Torque sensor system and drive system for an electric bicycle and methods for the use thereof
A torque sensor includes a contact sensor and a contactless sensor. An electric drive system for a bicycle includes an electric motor having a rotor rotatable about an axis. An output component is coupled to the electric motor and is rotatable about an axis. An input component is rotatable about the axis and is concentric with the output component and the rotor. A one-way clutch is disposed between the input component and output component. The contact sensor is coupled to the output component. The contact sensor is configured to measure a torque applied to the output component by the input component and provide an input signal. The contactless sensor is disposed between the output component and a fixed component. The contactless sensor is configured to provide an output signal proportional to the input signal.
1 . A torque sensor system for an electric bicycle comprising:
an output component rotatable about an axis, wherein the output component is configured to be rotated by an electric motor;
an input component rotatable about the axis and concentric with the output component, the input component being a crank axle;
a contact sensor coupled to the output component, wherein the contact sensor is configured to measure a torque applied to the output component and provide an input signal; and
a contactless sensor disposed between the output component and a fixed component, wherein the contactless sensor is configured to provide an output signal proportional to the input signal.
2 . The torque sensor system of claim 1 wherein the contact sensor comprises a strain gauge coupled to the output component.
3 . The torque sensor system of claim 1 wherein the contactless sensor comprises an inner transformer coil and an outer transformer coil spaced apart from and surrounding the inner transformer coil, wherein the inner transformer coil is coupled to the output component and is rotatable about the axis with the output component, and wherein the outer transformer coil is coupled to the fixed component.
4 . The torque sensor system of claim 1 further comprising a one-way clutch disposed between the input component and output component, wherein the one-way clutch is engaged between the input component and the output component when the input component is rotated in a first rotational direction, and wherein the one-way clutch is disengaged between the input component and the output component when the input component is rotated in a second rotational opposite the first rotational direction.
5 . The torque sensor of claim 1 wherein the output component comprises a cylindrical portion, wherein the contact sensor is applied to the cylindrical portion.
6 . The torque sensor of claim 1 wherein the contactless sensor comprises a radio transmitter coupled to the output component and a radio receiver coupled to the fixed component.
7 . The torque sensor system of claim 1 further comprising a first microprocessor coupled to the output component and rotatable about the axis with the output component, wherein the first microprocessor is operably coupled to the contact sensor, wherein the first microprocessor is configured to receive the input signal and to control a duration of a load current drawn by the contactless sensor.
8 . The torque sensor system of claim 7 further comprising a second microprocessor operably coupled to the contactless sensor, wherein the second microprocessor is configured to receive the output signal and calculate the torque applied to the output component.
9 . A torque sensor system for an electric bicycle comprising:
an output component rotatable about an axis, wherein the output component is configured to be rotated by an electric motor;
an input component rotatable about the axis and concentric with the output component, the input component being a crank axle; and
a strain sensor coupled to the output component and rotatable about the axis with the output component.
10 . The torque sensor of claim 9 further comprising a one-way clutch disposed between the input component and output component, wherein the one-way clutch is engaged between the input component and the output component when the input component is rotated in a first rotational direction, and wherein the one-way clutch is disengaged between the input component and the output component when the input component is rotated in a second rotational opposite the first rotational direction.
11 . The torque sensor of claim 9 further comprising:
a radio transmitter coupled to the output component and rotatable about the axis with the output component; and
a radio receiver spaced apart from and in communication with the radio transmitter.
12 . The torque sensor of claim 9 wherein the output component comprises a cylindrical portion, wherein the strain sensor is applied to the cylindrical portion.
13 . The torque sensor of claim 12 wherein the strain sensor comprises a first strain gauge having a first orientation and a second strain gauge having a second orientation non-parallel to the first orientation.
14 . The torque sensor of claim 9 further comprising:
an inner transformer coil coupled to the output component and rotatable about the axis with the output component; and
a non-rotatable outer transformer coil radially spaced apart from and surrounding the inner transformer coil.
15 . The torque sensor of claim 14 further comprising a printed circuit board (PCB) coupled to the output component and rotatable about the axis with the output component.
16 . The torque sensor of claim 15 wherein the PCB is configured as an annular ring.
17 . The torque sensor of claim 15 further comprising a second microprocessor operably coupled to the outer transformer coil.