OMNIDIRECTIONAL TREADMILL FOR VIRTUAL REALITY AND METHOD FOR DRIVING SAME
20250256152 ยท 2025-08-14
Inventors
Cpc classification
A63B22/025
HUMAN NECESSITIES
G06F3/011
PHYSICS
A63B24/0062
HUMAN NECESSITIES
A63B22/0285
HUMAN NECESSITIES
International classification
A63B24/00
HUMAN NECESSITIES
Abstract
The present invention relates to an omnidirectional treadmill for virtual reality, comprising a hemispherical footplate portion frame, a footplate portion configured to be able to rotate omnidirectionally while surrounding the footplate portion frame, a covering, and a retainer. Provided that a virtual reality user needs to move at various rates of movement and in various directions, user movements in reality are counterbalanced by movements of the floor surface such that the user remains at the original location. Accordingly, the user can freely move in the virtual reality while moving at the original location in reality.
Claims
1.-6. (canceled)
7. An omnidirectional treadmill for virtual reality and a method for driving the same, the omnidirectional treadmill comprising: a footplate having a hemispherical shape with a surface area exactly identical to a surface area of a sphere to allow a surface material of the footplate to rotate in all directions without contracting and stretching; a footplate portion frame installed inside the footplate to maintain the hemispherical shape; and a covering and retaining portion for fixing a footplate portion formed by combining the footplate with the footplate portion frame to a predetermined position to ensure smooth operation. 8 (New) The omnidirectional treadmill of claim 7, further comprising: permanent magnets inserted into the footplate to have N and S poles alternating each other; and a drive unit for operating an electromagnetic force to the permanent magnets to provide a straight linear driving force, wherein the drive unit serves as a stator of a linear motor, and is provided in two or more directions to distribute and combine outputs, so that the footplate rotate in a predetermined direction.
9. The omnidirectional treadmill of claim 7, further comprising a sensor and a control unit configured such that the drive unit detects movements of a user in real time and controls a rotation direction and a speed of the footplate.
10. The omnidirectional treadmill of claim 7, further comprising a motion capture camera configured such that motions of a user is applied to the virtual reality.
11. The omnidirectional treadmill of claim 7, wherein a lubricant is filled at a joint surface between the footplate portion frame and the footplate to reduce friction.
12. The omnidirectional treadmill of claim 7, wherein, since the footplate portion frame has the hemispherical shape, a magnetic fluid is used to prevent the filled lubricant from clumping at a bottom of the footplate portion frame due to gravity, and uniformly distributed on the hemispherical footplate portion by magnetic forces of permanent magnets inserted into the footplate.
Description
DESCRIPTION OF DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
BEST MODEL
[0030] An omnidirectional treadmill for virtual reality and a method for driving the same of the present invention are configured to include: a footplate portion for allowing a user to step and exercise thereon like the ground; a drive unit for providing power to enable the footplate portion to rotate in opposite to a moving direction and a speed of the user; a covering and retaining portion for supporting and fixing the footplate portion and a drive unit to a specific position to operate smoothly; and a sensor portion for analyzing the moving direction and the speed of the user and transmitting a direction and a speed of operation to the drive unit.
[0031] The footplate portion has a semicircular shape and includes a footplate portion frame for maintaining an overall shape, a footplate for rotating while entirely surrounding the footplate portion frame, and a lubricant for allowing the footplate to smoothly rotate while being spaced apart from the footplate portion frame by a predetermined distance. In addition, according to the present invention, the drive unit is positioned below the footplate, in which the drive unit serves as a stator of a linear motor and permanent magnets inserted into the footplate serve as movers, so that the footplate may obtain power to rotate the footplate on a surface of the footplate portion frame.
Mode for Invention
[0032] Hereinafter, one preferred embodiment of the present invention will be described in detail with reference to the drawings attached to the present invention.
[0033] First, it will be noted that same reference numerals may indicate the same elements or components as possible in the drawings. In the following description of the embodiments of the present invention, the detailed description of relevant known functions or configurations will be omitted not to make the subject matter of the present invention unclear.
[0034] First, as shown in the example 100 of the motion inside a sphere of
[0035] In addition, as shown in
[0036] Further, as shown in
[0037] In addition, as shown in
[0038] Particularly, as shown in
[0039] The operation of the present invention configured in the above manner will be described as follows.
[0040] First, the sensor and control portion 240 detects the user's movement direction and speed, analyzes data, and supplies power to the X axis linear motor 222 and the Y axis linear motor 221 of the drive unit 220.
[0041] The amount of power supplied to the X axis linear motor 222 and the Y axis linear motor 221 may be selectively distributed according to the movement direction and speed.
[0042] When the power is supplied to the X axis linear motor 222 and the Y axis linear motor 221 of the drive unit 220 as described above, the permanent magnets 212 inserted into the footplate 211 surrounding the surface of the footplate portion frame 214 interacts electrically, thereby generating the straight-line driving force. In addition, since the footplate portion frame 214 is spaced apart from the footplate 211 at a predetermined distance due to the lubricant 213, thereby reducing a surface friction of a joint part, so that the footplate 211 may be allowed to rotate freely on the surface of the footplate portion frame 214.
[0043] Since the footplate portion frame 214 has a shape deformed from a complete sphere, and the linear driving force in the two directions of the X axis and the Y axis is transmitted in combination from the drive unit 220, the user's movements are counterbalanced in response to all directions and speeds.
[0044] Thus, the omnidirectional treadmill for virtual reality and the method for driving the same of the present invention can achieve the purpose of the treadmill, that is, allow the user to walk or run while remaining at the original point in response to all movements and speeds of the user, so that the user can be allowed to explore the vast virtual reality world even in a narrow real space.
DESCRIPTION OF DRAWINGS
TABLE-US-00001 100: Example of motion inside sphere 110: Sphere-deformed shape of the present invention 111: Length of hemispherical arc 112: Length of sphere-deformed arc 200: Omnidirectional treadmill for virtual reality 210: Footplate portion 211: Footplate 212: Permanent magnet (mover) 213: Lubricant (magnetic fluid), 214: Footplate portion frame 220: Drive portion 221: Y axis linear motor (stator) 222: X axis linear motor (stator) 230: Covering and retaining portion 231: Outer cover 232: Sensor cover 233: Upper fixing ball bearing 234: Lower supporting ball bearing 235: Structure member 240: Sensor and control portion 241: Speed/direction sensor 242: Motion capture camera
INDUSTRIAL APPLICABILITY
[0045] The omnidirectional treadmill for virtual reality and the method for driving the same of the present invention may be installed in home, commercial VR experience centers, health clubs or the like, and used in any virtual reality game, tourism or the like to which virtual reality can be applied.