A system integration module adjustable support and positioning mechanism
Patent Information
- Application Number
- CN202611185640.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-08-06
- Publication Date
- 2026-09-18
AI Technical Summary
[0004]针对现有技术存在的问题,本发明提供了一种系统集成模块可调支撑与定位机构,具备实现左右自动预定位,装配便捷高效,实现双侧支撑结构同步锁定,左右夹持受力均匀,实现前后方向单次操作同步夹紧,并集成竖向多重缓冲结构,可有效缓冲设备振动冲击,防护性强,通用性好,锁紧稳固,有效提升系统模块长期运行的稳定性和使用寿命的优点,解决了现有技术中装配对位繁琐、夹持调节不同步、受力不均、缓冲防护不足的问题
[0020] Compared with existing technologies, the beneficial effects of this invention are as follows: Through the cooperation of the support plate and the sliding buffer, automatic left and right pre-positioning of the system module is achieved, eliminating the need for repeated manual calibration and making assembly convenient and efficient. Furthermore, through the cooperation of the second locking component, synchronous locking of the double-sided support structure is achieved, ensuring uniform clamping force on both sides. Combined with the linkage of the positive and negative screws, the positioning plate, and the first locking component, synchronous clamping in a single operation in the front and rear directions is achieved, solving the drawbacks of inconsistent adjustment force and cumbersome assembly in traditional separate systems. Simultaneously, through the cooperation of the sliding buffer, vertical buffer spring, vertical telescopic hole, and locking rod, this device integrates a vertical multi-buffered structure, effectively buffering equipment vibration and impact, providing stronger protection, a large overall adjustable range, adaptability to system integration modules of various sizes, good versatility, stable locking, vibration resistance, and anti-loosening, effectively improving the long-term stability and service life of the module.
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Figure CN122774550A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of mechanical support equipment technology, and in particular relates to an adjustable support and positioning mechanism for a system integration module. Background Technology
[0002] In various equipment such as industrial control, communication, and energy storage, system integration modules (such as power supply modules, control board modules, and power integration modules) are core functional components, widely used in key aspects such as power supply, signal processing, and power control. Their installation stability, positioning accuracy, and size adaptability directly determine the equipment's operational reliability, signal transmission stability, and ease of maintenance. Currently, the support and positioning of system integration modules mostly employ dedicated fixing mechanisms or simple adjustable brackets, which have the following drawbacks.
[0003] In existing technologies, most supporting and positioning mechanisms use a single locking structure for left and right positioning and locking, without elastic pre-positioning function. During installation, the left and right positions of the module need to be manually calibrated repeatedly before locking and fixing. This not only results in low assembly efficiency, but also makes the module prone to displacement and uneven force after locking. Even some mechanisms with pre-positioning components require multiple operations to complete pre-positioning and locking, increasing assembly steps. Furthermore, the front and rear clamps are mostly adjusted separately on both sides, which is not conducive to synchronous linkage, making the operation cumbersome, resulting in poor clamping consistency and affecting protective performance. Summary of the Invention
[0004] To address the problems existing in the prior art, this invention provides a system integrated module adjustable support and positioning mechanism, which features automatic left and right pre-positioning, convenient and efficient assembly, synchronous locking of the double-sided support structure, uniform force distribution during left and right clamping, synchronous clamping in a single operation in the front and rear directions, and integrated vertical multiple buffer structure, which can effectively buffer equipment vibration and impact, providing strong protection, good versatility, and stable locking. It effectively improves the long-term stability and service life of the system module, solving the problems of cumbersome assembly and alignment, asynchronous clamping and adjustment, uneven force distribution, and insufficient buffer protection in the prior art.
