3-speed transmission
The three-speed transmission mechanism for electric motorcycles addresses structural complexity and shifting inefficiencies by using a simplified design with change gear units and one-way bearings, ensuring smooth and stable speed changes with reduced maintenance.
Patent Information
- Application Number
- JP2023002017
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-01-11
- Filing Date
- 2023-01-10
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2043-01-10
AI Technical Summary
Existing transmission mechanisms for electric motorcycles are complex in structure, difficult to maintain, and have poor gear shifting efficiency, leading to maintenance challenges and gear shift shocks.
A three-speed transmission mechanism with a simplified structure that includes a drive unit, input unit, and output unit, utilizing first and second change gear units with clutches and one-way bearings to facilitate smooth speed changes and prevent gear shift shocks, with detachable end covers for easy assembly and maintenance.
The mechanism achieves stable and comfortable shifting with reduced maintenance complexity and eliminates gear shift shocks, providing a three-speed function that simplifies installation and maintenance.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to the field of transmission technology. [Background technology]
[0002] Electric motorcycles change gears by increasing or decreasing the rotation speed of the electric motor, but due mainly to the volume and lack of available space, it is not possible to install a large, complex transmission mechanism. It is generally said that the motor rotation speed should be maintained between 1000 and 2000 rpm when riding at low speeds, but when an electric motorcycle needs to be ridden at high speeds, the motor rotation speed must be increased to above 2000 rpm. This reduces the motor's performance, so a solution is to use a transmission mechanism to keep the motor between 1000 and 2000 rpm and set the rotation speed of the output wheel driven by the output shaft to above 2000 rpm.
[0003] There are two main types of transmission mechanisms currently available: one is a gear transmission, which has good gear shifting efficiency but is complex in structure, expensive, inconvenient to maintain, and prone to gear shift shocks caused by acceleration or deceleration when shifting gears; the other is a continuously variable transmission (CVT), which has a simple structure, reduces costs, and is easy to maintain, but has poor gear shifting efficiency.
[0004] In other words, existing transmission mechanisms have problems such as being too complex in structure, making maintenance and replacement more difficult, and having poor transmission efficiency, so the objective of the present invention is to find a way to solve these problems. Summary of the Invention [Problem to be solved by the invention]
[0005] The main object of the present invention is to provide a three-speed transmission mechanism that effectively simplifies the structure and, by utilizing the structural layout, effectively reduces the difficulty of assembly and maintenance, facilitates maintenance and replacement, and saves time and effort.
[0006] Another main object of the present invention is to provide a three-speed transmission mechanism that has a three-speed function, directly connects power when changing speeds, and can achieve the objectives of speeding up speed changeover and improving reliability.
[0007] Yet another main object of the present invention is to provide a three-speed transmission mechanism that can smooth the shifting process, eliminate shift shock, and achieve the objectives of stable and comfortable shifting. [Means for solving the problem]
[0008] The present invention will be described below. The three-speed change mechanism described in claim 1 includes a drive unit, an input unit, and an output unit, the drive unit includes an electric motor, and an output shaft of the electric motor includes a drive wheel used to drive the input unit; the input unit comprises a drive shaft that can be driven by the drive wheel, an initial drive wheel is installed at a middle section of the drive shaft, and a first change gear unit and a second change gear unit are installed on both sides of the initial drive wheel, respectively, wherein the first change gear unit comprises a first clutch installed on the drive shaft, and the first clutch comprises a first drive wheel that is installed on the drive shaft and can be selectively driven; the other second change gear unit comprises a second clutch installed on the drive shaft, and the second clutch comprises a second drive wheel that is installed on the drive shaft and can be selectively driven; The output unit has an output shaft parallel to the axis of the drive shaft of the input unit, and an initial driven wheel meshed with the initial driving wheel is installed at the middle of the output shaft, and a first speed change wheel and a second speed change wheel are installed on both sides of the initial driven wheel, respectively, of which the first speed change wheel is meshed with the first driving wheel, and the second speed change wheel is meshed with the second driving wheel, and the initial driven wheel is installed on the output shaft via a first one-way bearing, and the first speed change wheel is wherein the first one-way bearing and the second one-way bearing are one-way members that prevent driving in the same direction; the rotation speed generated by the gear ratio between the first driving wheel and the first speed-changing wheel of the first transmission unit is higher than the rotation speed generated by the gear ratio between the initial driving wheel and the initial driven wheel; and the rotation speed generated by the gear ratio between the second driving wheel and the second speed-changing wheel of the second transmission unit is also higher than the rotation speed generated by the gear ratio between the initial driving wheel and the initial driven wheel.
