A bicycle crank arm apparatus comprises a crank arm having a crank axle mounting portion and a pedal mounting portion. A circuit-mounting structure is disposed between the crank axle mounting portion and the pedal mounting portion, wherein the circuit-mounting structure is configured to detachably mount a measurement board. When a measurement board is mounted to the circuit-mounting structure, the resulting combination forms a bicycle input force processing apparatus.
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0. 31. A bicycle crank arm apparatus comprising:
a crank arm having a crank axle mounting portion and a pedal mounting portion;
a circuit-mounting structure disposed between the crank axle mounting portion and the pedal mounting portion, wherein the circuit-mounting structure is configured to detachably mount a measurement board having a sensor mounted thereon for measuring an input force applied to the measurement board by the crank arm;
an electrical connector disposed at the circuit-mounting structure, wherein the electrical connector is configured to detachably connect to another electrical connector; and
electrical wiring attached to the electrical connector;
wherein the electrical wiring extends from the circuit-mounting structure into a hollow chamber formed in the crank arm;
wherein the electrical wiring extends from the hollow chamber out of the crank arm; and
wherein the electrical wiring extends out of the hollow chamber through the crank axle mounting portion of the crank arm.
0. 1. A bicycle crank arm apparatus comprising:
a crank arm having a crank axle mounting portion and a pedal mounting portion; and
a circuit-mounting structure disposed between the crank axle mounting portion and the pedal mounting portion, wherein the circuit-mounting structure is configured to detachably mount a measurement board having a sensor mounted thereon for measuring an input force.
0. 2. The apparatus according to
3. The apparatus according to claim 2 34 further comprising a cover that detachably mounts to the circuit-mounting opening.
0. 4. The apparatus according to
5. The apparatus according to claim 4 34 wherein the electrical connector is disposed within the circuit-mounting opening.
6. The apparatus according to
0. 7. The apparatus according to
0. 8. The apparatus according to
0. 9. The apparatus according to
0. 10. A bicycle input force processing apparatus comprising:
a crank arm having a crank axle mounting portion and a pedal mounting portion; and
a first measurement board having a first sensor mounted thereon for measuring a first input force;
wherein the crank arm includes a first circuit-mounting structure disposed between the crank axle mounting portion and the pedal mounting portion and configured to detachably mount the first measurement board.
12. The apparatus according to claim 10 26 wherein the first measurement board includes a surface facing the crank arm, and wherein the sensor is disposed between the surface and the crank arm.
13. The apparatus according to claim 10 26 wherein the first circuit mounting structure has an a first circuit-mounting opening.
14. The apparatus according to
15. The apparatus according to
16. The apparatus according to claim 10 26 further comprising a fastener that mounts the first measurement board to the first circuit-mounting structure.
17. The apparatus according to
18. The apparatus according to claim 10 26 further comprising a transmitter operatively coupled to the first sensor for transmitting sensor signals.
19. The apparatus according to
20. The apparatus according to
0. 21. The apparatus according to
0. 22. The apparatus according to
0. 23. The apparatus according to
0. 24. The apparatus according to
0. 25. The apparatus according to
26. The apparatus according to
a crank arm having a crank axle mounting portion and a pedal mounting portion; and
a first measurement board having a first sensor mounted thereon for measuring a first input force applied to the first measurement board by the crank arm;
wherein the crank arm includes a first circuit-mounting structure disposed between the crank axle mounting portion and the pedal mounting portion and configured to detachably mount the first measurement board;
wherein the first measurement board includes a first electrical connector;
wherein the crank arm includes a second electrical connector structured to detachably connect to the first electrical connector;
electrical wiring attached to the second electrical connector;
a power source connected to the electrical wiring; and
a crank axle structured to be mounted to the crank axle mounting portion, wherein the crank axle includes a hollow portion, and wherein the power source is disposed within the hollow portion.
