POWER DETECTION DEVICE FOR BICYCLE
20180167701 ยท 2018-06-14
Assignee
Inventors
Cpc classification
H04Q9/00
ELECTRICITY
A63B2220/833
HUMAN NECESSITIES
A63B24/0062
HUMAN NECESSITIES
A63B2225/50
HUMAN NECESSITIES
A63B22/0605
HUMAN NECESSITIES
International classification
H04Q9/00
ELECTRICITY
Abstract
A power detection device for bicycles is disclosed, which comprises at least one sprocket, a sprocket base, a strain gauge, a signal processing circuit, and a wireless signal transmitting circuit, wherein the sprocket base is engaged with the sprocket, and the strain gauge is embedded in the sprocket base. The signal processing circuit is electrically connected to the strain gauge, and the wireless signal transmitting circuit is electrically connected to the signal processing circuit. The wireless signal transmitting circuit receives an electrical signal outputted by the signal processing circuit, converts it into a wireless signal, and then sends out the wireless signal. Whereby, the strain gauge can be hidden and effectively secured.
Claims
1. A power detection device for a bicycle, wherein the power detection device is engaged with a rear hub of the bicycle; comprising: at least one sprocket, each of which has a plurality of connection arms; a sprocket base engaged with the sprocket to at least partially cover the connection arms; a strain gauge embedded in the sprocket base; a signal processing circuit electrically connected to the strain gauge, wherein the signal processing circuit is adapted to output an electrical signal according to an amount of deformation of the strain gauge; and a wireless signal transmitting circuit electrically connected to the signal processing circuit, wherein the wireless signal transmitting circuit receives the electrical signal outputted by the signal processing circuit, converts the received electrical signal into a wireless signal, and then sends out the wireless signal.
2. The power detection device of claim 1, wherein the signal processing circuit is embedded in the sprocket base.
3. The power detection device of claim 2, further comprising a plurality of first conductive portions and a plurality of second conductive portions, wherein the first and the second conductive portions are provided at the rear hub; the wireless signal transmitting circuit is disposed at the rear hub, and is electrically connected to the first conductive portions; a plurality of first connectors and a plurality of second connectors are provided on a surface of the sprocket base; the first connectors are electrically connected to an output port of the signal processing circuit, wherein the output port is adapted to output the electrical signal corresponding to the deformation of the strain gauge; the second connectors are electrically connected to a power input port of the signal processing circuit; the first connectors are respectively in contact with the first conductive portions, while the second connectors are respectively in contact with the second conductive portions; the first conductive portions and the second conductive portions are maintained as being electrically connected to the first connectors and the second connectors through the sprocket base while the first conductive portions and the second conductive portions are rotated along with the rear hub.
4. The power detection device of claim 2, further comprising a power supply, wherein the power supply and the wireless signal transmitting circuit are embedded in the sprocket base; the power supply is electrically connected to the signal processing circuit and the wireless signal transmitting circuit to provide required power to the signal processing circuit and the wireless signal transmitting circuit.
5. The power detection device of claim 4, wherein the power supply comprises a coil, a conversion circuit, and a storage battery; the coil is adapted to receive an external energy and to convert the external energy into an electrical signal to be outputted; the conversion circuit is electrically connected to the coil and the storage battery, wherein the conversion circuit converts the electrical signal outputted by the coil into a direct current, which is outputted to the storage battery, whereby to charge the storage battery; the storage battery provides the required power to the signal processing circuit and the wireless signal transmitting circuit.
6. The power detection device of claim 1, further comprising two conductive portions provided on the rear hub, wherein the signal processing circuit and the wireless signal transmitting circuit are disposed at the rear hub; the signal processing circuit is electrically connected to the conductive portions; two connectors are provided on a surface of the sprocket base, wherein the connectors are electrically connected to the strain gauge, and are respectively in contact with the conductive portions; the connectors are maintained as being electrically connected to the conductive portions through being driven by the sprocket base.
7. The power detection device of claim 2, wherein the wireless signal sending circuit is embedded in the sprocket base.
8. The power detection device of claim 7, further comprising two conductive portions, which are disposed on the rear hub and rotatable along with the rear hub, wherein two connectors are provided on a surface of the sprocket base; the connectors are electrically connected to the signal processing circuit and the wireless signal transmitting circuit, and are respectively in contact with the conductive portions; the connectors are maintained as being electrically connected to the conductive portions through being driven by the sprocket base.
9. The power detection device of claim 7, wherein the sprocket base has a battery slot communicating with outside; the battery slot has two connectors provided therein; the connectors are electrically connected to the signal processing circuit and the wireless signal transmitting circuit.
