Stride emulator device
11459059 · 2022-10-04
Inventors
Cpc classification
B62M1/28
PERFORMING OPERATIONS; TRANSPORTING
A63B2022/0617
HUMAN NECESSITIES
B62M3/06
PERFORMING OPERATIONS; TRANSPORTING
B62M1/30
PERFORMING OPERATIONS; TRANSPORTING
B62M1/26
PERFORMING OPERATIONS; TRANSPORTING
A63B22/0605
HUMAN NECESSITIES
International classification
B62M3/00
PERFORMING OPERATIONS; TRANSPORTING
B62M3/06
PERFORMING OPERATIONS; TRANSPORTING
B62M1/24
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A stride emulator device for efficiently utilizing human leg power for transference to a rotary drive system including a pair of levers, at least two gears, at least two crankshafts having crank arms, and where each lever includes a cam and cam track.
Claims
1. A stride emulator device, comprising: a pair of levers, comprising a first lever and a second lever, wherein said first lever includes a first cam track, and said second lever includes a second cam track; at least two gears, comprising a distal gear and a medial gear; a distal crankshaft, disposed at a distal axis of the distal gear, and in mechanical communication with a first distal crank arm, wherein said first distal crank arm is rotatably connected to said first lever at a distal portion thereof, wherein said distal crankshaft is in mechanical communication with a second distal crank arm, wherein said second distal crank arm is rotatably connected to said second lever at a distal portion thereof; a medial crankshaft, disposed at a medial axis of the medial gear and is in mechanical communication with a first medial crank arm, wherein said first medial crank arm includes a first cam slidably connected to said first cam track, wherein said medial crankshaft is in mechanical communication with a second medial crank arm, and said second medial crank arm includes a second cam and is slidably connected to said second cam track, wherein, said first lever and said second lever are disposed on at least one side of said gears, wherein each of said first lever and said second lever further comprises a power modification path that a proximal portion of the first lever traces, wherein said power modification path includes a power phase and a travel phase, wherein said power phase has lesser curvature than the travel phase, and wherein said power phase has a linear characteristic and said travel phase has an arcuate characteristic.
2. A stride emulator device according to claim 1 further comprising at least one force synchronization device selected from the group consisting of at least one gear, at least one pulley, at least one belt, and at least one chain, whereby when a force is applied to said proximal portion of the first lever, a first rotating motion is induced upon said distal gear, and when a subsequent force is induced upon a proximal portion of the second lever following at least a partial rotation, a second rotating motion is induced upon said distal gear.
3. A stride emulator device according to claim 2 wherein said at least one force synchronization device comprises an intermediate gear in mechanical communication to said distal gear and said medial gear, wherein force transmitted from said distal gear to said intermediate gear is further transmitted to said medial gear.
4. A stride emulator device according to claim 1 wherein said first distal crank arm and said second distal crank arm are offset by 180°.
5. A stride emulator device according to claim 1 wherein said first medial crank arm and said second medial crank arm are offset by 180°.
6. A stride emulator device according to claim 1 wherein said power modification path is asymmetrical.
7. A stride emulator device according to claim 1 wherein each of said first cam track and said second cam track is linear.
8. A stride emulator device, comprising: a pair of levers, comprising a first lever and a second lever, wherein said first lever includes a first cam track, and said second lever includes a second cam track; at least two gears, comprising a distal gear and a medial gear; a distal crank shaft, disposed at a distal axis of the distal gear, and in mechanical communication with a first distal crank arm, wherein said first distal crank arm is rotatably connected to said first lever at a distal portion thereof, wherein said distal crank shaft is in mechanical communication with a second distal crank arm, wherein said second distal crank arm is rotatably connected to said second lever at a distal portion thereof; a medial crankshaft, disposed at a medial axis of the medial gear and is in mechanical communication with a first medial crank arm, wherein said first medial crank arm includes a first cam slidably connected to said first cam track, wherein said medial crankshaft is in mechanical communication with a second medial crank arm, and said second medial crank arm includes a second cam and is slidably connected to said second cam track, wherein, said first lever and said second lever are disposed on at least one side of said gears, and wherein a length of a travel phase is selected from an amount between 10 and 30 inches.
