Industrial computer with damping structure
By using magnet components and cushioning parts that are non-contact connected to the chassis in industrial computers, the problem of poor shock absorption effect under vibration and impact is solved, and higher stability and reliability are achieved.
Patent Information
- Application Number
- CN202422290919.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-19
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-09-19
AI Technical Summary
In the vibration and impact environment, the aging and deformation of the shock absorbing material leads to a reduced shock absorption effect. The direct contact between the metal plate and the chassis leads to the transmission of vibration energy, affecting the stability and life of components.
Magnet components and cushioning parts that are non-contact connected to the chassis are adopted, and the magnet repulsive force and elastic characteristics of the cushioning parts are used to isolate and absorb vibrations and reduce direct contact transmission.
It significantly improves the stability and reliability of industrial computers, reduces the direct damage to components by vibration and impact, and extends the service life.
Smart Images

Figure CN223140112U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of computers, and particularly to an industrial computer with a shock-absorbing structure. Background Art
[0002] As a special computer device, industrial computers play a crucial role in key industries such as manufacturing, power, and transportation. These application scenarios require industrial computers to have extremely high stability and reliability to ensure the continuous operation of industrial automation and informatization systems. However, the industrial on-site environment is usually complex and changeable, especially the widespread existence of vibration and shock phenomena, which pose severe challenges to the structural integrity and performance stability of industrial computers.
[0003] Traditional industrial computer chassis mostly adopt metal structure designs in order to obtain sufficient strength and a certain degree of seismic resistance. Several shock-absorbing solutions have been proposed in the prior art. One common approach is to introduce shock-absorbing materials, such as rubber pads or sponges, between the chassis and the metal plate, aiming to absorb and isolate vibration energy. Although the above-mentioned shock-absorbing materials can reduce vibration transmission in the initial stage, they face problems such as aging and deformation, which cause the shock-absorbing effect to gradually decrease over time. More critically, due to the direct contact between the metal plate and the chassis, vibration energy will still be transmitted to the components on the plate through the metal structure. In the case of high-frequency vibration or large-amplitude shock, the effect of the shock-absorbing materials is particularly limited and it is difficult to provide sufficient protection for sensitive electronic components. This direct vibration transmission caused by this hard connection method significantly increases the risk of component de-soldering, fracture, and even functional failure, seriously damaging the stability and effective service life of industrial computers.
[0004] Therefore, it is necessary to provide an industrial computer with a shock-absorbing structure that can effectively isolate and absorb vibration, thereby improving the adaptability and reliability of industrial computers in harsh industrial environments. Utility Model Content
[0005] In view of this, it is necessary to provide an industrial computer with a shock-absorbing structure to solve the above problems.
[0006] An embodiment of this application provides an industrial computer with a shock-absorbing structure, including:
[0007] A chassis, the chassis includes a first side wall, a second side wall perpendicular to the first side wall, and a third side wall perpendicular to the first side wall and the second side wall;
[0008] A shock-absorbing plate generated by moving along a direction parallel to the third side wall from the first side wall, the shock-absorbing plate includes a support portion and a mounting groove, one end of the mounting groove is connected to the chassis, the other end is connected to the top of the support portion, the support portion is provided at the edge of the shock-absorbing plate and does not contact the chassis;
[0009] A magnet assembly is disposed between the support portion and the chassis;
[0010] A metal plate, arranged on the end surface of the shock absorbing plate assembly;
[0011] A plurality of shock absorbing members have one end disposed on the bottom surface of the shock absorbing plate assembly and the other end disposed on the first side wall.
[0012] In at least one embodiment of the present application, the magnet assembly includes a first magnet and a second magnet, the first magnet is disposed on the third side wall, the second magnet is disposed on the support portion, and the first magnet and the second magnet have the same magnetic properties.
[0013] In at least one embodiment of the present application, the shock-absorbing plate also includes a plurality of shock-absorbing connecting blocks, and the plurality of shock-absorbing connecting blocks are extended in a direction perpendicular to the end surface of the shock-absorbing plate, and each of the shock-absorbing connecting blocks has a shock-absorbing groove and a connecting portion, the shock-absorbing groove is arranged on the bottom surface of the shock-absorbing plate, the connecting portion is arranged away from the shock-absorbing groove, and the connecting portion is connected to the metal plate by screws.
