A wall-mounted multi-node front-end processing device
Patent Information
- Application Number
- CN202520986107.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-19
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-05-19
AI Technical Summary
[0004]处理器12在处理数据的时候,会产生大量的热量,因为处理器12的是堆叠在一起的,所以当某个处理器12上方和下方均有处理器12的时候,处理器12的散热就不好,导致处理器12长时间处于高温的环境,造成处理器12的寿命变低
1.设置的壁挂组件不仅能够便于使处理器散热,从而提高处理器的寿命;而且因为相邻两个处理器不相互抵触也可以便于拆卸更换;
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Figure CN224818399U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of detection data processing, and in particular to a wall-mounted multi-node front-end processing device. Background Technology
[0002] During testing, data acquired by front-end sensors is transmitted to a processor for processing and analysis. The processor then transmits the processed data to a PC, where it is displayed on a computer to provide intuitive data for the operator.
[0003] refer to Figure 1 A multi-node front-end processing device includes a cabinet 11, a mounting cavity 111 is formed inside the cabinet 11, and a plurality of processors 12 are stacked at the lower end of the mounting cavity 111.
[0004] When the processor 12 processes data, it generates a lot of heat. Because the processors 12 are stacked together, when there are processors 12 above and below a certain processor 12, the heat dissipation of the processor 12 is not good, causing the processor 12 to be in a high-temperature environment for a long time, resulting in a shorter lifespan of the processor 12. Utility Model Content
[0005] To improve the lifespan of the processor, this application provides a wall-mounted multi-node front-end processing device.
[0006] This application provides a wall-mounted multi-node front-end processing device, which adopts the following technical solution: A wall-mounted multi-node front-end processing device includes a cabinet and multiple processors, and also includes a wall-mounting mechanism. The wall-mounting mechanism includes a main body and a first connecting component. The main body is mounted on the cabinet through the first connecting component. The main body has a placement cavity, an inlet / outlet hole communicating with the placement cavity, and a first heat dissipation hole communicating with the placement cavity. The multiple processors are all vertically located in the placement cavity and adjacent processors do not collide with each other.
[0007] By adopting the above technical solution, the processor is inserted into the placement cavity through the inlet and outlet holes. When the processor generates heat, it is dissipated through the first heat dissipation hole on the main body. The wall-mounted component not only facilitates heat dissipation of the processor, thereby improving the processor's lifespan, but also facilitates disassembly and replacement because adjacent processors do not interfere with each other.
[0008] Optionally, the first heat dissipation hole is formed on the top of the main body, and a second heat dissipation hole communicating with the placement cavity is formed on the bottom of the main body.
[0009] By adopting the above technical solution, the first heat dissipation hole at the top of the main body and the second heat dissipation hole at the bottom facilitate the heat dissipation of the processor.
[0010] Optionally, the first connecting assembly includes a first connecting plate, a first connecting bolt, and a washer. The first connecting plate is disposed on the main body, and a first through hole is formed on the first connecting plate. A first threaded hole is formed on the cabinet. The washer abuts against the first connecting plate. The end of the first connecting bolt away from its own nut passes through the washer and the first through hole and is threadedly connected to the first threaded hole. The nut of the first connecting bolt abuts against the washer.
[0011] By adopting the above technical solution, the first connecting plate first abuts against the cabinet, then the gasket abuts against the first connecting plate, and finally the end of the first connecting bolt away from its own nut passes through the gasket and the first through hole and is threaded into the first threaded hole, so as to install the main body on the cabinet; the structure of the first connecting component is simple and easy to operate.
[0012] Optionally, the processor is provided with a second connecting component connected to the main body. The second connecting component includes a second connecting plate and a second connecting bolt. The second connecting plate is disposed on the processor and can abut against the main body. The second connecting plate has a second through hole, and the main body has a second threaded hole. The second connecting bolt passes through the second through hole and is threadedly connected to the second threaded hole.
[0013] By adopting the above technical solution, the end of the processor away from the second connecting plate first passes through the inlet / outlet hole into the placement cavity. When the second connecting plate abuts against the main body, the second connecting bolt passes through the second through hole and is threadedly connected to the second threaded hole. There is a certain distance between the end of the processor away from the second connecting plate and the side wall of the main body away from the inlet / outlet hole. Therefore, the second connecting component can improve the stability of the processor on the main body.
[0014] Optionally, the main body is provided with a plurality of limiting mechanisms, the limiting mechanism including a fixing block and a limiting block. The fixing block is disposed on one end of the main body near the first heat dissipation hole, and the limiting block is disposed on the fixing block. The limiting block is located inside the placement cavity, and the limiting block of the plurality of limiting mechanisms divides the placement cavity into a plurality of individual cavities. The processor can abut against the limiting block, and because of the presence of the limiting block, two adjacent processors will not abut against each other.