9. A stride emulator device, comprising: a pair of levers, comprising a first lever and a second lever, wherein said first lever includes a first cam track, and said second lever includes a second cam track; at least two gears, comprising a distal gear and a medial gear; a distal crank shaft, disposed at a distal axis of the distal gear, and in mechanical communication with a first distal crank arm, wherein said first distal crank arm is rotatably connected to said first lever at a distal portion thereof, wherein said distal crank shaft is in mechanical communication with a second distal crank arm, wherein said second distal crank arm is rotatably connected to said second lever at a distal portion thereof; a medial crankshaft, disposed at a medial axis of the medial gear and is in mechanical communication with a first medial crank arm, wherein said first medial crank arm includes a first cam slidably connected to said first cam track, wherein said medial crankshaft is in mechanical communication with a second medial crank arm, and said second medial crank arm includes a second cam and is slidably connected to said second cam track, wherein, said first lever and said second lever are disposed on at least one side of said gears, and wherein each lever arm passes through a focal point disposed between the distal axis and the medial axis.
10. A stride emulator device, comprising: a pair of levers, comprising a first lever and a second lever, wherein said first lever includes a first cam track, and said second lever includes a second cam track; at least two gears, comprising a distal gear and a medial gear; a distal crank shaft, disposed at a distal axis of the distal gear, and in mechanical communication with a first distal crank arm, wherein said first distal crank arm is rotatably connected to said first lever at a distal portion thereof, wherein said distal crank shaft is in mechanical communication with a second distal crank arm, wherein said second distal crank arm is rotatably connected to said second lever at a distal portion thereof; a medial crankshaft, disposed at a medial axis of the medial gear and is in mechanical communication with a first medial crank arm, wherein said first medial crank arm includes a first cam slidably connected to said first cam track, wherein said medial crankshaft is in mechanical communication with a second medial crank arm, and said second medial crank arm includes a second cam and is slidably connected to said second cam track, wherein, said first lever and said second lever are disposed on at least one side of said gears, and wherein said first lever includes a cam lock.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A preferred embodiment of the invention has been chosen for detailed description to enable those having ordinary skill in the art to which the invention appertains to readily understand how to construct and use the invention and is shown in the accompanying drawings in which:
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DETAILED DESCRIPTION
(19) A preferred embodiment of a stride emulator device 100, in accordance with the invention is shown in
(20) In addition, the stride emulator device 100 includes at least two gears, namely a distal gear 180 and a medial gear 182, and a distal crank shaft 170. A distal crankshaft is attached to a center, i.e. a distal axis 181 of the distal gear, such that when the gear rotates, rotary power is transferred to the crankshaft and vice versa.
(21) The distal crankshaft 170 is connected to a first distal crank arm 110, which is in turn is rotatably connected to the first lever 102 at one end of the lever, such as by using a pivot, screw, or the rotating joint at a distal portion 106 of the lever. Thus, the distal crankshaft 170 forms a rotating support for one end of the lever which moves in accordance with the length of the first distal crank arm.
(22) In addition, the distal crank shaft 170 is connected to a second distal crank arm 160, which is in turn is rotatably connected to the second lever 152 at one end of the lever, such as by using a pivot, screw, or the rotating joint at a distal portion 156 of the lever. Thus, the distal crankshaft 170 forms a rotating support for one end of the lever which moves in accordance with the length of the first distal crank arm.
(23) Furthermore, a medial crankshaft 190 is provided and attached to a center, i.e., a medial axis 183 of the medial gear 182, such that when the gear rotates, rotary power is transferred to the crankshaft and vice versa.
(24) In addition, the medial crank shaft 190 is connected to a first medial crank arm 112, which is in turn is rotatably connected to the first cam track 104 by a rotatable support such as a first cam 114. Thus, the medial crankshaft forms a rotating support at the end of the medial crank arm for the first lever, where the cam supports, rotates and slides along the first cam track 104 of the first lever in accordance with the length of the first distal crank arm and length and position of the first cam track 104. Thus, the first medial crank arm includes a first cam slidably connected to the first cam track, and alternatively can include other means such as a pin, shuttle, or other sliding means of connection.