[0014] In at least one embodiment of the present application, the shock absorbing plate has shock absorbing holes, and the shock absorbing holes are evenly distributed on the shock absorbing plate.
[0015] In at least one embodiment of the present application, the mounting groove is a hollow structure so as to be filled with a liquid material having high damping properties.
[0016] In at least one embodiment of the present application, the chassis further includes a mounting assembly, and the mounting assembly is disposed at a center position of the third side wall.
[0017] In at least one embodiment of the present application, the mounting assembly includes a first mounting frame and a second mounting frame arranged relative to the first mounting frame, wherein the first mounting frame has a first placement layer, the second mounting frame has a second placement layer, and each of the first placement layers is arranged parallel to the second placement layer.
[0018] In at least one embodiment of the present application, the chassis further includes a mounting opening, and the mounting opening is arranged opposite to the mounting component.
[0019] In at least one embodiment of the present application, the chassis further includes a heat dissipation port, and the heat dissipation port is disposed on the second side wall.
[0020] In at least one embodiment of the present application, the chassis further includes a footrest, and the footrest is disposed at the bottom of the chassis.
[0021] An industrial computer with a shock-absorbing structure provided above effectively reduces the direct contact between the metal plate and the chassis by setting a magnet component at the connection between the shock-absorbing plate and the chassis, reducing the direct damage caused by vibration and impact. Through the connection between the shock-absorbing components on the shock-absorbing plate and the side wall of the chassis, and the repulsive force of the magnet component, the vibration isolation and absorption effects are jointly achieved, significantly improving the stability and reliability of the industrial computer. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 FIG. is a schematic structural diagram of an industrial computer with a shock-absorbing structure in an embodiment of the present application.
[0023] Figure 2 FIG. is a top view of an industrial computer with a shock-absorbing structure in an embodiment of the present application.
[0024] Figure 3 FIG. is a rear view exploded diagram of the chassis in an embodiment of the present application.
[0025] Figure 4 FIG. is a schematic structural diagram of a first mounting bracket and a second mounting bracket in an embodiment of the present application.
[0026] Figure 5 FIG. is a schematic structural diagram of a magnet component in an embodiment of the present application.
[0027] Figure 6 FIG. is a schematic structural diagram of one side of a shock-absorbing plate in an embodiment of the present application.
[0028] Figure 7 FIG. is a schematic structural diagram of the other side of the shock-absorbing plate in an embodiment of the present application.
[0029] DESCRIPTION OF THE MAIN ELEMENT SYMBOLS
[0030] 100. An industrial computer with a shock-absorbing structure; 10. Chassis; 11. First side wall; 12. Second side wall; 13. Third side wall; 20. Shock-absorbing plate; 21. Support part; 22. Installation groove; 23. Shock-absorbing connection block; 23a. Shock-absorbing groove; 23b. Connection part; 24. Shock-absorbing hole; 30. Magnet component; 31. Second magnet; 32. First magnet; 40. Metal plate; 50. Shock-absorbing component; 60. Installation component; 61. First mounting bracket; 62. Second mounting bracket; 611. First placement layer; 621. Second placement layer; 70. Installation opening; 80. Heat dissipation opening; 90. Footrest. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0031] Next, the embodiments of the present application will be described in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments.
[0032] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intermediate component present. When a component is considered to be "disposed on" another component, it can be directly disposed on the other component or there may be an intermediate component present. The terms "top", "bottom", "upper", "lower", "left", "right", "front", "rear", and similar expressions used herein are for illustrative purposes only.
[0033] An embodiment of the present application provides an industrial computer with a shock-absorbing structure, including:
[0034] A chassis, the interior of the chassis includes a first side wall, a second side wall perpendicular to the first side wall, and a third side wall perpendicular to the first side wall and the second side wall;
[0035] A shock-absorbing plate is generated by moving along a direction parallel to the third side wall from the first side wall. The shock-absorbing plate includes a support portion and a mounting groove. One end of the mounting groove is connected to the chassis, and the other end is connected to the top end of the support portion. The support portion is disposed at the edge of the shock-absorbing plate and does not contact the chassis.