[0015] By adopting the above technical solution, each processor is placed in its corresponding single cavity, so that when replacing one processor, the other processors do not need to be disassembled.
[0016] Optionally, the main body has a mounting groove, and the fixing block is provided with a mounting mechanism. The mounting mechanism includes a mounting block, an adjusting block, a first spring, and a mounting assembly. The fixing block has a groove, and the mounting block is slidably disposed in the groove and engaged with the mounting groove. The fixing block has a third through hole communicating with the groove. One end of the adjusting block is connected to the mounting block, and the other end passes through the third through hole. One end of the first spring is connected to the fixing block, and the other end is connected to the mounting block. The mounting assembly is disposed on the fixing block and connected to the main body.
[0017] By adopting the above technical solution, when the fixing block abuts against the main body, the mounting block on the fixing block engages with the mounting groove on the main body, thereby connecting the mounting component to the main body; when it is necessary to separate the fixing block from the main body, the mounting component is first separated from the main body, and then the adjusting block is moved, causing the adjusting block to move and separate the mounting block from the mounting groove; moreover, the mounting block can be engaged with mounting grooves at different positions as needed, which can improve applicability; and the mounting groove that engages with the mounting block can be used to position the fixing block.
[0018] Optionally, the mounting assembly includes a mounting plate and mounting bolts. The mounting plate is disposed on the fixing block and abuts against the main body. The mounting plate has a fourth through hole, and the main body has a third threaded hole. The mounting bolts pass through the fourth through hole on the mounting plate and are threadedly connected to the third threaded hole.
[0019] By adopting the above technical solution, when the fixing block abuts against the main body and the mounting block is located in the mounting groove, the mounting plate will abut against the main body; then the mounting bolt is threaded through the fourth through hole and the third threaded hole to achieve the installation of the fixing block on the main body.
[0020] Optionally, the main body is provided with a reinforcing mechanism connected to the mounting block. The reinforcing mechanism includes a movable block, a reinforcing block, and a locking component. The main body has a cavity communicating with the mounting groove. The movable block is slidably disposed in the cavity. The reinforcing block is disposed on the movable block. The mounting block has a mounting groove that engages with the movable block. The locking component is disposed on the main body and connected to the movable block.
[0021] By adopting the above technical solution, when the mounting block is located in the mounting groove, the position of the moving block is adjusted, and the moving block drives the reinforcing block to move, so that the reinforcing block engages with the reinforcing groove on the mounting block, thereby improving the stability of the mounting block on the main body, and thus improving the stability of the fixing block on the main body.
[0022] Optionally, the locking assembly includes a locking block and a second spring. The main body has a fourth through hole communicating with the cavity. The locking block is slidably disposed in the fourth through hole. The moving block has a locking groove that engages with the locking block. One end of the second spring is connected to the locking block and the other end is connected to the main body.
[0023] By adopting the above technical solution, when the reinforcing block and the reinforcing groove are engaged, the locking block and the locking groove on the moving block are engaged; when the moving block needs to move to separate the reinforcing block and the reinforcing groove, the locking block is pulled first to separate the locking block and the locking groove, and then the moving block is moved; the locking component can improve the stability when the locking block and the locking groove are engaged.
[0024] In summary, this application includes at least one of the following beneficial technical effects: 1. The wall-mounted components not only facilitate heat dissipation for the processor, thus extending its lifespan, but also allow for easy removal and replacement of adjacent processors since they do not interfere with each other. 2. The second connection component can improve the stability of the processor on the main body. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the structure of a wall-mounted multi-node front-end processing device in the prior art. Figure 2 This is a schematic diagram of the wall-mounted multi-node front-end processing device in the embodiments of this application; Figure 3 This is a schematic diagram of the wall-mounting mechanism in an embodiment of this application; Figure 4 This is a schematic diagram of the structure of the second heat dissipation hole in an embodiment of this application; Figure 5 This is a schematic diagram of the installation mechanism in the embodiments of this application; Figure 6 This is a schematic diagram of the locking component in an embodiment of this application.
