Assembly installing and debugging device
By designing components such as an adjustable height support frame, a detachable auxiliary support base, and a positioning plate, the problem of existing devices being unable to adapt to different models of components has been solved, enabling rapid disassembly and assembly and precise positioning, thereby improving the efficiency and accuracy of component installation and commissioning.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-04
- Publication Date
- 2026-03-06
AI Technical Summary
The existing component installation and debugging equipment cannot meet the needs of different component models, resulting in a time-consuming and inefficient debugging process.
A component installation and debugging device was designed, including an adjustable height support frame, a detachable auxiliary support base, a positioning plate, a debugging workbench, and a clamping arm. It achieves rapid assembly and disassembly and precise positioning through components such as plug-in connecting plates, locking mechanisms, elastic clamping pads, and limit pins, adapting to the needs of components of different sizes and models.
It enables rapid switching between different component models, improves debugging efficiency and accuracy, simplifies operation procedures, and enhances the adaptability and stability of the equipment.
Smart Images

Figure CN223971161U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of mechanical engineering technology, specifically to a component installation and commissioning device. Background Technology
[0002] Component installation and commissioning equipment refers to specialized tools used to assist in the precise installation and efficient commissioning of electronic or mechanical equipment components during the assembly process. However, some challenges exist in practical applications, such as how to design detachable auxiliary support structures. Since different component models often have different dimensions and interface specifications, fixed auxiliary support structures cannot meet the needs of all component models, resulting in time-consuming and inefficient commissioning processes. Summary of the Invention
[0003] In view of this, the present disclosure provides a component installation and debugging apparatus, which at least partially solves the problems existing in the prior art.
[0004] This application provides a component installation and debugging device, comprising:
[0005] A support frame, used to provide support, has an adjustable height;
[0006] A detachable auxiliary support base is located on the top of the support frame. It can move left and right along the slide groove on the support frame and be fixed in position by a locking mechanism. The auxiliary support base consists of an upper clamping part and a lower bracket, and can be quickly assembled and disassembled through a plug-in connecting plate.
[0007] A positioning plate, connected to a detachable auxiliary support, provides limiting and positioning functions above the component. The positioning plate has multiple sets of positioning holes to accommodate the needs of components of different sizes.
[0008] The debugging workbench, located at the bottom of the support frame and movable back and forth, is used for the assembly and debugging of components and is connected to the support frame by a slide rail.
[0009] The clamping arms are symmetrically mounted on both sides of the support frame, possessing rotational and telescopic freedom, and have quick-release interfaces at the ends for replacing components of different models; among them
[0010] The upper clamping part uses a set of elastic clamping pads to clamp components of different thicknesses;
[0011] The lower bracket is equipped with a horizontal adjustment point at its bottom to adjust its contact with the bottom surface of the component; and
[0012] The plug-in connector plate uses limiting pins to restrict the connector plate from being plugged in to a specified depth.
[0013] In one specific embodiment, the detachable auxiliary support seat further includes quick-locking nuts disposed on both sides of the slide groove for locking the left and right movement state of the auxiliary support seat in different positions.
[0014] In one specific embodiment, the top of the support frame is provided with scale lines to indicate the position of the detachable auxiliary support seat sliding along the groove.
[0015] In one specific embodiment, the positioning plate is provided with limit spring plungers in multiple sets of positioning holes to ensure that the holes can be quickly inserted or released.
[0016] In one specific embodiment, the debugging workbench is moved back and forth by an electric drive unit.
[0017] In one specific embodiment, the rotational degree of freedom of the clamping arm is driven by a servo motor.
[0018] In one specific embodiment, the clamping arm is driven by a hydraulic cylinder to extend and retract.
[0019] In one specific embodiment, the quick-release interface is provided with an interchangeable magnetic connector.
[0020] In one specific embodiment, an air source cleaning connector is added to the quick-release interface for cleaning the interface after each disassembly and assembly.