[0036] A magnet assembly is disposed opposite between the support portion and the chassis;
[0037] A metal plate is disposed on the end face of the shock-absorbing plate assembly;
[0038] A plurality of shock-absorbing members, one end is disposed on the bottom surface of the shock-absorbing plate assembly, and the other end is disposed on the first side wall.
[0039] For the above-provided industrial computer with a shock-absorbing structure, by setting a magnet assembly at the connection between the shock-absorbing plate and the chassis, the direct contact between the metal plate and the chassis is effectively reduced, and the direct damage caused by vibration and impact is reduced; through the connection between the shock-absorbing members on the shock-absorbing plate and the side wall of the chassis, and the repulsive force of the magnet assembly, the vibration isolation and absorption effects are jointly achieved, significantly improving the stability and reliability of the industrial computer.
[0040] The following will describe in detail some embodiments of the present application with reference to the accompanying drawings. Without conflict, the following embodiments and the features in the embodiments can be combined with each other.
[0041] According to Figures 1-7 , an industrial computer 100 with a shock-absorbing structure is provided in an embodiment of the present application, including a chassis 10, a shock-absorbing plate 20, a magnet assembly 30, a metal plate 40, and a shock-absorbing member 50.
[0042] Among them, the interior of the chassis 10 includes a first side wall 11, a second side wall 12 perpendicular to the first side wall 11, and a third side wall 13 perpendicular to the first side wall 11 and the second side wall 12; a shock-absorbing plate 20 is generated by moving along a direction parallel to the third side wall 13 from the first side wall 11. The shock-absorbing plate 20 includes a support portion 21 and a mounting groove 22. One end of the mounting groove 22 is connected to the chassis 10, and the other end is connected to the top end of the support portion 21. The support portion 21 is provided at the edge of the shock-absorbing plate 20 and does not contact the chassis 10; a magnet assembly 30 is disposed opposite between the support portion 21 and the chassis 10; a metal plate 40 is disposed on the end face of the shock-absorbing plate 20 assembly; one end of a plurality of shock-absorbing members 50 is disposed on the bottom surface of the shock-absorbing plate 20 assembly, and the other end is disposed on the first side wall 11.
[0043] Specifically, in the embodiment of the present application, the first side wall 11, the second side wall 12, and the third side wall 13 serve as the frame structure of the chassis 10, and the third side wall 13 is the bottom frame of the chassis 10. The shock-absorbing plate 20 is a square structural plate, and the support portion 21 is the edge portion of the shock-absorbing plate 20 and does not directly contact the side wall of the chassis 10, further reducing the possibility of vibration being directly transmitted to the interior of the chassis 10. The magnet assembly 30 is disposed between the support portion 21 and the chassis 10, and uses the repulsive force of the magnetic force to achieve non-contact support, greatly reducing the vibration transmission caused by hard contact. The shock-absorbing member 50 is a spring structure. One end of the shock-absorbing member 50 is fixedly disposed on the bottom surface of the shock-absorbing plate 20 assembly, and the other end is fixed to the first side wall 11. The shock-absorbing member 50 can not only serve as the connection support point between the shock-absorbing plate 20 and the first side wall 11 of the chassis 10, enabling the shock-absorbing plate 20 to have a fixed support function, but also form a multi-point shock-absorbing support, greatly improving the shock-absorbing effect.
