A shock absorbing mounting mechanism

By combining the design of support rods, support sleeves and magnetic components, and with the fine-tuning and positioning of the installation guide rails and limit blocks, multiple buffer layers are formed, which solves the shortcomings of traditional shock absorption mechanisms in terms of lateral sway and adaptive installation, and achieves multi-dimensional shock absorption and stability improvement.

CN224592599UActive Publication Date: 2026-08-04SICHUAN LAISINUO INTELLIGENT EQUIPMENT TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SICHUAN LAISINUO INTELLIGENT EQUIPMENT TECHNOLOGY CO LTD
Filing Date
2025-06-24
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

Traditional shock absorption mechanisms cannot effectively suppress lateral swaying generated during equipment operation, lack lateral displacement constraint mechanisms, and fixed mounting bases are difficult to adapt to equipment of different sizes. In particular, heavy equipment that needs to be precisely matched with the center of gravity lacks a continuously adjustable positioning function, and local stress concentration during the installation of heavy equipment can easily lead to deformation of the mounting point.

Method used

The design employs a combination of support rods, support sleeves, and magnetic components. It utilizes the repulsion of magnetic poles to buffer vertical impacts and the attraction of magnetic poles to suppress lateral swaying. Combined with paired mounting rails with scales and movable mounting sliders, along with elastic positioning by limit blocks, and the addition of springs, buffer pads, and rubber supports to form multiple buffer layers, it achieves multi-dimensional shock absorption and distributed load bearing.

Benefits of technology

It significantly enhances vibration damping performance, improves the flexibility and stability of equipment installation, strengthens protection under extreme working conditions, and ensures the stability and service life of equipment under multidimensional vibration.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a vibration damping installation mechanism, relating to the field of equipment vibration damping technology. The vibration damping installation mechanism provided by this utility model utilizes the synergistic effect of support rods, support sleeves, and first, second, and third magnetic components. It buffers vertical impacts by utilizing the repulsion between the magnetic poles of the second and third magnetic components, while simultaneously suppressing lateral sway by the attraction between the magnetic poles of the first and second magnetic components, thus achieving multi-dimensional vibration damping. Combined with paired mounting rails with scales and movable mounting sliders, along with elastic positioning of limit blocks and fine adjustment of the scale pointer, it enhances the flexibility and stability of equipment installation. Furthermore, the addition of springs, buffer pads, and rubber supports forms multiple buffer layers, which, in conjunction with the distributed load-bearing design of the equipment mounting plate, significantly enhances the protection capability under extreme working conditions and the overall structural reliability.
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Description

Technical Field

[0001] This utility model relates to the field of equipment vibration reduction technology, specifically to a vibration reduction installation mechanism. Background Technology

[0002] In the field of equipment vibration damping installation, traditional mechanisms generally use passive damping components such as springs and rubber pads, which have significant limitations. Conventional damping components mainly rely on elastic deformation to absorb vertical impacts, but cannot effectively suppress lateral swaying generated during equipment operation. When the equipment is subjected to eccentric loads or external disturbances, lateral displacement can easily lead to equipment instability and fatigue fracture of connecting parts, lacking a constraint mechanism for horizontal swaying. Fixed mounting bases are difficult to adapt to equipment of different sizes, especially heavy equipment that requires precise matching of the center of gravity position. Existing mechanisms lack continuously adjustable positioning functions. Although simple sliding rail structures exist, they lack anti-displacement locking devices, and the equipment is prone to deviating from the set position under vibration. During the installation of heavy equipment, local stress concentration can easily lead to deformation of the mounting point. Therefore, it is urgent to solve the above problems and provide a vibration damping installation mechanism that can synergistically suppress multi-directional vibrations, support adaptive position adjustment, enhance protection under extreme working conditions, and improve load-bearing stability. Utility Model Content

[0003] The purpose of this utility model is to address the aforementioned problems by providing a shock-absorbing installation mechanism. Through the synergistic action of support rods, support sleeves, and first, second, and third magnetic components, the repulsion between the magnetic poles of the second and third magnetic components buffers vertical impacts, while the attraction between the magnetic poles of the first and second magnetic components suppresses lateral sway, achieving multi-dimensional shock absorption. Combined with paired mounting rails with scales and movable mounting sliders, along with elastic positioning of limit blocks and fine-tuning of the scale pointer, the flexibility and stability of equipment installation are improved. Furthermore, the addition of springs, buffer pads, and rubber supports forms multiple buffer layers, which, in conjunction with the distributed load-bearing design of the equipment mounting plate, significantly enhances the protection capability under extreme working conditions and the overall structural reliability.

