A hose assembly and clamp simultaneous installation mechanism
The simultaneous installation mechanism of hose assembly and clamps solves the problem of precise control of insertion depth and clamp installation position in hose docking assembly, realizing efficient multi-variety, small-batch production and improving production efficiency and system reliability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- TIANJIN BOYUANSHENG AUTO PARTS MFG CO LTD
- Filing Date
- 2026-06-03
- Publication Date
- 2026-07-21
AI Technical Summary
Existing technologies struggle to simultaneously, automatically, and precisely control the insertion depth and clamp installation position during hose assembly, and are also difficult to quickly adapt to hoses of different specifications, resulting in low production efficiency and difficulty in meeting the flexible production needs of multiple varieties and small batches.
The system employs a hose assembly and clamp synchronous installation mechanism, which includes a worktable, a first tooling, a second tooling, a third tooling, a pushing device, a first linkage device, and a second linkage device. The linkage device abuts against the end face of the hose, sets the position of the adjusting nut, and the pushing device moves the first tooling to achieve hose insertion. The system also ensures accurate positioning through a reset component.
It improves production efficiency, meets the needs of multi-variety, small-batch production, avoids the complex tooling adjustments and position calibrations in traditional technologies, ensures accurate hose insertion, and enhances the reliability and safety of the system.
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Figure CN122425491A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of component assembly technology, and in particular to a hose assembly and clamp synchronous installation mechanism. Background Technology
[0002] In modern industrial production, fluid piping systems are widely used in numerous fields such as automobiles, construction machinery, and aerospace. The connection and clamp installation of hoses are crucial for ensuring the normal operation of these systems. Proper hose connections and clamp installation guarantee stable fluid delivery, improve system reliability and safety, and reduce the occurrence of leaks and other malfunctions, which is of great significance for improving production efficiency and product quality. As various industries continue to demand higher product quality and production efficiency, the need for hose assembly and clamp installation technologies is also growing.
[0003] In traditional hose assembly and clamp installation processes, the following methods are commonly used. One method is manual operation, where workers rely on their experience and skills to interlock the two hose sections, then use tools to install and tighten the clamps. This method is simple and direct, but requires a certain level of skill from the worker, is inefficient, and prone to human error. Another method uses simple auxiliary tooling, such as positioning jigs, to help workers more accurately connect hoses and install clamps. However, these toolings are often only applicable to specific hose specifications, lacking versatility. Some companies also use semi-automated equipment, utilizing mechanical devices to assist in completing some assembly processes, such as using robotic arms to grasp hoses or clamps for initial positioning.
[0004] However, existing technologies have significant shortcomings. When dealing with hoses of different specifications, the inability to adaptively coordinate based on the actual end face position of the hoses makes it difficult to ensure consistent insertion depths of two hoses and precise clamping of the clamps at the predetermined positions of the overlapping sections during assembly, whether by manual operation or semi-automated equipment. This results in low production efficiency, long specification changeover cycles, and difficulty in adapting to the flexible production needs of multiple varieties and small batches. Summary of the Invention
[0005] In order to overcome the problems in the prior art that it is difficult to simultaneously, automatically and accurately control the insertion depth and clamp installation position during hose docking and assembly, and that it is difficult to quickly adapt to hoses of different specifications, the present invention provides a hose assembly and clamp synchronous installation mechanism.
[0006] The present invention provides a hose assembly and clamp synchronous installation mechanism using the following technical solution: A hose assembly and clamp synchronous installation mechanism, comprising: Workbench; The first tooling includes a first moving component and a first clamping component. The first moving component is connected to the worktable, and the first clamping component is connected to the first moving component for clamping the first hose. The second tooling is connected to the worktable and includes a second clamping assembly for clamping the second hose. The third tooling is disposed between the first tooling and the second tooling. The third tooling includes a second moving component, a third clamping component, and a reset component. The second moving component is connected to the worktable. The third clamping component is used to clamp the clamp and is connected to the second moving component. The reset component is connected to the second moving component and is used to drive the second moving component to reset. A pushing device is located on the side of the first tooling away from the third tooling and is connected to the first tooling; A first linkage device, one end of which is connected to the sliding plate of the first moving component, and the other end of which is connected to the second moving component; and The second linkage device is connected at one end to the workbench and at the other end to the second moving component; The second linkage device and the first linkage device are respectively located on both sides of the third tooling. The first linkage device and the second linkage device have the same structure, both including a positioning component and a linkage component. The positioning component is connected to the corresponding sliding plate or worktable and is used to selectively abut against the end face of the corresponding hose. The linkage component includes a fixed column, a screw, an adjusting nut, and a push plate. The fixed column is fixedly connected to the corresponding sliding plate or worktable. The screw is fixed to the fixed column and extends towards the third tooling. The third tooling has a through hole for the screw to pass through. The adjusting nut is threadedly connected to the screw. The push plate is sleeved on the screw and fixedly connected to the adjusting nut. The push plate is used to abut against the third tooling. The adjusting nut in the first linkage device is set according to the end face position of the first hose, and the adjusting nut in the second linkage device is set according to the end face position of the second hose, to ensure that the first hose passes through the clamp and is inserted into the second hose.
[0007] By adopting the above technical solution, in use, the first clamping component of the first tooling clamps the first hose, the second clamping component of the second tooling clamps the second hose, and the third clamping component of the third tooling clamps the clamp, and the clamp will be released during the clamping process of the third clamping component. The positioning components of the first linkage device and the second linkage device abut against the end face of the corresponding hose. After the position is determined, the position of the adjusting nut in the first linkage device and the second linkage device on the screw is set according to the end face position of the first hose and the second hose, respectively. The pushing device pushes the first tooling to move, driving the first hose to move towards the second hose. When the first tooling moves, the screw moves with the sliding plate of the first moving component, so that the push plate abuts against the third tooling. At this time, the first hose passes through the clamp; continue to push the first tooling, and then the retracting plate pushes the second moving component of the third tooling to move, so that the clamp and the first hose move synchronously until the second hose is inserted into the first hose to a preset depth. At this time, the third tooling abuts against the push plate of the second linkage device, the third clamping component releases the clamp, and the clamp is locked on the first hose. Thus, by using the first and second linkage devices and adjusting nuts based on the actual end face positions of the first and second hoses, synchronous coordination is achieved, ensuring that the two hoses are properly inserted. This avoids the complex tooling adjustments and position calibrations required in traditional technologies, improving production efficiency and meeting the needs of multi-variety, small-batch production. The reset component can drive the second moving component to reset after the work is completed.
