The invention relates to a motor device for an electric bicycle. The invention further relates to a connector unit for the motor device and an electric bicycle with the motor device.
An electric bicycle is known, for example, from JP 2001071983 A and WO 2009027683 A1. The electric bicycle typically contains an electric motor and a battery. The battery and the electric motor are electrically connected to each other via a connector unit, wherein the connector unit usually comprises a connector on the battery side and a connector on the electric motor side. The connector on the battery side is connected to the battery and the connector on the electric motor side is connected to the electric motor each via a cable. When mounting or dismounting a rear wheel of the electric bicycle carrying the electric motor, the connection between the battery and the electric motor have always to be established or released. As a result, mounting or dismounting the rear wheel takes a long time. Moreover, if the connector unit is not loosened when removing the rear wheel, the connector unit can be damaged. Furthermore, the connector must be positioned on the bicycle in such a way that it is always accessible for connecting the battery and the electric motor.
It is therefore the object of the invention to provide an improved or at least alternative embodiment for an electric bicycle of the generic type, a motor device for the electric bicycle and a connector unit for the motor device, in which the described disadvantages are overcome.
A motor device is provided for an electric bicycle. The motor device contains an electric motor having a rotation axis and a connector unit. The motor device further contains a first connector unit and a second connector unit. The first connector unit contains a first motor connector and a first connecting part that surrounds the first motor connector regionally and outwardly. The first connector unit is mounted on the electric motor and is electrically conductively connected to the electric motor via the first motor connector. The second connector unit comprises a second motor connector and a second connecting part. An electrical conductive connection can be established and released directly between the first motor connector and the second motor connector. According to the invention, a form-fitted connection can be established and released between the first connecting part and the second connecting part transversely to the axis of rotation. When establishing and releasing the form-fitted connection between the connecting parts, the electrical conductive connection between the motor connectors can also be established and released.
In the present invention, the terms “axial” and “radial” always refer to the axis of rotation of the electric motor.
Advantageously, the first connector unit can be fixedly mounted i.e., rigidly fixed to the electric motor. The electric motor can contain a stator and a rotor and the first connector unit can then be fixedly mounted i.e., rigidly fixed to the stator of the electric motor. The first motor connector and/or the first connecting part can be fixedly mounted i.e., rigidly fixed to the electric motor and/or to each other. The second motor connector and/or the second connecting part can be fixedly mounted i.e., rigidly fixed to each other in the second connector unit. Advantageously, the second connector unit can be designed to be fixedly mounted i.e., rigidly fixed to a dropout of the electric bicycle preferably via a carrier and the electric motor can be designed to be fixedly mounted i.e., rigidly fixed to a rear wheel of the electric bicycle. The first motor connector of the first connector unit mounted on the electric motor and the second motor connector of the second connector unit can be arranged in such a way that, if the rear wheel is positioned on the dropout for mounting a thru axle of the rear wheel, the form-fitted and electrical conductive connection between the first connector unit mounted on the electric motor and the second connector unit is established. There, the two motor connectors are directly connected to each other in an electrical conductive manner. In other words, the two motor connectors are plugged into each other and thereby electrically connected with each other. For this purpose, the two motor connectors are suitably formed to correspond with one another i.e., to be complementary to one another i.e., to be plugged into one another. Thus, when the rear wheel is positioned for mounting the thru axle, the form-fitted and electrical conductive connection between the first connector unit mounted to the electric motor and the second connector unit can be automatically established. This can reduce the time required to mount and dismount the rear wheel of the electric bicycle. In addition, the risk of damage of the second connector unit can be reduced.
Advantageously, the motor device can comprise a form-fitting unit having a first form-fitting element and having a second form-fitting element. The first form-fitting element can be formed on the first connecting part, and the second form-fitting element can be formed on the second connecting part. Furthermore, the first or second form-fitting element can be insertable into the second or first form-fitting element transversely to the axis of rotation and thereby the form-fitted connection between the connecting parts can be established. As a result, the first connecting part can be guided transversely to the axis of rotation on the second connecting part or vice versa in a simplified manner, thereby simplifying the establishing and releasing of the electrical conductive connection between the first connector unit mounted on the electric motor and the second connector unit. The form-fitted connection acts parallel to the axis of rotation of the electric motor, so that the two connecting parts cannot be detached axially from each other.