(25) Likewise, the medial crankshaft 190 is in mechanical communication with a second medial crank arm 162, which similarly includes a second cam 164 that is slidably connected to the second cam track 154 of the second lever.
(26) Preferably each set of levers and associated elements are mirror images of each other. In one embodiment, the first lever and the second lever are placed on either side of the gears, but it can be appreciated that the relative location of the various elements can be adjusted in accordance with the intended function of the device, and a person of ordinary skill in the art can adapt the relative locations, size, and combination of the various elements described herein in accordance with the teachings of this invention in order to realize the intended benefits of such a device according to the invention.
(27) For example, in a preferred embodiment of a stride emulator device 100 according to the invention, a first distal crank arm and a first medial crank arm are offset in their initial starting position by a first power arc angle normal to the medial axis, or a first axial direction 220. The first power arc angle is the difference in angle of the distal and medial crank arms. It can be 180.degree, which is a basic position, and can be reduced from 180.degree. to approximately 70°. For example, in an embodiment where the gears are of a same diameter and are mechanically connected, such as by an intermediate gear 300, 510 or other force synchronization device 300, each gear will move at the same rate, and thereby rotate each crank arm at a same rate. In a simple case, each crank arm can be positioned in the same relative directions, i.e., they are synchronized. However, to achieve the objects of the invention, a person of ordinary skill in the art may modify the starting position an offset one of the crank arms with respect to the other, as will be further explained herein.
(28) Similarly, a stride emulator device is provided with the second distal crank arm being offset by a second power arc angle normal to the medial axis, or a second axial direction 240.
(29) A frame 199 can also be provided to support the stride emulation device 100 and provide a framework through which the gears rotate, and can be connected to other elements of a bike, exercise machine, or other machine as a person of ordinary skill in the art desires to utilize the function of the instant invention.
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(31) Similarly,
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(36) This figure shows a possible cycle 200 of one embodiment of a stride emulator. In this path, each point on the path represents a 1/15th of a rotation of the output crank. In the
(37) The ratio of power to travel stroke is determined by the pivot locations of the cranks, and by the distance between the cranks. There are multiple arrangements possible, depending on how much overlap is desired and the desired shape of the stroke. It is also possible to offset the angle between the two cranks slightly, which results in a slightly asymmetrical path. The length of the lever arm also affects the shape of the path. Also, by extending the lever arm in the opposite direction, it is possible to change the shape of the path in a way that the power segment has an arc shape, and the travel segment is more of a straight line. Alternatively, if the cam track extends to the second crank, a locking mechanism, such as a cam lock 530 (shown in
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(39) As shown in
(40) Providing a second lever arm and cam track in
(41) Accordingly, when designing a machine to utilize a power modification cycle, one may back into the desired configuration of the stride emulation device 100 by first choosing a lever length and/or lever line extension 118, 168, and secondly choosing a desired power modification cycle characteristic 200. For example, one may design a bike for individuals with shorter or longer leg lengths or strides, and thereby provide an optimal system adapted to a particular individual for most efficiency and transferring power to the device.
(42) It can be appreciated by it one with ordinary skill in the art that various power modification cycles are possible, and ratio of power and travel and be modified depending on particular applications. Accordingly,
(43) It is within the scope of this invention that several stride emulation devices can be employed to emulate a shifting of gears for more powerful systems. For example, a first power modification cycle 200 for a first stride emulation device 100 is adapted for use with an additional stride emulation device 1000 and its associated additional power modification cycle 2000 whereby a step up in power can be achieved by shifting from one gear system to the other. For example, in an alternative embodiment, a device 100 having a first configuration shown in
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(46) Different applications of the invention include a training device or exercise machine, a pump, a folding bicycle, a cargo bike, a watercraft, among other things.
(47) Various changes may be made to the structure embodying the principles of the invention. The foregoing embodiments are set forth in an illustrative and not in a limiting sense. The scope of the invention is defined by the claims appended hereto.