[0005] This invention is implemented as follows: an adjustable support and positioning mechanism for a system integration module includes a mounting base. Support plates are slidably mounted on both ends of the top of the mounting base. These support plates support the two corners at the bottom of the system module. A positive thread rod and a negative thread rod are threaded through the front and rear ends of each support plate, respectively. Positioning clamps are installed at the inner ends of both the positive and negative thread rods, and these clamps clamp the front and rear ends of the system module. A first locking member is installed between the outer ends of the positive and negative thread rods, and this first locking member is used to synchronously adjust the two positioning clamps. Evenly distributed sliding buffers are fixed to the bottom of the support plates. A second locking member is provided at the bottom of each sliding buffer. The second locking member includes a locking slide plate slidably inserted into the bottom of the sliding buffer and a locking gear rotatably mounted in the middle of the bottom end of the mounting base. The locking gear restricts the movement of the locking slide plate to achieve synchronous locking of the sliding positions of the two support plates.
[0006] In a preferred embodiment of the present invention, the mounting base plate is provided with mounting holes, the support plates are symmetrically arranged and slidably connected to the mounting base plate through a sliding buffer at the bottom, the sliding buffer includes a slide rod fixed to the bottom of the support plate, a support rubber seat sleeved and fixed to the upper part of the slide rod, and a slider fixedly connected to the bottom of the slide rod, and a guide slide is provided through the mounting base plate, the middle part of the slide rod slides along the guide slide.
[0007] This design allows the support plates on both sides to slide smoothly laterally along the guide rails, using sliding buffers to achieve flexible support and provide stable support for the bottom of the system module. It also allows for left and right spacing adjustment to accommodate system integration modules of different widths.
[0008] In a preferred embodiment of the present invention, the supporting rubber seat and the slider are located above and below the guide slide, respectively. The bottom of the supporting rubber seat is fixed with an annular plastic sheet for sliding contact with the top of the mounting base. A horizontal telescopic spring is fixedly connected to one side of the slider, and the end of the horizontal telescopic spring is fixedly connected to the inner wall of the mounting base.
[0009] This setup utilizes a horizontal telescopic spring to achieve elastic centering and pre-clamping of the support plates on both sides, enabling automatic pre-positioning during module installation. This eliminates the need for repeated manual alignment and calibration, significantly improving assembly efficiency. The support rubber base reduces sliding friction and provides basic buffer protection.
[0010] In a preferred embodiment of the present invention, a supporting slide plate is fixed to the inner wall of the mounting base plate corresponding to the lower part of the horizontal telescopic spring, the bottom of the locking slide plate is slidably connected to the supporting slide plate, and the top of the locking slide plate is fixedly connected to a uniformly distributed locking rod. A vertical telescopic hole is formed through the middle of the locking rod, the slider, and the slide bar. The upper part of the locking rod is slidably inserted into the vertical telescopic hole. A vertical buffer spring is fixedly connected between the slider and the locking slide plate, and the vertical buffer spring is sleeved on the locking rod.
[0011] This design utilizes the sliding cooperation of the slider, slide bar, and locking rod to facilitate the formation of a vertical buffer structure, ensuring a stable and elastic connection between the second locking member and the sliding buffer member. In the unlocked state, it allows the second locking member to move synchronously with the sliding buffer member and the support plate, thereby facilitating the locking or unlocking of the sliding buffer member and achieving synchronous locking or unlocking of the two support plates.
[0012] In a preferred embodiment of the present invention, locking slide bars are fixedly connected to the opposite sides of the two locking slide plates, and toothed segments are fixed to the inner walls of the ends of the two locking slide bars. The toothed segments are meshed with locking gears, and sliding sleeves are fixed to the ends of the two locking slide bars. The ends of the sliding sleeves are slidably sleeved on the smooth sections of the opposite locking slide bars to achieve stable sliding. A support ring is fixedly connected to the top of the locking gear, and the support ring is connected to the bottom center of the mounting base plate through a bearing.
[0013] This design utilizes the meshing transmission between the central locking gear and the toothed sections on both sides to achieve synchronous reverse displacement of the two sets of locking slide bars, thereby ensuring that the support plates on both sides are synchronously centered and locked, the clamping force is uniform, and the sliding process is smooth and does not deviate.
