The present invention relates to an exercise apparatus and, more particularly, to an exercise ball with which a person can exercise.
As disclosed in US Patent Publication No 2017/0106249, a vibrating fitness ball 100 is a hollow sphere consisting of two hemi-spheres 110 and 112. The sphere 100 contains a circuit board assembly 220, a battery assembly 260, a motor 150 and two eccentric masses 152 and 154. The battery assembly 260 provides electricity to the circuit board assembly 220. The circuit board assembly 220 is electrically connected to the motor 150 so that the former controls the speed of rotation of a shaft 156 of the latter. The eccentric masses 152 and 154 are eccentrically connected to two opposite ends of the shaft 156. Thus, the sphere 100 is vibrated by the eccentric masses 152 and 154 when the eccentric masses 152 and 154 are rotated by the mandrel.
As disclosed in European Design Patent No. 003744119-0001 and Korean Patent No. 30-0908055, an exercise ball looks like a peanut.
The present invention is therefore intended to obviate or at least alleviate the problems encountered in prior art.
SUMMARY OF INVENTION
It is the primary objective of the present invention to provide an exercise ball that can be used alone or in connection with another identical exercise ball.
To achieve the foregoing objective, the exercise ball includes a spherical cage and a sphere. The spherical cage includes two opposite openings. The sphere includes two opposite convex portions formed thereon. The sphere is inserted in the spherical cage. The sphere is inserted in the spherical cage and the convex portions are inserted in the openings to keep the sphere in the spherical cage.
The present invention will be described via detailed illustration of the preferred embodiment referring to the drawings wherein.
The present invention will be described via detailed illustration of four embodiments referring to the drawings wherein:
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Preferably, the spherical cage 12 includes several connective strips 18 formed between and connected to two annular strips 14. The connective strips 18 are separated from one another by slots 11. Each of the connective strips 18 extends in a helical manner, and so does each of the slots 11. A bore 13 is made in a sheet (not numbered) that is formed between two and connected to adjacent ones of the connective strips 18. An opening 15 is made in each of the annular strips 14.
The sphere 20 includes an 0-shaped protuberance 22, two convex portions 23, a recess 24, two annular grooves 27, two extensive portions 28 and two circular cavities 42. The 0-shaped protuberance 22 extends around a bore (not numbered) made in the sphere 20. The convex portions 23 are located at two opposite portions of the sphere 20. The convex portions 23 extend in an annular manner. The recess 24 is made in a major portion of the external face of the sphere 20 except for the convex portions 23. The extensive portions 28 are formed at two ends of a diameter of the sphere 20. Each of the convex portions 23 extends around a corresponding one of the extensive portions 28. Each convex portion 23 is separated from the corresponding extensive portion 28 by corresponding one of the annular grooves 27. Each of the extensive portions 28 is formed with a thread 29.
The recess 24 receives the spherical cage 12 when the sphere 20 is inserted in the spherical cage 12. To this end, the depth of the recess 24 is about the thickness of the spherical cage 12. Now, the convex portions 23 are inserted in the openings 15, and the O-shaped protuberance 22 is inserted in the bore 13, thereby preventing rotation of the sphere 20 relative to the spherical cage 12.
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Preferably, the O-shaped protuberance 22 is formed on the hemisphere 21. However, the O-shaped protuberance 22 can consist of two C-shaped protuberances each of which is formed on a corresponding one of the hemispheres 21 and 25 in another embodiment. A socket (not shown) can be provided on the hemisphere 21, in the O-shaped protuberance 22.
Preferably, each of the convex portions 23 consists of two semi-circular portions each of which is formed on a corresponding one of the hemispheres 21 and 25. However, in another embodiment, one of the convex portions 23 can be formed on the hemisphere 21, and the remaining convex portion 23 on the hemisphere 25.
Preferably, each of the extensive portions 28 consists of two semi-circular portions 281 each of which is formed on a corresponding one of the hemispheres 21 and 25. However, in another embodiment, one of the extensive portions 28 can be formed on the hemisphere 21, and the remaining extensive portion 28 on the hemisphere 25.
Preferably, each of the annular grooves 27 consists of two semi-circular grooves 271 each of which is formed on a corresponding one of the hemispheres 21 and 25. However, in another embodiment, one of the annular grooves 27 can be made in the hemisphere 21, and the remaining annular groove 27 in the hemisphere 25.
Each of the circular cavities 42 preferably consists of two semi-circular cavities 421 each of which is made in a corresponding one of the hemispheres 21 and 25. The hemisphere 21 includes two lugs 31 near the semi-circular cavities 421. The hemisphere 25 includes two lugs 36 near the semi-circular cavities 421. The lugs 31 are overlapped with the lugs 36 when the hemispheres 21 and 25 are joined together. A screw 40 is inserted in each pair of overlapped lugs 31 and 36 to keep the hemispheres 21 and 25 joined together.
The hemisphere 21 includes a support unit 30 that includes several claws (not numbered) extending from an internal face of the hemisphere 21. The hemisphere 25 includes a support unit 35 that includes several claws (not numbered) extending from an internal face of the hemisphere 25.
The support unit 30 holds a vibration unit 32, and the support unit 35 holds a control unit 37. The support unit 30 or 35 can further hold at least one battery (not shown). The battery is electrically connected to the control unit 37 via a pair of wires 33. The vibration unit 32 is electrically connected to the control unit 37 via another pair of wires 33. The battery is preferably a rechargeable battery. The vibration unit 32 is used to produce a simple harmonic motion to vibrate the sphere 20. The control unit 37 is electrically connected to a switch 26 (
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The joint 50 includes two spaces 52 located opposite to each other. A thread 54 is formed on a wall of each of the spaces 52. Each end of the joint 50 is inserted in one of the annular grooves 27 of one of the exercise balls 10. Each of the spaces 52 receives one of the extensive portions 28 of one of the exercise balls 10. Each of the threads 54 is engaged with one of the threads 29 of one of the exercise balls 10. Thus, the exercise balls 10 are joined together by the joint 50. Now, the exercise apparatus 100 looks like a dumbbell. Each of the decorations 44 is connected one of the extensive portions 28 of one of the exercise balls 10.
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The present invention has been described via the illustration of the embodiments. Those skilled in the art can derive variations from the embodiments without departing from the scope of the present invention. Therefore, the embodiments shall not limit the scope of the present invention defined in the claims.