Detection data processing device
By installing protective mesh on the heat dissipation holes of the data processing device, the problem of equipment loosening caused by dust entering was solved, thus extending the lifespan and improving stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUZHOU KERUITIE ELECTRIC TECH CO LTD
- Filing Date
- 2025-05-27
- Publication Date
- 2026-04-28
AI Technical Summary
In dusty workshop environments, dust can enter the main body of the data processing unit through the heat dissipation holes, causing the data processing unit to become loose and have poor contact, thus affecting its lifespan.
Install protective mesh on the heat dissipation holes and cover them with connecting components to prevent dust from entering while maintaining a certain heat dissipation effect.
This extends the lifespan of the data processing unit, reduces the cleaning frequency, and improves the stability and reliability of the equipment.
Smart Images

Figure CN224178434U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of data processing technology, and in particular to a detection data processing device. Background Technology
[0002] After processing, products need to be inspected, especially calendered products. After calendering, data such as flatness need to be inspected. The general inspection method is to use a scanning camera to scan the calendered product. The scanning camera then transfers the acquired data to a data processing device for data processing. The processed data is then transmitted to a computer to form data that is easy for operators to view.
[0003] Currently, a detection data processing device includes a main body, within which a data processing unit is housed. The data processing unit includes a CPU, motherboard, memory, storage devices, structural components, and expansion slots. A housing is provided on the main body, and multiple heat dissipation holes are formed on the housing. The data processing unit generates a large amount of heat during operation, which is dissipated through the heat dissipation holes.
[0004] Data processing devices are usually located in workshops. When there is a lot of dust in the workshop, the dust will enter the main body through the heat dissipation holes and adhere to the data processing unit. In order to ensure the life of the data processing unit, it is necessary to clean the data processing unit. After cleaning the data processing unit many times, it will become loose and have poor contact, which will prevent it from processing data well and reduce the overall lifespan. Utility Model Content
[0005] In order to extend the overall lifespan, this application provides a detection data processing device.
[0006] This application provides a detection data processing device, which adopts the following technical solution:
[0007] A detection data processing device includes a main body, a housing, a data processing unit, and a fixing component. The data processing unit is disposed within the main body, and the housing is connected to the main body via the fixing component. The housing has multiple heat dissipation holes and also includes a protective mechanism. The protective mechanism includes a protective net and a connecting component. The protective net is disposed on the housing via the connecting component and covers all the heat dissipation holes.
[0008] By adopting the above technical solution, the protective net is installed on the housing through connecting components, and the protective net covers all the heat dissipation holes. In this way, the heat generated by the data processing unit will be discharged from the main body through the protective net and heat dissipation holes, thus still having a certain heat dissipation effect. The protective net can also block dust, reducing the phenomenon of dust adhering to the data processing unit, thereby reducing the need for cleaning the data processing unit within a certain fixed period. This can reduce the phenomenon of data processing damage caused by external forces. Therefore, the protective mechanism can extend the overall lifespan while ensuring heat dissipation.
[0009] Optionally, the connecting assembly includes a connecting frame plate and a connecting adhesive, the protective net is disposed on the connecting frame plate, and the connecting frame plate is bonded to the housing by the connecting adhesive.
[0010] By adopting the above technical solution, the protective netting can be set on the connecting frame plate to reduce the deformation of the protective netting; the connecting frame plate is simply and easily attached to the shell by adhesive; and the shell is generally not very thick and is not suitable for installation by bolts.
[0011] Optionally, a positioning mechanism is also included, comprising a first connecting block, a second connecting block, and a first positioning component. Two first connecting blocks are provided, each with a placement groove, and a portion of the housing is located within the placement groove. Two second connecting blocks are provided, each corresponding to one of the two first connecting blocks. Each first connecting block has a connection groove, and the second connecting block engages with the connection groove. Each second connecting block has a limiting groove, and both ends of the connecting frame plate are located within the limiting grooves of the two second connecting blocks. The first positioning component is disposed on the first connecting block and connected to the housing.