27. The apparatus according to
28. The apparatus according to claim 10 26 wherein the crank arm includes a second circuit-mounting structure, and further comprising a second measurement board having a second sensor mounted thereon for measuring a second input force applied to the second measurement board by the crank arm, wherein the second circuit-mounting structure is configured to detachably mount the second measurement board.
29. The apparatus according to
30. The apparatus according to
0. 32. The apparatus according to claim 31 wherein the circuit mounting structure has a circuit-mounting opening.
0. 33. The apparatus according to claim 31 wherein the electrical connector is rigidly mounted to the crank arm.
0. 34. The apparatus according to claim 32 wherein the electrical connector is disposed at a bottom floor of the circuit-mounting opening.
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The present invention is directed to bicycles and, more particularly, to various features of a bicycle input force processing apparatus.
Some bicycle components have sensors attached to them to measure various operating characteristics of the component. For example, transmission shift control devices may have position sensors attached to the operating cable winding mechanism in order to sense the current operating position of the operating cable winding member. The position of the operating cable winding member provides information about the current gear ratio of the bicycle transmission, and that information may be communicated to the rider through a display. In another example, a magnet may be mounted to one of the spokes of the bicycle wheel, and a sensor such as a reed switch may be mounted to the bicycle frame so that the magnet passes by the sensor upon every revolution of the wheel. As a result, the sensor produces an electrical pulse every time the magnet passes by the sensor, and the time between successive pulses may be used to determine the speed of the bicycle. In yet another example, a force sensor such as a strain gauge may be mounted to the surface of a component such as a pedal crank or a wheel hub in order to measure torque being applied to the component. The information from the sensor then may be used to calculate the effort exerted by the rider.
The present invention is directed to various features of a bicycle input force measuring apparatus. In one embodiment, a bicycle crank arm apparatus comprises a crank arm having a crank axle mounting portion and a pedal mounting portion. A circuit-mounting structure is disposed between the crank axle mounting portion and the pedal mounting portion, wherein the circuit-mounting structure is configured to detachably mount a measurement board. When a measurement board is mounted to the circuit-mounting structure, the resulting combination forms a bicycle input force processing apparatus. Additional inventive features will become apparent from the description below, and such features may be combined with the above features to provide additional benefits.
Front transmission 28 is a mechanical unit attached to the central lower part of frame 8 for transmitting drive force generated by the rider to rear transmission 32 via chain 34. Front transmission 28 comprises three sprockets 58 of various sizes and a front derailleur 62. The three sprockets 58 are installed on a gear crank 66 that is rotated when the rider pushes pedals 70 and 72. Gear crank 66 comprises a crank axle 74 that passes horizontally and rotatably through a bottom bracket of frame 8, a right crank arm 82, and a left crank arm 86. A first end portion of right crank arm 82 includes an axle-mounting opening 82a (
Rear transmission 32 transmits the driving force from chain 34 to rear wheel 24. Rear transmission 32 comprises a rear sprocket cluster 94 and a rear derailleur 98. Rear sprocket cluster 94 comprises a plurality of sprockets 102 mounted concentrically with the hub portion of rear wheel 24. Rear derailleur 98 engages chain 34 with selected ones of sprockets 102 and can be moved by a motor (not shown) that is controlled by control unit 90.
As shown in
As shown in
As used herein, the inner side means the side of the crank arm that faces the bicycle frame when the crank arm is attached to the bicycle, the outer side means the side of the crank arm that faces away from the bicycle frame, the upper side means the side of the crank arm that faces upwardly when the crank arm is oriented generally horizontally with the outer side of the crank arm facing the viewer and the axle-mounting opening on the left, and the lower side means the side of the crank arm that faces downwardly when the crank arm is oriented generally horizontally with the outer side of the crank arm facing the viewer and the axle-mounting opening on the left.