[0021] This disclosure provides a component installation and debugging device, comprising: a support frame for providing support, the height of which is adjustable; a detachable auxiliary support base disposed on the top of the support frame, capable of moving left and right along a slide groove on the support frame and fixed in position by a locking mechanism, wherein the auxiliary support base consists of an upper clamping part and a lower bracket, and is quickly assembled and disassembled via a plug-in connecting plate; a positioning plate connected to the detachable auxiliary support base, providing limiting and positioning functions above the component, the positioning plate having multiple sets of positioning holes to accommodate the needs of components of different sizes; a debugging workbench located at the bottom of the support frame and capable of moving back and forth, used for component assembly and debugging, and connected to the support frame via a slide rail; clamping arms symmetrically mounted on both sides of the support frame, possessing rotational and telescopic freedom, and having a quick-release interface at the end for replacing components of different models; wherein the upper clamping part clamps components of different thicknesses through a set of elastic clamping pads; the lower bracket has a horizontal adjustment point at its bottom for adjusting to maintain contact with the bottom surface of the component; and the plug-in connecting plate restricts the insertion of the connecting plate to a specified depth via limiting pins. The solution provided by this disclosure can solve the problem of how to quickly switch between different models of components, thereby improving debugging efficiency. Attached Figure Description
[0022] In the accompanying drawings, unless otherwise specified, the same reference numerals throughout the various drawings denote the same or similar parts or elements. These drawings are not necessarily drawn to scale. It should be understood that these drawings depict only some embodiments disclosed in this application and should not be construed as limiting the scope of this application.
[0023] Figure 1 This is a schematic diagram of the isometric structure of the component installation and debugging device of this utility model;
[0024] Figure 2 This utility model Figure 1 Schematic diagram of the middle clamping arm;
[0025] Figure 3 This utility model Figure 1 Schematic diagram of the structure of the debugging workbench;
[0026] Figure 4 This utility model Figure 1 A schematic diagram of the middle support frame.
[0027] In the diagram: 1. Support frame; 2. Auxiliary support base; 3. Positioning plate; 4. Adjustment workbench; 5. Clamping arm; 6. Locking nut; 7. Elastic clamping washer; 8. Horizontal adjustment point; 9. Limit pin; 10. Scale markings; 11. Limit spring plunger; 12. Electric drive unit; 13. Servo motor; 14. Hydraulic cylinder; 15. Interchangeable magnetic connector; 16. Air source cleaning connector Detailed Implementation
[0028] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0029] like Figure 1 As shown, a component installation and debugging device of this application includes a support frame 1, a detachable auxiliary support base 2, a positioning plate 3, a debugging workbench 4, and a clamping arm 5.
[0030] Support frame 1 is a frame structure that provides the main support. The frame structure uses telescopic columns to allow for height adjustment of support frame 1, specifically secured by locking bolts between sections. Support frame 1 possesses sufficient strength, and its base is placed on the ground or platform to ensure the stability of the entire equipment. For example, a pair of nuts and bolts can be installed at each node of the telescopic column to lock the current height. This not only facilitates adjustment but also allows for appropriate modifications to meet the needs of different operating environments. Users can select an appropriate column length to achieve the optimal working position within the range of height requirements under varying operating conditions, while maintaining structural integrity.
[0031] A detachable auxiliary support seat 2 is located at the top of the support frame 1. This part interacts with the longitudinal groove on the support frame 1 to allow horizontal movement, and uses an internally integrated small gear to engage with an external handle to lock it in the target position. The support seat consists of an upper clamping part and a lower bracket, which are combined together by a plug-in connecting plate to form a complete assembly. When faced with the installation of new components or model changes, the old connecting plate can be quickly removed and replaced to match the specific size requirements of the new model. In addition, the upper clamping part is used to grip the upper component while the lower bracket is responsible for supporting the lower part. Their combination ensures that the object being processed is accurately positioned in the preset space and is not prone to deviation.
