SELF-BALANCING FOOT PLATFORM DEVICES
20210094647 · 2021-04-01
Inventors
Cpc classification
B62K11/007
PERFORMING OPERATIONS; TRANSPORTING
A63C2203/40
HUMAN NECESSITIES
B62M7/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
B62K11/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A fore-aft self-balancing transportation device, typically in a pair, one for the right foot and the other for the left foot of a rider. The platform is limited in size and positioned with a top surface wholly above the drive wheel, such that the platform straddles the axis of rotation of the drive wheel. The wheel may extend laterally to enhance side-to-side stability. The devices are configured for hands-free control, a device being driven forward or backward in response to the fore-aft tilt angle of a rider's foot on the platform (and hence, the fore-aft tilt angle of that platform). Various embodiments and features are disclosed.
Claims
1. A personal transportation device, comprising: a first foot platform unit having a first wheel and configured for fore-aft self-balancing operation; a second foot platform unit having a second wheel and configured for fore-aft self-balancing operation; a connector coupled to the first and the second foot platform units that is configured such that the distance between the foot platforms units or the location of the foot platform units relative to one another may be changed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION
[0016] Referring to
[0017] Device 10 may include two foot platforms units 20,40 that receive the left and right foot of a user, respectively. The foot platform units (“FPUs”) may be constructed in similar fashion and include the same or similar components. They are each independently fore-aft self-balancing (like the two platform sections of the '278 patent) and include suitable components to achieve this function. These components may include a position (i.e., gyroscopic) sensor, battery, drive motor and control circuitry. The control circuitry instructs the motor to drive the wheel towards FPU balancing based on position data from the sensor. Suitable self-balancing components and arrangements are known in the art.
[0018] In
[0019] Each FPU may include a foot platform 22,42 and housing 24,44. Platform side walls 25 (shown in
[0020] A connector or connecting structure 50 is preferably provided between the two foot platform units. Connector 50 may have a shaft or rod like configuration and is preferably telescoping or the like such that FPUs 20,40 can be moved from an extended position (shown in
[0021] The connector 50 may be configured such that the FPUs may be positioned at a desired lateral distance from one another and the connector releasably secure in that position with the FPUs at the distance. A rotating latch or biased pins or expanding rotary wedge or other suitable mechanism (known in the art) may be used to releasable set a desired spacing. The connector may also be configured such that the FPUs are not set at a fixed distance and a rider can expand and reduce the FPU spacing during use by exerting an outward or inward force through his or her feet.
[0022] In the embodiment of
[0023] Further, since each FPU is independently tiltable (in fore-aft), turning is achieved by the rider leaning forward or backward on one FPU more than the other, in the same way that devices of the '287 patent turn.
[0024] It should also recognized that connector 50 may be configured such that rod 51 is releasable decouplable from the FPUs to minimize size for stowage or to allow the FPUs to be operated individually without a connector.
[0025] Referring to
[0026] In device 110, the connecting structure 150 is preferably configured such that it maintains a parallel relationship between the FPUs, while permitting one FPU to be moved forward or backward longitudinally relative to the other FPU. In the embodiment of
[0027] For example, in
[0028] It should be noted that the number of connector rods 161-163 could vary as long as the strength and flexibility characteristics are maintained to allow a substantially parallel FPU relationship and independent fore-aft rotation. Furthermore, it should be noted that in place of the mildly flexible, parallel-position maintaining structure of
[0029] Referring to
[0030] Referring to
[0031] In one embodiment of device 210, the distance between the FPUs is biased by a spring internal to connector 250 to a minimum distance. However, if the rider sees a bump coming in the path, the rider may exert an outward (lateral) pressure on the FPUs to increase the distance between them (applying force opposite the contracting spring) and then place one FPU in front of the other so that the wheels 226,246 of the FPUs contact the obstacle in series rather that in parallel, which is a more stable manner in which to ride over an obstacle. Sidewalls 225,245 assist with foot-supplied application of lateral force.
[0032] In another embodiment of device 220, the connector 250 may have no bias spring and be configured to allow rider controlled sliding of the telescoping connector 250 while riding (to enhance the riding experience). In yet another embodiment, the telescoping connector 250 may be configured such that the spacing between the FPUs may be user selected and released secured at a desired spacing.
[0033] Connector 250 may include the housing shown
[0034] While the invention has been described in connection with specific embodiments thereof, it will be understood that it is capable of further modification, and this application is intended to cover any variations, uses, or adaptations of the invention following, in general, the principles of the invention and including such departures from the present disclosure as come within known or customary practice in the art to which the invention pertains and as may be applied to the essential features hereinbefore set forth, and as fall within the scope of the invention and the limits of the appended claims.