Tightening device and tightening apparatus
By incorporating bearing assemblies and optimizing the housing structure within the tightening device, motor vibration is absorbed, thus solving the problem of hand fatigue with electric screwdrivers, improving operational accuracy and comfort, and extending working time.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 砺星工业科技(上海)有限公司
- Filing Date
- 2025-08-08
- Publication Date
- 2026-07-24
AI Technical Summary
During use, the vibration of the motor in an electric screwdriver can cause hand fatigue, affecting operational accuracy and efficiency, and may also lead to occupational hand diseases.
A bearing assembly is installed in the tightening device to allow for a rotatable connection between the power module and the housing. The bearing assembly absorbs vibrations, reducing the transmission of vibrations to the hand. At the same time, the housing structure and the installation method of the sensor assembly are optimized to improve accuracy and comfort.
It effectively alleviates user hand fatigue, improves the accuracy and comfort of the tightening device, extends continuous working time, and reduces the impact of hand tremors on operation.
Smart Images

Figure CN224544426U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of tightening equipment technology, specifically to a tightening device and tightening equipment. Background Technology
[0002] In modern industrial production, tightening equipment, including electric screwdrivers, has become an indispensable core piece of equipment in assembly lines, electronics manufacturing, and equipment maintenance, thanks to its efficient and precise fastening tools, adjustable torque output, and intelligent control functions. Through a sophisticated torque adjustment mechanism and closed-loop control system, it can precisely tighten and loosen screws, significantly improving assembly quality and work efficiency.
[0003] Electric screwdrivers tighten screws using a built-in motor and mechanical transmission system. When the power is turned on, the motor starts rotating, driving the reduction gear to convert the high speed into a speed and torque suitable for screw operation. The reduced power is then transmitted to the output head, causing the installed screw output head to rotate.
[0004] However, in actual operation, workers holding electric screwdrivers are prone to hand fatigue. How to reduce worker fatigue has become a key issue that urgently needs to be addressed in the field of tool development and occupational safety. Utility Model Content
[0005] This application provides a tightening device and a tightening equipment in several embodiments, which aim to solve the problem that motor vibration can easily cause hand fatigue in users.
[0006] In a first aspect, embodiments of this application provide a tightening device, which includes a housing, a power module, an output head, and a bearing assembly. The power module is disposed within the housing and includes a motor and a reducer connected together. The power module also includes a module housing. The motor shaft is poweredly connected to the input shaft of the reducer. The output head is at least partially disposed within the housing and connected to the output shaft of the reducer. The motor is used to drive the output head to rotate through the reducer. The bearing assembly is disposed within the housing and between the module housing and the housing, such that the power module is rotatably connected to the housing.
[0007] In this embodiment, the tightening device includes a housing, a power module, an output head, and a bearing assembly. The power module is housed within the housing and includes a motor and a reducer connected together. The power module also includes a module housing, and the motor shaft is connected to the input shaft of the reducer. The output head is at least partially housed within the housing and connected to the output shaft of the reducer. The motor drives the output head to rotate via the reducer. The bearing assembly is housed within the housing and positioned between the power module and the housing, allowing the module housing to be rotatably connected to the housing. Thus, by connecting the housing of the power module and the housing held by the user through the bearing assembly, the vibration experienced by the user's hand from the power module is reduced, alleviating hand fatigue. Simultaneously, during the rotation of the output head driven by the motor and reducer, the impact of hand tremors on the accuracy of the tightening device is reduced, improving the overall precision of the tightening device.
[0008] Optionally, the module housing includes a first housing and a second housing, the first housing being the outer shell of the motor, and the second housing being the outer shell of the reducer, the first housing and the second housing being connected together.
[0009] Thus, the first housing and the second housing can be used to protect the motor assembly and the reducer gear assembly, respectively, allowing for relatively flexible configuration of the motor and reducer, and enabling power connection via the motor shaft.
[0010] Optionally, the bearing assembly includes a first bearing and a second bearing, the first bearing being disposed between the first housing and the outer casing, and the second bearing being disposed between the second housing and the outer casing, wherein the first bearing is located at the end of the motor closer to the reducer, and the second bearing is located at the end of the reducer farther from the motor.
[0011] In this way, the two bearings absorb the vibrations generated by the power module, which greatly reduces the vibrations transmitted to the housing, thereby improving operating comfort and extending continuous operation time.
[0012] Optionally, the first housing includes a first connecting segment and a second connecting segment extending toward the reducer, the first connecting segment and the second connecting segment being coaxially stepped transition connection, wherein the outer diameter of the first connecting segment is smaller than the outer diameter of the second connecting segment, and an axial stepped surface is formed at the connection between the first connecting segment and the second connecting segment.
[0013] The second housing is fitted onto the first connecting section, and a groove for limiting the first bearing is formed between the second housing and the axial stepped surface.
[0014] In this way, a groove is formed by the axial stepped surface of the first housing and the axial section at one end of the second housing, so as to achieve precise positioning of the first bearing during installation.
