Assembling device for connector
By designing a connector assembly device that integrates cable fixing, fastening seats and crimping seat installation, the problems of low assembly efficiency of M-type connectors and cable torsional breakage are solved, and an efficient and precise assembly process is achieved, and product quality is improved.
Patent Information
- Application Number
- CN202422462493.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-11
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2034-10-11
AI Technical Summary
The assembly process of M-type connectors relies on manual operation, resulting in low installation efficiency and easy twisting and breaking of cables, affecting product quality stability.
An assembly device including a base, a first rotating ring, a second rotating ring and a clamping ring is designed. Through integrated cable fixing, fastening seat and crimping seat installation, the assembly process is simplified, and cable stability and component alignment accuracy are ensured, and to avoid torsional breakage.
It significantly improves the connector assembly efficiency, ensures assembly quality, avoids cable torsional breakage and assembly errors, and improves the overall quality of the product.
Smart Images

Figure CN223261046U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of connectors and provides an assembling device for connectors. Background Art
[0002] The M-type connector for rail train network communication modules consists of a cable, a fastening base, a middle barrel, and a crimping base. The assembly of M-type connectors has always been subject to significant flaws. In related technologies, the assembly process relies on manual labor due to the numerous connector parts, resulting in extremely low installation efficiency. On average, each connector takes half an hour to install, severely impacting production efficiency.
[0003] After the cable core is crimped onto the crimping base, the middle barrel must be connected to the crimping base through the positioning slot and rotated to assemble. The fastening base also needs to rotate while clamping the cable to complete the assembly. This creates torque between the cable and the core on the crimping base, which can cause cable or core breakage, requiring rework, posing potential safety risks, and reducing product quality stability. Utility Model Content
[0004] The embodiment of the present invention provides an assembly device for a connector, which is used to solve the defect in the related art that the cable is easily torsionally broken during the assembly of the connector.
[0005] The present invention provides an assembly device for a connector, comprising:
[0006] A base, wherein the base is provided with a buckle for fixing the cable;
[0007] a first rotating ring, movably connected to the base, the first rotating ring being used to mount a fastening seat of the connector;
[0008] A second rotating ring is connected to the base, and the second rotating ring is used to install a crimping seat of the connector;
[0009] A clamping ring is movably connected to the base and is located between the first rotating ring and the second rotating ring. The clamping ring is used to clamp the middle tube of the connector.
[0010] According to an embodiment of the present invention, a guide shaft is provided on the base along the length direction of the base, and the first rotating ring and the clamping ring are guided and connected to the guide shaft.
[0011] According to an embodiment of the present invention, a first transmission shaft is provided on the base along the length direction of the base, and the first rotating ring is transmission-connected to the first transmission shaft.
[0012] According to an embodiment of the present invention, a second transmission shaft is provided on the base along the length direction of the base, and the clamping ring is connected to the second transmission shaft in a ring-shaped manner.
[0013] According to one embodiment of the present invention, a first optical hole is formed on the first rotating ring, and the second transmission shaft is passed through the first optical hole. A second optical hole is formed on the clamping ring, and the first transmission shaft is passed through the second optical hole.
[0014] According to one embodiment of the present invention, a first rotating shaft is provided on the base along the width direction of the base, and the first rotating ring includes a first fixed part and a first ring body, and the first ring body is transmission-connected to the first rotating shaft so that the first ring body rotates relative to the first fixed part.
[0015] According to one embodiment of the present invention, a second rotating shaft is provided on the base along the width direction of the base, and the clamping ring includes a fixed clamping part and a movable clamping part, and the movable clamping part is transmission-connected to the second rotating shaft so that the movable clamping part moves relative to the fixed clamping part.
[0016] According to one embodiment of the present invention, along the length direction of the base, the side wall of the base is provided with a first slide groove and a second slide groove, the first rotating shaft is passed through the first slide groove, and the second rotating shaft is passed through the second slide groove.