[0014] As a preferred embodiment of the present invention, a locking screw hole is provided in the middle of the mounting base plate corresponding to the inside of the support ring, and a locking screw is threaded through the middle of the locking gear. When the support plate is locked, the end of the locking screw is screwed into the locking screw hole.
[0015] With this setting, when locking the support plate, first hold the locking slider, then rotate the locking screw to move the locking screw upward until it is screwed into the locking screw hole. This will mechanically lock the engaged locking gear, restrict the free rotation of the locking gear, prevent it from loosening due to vibration, and permanently fix the position of the support plate, thereby improving the reliability and anti-loosening ability of the overall positioning and locking.
[0016] In a preferred embodiment of the present invention, the inner side of each of the supporting plates is provided with a slot, and the two positioning plates are located in the slot. The two positioning plates are respectively connected to the inner ends of the positive thread rod and the negative thread rod through bearings. The inner side of each positioning plate is fixed with a rubber pad, and the outer side of each positioning plate is fixed with a guide rod. The end of the guide rod slides through to the outside of the supporting plate and is fixedly connected to a slide block. The slide block is threaded onto the corresponding positive thread rod and the negative thread rod.
[0017] This design utilizes positive and negative threaded rods to drive the positioning clamp to extend and retract synchronously, and works in conjunction with rubber pads to achieve flexible clamping protection. The guide rod and slide block work together to ensure the linear movement of the positioning clamp, preventing clamping deviation and improving front and rear positioning accuracy.
[0018] In a preferred embodiment of the present invention, the first locking member includes a driven wheel that is sleeved and fixed to the outer ends of the positive thread rod and the negative thread rod. A support block is fixedly connected to the outer side wall of the support plate. A rotating rod is connected through the support blocks by a bearing. A driving wheel is sleeved and fixed to both the front and rear ends of the rotating rod. The driving wheel and the driven wheel are connected by a transmission belt. A handle is fixedly connected to the front end of the rotating rod.
[0019] With this setup, a single person can operate the handle to synchronously drive the forward and backward threaded rods and reverse threaded rods to rotate via the drive wheel, driven wheel, and transmission belt, thereby achieving synchronous clamping of the positioning clamps on both the front and rear sides. This ensures single-operation, synchronous locking, convenient adjustment, and strong clamping consistency.
[0020] Compared with existing technologies, the beneficial effects of this invention are as follows: Through the cooperation of the support plate and the sliding buffer, automatic left and right pre-positioning of the system module is achieved, eliminating the need for repeated manual calibration and making assembly convenient and efficient. Furthermore, through the cooperation of the second locking component, synchronous locking of the double-sided support structure is achieved, ensuring uniform clamping force on both sides. Combined with the linkage of the positive and negative screws, the positioning plate, and the first locking component, synchronous clamping in a single operation in the front and rear directions is achieved, solving the drawbacks of inconsistent adjustment force and cumbersome assembly in traditional separate systems. Simultaneously, through the cooperation of the sliding buffer, vertical buffer spring, vertical telescopic hole, and locking rod, this device integrates a vertical multi-buffered structure, effectively buffering equipment vibration and impact, providing stronger protection, a large overall adjustable range, adaptability to system integration modules of various sizes, good versatility, stable locking, vibration resistance, and anti-loosening, effectively improving the long-term stability and service life of the module. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the top structure provided in an embodiment of the present invention;
[0022] Figure 2 This is a schematic diagram of the bottom structure provided in an embodiment of the present invention;
[0023] Figure 3 This is a schematic diagram of the split structure provided in an embodiment of the present invention;
[0024] Figure 4 This is a schematic diagram of the support plate and locking slide structure provided in an embodiment of the present invention;
[0025] Figure 5 This is a cross-sectional structural schematic diagram provided in an embodiment of the present invention;
[0026] Figure 6 This is provided by the embodiments of the present invention. Figure 5 Enlarged structural diagram at point A in the middle;
[0027] Figure 7 This is provided by the embodiments of the present invention. Figure 1 Enlarged structural diagram of the middle handle.