[0044] Furthermore, when the industrial computer encounters vibration or impact, the vibration sensation is transmitted to the shock-absorbing plate 20 and the metal plate 40 through the first side wall 11, the second side wall 12, and the third side wall 13 of the chassis 10 respectively. When transmitted through the first side wall 11, a plurality of shock-absorbing members 50 absorb and isolate the vibration through their elastic characteristics, reducing the vibration sensation transmitted from the first side wall 11 to the shock-absorbing plate 20. When transmitted through the second side wall 12 and the third side wall 13, the shock-absorbing member 50 is fixedly connected to the chassis 10 through the mounting groove 22 to prevent excessive movement of the shock-absorbing plate 20 during vibration. The support portion 21 of the shock-absorbing member 50 is indirectly connected to the chassis 10 through the magnet assembly 30. The magnet assembly 30 provides additional buffering, so that a magnetic force is generated between the shock-absorbing member 50 and the chassis 10 without contact, thereby forming a non-rigid connection between the support portion 21 and the chassis 10, thus absorbing the vibration.
[0045] In a specific embodiment, the magnet assembly 30 includes a first magnet 32 and a second magnet 31. The first magnet 32 is disposed on the third sidewall 13, and the second magnet 31 is disposed on the support portion 21. Moreover, the first magnet 32 and the second magnet 31 have the same magnetic property.
[0046] Specifically, the repulsive force between the magnets is utilized to achieve the suspension effect. The support of the shock-absorbing plate 20's support portion 21 and the chassis 10 is provided by the magnetic field of the repulsive force, thereby reducing the contact area between the shock-absorbing plate 20 and the chassis 10, and further reducing the transmission of the sense of shock.
[0047] In a specific embodiment, the shock-absorbing plate 20 further includes a plurality of shock-absorbing connecting blocks 23. The plurality of shock-absorbing connecting blocks 23 extend in a direction perpendicular to the end face of the shock-absorbing plate 20. Each shock-absorbing connecting block 23 has a shock-absorbing groove 23a and a connecting portion 23b. The shock-absorbing groove 23a is disposed on the bottom surface of the shock-absorbing plate 20, the connecting portion 23b is disposed away from the shock-absorbing groove 23a, and the connecting portion 23b is connected to the metal plate 40 by screws.
[0048] Specifically, the shock-absorbing connecting blocks 23 protrude outward from the side surface of the shock-absorbing plate 20. The connecting portion 23b is the outward protruding part of the shock-absorbing connecting block 23, and the connecting portion 23b is connected to the metal plate 40 by screws. The shock-absorbing groove 23a is a protruding groove, and the shock-absorbing groove 23a provides additional deformation space, thereby absorbing more vibration energy from the shock-absorbing plate 20.
[0049] In a specific embodiment, the shock-absorbing plate 20 has shock-absorbing holes 24, and the shock-absorbing holes 24 are evenly distributed on the shock-absorbing plate 20.
[0050] Specifically, in the embodiment of the present application, the number of the shock-absorbing holes 24 is four.
[0051] In a specific embodiment, the installation groove 22 is a hollow structure so as to be filled with a liquid material having high damping property.
[0052] Specifically, the installation groove 22 serves as the fixed support of the shock-absorbing plate 20 and the chassis 10, and its interior can be filled with materials to reduce the sense of shock caused by the solid installation groove 22.
[0053] In a specific embodiment, the chassis 10 further includes an installation assembly 60, and the installation assembly 60 is disposed at the central position of the third sidewall 13.
[0054] Specifically, the installation assembly 60 is used for placing plugins, etc. Placing the installation assembly 60 at the central position of the third sidewall 13 helps to disperse the weight and stress, improve the overall structural stability, ensure the uniform weight distribution inside the chassis 10, and reduce the additional vibration or deformation caused by uneven weight distribution.
[0055] In a specific embodiment, the mounting assembly 60 includes a first mounting bracket 61 and a second mounting bracket 62 disposed opposite to the first mounting bracket 61. The first mounting bracket 61 has a first placement layer 611, the second mounting bracket 62 has a second placement layer 621, and the first placement layer 611 and the second placement layer 621 are arranged in parallel.
[0056] Specifically, the parallel placement layers can ensure that the hardware mounted thereon remains stable and reduce relative movement caused by vibration or impact.
[0057] In a specific embodiment, the chassis 10 further includes a mounting port 70, and the mounting port 70 is disposed opposite to the mounting assembly 60.
[0058] Specifically, when assembling or replacing hardware, the hardware is directly inserted through the mounting port 70 on the chassis 10 and fixed by means of screws or buckles. The whole process is simple and fast, and no additional tools are required.