[0017] According to one embodiment of the present invention, a third rotating shaft is provided on the base along the width direction of the base, and the second rotating ring includes a second fixed part and a second ring body, and the second ring body is transmission-connected to the third rotating shaft so that the second ring body rotates relative to the second fixed part.
[0018] According to an embodiment of the present invention, a mounting hole is formed on the side wall of the base, and the third rotating shaft is rotatably mounted in the mounting hole.
[0019] The connector assembly device provided by the present invention integrates multiple functions, including cable securing, connector clamping base installation, crimping base installation, and mid-tube clamping, simplifying the connector assembly process, reducing manual steps and time, and significantly improving assembly efficiency. The cable is secured by a clip on the base, ensuring cable stability during assembly and preventing assembly errors caused by cable movement. Furthermore, the first and second rotating rings, used to mount the clamping base and crimping base, respectively, precisely adjust their positions to ensure accurate alignment between connector components, improving assembly quality. During this process, the cable is prevented from rotating with the clamping base and mid-tube, preventing twisting and breakage of the cable itself. The clamping ring design ensures a secure grip on the mid-tube during assembly, facilitating subsequent operations such as cable insertion and tightening. Furthermore, the movable design of the first and second rotating rings allows the operator to flexibly adjust their positions as needed to ensure accurate docking and installation of the connector clamping base and crimping base, further enhancing ease of operation. Because the design of the device focuses on the precise fit and firm fixation between the various components, it can effectively reduce connector quality problems caused by improper assembly, such as poor contact and looseness, thereby improving the overall quality of the product. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to more clearly illustrate the technical solutions in the present invention or the prior art, a brief introduction will be given below to the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0021] Figure 1 It is a schematic three-dimensional diagram of an assembly device for a connector provided by the present invention at one angle.
[0022] Figure 2 It is a schematic three-dimensional diagram of the assembly device for the connector provided by the present invention from another angle.
[0023] Figure 3 It is a schematic side view of the assembly device for the connector provided by the present invention.
[0024] Figure 4 It is a schematic three-dimensional diagram of the first rotating ring, the clamping ring and the second rotating ring provided by the utility model at one angle.
[0025] Figure 5 It is a schematic three-dimensional diagram of the first rotating ring, the clamping ring and the second rotating ring provided by the utility model from another angle.
[0026] Reference numerals:
[0027] 100. Base; 102. Buckle; 104. First rotating ring; 106. Second rotating ring; 108. Clamping ring; 110. Guide shaft; 112. First transmission shaft; 114. Second transmission shaft; 116. First optical hole; 118. Second optical hole; 120. First rotating axis; 122. First fixing portion; 124. First ring body; 126. Second rotating axis; 128. Fixed clamping portion; 130. Movable clamping portion; 132. First slide groove; 134. Second slide groove; 136. Third rotating axis; 138. Second fixing portion; 140. Second ring body; 142. Mounting hole. DETAILED DESCRIPTION
[0028] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.
[0029] like Figures 1 to 5 As shown, an embodiment of the present invention provides an assembly device for a connector, comprising:
[0030] The base 100 is provided with a buckle 102 for fixing the cable;
[0031] A first rotating ring 104 is movably connected to the base 100 and is used to install a fastening seat of the connector;
[0032] A second rotating ring 106 is connected to the base 100 and is used to install a crimping seat of the connector;
[0033] The clamping ring 108 is movably connected to the base 100 and is located between the first rotating ring 104 and the second rotating ring 106 . The clamping ring 108 is used to clamp the middle tube of the connector.