[0004] The technical solution adopted in this utility model is as follows: A vibration damping mounting mechanism includes a top mounting plate, a bottom mounting plate, and a plurality of vibration damping support assemblies. The target equipment is mounted on the top mounting plate. The vibration damping support assemblies are located between the top mounting plate and the bottom mounting plate. Each vibration damping support assembly includes a support rod, a support sleeve, a first magnetic element, a second magnetic element, and a third magnetic element. The bottom end of the support sleeve is connected to the bottom mounting plate, and the top end is connected to the first magnetic element. The first magnetic element has a through hole. One end of the support rod is connected to the top mounting plate, and the other end passes through the through hole in the first magnetic element, extends into the support sleeve, and connects to the second magnetic element. The third magnetic element is located at the bottom of the support sleeve. The magnetic poles of the second and third magnetic elements repel each other, while the magnetic poles of the first and second magnetic elements attract each other.

[0005] Thanks to the aforementioned technical solution, when the target equipment vibrates or is subjected to external impact, the vibration energy is transmitted to the support rods through the top mounting plate. The support rods then drive the connected second magnetic component to move within the support sleeve. At this time, the like poles of the second and third magnetic components repel each other, generating a repulsive force that effectively buffers and absorbs severe vertical impacts. Simultaneously, the unlike poles of the first and second magnetic components attract each other, generating a stable attractive force. This attraction not only guides and stabilizes the support rods during vertical movement, but more importantly, when the target equipment's operation or external disturbances cause the support rods to sway laterally, this attraction quickly pulls them back to their central position. Combined with the through-hole's restriction on the support rods and the support sleeve's restriction on the second magnetic component, this stabilizes the support rods' trajectory, effectively suppressing lateral swaying and offset, and preventing the target equipment from becoming unstable or experiencing structural fatigue due to swaying.

[0006] Furthermore, the top mounting plate is provided with a pair of mounting guide rails, which are parallel to each other and spaced apart. Each mounting guide rail is equipped with at least two mounting sliders that can move along the mounting guide rail. The mounting sliders are connected to the target device through mounting components.

[0007] By adopting the above technical solution, and by setting a pair of mounting guide rails and a mounting slider that can move along the mounting guide rails on the top mounting plate, the mounting slider can be adjusted in position according to the size of the target equipment, thereby improving flexibility and applicability.

[0008] Furthermore, each end of the mounting guide rail is provided with a pair of limiting blocks, and the opposite side of the pair of limiting blocks is provided with an elastic pad. The limiting blocks can be fixed to the mounting guide rail and / or the top mounting plate by limiting components.

[0009] By adopting the above technical solution, by setting a pair of limiting blocks at both ends of the installation guide rail along its length, the displacement of the installation slider along the installation guide rail can be restricted by the limiting blocks. When the limiting blocks are in use, the elastic pads on them will abut against the two ends of the corresponding installation slider. The elastic pads can absorb the horizontal impact energy through their own elastic deformation, thereby achieving shock absorption of the installation slider in the horizontal direction and ensuring the stability of the target equipment during operation.

[0010] Furthermore, the limiting component includes a plurality of first limiting holes spaced apart along the length of the mounting guide rail, a second limiting hole provided in the limiting block, and a fixing screw that can limit the limiting block to any of the first limiting holes. The first limiting holes are provided in the mounting guide rail and / or the top mounting plate, and the fixing screw can pass through and limit the corresponding first limiting holes and second limiting holes.