[0059] In a specific embodiment, the chassis 10 further includes a heat dissipation port 80, and the heat dissipation port 80 is provided on the second side wall 12.
[0060] Specifically, the heat dissipation port 80 is used to provide necessary air circulation to help the hot air inside the chassis 10 to be discharged, so as to cooperate with the heat dissipation system (such as a fan) of the chassis 10 to maintain the temperature of the internal components within a safe range.
[0061] In a specific embodiment, the chassis 10 further includes a footrest 90, and the footrest 90 is provided at the bottom of the chassis 10.
[0062] Specifically, the footrest 90 is provided at the bottom of the chassis 10 to support the entire chassis 10, which not only prevents the chassis 10 from directly contacting the placement surface and causing wear, but also provides a certain shock absorption effect to avoid damage to the internal components caused by vibration.
[0063] The above are only the implementation manners of the present application. It should be noted here that for those of ordinary skill in the art, without departing from the creative concept of the present application, improvements can still be made, but these all fall within the protection scope of the present application.
Claims
1. An industrial computer with a shock-absorbing structure, characterized in that, Comprising: A chassis, the chassis includes a first side wall, a second side wall perpendicular to the first side wall, and a third side wall perpendicular to the first side wall and the second side wall; A shock-absorbing plate, generated by moving from the first side wall in a direction parallel to the third side wall, the shock-absorbing plate includes a support portion and a mounting groove, one end of the mounting groove is connected to the chassis, and the other end is connected to the top of the support portion, the support portion is provided at the edge of the shock-absorbing plate and does not contact the chassis; A magnet assembly, disposed opposite between the support portion and the chassis; A metal plate, disposed on the end face of the shock-absorbing plate assembly; A plurality of shock-absorbing members, one end is disposed on the bottom surface of the shock-absorbing plate assembly, and the other end is disposed on the first side wall.
2. The industrial computer with a shock-absorbing structure according to claim 1, characterized in that, The magnet assembly includes a first magnet and a second magnet, the first magnet is disposed on the third side wall, the second magnet is disposed on the support portion, and the first magnet and the second magnet have the same magnetic property.
3. The industrial computer with a shock-absorbing structure according to claim 1, characterized in that, The shock-absorbing plate further includes a plurality of shock-absorbing connection blocks, the plurality of shock-absorbing connection blocks extend in a direction perpendicular to the end face of the shock-absorbing plate, each shock-absorbing connection block has a shock-absorbing groove and a connection portion, the shock-absorbing groove is disposed on the bottom surface of the shock-absorbing plate, the connection portion is disposed away from the shock-absorbing groove, and the connection portion is connected to the metal plate by screws.
4. The industrial computer with a shock-absorbing structure according to claim 1, characterized in that, The shock-absorbing plate has shock-absorbing holes, and the shock-absorbing holes are evenly distributed on the shock-absorbing plate.
5. The industrial computer with a shock-absorbing structure according to claim 1, characterized in that, The mounting groove is a hollow structure to fill with a liquid material having high damping properties.
6. The industrial computer with a shock-absorbing structure according to claim 1, wherein, The chassis further includes a mounting assembly, and the mounting assembly is disposed at the central position of the third side wall.
7. An industrial computer with a shock-absorbing structure according to claim 6, characterized in that, The mounting assembly includes a first mounting bracket and a second mounting bracket disposed opposite to the first mounting bracket, wherein; The first mounting bracket has a first placement layer, the second mounting bracket has a second placement layer, and each first placement layer is parallel to the second placement layer.
8. An industrial computer with a shock-absorbing structure according to claim 6, characterized in that, The chassis further includes a mounting opening, and the mounting opening is disposed opposite to the mounting assembly.
9. An industrial computer with a shock-absorbing structure according to claim 1, characterized in that, The chassis further includes a heat dissipation opening, and the heat dissipation opening is disposed on the second side wall.
10. The industrial computer with a shock-absorbing structure according to claim 1, characterized in that, The chassis further includes feet, and the feet are disposed at the bottom of the chassis.