CONTINUOUS OMNIDIRECTIONAL TREADMILL DEVICE AND RELATED METHODS
20240165459 ยท 2024-05-23
Inventors
Cpc classification
A63B22/025
HUMAN NECESSITIES
International classification
Abstract
An omnidirectional treadmill includes a treadmill deck assembly having a deck, and first omniwheels coupled to a periphery of the deck, and a support assembly. The support assembly includes a base, second omniwheels coupled to a periphery of the base and to abut the first omniwheels, and motors coupled to the second omniwheels. The omnidirectional treadmill also includes a tread surrounding the treadmill deck assembly and being between the first omniwheels and the second omniwheels. The first omniwheels and the second omniwheels are configured to pinch the tread. The omnidirectional treadmill also includes a controller coupled to the motors and configured to control movement of the motors to drive the tread.
Claims
1. An omnidirectional treadmill comprising: a treadmill deck assembly comprising a deck, and a first plurality of omniwheels coupled to a periphery of the deck; a support assembly comprising a base, a second plurality of omniwheels coupled to a periphery of the base and to abut the first plurality of omniwheels, and a plurality of motors coupled to the second plurality of omniwheels; a tread surrounding the treadmill deck assembly and being between the first plurality of omniwheels and the second plurality of omniwheels; the first plurality of omniwheels and the second plurality of omniwheels configured to pinch the tread; and a controller coupled to the plurality of motors and configured to control movement of the plurality of motors to drive the tread.
2. The omnidirectional treadmill of claim 1 further comprising a fabric management assembly coupled to the tread below the treadmill deck assembly.
3. The omnidirectional treadmill of claim 2 wherein the fabric management assembly comprises a plurality of rings adjacent to the tread, the plurality of rings having different diameters.
4. The omnidirectional treadmill of claim 3 wherein the fabric management assembly comprises a tensioning device within the tread and configured to tension the tread against the plurality of rings.
5. The omnidirectional treadmill of claim 4 wherein the tensioning device comprises an annular weight.
6. The omnidirectional treadmill of claim 1 wherein the treadmill deck assembly comprises a first plurality of bearing devices coupled to the periphery of the deck; wherein the support assembly comprises a second plurality of bearing devices coupled to the periphery of the base; and wherein the tread is between the first plurality of bearing devices and the second plurality of bearing devices.
7. The omnidirectional treadmill of claim 6 wherein each of the first plurality of bearing devices comprises a first transfer bearing facing away from the deck.
8. The omnidirectional treadmill of claim 7 wherein each of the second plurality of bearing devices comprises a set of second transfer bearings facing inwardly and being radially spaced from each other.
9. The omnidirectional treadmill of claim 8 wherein each respective first transfer bearing sits onto and between the set of second transfer bearings.
10. An omnidirectional treadmill comprising: a treadmill deck assembly comprising a deck, a first plurality of omniwheels coupled to the periphery of the deck, and a first plurality of bearing devices coupled to the periphery of the deck; a support assembly comprising a base, a second plurality of omniwheels coupled to a periphery of the base and to abut the first plurality of omniwheels, a plurality of motors coupled to the second plurality of omniwheels, and a second plurality of bearing devices coupled to the periphery of the base; a tread surrounding the treadmill deck assembly and being between the first plurality of omniwheels and the second plurality of omniwheels; a fabric management assembly coupled to the tread below the treadmill deck assembly; the first plurality of omniwheels and the second plurality of omniwheels configured to pinch the tread, the tread being between the first plurality of bearing devices and the second plurality of bearing devices; and a controller coupled to the plurality of motors and configured to control movement of the plurality of motors to drive the tread.
11. The omnidirectional treadmill of claim 10 wherein the fabric management assembly comprises a plurality of rings adjacent to the tread, the plurality of rings having different diameters.
12. The omnidirectional treadmill of claim 11 wherein the fabric management assembly comprises a tensioning device within the tread and configured to tension the tread against the plurality of rings.
13. The omnidirectional treadmill of claim 12 wherein the tensioning device comprises an annular weight.
14. The omnidirectional treadmill of claim 10 wherein each of the first plurality of bearing devices comprises a first transfer bearing facing away from the deck.
15. The omnidirectional treadmill of claim 14 wherein each of the second plurality of bearing devices comprises a set of second transfer bearings facing inwardly and being radially spaced from each other.