[0028] In the diagram: 1. Mounting base plate; 101. Mounting hole; 102. Guide slide; 103. Supporting slide plate; 104. Locking screw hole; 2. Support plate; 201. Slot; 202. Support block; 3. Positive thread rod; 4. Negative thread rod; 5. Positioning clamp plate; 501. Guide rod; 502. Slide seat; 503. Driven wheel; 504. Transmission belt; 6. Rotating rod; 601. Driving wheel; 602. Handle; 7. Sliding buffer; 701. Slide rod; 702. Support rubber seat; 703. Slider; 704. Vertical telescopic hole; 705. Horizontal telescopic spring; 706. Vertical buffer spring; 8. Locking slide plate; 801. Locking insert; 802. Locking slide bar; 803. Sliding sleeve; 804. Tooth section; 9. Locking gear; 901. Locking screw; 902. Support ring. Detailed Implementation
[0029] To further understand the invention's content, features, and effects, the following embodiments are provided, and detailed descriptions are given in conjunction with the accompanying drawings.
[0030] The structure of the present invention will now be described in detail with reference to the accompanying drawings.
[0031] refer to Figures 1 to 7As shown in the figure, an adjustable support and positioning mechanism for a system integration module provided by an embodiment of the present invention includes a mounting base plate 1. Support plates 2 are slidably mounted on both ends of the top of the mounting base plate 1. The support plates 2 are used to support the two corners at the bottom of the system module. A positive thread rod 3 and a negative thread rod 4 are threaded through the front and rear ends of the support plates 2, respectively. Positioning clamps 5 are installed at the inner ends of the positive thread rod 3 and the negative thread rod 4. The positioning clamps 5 are used to clamp the front and rear ends of the system module. A first locking member is installed between the outer ends of the positive thread rod 3 and the negative thread rod 4. The first locking member is used to synchronously adjust the two positioning clamps 5. A uniformly distributed sliding buffer member 7 is fixed at the bottom of the support plates 2. A second locking member is provided at the bottom of the sliding buffer member 7. The second locking member includes a locking slide plate 8 slidably inserted into the bottom of the sliding buffer member 7 and a locking gear 9 rotatably mounted at the middle of the bottom end of the mounting base plate 1. The locking gear 9 achieves synchronous locking of the sliding positions of the two support plates 2 by restricting the movement of the locking slide plate 8.
[0032] Specifically, the mounting base plate 1 has mounting holes 101. The support plates 2 are symmetrically arranged and slidably connected to the mounting base plate 1 through the sliding buffer 7 at the bottom. The sliding buffer 7 includes a slide rod 701 fixed to the bottom of the support plate 2, a support rubber seat 702 sleeved and fixed to the upper part of the slide rod 701, and a slider 703 fixedly connected to the bottom of the slide rod 701. The mounting base plate 1 has a through guide slide 102, and the middle part of the slide rod 701 slides along the guide slide 102.
[0033] By adopting the above solution, the two side support plates 2 can slide smoothly laterally along the guide slide 102, and the sliding buffer 7 can be used to achieve flexible support, forming a stable support for the bottom of the system module. At the same time, the left and right spacing adjustment stroke is reserved to adapt to system integration modules of different width specifications.
[0034] Specifically, the supporting rubber seat 702 and the slider 703 are located above and below the guide slide 102, respectively. The bottom of the supporting rubber seat 702 is fixed with an annular plastic sheet for sliding contact with the top of the mounting base 1. A horizontal telescopic spring 705 is fixedly connected to one side of the slider 703, and the end of the horizontal telescopic spring 705 is fixedly connected to the inner wall of the mounting base 1.
[0035] By adopting the above solution, the elastic centering and pre-clamping of the two side support plates 2 is achieved by relying on the horizontal telescopic spring 705, realizing automatic pre-positioning during module installation, eliminating the need for repeated manual alignment and calibration, greatly improving assembly efficiency, and the support rubber seat 702 can reduce sliding friction and provide basic buffer protection.