[0032] The auxiliary support 2 connects to the positioning plate 3, providing effective boundary control and accuracy assurance for the target object positioned above. The positioning plate 3 has multiple sets of positioning holes arranged on it, with varying spacing between the holes for adjustment to accommodate different types or sizes of components. Each hole is precision drilled to ensure consistent machining standards and high interchangeability.
[0033] The lower level of the device features an adjustment workbench 4, located near the bottom of the support frame 1. This workbench allows for parallel forward and backward movement relative to the main structure, ensuring a wide range of assembly and calibration opportunities for the user. It also provides a stable, flat surface for placing parts to be adjusted and operating other tools. To prevent vibration and instability, multiple buffer pads are installed on the workbench to reduce the adverse effects of vibrations transmitted during mechanical operation on accuracy. These features are achieved through the coordinated operation of four pulleys and rails, ensuring smooth operation and good flexibility.
[0034] For details, please refer to the following: Figure 2The clamping arms 5 are symmetrically arranged at both ends of the support frame 1. They can rotate around the vertical central axis and extend or retract a certain distance to change the contact position. Power is provided by a hydraulically driven piston cylinder, giving users the flexibility to use the clamping device in various complex environments and supporting object clamping in multiple postures. A quick-change interface is located at the end of the clamping arms 5, facilitating the replacement of pressure head modules with different shapes or sizes to suit specific components. This mechanism improves the speed of changeover. The rotation angle and extension length can be adjusted according to actual needs.
[0035] In one embodiment, such as Figure 3 As shown, a detachable auxiliary support base 2 of the component installation and debugging device of this application is disposed on the top of the support frame 1 and can move left and right along the slide groove on the support frame 1. The auxiliary support base 2 is further equipped with a quick-locking nut 6. Specifically, the quick-locking nut 6 is carefully arranged on both sides of the slide groove, and its design purpose is to ensure that the auxiliary support base 2 can be quickly and securely locked or released during operation. By fixing the quick-locking nut 6 in a predetermined position, the user can conveniently and quickly fix the auxiliary support base 2 to any required working position and ensure its stability throughout the entire working process.
[0036] In a specific example, appropriate screw holes can be pre-drilled on both sides of the slide to match the quick-locking nuts 6. These nuts can be manually rotated to directly contact and press against the edge of the slide, effectively limiting the possibility of the auxiliary support 2 sliding left and right along the slide, while facilitating flexible position adjustment as needed. For example, when it is necessary to replace or fine-tune the position of the auxiliary support 2, it can be moved smoothly simply by loosening the locking nuts 6, without the need for complex tools or excessive operating steps. This design maintains the simplicity and compactness of the device structure while significantly improving work efficiency and ease of operation. In addition, the auxiliary support 2 itself consists of an upper clamping part and a lower bracket, and uses a plug-in connecting plate to simplify the assembly and disassembly process, so as to better adapt to various types and sizes of components.
[0037] In one embodiment, further reference Figure 3 and Figure 4 The component installation and commissioning device of this application utilizes a set of elastic clamping pads 7 to securely clamp components of varying thicknesses at its upper clamping part. The elastic clamping pads 7 are wear-resistant, suitable for frequent operation and long-term use, ensuring a long service life and stable reliability. This device not only improves the equipment's adaptability to components of various sizes and thicknesses but also guarantees the safety and accuracy of the components throughout the entire installation and commissioning process.
[0038] In one embodiment, the upper clamping part integrates this set of gaskets 7, which can automatically adjust with pressure to tightly fit the surface of components of different thicknesses, thereby providing good fixing force without damaging the component surface. The gaskets 7 are made of a material with high elasticity and good resilience and are fixed in the upper clamping part by mechanical or adhesive means. To meet wear resistance requirements, the gasket surface can be covered with a special treatment layer or made of wear-resistant materials, such as a rubber and metal fiber composite material, which can increase friction and resist physical wear, ensuring clamping effect while extending service life.