[0034] According to the assembly device for connectors provided by the embodiment of the present invention, by integrating multiple functions such as cable fixing, connector fastening seat installation, crimping seat installation and middle tube clamping into one, the assembly process of the connector is simplified, the steps and time of manual operation are reduced, and the assembly efficiency is significantly improved. The cable is fixed by the buckle 102 set on the base 100, which ensures the stability of the cable during the assembly process and avoids assembly errors caused by cable movement. At the same time, the first rotating ring 104 and the second rotating ring 106 are used to install the fastening seat and the crimping seat respectively. By accurately adjusting their positions, the alignment accuracy between the various components of the connector can be ensured, and the assembly quality can be improved. In this process, the cable is prevented from rotating with the fastening seat and the middle tube, and the cable itself is prevented from twisting and breaking. The design of the clamping ring 108 enables the middle tube of the connector to be firmly clamped during the assembly process, which is convenient for subsequent operations such as cable insertion and tightening. Furthermore, the movable design of the first and second rotating rings 104, 106 allows the operator to flexibly adjust their positions as needed, ensuring that the connector's fastening and crimping seats precisely mate with the connector's center barrel, further enhancing ease of operation. Because the design of the device emphasizes precise fit and secure fixation between components, it effectively reduces connector quality issues caused by improper assembly, such as poor contact and looseness, thereby improving overall product quality.
[0035] Please continue to see Figures 1 to 5 , an embodiment of the utility model provides an assembly device for a connector, which aims to improve assembly efficiency, ensure assembly accuracy and simplify operation procedures.
[0036] Base 100 serves as the foundation of the entire device, firmly supporting all other components. A cable-securing clip 102 is designed on base 100. Clip 102 securely holds the cable, preventing it from moving or falling off during assembly. Clip 102 has an adjustable diameter, allowing for the installation and securing of cables of varying diameters. During assembly, the cable is threaded through clip 102. Once threaded, clip 102 is tightened to secure the cable.
[0037] The first rotating ring 104 is movably connected to the base 100, allowing it to rotate or move within a certain range. The primary function of the first rotating ring 104 is to mount the connector's fastening base. When the connector needs to be assembled, the fastening base can be mounted on the first rotating ring 104. The position of the first rotating ring 104 can be adjusted to ensure a secure connection between the fastening base and the cable, or between the fastening base, the crimping base, and the middle barrel.
[0038] Similar to first rotating ring 104, second rotating ring 106 is also connected to base 100 and is used to mount the connector's crimping seat. Adjusting the position of second rotating ring 106 facilitates installation and ensures accurate positioning of the crimping seat relative to the fastening seat, middle barrel, and cable.
[0039] The clamping ring 108 is located between the first rotating ring 104 and the second rotating ring 106 and is also movably connected to the base 100. The clamping ring 108's primary function is to clamp the connector's center barrel, providing a secure support during assembly. This grip prevents the connector's center barrel from shifting or shaking during subsequent operations, ensuring smooth assembly of the fastening and crimping bases.
[0040] The connector assembly device has a rational structural design, and the connection and adjustment between the various components are very convenient. The operator only needs to follow simple steps to complete the connector assembly work, without the need for complex adjustments or additional tools. The connector assembly device provided by the embodiment of the utility model achieves efficient, precise and convenient assembly during the connector assembly process.
[0041] According to an embodiment of the present invention, a guide shaft 110 is provided on the base 100 along the length direction of the base 100 , and the first rotating ring 104 and the clamping ring 108 are guided and connected to the guide shaft 110 .
[0042] like Figure 1 、 Figure 4 and Figure 5 As shown, in one embodiment of the present invention, in order to improve the operational stability and accuracy of the assembly device, a guide shaft 110 is provided along the length direction of the base 100 .
[0043] Specifically, the guide shaft 110 serves as a precise linear guide element. It is fixed to the base 100 and extends along its length. The first rotating ring 104 and the clamping ring 108 are connected to the guide shaft 110 via corresponding guide mechanisms (such as sliders, slots, etc.). This connection ensures that the first rotating ring 104 and the clamping ring 108, guided by the guide shaft 110, can perform smooth and precise linear motion without deviation or shaking.