16. The omnidirectional treadmill of claim 15 wherein each respective first transfer bearing sits onto and between the set of second transfer bearings.
17. A method of making an omnidirectional treadmill, the method comprising: providing a treadmill deck assembly comprising a deck, and a first plurality of omniwheels coupled to a periphery of the deck; positioning a support assembly comprising a base, a second plurality of omniwheels coupled to a periphery of the base and to abut the first plurality of omniwheels, and a plurality of motors coupled to the second plurality of omniwheels; positioning the treadmill deck assembly within a tread, the tread being between the first plurality of omniwheels and the second plurality of omniwheels; the first plurality of omniwheels and the second plurality of omniwheels configured to pinch the tread; and coupling a controller to the plurality of motors and configured to control movement of the plurality of motors to drive the tread.
18. The method of claim 17 further comprising coupling a fabric management assembly to the tread below the treadmill deck assembly.
19. The method of claim 18 wherein the fabric management assembly comprises a plurality of rings adjacent to the tread, the plurality of rings having different diameters.
20. The method of claim 19 wherein the fabric management assembly comprises a tensioning device within the tread and configured to tension the tread against the plurality of rings.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0019] The present disclosure will now be described more fully hereinafter with reference to the accompanying drawings, in which several embodiments of the invention are shown. This present disclosure may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the present disclosure to those skilled in the art. Like numbers refer to like elements throughout, and base 100 reference numerals are used to indicate similar elements in alternative embodiments.
[0020] The present disclosure utilizes a device called an omniwheel depicted in
[0021] The present disclosure utilizes a device called a ball transfer bearing depicted in
[0022] Generally speaking, an omnidirectional treadmill comprises a continuous sphere of fabric or a similarly thin material, called the Tread, which encloses a sturdy platform. This platform may have a plurality of inner omniwheels installed along its edge. A support assembly is located outside of the fabric and underneath the platform which may include a system of vertically aligned bearing devices, both inside and outside of the tread, used as a method to support the weight of the platform without inhibiting the movement of the tread. The support assembly includes a plurality of motors which drive omniwheels that are each vertically aligned underneath each of the inner omniwheels such that the tread is pinched between the two sets of omniwheels, allowing the motors to pull the tread around.
[0023] Additionally, the omnidirectional treadmill may include a fabric management assembly coupled to the tread below the treadmill deck assembly. The fabric management assembly may comprise a plurality of rings with varying diameters, which the tread is guided through, using the rings as a three-dimensional pulley system. The fabric management assembly may also comprise a tensioning device within the tread and configured to tension the tread against the plurality of rings. In particular, the tensioning device may comprise an annular weight.
[0024] Another aspect is directed to an electronic system which could detect forces applied to the tread in order to predict a user's movement. This detected information could be sent to speed controllers to control the motors such that the Tread moves to keep the user centered on the platform.
[0025] A simplified cross-sectional view of the omnidirectional treadmill 300 can be seen in
[0026] That two-dimensional explanation would be an unnecessarily complicated design if this were a conventional treadmill, however, due to the added dimension of movement required by an omnidirectional treadmill, these design choices become necessary. To transform this two-dimensional design into the three-dimensional one that is the subject of this patent, the components will need to be swapped out for their three-dimensional counterparts, starting with the treadmill belt 314. The continuous circular strip of thin material that is used as a walkable moving surface on a conventional treadmill is replaced by a continuous sphere of thin material which will hereafter be referred to as the tread 314. Due to the tread now needing to completely enclose the treadmill platform 302 in order to be a continuous sphere, the rectangular treadmill platform can no longer be directly supported by the ground and is instead replaced with a completely disjointed circular or polygonal platform which will hereafter be referred to as the treadmill deck 302. The treadmill deck is supported indirectly through the through the tread 314 by a system of ball transfer bearings 322 (
[0027] An omniwheel (
[0028] The design of the tread 314 will now be described in detail. The tread is made from a fabric or a similarly thin material which is manufactured into a spherical or spheroidal shape. The tread completely encompasses the treadmill deck such that a layer of fabric completely isolates the deck 302 from the rest of the treadmill assembly. The tread is held in tension by a fabric management system 316 so that it can be pulled around by the motor driven omniwheels 307a-307d without slacking in the tread causing issues similar to those encountered by trying to push a rope through two wheels. The tread 314 being in tension also ensures that the surface which the user walks on doesn't feel stretchy and makes sure that the surface only moves when the motors move. The tread can be manufactured in many ways, but it will behave more uniformly during operation the closer it is in shape to a perfect sphere and therefore be less likely to cause problems. The tread in
[0029] The design of the treadmill deck 302 will now be described in detail with reference to
[0030] The fabric management system will now be described in detail with reference to
[0031] The lateral force detection and motor control system will now be described in detail with reference to
[0032] A simplified block diagram of the lateral force detection system can be seen in
[0033] The lateral force detection system allows for extremely low latency detection of a user's intended movement, getting as close as possible to reading their mind without actually doing it. When paired with quick, high torque motors, the lateral force detection system enables the omnidirectional treadmill to keep up with a user who is running and quickly changing directions.