[0039] In one specific implementation, an elastic clamping pad 7 can be installed inside the upper clamping part, where the pad directly contacts and presses against the component placed on the auxiliary support seat 2 at the top of the support frame 1. After the component is placed in position, the clamping device is activated, causing the upper clamping part to press downward. At this time, the elastic clamping pad 7 deforms under force and adjusts its shape according to the actual thickness of the component until it tightly adheres to the component. This ensures that even components with varying thicknesses can achieve ideal clamping strength, and due to the durability of the pad, it can maintain a highly efficient and stable working state under frequent loading and unloading conditions.
[0040] In one embodiment, a horizontal adjustment point 8 is provided at the bottom of the lower bracket of the component installation and debugging device of this application to ensure that the bottom surface of the component is always in horizontal contact to ensure its stability. The lower bracket is one of the important parts of the entire auxiliary support base 2. Through this design, the positional relationship between the component and the auxiliary support base 2 can be precisely adjusted, thereby achieving effective support for the bottom plane of the component. During the assembly process, after the component is placed inside the auxiliary support base 2 composed of the upper clamping part and the lower bracket, the lower bracket will assume the main support function.
[0041] To ensure adjustment accuracy and adaptability to different component models, the horizontal adjustment point 8 is located on the bottom surface of the lower bracket and is typically constructed using a screw or other manually or electrically adjustable mechanical structure. This mechanism allows for fine-tuning as needed and can be locked into the appropriate position according to specific operating conditions. Furthermore, to prevent displacement of the adjusted position due to external factors, some implementations incorporate anti-slip designs or self-locking mechanisms, ensuring the adjustment point stably maintains the set adjustment parameters and remains effectively horizontal over a long period. The horizontal adjustment point 8 effectively avoids the risk of component tilting, further guaranteeing the stability of the overall system and the normal operation of subsequent processes.
[0042] For example, the leveling point 8 can be composed of a set of precision-machined lead screw pairs, which can be manually adjusted using a handle with graduated markings, ensuring that users can complete the leveling operation quickly and accurately without the aid of other tools. When the handwheel is turned, the internal lead screw moves synchronously, thereby changing the relative height until a satisfactory leveling effect is achieved, and this state is fixed by the positioning locking component. The whole process is convenient, quick and easy to operate.
[0043] In one embodiment, the plug-in connection plate of a component installation and debugging device of this application uses a limiting pin 9 to limit the plug-in to a specified depth and provide a safety locking guarantee.
[0044] To ensure quick assembly and disassembly and adaptability, the detachable auxiliary support 2 consists of an upper clamping part and a lower support frame, assembled using a plug-in connecting plate. A limiting pin 9 is designed and installed at a critical position in the plug-in structure. When the connecting plate is inserted into the auxiliary support 2, the pin engages with the corresponding limiting hole in the connecting plate to prevent the insertion depth from exceeding the preset limit. This not only achieves depth control but also ensures the stability and safety of the connecting plate's insertion position, preventing abnormal displacement or detachment. The limiting pin 9 and the limiting hole together form a locking system, adding an extra layer of protection to the plug-in assembly process.
[0045] For example, during assembly, when it's necessary to replace plug-in connector plates of different specifications, technicians can use simple tools, such as unscrewing the locking pin and removing the old connector plate, then inserting the new connector plate until it contacts one of the multiple recessed holes on the connector plate, and finally locking the pin back in to complete the process. This method not only simplifies the replacement process but also ensures consistency and stability for each operation through precise positioning holes. Specifically, this installation and fixing method does not require complex tools or special skills, thus improving efficiency and reducing the possibility of human error.
[0046] In one embodiment, see [specific example] Figure 1 The support frame 1 of the component installation and debugging device of this application is provided with a scale line 10 on its top. This design is used to indicate the specific position of the detachable auxiliary support 2 sliding along the slide groove and to ensure consistent positioning in each operation. The scale line 10 is located on the top surface of the support frame 1 and is flush with the working surface of the detachable auxiliary support 2. With this layout, the operator can accurately adjust the position of the auxiliary support 2 according to the scale reading.
