High anti-seismic embedded industrial computer

By introducing support and buffer mechanisms into the embedded industrial computer, and utilizing components such as movable support rods and buffer columns, the vibration problem caused by the lack of shock absorption structure in the industrial computer is solved, and higher seismic performance is achieved.

CN224315422UActive Publication Date: 2026-06-02REVOLTEK CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
REVOLTEK CO LTD
Filing Date
2025-07-08
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Existing embedded industrial control computers lack shock absorption and buffer structures, causing the machine body to be subject to vibration and shaking during use, which affects the stability of internal components.

Method used

A highly shock-resistant embedded industrial computer was designed. By setting a support mechanism and a buffer mechanism, including a resistance mechanism, a buffer mechanism and a support mechanism, at the top of the industrial computer body, and using components such as movable support rods, fixed support rods, buffer columns and elastic pads, elastic support and shock absorption of the industrial computer can be achieved.

Benefits of technology

It improves the vibration resistance of the industrial control computer, ensuring stable operation of the machine in a vibrating environment and preventing components from loosening.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224315422U_ABST
Patent Text Reader

Abstract

The utility model relates to industrial computer technical field especially a kind of high anti-seismic embedded industrial computer, including industrial computer body, the top middle of industrial computer body is provided with abutting mechanism, the bottom middle of industrial computer body is equipped with buffer mechanism, the both sides of the bottom of industrial computer body are equipped with supporting mechanism, and bottom plate is installed below;The abutting mechanism includes abutting plate, and the abutting plate is butted in the top middle of the industrial computer body.Autumn beneficial effect lies in: the utility model can be carried out elastic support and shock absorption installation to the bottom of industrial computer body, improve the anti-seismic property of embedded industrial computer installation use, after industrial computer body is installed by supporting mechanism and buffer mechanism anti-seismic support, cooperate with the clamping plate and elastic strip of four sides of industrial computer body and carry out limiting stable installation, to keep the stable installation use of industrial computer body.
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Description

Technical Field

[0001] This utility model relates to the field of industrial control computer technology, and in particular to a highly shock-resistant embedded industrial control computer. Background Technology

[0002] Embedded industrial PCs are computer devices specifically designed for industrial control, featuring high reliability, high real-time performance, low power consumption, and small size. They typically employ embedded processors and integrate various industrial interfaces and signal acquisition modules, enabling real-time monitoring and control of parameters such as temperature, humidity, pressure, and flow rate in automated industrial production, while ensuring high efficiency and precision in the production process. Embedded industrial PCs are widely used in industrial automation control, logistics and conveying systems, assembly line processing, smart healthcare, and smart cities.

[0003] For example, the prior art Chinese patent publication number "CN217718582U" provides an embedded industrial control computer, including a mounting cabinet and an industrial control computer body. The mounting cabinet has a slot, and the inner cavity of the slot engages with the industrial control computer body. The upper and lower surfaces of the industrial control computer body are provided with an embedding mechanism near the edge in the width direction. The embedding mechanism includes a connecting edge block, and the lower surface of the connecting edge block is fixedly connected to the upper surface of the industrial control computer body. One side of the connecting edge block has an inner groove along its length direction, and a transverse condition is provided in the inner groove.

[0004] The device works by pulling the latch, which then causes the horizontal condition to disengage from the inner groove. The horizontal condition then moves the connecting condition synchronously, which in turn pulls the V-shaped top plate downwards. The lower surface of the V-shaped top plate then compresses the spring, allowing the locking block at the top of the V-shaped top plate to disengage from the slot. This allows for easy assembly and disassembly of the industrial control computer and the mounting cabinet.

[0005] The lack of external shock absorption structure during the installation and use of existing embedded industrial PCs can cause the PC body to be subjected to vibration and shaking during use, resulting in loosening of internal components and affecting the safe and stable use of the industrial PC.

[0006] Therefore, a highly shock-resistant embedded industrial control computer is proposed. Utility Model Content

[0007] The purpose of this invention is to address the shortcomings of existing industrial control computers, such as the lack of shock-absorbing and buffering structures on the outside of the computer body, which leads to vibration and shaking of the computer body during use, causing the internal components of the computer body to become loose due to vibration. Therefore, this invention proposes a highly shock-resistant embedded industrial control computer.