[0044] The provision of the guide shaft 110 effectively prevents the first rotating ring 104 and the clamping ring 108 from deflecting and shaking during movement, thereby greatly improving the overall operational stability of the assembly device and significantly reducing assembly errors caused by unstable operation. Through the precise guiding effect of the guide connection, the first rotating ring 104 and the clamping ring 108 can accurately drive the fastening seat and the middle cylinder to move, which not only improves the accuracy of assembly, but also reduces rework and waste caused by inaccurate alignment. The design of the guide connection makes the movement of the first rotating ring 104 and the clamping ring 108 smoother and more stable, reducing operational difficulty and fatigue. Operators can complete assembly operations more easily, thereby improving work efficiency and work quality. In addition, the use of the guide shaft 110 and the guide mechanism improves the mechanical strength and durability of the assembly device, maintaining stable performance and reliable operability even under high-intensity or long-term use.
[0045] According to an embodiment of the present invention, a first transmission shaft 112 is provided on the base 100 along the length direction of the base 100 , and the first rotating ring 104 is transmission-connected to the first transmission shaft 112 .
[0046] like Figure 1 、 Figure 4 and Figure 5 As shown, in one embodiment of the present invention, in order to further improve the operating efficiency of the assembly device, a first transmission shaft 112 is provided on the base 100 along its length direction, thereby realizing a transmission connection between the first rotating ring 104 and the first transmission shaft 112.
[0047] Specifically, the first transmission shaft 112, serving as the power transmission element for the first rotating ring 104, is securely mounted on the base 100 and extends along the length of the base 100. In this embodiment of the present invention, the first transmission shaft 112 may be a lead screw, and the first rotating ring 104 is connected to the first transmission shaft 112 via a corresponding transmission mechanism (e.g., a threaded hole, a transmission nut, etc.). This connection allows the first transmission shaft 112 to drive the first rotating ring 104 to move axially along the first transmission shaft 112 when it rotates.
[0048] The transmission connection between the first transmission shaft 112 and the first rotating ring 104 enables quick and accurate adjustment of the first rotating ring 104 as needed. The use of a lead screw as the first transmission shaft 112 allows for more precise movement of the first rotating ring 104. Furthermore, the lead screw has a self-locking function, which allows the lead screw to lock the first rotating ring 104 in place once it has been moved.
[0049] According to an embodiment of the present invention, a second transmission shaft 114 is provided on the base 100 along the length direction of the base 100 , and the clamping ring 108 is connected to the second transmission shaft 114 in a ring-driven manner.
[0050] like Figure 1 、 Figure 4 and Figure 5 As shown, in one embodiment of the present invention, in order to enhance the flexibility and controllability of the clamping ring 108 , a second transmission shaft 114 is provided on the base 100 along its length direction. The provision of the second transmission shaft 114 enables the clamping ring 108 to move independently of the first rotating ring 104 .
[0051] Specifically, the second transmission shaft 114, a component specifically designed to drive the clamping ring 108, is precisely mounted on the base 100. Because the clamping ring 108 directly clamps the connector's center barrel, the stability and precision of the transmission connection between the clamping ring 108 and the second transmission shaft 114 are crucial. In this embodiment of the present invention, the second transmission shaft 114 is also optional.
[0052] The provision of the second transmission shaft 114 enables the clamping ring 108 to be independently connected to the first rotating ring 104 for transmission, thereby achieving a more flexible clamping action. In the embodiment of the present utility model, the provision of the first transmission shaft 112 and the second transmission shaft 114 enables the actions of the first rotating ring 104 and the clamping ring 108 to be independent of each other, and it is possible to control either the first rotating ring 104 or the clamping ring 108 individually, or to control both the first rotating ring 104 and the clamping ring 108 simultaneously. As previously mentioned, since the lead screw has a self-locking effect, once the clamping ring 108 is adjusted into place, the self-locking effect of the lead screw can be used to locate the axial position of the clamping ring 108, thereby preventing the clamping ring 108 from being displaced axially along the second transmission shaft 114 during installation.