[0036] Specifically, a supporting slide plate 103 is fixed to the inner wall of the mounting base plate 1 below the horizontal telescopic spring 705. The bottom of the locking slide plate 8 is slidably connected to the supporting slide plate 103. The top of the locking slide plate 8 is fixedly connected to evenly distributed locking rods 801. A vertical telescopic hole 704 is provided between the middle of the locking rods 801, the slider 703, and the slide rod 701. The upper part of the locking rod 801 is slidably inserted into the vertical telescopic hole 704. A vertical buffer spring 706 is fixedly connected between the slider 703 and the locking slide plate 8. The vertical buffer spring 706 is sleeved on the locking rod 801.
[0037] By adopting the above scheme, the sliding cooperation of slider 703, slider 701 and locking rod 801 facilitates the formation of a vertical buffer structure, ensuring a stable and elastic connection between the second locking member and the sliding buffer member 7. On the other hand, in the unlocked state, it facilitates the second locking member to move synchronously with the sliding buffer member 7 and the support plate 2, thereby facilitating the second locking member to lock or unlock the sliding buffer member 7, so as to realize the synchronous locking or unlocking of the two support plates 2.
[0038] Specifically, locking slide bars 802 are fixedly connected to the opposite sides of the two locking slide plates 8. Toothed segments 804 are fixed to the inner walls of the ends of the two locking slide bars 802. The toothed segments 804 are meshed with the locking gear 9. Sliding sleeves 803 are fixed to the ends of the two locking slide bars 802. The ends of the sliding sleeves 803 are slidably sleeved on the smooth sections of the opposite locking slide bars 802 to achieve stable sliding. A support ring 902 is fixedly connected to the top of the locking gear 9. The support ring 902 is connected to the bottom center of the mounting base plate 1 through a bearing.
[0039] By adopting the above scheme, the intermediate locking gear 9 is meshed with the toothed sections 804 on both sides to achieve synchronous reverse displacement of the two sets of locking slide bars 802, thereby ensuring that the two side support plates 2 are synchronously centered and locked, the clamping force is uniform, and the sliding process is smooth and does not deviate.
[0040] Specifically, a locking screw hole 104 is provided in the middle of the mounting base plate 1 inside the support ring 902, and a locking screw 901 is threaded through the middle of the locking gear 9. When the support plate 2 is locked, the end of the locking screw 901 is screwed into the locking screw hole 104.
[0041] Using the above scheme, when locking the support plate 2, first hold the locking slide bar 802, then rotate the locking screw 901 so that the locking screw 901 moves upward until it is screwed into the locking screw hole 104, which can mechanically lock the engaged locking gear 9, restrict the free rotation of the locking gear 9, prevent it from loosening due to vibration, and achieve permanent fixation of the position of the support plate 2, thereby improving the reliability and anti-loosening ability of the overall positioning and locking.
[0042] Specifically, the inner side of the support plate 2 is provided with a slot 201, and the two positioning plates 5 are located in the slot 201. The two positioning plates 5 are respectively connected to the inner ends of the positive thread rod 3 and the negative thread rod 4 through bearings. The inner side of the positioning plates 5 is fixed with a rubber pad, and the outer side of the positioning plates 5 is fixed with a guide rod 501. The end of the guide rod 501 slides through to the outside of the support plate 2 and is fixedly connected to a slide block 502. The slide block 502 is threadedly sleeved on the corresponding positive thread rod 3 and the negative thread rod 4.
[0043] Using the above scheme, the positive thread rod 3 and the negative thread rod 4 drive the positioning clamping plate 5 to extend and retract synchronously, and the rubber pad achieves flexible clamping protection. The guide rod 501 and the slide 502 work together to ensure the linear movement of the positioning clamping plate 5, avoid clamping deviation, and improve the front and rear positioning accuracy.