[0015] Optionally, the bearing assembly further includes a third bearing disposed between the first housing and the outer casing, and located at the end of the motor away from the reducer. The third bearing cooperates with the first bearing to jointly support the motor.
[0016] In this way, more bearings can further disperse and absorb the vibration generated by the power module, which greatly reduces the vibration energy transmitted to the user's hand, thereby improving operating comfort and extending continuous working time.
[0017] Optionally, the housing includes a first segment, a second segment, and a third segment connected sequentially along the axial direction. The outer diameters of the first segment, the second segment, and the third segment are all equal, and the inner diameter of the second segment is smaller than the inner diameters of the first segment and the third segment, forming a radial stepped structure. The third bearing is installed in the third segment, and the first bearing and the second bearing are both installed in the first segment.
[0018] In this way, the consistency of the outer shell appearance is maintained, making it easier to hold, while the change in inner diameter enables the partitioning and positioning of the bearings, optimizing the internal space and making the structure more compact and reasonable.
[0019] Optionally, the tightening device further includes a sensor assembly disposed within the housing and used to detect the torque at the output end of the output head.
[0020] In this way, by directly embedding the sensor components inside the housing, the sensor components are effectively protected from the influence of the external environment, while the accurate acquisition and real-time feedback of torque data are achieved, enabling operators to precisely control the force.
[0021] Optionally, the housing further includes a mounting space in which the sensor assembly is disposed, and the size of the mounting space is larger than the size of the sensor assembly in the axial direction of the motor, such that the sensor assembly is slidably accommodated within the mounting space.
[0022] In this way, the sensor assembly has a degree of freedom in the axial direction, which prevents the tightening device from squeezing the sensor assembly during use. This avoids the influence of the component force generated by the weight of the sensor assembly itself and the gravity of the power module on the torque, thus ensuring the detection accuracy of the sensor assembly.
[0023] Optionally, the mounting space is located at the end of the reducer away from the motor, and the sensor assembly is axially slidably mounted on the output head, the output head being disposed axially through the central through hole of the sensor assembly, and at least partially extending from the housing.
[0024] Thus, positioning the sensor assembly at the front of the tightening device improves the accuracy of the output torque collected by the sensor assembly and increases space utilization. Simultaneously, the sensor assembly can move freely axially within the installation space, still allowing torque detection of the output head during this process. This avoids the influence of the sensor assembly's own weight and the component force generated by the gravity of the power module on the torque, ensuring the accuracy of the sensor assembly's detection.
[0025] Optionally, the installation space is located at the end of the motor away from the reducer, and the sensor assembly is axially slidably mounted on the motor shaft.
[0026] Thus, the sensor assembly is positioned at the rear of the tightening device. Connected to the motor shaft to detect its torque, this rear-mounted position allows for closer proximity to the control circuit board and avoids the wiring harness passing through the motor, preventing the magnetic field generated by the motor from affecting the wiring harness and consequently the sensor's signal. This rear-positioning of the sensor assembly also allows for a shorter front section of the tightening device, resulting in better space utilization and a more compact structure.
[0027] Optionally, the tightening device further includes a control circuit board and a wiring harness, the control circuit board being disposed on the side of the sensor assembly away from the motor, and the control circuit board being connected to the sensor assembly via the wiring harness.
[0028] In this way, the appropriate torque output from the motor can be precisely controlled.
[0029] Secondly, embodiments of this application provide a tightening device, which includes the tightening apparatus described in any of the above claims.
[0030] This application provides a tightening device and a tightening apparatus. The tightening device includes a housing, a power module, an output head, and a bearing assembly. The power module is disposed within the housing and includes a motor and a reducer connected together. The motor includes a first housing, and the reducer includes a second housing. The first and second housings are connected together, and the motor shaft is poweredly connected to the input shaft of the reducer. The output head is at least partially disposed within the housing and connected to the output shaft of the reducer. The motor drives the output head to rotate via the reducer. The bearing assembly is disposed within the housing and between the power module and the housing, allowing the power module to be rotatably connected to the housing. Thus, by connecting the housing of the power module and the housing held by the user through the bearing assembly, the vibration experienced by the user's hand from the power module is reduced, alleviating hand fatigue. Simultaneously, during the rotation of the output head driven by the motor and reducer, the impact of user hand tremors on the accuracy of the tightening device is reduced, improving the accuracy of the tightening device. Attached Figure Description
[0031] Figure 1This is a cross-sectional structural diagram of a tightening device provided for one embodiment of this specification.
[0032] Figure 2 This is a schematic diagram of a tightening device provided for one embodiment of this specification.
[0033] Figure 3 This is another cross-sectional structural schematic diagram of the tightening device provided in one embodiment of this specification.
[0034] Figure 4 Another structural schematic diagram of a tightening device provided for one embodiment of this specification.
[0035] Figure 5 Another cross-sectional structural schematic diagram of the tightening device provided in one embodiment of this specification.
[0036] Figure 6 This is another cross-sectional structural schematic diagram of the tightening device provided in one embodiment of this specification.