[0012] By adopting the above technical solution, before bonding the connecting frame plate to the housing using adhesive, the placement slots on the two first connecting blocks are first engaged with the housing, and then the second connecting block is engaged with the connecting slot on the first connecting block, thus installing the second connecting block on the housing. The position of the first connecting block is adjusted, and once the position of the first connecting block is determined, it is fixed to the housing by the first positioning component. Then, both ends of the connecting frame plate are bonded to the housing, with both ends of the connecting frame plate located in the limiting slots of the two second connecting blocks respectively. The positioning mechanism reduces the time required to adjust the connecting frame plate during installation, thereby improving efficiency.
[0013] Optionally, the first positioning component includes a first positioning block and an adjusting screw. The first connecting block has a groove communicating with the placement slot, and the first positioning block is slidably disposed on the first connecting block. The first connecting block has an adjusting threaded hole communicating with the groove, and the adjusting screw is threadedly connected to the adjusting threaded hole. One end of the adjusting screw is rotatably connected to the first positioning block.
[0014] By adopting the above technical solution, once the position of the first connecting block is determined, rotating the adjusting screw will cause the first positioning block to move in the groove toward the housing and press against the housing; the first positioning component has a simple structure and is easy to operate.
[0015] Optionally, the first connecting block is provided with a calibration mechanism, which includes a dovetail block, a third connecting block, a limiting block, and a locking block. The dovetail block is disposed on the first connecting block, and the third connecting block has a dovetail groove for sliding of the dovetail block and a locking groove. The locking block is disposed on the limiting block, and one end of the locking block away from the limiting block passes through the heat dissipation hole and engages with the locking groove. Both the limiting block and the third connecting block abut against the side wall of the housing.
[0016] By adopting the above technical solution, before the placement slot on the first connecting block engages with the housing, the end of the locking block away from the limiting block passes through a heat dissipation hole. Then, the third connecting block abuts against the housing, and the slot on the third connecting block engages with the locking block. Next, the dovetail block on the first connecting block slides into the dovetail groove, and the first connecting block is moved until the placement slot on the first connecting block engages with the housing. After the first connecting block is fixed to the housing by the first positioning component, the end of the locking block away from the limiting block separates from the slot and passes through the heat dissipation hole. Then, the third connecting block is moved to separate the dovetail block from the dovetail groove. The calibration mechanism can quickly position the first connecting block on the housing, reducing the adjustment time of the first connecting block and thus improving efficiency.
[0017] Optionally, the third connecting block is provided with a limiting component, the limiting component including a limiting block and a first spring, the third connecting block has a first through hole communicating with the slot, the limiting block is slidably disposed in the first through hole, the slot has a limiting groove that engages with the limiting block; one end of the first spring is connected to the limiting block and the other end is connected to the third connecting block.
[0018] By adopting the above technical solution, before the card block passes through the heat dissipation hole and engages with the card slot, the limiting block is first pulled so that the end of the limiting block near the card slot extends into the first through hole, and the first spring will deform; then the card block engages with the card slot. After the card block engages with the card slot, the limiting block is released, and the force of the first spring restoring its elastic deformation will drive the limiting block to move towards the card block and engage with the limiting slot; the setting of the limiting component can improve the stability of the card block and the card slot, so that the limiting block and the third connecting block can both abut against the housing well.
[0019] Optionally, the third connecting block is provided with a second positioning component, the second positioning component including a second positioning block and a second spring, the third connecting block is provided with a second through hole, the second positioning block is slidably disposed in the second through hole, the first connecting block is provided with a positioning groove that engages with the second positioning block; one end of the second spring is connected to the second positioning block and the other end is connected to the third connecting block.
[0020] By adopting the above technical solution, when the dovetail block slides in the dovetail groove of the first connecting block, the operator first pulls the second positioning block so that the end of the second positioning block near the first connecting block extends into the second through hole, and the second spring will deform. When the placement groove on the first connecting block is fully engaged with the housing, the second positioning block will align with the positioning groove on the first connecting block. Releasing the second positioning block will cause the force of the second spring to restore its elastic deformation to drive the second positioning block to move and engage with the positioning groove. Therefore, the operator can judge whether the position of the first connecting block is installed in place by observing the position of the second positioning block, thereby ensuring that the second connecting block can better limit the connecting frame.