[0044] Specifically, the first locking component includes a driven wheel 503 that is sleeved and fixed to the outer ends of the positive thread rod 3 and the negative thread rod 4. A support block 202 is fixedly connected to the outer side wall of the support plate 2. A rotating rod 6 is connected through the support blocks 202 by bearings. A driving wheel 601 is sleeved and fixed to both the front and rear ends of the rotating rod 6. The driving wheel 601 and the driven wheel 503 are connected by a transmission belt 504. A handle 602 is fixedly connected to the front end of the rotating rod 6.
[0045] Using the above scheme, a single person can operate the handle 602 to drive the positive thread rod 3 and the negative thread rod 4 in the front and rear directions to rotate synchronously through the driving wheel 601, the driven wheel 503 and the transmission belt 504, so as to realize the synchronous clamping of the positioning clamps 5 on the front and rear sides, achieving single operation, synchronous locking, convenient adjustment and strong clamping consistency.
[0046] Working principle of the invention:
[0047] In use, based on the actual width of the system integration module to be installed, the two side support plates 2 can automatically open outwards by the elastic action of the horizontal telescopic spring 705, placing the system module between the two sets of support plates 2 to complete the bottom support, so that the two side support plates 2 automatically fit the left and right side walls of the system module to complete the elastic pre-positioning. At the same time, the second locking member drives the locking slide plate 8, locking slide bar 802, and toothed section 804 to move synchronously with the support plates 2 through the locking rod 801. When locking the position of the support plates 2, first hold the locking slide bar 802, and then rotate the locking screw 901, so that the locking screw 901 moves upward until it is screwed into the locking screw hole 104, restricting the free rotation of the locking gear 9, locking and fixing the locking gear 9, thereby restricting the lateral sliding of the sliding buffer 7 and the support plates 2, and completing the synchronous locking and fixing in the left and right directions.
[0048] Then, rotate the outer handle 602. The handle 602 drives the rotating rod 6 and the two end drive wheels 601 to rotate synchronously. Through the transmission belt 504, the driven wheel 503 is driven to rotate in conjunction, causing the positive thread rod 3 and the negative thread rod 4 to rotate synchronously. Under the limiting and guiding action of the guide rod 501 and the slide 502, the front and rear sets of positioning clamps 5 move closer to each other synchronously, uniformly clamping and protecting the front and rear ends of the system module. During the operation of the equipment, the support rubber seat 702 and the vertical buffer spring 706 cooperate with each other to form a vertical multi-dimensional buffer structure, effectively attenuating the vibration and impact of the equipment. The whole system integration module realizes the complete use process of adjustable support, automatic pre-positioning, synchronous clamping and locking and multiple buffer protection.
[0049] 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 process, method, article, or apparatus.
[0050] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An adjustable support and positioning mechanism for a system integration module, comprising a mounting base plate (1), characterized in that: Support plates (2) are slidably mounted on both ends of the top of the mounting base plate (1). The support plates (2) are used to support the two corners at the bottom of the system module. The front and rear ends of the support plates (2) are threaded with a positive thread rod (3) and a negative thread rod (4), respectively. The inner ends of the positive thread rod (3) and the negative thread rod (4) are each equipped with a positioning clamp (5). The positioning clamp (5) is used to clamp the front and rear ends of the system module. A first locking element is installed between the outer ends of the positive thread rod (3) and the negative thread rod (4). The first locking member is used to synchronously adjust the two positioning clamps (5). The bottom of the support plate (2) is fixed with evenly distributed sliding buffers (7). The bottom of the sliding buffers (7) is provided with a second locking member. The second locking member includes a locking slide plate (8) that is slidably inserted into the bottom of the sliding buffers (7) and a locking gear (9) that is rotatably installed in the middle of the bottom end of the mounting base plate (1). The locking gear (9) locks the sliding position of the two support plates (2) synchronously by restricting the movement of the locking slide plate (8).