[0037] Figure 7 This is another cross-sectional structural schematic diagram of the tightening device provided in one embodiment of this specification.
[0038] Figure 8 This is a schematic diagram of a tightening device provided for one embodiment of this specification.
[0039] Explanation of reference numerals in the attached figures
[0040] 100. Tightening device; 10. Housing; 11. First section; 12. Second section; 13. Third section; 14. Installation space; 20. Power module; 21. Motor; 211. First housing; 212. Motor shaft; 213. First connecting section; 214. Second connecting section; 22. Reducer; 221. Second housing; 222. Input shaft; 223. Output shaft; 23. Module housing; 30. Output head; 40. Bearing assembly; 41. First bearing; 42. Second bearing; 43. Third bearing; 50. Slot; 51. Axial stepped surface; 60. Sensor assembly; 70. Control circuit board; 80. Wiring harness; 200. Tightening equipment. Detailed Implementation
[0041] The technical solutions in the embodiments of this specification will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.
[0042] In this specification, the accompanying drawings are not necessarily drawn to scale, and local features may be enlarged or reduced to show the details of the local features more clearly.
[0043] Unless otherwise stated, all technical and scientific terms used in this specification have the same meaning as commonly understood by one of ordinary skill in the art. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of this specification. The term "and / or" as used in this specification includes any and all combinations of one or more of the associated listed items. The singular forms "a," "the," and "the" as used in this specification and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise.
[0044] In the description of this specification, it should be understood that the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the stated features. In the description of this specification, "a plurality of" means two or more, unless otherwise explicitly specified.
[0045] In the description of this specification, the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "height," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the purpose of simplifying the description in this specification and do not indicate that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. In other words, they should not be construed as limitations on this application.
[0046] In the description of this specification, unless otherwise expressly defined, the terms "installation," "connection," "joining," "fixing," "setting," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral part; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can also refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this specification according to the specific circumstances.
[0047] Currently, tightening devices, including electric screwdrivers, are considered efficient and precise fastening tools. When using an electric screwdriver, the operator manually holds it and aligns it with the corresponding position. The motor and reducer work together to install screws and bolts, significantly improving assembly quality and work efficiency. However, during actual operation, the relative rotation of the stator and rotor inside the motor generates regular vibrations. The mechanical vibrations generated by the high-speed rotation of the motor are transmitted outward through the housing structure, eventually reaching the operator's hand. This continuous vibration stimulation causes the operator's hand muscles to be in a state of tension for extended periods, accelerating muscle fatigue and potentially leading to local circulatory problems. As working time increases, this cumulative physiological load further reduces the operator's work accuracy and efficiency, and may even induce occupational hand diseases, posing a potential threat to the operator's occupational health. Therefore, how to effectively suppress the vibration transmission of electric screwdrivers and improve ergonomic design has become a critical issue that urgently needs to be addressed in tool development and occupational safety.
[0048] Please see Figures 1 to 4 One embodiment of this application provides a tightening device 100, which includes a housing 10, a power module 20, an output head 30, and a bearing assembly 40. The power module 20 is disposed within the housing 10 and includes a motor 21 and a reducer 22 that are powered together. The power module 20 also includes a module housing 23. The motor shaft 212 of the motor 21 is poweredly connected to the input shaft 222 of the reducer 22. The output head 30 is at least partially disposed within the housing 10 and connected to the output shaft 223 of the reducer 22. The motor 21 is used to drive the output head 30 to rotate through the reducer 22. The bearing assembly 40 is disposed within the housing 10 and between the power module 20 and the housing 10, such that the module housing 23 is rotatably connected to the housing 10.
[0049] In this embodiment, the bearing assembly 40 is disposed between the power module 20 and the housing 10, allowing the housing 10 to float on the power module 20. The bearing assembly 40 can withstand circumferential forces, and the motor 21 and reducer 22 will not affect the housing 10 during rotation. Specifically, the inner and outer rings of the bearing assembly 40 can rotate relative to each other. When the power module 20 vibrates, it generates a circumferential force. The bearing assembly 40 can dissipate this circumferential force through rotation, thereby creating a buffer between the power module 20 and the housing 10, reducing the vibration frequency and amplitude when the user holds the housing 10. Thus, by connecting the housing of the power module 20 and the housing 10 held by the user through the bearing assembly 40, the vibration experienced by the hand from the power module 20 is reduced, alleviating hand fatigue. Simultaneously, during the rotation of the output head 30 driven by the motor 21 and reducer 22, the impact of the user's hand tremors on the accuracy of the tightening device 100 is reduced, improving the accuracy of the tightening device 100.