[0008] Preferably, the positioning component includes a positioning slider and a positioning plate. The sliding plate and the worktable are both provided with positioning grooves. The positioning slider is disposed in the corresponding positioning groove and slides in cooperation with the corresponding positioning groove. The positioning plate is hinged to the positioning slider. When it is necessary to determine the end face position of the first hose or the second hose, the positioning plate abuts against the end face of the corresponding hose.
[0009] By adopting the above technical solution, when it is necessary to determine the end face position of the first hose or the second hose, the positioning plate can be rotated around the hinge point between it and the positioning slider, so that the positioning plate abuts against the corresponding hose end face. By utilizing the sliding cooperation of the positioning slider in the positioning groove, the position of the positioning plate can be flexibly adjusted, thereby accurately determining the end face position of the first hose or the second hose.
[0010] Preferably, the adjusting nut is connected to a reinforcing assembly, which includes a first half-plate, a second half-plate, and a reinforcing nut. Both the first and second half-plates are connected to the sidewalls of the adjusting nut and are located on opposite sides of the screw. Both the first and second half-plates are curved, forming a smaller-than-a-circle enclosure. The outer walls of both the first and second half-plates are threaded. The reinforcing nut is fitted onto the first and second half-plates and threadedly connected to both. The thickness of the first and second half-plates gradually increases in the direction away from the adjusting nut.
[0011] By adopting the above technical solution, when it is necessary to reinforce the adjusting nut during use, the reinforcing nut is rotated away from the adjusting nut. As the thickness of the first and second half plates gradually increases from the end closer to the adjusting nut to the end farther away from the adjusting nut, the tightness of the contact between the first and second half plates and the screw increases, thereby reinforcing the adjusting nut, preventing it from loosening during use, and ensuring the stability and reliability of the entire mechanism.
[0012] Preferably, the first moving component includes a first guide rail and a first slider, the first guide rail is connected to the worktable, the first slider is slidably engaged with the first guide rail, and the sliding plate is connected to the first slider; The first clamping assembly includes a first fixed frame, a first upper clamping block, a first lower clamping block, and a first cylinder. The first fixed frame is connected to the sliding plate, the first cylinder is connected to the first fixed frame, the first upper clamping block is connected to the drive shaft of the first cylinder, and the first lower clamping block is connected to the sliding plate. A first placement groove is provided on the first upper clamping block, and a second placement groove is provided on the first lower clamping block. The first placement groove and the second placement groove are correspondingly arranged, and the first placement groove and the second placement groove cooperate to form a first limiting space for placing the first hose. The first lower clamping block is provided with a first extension for stably placing the first hose.
[0013] By adopting the above technical solution, the first guide rail is connected to the worktable, the first slider slides with the first guide rail, and the sliding plate is connected to the first slider. This allows the first moving component of the first tooling to slide stably, providing a basis for the first tooling to clamp and move the first hose, ensuring that the first hose can move smoothly towards the third tooling, thereby achieving the insertion and synchronous installation of the clamp with the second hose. The drive shaft of the first cylinder drives the first upper clamping block to slide along the first fixed frame, so that the first upper clamping block and the first lower clamping block cooperate. The first placement groove and the second placement groove form a first limiting space. The first hose is placed in this space, and the first extension can stably place the first hose, achieving effective clamping of the first hose.
[0014] Preferably, the second clamping assembly includes a second fixed frame, a second upper clamping block, a second lower clamping block, and a second cylinder. The second fixed frame is connected to the worktable, the second cylinder is connected to the second fixed frame, the second upper clamping block is detachably connected to the drive shaft of the second cylinder, and the second lower clamping block is detachably connected to the worktable. A first placement groove is provided on the second upper clamping block, and a second placement groove is provided on the second lower clamping block. The first placement groove and the second placement groove are correspondingly arranged, and the first placement groove and the second placement groove are combined to form a second limiting space for placing the second hose. The second lower clamping block is provided with a second extension for stably placing the second hose.
[0015] By adopting the above technical solution, the second cylinder drives the second upper clamping block to slide on the second fixed frame, so that the first placement groove and the second placement groove merge to form a second limiting space. The second hose is placed into the second limiting space, and the second extension of the second lower clamping block can stably place the second hose, thereby achieving effective clamping and stable placement of the second hose.
[0016] Preferably, it further includes an upper mounting unit, which includes a first mounting component and a second mounting component. The first mounting component is disposed between the first upper clamping block and the first cylinder, and the second mounting component is disposed between the second upper clamping block and the second cylinder. The first mounting component and the second mounting component have the same structure. The first mounting component includes a mounting block, a sliding block, and a reinforcing bolt. The mounting block is fixedly connected to the drive shaft of the first cylinder. The mounting block has a mounting groove. The sliding block is connected to the first upper clamping block. The sliding block is disposed in the mounting groove and is slidably connected to the mounting block. The reinforcing bolt passes through the mounting block and abuts against the sliding block. The reinforcing bolt is threadedly connected to the mounting block.
[0017] By adopting the above technical solution, the upper mounting unit allows for adjustable connections between the first and second upper clamping blocks and the first and second cylinders, respectively. In the first mounting assembly, the mounting block is fixed to the drive shaft of the first cylinder, the sliding block is connected to the first upper clamping block and slides within the mounting groove, and the reinforcing bolt abuts against the sliding block. The position of the first upper clamping block can be adjusted and reinforced according to actual needs. Similarly, the second mounting assembly can also adjust and reinforce the second upper clamping block accordingly, thereby improving the installation flexibility and stability of the first and second upper clamping blocks and ensuring the clamping effect on the first and second hoses.
[0018] Preferably, it further includes a lower mounting unit, the lower mounting unit including a first limiting device disposed between the first lower clamping block and the sliding plate and a second limiting device disposed between the second lower clamping block and the worktable, the first lower clamping block being connected to the first limiting device and the first limiting device being connected to the sliding plate; the second limiting device being connected to the worktable and the second lower clamping block being connected to the second limiting device; The first limiting device and the second limiting device have the same structure. The first limiting device includes a base plate, a first limiting block, a second limiting block, a third limiting block, and a fixing component. The base plate is fixedly connected to the first lower clamping block. The first limiting block, the second limiting block, and the third limiting block are all threadedly connected to the sliding plate. The first limiting block, the second limiting block, and the third limiting block abut against different side walls of the base plate to limit the first lower clamping block. The base plate of the second limiting device is connected to the second lower clamping block, and the second limiting device is used to limit the second lower clamping block. Both the first limiting block and the third limiting block are connected to the fixing component. The fixing component includes a pressure block and a fixing bolt. The fixing bolt passes through the pressure block and is threadedly connected to the corresponding first limiting block or third limiting block. The pressure block abuts against the top of the base plate to fix the base plate.