[0047] The scale lines 10 not only provide visual reference points but also enhance the accuracy of the debugging process, ensuring that components maintain a fixed positional reference throughout assembly and debugging. This not only improves work efficiency but also ensures the accuracy requirements in repetitive tasks. Specifically, the scale lines 10 provide a unified standard for adapting different component models, allowing each operation to be performed based on the same standard, further guaranteeing the stability of product quality.
[0048] In one embodiment, for example, a transparent acrylic plate with continuous, evenly spaced graduations is installed on one side of the elongated groove at the top of the support frame 1. These graduations extend from the starting point to the entire length of the groove, and each unit length is clearly visible and marked with a specific value. The detachable auxiliary support 2 has a flange latch that moves along the edge of the graduation lines during movement. When it reaches the desired position, the flange latch can be locked by a handwheel locking mechanism, thereby achieving precise positioning and repeatability.
[0049] In one embodiment, the positioning plate 3 of the component installation and debugging device of this application integrates multiple sets of adjustable positioning holes with internal limit spring plungers 11 to ensure that the holes can be quickly inserted or released while maintaining accuracy. The combination of positioning holes and limit spring plungers 11 allows the device to adapt to various models and sizes of components while maintaining high positional accuracy during frequent operations. By setting limit spring plungers 11 in these adjustable positioning holes, the flexibility and reliability of the insertion process between the holes and the components are improved.
[0050] Specifically, the multiple positioning holes on the positioning plate 3 have a certain degree of elasticity. The embedded limiting spring plungers 11 consist of a spring and a plunger body. When an object is inserted, the spring compresses to allow the plunger body to retract into the hole. Once the set position is reached, the spring automatically rebounds, stably locking the object. Specifically, in one embodiment, each of these positioning holes is equipped with a concealed limiting spring plunger 11, which are evenly distributed on the positioning plate 3 and can be adjusted according to specific component requirements to accommodate components of different sizes and shapes. This configuration of the limiting spring plungers 11 allows users to more quickly install and remove components to be adjusted, while ensuring high precision and stability after each positioning operation. For example, the position of the holes can be adjusted by rotation or sliding mechanisms to align each hole with the optimal positioning point of the corresponding component.
[0051] In one embodiment, the forward and backward movement of the debugging workbench 4 of the component installation and debugging device of this application is achieved by an electric drive unit 12. The electric drive unit 12 is located on one side of the bottom of the support frame 1 and is connected to the debugging workbench 4 through a transmission structure. Specifically, the electric drive unit 12 includes main components such as a motor and a reducer, and can precisely control the output torque to meet the requirements of different working conditions. At the same time, to ensure accurate forward and backward movement within a preset range, an advanced intelligent control system is installed on the system. This system can adjust the position of the workbench according to pre-programmed instructions to achieve the required accuracy.
[0052] In one embodiment, the rotational freedom of the clamping arm 5 of the component installation and debugging device of this application is powered by a high-precision servo motor 13, enabling it to automatically adjust to the optimal angle range for efficient clamping operations. The clamping arms 5 are symmetrically mounted on both sides of the support frame 1, ensuring stable clamping force is applied to the component to be debugged on the debugging workbench 4 from different directions. The ends of the clamping arms 5 are connected via quick-release interfaces, facilitating the replacement of different types of clamping blocks and enhancing the adaptability of the device.
[0053] Specifically, the high-precision servo motor 13 in this device is located near the base of the clamping arm 5 and is connected to the main body of the clamping arm 5 via a reducer. The motor operates according to pre-programmed control commands, driving the clamping arm 5 to perform precise angle adjustments. To achieve automation, the servo motor 13 receives a sequence of instructions pre-input from the central control system or user interface and converts them into specific mechanical movements. For example, these instructions may originate from a host computer or embedded control system, guiding each component to complete specific action procedures according to a preset program.
