The disclosed subject matter generally relates to a rotating assembly. In particular, some embodiments of the disclosed subject matter are directed to a rotating base plate assembly that allows the wheel assemblies of wheeled recreational devices such as in-line skates and skateboards to rotate while returning them to a default position when not under stress. Other embodiments include the attachment of blades, skis, or other non-wheel assemblies.
Attempts have been made to develop human-powered, dry land devices that mimic the motion and feel of snowboarding, surfing, etc. Some of the attempts include independent skateboard-like platforms attached to in-line wheels, roller skate wheel assemblies that rotate and cause one another to rotate opposite of the other, and in-line skate wheel assemblies that include independently rotating wheels.
None of the prior devices includes a proper interaction between front and back wheel assemblies and none of the prior devices allow for proper rotation of wheel assemblies. As a result, none of the prior devices has been found to both effectively allow a sideways motion necessary for simulating snowboarding and/or surfing and include aspects of conventional wheeled skates with disconnected feet.
One aspect of the present invention is a synchronized base plate assembly for a recreational device having wheels, which includes the following: a base plate having top and bottom surfaces, the top surface of the base plate adapted to be attached to a portion of the recreational device; a gear assembly joined with the bottom surface of the base plate, the gear assembly including first and second interconnected gears, a mechanism for rotating the first and second gears in unison and in the same direction, and a bias spring mechanism for returning the first and second interconnected gears to a default position when the gear assembly is not under stress; and first and second wheel assemblies respectively joined with the first and second interconnected gears.
Another aspect of the invention is a synchronized rotating base plate assembly for a recreational device, which includes the following: a base plate having top and bottom surfaces, the top surface of the base plate adapted to be attached to the recreational device; and a gear assembly joined with the bottom surface of the base plate, the gear assembly including first and second gears that are interconnected via one of a third gear and a belt, and a bias spring mechanism for returning the first and second interconnected gears to a default position when the gear assembly is not under stress. The first and second gears are interconnected to rotate in unison and in the same direction.
Still another aspect of the invention is a rotating base plate assembly for a recreational device, which includes the following: a base plate having top and bottom surfaces, the top surface adapted to be joined with the recreational device; and a rotatable mounting assembly joined with the bottom surface of the base plate, the rotatable mounting assembly including a rotatable disk and a bias spring mechanism joined with the rotatable disk. The bias spring mechanism causes the rotatable disk to return to a default position when not under stress.
Another aspect of the invention is a recreational device, which includes the following: separate left and right boots each including bottom surfaces; and rotating wheel assemblies mounted with the bottom surfaces, the assemblies configured to rotate to a first position with respect to a longitudinal axis of the boots and the assemblies configured to return to a default, second position that is in-line with the longitudinal axis when not under stress.
For the purpose of illustrating the invention, the drawings show embodiments of the disclosed subject matter. However, it should be understood that the present application is not limited to the precise arrangements and instrumentalities shown in the drawings, wherein:
Referring now to the drawings in which like reference numerals indicate like parts, and in particular, to
Synchronized rotating base plate assembly 20 generally includes base plate 28 joined with the portion of the device in contact with the user, e.g., skate boot 22, and joined with a gear assembly 30, which is joined with the portion of the device in contact with the ground surface, e.g., first and second wheel assemblies 24 and 26.
Base plate 28 includes a top surface 32 and an opposite bottom surface 34. Top surface 32 is typically joined with and adhered to a bottom surface 36 of the portion of the device in contact with the user, e.g., skate boot 22, using screws 38 or the like.
Gear assembly 30 is typically joined with bottom surface 34 of base plate 28 using screws 28 and washers 39 or the like. Gear assembly 30 generally includes first and second interconnected gears 40 and 42, respectively, and a third gear 44 positioned between and engaged with the first and second interconnected gears. Third gear 44 translates rotation of each of first and second interconnected gears 40 and 42 to the other via the engagement of gear teeth 45. For example, if first gear 40 rotates in a clockwise direction, third gear 44 will be cause to rotate in a counter-clockwise direction, which will cause second gear 42 to rotate in a clockwise direction, e.g., with respect a longitudinal axis A1 of boot 22. The configuration of gear assembly 30 ensures that first and second gears 40 and 42 rotate both in unison and in the same direction. Gear assembly 30 typically includes a bias spring mechanism 46 for returning said first and second interconnected gears 40 and 42 to a default position when the gear assembly is not under stress. Bias spring mechanism 46 is generally wound around a raised portion 48 of third gear 44 and fixed at an end 50 to base plate 28 via screw 38 or the like. In the case of an in-line skate, if a user lifts skate boot 22 so that wheel assemblies 24 and 26 are suspended and not in contact with a ground surface, tension in bias spring mechanism 46 is released thereby causing both it and third gear 44 to return to a default position, which in turn will cause both first and second gears 40 and 42 to return to a default position.
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Wheel assemblies 24 and 26 can be “locked” into a particular angle/position as chosen by a user/rider, e.g., in a “sideways” position, the rider can select their desired “stance”, just as snowboarders can select from various angles to place their feet. Referring to
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The present invention offers advantages over prior art designs. Designs according to the disclosed subject matter allow skateboard-like skating but with more freedom than in traditional methods, while also allowing for typical “in-line” skating, e.g., it would allow one to “snowboard” downhill and then in-line skate back up-hill. It is practical for asphalt where the high-friction nature of the surface makes for challenges in regards to maneuverability. In addition to allowing for tighter and more creative turns, it can also be used as a normal “straight” skate.
Aspects of the disclosed subject matter allow a user to self-propel in multiple directions, including both the in-line stance and “skateboard” stance. This allows for the unique opportunity to “skateboard” downhill, but more easily get back uphill, maneuver around flatter ground, or generally gain more speed than in the other current methods. Although the invention has been described and illustrated with respect to exemplary embodiments thereof, it should be understood by those skilled in the art that the foregoing and various other changes, omissions and additions may be made therein and thereto, without parting from the spirit and scope of the present invention. Accordingly, other embodiments are within the scope of the following claims.