[0050] Specifically, motor 21 converts electrical energy into mechanical energy, and reducer 22 reduces the rotational speed of motor shaft 212 and increases torque. Output head 30 connects to reducer 22, and the output shaft 223 of reducer 22 can precisely mate with screw slots through the special geometry (such as Phillips head, slotted head, hexagonal head, etc.) at the front end of output head 30 to ensure no slippage during power transmission. Bearing assembly 40 provides rotatable and elastic support for housing 10. When the operator uses tightening device 100 for screw assembly, they need to hold the housing 10 of the device continuously. During the operation of power module 20, to prevent mechanical vibrations generated by high-speed rotation of motor 21 and gear meshing from being transmitted to housing 10 through a rigid connection structure, bearing assembly 40 is provided between power module 20 and housing 10 in this embodiment. As an intermediate medium for power transmission, bearing assembly 40 ensures a reliable rotational connection between power module 20 and housing 10, and effectively blocks and absorbs most of the high-frequency vibration energy through its internal precision rolling elements and elastic support structure. Secondly, the optimized vibration transmission path significantly improves the human-computer interaction experience, resulting in a significant reduction in the amplitude of hand tremors, especially during long-term continuous work, which can greatly reduce hand fatigue.
[0051] Optionally, the module housing 23 includes a first housing 211 and a second housing 221. The first housing 211 is the housing of the motor 21, and the second housing 221 is the housing of the reducer 22. The first housing 211 and the second housing 221 are connected together.
[0052] Thus, the first housing 211 and the second housing 221 can be used to protect the motor 21 group and the gear group of the reducer 22, respectively. This allows for relatively flexible arrangement of the motor 21 and the reducer 22, and enables power connection through the motor shaft 212.
[0053] In this embodiment, the outer shell 10 of the tightening device 100 encloses the power module 20 and the bearing assembly 40, placing the power module 20 and the bearing assembly 40 in a relatively enclosed environment. This increases the operational stability of the power module 20 and the bearing assembly 40, ensuring their performance. Similarly, the power module 20 also includes a motor 21 and a reducer 22. The module housing 23 includes a first housing 211 and a second housing 221. The first housing 211 is the outer shell 10 of the motor 21, and the second housing 221 is the outer shell 10 of the reducer 22. The first housing 211 and the second housing 221 are connected together, placing the main parts of the motor 21 and the reducer 22 in a relatively enclosed environment, forming a relatively sealed transmission cavity. This ensures the reliability of power transmission and effectively isolates external dust and impurities from entering, thus guaranteeing the performance of the power module 20.
[0054] In one embodiment, the first housing 211 and the second housing 221 can be integrally formed, that is, the motor 21 and the reducer 22 are integrated together to form a power module 20. In another embodiment, the first housing 211 and the second housing 221 can be separate structures, that is, the motor 21 and the reducer 22 are independent structures, and the motor 21 and reducer 22 that meet the requirements can be directly purchased and combined to form the power module 20 of this application embodiment.
[0055] Specifically, the motor 21, reducer 22, and output head 30 are connected in sequence, allowing the power generated by the motor 21 to be transmitted sequentially to the reducer 22 and output head 30. Specifically, the motor shaft 212 of the motor 21 is powered by the input shaft 222 of the reducer 22, enabling the power generated by the motor 21 to be transmitted to the input shaft 222 of the reducer 22, thus rotating the reducer 22 and transmitting power to its output shaft 223. Simultaneously, the output head 30 is at least partially housed within the housing 10 and connected to the output shaft 223 of the reducer 22, allowing the power of the reducer 22's rotation to be transmitted to the output head 30 via the output shaft 223. Thus, the motor 21 can drive the output head 30 to rotate via the reducer 22. A screwdriver bit can then be mounted on the output head 30, enabling efficient tightening and loosening of screws.
[0056] Furthermore, when the user uses the tightening device 100 to tighten and loosen screws, they need to hold the housing 10 of the tightening device 100. At this time, the power module 20 of the tightening device 100 will vibrate during operation and transmit this vibration to the housing 10. In this embodiment, a bearing assembly 40 is disposed between the power module 20 and the housing 10, allowing the power module 20 to be rotatably connected to the housing 10. This allows the bearing assembly 40 to absorb some of the vibration generated by the power module 20. This reduces the vibration transmitted from the power module 20 to the housing 10, thus reducing hand fatigue, improving operational comfort, and extending continuous working time when the user is using the tightening device 100 to tighten and loosen screws.
[0057] Please see Figure 3 and Figure 4 In some embodiments, the bearing assembly 40 includes a first bearing 41 and a second bearing 42, the first bearing 41 being disposed between the first housing 211 and the outer housing 10, and the second bearing 42 being disposed between the second housing 221 and the outer housing 10, wherein the first bearing 41 is located at the end of the motor 21 near the reducer 22, and the second bearing 42 is located at the end of the reducer 22 away from the motor 21.
[0058] In this way, the inner and outer rings of the first bearing 41 and the second bearing 42 can rotate relative to each other, thereby eliminating the circumferential force. The two bearings disperse and absorb the vibration generated by the power module 20, which greatly reduces the vibration transmitted to the housing 10, thereby improving operating comfort and extending the continuous operation time.