[0054] In one embodiment, the extension and retraction function of the clamping arm 5 in the component installation and debugging device of this application is achieved by a hydraulic cylinder 14. The clamping arms 5 are symmetrically mounted on both sides of the support frame 1, and each integrates a hydraulic cylinder 14 for controlling the extension and retraction. This configuration effectively provides clamping force and achieves precise control and synchronized extension and retraction of the clamping arms 5. Furthermore, a stroke sensor is installed within the hydraulic cylinder 14. This stroke sensor collects data on the extension and retraction process of the clamping arms 5 in real time and transmits feedback information to the control panel, ensuring the stability and coordination of the entire operation.
[0055] The design combining the stroke sensor with the hydraulic cylinder 14 allows the control system to receive changes in the mechanical position in a timely manner, thereby dynamically adjusting the output command to match the preset operating parameters. Specifically, when the clamping arm 5 extends or retracts, the stroke sensor can monitor the specific stroke change and send the data to the controller through internal circuitry or signal transmission lines. After receiving and processing the information from the stroke sensor, the controller issues the corresponding drive command to the hydraulic cylinder 14, ensuring smooth coordinated operation of all parts.
[0056] For example, the stroke sensor used in the device is either an inductive proximity switch or an encoder. In practical applications, the stroke sensor is directly installed at an appropriate location inside the hydraulic cylinder 14, accurately capturing the specific stroke of the piston rod and providing accurate data support for the control panel. Thus, regardless of whether it is in a static or dynamic state, the control system can precisely manage the working range and force of the clamping arm 5 by adjusting the flow rate of hydraulic oil supplied to the hydraulic cylinder 14. Therefore, this design not only meets the structural requirements of the device but also enhances the accuracy of automated operation and improves overall work efficiency.
[0057] In one embodiment, an interchangeable magnetic connector 15 is provided within the quick-release interface of a component installation and debugging device of this application. This quick-release interface is located at the end of the clamping arm 5 at the top of the support frame 1, making it easier and faster to replace pressure blocks of different models. Specifically, the interchangeable magnetic connector 15 forms a stable attraction with the pressure block through a built-in strong magnet, ensuring reliable connection even under high-speed or vibration environments, reducing the operational complexity and safety hazards associated with traditional mechanical locking methods.
[0058] The interchangeable magnetic connector 15 is located inside the quick-release interface of the clamping arm 5. This connector not only withstands sufficient tensile force but also possesses excellent durability and precision for repeated assembly and disassembly, enabling quick and stable docking of pressure blocks of various sizes and shapes. Furthermore, the magnetic connector has a compact structure, does not occupy excessive additional space, and does not affect the overall functional layout of the device. To facilitate user differentiation and correct assembly, different models of magnetic connectors can be designed with specific colors or marking patterns.
[0059] For example, in one specific implementation, to achieve the functions described in the technical requirements, the interchangeable magnetic connector 15 adopts a double-layer magnetic circuit design, with the inner and outer rings of magnets generating a synergistic magnetic field to enhance the bonding strength; at the same time, a rubber pad is provided on the upper surface of the connector as a contact interface, which not only prevents damage that may be caused by hard contact between metals, but also improves the fit and ensures good connection characteristics under various working conditions.
[0060] In one embodiment, an air source cleaning connector 16 is added to the quick-release interface of a component installation and debugging device of this application. The air source cleaning connector 16 is mainly used to clean the interface after each disassembly and assembly to prevent external dust and impurities from entering and causing adverse effects on the connector. By adding this cleaning connector, the working stability and lifespan of the connecting components can be significantly improved.
[0061] Specifically, the air source cleaning connector 16 is installed near the quick-release interface at the end of the clamping arm 5, forming an integral structure or tightly assembled with the quick-release interface to ensure a good fit between the two. This connector has an internal channel that can be connected to an external compressed air supply system, guiding high-pressure gas to the quick-release interface when needed for effective cleaning. Furthermore, to facilitate immediate activation of this function after changing the adapter block, the cleaning connector is equipped with a manual control valve or an automatic switching device. For example, when a quick-release action is detected, the cleaning connector can immediately respond and initiate a one-time, short-duration pulse airflow jet to complete the interface cleaning process. This design not only enhances the system's self-cleaning capability but also simplifies daily maintenance procedures.