[0053] According to one embodiment of the present invention, a first optical hole 116 is defined on the first rotating ring 104 , and the second transmission shaft 114 passes through the first optical hole 116 . A second optical hole 118 is defined on the clamping ring 108 , and the first transmission shaft 112 passes through the second optical hole 118 .
[0054] like Figure 4 and Figure 5 As shown, in one embodiment of the present invention, a first optical hole 116 is provided on the first rotating ring 104, and the second transmission shaft 114 is cleverly inserted into the first optical hole 116. At the same time, a second optical hole 118 is also provided on the clamping ring 108, and the first transmission shaft 112 is inserted into the second optical hole 118.
[0055] The provision of first optical aperture 116 and second optical aperture 118 ensures smooth and unobstructed insertion of first transmission shaft 112 and second transmission shaft 114, avoiding unnecessary friction and wear. Furthermore, the provision of first optical aperture 116 and second optical aperture 118 ensures coaxiality between first transmission shaft 112 and second optical aperture 118, and between second transmission shaft 114 and first optical aperture 116, thereby improving transmission stability and accuracy.
[0056] It is understandable that the through-shaft design of the first transmission shaft 112 and the second transmission shaft 114 reduces the friction and resistance during the transmission process, so that the first transmission shaft 112 and the second transmission shaft 114 can transmit power more smoothly, which not only improves the transmission efficiency, but also makes the entire device more stable during operation. Again, by means of the through-shaft method, the first transmission shaft 112 and the rotating ring, and the second transmission shaft 114 and the clamping ring 108 are tightly connected together, thereby achieving a compact structure. The compact structural design not only saves space, but also makes the entire device more stable and reliable. Again, the through-shaft design simplifies the assembly process and reduces the difficulty of assembly. During assembly, the connection can be completed by simply passing the first transmission shaft 112 through the second light hole 118 and the second transmission shaft 114 through the first light hole 116. No additional fixings or fasteners are required, which not only improves the assembly efficiency but also reduces the assembly cost.
[0057] According to one embodiment of the present invention, a first rotating shaft 120 is provided on the base 100 along the width direction of the base 100, and the first rotating ring 104 includes a first fixed portion 122 and a first ring body 124, and the first ring body 124 is transmission-connected to the first rotating shaft 120 so that the first ring body 124 rotates relative to the first fixed portion 122.
[0058] like Figure 4 and Figure 5 As shown, in one embodiment of the present invention, the first fixing portion 122 is a structure connecting the first ring body 124 and the base 100. The first fixing portion 122 is used to provide stable support for the first ring body 124. The first fixing portion 122 is in transmission connection with the first transmission shaft 112. When the first transmission shaft 112 rotates, the first fixing portion 122 can be driven to move along the axial direction of the first transmission shaft 112.
[0059] The first ring body 124 is the part that actually rotates. The first ring body 124 is rotatably mounted on the first fixed part 122 by means of balls, etc. External teeth can be provided on the outer circular surface of the first ring body 124, and a worm segment can be provided on the first rotating shaft 120. The external teeth on the first ring body 124 are engaged with the worm segment on the first rotating shaft 120 for transmission. Therefore, when the first rotating shaft 120 rotates, the first rotating shaft 120 can synchronously drive the first ring body 124 to rotate relative to the first fixed part 122.
[0060] The secure connection between the first fixing portion 122 and the base 100 and the transmission connection between the first ring body 124 and the first rotating shaft 120 together constitute the motion system of the first rotating ring 104. Specifically, the first transmission shaft 112 can drive the first fixing portion 122 to move axially along the first transmission shaft 112, and the first rotating shaft 120 can drive the first ring body 124 to rotate relative to the first fixing portion 122. Thus, the first rotating ring 104 can drive the fastening base to move axially toward or away from the middle cylinder, and can also enable the fastening base to rotate relative to the middle cylinder to achieve installation between the fastening base and the middle cylinder.
