DRIFTING KART
20260115064 ยท 2026-04-30
Inventors
Cpc classification
B62D39/00
PERFORMING OPERATIONS; TRANSPORTING
B62D17/00
PERFORMING OPERATIONS; TRANSPORTING
B62D21/183
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60K7/00
PERFORMING OPERATIONS; TRANSPORTING
B62B5/00
PERFORMING OPERATIONS; TRANSPORTING
B62D17/00
PERFORMING OPERATIONS; TRANSPORTING
B62D21/18
PERFORMING OPERATIONS; TRANSPORTING
B62D39/00
PERFORMING OPERATIONS; TRANSPORTING
B62D9/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Drifting karts in accordance with embodiments of the invention are described that include a front wheel drive train and rear caster wheels that can be dynamically engaged to induce and control drift during a turn. One embodiment of the invention includes a chassis to which a steering column is mounted, where the steering column includes at least one front steerable wheel configured to be driven by an electric motor, a battery housing mounted to the chassis, where the battery housing contains a controller and at least one battery, wiring configured to provide power from the at least one battery to the electric motor, two caster wheels mounted to the chassis, where each caster wheel is configured to rotate around a rotational axis and swivel around a swivel axis, and a hand lever configured to dynamically engage the caster wheels to induce and control drift during a turn.
Claims
1. (canceled)
2. A drifting kart comprising: a tubular frame having a longitudinal axis; a seat mounted to the tubular frame; a steerable wheel on a front of the tubular frame, the steerable wheel configured to be turned by a rider to steer the drifting kart; a shaft on a rear of the tubular frame, the shaft configured to rotate relative to the seat and around a rotation axis, the rotation axis perpendicular to the longitudinal axis of the tubular frame; a first caster wheel mounted to a first end of the shaft; a second caster mounted to a second end of the shaft; and a hand lever connected to the shaft and configured to rotate the shaft.
3. The drifting kart of claim 2, wherein the steerable wheel is configured to be turned relative to the seat around a vertical axis.
4. The drifting kart of claim 2, wherein the steerable wheel is configured to be turned around a first axis and to rotate around a second axis.
5. The drifting kart of claim 2, wherein the steerable wheel is on a centerline of the drifting kart.
6. The drifting kart of claim 2, wherein the front of the tubular frame further comprises a fork and a rotation joint, the fork connected to the rotation joint and to the steerable wheel, the rotation joint configured to enable the fork and steerable wheel to turn relative to the seat.
7. The drifting kart of claim 2, wherein the tubular frame comprises a front support extending parallel to the longitudinal axis and a rear support extending perpendicular to the longitudinal axis.
8. The drifting kart of claim 2, further wherein the shaft is mounted to the tubular frame with a first bracket on a first side of the tubular frame and with a second bracket on a second side of the tubular frame.
9. The drifting kart of claim 2, wherein the hand lever is connected to the shaft at a location between the first caster wheel and a lateral center of the seat.
10. A drifting kart comprising: a tubular frame; a seat mounted to the tubular frame, the seat having a front, a rear, a right side, a left side, and a lateral center between the right and left sides; a front wheel on a front of the drifting kart, the front wheel configured to rotate around a first axis and to turn around a second axis, a first caster wheel and a second caster wheel on a rear of the drifting kart, the first and second caster wheels configured to rotate around a respective rotational axis and swivel around a respective swivel axis; and a hand lever configured to move the first and second caster wheels to control drifting.
11. The drifting kart of claim 10, wherein the front wheel is aligned with the lateral center of the seat, the front wheel.
12. The drifting kart of claim 10, wherein the first caster wheel is positioned laterally outward of the right side of the seat and the second caster wheel is positioned laterally outward of the left side of the seat.
13. The drifting kart of claim 10, further comprising an electric motor configured to propel the front wheel.
14. The drifting kart of claim 10, wherein the first and second caster wheels each have a diameter that is less than a diameter of the front wheel.
15. The drifting kart of claim 10, wherein the first and second caster wheels are mounted to a shaft that is configured to rotate relative to the seat.
16. The drifting kart of claim 15, wherein the hand lever is rigidly connected to the shaft.
17. A drifting kart comprising: a front comprising a front wheel, the front wheel configured to steer the drifting kart; a middle comprising a seat having a right side and a left side, the front wheel in front of the seat and between the right and left sides of the seat; a rear comprising a rotatable support, a first caster wheel, and a second caster wheel, the first and second caster wheels configured to rotate around a respective rotational axis and swivel around a respective swivel axis, the rotatable support configured to rotate relative to the seat; and a hand lever connected to the rotatable support, the hand lever configured to move up and down relative to the seat during operation of the drifting kart.
18. The drifting kart of claim 17, wherein the front wheel is further configured to propel the drifting cart.
19. The drifting kart of claim 17, further comprising a steering wheel operably connected to the front wheel.
20. The drifting kart of claim 17, wherein the front further comprises a horizontal support that extends parallel to a longitudinal axis of the drifting cart, and wherein the front wheel is under the horizontal support.
21. The drifting kart of claim 17, wherein the front wheel is configured to rotate 360 degrees relative to the seat.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0031] Turning now to the drawings, drifting karts that are front wheel drive and include rear caster wheels that can be dynamically engaged to induce and control drift during a turn in accordance with embodiments of the invention are illustrated. A caster wheel typically includes a wheel configured to rotate around a rotational axis and a fork supporting the wheel, which enables the wheel to swivel around a swivel axis. When the caster wheels of the drifting kart contact a track surface and the caster wheels are free to swivel around their swivel axes, the caster wheels are considered engaged and the kart can be steered into a drift. The caster wheels can be disengaged to steer the kart normally by either limiting the extent to which the caster wheels can swivel or by shifting the caster wheels so that they do not contact the track surface.