[0011] Thanks to the aforementioned technical solution, when a limiting block needs to be fixed, the operator first places the limiting block on the mounting rail at the desired blocking position. Then, the second limiting hole on the limiting block is aligned with one of the first limiting holes on the mounting rail and / or the top mounting plate. Finally, a fixing screw is inserted and tightened, passing through the aligned first and second limiting holes, thus firmly locking the limiting block in that position. Multiple first limiting holes provide multiple discrete, precision-controlled fixing points, allowing the operator to precisely select the fixing position of the limiting block according to actual needs, to match equipment of different sizes or installation spacing requirements of different widths. This structure is simple, reliable, and easy to operate, ensuring that the limiting block will not loosen after fixing, providing precise and secure positioning for the mounting slider and equipment.

[0012] Furthermore, a scale is provided on the top mounting plate along the length of the mounting guide rail.

[0013] Thanks to the above technical solution, when adjusting the position of the mounting slider or setting the position of the limit block, the operator can directly read the scale value on the ruler to obtain an intuitive and accurate length reference. This allows for quick and accurate movement of the mounting slider or limit block to the designated position, improving the accuracy and convenience of installation.

[0014] Furthermore, the mounting slider and / or limiting block are provided with a scale pointer that can match the scale.

[0015] Thanks to the aforementioned technical solution, when the operator moves the mounting slider or limit block on the mounting rail, the scale pointer moves along with the slider or limit block, precisely pointing to the scale on the top mounting plate. This allows the operator to intuitively and clearly read the scale value corresponding to the pointer, thus obtaining real-time and accurate information about the current position of the mounting slider or limit block, improving operational convenience.

[0016] Furthermore, the mounting sliders on the paired mounting rails cooperate with each other to support the equipment mounting plate, and the target device is connected to the mounting sliders through the equipment mounting plate.

[0017] By employing the aforementioned technical solution, the mounting sliders on paired mounting rails cooperate to connect and support the equipment mounting plate. This distributes the weight and vibration loads of the target equipment evenly across multiple mounting sliders via the equipment mounting plate, which then transfer the loads to the mounting rails on both sides and the entire top mounting plate. This multi-point, distributed support method significantly improves the overall stability and load-bearing capacity of the target equipment installation, effectively preventing deformation or failure of the mounting points due to excessive localized stress. This is especially beneficial for large or heavy target equipment, ensuring safe and stable installation on the vibration damping mechanism.

[0018] Furthermore, a spring is provided between the first magnetic component and the top mounting plate, and the spring is sleeved on the support rod.

[0019] Thanks to the aforementioned technical solution, the spring is compressed and installed between the first magnetic component and the top mounting plate, surrounding the support rod. When the target equipment experiences downward vibration or impact, the top mounting plate drives the support rod downward, further compressing the spring. This spring compression generates an upward elastic restoring force, assisting the magnetic repulsion force in resisting the downward impact. When the target equipment rebounds upward after the impact, the compressed spring releases its stored energy, assisting the support rod and top mounting plate in resetting. This design further enhances the vibration damping effect and improves the system's stability and durability.

[0020] Furthermore, the bottom surface of the bottom mounting plate is provided with a rubber support.

[0021] Thanks to the aforementioned technical solution, the rubber support is directly installed on the bottom surface of the base plate, serving as the contact point between the entire vibration damping mounting mechanism and the mounting base. When residual vibration energy transmitted from the vibration damping support assembly reaches the base plate, the rubber support, utilizing its high damping and elastic deformation characteristics, effectively absorbs and dissipates this vibration energy. This is equivalent to adding an isolation barrier at the final stage of the vibration damping mounting mechanism, further reducing the vibration and noise transmitted to the environment. Furthermore, the rubber support also increases friction, preventing the vibration damping mounting mechanism from sliding relative to the mounting base.

[0022] Furthermore, a buffer pad is provided between the top mounting plate and the bottom mounting plate. The buffer pad is made of flexible buffer material, with its bottom surface abutting against the bottom mounting plate and its top surface abutting against the top mounting plate.

[0023] Thanks to the aforementioned technical solution, the buffer pad is installed within the space between the top and bottom mounting plates, with the vibration damping support assembly surrounding it. When the target equipment experiences particularly severe vibrations or impacts, the buffer pad compresses and deforms, dissipating the impact energy through internal material damping. This not only further absorbs and disperses vibrations but also provides overload protection for the vibration damping support assembly, preventing rigid collisions due to vibration overload. This significantly improves the reliability and service life of the entire vibration damping installation mechanism under extreme conditions.