[0061] According to one embodiment of the present invention, a second rotating shaft 126 is provided on the base 100 along the width direction of the base 100, and the clamping ring 108 includes a fixed clamping portion 128 and a movable clamping portion 130, and the movable clamping portion 130 is transmission-connected to the second rotating shaft 126 so that the movable clamping portion 130 moves relative to the fixed clamping portion 128.
[0062] like Figure 1 、 Figure 4 and Figure 5 As shown, in one embodiment of the present invention, a second rotating shaft 126 is further provided on the base 100 along its width direction. The second rotating shaft 126 is used to drive the clamping ring 108 to clamp or release the middle cylinder in the connector.
[0063] Accordingly, the clamping ring 108 consists of a fixed clamping portion 128 and a movable clamping portion 130. The fixed clamping portion 128 is in driving connection with the second transmission shaft 114. That is, when the second transmission shaft 114 moves, the second transmission shaft 114 can drive the fixed clamping portion 128 to move axially relative to the second transmission shaft 114. The movable clamping portion 130 is movably provided on the fixed clamping portion 128. The movable clamping portion 130 can move closer to or further away from the fixed clamping portion 128 to clamp or release the centering cylinder.
[0064] It will be appreciated that when the second rotating shaft 126 rotates, the movable clamping portion 130 will move accordingly relative to the fixed clamping portion 128 based on the rotation of the second rotating shaft 126. Generally speaking, when the second rotating shaft 126 rotates clockwise, the movable clamping portion 130 may move closer to the fixed clamping portion 128, and when the second rotating shaft 126 rotates counterclockwise, the movable clamping portion 130 may move away from the fixed clamping portion 128. This arrangement allows the clamping ring 108 to clamp middle barrels of varying sizes, enhancing its versatility and flexibility. For example, the second rotating shaft 126 may be provided with a corresponding screw segment, and the movable clamping portion 130 may be provided with threads that mesh with the screw segment.
[0065] The transmission connection between the movable clamping part 130 and the second rotating shaft 126 makes the clamping action more precise and controllable, can adapt to more subtle clamping needs, and reduce errors. Since the movable clamping part 130 can move relative to the fixed clamping part 128, the clamping device can clamp middle tubes of more specifications and sizes, thereby expanding its application range. By driving the second rotating shaft 126 to control the movement of the movable clamping part 130, the operation process is simplified and the operation efficiency is improved. In particular, when electric or other automated drive methods are adopted, manual intervention can be further reduced and automated clamping can be achieved. Setting the second rotating shaft 126 in the width direction of the base 100 helps to balance the clamping force, enhance the stability of the clamping device during the clamping process, and reduce vibration or offset caused by uneven clamping force.
[0066] According to one embodiment of the present invention, a first sliding groove 132 and a second sliding groove 134 are opened on the side wall of the base 100 along the length direction of the base 100 , the first rotating shaft 120 is passed through the first sliding groove 132 , and the second rotating shaft 126 is passed through the second sliding groove 134 .
[0067] like Figure 3 As shown, in one embodiment of the present invention, the sidewalls of the base 100 are provided with a first slide groove 132 and a second slide groove 134 along the length thereof. These two slide grooves are respectively used to accommodate and support the first rotation axis 120 and the second rotation axis 126. The first rotation axis 120 passes through the first slide groove 132, and the second rotation axis 126 passes through the second slide groove 134, so that both can slide and adjust along the length of the base 100 within the slide grooves.
[0068] By providing the first and second chute grooves 132, 134, the first and second rotating shafts 120, 126 can slide within the first and second chute grooves 132, 134, respectively, thereby enhancing the movement stability of the first and second rotating shafts 120, 126. Since the first and second rotating shafts 120, 126 can slide freely within the first and second chute grooves 132, 134, respectively, the installation and commissioning of the first and second rotating shafts 120, 126 are simplified and quicker. Simply placing the corresponding rotating shafts in the corresponding chute grooves not only reduces installation difficulty but also shortens commissioning time.