[0026] Reference numerals: 11. Cabinet; 111. Mounting cavity; 12. Processor; 2. Wall-mounting mechanism; 21. Main body; 211. Placement cavity; 212. Inlet / outlet hole; 213. First heat dissipation hole; 214. Second heat dissipation hole; 215. Mounting groove; 216. Cavity; 22. First connecting assembly; 221. First connecting plate; 222. First connecting bolt; 223. Washer; 23. Cover plate; 231. Fifth through hole; 24. Fixing bolt; 3. Second connecting assembly; 31. Second 32. Connecting plate; 4. Second connecting bolt; 5. Limiting mechanism; 6. Fixing block; 7. Groove; 8. Third through hole; 9. Limiting block; 10. Mounting mechanism; 11. Mounting block; 12. Adjusting block; 13. First spring; 14. Mounting assembly; 15. Mounting plate; 16. Mounting bolt; 17. Reinforcing mechanism; 18. Moving block; 19. Locking groove; 10. Reinforcing block; 11. Locking assembly; 12. Locking block; 13. Second spring; 14. Adjusting block. Detailed Implementation
[0027] The following is in conjunction with the appendix Figure 2-6 This application will be described in further detail.
[0028] This application discloses a wall-mounted multi-node front-end processing device.
[0029] refer to Figure 2 and Figure 3 A wall-mounted multi-node front-end processing device includes a cabinet 11, an installation cavity 111 formed inside the cabinet 11, a wall-mounting mechanism 2 connected inside the installation cavity 111 of the cabinet 11, and multiple processors 12 vertically placed on the wall-mounting mechanism 2.
[0030] refer to Figure 4 and Figure 5 The wall-mounting mechanism 2 includes a rectangular body 21, on which a first connecting component 22 is provided. The first connecting component 22 includes a first connecting plate 221 fixedly connected to the body 21. The first connecting plate 221 has a first through hole, and the housing has a first threaded hole communicating with the mounting cavity 111. The first connecting plate 221 is provided with a gasket 223 and a first connecting bolt 222. The gasket 223 abuts against the first connecting plate 221. The end of the first connecting bolt 222 away from its own nut passes through the gasket 223 and the first through hole on the first connecting plate 221 in sequence and is threadedly connected to the first threaded hole on the housing. The nut of the first connecting bolt 222 abuts against the gasket 223, thereby realizing the installation of the body 21 into the mounting cavity 111 of the cabinet 11.
[0031] refer to Figure 3 and Figure 4The main body 21 has a placement cavity 211 inside. The top end of the main body 21 has a first heat dissipation hole 213 communicating with the placement cavity 211, and the bottom end of the main body 21 has a second heat dissipation hole 214 communicating with the placement cavity 211. The end of the main body 21 away from the first connecting plate 221 has an inlet / outlet hole 212 communicating with the placement cavity 211.
[0032] The processor 12 is placed into the placement cavity 211 of the main body 21 through the inlet / outlet hole 212 on the main body 21, and each processor 12 corresponds to a second heat dissipation hole 214. Multiple processing cavities are exposed in the mounting cavity 111 of the main body 21 through the first heat dissipation hole 213.
[0033] refer to Figure 3 and Figure 5 The main body 21 is provided with multiple limiting mechanisms 4. Each limiting mechanism 4 includes a fixing block 41 connected to the main body 21. The fixing block 41 is located inside the second heat dissipation hole 214. A limiting block 42 is fixedly connected to the fixing block 41. One end of the limiting block 42 away from the fixing block 41 is located inside the placement cavity 211. The limiting block 42 in the multiple limiting mechanisms 4 divides the placement cavity 211 into multiple individual cavities.
[0034] Each processor 12 corresponds to a single cavity, and a limiting block 42 is provided between each two adjacent processors 12 and they all abut against the limiting block 42. Under the dividing effect of the limiting block 42, the two adjacent processors 12 will not abut against each other.
[0035] refer to Figure 4 and Figure 5 A mounting mechanism 5 is provided on the fixing block 41. Both ends of the fixing block 41 are provided with grooves 411, and a third through hole 412 communicating with the grooves 411 is provided on the fixing block 41. The mounting mechanism 5 includes a mounting block 51 that slides and connects to the mounting block 51 in the groove. The main body 21 is provided with a plurality of mounting slots 215 that communicate with the first heat dissipation hole 213. The mounting block 51 is engaged with one of the mounting slots 215. An adjusting block 52 is fixedly connected to the mounting block 51 located in the groove 411. The end of the adjusting block 52 away from the mounting block 51 passes through the third through hole 412. A first spring 53 is placed in the groove 411. One end of the first spring 53 is connected to the mounting block 51 and the other end is connected to the fixing block 41. The fixing block 41 is provided with a mounting component 54, which includes a mounting plate 541 fixedly connected to the fixing block 41 and abutting against the main body 21. The mounting plate 541 has a fourth through hole, and the main body 21 has a third threaded hole. The mounting plate 541 is provided with a mounting bolt 542, which passes through the fourth through hole on the mounting plate 541 and is threadedly connected to the third threaded hole on the main body 21.
