Rollback ball
10150013 ยท 2018-12-11
Assignee
Inventors
Cpc classification
International classification
A63B43/04
HUMAN NECESSITIES
Abstract
The Rollback Ball or Ballmerang is a ball toy consisting of a ball shell and a mechanical tracking device tracking the ball shell by using friction force or magnetic force converting the moving ball kinetic energy to potential energy, and then releasing the potential energy rolling the ball back at the same straight line path to the same launching destination when rolling the ball in any direction on a flat floor.
Claims
1. A rollback ball comprising a ball shell and a mechanical tracking device, wherein the mechanical tracking device is housed inside the ball shell and wherein a. the ball shell comprises an inner wall; and b. the mechanical tracking device comprises a symmetrical supporting frame with three symmetrical arms and three shafts, each shaft protruding perpendicularly from each arm of the frame, three wheels, wherein each wheel has a tire thereon, three spiral coil springs, wherein each coil spring is positioned within each wheel and has an outer end and a center end, and a weight, wherein each of the three wheels is symmetrically arranged around the frame and supported on one of the three shafts, rotates freely thereon, and the tire on each of the wheels leans against the inner wall of the shell; each wheel comprises a notch and each shaft comprises a slot, wherein the outer end of each coil spring is anchored to the notch and the center end of each coil spring is anchored to the slot, so that each coil spring is wound around each shaft when each wheel rotates; and the weight is attached to a center of the symmetrical supporting frame at a bottom, wherein the inner wall of the ball shell comprises a bottom and the weight floats above the bottom of the inner wall of the ball shell, and the weight is configured to prevent the tracking device from rotating within the ball.
2. The rollback ball according to claim 1, wherein the ball shell comprises two hemisphere shells.
3. The rollback ball according to claim 1, wherein each wheel comprises an outer edge and the notch is in the outer edge of each wheel.
4. The rollback ball according to claim 1, wherein the shafts further comprise retaining rings to retain the wheels to the shafts.
5. The rollback ball according to claim 1, wherein the tires comprise rubber or synthetic rubber.
6. The rollback ball according to claim 1, wherein the ball shell comprises a high friction material and the tires comprise plastic or metal.
7. The rollback ball according to claim 1, wherein the ball shell comprises ferrous metal or ferrous alloy and the tires comprise a magnetic material.
8. The rollback ball according to claim 1, wherein the weight is attached to the symmetrical supporting frame with a threaded rod and secured by a nut.
9. A method, comprising the steps of a. providing the rollback ball of claim 1; b. rolling the rollback ball from a start position to a stop position, wherein the rolling winds the spring anchored to one of the wheels, such that when the rollback ball reaches the stop position, the spring unwinds to roll the rollback ball to a second stop position.
10. The method of claim 9, wherein the start and second stop positions are the same or approximately the same.
11. The method of claim 9, wherein the spring winds in the clockwise direction and unwinds in the counterclockwise direction.
12. The method of claim 9, wherein the spring winds in the counterclockwise direction and unwinds in the clockwise direction.
13. The method of claim 9, wherein the rolling winds springs anchored to two of the wheels.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2) Section A-A: A horizontal cross-section of the tracking device.
(3) Section B-B: A partial vertical section of the weight, supporting frame, and point of contact between the ball and the wheel.
DETAILED DESCRIPTION OF THE INVENT
(4) An embodiment of the Rollback Ball or Ballmerang is illustrated in
(5) When rolling the Rollback Ball without spinning on a level floor and with a force that generates kinetic energy below potential energy that could be stored by the springs 40, the ball will roll in a straight line. Gravity will pull and maintain the weight 70 in the vertical position preventing the tracking device from rotating with the shell 10.
(6) If the wheel's position is in line with the ball's moving path, the tire 20 will rotate from the friction force rubbing against the shell 10 and fully track the whole length of the ball's moving path. The wheel 30 will wind in or wind out (depended on the spring's pattern either clockwise or counter-clockwise) the spring 40 and convert kinetic energy of the rolling ball to potential energy stored in the spring 40. If the wheel's position is perpendicular to the ball's moving path, the tire 20 will not rotate or wind the spring 40, and thus stores no potential energy. If the wheel's position is in between the two mentioned positions the tire 20 will rotate and store potential energy accordingly to its position.
(7) Each wheel 30 in the tracking device has a position related to the ball's moving path differently from the other wheels 30. Thus, each wheel 30 will rotate and store energy differently from the other wheels 30. Once the ball stops rolling, the springs 40 will unwind releasing their potential energy, the wheels 30 will reverse their rotations proportionally to the amount of their stored potential energy, the tires 20 will drive the shell 10 and the ball back at the same straight line path to the same or approximately the same destination from which it was launched. With the novel mechanical tracking device, the ball can return back when rolling in any ball's direction on a flat floor.
(8) The second embodiment of the Rollback Ball or Ballmerang is to use magnetic forces instead of the friction forces to track and drive the ball back. For this embodiment, the tires 20 are made of magnetic materials and the shell 10 is made of materials that are attracted to magnets, such as ferrous metal or ferrous alloy. Instead of using the friction forces tracking the ball as previously described, the magnetic tires 20 use magnetic forces pulling and adhering to the ferrous shell 10. When the shell 10 rotates the magnetic tires 20 rotate tracking the shell 10, and vice versa when the magnetic tires 20 rotate.