[0008] To achieve the above objectives, this utility model provides the following technical solution:

[0009] Design a high-vibration-resistant embedded industrial control computer, including an industrial control computer body. A contact mechanism is located at the center of the top of the industrial control computer body, a buffer mechanism is installed at the center of the bottom of the industrial control computer body, and support mechanisms are installed on both sides of the bottom of the industrial control computer body. A base plate is installed below these support mechanisms. The contact mechanism includes a contact plate that abuts against the center of the top of the industrial control computer body. The buffer mechanism includes a buffer column that elastically supports the center of the bottom of the industrial control computer body. The support mechanism includes a movable support rod and a fixed support rod. First support plates are fixed to both ends of the fixed support rod, and the first support plates are fixed to both sides of the top of the base plate. A second support plate is fixed to the middle of the fixed support rod, and a sliding block is slidably mounted on its surface. A first spring is slidably sleeved on the surface of the fixed support rod and connected between the sliding block and the second support plate. The bottom end of the movable support rod is hinged to the top end of the sliding block, and its top end is hinged to the bottom end of the industrial control computer body.

[0010] Furthermore, a snap-fit ​​plate is fixed at the top four corners of the base plate, and an elastic strip is glued to the inner side of the snap-fit ​​plate. The snap-fit ​​plate is tightly snapped into the four corners of the industrial control computer body through the elastic strip, and a support frame is fixed at the top of the snap-fit ​​plate.

[0011] Furthermore, a connecting hole is opened in the middle of the top of the support frame, and a bolt passes through the internal thread of the connecting hole. The bottom end of the bolt is fixed to the middle of the top of the abutment plate. A first elastic pad is adhered to the bottom end of the abutment plate. The first elastic pad tightly abuts against the middle of the top of the industrial control computer body. The connecting hole is a threaded hole structure. The bolt is set vertically. The abutment plate and the first elastic pad are both circular structures and are both set horizontally.

[0012] Furthermore, a support cylinder is fixed at the top center of the base plate, and a second spring is connected to the bottom of the support cylinder. The top of the second spring is connected to the bottom of the buffer column, and a second elastic pad is adhered to the top of the buffer column. The second elastic pad is tightly abutted against the bottom center of the industrial control computer body. The support cylinder is a cylindrical structure and is vertically arranged, and its height is not higher than the height of the bottom of the movable support rod. The buffer column is a cylindrical structure and is vertically arranged, and the second elastic pad is horizontally arranged.

[0013] Furthermore, the second support plate is fixed to the top of the base plate, and a plug hole is opened at the top of the plate. The two ends of the first spring are respectively connected to the side of the second support plate and the sliding block. A sliding hole is opened in the middle of the sliding block. The fixed support rod slides through the sliding hole. A nut is connected to the surface of the fixed support rod at a position outside the sliding block. The fixed support rod is a threaded rod structure.

[0014] Furthermore, a first connecting block is fixed to the top of the sliding block, and the bottom end of the movable support rod is hinged to the sliding block through the first connecting block. A second connecting block is fixed at the four corners of the bottom of the industrial control computer body. The top end of the movable support rod is hinged to the second connecting block and the industrial control computer body. The movable support rod is inclined.

[0015] Furthermore, the fixed support rod is horizontally arranged, the first support plate and the second support plate are both vertically arranged, and the sliding block is a rectangular block structure and is horizontally arranged.

[0016] Furthermore, the base plate is a rectangular plate structure and is horizontally arranged; the cross-section of the snap-fit ​​plate and the elastic strip are both L-shaped structures and are both vertically arranged; the support frame is a cross-shaped structure and is horizontally arranged above the industrial control computer body.

[0017] The high shock-resistant embedded industrial control computer proposed in this utility model has the following advantages:

[0018] 1. This utility model provides a support mechanism and a buffer mechanism between the bottom of the industrial control computer body and the base plate. During installation and use, the industrial control computer body is supported by movable and fixed support rods. A first spring provides elastic support to the two movable support rods and their bottom sliding blocks. Nuts limit and dampen the sliding blocks and movable support rods. Simultaneously, a first support plate supports the fixed support rods. A buffer column is elastically connected to the top of the support cylinder by a second spring, and a second elastic pad provides buffer support to the bottom of the industrial control computer body. Therefore, the bottom of the industrial control computer body can be elastically supported and damped during installation, improving the shock resistance of the embedded industrial control computer.