[0036] When it is necessary to separate the fixing block 41 from the main body 21, first rotate the mounting bolt 542 to separate the mounting bolt 542 from the third threaded hole, and then move the adjusting block 52. The adjusting block 52 drives the mounting block 51 to move, so that the mounting block 51 separates from the mounting groove 215 on the main body 21.
[0037] refer to Figure 4 and Figure 5 The main body 21 has a cavity 216 that communicates with multiple mounting slots 215 at one end near the first connecting plate 221. The main body 21 is provided with a cover plate 23 that covers the cavity 216. The cover plate 23 has a fifth through hole 231. The main body 21 has a fourth threaded hole. The cover plate 23 is provided with a fixing bolt 24. The fixing bolt 24 passes through the fifth through hole 231 on the cover plate 23 and is threadedly connected to the fourth threaded hole on the main body 21.
[0038] The main body 21 is provided with a reinforcing mechanism 6, which includes a movable block 61 that is slidably connected in the cavity 216. The movable block 61 abuts against the cover plate 23. An L-shaped reinforcing block 62 is fixedly connected to the movable block 61. A reinforcing groove is provided on the mounting block 51 to engage with the reinforcing block 62. A sixth through hole is provided on the cover plate 23. An adjusting block 64 is fixedly connected to the movable block 61. The end of the adjusting block 64 away from the movable block 61 passes through the sixth through hole.
[0039] When the mounting block 51 is located in the mounting groove 215 of the main body 21, the adjusting block 64 is moved, the adjusting block 64 drives the moving block 61 to move, the moving block 61 drives the reinforcing block 62 to move, so that the reinforcing block 62 is engaged with the reinforcing groove on the mounting block 51.
[0040] refer to Figure 4 and Figure 6 The main body 21 has a seventh through hole communicating with the cavity 216. The main body 21 is provided with a locking assembly 63, which includes a locking block 631 that is slidably connected in the seventh through hole. The moving block 61 has a locking groove 611 that engages with the locking block 631. A second spring 632 is connected to the locking block 631, and the end of the second spring 632 away from the locking block 631 is connected to the main body 21.
[0041] When it is necessary to separate the reinforcing block 62 from the reinforcing groove on the mounting block 51, the operator first pulls the locking block 631 to separate the locking block 631 from the locking groove 611; then the adjusting block 64 is moved, and the adjusting block 64 drives the moving block 61 to move, so that the reinforcing block 62 is separated from the mounting block 51.
[0042] refer to Figure 3The processor 12 is provided with a second connection component 3. The second connection component 3 includes a second connection plate 31 fixedly connected to the processor 12. The second connection plate 31 has a second through hole, and the main body 21 has a second threaded hole. The second connection plate 31 is provided with a second connection bolt 32. The second connection bolt 32 passes through the second through hole on the second connection plate 31 and is threadedly connected to the second threaded hole on the main body 21.
[0043] The processor 12 is placed into the placement cavity 211 of the main body 21 through the inlet / outlet hole 212 at the end away from the second connecting plate 31. When the second connecting plate 31 abuts against the main body 21, the second connecting bolt 32 is threaded through the second through hole on the second connecting plate 31 and threaded into the second threaded hole on the main body 21, so that the processor 12 is connected to the main body 21 and there is a certain distance between the end of the processor 12 away from the second connecting plate 31 and the side wall of the main body 21 away from the inlet / outlet hole 212.
[0044] In this embodiment, the processor 12 is an industrial control computer. Furthermore, a fan and air conditioner can be installed inside the mounting cavity 111 of the cabinet 11 to accelerate heat dissipation.
[0045] The implementation principle of a wall-mounted multi-node front-end processing device according to an embodiment of this application is as follows: the fixing block 41 is installed on the main body 21, and the mounting block 51 is engaged with the mounting groove 215 on the main body 21; then the adjusting block 64 is moved so that the reinforcing block 62 is engaged with the reinforcing groove on the mounting block 51; then the main body 21 is installed into the mounting cavity 111 of the cabinet 11; then the processor 12 is placed into the placement cavity 211 of the main body 21.