[0019] By adopting the above technical solution, the first, second, and third limiting blocks limit the base plate from different sides, and then the pressure block clamps it from above, enabling the quick and stable installation and positioning of the first and second lower clamping blocks. This effectively ensures the positional stability of the clamping blocks during operation, thereby improving the rigidity and reliability of the entire assembly mechanism. Simultaneously, the modular, bolted connection design facilitates the quick disassembly and replacement of clamping blocks for different types of hoses, enhancing the equipment's versatility and flexibility.
[0020] Preferably, the second moving component includes a second guide rail, a second slider, and a sliding frame. The second guide rail is connected to the worktable, and the length direction of the second guide rail is parallel to the length direction of the first guide rail. The second slider is slidably engaged with the second guide rail, and the sliding frame is connected to the second slider. The through hole is formed on the sliding frame. The third clamping assembly includes a third cylinder, a push rod, a guide sleeve, a first clamping block, and a second clamping block. The third cylinder is connected to the sliding frame, the push rod is connected to the third cylinder, the guide sleeve is connected to the sliding frame, the push rod passes through the guide sleeve and is slidably connected to the guide sleeve, the first clamping block is slidably connected to the sliding frame, and the second clamping block is connected to the sliding frame. The first clamping block has a first slot, and the second clamping block has a second slot. The clamp has two ear plates, which are respectively clamped in the first slot and the second slot.
[0021] By adopting the above technical solution, the second guide rail is connected to the worktable and its length direction is parallel to the first guide rail. The second slider is slidably engaged with the second guide rail. The sliding frame is connected to the second slider, and a through hole is opened on the sliding frame. This makes the movement of the third tooling more stable and its direction consistent with the movement direction of the first tooling, facilitating the insertion operation of the first hose through the clamp and the second hose. The third cylinder drives the first clamping block to slide on the sliding frame through the push rod. In conjunction with the second clamping block, the first and second slots are used to clamp the two ear plates of the clamp, achieving reliable clamping of the clamp and opening the clamp to facilitate subsequent clamp installation operations.
[0022] Preferably, the second clamping block is connected to an adjustment assembly, which includes a fixed block and an adjustment bolt. The fixed block is fixedly connected to the sliding frame, and the adjustment bolt is threaded through the fixed block. The second clamping block is rotatably connected to the adjustment bolt, and the second clamping block is slidably connected to the sliding frame.
[0023] By adopting the above technical solution, the adjustment component can adjust the position of the second clamping block, so that the two ear plates of the clamp can be more accurately clamped in the first and second slots respectively. At the same time, the position of the second clamping block can be flexibly adjusted according to clamps of different sizes, improving the applicability of the mechanism to different clamps, ensuring that the clamp is stably clamped, and facilitating subsequent hose assembly and clamp installation operations.
[0024] Preferably, the pushing device includes an operating lever, a first connecting rod, a second connecting rod, a third connecting rod, a first connecting block, a second connecting block, a third slider, a third guide rail, and a synchronous push rod. One end of the operating lever is connected to a handle, and the other end is fixedly connected to the first connecting rod. The second connecting rod is fixedly connected to the first connecting rod, and the angle between the second connecting rod and the first connecting rod is an obtuse angle. The second connecting rod is fixedly connected to the first connecting block, and the first connecting block is fixedly connected to the worktable. One end of the third connecting rod is hinged to the connection between the first connecting rod and the second connecting rod, and the other end is fixedly connected to the second connecting block. The second connecting block is fixedly connected to the third slider, and the third slider is slidably connected to the third guide rail. The third guide rail is fixedly connected to the worktable. The synchronous push rod is externally threaded, and one end of the synchronous push rod is threadedly connected to the third slider, and the other end is connected to the sliding plate. The length direction of the third guide rail is parallel to the length direction of the first guide rail.
[0025] By adopting the above technical solution, the operator holds the handle and operates the lever, which drives the first connecting rod fixed to it to move. Since the second connecting rod is fixed to the first connecting rod, it moves accordingly and drives the first connecting block to move. One end of the third connecting rod is hinged to the connection between the first and second connecting rods, and the other end is fixed to the second connecting block. Therefore, the third connecting rod pushes the second connecting block, thereby causing the third slider, which is fixed to the second connecting block, to slide on the third guide rail. Since one end of the synchronous push rod is threaded to the third slider and the other end is connected to the sliding plate, the sliding of the third slider will drive the sliding plate to move through the synchronous push rod, thereby pushing the first tooling and facilitating hose assembly and clamp installation operations.
[0026] In summary, this application includes at least one of the following beneficial technical effects: The first clamping component of the first tooling clamps the first hose, the second clamping component of the second tooling clamps the second hose, and the third clamping component of the third tooling clamps the clamp, which will open during the clamping process. The positioning components of the first and second linkage devices abut against the end faces of the corresponding hoses. After determining the position, the adjusting nuts in the first and second linkage devices are set on the screws according to the end face positions of the first and second hoses, respectively. The pushing device pushes the first tooling to move, causing the first hose to move towards the second hose. When the first tooling moves, the screw moves with the sliding plate of the first moving component, causing the push plate to abut against the third tooling. At this time, the first hose passes through the clamp. Continuing to push the first tooling, the retracting plate pushes the second moving component of the third tooling to move, causing the clamp and the first hose to move synchronously until the second hose is inserted into the first hose to a preset depth. At this time, the third tooling abuts against the push plate of the second linkage device, and the third clamping component releases the clamp, causing the clamp to lock onto the first hose. Thus, by using the first and second linkage devices and adjusting nuts based on the actual end face positions of the first and second hoses, synchronous coordination is achieved, ensuring that the two hoses are properly inserted. This avoids the complex tooling adjustments and position calibrations required in traditional technologies, improving production efficiency and meeting the needs of multi-variety, small-batch production. The reset component can drive the second moving component to reset after the work is completed. Attached Figure Description
[0027] Figure 1 This is a schematic diagram of the overall structure of a hose assembly and clamp synchronous installation mechanism.
[0028] Figure 2 This is a structural schematic diagram of the first tooling.
[0029] Figure 3 This is a structural diagram of the second tooling.
[0030] Figure 4 This is a structural diagram of the third tooling.
[0031] Figure 5 This is a structural schematic diagram of the reinforcement component.