[0069] According to one embodiment of the present invention, a third rotating shaft 136 is provided on the base 100 along the width direction of the base 100, and the second rotating ring 106 includes a second fixed portion 138 and a second ring body 140, and the second ring body 140 is transmission-connected to the third rotating shaft 136 so that the second ring body 140 rotates relative to the second fixed portion 138.
[0070] like Figure 1 、 Figure 4 and Figure 5 As shown, in one embodiment of the present invention, a third rotating shaft 136 is provided along the width direction of the base 100. Specifically, the third rotating shaft 136 is provided on the base 100 along the width direction of the base 100. This arrangement enables the third rotating shaft 136 to be in transmission connection with the second rotating ring 106, ensuring that when the third rotating shaft 136 is actuated, it can drive the second rotating ring 106 to rotate, thereby enabling the crimping seat to rotate relative to the middle cylinder to install the crimping seat on the middle cylinder.
[0071] The second ring body 140 is the part that actually rotates. The second ring body 140 is rotatably mounted on the second fixed part 138 by means of balls, etc. External teeth can be provided on the outer circular surface of the second ring body 140, and a worm segment can be provided on the third rotating shaft 136. The external teeth on the second ring body 140 are engaged with the worm segment on the third rotating shaft 136 for transmission. Therefore, when the third rotating shaft 136 rotates, the third rotating shaft 136 can synchronously drive the second ring body 140 to rotate relative to the second fixed part 138.
[0072] The secure connection between the second fixing portion 138 and the base 100, and the transmission connection between the second ring body 140 and the third rotating shaft 136, together constitute the motion system of the second rotating ring 106. Specifically, the second transmission shaft 114 can drive the second fixing portion 138 to move axially along the second transmission shaft 114, and the third rotating shaft 136 can drive the second ring body 140 to rotate relative to the second fixing portion 138. Thus, the second rotating ring 106 can drive the press-fit seat to move axially toward or away from the middle barrel, and can also rotate the press-fit seat relative to the middle barrel to facilitate installation.
[0073] By adjusting the rotation direction of the third rotating shaft 136 or changing its transmission ratio, the rotation direction of the second ring body 140 can be easily adjusted to suit different working requirements. Positioning the third rotating shaft 136 along the width of the base 100 helps optimize the structural layout of the entire assembly device, ensuring that the assembly device maintains a compact design while also providing greater stability and load-bearing capacity. Furthermore, because the third rotating shaft 136 and the second rotating ring 106 are designed to be relatively independent and easily disassembled, maintenance and component replacement can be more convenient and quick, helping to reduce maintenance costs and improve the maintainability of the assembly device.
[0074] According to an embodiment of the present invention, a mounting hole 142 is defined on a side wall of the base 100 , and the third rotating shaft 136 is rotatably mounted in the mounting hole 142 .
[0075] like Figure 1As shown, in one embodiment of the present invention, a mounting hole 142 is provided on the side wall of the base 100. The mounting hole 142 is used to rotatably mount the third rotating shaft 136. Specifically, both ends of the third rotating shaft 136 are inserted into the mounting holes 142 to achieve rotatable mounting of the third rotating shaft 136. As a result, the third rotating shaft 136 can rotate freely within the mounting holes 142 while maintaining a secure connection with the base 100.
[0076] By rotatably mounting the third rotational shaft 136 within the mounting hole 142 on the side wall of the base 100, its stability during operation is ensured. This mounting arrangement also reduces loosening or displacement caused by vibration or impact, thereby improving the stability and reliability of the entire device. Compared to other complex transmission mechanisms, directly providing the mounting hole 142 on the side wall of the base 100 and mounting the rotatable third rotational shaft 136 is more concise and efficient. This arrangement not only reduces manufacturing costs but also simplifies maintenance and component replacement.