[0019] 2. This utility model sets a bolt in the middle of the support frame and sets an abutment plate and a first elastic pad at the bottom of the bolt. After the industrial control computer body is installed with anti-vibration support by the support mechanism and the buffer mechanism, rotating the bolt drives the abutment plate and the first elastic pad to abut and limit the top of the industrial control computer body. It also works with the snap-fit ​​plates and elastic strips on the four sides of the industrial control computer body to limit and stabilize the installation, thereby maintaining the stable installation and use of the industrial control computer body. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0021] Figure 2 This utility model Figure 1 A schematic diagram of the support frame and the main body of the industrial control computer;

[0022] Figure 3 This utility modelFigure 1 A schematic diagram of the buffer mechanism structure;

[0023] Figure 4 This utility model Figure 1 A schematic diagram of the second support plate and the first spring section;

[0024] Figure 5 This utility model Figure 1 A schematic diagram of the sliding block and movable support rod structure.

[0025] In the diagram: 1. Industrial computer body; 2. Connecting plate; 3. Second connecting block; 4. Movable support rod; 5. Second connecting block; 6. First support plate; 7. Fixed support rod; 8. Nut; 9. Sliding block; 10. Buffer column; 11. Support cylinder; 12. Second support plate; 13. First spring; 14. First elastic pad; 15. Abutment plate; 16. Elastic strip; 17. Bolt; 18. Support frame; 19. Base plate; 20. Connecting hole; 21. Second elastic pad; 22. Second spring; 23. Insertion hole; 24. Sliding hole. Detailed Implementation

[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0027] Example 1

[0028] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 The figure shows a high shock-resistant embedded industrial control computer, including an industrial control computer body 1. The top center of the industrial control computer body 1 is provided with an abutment mechanism, the bottom center of the industrial control computer body 1 is installed with a buffer mechanism, the bottom two sides of the industrial control computer body 1 are installed with support mechanisms, and a base plate 19 is installed below it.

[0029] The abutting mechanism includes an abutting plate 15, which abuts against the top center of the industrial control computer body 1.

[0030] The buffer mechanism includes a buffer column 10, which is elastically supported at the bottom center of the industrial control computer body 1.

[0031] A support cylinder 11 is fixed at the top center of the base plate 19. A second spring 22 is connected to the bottom of the support cylinder 11. The top of the second spring 22 is connected to the bottom of the buffer column 10. A second elastic pad 21 is bonded to the top of the buffer column 10. The second elastic pad 21 is tightly pressed against the bottom center of the industrial control computer body 1. The support cylinder 11 is a cylindrical structure and is vertically set. Its height is not higher than the bottom height of the movable support rod 4. The buffer column 10 is a cylindrical structure and is vertically set. The second elastic pad 21 is horizontally set.

[0032] The support mechanism includes a movable support rod 4 and a fixed support rod 7. The two ends of the fixed support rod 7 are fixed with first support plates 6, which are fixed to the top two sides of the base plate 19. The middle of the fixed support rod 7 is fixed with a second support plate 12, and a sliding block 9 is slidably installed on its surface. A first spring 13 is slidably sleeved on the surface of the fixed support rod 7 between the sliding block 9 and the second support plate 12. The bottom end of the movable support rod 4 is hinged to the top end of the sliding block 9, and its top end is hinged to the bottom end of the industrial control computer body 1.

[0033] The second support plate 12 is fixed to the top of the base plate 19, and has a plug hole 23 at its top. The two ends of the first spring 13 are connected to the side of the second support plate 12 and the sliding block 9, respectively. The sliding block 9 has a sliding hole 24 in the middle. The fixed support rod 7 slides through the sliding hole 24. A nut 8 is connected to the surface of the fixed support rod 7 at a position outside the sliding block 9. The fixed support rod 7 is a threaded rod structure.

[0034] The top of the sliding block 9 is fixed with a first connecting block 5. The bottom of the movable support rod 4 is hinged to the sliding block 9 through the first connecting block 5. The bottom corners of the industrial computer body 1 are fixed with second connecting blocks 3. The top of the movable support rod 4 is hinged to the second connecting block 3 and the industrial computer body 1. The movable support rod 4 is set at an angle.

[0035] During the installation and use of the industrial computer body 1, the industrial computer body 1 is supported by the movable support rod 4 and the fixed support rod 7, and the two movable support rods 4 and the sliding block 9 at their bottom ends are elastically supported by the first spring 13. The fixed support rod 7 is supported by the first support plate 6, and the sliding block 9 and the movable support rod 4 are limited and damped by the nut 8. At the same time, the buffer column 10 is elastically connected to the top of the support cylinder 11 by the second spring 22, and the bottom end of the industrial computer body 1 is buffered and supported by the second elastic pad 21. Therefore, the bottom end of the industrial computer body 1 can be elastically supported and damped during installation, improving the shock resistance of the embedded industrial computer during installation and use.