[0059] In this embodiment, the first bearing 41 is disposed outside the first housing 211 of the motor 21, near the reducer 22, and the second bearing 42 is disposed outside the second housing 221 of the reducer 22, away from the motor 21. That is, the first bearing 41, located outside the first housing 211 on the side of the motor shaft 212, primarily filters and absorbs the vibration generated by the rotation of the motor 21, while the second bearing 42, located outside the second housing 221 on the side of the reducer 22's output end, focuses on absorbing the vibration generated by the gear transmission of the reducer 22. Thus, the first bearing 41 and the second bearing 42 can work together to dampen and disperse the vibration generated by the power module 20, significantly reducing the vibration transmitted to the housing 10, thereby improving operational comfort and extending continuous operation time.
[0060] In this embodiment, the specific positions and dimensions of the first bearing 41 and the second bearing 42 are not limited to meet various requirements. For example, the first bearing 41 can be located at the end of the motor 21 away from the reducer 22, and the second bearing 42 can be located at the end of the reducer 22 closer to the motor 21.
[0061] Please see Figure 3 and Figure 5 In some embodiments, the first housing 211 includes a first connecting segment 213 and a second connecting segment 214 extending toward the reducer 22. The first connecting segment 213 and the second connecting segment 214 are coaxially stepped transitionally connected, wherein the outer diameter of the first connecting segment 213 is smaller than the outer diameter of the second connecting segment 214, and an axial stepped surface 51 is formed at the connection between the first connecting segment 213 and the second connecting segment 214. The second housing 221 is sleeved on the first connecting segment 213, and a groove 50 for limiting the first bearing 41 is formed between the second housing 221 and the axial stepped surface 51.
[0062] Thus, a groove 50 is formed by the axial stepped surface 51 of the first housing 211 and the axial section of one end of the second housing 221, so as to achieve precise positioning of the first bearing 41 during installation.
[0063] In this embodiment, the first connecting section 213 of the first housing 211 is closer to the reducer 22 than the second connecting section 214, and the first connecting section 213 and the second connecting section 214 are arranged in a step-like manner from low to high. That is, the first connecting section 213 and the second connecting section 214 are connected in a coaxial stepped transition from low to high. In this way, when the first housing 211 and the second housing 221 are installed together, the first connecting section 213, which has a smaller outer diameter, can extend at least partially into the second housing 221, so that the outer wall of the first connecting section 213 is in close contact with the inner wall of the second housing 221, forming a relatively sealed environment inside the first housing 211 and the second housing 221, ensuring the working stability of the power module 20. In addition, the motor shaft 212 of the motor 21, the input shaft 222 of the reducer 22, and the coupling connecting the two shafts can be located at the first connecting section 213 to ensure the stability of the transmission.
[0064] Furthermore, at least a portion of the first connecting segment 213 extends into the second housing 221, with the exposed portion of the first connecting segment 213 providing a mounting platform for the first bearing 41. Additionally, the second connecting segment 214, with its larger outer diameter, and the first connecting segment 213, with its smaller outer diameter, form a stepped surface 51 at their connection. This stepped surface 51 corresponds to the axial section of the second housing 221 facing the first housing 211, and together with the exposed portion of the first connecting segment 213, they form a groove 50 for positioning the first bearing 41. This allows the first bearing 41 to be installed into the exposed portion of the first connecting segment 213, limiting its position to between the stepped surface 51 and the axial section of the second housing 221, ensuring the installation accuracy of the first bearing 41.
[0065] Please see Figure 3 , Figure 4 and Figure 6 as well as Figure 7 In some embodiments, the bearing assembly 40 further includes a third bearing 43, which is disposed between the first housing 211 and the outer housing 10 and located at the end of the motor 21 away from the reducer 22. The third bearing 43 cooperates with the first bearing 41 to jointly support the motor 21.
[0066] In this way, more bearings can further disperse and absorb the vibration generated by the power module 20, which greatly reduces the vibration energy transmitted to the user's hand, thereby improving operating comfort and extending continuous working time.
[0067] In this embodiment, the third bearing 43 is located at the end of the motor 21 housing away from the reducer 22, and cooperates with the first bearing 41 to further disperse and absorb the vibration generated by the motor 21 during operation in the power module 20. At the same time, the cooperation of the three bearings can further disperse and absorb the vibration generated by the power module 20 during operation, so that the vibration energy transmitted to the user's hand is greatly reduced, thereby improving operating comfort and extending continuous working time.
[0068] Understandably, to ensure the output power of the motor 21, the motor 21 in this embodiment is often relatively long. Therefore, the third bearing 43 cooperates with the first bearing 41, and the two bearings support the motor 21 inside the housing 10 on both sides, allowing the motor 21 to rotate stably within the housing 10. Simultaneously, the three bearings are respectively positioned on both sides and in the middle of the power module 20, jointly supporting the power module 20 inside the housing 10, enabling the power module 20 to operate stably within the housing 10.