[0034] All of the aforementioned elements that make up the present disclosure come together to make a reasonably cheap, and uniquely effective omnidirectional treadmill, intended to be sold at a large scale to consumers for many purposes, including for use with Virtual Reality or as a physical therapy device.
[0035] Referring now to
[0036] Here, the deck 302 is illustratively square-shaped, but in other embodiments, the deck may take on other polygonal shapes. Although only two of the first plurality of omniwheels 303a-303b are depicted, there are at least four in the first plurality of omniwheels 303a-303b, illustratively equally spaced at the four corners of the deck 302 (i.e., radially spaced at) 90?.
[0037] The omnidirectional treadmill 300 includes a support assembly 305. The support assembly 305 comprises a base 306, a second plurality of omniwheels 307a-307d coupled to a periphery of the base and to abut the first plurality of omniwheels 303a-303b, a plurality of motors 310a-310d coupled to the second plurality of omniwheels, and a second plurality of bearing devices 311a-311d coupled to the periphery of the base. As perhaps best seen in
[0038] The support assembly 305 illustratively comprises a plurality or vertical arms 312a-312d extending upward from the base 306 and respectively carrying the second plurality of bearing devices 311a-311d, and a plurality of platforms 313a-313d on the from the base 306 carrying the plurality of motors 310a-310d and the second plurality of omniwheels 307a-307d.
[0039] The omnidirectional treadmill 300 comprises a tread 314 surrounding the treadmill deck assembly 301 and being between the first plurality of omniwheels 303a-303b and the second plurality of omniwheels 307a-307d. As perhaps best seen in
[0040] As perhaps best seen in
[0041] Referring to
[0042] The fabric management assembly 316 illustratively comprises a tensioning device 320 within the tread 314 and configured to tension the tread against the plurality of rings 317a-317c. In particular, the tensioning device 320 comprises an annular weight, for example, the illustrated ring of ball bearings (
[0043] Referring now additionally to
[0044] Each of the second plurality of bearing devices 311a-311d comprises a set of second transfer bearings 322a-322c facing inwardly and being radially spaced from each other. Each respective first transfer bearing 321 sits onto and between the set of second transfer bearings 322a-322c. In the illustrated embodiment, the set of second transfer bearings 322a-322c are arranged in a triangular pattern, and are radially spaced apart 120?. The respective first transfer bearing 321 sits centrally within the set of second transfer bearings 322a-322c to tightly control the tread 314.
[0045] Each of the first transfer bearings 321 and the second transfer bearings 322a-322c comprises a housing 323, a threaded shank 324 coupled to the housing, a first ball bearing 325 being centrally located and aligned with the threaded shank, second ball bearings 326a-326d between the housing and the first ball bearing, and third ball bearings 327a-327n annularly surrounding the first ball bearing.
[0046] Referring now additionally to
[0047] Another aspect is directed to a method of making an omnidirectional treadmill 300. The method comprises providing a treadmill deck assembly 301 comprising a deck 302, and a first plurality of omniwheels 303a-303b coupled to a periphery of the deck, and positioning a support assembly 305. The support assembly 305 comprises a base 306, a second plurality of omniwheels 307a-307d coupled to a periphery of the base and to abut the first plurality of omniwheels 303a-303b, and a plurality of motors 310a-310d coupled to the second plurality of omniwheels.
[0048] As perhaps best seen in
[0049] As will be appreciated, the features from the omnidirectional treadmill 100 and the omnidirectional treadmill 300 may be combined.
[0050] Many modifications and other embodiments of the present disclosure will come to the mind of one skilled in the art having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is understood that the present disclosure is not to be limited to the specific embodiments disclosed, and that modifications and embodiments are intended to be included within the scope of the appended claims.