[0046] The above are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A wall-mounted multi-node front-end processing device, comprising a cabinet (11) and multiple processors (12), characterized in that, It also includes a wall-mounting mechanism (2), which includes a main body (21) and a first connecting component (22). The main body (21) is mounted on the cabinet (11) through the first connecting component (22). The main body (21) has a placement cavity (211), an inlet / outlet hole (212) communicating with the placement cavity (211), and a first heat dissipation hole (213) communicating with the placement cavity (211). The multiple processors (12) are all vertically located in the placement cavity (211) and two adjacent processors (12) do not collide with each other.
2. The wall-mounted multi-node front-end processing device according to claim 1, characterized in that, The first heat dissipation hole (213) is opened on the top of the main body (21), and the second heat dissipation hole (214) communicating with the placement cavity (211) is opened on the bottom of the main body (21).
3. The wall-mounted multi-node front-end processing device according to claim 1, characterized in that, The first connecting assembly (22) includes a first connecting plate (221), a first connecting bolt (222), and a washer (223). The first connecting plate (221) is disposed on the main body (21). A first through hole is provided on the first connecting plate (221), and a first threaded hole is provided on the cabinet (11). The washer (223) abuts against the first connecting plate (221). The end of the first connecting bolt (222) away from its own nut passes through the washer (223) and the first through hole and is threadedly connected to the first threaded hole. The nut of the first connecting bolt (222) abuts against the washer (223).
4. The wall-mounted multi-node front-end processing device according to claim 1, characterized in that, The processor (12) is provided with a second connecting component (3) connected to the main body (21). The second connecting component (3) includes a second connecting plate (31) and a second connecting bolt (32). The second connecting plate (31) is disposed on the processor (12) and can abut against the main body (21). A second through hole is provided on the second connecting plate (31), and a second threaded hole is provided on the main body (21). The second connecting bolt (32) passes through the second through hole and is threadedly connected to the second threaded hole.
5. The wall-mounted multi-node front-end processing device according to claim 1, characterized in that, The main body (21) is provided with a plurality of limiting mechanisms (4). The limiting mechanism (4) includes a fixing block (41) and a limiting block (42). The fixing block (41) is disposed on one end of the main body (21) near the first heat dissipation hole (213). The limiting block (42) is disposed on the fixing block (41). The limiting block (42) is located inside the placement cavity (211). The limiting block (42) in the plurality of limiting mechanisms (4) divides the placement cavity (211) into a plurality of individual cavities. The processor (12) can abut against the limiting block (42). Because of the presence of the limiting block (42), two adjacent processors (12) will not abut against each other.
6. The wall-mounted multi-node front-end processing device according to claim 5, characterized in that, The main body (21) is provided with an installation groove (215), and the fixing block (41) is provided with an installation mechanism (5). The installation mechanism (5) includes an installation block (51), an adjustment block (52), a first spring (53), and an installation component (54). The fixing block (41) is provided with a groove (411), and the installation block (51) is slidably disposed in the groove (411) and engaged with the installation groove (215). The fixing block (41) is provided with a third through hole (412) communicating with the groove (411). One end of the adjustment block (52) is connected to the installation block (51), and the other end passes through the third through hole (412). One end of the first spring (53) is connected to the fixing block (41), and the other end is connected to the installation block (51). The installation component (54) is disposed on the fixing block (41) and connected to the main body (21).
7. The wall-mounted multi-node front-end processing device according to claim 6, characterized in that, The mounting assembly (54) includes a mounting plate (541) and a mounting bolt (542). The mounting plate (541) is disposed on the fixing block (41) and abuts against the main body (21). A fourth through hole is provided on the mounting plate (541), and a third threaded hole is provided on the main body (21). The mounting bolt (542) passes through the fourth through hole on the mounting plate (541) and is threadedly connected to the third threaded hole.
8. A wall-mounted multi-node front-end processing device according to claim 6, characterized in that, The main body (21) is provided with a reinforcing mechanism (6) connected to the mounting block (51). The reinforcing mechanism (6) includes a moving block (61), a reinforcing block (62), and a locking component (63). The main body (21) has a cavity (216) communicating with the mounting groove (215). The moving block (61) is slidably disposed in the cavity (216). The reinforcing block (62) is disposed on the moving block (61). The mounting block (51) has a mounting groove (215) that engages with the moving block (61). The locking component (63) is disposed on the main body (21) and connected to the moving block (61).
9. A wall-mounted multi-node front-end processing device according to claim 8, characterized in that, The locking assembly (63) includes a locking block (631) and a second spring (632). The main body (21) has a fourth through hole communicating with the cavity (216). The locking block (631) is slidably disposed in the fourth through hole. The moving block (61) has a locking groove (611) that engages with the locking block (631). One end of the second spring (632) is connected to the locking block (631) and the other end is connected to the main body (21).