[0069] Please see Figure 6 and Figure 7 In some embodiments, the housing 10 includes a first segment 11, a second segment 12, and a third segment 13 connected together axially. The outer diameters of the first segment 11, the second segment 12, and the third segment 13 are all equal, and the inner diameter of the second segment 12 is smaller than the inner diameters of the first segment 11 and the third segment 13, forming a radial stepped structure. The third bearing 43 is installed in the third segment 13, and the first bearing 41 and the second bearing 42 are both installed in the first segment 11.
[0070] In this way, the appearance of the outer shell 10 is kept consistent, making it easier to hold. At the same time, the bearing is partitioned and positioned by changing the inner diameter, which optimizes the internal space and makes the structure more compact and reasonable.
[0071] In this embodiment, the housing 10 adopts a three-section coaxial design with equal outer diameters, forming a radial stepped structure through changes in inner diameter. Specifically, the first section 11 and the third section 13 of the housing 10 have larger inner diameters, providing ample space within the housing 10 for bearing installation. The second section 12 has a smaller inner diameter, forming a radial limit within the housing 10 to separate the first section 11 and the second section 12. The larger inner diameter of the third section 13 provides space for the installation of the third bearing 43, which is installed separately within the third section 13. The larger inner diameter of the first section 11 provides space for the installation of the first bearing 41 and the second bearing 42, both of which are installed within the first section 11. This design maintains the uniform and regular shape of the housing 10 while utilizing the stepped internal structure to achieve precise positioning and rational layout of the bearings. This ensures the installation accuracy and load-bearing capacity of each bearing, optimizes the internal space allocation, and makes the overall structure more compact.
[0072] Please see Figures 3 to 7 In some embodiments, the tightening device 100 further includes a sensor assembly 60 disposed within the housing 10 and used to detect the torque at the output end of the output head 30.
[0073] In this way, by directly embedding the sensor assembly 60 inside the housing 10, the sensor assembly 60 is effectively protected from the influence of the external environment, and the accurate acquisition and real-time feedback of torque data are achieved, enabling the operator to precisely control the force.
[0074] In this embodiment, when the tightening device 100 is working, the motor 21 rotates and transmits power sequentially to the reducer 22 and the output head 30. The reducer 22 reduces the transmission speed and increases the rotational torque through its internal transmission component. Simultaneously, a screwdriver head is installed on the output head 30 for tightening or loosening screws. In actual operation, different screws may require different installation torques. Therefore, by incorporating a sensor assembly 60 into the tightening device 100, the torque at the output end of the output head 30 can be detected, allowing the tightening assembly to provide more precise torque for the screws that need tightening or loosening during actual operation. By directly integrating the sensor assembly 60 inside the housing 10, the precision sensing element is effectively protected from external environmental influences, while also achieving accurate torque data acquisition and real-time feedback, enabling operators to precisely control the tightening force.
[0075] Please see Figure 6 and Figure 7 In some embodiments, the housing 10 further includes a mounting space 14, in which the sensor assembly 60 is disposed, and in the axial direction of the motor 21, the size of the mounting space 14 is larger than the size of the sensor assembly 60, such that the sensor assembly 60 is slidably accommodated within the mounting space 14.
[0076] Thus, the sensor assembly 60 has a degree of freedom in the axial direction, so that the tightening device 100 will not squeeze the sensor assembly 60 during use, and avoid the influence of the torque caused by the weight of the sensor assembly 60 itself and the component force generated by the gravity of the power module 20, so as to ensure the detection accuracy of the sensor assembly 60.
[0077] In this embodiment, the axial dimension (i.e., the direction of the motor 21 spindle) of the mounting space 14 is precisely designed to allow for a suitable margin compared to the external dimensions of the sensor assembly 60, forming a small, adjustable gap. This carefully designed dimensional fit allows the sensor assembly 60 to achieve a small but precise sliding displacement in the axial direction. In this embodiment, the axial dimension of the mounting space 14 is not limited to be larger than that of the sensor assembly 60, to meet different needs. In one embodiment, the mounting space 14 forms an adjustable gap of 0.5-2 mm compared to the external dimensions of the sensor assembly 60. For example, the adjustable gap between the mounting space 14 and the external dimensions of the sensor assembly 60 can be 0.5 mm, 1 mm, 1.5 mm, or 2 mm.
[0078] This provides the sensor assembly 60 with axial freedom, ensuring that it is not subjected to rigid compression from the housing 10 during the operation of the tightening device 100. Secondly, it effectively isolates the axial component of the sensor assembly 60's own weight and the gravity of the power module 20, avoiding interference from these external forces on the torque measurement accuracy. Furthermore, this floating mounting method can compensate for minor dimensional errors during manufacturing and assembly, ensuring that the sensor assembly 60 is always in optimal working condition.
[0079] Please see Figure 4 and Figure 6 In some embodiments, the mounting space 14 is located at the end of the reducer 22 away from the motor 21, and the sensor assembly 60 is axially slidably mounted on the output head 30, the output head 30 being disposed axially through the central through hole of the sensor assembly 60, and at least partially extending from the housing 10.
