The present invention is in the technical field of friction drive power systems.
Friction drive power systems are commonly used in many applications, including to power bicycle wheels by means of a motor driving a bicycle tire directly or indirectly. The motor is typically mounted in a semi-permanent or permanent fixed position adjacent to either wheel. The motor can then either drive the wheel through a secondary roller mechanism pressed against the tire or directly via tire contact with the rotating outer shell of an outrunner-type motor.
Friction drive power systems designed for bicycle use have thus comprised a roller mechanism driving the front wheel, like Patent No. U.S. Pat. No. 3,431,944 to Wood or Patent No. EP 0155185 to Barker. Or alternatively, a roller mechanism positioned to drive the rear wheel like Patent No. EP 1398265 to Motte. Or alternatively, a direct outrunner-motor drive on the rear tire like U.S. Patent App. No. 2011/0232985 to Lee or U.S. Patent App. No. 2013/0225360 to Hirn.
However, substantially all implementations of friction drive power systems for bicycles are permanently or semi-permanently installed on a single bicycle, and are not easily removed and reinstalled on the same or other bicycle. In addition, substantially all bicycle friction drive systems are unable to power common bicycle share bikes. Moreover, substantially all bicycle friction drive systems are unable to power other non-bicycle wheeled vehicles like kick scooters. And further, substantially all existing friction drive systems are not fully contained in a lightweight, compact, and conveniently carried package, and possess no means to safely and cleanly contain the motor or roller system, which can be dangerous if activated accidentally and is frequently dirty from use.
The present invention relates to a portable, multi-platform, friction drive system with a retractable motor drive assembly for use on bicycles, kick scooters, or other wheeled personal transport vehicles. Embodiments of the present invention contain all needed components of an electric friction drive system in a portable handheld case, including motor, batteries, and all associated electronics, as well as a mounting system that both enables use on popular bike share bicycles and enables use on multiple different bicycle and scooter types, as well as other wheeled vehicles. By means of its mounting system, embodiments of the present invention enable the friction drive system to be easily and quickly installed and used on multiple varieties of bicycles, kick scooters, or other wheeled vehicles, and to be removed easily when no longer needed. And by means of its retractable motor assembly, which both minimizes the carrying size and protects the user from the motor or roller, embodiments of the present invention enable the friction drive system to be easily carried and stored when not in use, with the potentially dangerous and dirty motor roller enclosed safely inside the case.
Referring now to the invention in more detail, in
The overall carrying case for an embodiment of the portable friction drive system 10 is pictured with the retractable motor drive assembly 12 in its stored position, attached to the carrying case via motor drive assembly pivot arms 14. Optionally, the carrying case can include a carrying handle 16 for easy portability.
The overall carrying case 10 is pictured with the retractable motor drive assembly 12 in its expanded position, swung out from the carrying case via rotation of the motor drive assembly pivot arms 14. The motor drive assembly is now in position to place the drive motor or wheel 18 directly against the bicycle tire or scooter wheel to enable a friction drive mechanism. Optionally, the carrying case can include a carrying handle 16 for easy portability.
The overall carrying case 10 is pictured with the retractable motor drive assembly 12 in its expanded position, swung out from the carrying case via rotation of the motor drive assembly pivot arms 14. The motor drive assembly is now in position to place the drive motor or wheel 18 directly against the bicycle tire, scooter wheel, or other vehicle wheel when the carrying case 10 is installed onto a suitable mount by means of inserting the mount into the mount receptacle 30 and connecting the motor drive assembly 12 to the mount, thereby pressing the drive motor or wheel 18 against the bicycle tire, scooter wheel, or other vehicle wheel.
The overall carrying case 10 is pictured with the retractable motor drive assembly 12 in its expanded position, swung out from the carrying case via rotation of the motor drive assembly pivot arms 14. The carrying case 10 and the motor drive assembly 12 are both mounted on to the bike share docking mount 22 by means of inserting the mount 22 into the mount receptacle 30 and connecting the motor drive assembly 12 to the mount 22, so that the motor drive assembly 12 is now in position to press the drive motor or wheel 18 directly against the bicycle tire 24. The drive motor or drive wheel 18 is now able to power the bicycle wheel when it is activated by the battery and controller contained in this embodiment, which are controlled by an external throttle (not shown) operated by the rider. Another embodiment could have the motor activation controlled by a Pedal Assist Sensor.