[0024] In summary, due to the adoption of the above technical solutions, the beneficial effects of this utility model are as follows: Through the combined design of the support rod, support sleeve, first magnetic component, second magnetic component, and third magnetic component, and utilizing the repulsive force between the magnetic poles of the second and third magnetic components to buffer vertical impacts, while simultaneously using the attractive force between the magnetic poles of the first and second magnetic components to stabilize the movement trajectory of the support rod and suppress lateral swaying, combined with the constraint of the through hole and the support sleeve, multidimensional vibration energy is significantly absorbed, improving vibration damping performance. By setting paired mounting rails and movable mounting sliders on the top mounting plate, the installation position of the target equipment can be flexibly adjusted, improving applicability; the paired limiting blocks and their elastic pads at both ends of the mounting rails absorb horizontal impacts, preventing displacement of the mounting slider; and the multiple first limiting holes, second limiting holes, and fixing screws in the limiting assembly achieve precise locking of the limiting block position, ensuring stable installation. The scale on the top mounting plate, in conjunction with the scale pointer on the mounting slider or limiting block, provides an intuitive position reference, improving installation accuracy. Mounting sliders on paired mounting rails support the target equipment via the equipment mounting plate, achieving uniform load distribution and enhancing overall stability. A spring-assisted magnetic system between the first magnetic component and the top mounting plate enhances cushioning and widens the vibration damping frequency response range. Rubber supports on the bottom of the bottom mounting plate absorb residual vibration and provide anti-slip properties, reducing environmental noise transmission. A buffer pad made of flexible cushioning material between the top and bottom mounting plates provides ultimate overload protection, dissipating severe impact energy, preventing rigid collisions, and improving reliability and service life under extreme conditions. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the structure of the shock absorption mounting mechanism of this utility model mounted on the target equipment; Figure 2 This is a structural schematic diagram of the shock-absorbing support component of this utility model; Figure 3 This is a schematic diagram of the structure of the limiting block and the mounting slider of this utility model; Figure 4 This is a structural schematic diagram of the fixing screw limiting block of this utility model.

[0026] The markings in the diagram are: 1-Target equipment, 2-Mounting slider, 3-Mounting guide rail, 4-Top mounting plate, 5-Scale, 6-Support rod, 7-First magnetic component, 71-Second magnetic component, 72-Third magnetic component, 8-Bottom mounting plate, 9-Rubber support component, 10-Buffer pad, 11-Limiting block, 12-Equipment mounting plate, 13-Fixing screw, 14-Scale pointer, 15-Spring, 16-Elastic pad, 17-First limiting hole, 18-Second limiting hole. Detailed Implementation

[0027] The present invention will now be described in detail with reference to the accompanying drawings.

[0028] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.

[0029] Example 1 A vibration damping installation mechanism, such as Figures 1-3 As shown, the device includes a top mounting plate 4, a bottom mounting plate 8, and four vibration damping support assemblies. The vibration damping support assemblies are located between the top mounting plate 4 and the bottom mounting plate 8. Both the top mounting plate 4 and the bottom mounting plate 8 are rectangular plates, and the four vibration damping support assemblies are respectively located at the four corners of the rectangular plates. The target device 1 is mounted on the top mounting plate 4. Figure 1 The target device 1 shown is a water ring vacuum pump. The vibration damping support assembly includes a support rod 6, a support sleeve, a first magnetic element 7, a second magnetic element 71, and a third magnetic element 72. The bottom end of the support sleeve is connected to the bottom mounting plate 8, and the top end is connected to the first magnetic element 7. The first magnetic element 7 has a through hole. One end of the support rod 6 is connected to the top mounting plate 4, and the other end passes through the through hole on the first magnetic element 7, extends into the support sleeve, and connects to the second magnetic element 71. The third magnetic element 72 is located at the bottom of the support sleeve. The magnetic poles of the second magnetic element 71 and the third magnetic element 72 repel each other, while the magnetic poles of the first magnetic element 7 and the second magnetic element 71 attract each other.

