of claim 1 ;

a localization sensor connected to the mobile base, the localization sensor detecting real-time location data;

a controller for receiving the real-time localization data and for generating and communicating a control signal to the mobile base to minimize a difference between the real-time location data and a preset desired location.

11. The device of claim 2 , wherein an axis of each wheel is aligned substantially parallel to a radial direction of the base.

12. The device of claim 2 , wherein each wheel is an omni-wheel.

13. The device of claim 5 , wherein an axis of a winch drum in each of the at least 3 motorized cable-winch units is aligned substantially perpendicular to a radial direction of the base.

14. The device of claim 1 , wherein the rotational joint is a universal joint.

15. The device of claim 1 , further comprising a force sensor operably communicative with the end-effector, the force sensor mounted between the end-effector and the second end of the central rod.

16. The device of claim 1 , further comprising a plurality of localization sensors mounted to the lower surface of the base.

17. The device of claim 1 , further comprising a plurality of stabilizing arms pivotably coupled to the base, the plurality of stabilizing arms extendable from a first position circumferentially proximal to a perimeter of the base to a second position circumferentially distal from the perimeter of the base.

18. The device of claim 17 , further comprising a spherical wheel mounted at a free end of each of the plurality of stabilizing arms.

19. A robotic rehabilitation system comprising:

the device of claim 1 ;

a force sensor connected to the end-effector, the force sensor detecting real-time contact force data;

a controller for receiving the real-time contact force data and for generating and communicating a control signal to the motorized cable-winch assembly to minimize a difference between the real-time contact force data and a preset desired contact force.

20. A robotic rehabilitation system comprising:

the device of claim 1 ;

an orientation sensor operably communicative with central rod motion, the orientation sensor detecting real-time rod-orientation data;

a controller for receiving the real-time rod-orientation data and for generating and communicating a control signal to the motorized cable-winch assembly to minimize a difference between the real-time rod-orientation data and a desired rod-orientation.

21. The device of claim 1 , wherein a shape of the dome is hemispherical, ellipsoidal, pyramidal, plateaued pyramidal, or geodesic.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 13, 2024
From: PATEL, RAJNI, DR.; MEHRABI, VAHID, MR.; ATASHZAR, SEYED FAROKH, MR.
To: THE UNIVERSITY OF WESTERN ONTARIO
Reel/Frame 067395/0263 →
Continuity (1)
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