[0036] The fixed support rod 7 is set horizontally, the first support plate 6 and the second support plate 12 are both set vertically, and the sliding block 9 is a rectangular block structure and is set horizontally.

[0037] Example 2

[0038] A high shock-resistant embedded industrial control computer includes an industrial control computer body 1, an abutment mechanism is provided at the middle of the top of the industrial control computer body 1, a buffer mechanism is installed at the middle of the bottom of the industrial control computer body 1, support mechanisms are installed on both sides of the bottom of the industrial control computer body 1, and a base plate 19 is installed below it.

[0039] The abutting mechanism includes an abutting plate 15, which abuts against the top center of the industrial control computer body 1.

[0040] A snap-fit ​​plate 2 is fixed at the top four corners of the base plate 19. An elastic strip 16 is glued to the inside of the snap-fit ​​plate 2. The snap-fit ​​plate 2 is tightly snapped to the four corners of the industrial control computer body 1 through the elastic strip 16. A support frame 18 is fixed at the top of the snap-fit ​​plate 2.

[0041] A connecting hole 20 is opened in the middle of the top of the support frame 18. A bolt 17 passes through the internal thread of the connecting hole 20. The bottom end of the bolt 17 is fixed to the middle of the top of the abutment plate 15. A first elastic pad 14 is bonded to the bottom of the abutment plate 15. The first elastic pad 14 is tightly abutted against the middle of the top of the industrial control computer body 1. The connecting hole 20 is a threaded hole structure. The bolt 17 is set vertically. The abutment plate 15 and the first elastic pad 14 are both circular structures and are both set horizontally.

[0042] After the industrial computer body 1 is installed with anti-vibration support by the support mechanism and the buffer mechanism, the bolt 17 is rotated to drive the abutment plate 15 and the first elastic pad 14 to abut and limit the top of the industrial computer body 1. It also works with the snap-fit ​​plates 2 and elastic strips 16 on the four sides of the industrial computer body 1 to limit and stabilize the installation, thereby maintaining the stable installation and use of the industrial computer body 1.

[0043] The base plate 19 is a rectangular plate structure and is set horizontally. The cross-section of the snap-fit ​​plate 2 and the elastic strip 16 are both L-shaped structures and are set vertically. The support frame 18 is a cross-shaped structure and is set horizontally above the industrial control computer body 1.

[0044] Working method: By setting a support mechanism and a buffer mechanism between the bottom of the industrial control computer body 1 and the base plate 19, the industrial control computer body 1 is supported by the movable support rod 4 and the fixed support rod 7 during installation and use. The two movable support rods 4 and the sliding block 9 at their bottom ends are elastically supported by the first spring 13. The fixed support rod 7 is supported by the first support plate 6. The sliding block 9 and the movable support rod 4 are limited and damped by the nut 8. At the same time, the buffer column 10 is elastically connected to the top of the support cylinder 11 by the second spring 22 and the bottom of the industrial control computer body 1 is buffered and supported by the second elastic pad 21. Therefore, the bottom of the industrial control computer body 1 can be elastically supported and damped during installation, improving the shock resistance of the embedded industrial control computer during installation and use.

[0045] By setting a bolt 17 in the middle of the support frame 18, and setting an abutment plate 15 and a first elastic pad 14 at the bottom of the bolt 17, after the industrial control computer body 1 is installed with anti-vibration support by the support mechanism and the buffer mechanism, rotating the bolt 17 will drive the abutment plate 15 and the first elastic pad 14 to abut and limit the top of the industrial control computer body 1, and cooperate with the snap-fit ​​plates 2 and elastic strips 16 on the four sides of the industrial control computer body 1 to limit and stabilize the installation, thereby maintaining the stable installation and use of the industrial control computer body 1.

[0046] The above are merely preferred embodiments of this utility model, but the scope of protection of this utility model is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in this utility model, based on the technical solution and inventive concept of this utility model, should be included within the scope of protection of this utility model.