[0032] Explanation of reference numerals in the attached figures: 1. Worktable; 2. First fixture; 21. First moving assembly; 211. First guide rail; 212. First slider; 213. Sliding plate; 22. First clamping assembly; 221. First fixed frame; 222. First upper clamping block; 2221. First placement slot; 223. First lower clamping block; 2231. Second placement slot; 224. First cylinder; 3. Second fixture; 31. Second clamping assembly; 311. Second fixed frame; 312. Second upper clamping block; 3121. First placement slot; 313. Second lower clamping block; 3131. First... 2. Placement slot; 314. Second cylinder; 4. Upper mounting unit; 41. First mounting assembly; 411. Mounting block; 4111. Mounting slide; 412. Sliding block; 413. Reinforcing bolt; 42. Second mounting assembly; 5. Lower mounting unit; 51. First limiting device; 511. Base plate; 512. First limiting block; 513. Second limiting block; 514. Third limiting block; 515. Fixing assembly; 5151. Pressure block; 5152. Fixing bolt; 52. Second limiting device; 6. Third tooling; 61. Second moving assembly Components; 611, Second guide rail; 612, Second slider; 613, Sliding frame; 6131, Through hole; 62, Third clamping assembly; 621, Third cylinder; 622, Push rod; 623, Guide sleeve; 624, First clamping block; 6241, First slot; 625, Second clamping block; 6251, Second slot; 63, Reset assembly; 631, Spring; 632, Guide rod; 64, Adjustment assembly; 641, Fixing block; 642, Adjusting bolt; 7, First linkage device; 71, Positioning assembly; 711, Positioning slider; 712. Positioning plate; 710. Positioning slide; 72. Linkage assembly; 721. Fixing column; 722. Screw; 723. Adjusting nut; 724. Push plate; 73. Reinforcing assembly; 731. First half plate; 732. Second half plate; 733. Reinforcing nut; 8. Second linkage device; 9. Pushing device; 91. Operating lever; 911. Handle; 92. First connecting rod; 93. Second connecting rod; 94. Third connecting rod; 95. First connecting block; 96. Second connecting block; 97. Third slider; 98. Third guide rail; 99. Synchronous push rod. Detailed Implementation
[0033] To enable those skilled in the art to better understand the technical solutions in this specification, 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.
[0034] In the description of the embodiments of this application, the words "for example" or "for instance" are used to indicate examples, illustrations, or explanations. Any embodiment or design that is described as "for example" or "for instance" in the embodiments of this application should not be construed as being more preferred or advantageous than other embodiments or design options. Rather, the use of the words "for example" or "for instance" is intended to present the relevant concepts in a specific manner.
[0035] In the description of the embodiments of this application, the term "multiple" means two or more. For example, multiple systems means two or more systems, and multiple screen terminals means two or more screen terminals. Furthermore, 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 indicated technical features. Thus, a feature defined with "first" or "second" may explicitly or implicitly include one or more of that feature. The terms "comprising," "including," "having," and variations thereof all mean "including but not limited to," unless otherwise specifically emphasized.
[0036] A hose assembly and clamp synchronous installation mechanism, as described in the following figure. Figure 1 The system includes a workbench 1, a first tooling 2, a second tooling 3, a third tooling 6, a pushing device 9, a first linkage device 7, and a second linkage device 8. The first tooling 2, second tooling 3, and third tooling 6 are sequentially arranged on the workbench 1. The pushing device 9 is located on the side of the first tooling 2 furthest from the third tooling 6 and is connected to the first tooling 2, used to push the first tooling 2 to move the third tooling 6 closer to the second tooling 3. One end of the first linkage device 7 is connected to the first tooling 2, and the other end is connected to the third tooling 6; the first linkage device 7 is used to adjust and maintain the distance between the first tooling 2 and the third tooling 6. One end of the second linkage device 8 is connected to the workbench 1, and the other end is connected to the third tooling 6; the second linkage device 8 is used to adjust and maintain the distance between the third tooling 6 and the second tooling 3. This layout allows the various toolings and devices to work collaboratively, efficiently completing hose assembly and synchronous clamp installation, improving production efficiency and installation accuracy.
[0037] Reference Figure 2The first fixture 2 includes a first moving component 21 and a first clamping component 22. The first moving component 21 includes a first guide rail 211, a first slider 212, and a sliding plate 213. Two first guide rails 211 are arranged in parallel and are fixedly connected to the worktable 1. Multiple first sliders 212 are provided, each mounted on one of the two first guide rails 211, and each slider 212 slides in contact with its corresponding first guide rail 211. The sliding plate 213 is fixedly connected to all the first sliders 212. The first guide rail 211 can be a linear guide rail, characterized by high precision and low friction, ensuring smooth sliding of the first slider 212. The first slider 212 can be a regular slider or a slider with self-lubricating function to reduce wear. The sliding of the first slider 212 on the first guide rail 211 drives the sliding plate 213 to move, thereby achieving position adjustment of the first fixture 2.
[0038] Reference Figure 2 The first clamping assembly 22 includes a first fixing frame 221, a first upper clamping block 222, a first lower clamping block 223, and a first cylinder 224. The first fixing frame 221 is fixedly connected to the sliding plate 213, and the first cylinder 224 is fixedly connected to the first fixing frame 221. An upper mounting unit 4 is provided between the first upper clamping block 222 and the first cylinder 224. The upper mounting unit 4 includes a first mounting component 41. The first upper clamping block 222 is connected to the drive shaft of the first cylinder 224 through the first mounting component 41, and the second upper clamping block 312 is slidably connected to the second fixing frame 311 through the first mounting component 41. The first lower clamping block 223 is connected to a lower mounting unit 5. The lower mounting unit 5 includes a first limiting device 51. The first lower clamping block 223 is connected to the sliding plate 213 through the first limiting device 51. The first limiting device 51 is connected to a fixing component 515, which is connected to the first lower clamping block 223 to fix the first lower clamping block 223.
[0039] Reference Figure 2 The first upper clamping block 222 has a first mounting groove 2221, and the first lower clamping block 223 has a second mounting groove 2231. The first mounting groove 2221 and the second mounting groove 2231 are correspondingly arranged to form a first limiting space for placing the first hose. The first lower clamping block 223 has a first extension, and the second mounting groove 2231 extends from the first extension for stably placing the first hose.
[0040] The first cylinder 224 is activated, and through the upper mounting unit 4, it drives the first upper clamping block 222 to move downward. The first upper clamping block 222 and the first lower clamping block 223 cooperate to clamp the first hose within the first limiting space. The first extension can better support the first hose and prevent it from shaking.
