ELECTRIC VEHICLE CENTRAL SHAFT TORQUE SENSING SYSTEM
20170320539 · 2017-11-09
Assignee
Inventors
Cpc classification
B62M6/55
PERFORMING OPERATIONS; TRANSPORTING
B62M6/50
PERFORMING OPERATIONS; TRANSPORTING
B62M3/003
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An electric bicycle central shaft torque sensing system, comprising a central shaft, a strain sleeve, a pedalling force output portion, a torque sensor and a five-way piece, one end of the strain sleeve being fixed on the five-way piece via a bearing and connected to the pedalling force output portion, another end being sleeved on the central shaft and fixedly connected thereto, an inner surface of the strain sleeve fitting with an outer surface of the central shaft, an outer surface of the strain sleeve being adhered to the torque sensor, the torque sensor transmitting a signal to a controller via a signal transmitter, the controller controlling motor output. The present invention prevents the current widespread phenomenon of unbalanced left/right foot detection during measurement by a torque sensing system. Measured radial torque accurately reflects the pedalling force, and a sprocket is driven via the strain sleeve whether the left foot or the right foot is pedalling, thereby ensuring smooth riding and increasing riding comfort.
Claims
1-10. (canceled)
11. An electric bicycle central shaft torque sensing system, comprising a central shaft, a strain sleeve, a pedalling force output portion, a torque sensor and a five-way piece, wherein one end of the strain sleeve being fixed on the five-way piece via a bearing and connected to the pedalling force output portion, another end of the strain sleeve being sleeved on the central shaft and fixedly connected thereto, an outer surface of the strain sleeve being adhered to the torque sensor, which transmits a signal to a controller, the controller controlling motor output.
12. The central shaft torque sensing system of claim 11, wherein the pedalling force output portion is sleeved on the strain sleeve and the central shaft via a two-stage spline, the pedalling force output portion is fixedly connected with one end of the strain sleeve via the first spline, the pedalling force output portion is connected with the central shaft via the second spline, wherein the teeth and key slots of the second spline match via a torque travel clearance; the other end of the strain sleeve is fixedly connected with the central shaft via a third spline.
13. The central shaft torque sensing system of claim 11, wherein the torque sensor transmit the signal to the controller via a signal transmitter, the signal transmitter is a conductive slip ring, which comprises a rotor portion and a stator portion, the rotor portion is fixedly mounted with the strain sleeve or the central shaft, the stator is fixedly mounted with the five-way piece or a fixed location of the frame.
14. The central shaft torque sensing system of claim 13, wherein a speed measuring device is disposed on the conductive slip ring.
15. The central shaft torque sensing system of claim 14, wherein magnet rings of magnet steel are mounted on the rotor portion in an annular spacing distribution, Hall sensors are mounted on the positions corresponding to the magnet rings.
16. The central shaft torque sensing system of claim 11, wherein the torque sensor transmits the signal to the controller via a signal transmitter, the signal transmitter is a loosely coupled transformer or wireless transmission module.
17. The central shaft torque sensing system of claim 11, wherein the torque sensor is comprised of a half-bridge or full-bridge circuit formed by resistance strain gauge.
18. The central shaft torque sensing system of claim 11, wherein the torque sensor is formed by a torque sensing unit and a control unit, the torque sensing unit is mounted on the sleeve to produce a torque signal, the torque sensing unit wirelessly transmits the signal to the control unit.
19. The central shaft torque sensing system of claim 11, wherein the central shaft torque sensing system is applied to a centre-mounted motor driven electric bicycle, front-mounted motor driven electric bicycle, or rear-mounted motor driven electric bicycle.
20. The central shaft torque sensing system of claim 11, wherein an inner surface of the strain sleeve fits with an outer surface of the central shaft, the pedalling force output portion is a sprocket, a sprocket bracket, or a dual ratchet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
LIST OF REFERENCE NUMBERS
[0027] 1 central shaft; 2 bearing; 3 rotor portion of conductive slip ring; 4 stator portion of conductive slip ring; 5 Hall sensor; 6 magnet ring; 7 torque sensor; 8 strain sleeve; 9 bearing; 10 sprocket bracket; 11 fluted discs; 12 first spline; 13 second spline; 131 torque travel clearance; 14 third spline; 15 magnification circuit plate.
DETAILED DESCRIPTION
Embodiment 1
[0028] With reference to
Embodiment 2
[0029] With reference to
[0030] When a foot does not pedal, the central shaft does not move, at this point the sleeve is not subjected to a torsion to deform, the sleeve and the central shaft do not take place relative rotation therebetween, the sprocket bracket fixed on the sleeve also does not rotate relative to the central shaft, so at this point the teeth and key slots of the second spline mantain a maximun torque travel clearance 131, as shown in
[0031] When a foot normally exert itself to trample a pedal, the central shaft is subjected to a force, a torsion is transmitted to one end of the sleeve via the third spline, then the sleeve transmit the torsion to the sprocket bracket 10 via the first spline 12 of the other end, actuating the bicycle to move ahead. The sleeve subjected to a torsion takes place a slight deformation, causing the torque sensor 7 adhered on it produce a signal, which ultimately is transmitted to the controller and used to control a power-assisted output of the motor. In this process, because it is a normal pedalling force, a torsional deformation of the sleeve relative to the central shaft is within a certain range, the teeth and key slots of the second spline still move within the torque travel clearance and a transmission effect do not take place. This process is the normal work process of the electric bicycle.
[0032] When a pedalling force continues to increase, the amount of rotation of the teeth and key slots of the second spline exceed a torque travel clearance during above-mentioned normal working process, contact taking place, at this point the second spline begin to directly transmit the pedalling force, a torsion exceeding a designed amount of deformation of the sleeve is directly interrupted, an excessive pedalling force is directly transmitted to the sprocket bracket by the central shaft via the second spline.
Embodiment 3
[0033] With reference to
Embodiment 4
[0034] In the present invention, according to the difference of the output pattern of the torque sensor signal, the signal transmission device can employ contact conduction such as the conductive slip ring in
[0035] Non-contact central shaft torque measurement receives and transmits a torque detection signal by way of radio, the torque sensor 7 comprises a torque sensing unit and a control unit, the torque sensing uint mounted on the sleeve produces a torque signal, transmits a radio wave via an antenna, wirelessly transmits the signal to the control unit, and demodulates the torque signal by the control unit, thereby controls the output of the motor.
[0036] The signal outputted by the torque sensor in the present invention can also be directly transmitted to the controller without through an amplifier.
Embodiment 5
[0037] The electric bicycle central shaft torque sensing system of the present invention is applied to all of centre-mounted motor driven electric bicycle, front-mounted motor driven electric bicycle, or rear-mounted motor driven electric bicycle, and can control the power-assisted output of the motor accordingly as long as detecting the pedalling force, realizing the power-assisted effect of the electric bicycle.
[0038] In the application of a centre-mounted motor driven electric bicycle, as shown in
[0039] The above-mentioned embodiments are merely the possible implementations of the present invention, the description of which is relatively specific and detailed, but it can not therefore be interpreted as a limitation to the protection scope of the present invention. It should be pointed out that a number of modifications and improvements can also be made for a person skilled in the art without departing from the concept of the present invention, and all these modifications and improvements fall into the protection scope of the present invention.