CRANK TRANSMISSION WITH A CRANKSHAFT FOR CONNECTION TO AT LEAST ONE FOOT-OPERATED OR HAND-OPERATED CRANK
20210364376 · 2021-11-25
Inventors
- Michael Schmitz (Mossingen, DE)
- Christoph Lermen (Karlsruhe, DE)
- Dietmar WEISSER (Tuttlingen, DE)
- Martin GÖTZ (Villingen-Schwenningen, DE)
Cpc classification
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62M21/00
PERFORMING OPERATIONS; TRANSPORTING
B62M3/00
PERFORMING OPERATIONS; TRANSPORTING
F16D2300/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01D5/145
PHYSICS
International classification
Abstract
A crank transmission having a crankshaft for connection to at least one foot or hand crank and at least one gear wheel driven by means of the crankshaft (5) is proposed. A coupling unit is provided between the crankshaft and the gear wheel. Under load, the coupling unit has at least temporarily an angular offset between a crank-side receiving region and an output region connected to the gear wheel for receiving and outputting the torque generated via the crank.
Claims
1. A transmission comprising a shaft and at least one wheel driven by means of the shaft, wherein a coupling unit is provided between the shaft and the wheel, wherein the coupling unit under load at least temporarily has an angular offset between a crank-side receiving region and an output region connected to the wheel for receiving and outputting the torque introduced into the shaft.
2. The transmission of claim 1, wherein a transducer unit is provided for converting the angular offset into a change in a magnetic flux, and wherein a magnetic field-sensitive sensor is provided for detecting the angular offset.
3. The transmission of claim 1, wherein the coupling unit comprises a torsion element.
4. The transmission of claim 1, wherein the torsion element is disposed in a cavity of the shaft.
5. The transmission of claim 1, wherein the torsion element is connected in a rotationally fixed manner to the wheel at a connection point in the output region by means of a connecting element, wherein the connecting element extends from a cavity of the shaft through a passage in a wall of the shaft, and wherein the torsion element is connected in a rotationally fixed manner to the shaft at a connection point in the receiving region.
6. The transmission of claim 3, wherein the torsion element is deformable in a torque-dependent manner against a restoring torque in such a way that the angular offset between the receiving region and the output region results in a torque-dependent manner.
7. The transmission of claim 3, wherein the torsion element is a torsion bar.
8. The transmission of claim 2, wherein the transducer unit comprises at least one magnet and two magnetic guide elements that can be rotated with respect to each other, wherein the guide elements, within an air gap, change the shape of the air gap in an angle-dependent manner by their shape and their relative angular position.
9. The transmission of claim 8, wherein one of the guide elements has a toothed inner circumference and the other of the guide elements has a toothed outer circumference, such that the shape of the air gap depends on the angular position of teeth of the toothed inner circumference and of the toothed outer circumference.
10. The transmission of claim 2, wherein the magnetic field-sensitive sensor is provided to detect changes in the magnetic flux, and wherein the magnetic field-sensitive sensor is spaced apart from the guide elements.
11. The transmission of claim 8, wherein the magnet is a ring magnet concentric with the shaft, wherein an outer magnetic flux return circuit extends around an outer circumference of the ring magnet and wherein an inner magnetic flux return circuit extends around an inner circumference of the ring magnet, wherein a magnetic field-sensitive sensor is provided to detect changes in the magnetic flux, and wherein a region of the air gap that changes depending on the angle is located in the area of the outer return circuit, and wherein the magnetic field-sensitive sensor is located in the area of the inner return circuit.
12. The transmission of claim 8, wherein the magnet is a ring magnet concentric with the shaft, wherein an outer magnetic flux return circuit extends around an outer circumference of the ring magnet and wherein an inner magnetic flux return circuit extends around an inner circumference of the ring magnet, wherein a magnetic field-sensitive sensor is provided to detect changes in the magnetic flux, and wherein a region of the air gap that changes depending on the angle is located in the area of the inner return circuit, and wherein the magnetic field-sensitive sensor is located in the area of the outer return circuit.
13. The transmission of claim 8, wherein the angle-dependent variable air gap is arranged in the area of an outer return circuit of a ring magnet arranged concentrically to the shaft, and wherein the magnetic field-sensitive sensor is arranged in the area of an air gap in an inner return circuit of the ring magnet.
14. The transmission of claim 8, wherein the angle-dependent variable air gap is arranged in the area of an inner return circuit of a ring magnet arranged concentrically to the shaft, and wherein the magnetic field-sensitive sensor is arranged in the area of an air gap in an outer return circuit of the ring magnet.
15. The transmission of claim 2, wherein the magnetic field-sensitive sensor is arranged stationary with respect to a non-rotating component.