[0041] Reference Figure 2The first mounting component 41 includes a mounting block 411, a sliding block 412, and a reinforcing bolt 413. The mounting block 411 is fixedly connected to the drive shaft of the first cylinder 224. A guide rail and a guide slider are provided between the mounting block 411 and the first fixed frame 221. The guide rail is vertically arranged and fixedly connected to the first fixed frame 221. The guide slider is slidably connected to the guide rail. The mounting block 411 is fixedly connected to the guide slider. A mounting groove 4111 is formed at the end of the mounting block 411 away from the first fixed frame 221. The mounting groove 4111 is T-shaped. The sliding block 412 is T-shaped and is located in the mounting groove 4111, and is slidably connected to the mounting block 411. The first upper clamping block 222 is fixedly connected to the sliding block 412. The reinforcing bolt 413 passes through the mounting block 411 and abuts against the sliding block 412. The reinforcing bolt 413 is threadedly connected to the mounting block 411.
[0042] When in use, adjust the reinforcing bolt 413. When the reinforcing bolt 413 is away from the first upper clamping block 222, the position of the first upper clamping block 222 can be adjusted to accommodate hoses of different specifications.
[0043] Reference Figure 2 The first limiting device 51 includes a base plate 511, a first limiting block 512, a second limiting block 513, a third limiting block 514, and a fixing assembly 515. The first limiting block 512, the second limiting block 513, and the third limiting block 514 are all threadedly connected to mounting bolts, which are threadedly connected to the corresponding sliding plate 213 or worktable 1. The base plate 511 is a rectangular plate. The first limiting block 512, the second limiting block 513, and the third limiting block 514 are respectively located on three sides of the base plate 511 and all abut against the base plate 511 to achieve rapid positioning of the base plate 511. The first lower clamping block 223 is fixedly connected to the base plate 511, and when the first lower clamping block 223 is replaced, the base plate 511 also needs to be replaced. All base plates 511 connected to various specifications of the first lower clamping block 223 are of the same specification.
[0044] Reference Figure 2 The fixing component 515 is provided in two sets, corresponding one-to-one with the first limiting block 512 and the third limiting block 514. The fixing component 515 includes a pressure block 5151 and a fixing bolt 5152. The fixing bolt 5152 passes through the pressure block 5151 and is threadedly connected to the corresponding first limiting block 512 or third limiting block 514. The pressure block 5151 abuts against the top of the base plate 511 to fix the base plate 511.
[0045] The first limiting device 51 can accurately fix the positions of the first lower clamp 223 and the second lower clamp 313, ensuring the installation accuracy of the hose.
[0046] Reference Figure 2 and Figure 3The second tooling 3 is connected to the worktable 1 and includes a second clamping assembly 31 for clamping the second hose. The second clamping assembly 31 includes a second fixed frame 311, a second upper clamping block 312, a second lower clamping block 313, and a second cylinder 314. The second fixed frame 311 is fixedly connected to the worktable 1, and the second cylinder 314 is fixedly connected to the second fixed frame 311. An upper mounting unit 4 is provided between the second upper clamping block 312 and the second cylinder 314. The upper mounting unit 4 includes a second mounting assembly 42, which has the same structure as the first mounting assembly 41. The second upper clamping block 312 is fixedly connected to the drive shaft of the second cylinder 314 through the mounting block 411 of the second mounting assembly 42, and the second upper clamping block 312 is slidably connected to the second fixed frame 311 through the mounting block 411 of the second mounting assembly 42.
[0047] Reference Figure 2 and Figure 3 A lower mounting unit 5 is provided between the second lower clamping block 313 and the worktable 1. The lower mounting unit 5 includes a second limiting device 52, which has the same structure as the first limiting device 51. The first limiting block 512, the second limiting block 513, and the third limiting block 514 of the second limiting device 52 are used to limit the base plate 511 fixed to the second lower clamping block 313. The fixing assembly 515 connecting the first limiting block 512 and the third limiting block 514 is used to fix the base plate 511 connected to the second lower clamping block 313.
[0048] Reference Figure 3 The second upper clamping block 312 has a first placement groove 3121, and the second lower clamping block 313 has a second placement groove 3131. The first placement groove 3121 and the second placement groove 3131 are correspondingly arranged and combined to form a second limiting space for placing the second hose. The second lower clamping block 313 has a second extension, and the second placement groove 3131 extends from the second extension for stably placing the second hose.
[0049] In use, the second cylinder 314 is activated, driving the second upper clamping block 312 to move downwards. The second upper clamping block 312 and the second lower clamping block 313 cooperate to clamp the second hose within the second limiting space. The second extension ensures the stable placement of the second hose.
[0050] Reference Figure 1 and Figure 4 The third tooling 6 is disposed between the first tooling 2 and the second tooling 3, and includes a second moving component 61, a third clamping component 62 and a reset component 63.
[0051] The second moving component 61 includes a second guide rail 611, a second slider 612, and a sliding frame 613. Two second guide rails 611 are arranged in parallel and fixedly connected to the worktable 1. The length direction of the second guide rails 611 is parallel to the length direction of the first guide rail 211. Multiple second sliders 612 are provided, each mounted on one of the two second guide rails 611, and each second slider 612 slides in contact with its corresponding second guide rail 611. The sliding frame 613 is fixedly connected to the multiple second sliders 612.
[0052] The cooperation between the second guide rail 611 and the second slider 612 enables the sliding frame 613 to move smoothly on the worktable 1, providing a position adjustment function for the installation of the clamp.
[0053] Reference Figure 4 The third clamping assembly 62 includes a third cylinder 621, a push rod 622, a guide sleeve 623, a first clamping block 624, and a second clamping block 625. The third cylinder 621 is fixedly connected to the sliding frame 613, the push rod 622 is fixedly connected to the drive shaft of the third cylinder 621, the guide sleeve 623 is fixedly connected to the sliding frame 613, and the push rod 622 passes through the guide sleeve 623 and is slidably connected to it. The first clamping block 624 and the second clamping block 625 are symmetrically distributed. The first clamping block 624 is fixedly connected to the push rod 622 and slidably connected to the sliding frame 613, while the second clamping block 625 is connected to the sliding frame 613. The first clamping block 624 has a first slot 6241, and the second clamping block 625 has a second slot 6251. The clamp has two ear plates, which are respectively engaged in the first slot 6241 and the second slot 6251.
[0054] In use, the third cylinder 621 drives the push rod 622 to slide inside the guide sleeve 623, thereby moving the first clamping block 624 to achieve the clamping and loosening operation of the clamp.