[0009] The three-speed transmission mechanism described in claim 2 has the drive unit, the input unit, and the output unit of claim 1 incorporated into a housing, and selectively detachable first and second end covers installed on both ends of the housing, respectively.
[0010] A three-speed change mechanism according to claim 3 is configured such that a driven wheel driven by the drive wheel is fixed to one end of the drive shaft of the input unit according to claim 1.
[0011] The three-speed transmission mechanism described in claim 4 is such that the drive wheel of the drive unit in claim 3 is meshed with and can drive the driven wheel of the input unit via a gear ratio adjustment unit, and the gear ratio adjustment unit has a first gear and a second gear that rotate synchronously on the same axis, of which the first gear is meshable with the drive wheel and the second gear is meshable with the driven wheel, and is used to change the initial rotational speed at which the drive unit drives the input unit by changing the gear ratio of the first gear and the second gear.
[0012] A three-speed change mechanism according to claim 5 has an output wheel attached to at least one end of the output shaft of the output unit according to claim 1, and is used to drive an external driven member.
[0013] In the three-speed change mechanism described in claim 6, the rotational speed produced by the gear ratio between the second drive wheel of the second change gear unit and the second change gear wheel of the output unit in claim 1 is higher than the rotational speed produced by the gear ratio between the first drive wheel of the first change gear unit and the first change gear wheel of the output unit. [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 1 is a three-dimensional external view of the present invention. [Figure 2] FIG. 1 is a partial exploded view of the present invention. [Figure 3] FIG. 2 is a partial exploded view of the present invention from another angle. [Figure 4] FIG. 1 is an exploded view of the present invention. [Figure 5] 1 is a schematic diagram showing the interior of the present invention after assembly. [Figure 6] FIG. 6 is a side cross-sectional view of the present invention taken along line AA in FIG. 5. [Figure 7] FIG. 6 is a cross-sectional view taken along line BB in FIG. 5 according to the present invention. [Figure 8] FIG. 10 is a top view of the operation of the present invention at the initial gear position. [Figure 9] FIG. 4 is a top view of the first acceleration shift of the present invention. [Figure 10] FIG. 10 is a top view of the second acceleration shift of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0015] As shown in FIGS. 1, 2 and 3, the configuration of the present invention comprises a housing 10 in which a drive unit 20, an input unit 30 and an output unit 40 are installed.
[0016] The detailed structure of the best embodiment is shown in Figures 3 to 7, in which a first end cover 11 and a second end cover 12 are respectively installed at both ends of the housing 10, and are used to protect and support the drive unit 20, the input unit 30, and the output unit 40, which are installed parallel to the axis.
[0017] The drive unit 20 includes an electric motor 21, the output shaft of which includes a drive wheel 22 used to drive the input unit 30, and the drive wheel 22 can be engaged with the input unit 30 via a gear ratio adjustment unit 25 to drive it. The gear ratio adjustment unit 25 further includes a first gear 26 and a second gear 27 which rotate coaxially and synchronously, and the first gear 26 can be engaged with the drive wheel 22 of the electric motor 21.
[0018] The input unit 30 has a drive shaft 31 parallel to the axis of the drive wheel 22 of the drive unit 20. As shown in Figures 4 and 6, a driven wheel 32 driven by the drive wheel 22 is fixed to one end of the drive shaft 31, and the driven wheel 32 further meshes with the second gear 27 of the gear ratio adjustment unit 25. The gear ratio between the first gear 26 and the second gear 27 can be changed to change the rotation speed of the input unit 30 driven by the drive unit 20. In addition, an initial drive wheel 33 that can be used to drive the output unit 40 is installed in the middle part of the drive shaft 31 of the input unit 30, and a first change gear unit 34 and a second change gear unit 37 are installed on both sides of the initial drive wheel 33, respectively, of which the first change gear unit 34 has a first clutch 35 installed on the drive shaft 31, and the first clutch 35 has a first drive wheel 36 installed on the drive shaft 31 and can be selectively driven, and the second change gear unit 37 on the other side has a second clutch 38 installed on the drive shaft 31, and the second clutch 38 has a second drive wheel 39 installed on the drive shaft 31 and can be selectively driven.