The first form-fitting element can be formed by two first guide rails spaced apart from one another and aligned transversely to the axis of rotation, and the second form-fitting element can be formed by two second guide rails spaced apart from one another and aligned transversely to the axis of rotation. The first guide rails and the second guide rails can be formed complementary to each other. Furthermore, the first guide rails and the second guide rails can be displaceable into one another transversely to the axis of rotation and fixedly connectable to one another parallel to the axis of rotation. In addition, the two first guide rails and the two second guide rails can each be aligned non-parallel to each other and approach each other radially inwardly towards the axis of rotation. In this embodiment of the form-fitting unit, the first connecting part can be guided on the second connecting part or vice versa in a particularly secure and simplified manner.
In an advantageous embodiment, it can be provided that the second connector unit contains a carrier. The carrier surrounds the second connecting part and the second motor connector at least in regions towards the electric motor. Thus, the carrier can protect the second connecting part and the second motor connector from the outside. Advantageously, the carrier can be fixedly connected i.e., rigidly fixed to the electric bicycle or can be integrated into the electric bicycle or can be integral with or can be formed from the same piece of material with a dropout of the electric bicycle. The second connecting part can be formed on the carrier or can be fixed to the carrier in a form-fitted and/or force-fitted and/or material-bonded manner. In addition, the second motor connector can be fixedly connected i.e., rigidly fixed to the carrier in a form-fitted and/or force-fitted and/or material-bonded manner.
In an advantageous embodiment of the motor device, the motor device can include a thru axle. In this case, the thru axle defines the axis of rotation of the electric motor and extends through the electric motor and the second connector unit. It will be understood that the thru axle also extends through a dropout of the electric bicycle, thereby securing the rear wheel carrying the electric motor to the dropout. In addition, the thru axle can also fix the first connector unit mounted on the electric motor and the second connector unit to each other transversely to the axis of rotation so that the form-fitted connection between the connecting parts and the electrical conductive connection between the motor connectors are non-detachable, when the thru axle is mounted in the rear wheel and the dropout i.e., when the rear wheel is mounted on the dropout. In individual components of the second connector unit—for example in the carrier and/or in the second connecting part—and of the first connector unit mounted on the electric motor—for example in the second connecting part,—axially corresponding openings for the thru axle can be formed.
The second connector unit can further comprise a second battery connector for connecting the second connector unit to a first battery connector of a battery of the electric bicycle. The first battery connector can thereby be electrically conductively connected to the second motor connector via a cable. The two battery connectors are formed to correspond with each other i.e., to be plugged into each other. Via the first connector unit and second connector unit, the battery can be electrically conductively connected to the electric motor.
The invention also relates to a connector unit arrangement for the motor device described above and having the first connector unit and the second connector unit. The connector unit arrangement is formed in such a way that a form-fitted connection can be established and released between the second connector unit and the first connector unit for the electric motor transversely to the axis of rotation. When establishing and releasing the form-fitted connection, an electrical conductive connection can be established and released between the second connector unit and the first connector unit for the electric motor. The first connector unit can thereby be provided for fixed connection i.e., rigid fixing to the electric motor. The second connector unit can thereby be provided for fixed connection i.e., rigid fixing to the electric bicycle, in particular to a dropout of the electric bicycle, in particular to a dropout of the electric bicycle via a carrier. In order to avoid repetition, reference is made at this point to the above explanations.