First circuit-mounting structures 130 are disposed within first circuit-mounting opening 82c, and second circuit-mounting structures 134 are disposed within second circuit-mounting opening 82e. First and second circuit-mounting structures 130 and 134 are configured to detachably mount corresponding measurement boards 138 (
As shown in
As shown in
As shown in
As shown in
As with measurement board 138, substrate 182 may be a printed circuit board or a semiconductor, metal or other conductive or nonconductive rigid or flexible sheet. Sensor 186 comprises a strain gauge (e.g., a plurality of resistors configured as a Wheatstone bridge) that may be affixed to substrate 182 or formed as part of substrate 182. Sensor 186 may be formed at least in part from a semiconductor material to detect the strain on substrate 182. Sensor 186 is operatively coupled to control and communication part 190 through wiring 198, and an electrical connector 202 is electrically connected to control and communication part 190 through wiring 206. Wiring 198 206 pass through a through-hole 193 in substrate 182.
Control and communication circuitry 192 may include a microprocessor programmed to calculate force or power applied to crank arms 82 and 86 in a well-known manner based on the signals received from sensors 146 and 186. Control and communication circuitry 192 also includes a transmitter 192a to transmit sensor signals and/or calculated data wirelessly to control unit 90.
As shown in
As shown in
Similarly, second wiring harness 218 comprises a wiring bundle 242, a first electrical connector 246, a second electrical connector 250, and a third electrical connector 254. In this embodiment, first electrical connector 246 is rigidly mounted to bottom floor 86g of first circuit-mounting opening 86c so as to be exposed to first circuit-mounting opening 86c, and second electrical connector 250 is rigidly mounted to bottom floor 86h of second circuit-mounting opening 86e so as to be exposed to second circuit-mounting opening 86e. Electrical connector 202 of measurement board 178 at first circuit-mounting opening 86c is connected to first electrical connector 246, and electrical connector 150 of measurement board 138 at second circuit-mounting opening 86e is connected to second electrical connector 250. If desired, first electrical connector 246 and second electrical connector 250 may form first and second circuit-mounting structures alone or in combination with their respective first and second circuit-mounting structures 170 and 174, especially if electrical connector 202 is rigidly mounted to its corresponding substrate 182 and/or if electrical connector 150 is rigidly mounted to its corresponding substrate 142. Hollow chamber 222, first circuit-mounting opening 86c and second circuit-mounting opening 86e may be in fluid communication with each other (i.e., form a continuous opening).
As shown in
The sensor mounting arrangements disclosed herein have many uses. For example, as shown in
While the above is a description of various embodiments of inventive features, further modifications may be employed without departing from the spirit and scope of the present invention. For example, while first and second wiring harnesses 210 and 218 were disposed within hollow chambers 214 and 222 of crank arms 82 and 86, respectively, first and second wiring harnesses 210 and 218 could be molded directly into the corresponding first and second crank arms 82 or 86. Alternatively, first and second wiring harnesses 210 and 218 could be partially or entirely disposed outside of first and second crank arms 82 and 86, and connectors 150 and 202 need not be rigidly affixed to the bottom floors of their respective circuit-mounting openings. Likewise, battery unit 258 could be disposed partially or entirely outside of crank axle 78.
Circuit mounting openings 82c, 82e, 86c and 86e may be omitted, and measurement boards 138 and/or 178 may be mounted to circuit mounting structures such as protuberances, circuit mounting structures (e.g., threads) disposed in circuit mounting openings at the side of the crank arm, circuit mounting structures disposed at connectors mounted to the crank arm, etc. While measurement boards 138 and/or 178 were mounted to right crank 82 and/or left crank 86, measurement boards 138 and/or 178 may be mounted to any such circuit mounting structures 290 (
The size, shape, location or orientation of the various components may be changed as desired. Components that are shown directly connected or contacting each other may have intermediate structures disposed between them. The functions of one element may be performed by two, and vice versa. The structures and functions of one embodiment may be adopted in another embodiment. It is not necessary for all advantages to be present in a particular embodiment at the same time. Every feature that is unique from the prior art, alone or in combination with other features, also should be considered a separate description of further inventions by the applicant, including the structural and/or functional concepts embodied by such feature(s). Thus, the scope of the invention should not be limited by the specific structures disclosed or the apparent initial focus on a particular structure or feature.
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
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