[0077] The following is a brief description of the usage of the installation device provided in the embodiment of the utility model:
[0078] First, install the fastening base of the connector on the first rotating ring 104, the crimping base on the second rotating ring 106, and the middle tube on the clamping ring 108;
[0079] Next, pass the cable through the buckle 102, the fastening seat, and the middle tube, strip the wire, and crimp the wire core to the crimping seat;
[0080] Again, the cable is fastened by the buckle 102, the centering tube is clamped by the clamping ring 108, and then the clamping ring 108 is moved closer to the crimping seat by the second transmission shaft 114;
[0081] Next, the pressing seat is driven to rotate by the third rotating shaft 136 so that the pressing seat is installed on the middle cylinder;
[0082] Again, the fastening seat is moved closer to the middle tube via the first transmission shaft 112;
[0083] Next, the fastening base is driven to rotate by the first rotating shaft 120 so that the fastening base is installed on the middle cylinder;
[0084] Finally, the clamping ring 108 is released from the cable via the second rotating shaft 126 , and then the buckle 102 is released.
[0085] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. An assembly device for a connector, characterized in that: include: A base (100), wherein the base (100) is provided with a buckle (102) for fixing the cable; A first rotating ring (104) is movably connected to the base (100), and the first rotating ring (104) is used to install a fastening seat of a connector; A second rotating ring (106) is connected to the base (100), and the second rotating ring (106) is used to install a crimping seat of a connector; A clamping ring (108) is movably connected to the base (100) and is located between the first rotating ring (104) and the second rotating ring (106). The clamping ring (108) is used to clamp the middle tube of the connector.
2. The assembly device for a connector according to claim 1, characterized in that: A guide shaft (110) is provided on the base (100) along the length direction of the base (100), and the first rotating ring (104) and the clamping ring (108) are guided and connected to the guide shaft (110).
3. The assembly device for a connector according to claim 1, characterized in that: A first transmission shaft (112) is provided on the base (100) along the length direction of the base (100), and the first rotating ring (104) is transmission-connected to the first transmission shaft (112).
4. The assembly device for a connector according to claim 3, characterized in that: A second transmission shaft (114) is provided on the base (100) along the length direction of the base (100), and the clamping ring (108) is connected to the second transmission shaft (114) in a ring transmission manner.
5. The assembly device for a connector according to claim 4, characterized in that: A first light hole (116) is provided on the first rotating ring (104), and the second transmission shaft (114) is passed through the first light hole (116). A second light hole (118) is provided on the clamping ring (108), and the first transmission shaft (112) is passed through the second light hole (118).
6. The assembly device for a connector according to any one of claims 1 to 5, characterized in that: A first rotating shaft (120) is provided on the base (100) along the width direction of the base (100), and the first rotating ring (104) includes a first fixing portion (122) and a first ring body (124), and the first ring body (124) is transmission-connected to the first rotating shaft (120) so that the first ring body (124) rotates relative to the first fixing portion (122).
7. The assembly device for a connector according to claim 6, characterized in that: A second rotating shaft (126) is provided on the base (100) along the width direction of the base (100), and the clamping ring (108) includes a fixed clamping portion (128) and a movable clamping portion (130), and the movable clamping portion (130) is transmission-connected to the second rotating shaft (126) so that the movable clamping portion (130) moves relative to the fixed clamping portion (128).
8. The assembly device for a connector according to claim 7, characterized in that: Along the length direction of the base (100), a first slide groove (132) and a second slide groove (134) are opened on the side wall of the base (100), the first rotating shaft (120) is passed through the first slide groove (132), and the second rotating shaft (126) is passed through the second slide groove (134).
9. The assembly device for a connector according to any one of claims 1 to 5, characterized in that: A third rotating shaft (136) is provided on the base (100) along the width direction of the base (100), and the second rotating ring (106) includes a second fixing portion (138) and a second ring body (140), and the second ring body (140) is transmission-connected to the third rotating shaft (136) so that the second ring body (140) rotates relative to the second fixing portion (138).
10. The assembly device for a connector according to claim 9, characterized in that: A mounting hole (142) is provided on the side wall of the base (100), and the third rotating shaft (136) is rotatably mounted in the mounting hole (142).