In further detail, still referring to the embodiment of
This enables the retractable motor assembly 12 to rotate such that the drive motor or wheel 18 is protected inside the case when the portable friction drive system is not in use and being transported. And this enables the retractable motor assembly 12 to rotate such that the drive motor or wheel 18 is exposed and in a position to drive the tire or wheel when the portable friction drive system is in use and mounted to a bicycle, scooter, or other wheeled vehicle.
While this embodiment is shown installing on a mount adjacent to the front wheel for front-wheel friction drive, other embodiments of the present invention could similarly install on a mount adjacent to the rear wheel and drive the rear wheel via friction drive in a similar manner.
Also, while this embodiment is shown installing on and interfacing with a triangular shaped mounting bracket common to a specific type of public bike share bicycles (model PBSC/Alta/Bixi shown as example), other embodiments could utilize multiple different types and shapes of brackets, including but not limited to rectangular brackets, cylindrical brackets, T-shaped brackets, L-shaped brackets, or others, as well as different sizes and configurations of mounting and docking points.
Further, while this embodiment is designed and tailored for bicycles and kick scooters, other embodiments of the present invention might have it configured and installed on other wheeled personal transport vehicles, including but not limited to freight bicycles, tandem bicycles, recumbent bicycles, trikes and tricycles, quadracycles, handcycles, rowing cycles, cabin cycles, velomobiles, cycle rickshaws, paddle boats, water cycles, hydrofoils, skateboards, wheelchairs, strollers, and other human powered vehicles or personal transport vehicles.
The construction details of the embodiments of the invention as shown in
Additionally, desired speed and power inputs from the rider can come from a wired or wireless throttle held by the rider or attached to the bicycle or scooter, or from a Pedal Assist Sensor installed on the bicycle pedals or cranks and connected to the present invention by a wired or wireless connection.
The advantages of embodiments of the present invention include, without limitation, reduced size when the friction drive system is not in use and the motor assembly has been retracted into the carrying case. Additionally, because of the pivoting and retracting motor assembly mechanism, the motor drive assembly is not exposed when it is retracted into the carrying case, thus protecting the user from dirt and grime that accumulates on the drive wheel or motor. Further, the pivoting and retracting motor assembly mechanism which results in the motor drive assembly being enclosed when it is retracted into the carrying case protects the user from injury should there be an accidental activation of the drive motor or wheel while the portable friction drive system is being transported.
The advantages of embodiments of the present invention for bike share bicycle use include, without limitation, the ability to use electric power to ride a bike share bicycle without requiring the expense or complexity of conventional electric bicycles, which typically require battery swap functionality and multi-battery docking stations for bike share use. Additionally, embodiments of the present invention allows individuals to add electric power to a bike share bicycle when it would otherwise not be available. This allows individuals to experience the benefits of electric bicycles including reduced effort, faster speed, and longer range, while taking advantage of the benefits of a bike share program. Embodiments of the present invention also allows bike share operators to benefit from increased membership due to the attractiveness of electric power to individuals, and higher asset utilization of their bike share fleet, as the higher speeds enabled by electric power shorten the time needed for an individual to complete a trip and allow the bike to be returned to the dock and checked out by another user more quickly.
The advantages of embodiments of the present invention to non-bike share bicycle use include, without limitation, the ability to add or remove electric friction drive power to a standard non-electric bike in seconds, the ability to use electric friction drive on multiple bikes interchangeably, the ability to use electric friction drive on multiple kick scooters interchangeably, and the ability to carry spare electric friction drive power in a briefcase or bag to be used whenever it is needed.
While the foregoing written description of various embodiments of the Invention enables one of ordinary skill to make and use what is considered presently to be the best mode thereof, those of ordinary skill will understand and appreciate the existence of variations, combinations, and equivalents of the specific embodiments, methods, and examples herein. The invention should therefore not be limited by the above described embodiments, methods, and examples, but by all embodiments and methods within the scope and spirit of the invention.
This application claims the benefit of provisional patent application Ser. No. 61/934,739 and Ser. No. 61/934,746, both filed 1 Feb. 2014 by the present inventor.
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