10. The power detection device of claim 1, wherein the strain gauge is located near one of connection arms of the sprocket.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0007] The present invention will be best understood by referring to the following detailed description of some illustrative embodiments in conjunction with the accompanying drawings, in which
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DETAILED DESCRIPTION OF THE INVENTION
[0017] As shown in
[0018] The at least one sprocket 10 includes more than one sprocket 10 in the first embodiment, which are a first sprocket 102 and a second sprocket 104. The first sprocket 102 and the second sprocket 104 each has a plurality of connection arms 102a, 104a in an inner ring thereof. An outer diameter of the first sprocket 102 is greater than an outer diameter of the second sprocket 104, and the first sprocket 102 has more teeth than the second sprocket 104. In practice, the number of the at least one sprocket 10 could be more than two.
[0019] The sprocket base 12 is coupled to the first sprocket 102 and the second sprocket 104, wherein at least a portion of the connection arms 102a, 104a or the first sprocket 102 and the second sprocket 104 are coated by the sprocket base 12. An assembly hole 122 is provided at a center of the sprocket base 12, wherein the assembly hole 122 is adapted to fit around the sleeve. In the first embodiment, the sprocket base 12 is formed by placing the connected first sprocket 102 and second sprocket 104 in a mold (not shown), and injecting a plastic material (e.g., fiber-reinforced plastic) into the mold.
[0020] In addition, in the first embodiment, the detection modules 14 are placed in the mold together during the forming operation of the sprocket base 12, and are located at positions corresponding to the connection arms 102a, 104a. After that, the detection modules 14 are coated by the injected plastic, and therefore are embedded in the sprocket base 12 near the connection arms 102a, 104a. However, it must be noted that, since the detection modules 14 all have the same structure, one of the detection modules 14 is taken as an example in the following paragraphs.
[0021] Said detection module 14 includes a circuit board 16, a strain gauge 18 disposed on the circuit board 16, a signal processing circuit 20, a wireless signal transmitting circuit 22, and a power supply which is a battery 24 as an example, wherein the strain gauge 18 deforms along with the force exerted on the sprocket base 12. The signal processing circuit 20 is electrically connected to the strain gauge 18 and the wireless signal transmitting circuit 22, wherein the signal processing circuit 20 outputs an electrical signal according to an amount of deformation of the strain gauge 18. The wireless signal transmitting circuit 22 receives the electrical signal outputted by the signal processing circuit 20, converts it into a wireless signal, and then transmits the wireless signal to a receiving module 28 which is located outside. In this way, a display 282 of the receiving module 28 could correspondingly display the power detected by the strain gauge 18 for user's reference. The battery 24 is electrically connected to the signal processing circuit 20 and the wireless signal transmitting circuit 22, wherein the battery 24 is used to provide the required power to the signal processing circuit 20 and the wireless signal transmitting circuit 22.
[0022] Since the strain gauge 18, the signal processing circuit 20, the wireless signal transmitting circuit 22, and the battery 24 are firmly embedded in the sprocket base 12, the components in each of the detection modules 14 could be prevented from falling off while a rider is riding the bicycle. In addition, the strain gauge 18 is securely covered by the sprocket base 12, and therefore the strain gauge 18 could be deformed precisely in response to the force exerted on the sprocket base 12, whereby to get more accurate results for power detection.
[0023] A detection module 30 of a power detection device of a second embodiment of the present invention is illustrated in
[0024] A detection module 36 of a power detection device of a third embodiment of the present invention is illustrated in
[0025] A detection module 42 of a power detection device of a fourth embodiment of the present invention is illustrated in
[0026] In each of the aforementioned first to fourth embodiments, the detection module is hidden in the sprocket base. Therefore, the detection module could be effectively fixed, and would be not visible from outside.
[0027] A detection module 50 of a power detection device of a fifth embodiment of the present invention is illustrated in
[0028] A detection module 64 of a power detection device of a sixth embodiment of the present invention is illustrated in
[0029] A detection module 80 of a power detection device of a seventh embodiment of the present invention is illustrated in
[0030] With the aforementioned design that the strain gauge is embedded in a sprocket base, the strain gauge would be precisely deformed according to the force exerted on the sprocket base, whereby the detected power would be more accurate. Furthermore, the strain gauge could be effectively prevented from falling off from the sprocket base, and could be hidden therein, so that the strain gauge would not be visible from outside.
[0031] It must be pointed out that the embodiments described above are only some preferred embodiments of the present invention. All equivalent structures which employ the concepts disclosed in this specification and the appended claims should fall within the scope of the present invention.