[0055] Reference Figure 4 The second clamping block 625 is connected to an adjustment component 64, which includes a fixing block 641 and an adjustment bolt 642. The fixing block 641 is fixedly connected to the sliding frame 613, and the adjustment bolt 642 is threaded through the fixing block 641 and rotatably connected to the second clamping block 625. The second clamping block 625 is slidably connected to the sliding frame 613.
[0056] The position of the second clamping block 625 can be flexibly adjusted according to different sizes of clamps, improving the applicability of the mechanism to different clamps, ensuring that the clamps are stably clamped, and facilitating subsequent hose assembly and clamp installation operations.
[0057] Reference Figure 1 and Figure 4The reset assembly 63 includes a spring 631 and a guide rod 632. The spring 631 is sleeved on the guide rod 632. One end of the guide rod 632 is fixedly connected to the worktable 1 through a protrusion, and the other end passes through the sliding frame 613 and is slidably connected to the sliding frame 613. One end of the spring 631 is fixedly connected to the protrusion, and the other end abuts against the sliding frame 613.
[0058] In use, the sliding frame 613 is pushed by the first linkage device 7 toward the second tooling 3. When the sliding frame 613 moves, the spring 631 is compressed. When the external force disappears, the elastic force of the spring 631 resets the sliding frame 613, ensuring that the position of the third tooling 6 can be restored to the initial state.
[0059] Reference Figure 1 and Figure 4 The first linkage device 7 and the second linkage device 8 have the same structure and are respectively distributed on both sides of the sliding frame 613. Both the first linkage device 7 and the second linkage device 8 include a positioning component 71 and a linkage component 72. The positioning component 71 and the linkage component 72 of the first linkage device 7 adjust their own state according to the specifications of the first hose; the positioning component 71 and the linkage component 72 of the second linkage device 8 adjust their own state according to the specifications of the second hose.
[0060] Reference Figure 2 , Figure 3 and Figure 4 The positioning component 71 includes a positioning slider 711 and a positioning plate 712. The sliding plate 213 and the worktable 1 are both provided with positioning grooves 710. The positioning slider 711 is set in the corresponding positioning groove 710 and slides in cooperation with the corresponding positioning groove 710. The positioning plate 712 is hinged to the top of the positioning slider 711.
[0061] When it is necessary to determine the end face position of the first hose, the positioning plate 712 of the first linkage device 7 is adjusted to a vertical position, and the position of the positioning slider 711 within the positioning groove 710 is adjusted so that the positioning plate 712 of the first linkage device 7 abuts against the end face of the first hose. The edge of the positioning groove 710 is provided with a first scale, the length direction of which is perpendicular to the end face of the first hose, making it convenient for the operator to accurately determine the end face position of the first hose.
[0062] Similarly, when it is necessary to determine the end face position of the second hose, the positioning plate 712 of the second linkage device 8 is adjusted to a vertical position, and the position of the positioning slider 711 within the positioning groove 710 is adjusted so that the positioning plate 712 of the second linkage device 8 abuts against the end face of the second hose. The edge of the positioning groove 710 is provided with a second scale, the length direction of which is perpendicular to the end face of the second hose, facilitating accurate determination of the end face position of the second hose by the operator.
[0063] Reference Figure 2 , Figure 3 and Figure 4 The linkage component 72 includes a fixed post 721, a screw 722, an adjusting nut 723, and a push plate 724. The fixed post 721 is fixedly connected to the corresponding sliding plate 213 or worktable 1. The screw 722 is fixed to the fixed post 721 and extends towards the third tooling 6. The sliding frame 613 has multiple through holes 6131 for the screw 722 to pass through. The adjusting nut 723 is threadedly connected to the screw 722. The push plate 724 is sleeved on the screw 722 and fixedly connected to the adjusting nut 723. The push plate 724 is used to abut against the sliding frame 613. The screw 722 has a second scale extending along the length of the screw 722, which allows the operator to accurately understand the position of the adjusting nut 723 on the screw 722. Combined with the positioning component 71 and the first scale, the position of the adjusting nut 723 can be set more accurately according to the end face positions of the first hose and the second hose, thereby ensuring that the first hose passes through the clamp and is inserted into the second hose.
[0064] The adjusting nut 723 in the first linkage device 7 is set according to the end face position of the first hose, and the adjusting nut 723 in the second linkage device 8 is set according to the end face position of the second hose, to ensure that the first hose passes through the clamp and is inserted into the second hose.
[0065] Reference Figure 4 and Figure 5 The adjusting nut 723 is connected to a reinforcing component 73, which is located on the side of the adjusting nut 723 away from the sliding frame 613. The reinforcing component 73 includes a first half-plate 731, a second half-plate 732, and a reinforcing nut 733. The first half-plate 731 and the second half-plate 732 are both fixedly connected to the side wall of the adjusting nut 723 and are located on both sides of the screw 722, respectively. The first half-plate 731 and the second half-plate 732 are both arc-shaped, and together they form an enclosing structure smaller than a full circle. The outer side walls of the first half-plate 731 and the second half-plate 732 are threaded, and the reinforcing nut 733 is sleeved on the first half-plate 731 and the second half-plate 732 and threadedly connected to them. The thickness of the first half plate 731 and the second half plate 732 gradually increases from one end of the adjusting nut 723 to the other end. When the reinforcing nut 733 is screwed away from the adjusting nut 723, the tightness of the contact between the first half plate 731 and the second half plate 732 and the screw 722 increases, thereby locking the position of the adjusting nut 723.
[0066] Reference Figure 1 and Figure 2The pushing device 9 includes an operating lever 91, a first connecting rod 92, a second connecting rod 93, a third connecting rod 94, a first connecting block 95, a second connecting block 96, a third slider 97, a third guide rail 98, and a synchronous push rod 99. One end of the operating lever 91 is fixedly connected to a handle 911, and the other end is fixedly connected to one end of the first connecting rod 92. The first end of the second connecting rod 93 is fixedly connected to the other end of the first connecting rod 92, and the angle between the second connecting rod 93 and the first connecting rod 92 is obtuse. The second end of the second connecting rod 93 is fixedly connected to the first connecting block 95, and the first connecting block 95 is fixedly connected to the worktable 1. The connection between the first connecting rod 92 and the second connecting rod 93 is hinged to one end of the third connecting rod 94, and the other end of the third connecting rod 94 is hinged to the second connecting block 96. The second connecting block 96 is fixedly connected to the third slider 97. The third guide rail 98 is fixedly connected to the worktable 1, and the length direction of the third guide rail 98 is parallel to the length direction of the first guide rail 211. The third slider 97 is slidably connected to the third guide rail 98.