16. The transmission of claim 15, wherein the sensor is disposed stationary with respect to a transmission housing.
17. The transmission of claim 2, wherein an evaluation unit is provided for determining the torque based on the detected sensor signal of the magnetic field-sensitive sensor.
18. An apparatus for detecting a relative rotation of two rotatable guide elements which are rotatably mounted with respect to a housing and between which an air gap is formed which varies in dependence on the relative rotation, comprising a ring magnet magnetized so that a radially outer return circuit of a magnetic field is formed outside an outer circumference of the ring magnet and an inner return circuit of the magnetic field is formed inside an inner circumference of the ring magnet, a magnetic field-sensitive sensor disposed stationary with respect to the housing, wherein the magnetic field-sensitive sensor is disposed in the region of one return circuit of the outer return circuit of the magnetic field and the inner return circuit of the magnetic field, and wherein the variable air gap is disposed in the region of the other return circuit of the outer return circuit of the magnetic field and the inner return circuit of the magnetic field.
19. The apparatus of claim 18, wherein the return circuit of the outer return circuit and the inner return circuit, in the region of which the magnetic field-sensitive sensor is disposed, generates a magnetic field which is homogeneous in the circumferential direction.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
[0029] An embodiment of the disclosure is shown in the drawing and is explained in more detail below with reference to the figures.
[0030] In detail, there is shown in
[0031]
[0032]
[0033]
[0034]
EMBODIMENTS
[0035]
[0036] The crankshaft 5 is provided on both sides with toothings (6, 7) for mounting foot or hand cranks. A connecting pin (8) projects from the crankshaft and serves to connect the gear wheel (1) to be driven, as will be explained further below.
[0037]
[0038] A ring magnet (15) is inserted in a recess (16) of the gear wheel (1), wherein the two magnetic poles N, S are arranged in the axial direction. This results in an outer return circuit (17) and an inner return circuit (18), as indicated by arrow lines.
[0039] A Hall sensor (19) is arranged in the area of the inner return circuit. An annular space (20) is arranged outside the Hall sensor (19) for the arrangement of the guide elements not shown in
[0040]
[0041] The toothings (23, 24) form the contours of the air gap (25), whereby the shape of the outer air gap (25) can be changed by relatively rotating the guide elements (21, 22).
[0042] Since the magnetic field of the inner air gap (26) is homogeneous at a constant overlap of the guide elements (21, 22) of the outer return circuit, the sensor signal remains constant during rotation of the shaft. By changing the overlap of the guide elements of the outer return circuits, the magnetic field in the inner air gap (26) can be varied. If more magnetic flux flows through the outer return circuit due to greater overlap of the guide elements, less magnetic flux consequently flows through the inner return circuit and thus also through the inner air gap (26). If the overlap of the guide elements is reduced, this is correspondingly reversed.
[0043] The inner guide element (22) is connected to the crankshaft, and the outer guide element (21) is connected to the gear wheel (1), in a rotationally fixed manner. Thus, the angular offset generated by the torsion element (10) is established between the two guide elements (21, 22). The two guide elements (21, 22), the ring magnet (15) and the at least one Hall sensor (19) thus form a transducer unit.
[0044] The arrangement described is capable of converting a torque introduced by physical force of a person by means of a crank onto the crankshaft (5) into an angular offset that can be detected sensorically. For this purpose, the torsion bar as a torsion element (10) receives the torque and twists under the corresponding load. This can be the case because the transmission initially opposes the torque, for example by means of a drive wheel to be driven via the transmission. This results in an angular offset over the extension of the torsion bar (10) and thus between the receiving region (11) and the output region (12).
[0045] Since the torsion bar (10) is non-rotatably connected there to the gear wheel (1) via the connecting pin (8), this angular offset also occurs between the guide elements (21, 22), which leads to a change in the flux of the magnetic field of the ring magnet (15). This flux change is detected by the Hall sensor (19).
LIST OF REFERENCE SIGNS
[0046] 1 gear wheel
[0047] 2 gear wheel
[0048] 3 gear wheel
[0049] 4 gear wheel
[0050] 5 crankshaft
[0051] 6 toothing
[0052] 7 toothing
[0053] 8 connecting pin
[0054] 9 cavity
[0055] 10 corsion bar
[0056] 11 receiving region
[0057] 12 output region
[0058] 13 passage
[0059] 14 edge
[0060] 15 ring magnet
[0061] 16 recess
[0062] 17 return circuit
[0063] 18 return circuit
[0064] 19 Hall sensor
[0065] 20 annular space
[0066] 21 guide element
[0067] 22 guide element
[0068] 23 inner toothing
[0069] 24 outer toothing
[0070] 25 air gap
[0071] 26 air gap