[0030] Specifically, when the target equipment 1 vibrates or is subjected to external impact, the vibration energy is transmitted to the support rod 6 through the top mounting plate 4. The support rod 6 drives the second magnetic component 71 connected to it to move within the support sleeve. At this time, the like poles of the second magnetic component 71 and the third magnetic component 72 repel each other, generating a repulsive force, which effectively buffers and absorbs severe impacts in the vertical direction. At the same time, the unlike poles of the first magnetic component 7 and the second magnetic component 71 attract each other, generating a stable attractive force. This attraction not only plays a certain guiding and stabilizing role for the support rod 6 during vertical movement, but more importantly, when the target equipment 1 operates or external disturbances cause the support rod 6 to have a tendency to swing laterally, this attraction can quickly pull it back to the center position. Combined with the through hole restricting the support rod 6 and the support sleeve restricting the second magnetic component 71, it can stabilize the movement trajectory of the support rod 6, effectively suppressing lateral swaying and offset, and preventing the target equipment 1 from becoming unstable or experiencing structural fatigue due to swaying.

[0031] The top mounting plate 4 is provided with a pair of mounting guide rails 3. The pair of mounting guide rails 3 are parallel to each other and spaced apart. Each mounting guide rail 3 is equipped with two mounting sliders 2 that can move along the mounting guide rail 3. The mounting sliders 2 are connected to the target device 1 through mounting parts.

[0032] Specifically, by providing a pair of mounting rails 3 and a mounting slider 2 that can move along the mounting rails 3 on the top mounting plate 4, the mounting slider 2 can be adjusted in position according to the size of the target device 1, thereby improving flexibility and applicability.

[0033] The mounting guide rail 3 has a pair of limiting blocks 11 at both ends, and an elastic pad 16 is provided on the opposite side of the pair of limiting blocks 11. The limiting blocks 11 can be fixed to the top mounting plate 4 by limiting components.

[0034] Specifically, by setting a pair of limiting blocks 11 at both ends of the mounting guide rail 3 along its length, and with two mounting sliders 2 located between the pair of limiting blocks 11, the displacement of the mounting sliders 2 along the mounting guide rail 3 can be restricted by the limiting blocks 11. When in use, the elastic pads 16 on the limiting blocks 11 will abut against the ends of the corresponding mounting sliders 2. The elastic pads 16 can absorb the impact energy in the horizontal direction through their own elastic deformation, thereby achieving shock absorption of the mounting sliders 2 in the horizontal direction and ensuring the stability of the target device 1 during operation.

[0035] like Figure 3 As shown, the limiting component includes a plurality of first limiting holes 17 spaced apart along the length of the mounting guide rail 3, a second limiting hole 18 provided on the limiting block 11, and a fixing screw 13 that can limit the limiting block 11 to any of the first limiting holes 17. The top mounting plate 4 is provided with two rows of first limiting holes 17 on both sides corresponding to the width direction of each mounting guide rail 3. The fixing screw 13 can pass through and limit the corresponding first limiting holes 17 and second limiting holes 18 in the vertical direction.

[0036] Specifically, when the limiting block 11 needs to be fixed, the operator first places the limiting block 11 on the mounting guide rail 3 at the desired blocking position. Then, the second limiting hole 18 on the limiting block 11 is aligned with one of the first limiting holes 17 on the top mounting plate 4. Finally, the fixing screw 13 is inserted and tightened, so that the fixing screw 13 passes through the aligned first limiting hole 17 and second limiting hole 18, thereby firmly locking the limiting block 11 in that position. Multiple first limiting holes 17 provide multiple discrete, precision-controllable fixing points, allowing the operator to accurately select the fixing position of the limiting block 11 according to actual needs to match equipment of different sizes or installation spacing requirements of different widths. This structure is simple, reliable, and easy to operate, ensuring that the limiting block 11 will not loosen after being fixed, providing precise and secure position locking for the mounting slider 2 and the equipment. The elastic pad 16 has a telescopic range greater than or equal to the distance between two adjacent first limiting holes 17.

[0037] A scale 5 is provided on the top mounting plate 4 along the length of the mounting guide rail 3.

[0038] Specifically, when adjusting the position of the mounting slider 2 or setting the position of the limit block 11, the operator can directly read the scale value on the ruler 5 to obtain an intuitive and accurate length reference, and can quickly and accurately move the mounting slider 2 or the limit block 11 to the designated position, thus improving the accuracy and convenience of installation.