[0067] The synchronous push rod 99 has external threads. One end of the synchronous push rod 99 is threadedly connected to the third slider 97, and the other end is fixedly connected to the sliding plate 213 via a transition frame. The transition frame is C-shaped, and the synchronous push rod 99 extends from the opening of the transition frame into its hollow part. The synchronous push rod 99 is threadedly connected to two fixing nuts, which are respectively located on both sides of the opening of the transition frame and abut against the transition frame to fix the synchronous push rod 99 to the transition frame. The transition frame is fixedly connected to the sliding plate 213.
[0068] In use, the operator rotates the operating lever 911 by operating the handle 911, which in turn causes the third slider 97 to slide on the third guide rail 98 through the linkage mechanism. Finally, the synchronous push rod 99 pushes the sliding plate 213 of the first tooling 2 to move, thereby moving the first hose.
[0069] The implementation principle of this embodiment is as follows: the hose assembly and clamp synchronous installation mechanism achieves simultaneous hose assembly and clamp installation through the coordinated work of various tooling and devices. The first tooling 2 and the second tooling 3 respectively clamp the first hose and the second hose. The pushing device 9 moves the first tooling 2, allowing the first hose to pass through the clamp and connect with the second hose. The positioning component 71 positions the end face of the corresponding hose connection point, and the corresponding linkage component 72 adjusts the position of its adjusting nut 723 according to the position of the positioning component 71, ensuring precise and consistent insertion depth while ensuring the clamp is accurately positioned at the predetermined location of the overlapping portion of the two hoses. The close cooperation between the components improves production efficiency and installation accuracy, overcoming the problem in existing technologies where it is difficult to simultaneously guarantee the hose insertion depth and clamp installation position, thus meeting the needs of multi-variety, small-batch production.
[0070] The embodiments described herein are preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Therefore, all equivalent changes made in accordance with the structure, shape, and principle of the present invention should be covered within the scope of protection of the present invention.
Claims
1. A hose assembly and clamp synchronous installation mechanism, characterized in that, include: Workbench (1); The first tooling (2) includes a first moving component (21) and a first clamping component (22). The first moving component (21) is connected to the worktable (1), and the first clamping component (22) is connected to the first moving component (21) for clamping the first hose. The second tooling (3) is connected to the worktable (1) and includes a second clamping assembly (31) for clamping the second hose; The third tooling (6) is disposed between the first tooling (2) and the second tooling (3). The third tooling (6) includes a second moving component (61), a third clamping component (62) and a reset component (63). The second moving component (61) is connected to the worktable (1). The third clamping component (62) is used to clamp the clamp and is connected to the second moving component (61). The reset component (63) is connected to the second moving component (61) and is used to drive the second moving component (61) to reset. A pushing device (9) is provided on the side of the first tooling (2) away from the third tooling (6) and is connected to the first tooling (2); The first linkage device (7) is connected at one end to the sliding plate (213) of the first moving component (21) and at the other end to the second moving component (61); as well as The second linkage device (8) is connected at one end to the workbench (1) and at the other end to the second moving component (61); The second linkage device (8) and the first linkage device (7) are respectively located on both sides of the third tooling (6). The first linkage device (7) and the second linkage device (8) have the same structure, both including a positioning component (71) and a linkage component (72). The positioning component (71) is connected to the corresponding sliding plate (213) or worktable (1) for selectively abutting the end face of the corresponding hose. The linkage component (72) includes a fixed post (721), a screw (722), an adjusting nut (723), and a push plate (724). The fixed post (721) is fixedly connected to the corresponding sliding plate (213) or worktable (1), and the screw (722) is fixed to the fixed post (721). 21) and extends towards the third tooling (6), the third tooling (6) having a through hole (6131) for the screw (722) to pass through, the adjusting nut (723) being threadedly connected to the screw (722), the push plate (724) being sleeved on the screw (722) and fixedly connected to the adjusting nut (723), the push plate (724) being used to abut against the third tooling (6), the adjusting nut (723) in the first linkage device (7) being set according to the end face position of the first hose, the adjusting nut (723) in the second linkage device (8) being set according to the end face position of the second hose, to ensure that the first hose passes through the clamp and is inserted into the second hose.
2. The hose assembly and clamp synchronous installation mechanism according to claim 1, characterized in that, The positioning component (71) includes a positioning slider (711) and a positioning plate (712). The sliding plate (213) and the worktable (1) are both provided with positioning grooves (710). The positioning slider (711) is set in the corresponding positioning groove (710) and slides in cooperation with the corresponding positioning groove (710). The positioning plate (712) is hinged to the positioning slider (711). When it is necessary to determine the end face position of the first hose or the second hose, the positioning plate (712) abuts against the end face of the corresponding hose.
3. The hose assembly and clamp synchronous installation mechanism according to claim 2, characterized in that, The adjusting nut (723) is connected to a reinforcing component (73), which includes a first half plate (731), a second half plate (732), and a reinforcing nut (733). The first half plate (731) and the second half plate (732) are both connected to the side wall of the adjusting nut (723) and are located on both sides of the screw (722). The first half plate (731) and the second half plate (732) are both arc-shaped, and together they form a closed structure smaller than a full circle. The outer side walls of the first half plate (731) and the second half plate (732) are both threaded. The reinforcing nut (733) is sleeved on the first half plate (731) and the second half plate (732) and is threaded to both the first half plate (731) and the second half plate (732). The thickness of the first half plate (731) and the second half plate (732) gradually increases in the direction away from the adjusting nut (723).
4. The hose assembly and clamp synchronous installation mechanism according to claim 1, characterized in that, The first moving component (21) includes a first guide rail (211) and a first slider (212). The first guide rail (211) is connected to the worktable (1), the first slider (212) is slidably engaged with the first guide rail (211), and the sliding plate (213) is connected to the first slider (212). The first clamping assembly (22) includes a first fixing frame (221), a first upper clamping block (222), a first lower clamping block (223), and a first cylinder (224). The first fixing frame (221) is connected to the sliding plate (213), the first cylinder (224) is connected to the first fixing frame (221), the first upper clamping block (222) is connected to the drive shaft of the first cylinder (224), and the first lower clamping block (223) is connected to the sliding plate (213). A first placement groove (2221) is provided on the first upper clamping block (222), and a second placement groove (2231) is provided on the first lower clamping block (223). The first placement groove (2221) and the second placement groove (2231) are correspondingly arranged, and the first placement groove (2221) and the second placement groove (2231) cooperate to form a first limiting space for placing the first hose. The first lower clamping block (223) is provided with a first extension for stably placing the first hose.