Claims

1. A high-vibration-resistant embedded industrial control computer, comprising an industrial control computer body (1), characterized in that: The top of the industrial control computer body (1) is provided with an abutting mechanism, the bottom of the industrial control computer body (1) is provided with a buffer mechanism, the bottom of the industrial control computer body (1) is provided with a support mechanism on both sides, and a base plate (19) is provided below it. The abutting mechanism includes an abutting plate (15), which abuts against the top center of the industrial control computer body (1); The buffer mechanism includes a buffer column (10), which is elastically supported in the middle of the bottom end of the industrial control computer body (1); The support mechanism includes a movable support rod (4) and a fixed support rod (7). The two ends of the fixed support rod (7) are fixed with a first support plate (6). The first support plate (6) is fixed on both sides of the top of the base plate (19). The middle of the fixed support rod (7) is fixed with a second support plate (12). A sliding block (9) is slidably installed on its surface. A first spring (13) is slidably sleeved on the surface of the fixed support rod (7) between the sliding block (9) and the second support plate (12). The bottom end of the movable support rod (4) is hinged to the top end of the sliding block (9), and its top end is hinged to the bottom end of the industrial control computer body (1).

2. The high shock-resistant embedded industrial control computer according to claim 1, characterized in that: The base plate (19) has four corners at the top of the base plate (19) with a snap-fit ​​plate (2). An elastic strip (16) is glued to the inside of the snap-fit ​​plate (2). The snap-fit ​​plate (2) is tightly snapped to the four corners of the industrial control computer body (1) through the elastic strip (16). A support frame (18) is fixed to the top of the snap-fit ​​plate (2).

3. The high shock resistance embedded industrial control computer according to claim 2, characterized in that: The support frame (18) has a connecting hole (20) in the middle of its top end. A bolt (17) passes through the internal thread of the connecting hole (20). The bottom end of the bolt (17) is fixed to the middle of the top end of the abutment plate (15). A first elastic pad (14) is bonded to the bottom end of the abutment plate (15). The first elastic pad (14) is tightly abutted against the middle of the top end of the industrial control computer body (1). The connecting hole (20) is a threaded hole structure. The bolt (17) is vertically set. The abutment plate (15) and the first elastic pad (14) are both circular structures and are both horizontally set.

4. The high shock resistance embedded industrial control computer according to claim 1, characterized in that: A support cylinder (11) is fixed at the top center of the base plate (19). A second spring (22) is connected to the bottom of the support cylinder (11). The top of the second spring (22) is connected to the bottom of the buffer column (10). A second elastic pad (21) is adhered to the top of the buffer column (10). The second elastic pad (21) is tightly pressed against the bottom center of the industrial control computer body (1). The support cylinder (11) is a cylindrical structure and is vertically set. Its height is not higher than the bottom height of the movable support rod (4). The buffer column (10) is a cylindrical structure and is vertically set. The second elastic pad (21) is horizontally set.

5. A highly shock-resistant embedded industrial control computer according to claim 1, characterized in that: The second support plate (12) is fixed to the top of the base plate (19), and a plug hole (23) is opened at the top of the plate. The two ends of the first spring (13) are respectively connected between the second support plate (12) and the side of the sliding block (9). A sliding hole (24) is opened in the middle of the sliding block (9). The fixed support rod (7) slides through the sliding hole (24). A nut (8) is connected to the surface of the fixed support rod (7) and located outside the sliding block (9). The fixed support rod (7) is a threaded rod structure.

6. A highly shock-resistant embedded industrial control computer according to claim 5, characterized in that: The top of the sliding block (9) is fixed with a first connecting block (5), and the bottom of the movable support rod (4) is hinged to the sliding block (9) through the first connecting block (5). The bottom corners of the industrial control computer body (1) are fixed with second connecting blocks (3). The top of the movable support rod (4) is hinged to the second connecting block (3) and the industrial control computer body (1). The movable support rod (4) is inclined.

7. The high shock resistance embedded industrial control computer according to claim 1, characterized in that: The fixed support rod (7) is set horizontally, the first support plate (6) and the second support plate (12) are both set vertically, and the sliding block (9) is a rectangular block structure and is set horizontally.

8. A highly shock-resistant embedded industrial control computer according to claim 2, characterized in that: The base plate (19) is a rectangular plate structure and is set horizontally. The cross-section of the snap-fit ​​plate (2) and the elastic strip (16) are both L-shaped structures and are set vertically. The support frame (18) is a cross-shaped structure and is set horizontally above the industrial computer body (1).