[0062] In actual operation, when using this device, the height of the support frame 1 can be adjusted according to the size and model of the component to be debugged to ensure the adaptability of the entire device. Then, the detachable auxiliary support 2 is installed on the top of the support frame 1, moved to the appropriate position along the slide groove and fixed by the locking mechanism. At the same time, the component is placed on the auxiliary support 2, which consists of an upper clamping part and a lower bracket, for initial fixation. Next, the positioning plate 3 is connected and engaged with the auxiliary support 2. The multiple sets of adjustable positioning holes on the positioning plate 3 are used to precisely define the position of the component. At this time, the debugging workbench 4 at the bottom of the support frame 1 can move back and forth to facilitate the operation of the staff, ensuring the stability of the component during assembly and debugging and the flexibility of the operating space. Finally, the clamping arms 5, which are symmetrically arranged on both sides of the support frame 1, firmly hold the component from different directions through their rotation and extension functions. Different pressure blocks can be replaced through quick-release interfaces to ensure the accuracy and efficiency of the debugging work. The cooperation of various components throughout the process ensures the quality and efficiency of component installation and debugging.
[0063] The above description is the preferred embodiment of this application. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this invention, and these improvements and modifications should also be considered within the scope of protection of this application.
Claims
1. An assembly mounting adjustment device, characterized by, The utility model relates to a kind of adjustable support frame for component assembly and debugging, comprising: Support frame (1) for providing support, its height can be adjusted; Detachable auxiliary support seat (2) is arranged on the top of support frame (1), can be moved left and right along the sliding groove on support frame (1) and is fixed position by locking mechanism, wherein the auxiliary support seat (2) is composed of upper clamping part and lower bracket, and is quickly disassembled by the connecting plate of plug-in type; Positioning plate (3) is connected with detachable auxiliary support seat (2), provides limiting and positioning function above assembly, and the positioning plate (3) has multiple sets of positioning holes to meet the needs of different sizes of assembly; Debugging workbench (4) is located at the bottom end of support frame (1) and can be moved forward and backward, for assembly and debugging of assembly, and is connected between support frame (1) by slide rail; Clamping arm (5) is symmetrically installed on both sides of support frame (1), has rotation and telescopic freedom, and is provided with quick release interface at the end to replace adaptation different models of assembly;Wherein The upper clamping part is clamped to assembly of different thicknesses by a set of elastic clamping gaskets (7); The lower bracket bottom is provided with horizontal adjustment node (8), for adjusting and assembly bottom surface to keep in contact state;And The connecting plate of plug-in type is limited to reach specified depth by limiting pin (9) to connect plate plug-in.
2. The component mounting and debugging device according to claim 1, characterized by: The detachable auxiliary support seat (2) further includes quick locking nut (6), is arranged on both sides of sliding groove, for locking auxiliary support seat (2) left and right movement state in different positions.
3. The component mounting and debugging device according to claim 1, characterized by: The top of support frame (1) is provided with scale graduation (10), for indicating the position of detachable auxiliary support seat (2) sliding along sliding groove.
4. The component mounting and debugging device according to claim 1, characterized by: Multiple sets of positioning holes on the positioning plate (3) are provided with limiting spring plunger (11), to ensure that hole site can be quickly inserted or loosened.
5. The component mounting and debugging device according to claim 1, characterized by: The debugging workbench (4) is moved forward and backward by electric drive unit (12).
6. The component mounting and debugging device according to claim 1, characterized by: The rotation freedom of the clamping arm (5) is driven by servo motor (13).
7. An assembly installation device according to claim 6, wherein: The clamping arm (5) is driven by hydraulic oil cylinder (14) to be telescopic.
8. An assembly installation device according to claim 7, wherein: Interchangeable magnetic joint (15) is arranged in the quick release interface.
9. An assembly installation device according to claim 8, wherein: Air supply cleaning connector (16) is added at the quick release interface, for interface blow cleaning treatment after each disassembly.