[0080] Thus, by positioning the sensor assembly 60 at the front of the tightening device 100, the torque accuracy of the output head 30 acquired by the sensor assembly 60 can be improved, and space utilization can be increased. Simultaneously, the sensor assembly 60 can move freely axially within the installation space 14, and torque detection of the output head 30 can still be performed during this process. This avoids the influence of the weight of the sensor assembly 60 itself and the component force generated by the gravity of the power module 20 on the torque, thereby ensuring the detection accuracy of the sensor assembly 60.
[0081] In this embodiment, the sensor assembly 60 is positioned at the end of the reducer 22 furthest from the motor 21. The output head 30 is axially inserted through the central through-hole of the sensor assembly 60, allowing the sensor assembly 60 to be axially slidably mounted on the output head 30, achieving a compact layout and saving installation space 14. Furthermore, the axial slidability of the sensor assembly 60 on the output head 30 allows the output head 30 to directly feed back the actual output torque to the sensor assembly 60. Since the torque is directly acquired through the output head 30 without transmission loss, the torque acquired by the sensor assembly 60 is more accurate. Simultaneously, the axial sliding of the sensor assembly 60 relative to the output head 30 can compensate for assembly errors; or, when the tightening device 100 is operating, it can compensate for displacement caused by vibration, reducing the impact of vibration on the sensor assembly 60. The mounting space 14 provides axial freedom for the sensor assembly 60, ensuring that the sensor assembly 60 is not subjected to rigid compression from the housing 10 during the operation of the tightening device 100. Secondly, it effectively isolates the axial component of the sensor assembly 60's own weight and the gravity of the power module 20, avoiding interference from these external forces on torque measurement accuracy. Furthermore, this floating mounting method can compensate for minor dimensional errors during manufacturing and assembly, ensuring that the sensor assembly 60 is always in optimal working condition. Additionally, at least partially, the output head 30 extends from the housing 10, facilitating quick installation or replacement of screwdriver bits and improving work efficiency.
[0082] Please see Figure 3 and Figure 7 In some embodiments, the mounting space 14 is located at the end of the motor 21 away from the reducer 22, and the sensor assembly 60 is axially slidably mounted on the motor shaft 212 of the motor 21.
[0083] Thus, the sensor assembly 60 is positioned at the rear of the tightening device 100. The sensor assembly 60 is connected to the motor shaft 212 to detect the torque of the motor shaft 212. Positioning the sensor assembly 60 at the rear allows it to be closer to the control circuit board 70, and also prevents the wiring harness 80 from passing through the motor 21, thus avoiding the magnetic field generated by the motor 21 affecting the wiring harness 80 and consequently the signal of the sensor assembly 60. This rear-positioning of the sensor assembly 60 also allows for a shorter front section of the tightening device 100, resulting in higher space utilization and a more compact structure.
[0084] In this embodiment, the sensor assembly 60 is axially slidably mounted on the motor shaft 212 of the motor 21, achieving a compact layout and saving installation space 14. Simultaneously, this allows the motor shaft 212 to directly feed back the actual torque of the motor shaft 212 to the sensor assembly 60, improving the torque accuracy acquired by the sensor assembly 60. The installation space 14 provides the sensor assembly 60 with axial freedom, ensuring that the sensor assembly 60 is not subjected to rigid compression from the housing 10 during the operation of the tightening device 100; secondly, it effectively isolates the influence of the axial component of the sensor assembly 60's own weight and the gravity of the power module 20, avoiding interference from these external forces on the torque measurement accuracy. Furthermore, this floating mounting method can compensate for minor dimensional errors generated during manufacturing and assembly, ensuring that the sensor assembly 60 is always in optimal working condition. Additionally, since the sensor assembly 60 can slide axially relative to the motor shaft 212, assembly errors can be compensated, reducing the impact of vibration on the sensor assembly 60.
[0085] In some embodiments, in order to achieve a more compact tightening device 100, the sensor assembly 60 can be positioned rearward, the front section of the tightening device 100 can be shortened, and one of the first bearing 41 and the third bearing 43 can be removed to further shorten the tightening device 100.
[0086] Please see Figure 6 and Figure 7 In some embodiments, the tightening device 100 further includes a control circuit board 70 and a wiring harness 80. The control circuit board 70 is disposed on the side of the sensor assembly 60 away from the motor 21, and the control circuit board 70 is connected to the sensor assembly 60 via the wiring harness 80.
[0087] In this way, the appropriate torque output of motor 21 can be precisely controlled.
[0088] In this embodiment, the tightening device 100 further includes a control circuit board 70 and a wiring harness 80. The control circuit board 70 is connected to the sensor assembly 60 via the wiring harness 80. The wiring harness 80 can transmit the torque data collected by the sensor assembly 60 to the control circuit. The control circuit board 70 then processes the torque data collected by the sensor assembly 60 in real time and outputs control commands to adjust the output power of the motor 21 in real time, thereby adjusting the output torque of the tightening device 100.