5. The hose assembly and clamp synchronous installation mechanism according to claim 4, characterized in that, The second clamping assembly (31) includes a second fixed frame (311), a second upper clamping block (312), a second lower clamping block (313), and a second cylinder (314). The second fixed frame (311) is connected to the worktable (1), the second cylinder (314) is connected to the second fixed frame (311), the second upper clamping block (312) is detachably connected to the drive shaft of the second cylinder (314), and the second lower clamping block (313) is detachably connected to the worktable (1). A first placement groove (3121) is provided on the second upper clamping block (312), and a second placement groove (3131) is provided on the second lower clamping block (313). The first placement groove (3121) and the second placement groove (3131) are correspondingly arranged, and the first placement groove (3121) and the second placement groove (3131) are combined to form a second limiting space for placing the second hose. The second lower clamping block (313) is provided with a second extension for stably placing the second hose.
6. The hose assembly and clamp synchronous installation mechanism according to claim 5, characterized in that, It also includes an upper mounting unit (4), which includes a first mounting component (41) and a second mounting component (42). The first mounting component (41) is disposed between the first upper clamping block (222) and the first cylinder (224), and the second mounting component (42) is disposed between the second upper clamping block (312) and the second cylinder (314). The first mounting component (41) and the second mounting component (42) have the same structure. The first mounting component (41) includes a mounting block (411), a sliding block (412), and a reinforcing bolt (413). The mounting block (411) is fixedly connected to the drive shaft of the first cylinder (224). The mounting block (411) has a mounting groove (4111). The sliding block (412) is connected to the first upper clamping block (222). The sliding block (412) is located in the mounting groove (4111) and is slidably connected to the mounting block (411). The reinforcing bolt (413) passes through the mounting block (411) and abuts against the sliding block (412). The reinforcing bolt (413) is threadedly connected to the mounting block (411).
7. The hose assembly and clamp synchronous installation mechanism according to claim 6, characterized in that, It also includes a lower mounting unit (5), which includes a first limiting device (51) disposed between the first lower clamping block (223) and the sliding plate (213) and a second limiting device (52) disposed between the second lower clamping block (313) and the worktable (1). The first lower clamping block (223) is connected to the first limiting device (51), and the first limiting device (51) is connected to the sliding plate (213); the second limiting device (52) is connected to the worktable (1), and the second lower clamping block (313) is connected to the second limiting device (52). The first limiting device (51) and the second limiting device (52) have the same structure. The first limiting device (51) includes a base plate (511), a first limiting block (512), a second limiting block (513), a third limiting block (514), and a fixing component (515). The base plate (511) is fixedly connected to the first lower clamping block (223). The first limiting block (512), the second limiting block (513), and the third limiting block (514) are all threadedly connected to the sliding plate (213). The first limiting block (512), the second limiting block (513), and the third limiting block abut against different side walls of the base plate (511) to achieve the limiting of the first lower clamping block (223). The base plate (511) of the second limiting device (52) is connected to the second lower clamping block (313), and the second limiting device (52) is used to limit the second lower clamping block (313); Both the first limiting block (512) and the third limiting block (514) are connected to the fixing component (515). The fixing component (515) includes a pressure block (5151) and a fixing bolt (5152). The fixing bolt (5152) passes through the pressure block (5151) and is threadedly connected to the corresponding first limiting block (512) or third limiting block (514). The pressure block (5151) abuts against the top of the base plate (511) to fix the base plate (511).
8. The hose assembly and clamp synchronous installation mechanism according to claim 7, characterized in that, The second moving component (61) includes a second guide rail (611), a second slider (612), and a sliding frame (613). The second guide rail (611) is connected to the worktable (1). The length direction of the second guide rail (611) is parallel to the length direction of the first guide rail (211). The second slider (612) is slidably engaged with the second guide rail (611). The sliding frame (613) is connected to the second slider (612). The through hole (6131) is formed on the sliding frame (613). The third clamping assembly (62) includes a third cylinder (621), a push rod (622), a guide sleeve (623), a first clamping block (624), and a second clamping block (625). The third cylinder (621) is connected to the sliding frame (613), the push rod (622) is connected to the third cylinder (621), and the guide sleeve (623) is connected to the sliding frame (613). The push rod (622) passes through the guide sleeve (623) and is positioned within the sliding frame (613). The guide sleeve (623) is slidably connected, the first clamping block (624) is slidably connected to the sliding frame (613), the second clamping block (625) is connected to the sliding frame (613), the first clamping block (624) is provided with a first slot (6241), the second clamping block (625) is provided with a second slot (6251), and the clamp is provided with two ear plates, which are respectively clamped in the first slot (6241) and the second slot (6251).
9. The hose assembly and clamp synchronous installation mechanism according to claim 8, characterized in that, The second clamping block (625) is connected to an adjusting assembly (64), which includes a fixing block (641) and an adjusting bolt (642). The fixing block (641) is fixedly connected to the sliding frame (613), and the adjusting bolt (642) is threaded through the fixing block (641). The second clamping block (625) is rotatably connected to the adjusting bolt (642), and the second clamping block (625) is slidably connected to the sliding frame (613).
10. The hose assembly and clamp synchronous installation mechanism according to claim 4, characterized in that, The pushing device (9) includes an operating lever (91), a first connecting rod (92), a second connecting rod (93), a third connecting rod (94), a first connecting block (95), a second connecting block (96), a third slider (97), a third guide rail (98), and a synchronous push rod (99). One end of the operating lever (91) is connected to a handle (911), and the other end is fixedly connected to the first connecting rod (92). The second connecting rod (93) is fixedly connected to the first connecting rod (92), and the angle between the second connecting rod (93) and the first connecting rod (92) is an obtuse angle. The second connecting rod (93) is fixedly connected to the first connecting block (95), and the first connecting block (95) is fixedly connected to the worktable (1). The third connecting rod (94) is hinged at one end to the connection between the first connecting rod (92) and the second connecting rod (93), and fixedly connected to the second connecting block (96). The second connecting block (96) is fixedly connected to the third slider (97). The third slider (97) is slidably connected to the third guide rail (98). The third guide rail (98) is fixedly connected to the worktable (1). The synchronous push rod (99) is threaded. One end of the synchronous push rod (99) is threadedly connected to the third slider (97), and the other end is connected to the sliding plate (213). The length direction of the third guide rail (98) is parallel to the length direction of the first guide rail (211).