[0032] In a number of embodiments, a hand lever controls the engagement of the caster wheels and can be used by a driver to induce and control drift during a turn. Pulling on the hand lever simulates a hand brake drifting technique used to initiate drift in a rear wheel drive automobile with a limited slip differential. In many embodiments, the caster wheels are mounted to a rotatable member and the hand lever rotates the rotatable member from a first position, where the caster wheels are aligned so that the weight of the drifting kart and/or the driver limits the ability of the caster wheels to swivel about their swivel axes, to a second position where the caster wheels are aligned so that they are free to swivel about their swivel axes during motion of the drifting kart.
[0033] In several embodiments, the drifting kart includes an additional pair of rear wheels fixed to an axle and the hand lever is configured to raise and lower the fixed wheels so that the caster wheels do not engage the track in the lowered position, and the caster wheels engage the track in the raised position.
[0034] In many embodiments, a zero camber zero rake fork houses the power train. The power train can be a variable speed electric motor that delivers power to a drive wheel using a chain and sprocket system or belt. In several embodiments, the zero camber zero rake fork enables the front drive wheel to rotate through 360 degrees. In a number of embodiments, the alignment of the fork that houses the power train is aligned at an angle to vertical that is sufficiently small such that the weight of the drifting kart and the driver does not prevent the full 360 degree steering of the drive wheel. In a number of embodiments, full 360 degree drift is not desired and the fork can be aligned at a greater angle to vertical.
[0035] Referring now to
[0036] In several embodiments, the fork is a zero camber zero rake fork that enables the steering wheel to turn through 360 degrees. The ability to turn the steering wheel through 360 degrees and the ability to induce drift during the rotation of the steering wheel can provide the drifting kart with a zero turn radius allowing a driver to induce and control drift that spins the drifting kart through 360 degrees. The vertical alignment of such a fork means that the chassis of the drifting kart is not raised as the fork is rotated through 360 degrees on a level surface. The extent to which the steering column can be aligned at an angle to vertical depends largely upon the weight of the drifting cart, the weight of the driver, and the amount of force the driver can exert on the steering wheel during its turning through 360 degrees. Accordingly, many embodiments utilize forks aligned in accordance with the requirements of a specific application.
[0037] Referring now to
[0038] Referring now to
[0039] The caster wheels used in the construction of drifting karts in accordance with embodiments of the invention are typically constructed from high performance casters that include polyurethane wheels mounted to the caster fork via at least one bearing press fitted to the wheel. In one embodiment, the wheels have a 68 mm radius and the bearings are BSB ABEC 7 bearings. Although other casters appropriate to the application can also be used.
[0040] Power is provided to the power train via a battery housing 30 that contains batteries and a controller. The batteries are typically rechargeable and employ a recharging system that is configured to draw power from a conventional single phase power outlet. In many embodiments, the batteries form a 24 V battery system utilizing two 12 V 7 Amp Hour batteries and the controller regulates the supply of electricity to the electrical systems of the drifting kart. In other embodiments, batteries and controls are utilized as necessary for a specific application. In many embodiments, the battery housing provides a switch for powering the vehicle on or off, as well as a charger port connection for recharging the batteries. The power generated by the batteries is channeled to the electric motor, which is typically a variable speed motor, via wires running through the hollow tube chassis of the drifting kart.
[0041] In a number of embodiments, an acceleration pedal (not shown, but typically provided as a foot pedal) connects to a twist throttle accelerator that controls the power delivered to a variable speed electric motor in the power train. The twist throttle accelerator can be located at the rear of the drifting kart adjacent the battery housing. The amount of battery power channeled to the electric motor can be proportionate to how far the acceleration pedal is depressed. The acceleration pedal can be implemented using a lever similar to a bicycle brake lever and a bicycle break cable. In other embodiments, the acceleration pedal is implemented using a pedal mechanism and cables, and/or a variety of techniques are used to control the power delivered to the steerable wheel by the drive train.
[0042] A seat 32 for the driver is also mounted to the chassis. The seat is typically positioned so that the driver is readily able to rotate the steering wheel and pull upward on the hand lever from a comfortable driving position. For stability, the seat is typically fixed to the chassis as low to the ground as possible. The higher the seat the greater the likelihood that shifting weight will cause the drifting kart to roll during cornering. In a number of embodiments, the seat 32 is located in front of the battery housing 30. In other embodiments, the battery housing is located in accordance with the requirements of the application.
[0043] Referring back to the caster wheels 26 in
[0044] Although use of the whammy bar mechanism described above is discussed with reference to drifting karts, similar mechanisms involving modifying the rake of one or more caster wheels to control the extent to which the caster wheel can swivel around its swivel axis can be utilized in a variety of other powered and non-powered vehicles and/or devices. When incorporated into a device, the whammy bar mechanism typically involves at least one caster wheel mounted to a rotatable member that can be rotated using a lever to control the rake of the caster wheel.
[0045] While the above description contains many specific embodiments of the invention, these should not be construed as limitations on the scope of the invention, but rather as an example of one embodiment thereof. For example, other mechanisms can be used to dynamically engage caster wheels and induce and control drift during a turn including but not limited to mechanisms that mechanically and controllably limit the ability of the caster wheels to swivel around their swivel axes. Accordingly, the scope of the invention should be determined not by the embodiments illustrated, but by the appended claims and their equivalents.