[0039] The limiting block 11 is provided with a scale pointer 14 that can match the scale ruler 5. Alternatively, the mounting slider 2 can be provided with a scale pointer 14 that can match the scale ruler 5, depending on the usage requirements.

[0040] Specifically, when the operator moves the mounting slider 2 or the limiting block 11 on the mounting guide rail 3, the scale pointer 14 moves along with the mounting slider 2 or the limiting block 11 and precisely points to the scale 5 on the top mounting plate 4. In this way, the operator can read the scale value corresponding to the scale pointer 14 very intuitively and clearly, thereby knowing the current position of the mounting slider 2 or the limiting block 11 in real time and accurately, improving the convenience of operation.

[0041] The mounting sliders 2 on the paired mounting guide rails 3 cooperate to connect with each other and support the equipment mounting plates 12. The target device 1 is connected to the mounting sliders 2 through the equipment mounting plates 12. The four mounting sliders 2 connect to and support the two equipment mounting plates 12. The equipment mounting plates 12 are perpendicular to the mounting guide rails 3, so that the paired mounting guide rails 3 and the two equipment mounting plates 12 form a stable grid structure.

[0042] Specifically, by connecting and supporting the equipment mounting plate 12 through the interlocking mounting sliders 2 on the paired mounting guide rails 3, the gravity and vibration load of the target equipment 1 are evenly distributed to multiple mounting sliders 2 via the equipment mounting plate 12, and then transferred by the mounting sliders 2 to the mounting guide rails 3 on both sides and the entire top mounting plate 4. This multi-point, distributed support method significantly improves the overall stability and load-bearing capacity of the target equipment 1 installation, effectively preventing deformation or failure of the mounting points due to excessive local stress on the target equipment 1. Especially for large or heavy target equipment 1, it ensures the safe and stable installation of the target equipment 1 on the vibration damping mechanism.

[0043] A spring 15 is provided between the first magnetic component 7 and the top mounting plate 4, and the spring 15 is sleeved on the support rod 6.

[0044] Specifically, spring 15 is compressed and installed between the first magnetic component 7 and the top mounting plate 4, and surrounds the support rod 6. When the target device 1 operates and generates downward vibration or impact, the top mounting plate 4 drives the support rod 6 downward, further compressing spring 15. The compression of spring 15 generates an upward elastic restoring force, which assists the magnetic repulsion force in resisting the downward impact. When the target device 1 rebounds upward after the impact, the compressed spring 15 releases its stored energy, assisting the support rod 6 and the top mounting plate 4 in resetting. This design further enhances the shock absorption effect and improves the stability and durability of the system.

[0045] The bottom surface of the bottom mounting plate 8 is provided with a rubber support 9.

[0046] Specifically, the rubber support 9 is directly installed on the bottom surface of the bottom mounting plate 8, serving as the contact point between the entire vibration damping mounting mechanism and the mounting base, which can be the ground or the frame. When the residual vibration energy transmitted from the vibration damping support assembly reaches the bottom mounting plate 8, the rubber support 9, utilizing its high damping and elastic deformation characteristics, can effectively absorb and dissipate this vibration energy. This is equivalent to adding an isolation barrier at the final stage of the vibration damping mounting mechanism, further reducing the vibration and noise transmitted from the vibration damping mounting mechanism to the environment. In addition, the rubber support 9 also increases friction, preventing the vibration damping mounting mechanism from sliding relative to the mounting base.

[0047] A buffer pad 10 is also provided between the top mounting plate 4 and the bottom mounting plate 8. The buffer pad 10 is made of flexible cushioning material, and its bottom surface abuts against the bottom mounting plate 8 and its top surface abuts against the top mounting plate 4. Preferably, the buffer pad 10 can be made of materials such as rubber or polyurethane.

[0048] Specifically, the buffer pad 10 is filled and installed in the space between the top mounting plate 4 and the bottom mounting plate 8, and the shock-absorbing support assembly surrounds the buffer pad 10. When the target equipment 1 generates particularly severe vibrations or impacts during operation, the buffer pad 10 undergoes compression deformation, dissipating the impact energy through the damping effect within the material. This not only further absorbs and disperses vibrations but also provides overload protection for the shock-absorbing support assembly, preventing rigid collisions caused by vibration overload. This significantly improves the reliability and service life of the entire shock-absorbing installation mechanism under extreme conditions.