[0019] The output unit 40 has an output shaft 41 that is parallel to the axis of the drive shaft 31 of the input unit 30. As shown in Figures 4 and 7, at least one end of the output shaft 41 is drilled into the housing 10, and an output wheel 42 is attached to the end, which is used to drive an external driven member (such as a chain, not shown). An initial driven wheel 43 that meshes with the initial drive wheel 33 of the input unit 30 is attached to the middle of the output shaft 41, and a first speed-changing wheel 45 and a second speed-changing wheel 47 are attached to both sides of the initial driven wheel 43, respectively. The first speed-changing wheel 45 is meshed with the first driving wheel 36 of the drive shaft 31, and the second speed-changing wheel 47 is meshed with the second driving wheel 39 of the drive shaft 31. The initial driven wheel 43 and the first speed-changing wheel 45 are mounted on the output shaft 41 via a first one-way bearing 44 and a second one-way bearing 46, respectively. The first one-way bearing 44 and the second one-way bearing 46 are one-way members that prevent driving in the same direction. Furthermore, the rotational speed produced by the gear ratio between the first driving wheel 36 of the first transmission unit 34 and the first speed-changing wheel 45 of the output shaft 41 is higher than the rotational speed produced by the gear ratio between the initial driving wheel 33 and the initial driven wheel 43, and the rotational speed produced by the gear ratio between the second driving wheel 39 of the second transmission unit 37 and the second speed-changing wheel 47 of the output shaft 41 is higher than the rotational speed produced by the gear ratio between the initial driving wheel 33 and the initial driven wheel 43. Therefore, when the input unit 30 drives the output shaft 41 via the first transmission unit 34, the initial driven wheel 43 will spin freely, making the power connection smoother and more stable and preventing gear shift shock. In some embodiments, the rotation speed generated by the gear ratio between the second driving wheel 39 of the second transmission unit 37 and the second speed-changing wheel 47 of the output shaft 41 is higher than the rotation speed generated by the gear ratio between the first driving wheel 36 of the first transmission unit 34 and the first speed-changing wheel 45, so that when the input unit 30 drives the output shaft 41 via the second transmission unit 37, the first speed-changing wheel 45 and the initial driven wheel 43 simultaneously form an idling motion, making the power connection smoother and more stable and preventing gear shift shock.
[0020] As a result, the first and second change speed units 34 and 37 between the input unit 30 and the output unit 40 accelerate the initial rotation speed output by the drive unit 20, achieving a three-speed effect. In addition, the first cover 11 and the second end cover 12 on both sides of the housing 10 correspond to the first and second change speed units 34 and 37 of the input unit 30, respectively, which facilitates installation, removal, and maintenance of the first and second change speed units 34 and 37, thereby enabling the construction of a three-speed change speed mechanism with a simple structure and easy maintenance.
[0021] In actual operation of the present invention, when it is necessary to use the initial rotation speed, as shown in Figures 2, 4, and 8, the drive wheel 22 of the electric motor 21 of the drive unit 20 rotates the drive shaft 31 of the input unit 30 at the initial rotation speed via the gear ratio adjustment unit 25. However, because the first clutch 35 and second clutch 38 of the first and second change gear units 34 and 37 on the drive shaft 31 are not engaged, the first drive wheel 36 and second drive wheel 39 of the first and second change gear units 34 and 37 are not driven by the drive shaft 31. As a result, only the initial drive wheel 33 on the drive shaft 31 is driven, which in turn drives the meshed initial driven wheel 43 on the output shaft 41 of the output unit 40. The initial driven wheel 43 then drives the output shaft 41 via the first one-way bearing 44, causing the electric motor 21 to drive the output shaft 41 and the output wheel 42 to operate at the initial rotation speed.
[0022] When a first acceleration shift is required, when the output shaft 41 of the output unit 40 is operating at an initial rotation speed, the drive wheel 22 of the electric motor 21 of the drive unit 20 rotates the drive shaft 31 of the input unit 30 at the initial rotation speed via the gear ratio adjustment unit 25. The first clutch 35 of the first change gear unit 34 on the drive shaft 31 is engaged, and the second clutch 38 of the second change gear unit 37 on the drive shaft 31 is not yet engaged, so that the first drive wheel 36 of the first change gear unit 34 can be driven by the drive shaft 31. Because the gear ratio between the first drive wheel 36 of the first change gear unit 34 and the first change wheel 45 is higher than that between the initial drive wheel 33 and the initial driven wheel 43, the rotation speed of the first change wheel 45 is higher than that of the initial driven wheel 43. As a result, the first transmission wheel 45 drives the output shaft 41 via the second one-way bearing 46, causing the output shaft 41 and the first one-way bearing 44 of the initial driven wheel 43 to rotate freely in opposite directions, preventing the initial driven wheel 43 from interfering with the output shaft 41, and allowing the electric motor 21 to drive the output shaft 41 via the first transmission unit 34, causing the output wheel 42 to operate at the rotational speed of the first acceleration shift. Furthermore, because the rotational speed of the output shaft 41 is converted from the initial rotational speed to the first acceleration rotational speed, the drop in rotational speed is relatively small, making the power connection smoother and more stable and preventing gear shift shock.
