IP Library › Granted Patent US 11,185,740
Granted Patent B2
US 11,185,740 · App. 16/341,365 · Granted Nov 30, 2021

User-paced exercise equipment

Inventors: William Denton (Omaha, NE); Molly Schieber (Omaha, NE); Casey Wiens (Omaha, NE)
Assignee: Board of Regents of the University Of Nebraska
A63B24/0087A63B21/00076A63B22/025A63B24/0062A63B22/04A63B71/0622A63B2024/0065A63B2024/0093A63B2220/05A63B2220/10A63B2220/22A63B2220/30A63B2220/40A63B2220/56A63B2220/62A63B2220/806A63B2220/836A63B2225/50A63B2230/00A63B2230/04
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Quick Facts
Patent No.
US 11,185,740
App. No.
16/341,365
Granted
Nov 30, 2021
Kind
B2
Abstract

Disclosed herein are examples of user-paced exercise equipment, as well as related circuitry, methods, and computer-readable media. For example, disclosed herein is a user-paced treadmill, including a belt, a motor coupled to the belt, and control circuitry communicatively coupled to the motor. The control circuitry may be configured to change a velocity of the belt based at least in part on a body velocity and a leg swing velocity of a user of the user-paced treadmill.

Claims (39)

1. A control apparatus for exercise equipment, comprising:

a sensor system to generate data representative of a user of the exercise equipment when the exercise equipment is operating at a first equipment velocity, wherein the sensor system includes a first sensor set to generate data representative of a body velocity of a user of the exercise equipment and a second sensor set, different from the first sensor set, to generate data representative of a leg swing velocity of the user;

velocity generation circuitry to generate a second equipment velocity for the exercise equipment based at least in part on the body velocity and the leg swing velocity; and

velocity adjustment circuitry to cause the exercise equipment to operate at the second equipment velocity.

2. The control apparatus of claim 1 , wherein generate a second equipment velocity for the exercise equipment includes determine a change in equipment velocity for, wherein the second equipment velocity is equal to the first equipment velocity plus the change in equipment velocity.

3. The control apparatus of claim 1 , wherein the velocity adjustment circuitry is to communicate the second equipment velocity, or a difference between the first equipment velocity and the second equipment velocity, to a processor that controls a motor of the exercise equipment.

4. The control apparatus of claim 3 , wherein the control apparatus is to communicate with the processor using a Communications Specification for Fitness Equipment (CSAFE) protocol.

5. The control apparatus of claim 3 , wherein the control apparatus is to communicate with the processor via an Ethernet cable.

6. The control apparatus of claim 3 , wherein the velocity generation circuitry is located in a housing of the exercise equipment.

7. The control apparatus of claim 1 , wherein the velocity adjustment circuitry is to provide electrical signals to a motor of the exercise equipment to cause the exercise equipment to operate at the second equipment velocity.

8. The control apparatus of claim 7 , wherein the velocity generation circuitry is located in a housing of the exercise equipment.

9. The control apparatus of claim 1 , wherein the velocity generation circuitry is secured to a handle of the exercise equipment.

10. The control apparatus of claim 1 , wherein the exercise equipment is a treadmill.

11. The control apparatus of claim 1 , wherein the exercise equipment includes a stepper motor or a DC motor.

12. The control apparatus of claim 1 , wherein the sensor system includes a camera, a distance sensor, or an accelerometer.

13. The control apparatus of claim 12 , wherein the sensor system includes at least one sensor to communicate wirelessly with the velocity generation circuitry.

14. The control apparatus of claim 1 , wherein the sensor system is to generate data representative of a position of the user relative to the exercise equipment, and the velocity generation circuitry is to determine the second equipment velocity based at least in part on the position.

15. The control apparatus of claim 14 , wherein the velocity generation circuitry is to determine an adjustment factor based at least in part on the position.

16. The control apparatus of claim 15 , wherein the adjustment factor increases an influence of the leg swing velocity in the determination of the second equipment velocity as the position gets closer to an end of a position range of the exercise equipment.

17. The control apparatus of claim 15 , wherein the adjustment factor is to cause the second equipment velocity to be greater than or less than an estimated user velocity.

18. The control apparatus of claim 15 , wherein the velocity generation circuitry is to determine whether the user is running or walking, and to determine the adjustment factor based at least in part on whether the user is running or walking.

19. The control apparatus of claim 1 , wherein the velocity generation circuitry is to determine the second equipment velocity based at least in part on an acceleration limit.

20. The control apparatus of claim 19 , wherein the acceleration limit decreases as an equipment velocity of the exercise equipment increases.

21. The control apparatus of claim 19 , wherein the velocity generation circuitry is to determine whether the user is running or walking, and to determine the acceleration limit based at least in part on whether the user is running or walking.

22. The control apparatus of claim 1 , wherein the velocity generation circuitry is to determine the second equipment velocity based at least in part on a difference between the body velocity and a previously determined value of the body velocity.

23. The control apparatus of claim 1 , wherein the velocity generation circuitry is to determine the second equipment velocity based at least in part on a difference between the leg swing velocity and a previously determined value of the leg swing velocity.

24. The control apparatus of claim 1 , wherein the first sensor set includes a distance sensor.

25. The control apparatus of claim 24 , wherein the distance sensor includes a radar sensor.

26. The control apparatus of claim 1 , wherein the second sensor set is to generate data representative of a leg swing velocity based at least in part on a time of toe-off of a forward-moving leg of the user.

27. The control apparatus of claim 1 , wherein the second sensor set is to generate data representative of a leg swing velocity based at least in part on a time of heel strike of a forward-moving leg of the user.

28. A user-paced treadmill, comprising:

a belt;

a motor coupled to the belt; and

control circuitry, communicatively coupled to the motor, to adjust a belt velocity based at least in part on a body velocity and a leg swing velocity of a user of the user-paced treadmill, wherein the control circuitry includes a sensor system to generate data representative of the user, the sensor system includes a first sensor set to generate data representative of the body velocity, and the sensor system includes a second sensor set, different from the first sensor set, to generate data representative of the leg swing velocity.

29. The user-paced treadmill of claim 28 , wherein the control circuitry includes a communication pathway through an RJ-45 connector.

30. One or more non-transitory computer-readable media having instructions thereon that, in response to execution by one or more processing devices of control circuitry for a piece of exercise equipment, cause the control circuitry to:

identify a current equipment velocity of the piece of exercise equipment;

generate a new equipment velocity for the piece of exercise equipment based at least in part on a body velocity and a leg swing velocity of a user of the piece of exercise equipment, wherein the control circuitry includes a sensor system to generate data representative of the user, the sensor system includes a first sensor set to generate data representative of the body velocity, and the sensor system includes a second sensor set, different from the first sensor set, to generate data representative of the leg swing velocity; and

cause the piece of exercise equipment to operate at the new equipment velocity.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 30, 2019
From: DENTON, WILLIAM; SCHIEBER, MOLLY; WIENS, CASEY
To: BOARD OF REGENTS OF THE UNIVERSITY OF NEBRASKA
Reel/Frame 049031/0153 →
Continuity (2)
Provisional Application 62410116 · Oct 19, 2016
Related Publication 20190240541A1 · Aug 8, 2019
Cited By (1)
US 12,691,335