2. The adjustable support and positioning mechanism for a system integration module as described in claim 1, characterized in that: The mounting base plate (1) has mounting holes (101). The support plates (2) are symmetrically arranged and slidably connected to the mounting base plate (1) through the sliding buffer (7) at the bottom. The sliding buffer (7) includes a slide rod (701) fixed to the bottom of the support plate (2), a support rubber seat (702) sleeved and fixed to the upper part of the slide rod (701), and a slider (703) fixedly connected to the bottom of the slide rod (701). The mounting base plate (1) has a through guide slide (102), and the middle part of the slide rod (701) slides along the guide slide (102).
3. The adjustable support and positioning mechanism for a system integration module as described in claim 2, characterized in that: The supporting rubber seat (702) and the slider (703) are located above and below the guide slide (102), respectively. The bottom of the supporting rubber seat (702) is fixed with an annular plastic sheet for sliding contact with the top of the mounting base (1). A horizontal telescopic spring (705) is fixedly connected to one side of the slider (703), and the end of the horizontal telescopic spring (705) is fixedly connected to the inner wall of the mounting base (1).
4. The adjustable support and positioning mechanism for a system integration module as described in claim 3, characterized in that: The inner wall of the mounting base (1) corresponding to the horizontal telescopic spring (705) is fixed with a supporting slide plate (103). The bottom of the locking slide plate (8) is slidably connected to the supporting slide plate (103). The top of the locking slide plate (8) is fixedly connected with evenly distributed locking rods (801). A vertical telescopic hole (704) is opened between the middle of the locking rod (801), the slider (703), and the slide rod (701). The upper part of the locking rod (801) is slidably inserted into the vertical telescopic hole (704). A vertical buffer spring (706) is fixedly connected between the slider (703) and the locking slide plate (8). The vertical buffer spring (706) is sleeved on the locking rod (801).
5. The adjustable support and positioning mechanism for a system integration module as described in claim 1, characterized in that: Locking slides (802) are fixedly connected to the opposite sides of the two locking slides (8). The inner walls of the ends of the two locking slides (802) are fixed with toothed sections (804). The toothed sections (804) are meshed with the locking gear (9). The ends of the two locking slides (802) are fixed with sliding sleeves (803). The ends of the sliding sleeves (803) are slidably sleeved on the smooth sections of the opposite locking slides (802) to achieve stable sliding. The top of the locking gear (9) is fixedly connected with a support ring (902). The support ring (902) is connected to the bottom center of the mounting base plate (1) through a bearing.
6. The adjustable support and positioning mechanism for a system integration module as described in claim 5, characterized in that: The mounting base plate (1) inside the support ring (902) has a locking screw hole (104) in the middle. The locking gear (9) has a locking screw (901) threaded through its middle part. When the support plate (2) is locked, the end of the locking screw (901) is screwed into the locking screw hole (104).
7. The adjustable support and positioning mechanism for a system integration module as described in claim 1, characterized in that: The inner side of the support plate (2) is provided with a slot (201). The two positioning plates (5) are located in the slot (201). The two positioning plates (5) are respectively connected to the inner ends of the positive thread rod (3) and the negative thread rod (4) through bearings. The inner side of the positioning plates (5) is fixed with a rubber pad. The outer side of the positioning plates (5) is fixed with a guide rod (501). The end of the guide rod (501) slides through to the outside of the support plate (2) and is fixedly connected with a slide block (502). The slide block (502) is threaded onto the corresponding positive thread rod (3) and negative thread rod (4).
8. The adjustable support and positioning mechanism for a system integration module as described in claim 1, characterized in that: The first locking component includes a driven wheel (503) sleeved and fixed to the outer ends of the positive thread rod (3) and the negative thread rod (4). A support block (202) is fixedly connected to the outer side wall of the support plate (2). A rotating rod (6) is connected through the support blocks (202) by bearings. A driving wheel (601) is sleeved and fixed to both the front and rear ends of the rotating rod (6). The driving wheel (601) and the driven wheel (503) are connected by a transmission belt (504). A handle (602) is fixedly connected to the front end of the rotating rod (6).