[0023] When a second acceleration shift is required, when the output shaft 41 of the output unit 40 is operating at a first accelerated rotational speed, as shown in FIG. 10, the drive wheel 22 of the electric motor 21 of the drive unit 20 drives the drive shaft 31 of the input unit 30 via the gear ratio adjustment unit 25, and the first change gear unit 34 rotates the output shaft 41 at the first accelerated rotational speed. In this state, the second clutch 38 of the second change gear unit 37 on the drive shaft 31 is engaged, so that the second drive wheel 39 of the second change gear unit 37 can be driven by the drive shaft 31. Because the gear ratio between the second driving wheel 39 of the second transmission unit 37 and the second speed-changing wheel 47 is greater than the gear ratio between the first driving wheel 36 of the first transmission unit 34 and the first speed-changing wheel 45 and the gear ratio between the initial driving wheel 33 and the initial driven wheel 43, the rotational speed of the second speed-changing wheel 47 is higher than that of the first speed-changing wheel 45 and the initial driven wheel 43. Therefore, the second speed-changing wheel 47 can drive the output shaft 41, causing the output shaft 41, the second one-way bearing 46 of the first speed-changing wheel 45, and the first one-way bearing 44 of the initial driven wheel 43 to rotate freely in the opposite direction, preventing the first speed-changing wheel 45 and the initial driven wheel 43 from interfering with the output shaft 41. The electric motor 21 drives the output shaft 41 via the second transmission unit 37, and the output wheel 42 can operate at the rotational speed of the second acceleration shift. Furthermore, since the rotational speed of the output shaft 41 is converted from the first accelerated rotational speed to the second accelerated rotational speed, the drop in rotational speed is relatively small, making the power connection smoother and more stable and preventing gear change shock.
[0024] According to the above design and description, the present invention uses the middle part of the drive shaft 31 of the input unit 30 to install the initial driving wheel 33, and installs the first speed change unit 34 and the second speed change unit 37 on both sides of the initial driving wheel 33 of the drive shaft 31, respectively. Furthermore, the first one-way bearing 44 of the initial driven wheel 43 and the second one-way bearing 46 of the first speed change wheel 45 are one-way members that prevent driving in the same direction. At the same time, by combining the design of the first end cover 11 and the second end cover 12 on both sides of the housing 10, In addition to being able to utilize the three-speed transmission function formed by the present invention, gradually increasing the speed makes the power connection smoother and more stable, and prevents gear change shock. Furthermore, since the first and second speed change units 34 and 37 are installed on both sides of the drive shaft 31, not only is the structure simple, but assembly, disassembly, and maintenance can be carried out by opening the first and second end covers 11 and 12 on both sides of the housing 10, respectively, without the need to remove the entire unit, which greatly improves the convenience of installation and maintenance. [Explanation of symbols]
[0025] 10. Housing 11 First end cover 12 Second end cover 20 Drive unit 21 Electric Motor 22 drive wheels 25 Gear ratio adjustment unit 26 First Gear 27 Second Gear 30 input units 31 Drive shaft 32 driven wheel 33 Early drive wheels 34 First gear unit 35 First clutch 36 First driving wheel 37 Second gear unit 38 Second clutch 39 Second driving wheel 40 output units 41 Output shaft 42 output wheels 43 Initial driven wheel 44 No. 1 one-way bearing 45 1st gear wheel 46 Second one-way bearing 47 Second transmission wheel
Claims
1. A three-speed transmission mechanism, A drive unit (20), an input unit (30), and an output unit (40), The drive unit (20) comprises an electric motor (21), an output shaft of the electric motor (21) is provided with a drive wheel (22) used to drive the input unit (30); The input unit (30) comprises a drive shaft (31) that can be driven by the drive wheel (22), An initial drive wheel (33) is installed at the middle of the drive shaft (31), and a first variable speed unit (34) and a second variable speed unit (37) are installed on both sides of the initial drive wheel (33), respectively; The first variable speed unit (34) includes a first clutch (35) mounted on the drive shaft (31), and the first clutch (35) includes a first drive wheel (36) mounted on the drive shaft (31) and capable of being selectively driven; the second variable speed unit (37) on the other side includes a second clutch (38) mounted on the drive shaft (31), and the second clutch (38) includes a second drive wheel (39) mounted on the drive shaft (31) and capable of being selectively driven; The output unit (40) has an output shaft (41), which is not coaxial with the drive shaft (31) of the input unit (30) but is parallel to the axis of the drive shaft (31) of the input