[0049] Example 2 Example 2 replaces the arrangement of the limiting components in Example 1; further explanation: identical components will not be described again here, such as... Figure 4 As shown, the limiting block 11 can be fixed to the mounting guide rail 3 by a limiting component. The limiting component includes a plurality of first limiting holes 17 spaced apart along the length direction of the mounting guide rail 3, a second limiting hole 18 provided in the limiting block 11, and a fixing screw 13 that can limit the limiting block 11 to any of the first limiting holes 17. The first limiting holes 17 are provided on both sides of the mounting guide rail 3 in the width direction. The fixing screw 13 can pass through in the horizontal direction and limit the corresponding first limiting holes 17 and second limiting holes 18.

[0050] This document uses specific embodiments to illustrate the principles and implementation methods of this utility model. The descriptions of the embodiments above are only for the purpose of helping to understand the method and core ideas of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made to this utility model without departing from the principles of this utility model, and these improvements and modifications also fall within the protection scope of the claims of this utility model.

[0051] In the description of this utility model, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the utility model product is in use. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0052] In the description of this utility model, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

Claims

1. A shock absorbing mounting mechanism comprising a top mounting plate, a bottom mounting plate, and a plurality of shock absorbing support assemblies, a target device being mounted to the top mounting plate, the shock absorbing support assemblies being disposed between the top mounting plate and the bottom mounting plate, characterized in that, The shock-absorbing support assembly includes a support rod, a support sleeve, a first magnetic component, a second magnetic component, and a third magnetic component. The bottom end of the support sleeve is connected to a bottom mounting plate, and the top end is connected to the first magnetic component. The first magnetic component has a through hole. One end of the support rod is connected to the top mounting plate, and the other end passes through the through hole on the first magnetic component, extends into the support sleeve, and connects to the second magnetic component. The third magnetic component is located at the bottom of the support sleeve. The magnetic poles of the second and third magnetic components repel each other, while the magnetic poles of the first and second magnetic components attract each other.

2. The shock mounting mechanism of claim 1, wherein The top mounting plate is provided with a pair of mounting rails, which are parallel to each other and spaced apart. Each mounting rail is equipped with at least two mounting sliders that can move along the mounting rail. The mounting sliders are connected to the target device through mounting components.

3. The shock absorbing mounting mechanism of claim 2, wherein, The mounting guide rail has a pair of limiting blocks at both ends, and the opposite side of the pair of limiting blocks has an elastic pad. The limiting blocks can be fixed to the mounting guide rail and / or the top mounting plate by limiting components.

4. The shock mounting mechanism of claim 3, wherein The limiting component includes a plurality of first limiting holes spaced apart along the length of the mounting guide rail, a second limiting hole provided in the limiting block, and a fixing screw that can limit the limiting block to any of the first limiting holes. The first limiting holes are provided in the mounting guide rail and / or the top mounting plate, and the fixing screw can pass through and limit the corresponding first limiting holes and second limiting holes.

5. The shock mount mechanism of claim 3, wherein, A scale is provided on the top mounting plate along the length of the mounting rail.

6. The shock mounting mechanism of claim 5, wherein, The mounting slider and / or limit block are provided with scale pointers that can match the scale.

7. The shock mount mechanism of claim 2, wherein, The mounting sliders on the paired mounting rails cooperate to connect and support the equipment mounting plate, and the target equipment is connected to the mounting sliders through the equipment mounting plate.

8. The shock mount mechanism of claim 1, wherein, A spring is provided between the first magnetic component and the top mounting plate, and the spring is sleeved on the support rod.

9. The shock mount mechanism of claim 1, wherein, The bottom surface of the bottom mounting plate is provided with a rubber support.

10. The shock mount mechanism of claim 1, wherein, A buffer pad is provided between the top mounting plate and the bottom mounting plate. The buffer pad is made of flexible buffer material, and the bottom surface of the buffer pad abuts against the bottom mounting plate and the top surface abuts against the top mounting plate.