[0089] Furthermore, the control circuit board 70 is positioned on the side of the sensor assembly 60 away from the motor 21, which effectively suppresses electromagnetic interference and vibration interference from the motor 21 during operation. Simultaneously, it shortens the signal transmission path from the sensor assembly 60 to the control circuit board 70, significantly improving the system's anti-interference capability and response speed.
[0090] In some embodiments, the first housing 211 and the second housing 221 are integrally formed. This eliminates the assembly gaps of traditional split structures, significantly improving the overall structural strength and sealing performance.
[0091] In this embodiment, the first housing 211 and the second housing 221 can be integrally manufactured by casting or injection molding processes to form a seamless, integrated structure. This eliminates the assembly gaps inherent in traditional split structures, significantly improving overall structural strength and sealing performance, optimizing force transmission paths, reducing the number of parts, and lowering assembly complexity.
[0092] Please see Figure 8 This application also provides a tightening device 200, which includes the tightening device 100 described above.
[0093] In this application embodiment, the type of tightening device 200 is not limited to meet various needs. In this embodiment, the tightening device 100 can be an electric screwdriver, while the tightening device 200 can be a machine tool or operating platform equipped with the tightening device 100 of this application embodiment. The tightening device 200 can have all the technical features and effects of the tightening device 100 described above, resulting in less vibration during operation, better operational stability and service life, and improved user experience.
[0094] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.
[0095] The functions and effects of this embodiment can be explained by referring to the foregoing implementation methods, and will not be repeated here.
[0096] It is understood that in the various embodiments of this specification, the sequence number of each process does not imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this specification.
[0097] It is understood that the various implementation methods described in this specification can be implemented individually or in combination, and the embodiments in this specification are not limited in this respect.
[0098] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the specific working processes of the systems, devices, and units described above can be referred to the corresponding processes in the aforementioned method implementations, and will not be repeated here.
[0099] The above are merely specific embodiments of this specification, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this specification should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
Claims
1. A tightening device, characterized in that, include: shell; The power module housed within the housing includes a motor and a reducer that are powered together. The power module also includes a module housing. The motor shaft of the motor is poweredly connected to the input shaft of the reducer. An output head, which is at least partially disposed within the housing and connected to the output shaft of the reducer, is provided by a motor for driving the output head to rotate via the reducer. A bearing assembly is disposed within the housing, between the module housing and the housing, such that the power module is rotatably connected to the housing.
2. The tightening device according to claim 1, characterized in that, The module housing includes a first housing and a second housing. The first housing is the outer shell of the motor, and the second housing is the outer shell of the reducer. The first housing and the second housing are connected together.
3. The tightening device according to claim 2, characterized in that, The bearing assembly includes a first bearing and a second bearing. The first bearing is disposed between the first housing and the outer housing, and the second bearing is disposed between the second housing and the outer housing. The first bearing is located at the end of the motor closer to the reducer, and the second bearing is located at the end of the reducer away from the motor.
4. The tightening device according to claim 3, characterized in that, The first housing includes a first connecting section and a second connecting section extending toward the reducer. The first connecting section and the second connecting section are coaxially stepped transitionally connected. The outer diameter of the first connecting section is smaller than the outer diameter of the second connecting section. An axial stepped surface is formed at the connection between the first connecting section and the second connecting section. The second housing is fitted onto the first connecting section, and a groove for limiting the first bearing is formed between the second housing and the axial stepped surface.
5. The tightening device according to claim 3, characterized in that, The bearing assembly further includes a third bearing, which is disposed between the first housing and the outer housing, and located at the end of the motor away from the reducer. The third bearing cooperates with the first bearing to support the motor.
6. The tightening device according to claim 5, characterized in that, The outer shell includes a first section, a second section, and a third section connected together in sequence along the axial direction. The outer diameters of the first section, the second section, and the third section are all equal, and the inner diameter of the second section is smaller than the inner diameters of the first section and the third section, forming a radial stepped structure. The third bearing is installed in the third section, and the first bearing and the second bearing are both installed in the first section.
7. The tightening device according to claim 1, characterized in that, The tightening device also includes a sensor assembly disposed within the housing and used to detect the torque at the output end of the output head.
8. The tightening device according to claim 7, characterized in that, The housing also includes an installation space, in which the sensor assembly is disposed, and in the axial direction of the motor, the size of the installation space is larger than the size of the sensor assembly, such that the sensor assembly is slidably accommodated within the installation space.
9. The tightening device according to claim 8, characterized in that, The mounting space is located at the end of the reducer away from the motor, and the sensor assembly is axially slidably mounted on the output head, the output head being disposed axially through the central through hole of the sensor assembly, and at least partially extending from the housing.
10. The tightening device according to claim 8, characterized in that, The installation space is located at the end of the motor away from the reducer, and the sensor assembly is axially slidably mounted on the motor shaft.
11. The tightening device according to claim 10, characterized in that, The tightening device also includes a control circuit board and a wiring harness. The control circuit board is located on the side of the sensor assembly away from the motor, and the control circuit board is connected to the sensor assembly via the wiring harness.
12. A tightening device, characterized in that, The tightening device includes any one of claims 1 to 11.