unit (30), and an initial driven wheel (43) meshing with the initial drive wheel (33) is installed in the middle of the output shaft (41), and a first speed-changing wheel (45) and a second speed-changing wheel (47) are installed on both sides of the initial driven wheel (43), respectively; the first speed change wheel (45) is meshed with the first drive wheel (36), and the second speed change wheel (47) is meshed with the second drive wheel (39); The initial driven wheel (43) is installed on the output shaft (41) via a first one-way bearing (44); The first speed-changing wheel (45) is installed on the output shaft (41) via a second one-way bearing (46), The first one-way bearing (44) and the second one-way bearing (46) are one-way members that prevent driving in the same direction, Furthermore, the rotational speed generated by the gear ratio between the first driving wheel (36) and the first variable speed wheel (45) of the first variable speed unit (34) is higher than the rotational speed generated by the gear ratio between the initial driving wheel (33) and the initial driven wheel (43), and the rotational speed generated by the gear ratio between the second driving wheel (39) and the second speed-changing wheel (47) of the second speed-changing unit (37) is also higher than the rotational speed generated by the gear ratio between the initial driving wheel (33) and the initial driven wheel (43); In the input unit (30), the initial drive wheel (33) is directly attached to the drive shaft (31) of the input unit (30); In the output unit (40), the second speed-changing wheel (47) is directly attached to the output shaft (41), The drive unit (20), the input unit (30), and the output unit (40) are incorporated into a housing (10), and a first end cover (11) and a second end cover (12) that can be selectively attached and detached to both ends of the housing (10) are respectively installed corresponding to the first speed change unit (34) and the second speed change unit (37); A driven wheel (32) driven by the drive wheel (22) is fixed to one end of a drive shaft (31) of the input unit (30), That is, the driven wheel (32), the first speed change unit (34), the initial drive wheel (33), and the second speed change unit (37) are arranged on the drive shaft (31) in this order from one end to the other end, The output shaft of the electric motor (21) of the drive unit (20) is parallel to the drive shaft (31) of the input unit (30), The output shaft of the electric motor (21) protrudes from one end of the armature portion of the electric motor (21), a drive wheel (22) of the drive unit (20) is meshed with and drivable by a driven wheel (32) of the input unit (30) via a gear ratio adjustment unit (25); The gear ratio adjustment unit (25) includes a first gear (26) and a second gear (27) that rotate coaxially and synchronously, the shaft of the gear ratio adjustment unit (25) is not coaxial with any of the output shaft of the electric motor (21), the drive shaft (31) of the input unit (30), and the output shaft (41) of the output unit (40), but is parallel to the output shaft of the electric motor (21), the drive shaft (31) of the input unit (30), and the output shaft (41) of the output unit (40); When the three-speed transmission mechanism is viewed from a direction along the axis of the shaft of the gear ratio adjustment unit (25), the output shaft of the electric motor (21), the drive shaft (31) of the input unit (30), and the output shaft (41) of the output unit (40), the shaft of the gear ratio adjustment unit (25) and the drive shaft (31) of the input unit (30) are arranged on opposite sides of a line connecting the output shaft of the electric motor (21) and the output shaft (41) of the output unit (40), the gear ratio adjustment unit (25) is incorporated into the housing (10) together with the drive unit (20), the input unit (30), and the output unit (40); Furthermore, the second gear (27) is disposed closer to one end than the first gear (26), The first gear (26) is meshable with the drive wheel (22), The second gear (27) is meshable with the driven wheel (32), By changing the gear ratio between the first gear (26) and the second gear (27), the initial rotation speed at which the drive unit (20) drives the input unit (30) can be changed. A three-speed transmission mechanism.
2. 2. The three-speed transmission mechanism according to claim 1, An output wheel (42) is installed on at least one end of the output shaft (41) of the output unit (40), and is used to drive an external driven member. A three-speed transmission mechanism.
3. 2. The three-speed transmission mechanism according to claim 1, The rotational speed produced by the gear ratio between the second driving wheel (39) of the second transmission unit (37) and the second speed-changing wheel (47) of the output unit (40) is higher than the rotational speed produced by the gear ratio between the first driving wheel (36) of the first transmission unit (34) and the first speed-changing wheel (45) of the output unit (40). A three-speed transmission mechanism.
Citation Information
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