The invention also relates to an electric bicycle. Here, the electric bicycle contains a motor device described above and having the electric motor, the first connector unit, and the second connector unit. In addition, the electric bicycle contains a rear wheel, a dropout supporting the rear wheel, and a battery. According to purpose, the electric bicycle also can contain a front wheel. The electric motor with the first connector unit is fixedly connected i.e., rigidly fixed to the rear wheel and the second connector unit is fixedly connected i.e., rigidly fixed to the dropout. The electric motor is electrically connected to the battery via the first connector unit and the second connector unit. Advantageously, the second connector unit can contain a carrier which surrounds the second connecting part and the second motor connector at least in regions towards the electric motor. The carrier can be fixedly connected i.e., rigidly fixed to the dropout. In order to avoid repetition, reference is made here to the above explanations.
Further important features and advantages of the invention are apparent from the subclaims, from the drawings, and from the accompanying figure description based on the drawings.
It is understood that the above features and those to be explained below can be used not only in the combination indicated in each case, but also in other combinations or on their own, without departing from the scope of the present invention.
Preferred embodiments of the invention are shown in the drawings and will be explained in more detail in the following description, wherein identical reference signs refer to identical or similar or functionally identical components.
It shows, in each case schematically
The battery 5 is electrically connected to the electric motor 3 via the second connector unit 4b. The battery 5 contains a first battery connector 9a and the second connector unit 4b contains a second battery connector 9b. To establish and release an electrical conductive connection between the battery 5 and the second connector unit 4b, a plug connection is established and released between the two battery connectors 9a and 9b. Further details of the structure of the motor device 2, the first connector unit 4a, and the second connector unit 4b will be explained in more detail below with reference to
The second connector unit 4b comprises a carrier 12, a second connecting part 10b and a second motor connector 11b. In this regard, the carrier 12 is integrally formed with a first dropout half 7a of the dropout 7 i.e., is formed by the first dropout half 7a of the dropout 7. The second connecting part 10b is fixedly connected i.e., rigidly fixed to the carrier 12, and the second motor connector 11b is screwed and, in this way, rigidly fixed to the carrier 12 by means of two screws 13. In this way, the second connecting part 10b and the second motor connector 11b are fixedly connected i.e., rigidly fixed to each other and to the carrier 12. The motor connectors 11a and 11b are engageable with each other, whereby an electrical conductive connection can be established between the first connector unit 4a mounted on the electric motor 3 and the second connector unit 4b. When the second connector unit 4b is electrically conductively connected to the battery 5 via the battery connector 9b, the electric motor 3 is thereby electrically conductively connected to the battery 5.
The motor device 2 further comprises a form-fitting unit 14 having a first form-fitting element 15a and having a second form-fitting element 15b. The first form-fitting element 15a is formed by two guide rails 16a, and the second form-fitting element 15b is formed by two guide rails 16b. The two guide rails 16a and 16b are spaced apart from each other and are aligned transversely to the axis of rotation RA. Moreover, the two guide rails 16a and 16b respectively approach radially inwardly. By means of the form-fitting unit 14, the first connecting part 10a and thereby the electric motor 3 can be guided in the second connecting part 10b and thereby on the second connector unit 4b transversely to the axis of rotation RA. Thereby, the guide rails 16a and 16b axially engage with each other and a form-fitted connection can be established and released between the first connector unit 4a mounted on the electric motor 3 and the second connector unit 4 mounted on the dropout 7 of the electric bicycle 1.
The motor connectors 11a and 11b are thereby arranged on the connecting parts 10a and 10b in such a way that, when the form-fitted connection between the connecting parts 10a and 10b is established and released, the electrical conductive connection between the motor connectors 11a and 11b can also be established and released. As a result, the electric motor 3 can be mounted on the second connector unit 4b i.e., on the dropout 7 i.e., on the electric bicycle 1 via the first connector unit 4a in a simplified manner.
In
Number | Date | Country | Kind |
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21197079.3 | Sep 2021 | EP | regional |
This application is a continuation application of U.S. patent application Ser. No. 17/945,986, filed on Sep. 15, 2022, which claims priority to European Patent Application No. EP21197079.3 filed Sep. 16, 2021, the contents of which are both hereby incorporated by reference in their entirety.
Number | Date | Country | |
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Parent | 17945986 | Sep 2022 | US |
Child | 18239109 | US |