[0021] Optionally, the first connecting block has a third through hole communicating with the connecting groove, the second connecting block has a fourth connecting block fixedly connected to it and engaging with the connecting groove, the fourth connecting block has a fastening threaded hole, the first connecting block has a fastening bolt, and the fastening bolt passes through the third through hole and is threadedly connected to the fastening threaded hole.
[0022] By adopting the above technical solution, the end of the fourth connecting block away from the second connecting block is engaged with the connecting groove; then the fastening bolt is threaded through the third through hole and threaded into the fastening threaded hole, thereby connecting the second connecting block to the first connecting block.
[0023] Optionally, the fixing component includes a fixing plate and a fixing bolt. The fixing plate is disposed on the housing, and a fourth through hole is formed on the fixing plate. A fixing threaded hole is formed on the main body, and the fixing bolt passes through the fourth through hole and is threadedly connected to the fixing threaded hole.
[0024] By adopting the above technical solution, the shell is placed on the main body and the fixing plate is made to abut against the main body. Then, the fixing bolt is passed through the fourth through hole and threadedly connected to the fixing threaded hole to fix the shell on the main body. The fixed component structure is simple and easy to operate.
[0025] In summary, this application includes at least one of the following beneficial technical effects:
[0026] 1. The protective mechanism ensures heat dissipation while extending the overall lifespan;
[0027] 2. The positioning mechanism can reduce the time spent adjusting the connecting frame plate during installation, thereby improving efficiency. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the detection data processing device in the embodiments of this application;
[0029] Figure 2 for Figure 1 Enlarged view of A in the middle;
[0030] Figure 3 This is a schematic diagram of the heat dissipation holes in an embodiment of this application;
[0031] Figure 4 This is a schematic diagram of the positioning mechanism in the embodiments of this application;
[0032] Figure 5 This is a schematic diagram of the structure of the defined components in the embodiments of this application;
[0033] Figure 6 This is a schematic diagram of the structure of the second positioning component in the embodiments of this application.
[0034] Reference numerals: 11. Main body; 111. Cavity; 12. Shell; 121. First connecting plate; 122. Second connecting plate; 1221. Heat dissipation hole; 13. Data processing unit; 14. Fixing component; 141. Fixing plate; 142. Fixing bolt; 2. Protective mechanism; 21. Protective net; 22. Connecting frame plate; 3. Positioning mechanism; 31. First connecting block; 311. Placement groove; 32. Second connecting block; 321. Restriction groove; 33. First positioning component; 331. First positioning block; 332. Adjusting screw; 34. Fastening bolt; 35. Fourth connecting block; 4. Alignment mechanism; 41. Dovetail block; 42. Third connecting block; 421. Dovetail groove; 422. Slot; 43. Restriction block; 44. Slot; 5. Limiting component; 51. Limiting block; 52. First spring; 6. Second positioning component; 61. Second positioning block; 62. Second spring. Detailed Implementation
[0035] The following is in conjunction with the appendixFigures 1-6 This application will be described in further detail.
[0036] This application discloses a detection data processing device.
[0037] refer to Figure 1 A detection data processing device includes a main body 11, a cavity 111 extending horizontally through the main body 11, a data processing unit 13 disposed within the cavity 111, and a housing 12 disposed on the main body 11, with a fixing component 14 connected to the main body 11 disposed on the housing 12.
[0038] In this embodiment, the data processing unit 13 includes a CPU, motherboard, memory, storage device, structure, and expansion slot, etc., which can be understood as equivalent to the information processing components inside an industrial control computer. This is prior art and will not be described further.
[0039] refer to Figure 1 and Figure 2 The housing 12 includes a first connecting plate 121 in the shape of a cuboid. Second connecting plates 122 are integrally formed on both sides of the first connecting plate, and the vertical cross-section of the second connecting plates 122 is rectangular. Multiple heat dissipation holes 1221 are provided on both second connecting plates 122, and the vertical cross-section of the heat dissipation holes 1221 is also rectangular. Both second connecting plates 122 are perpendicular to the first connecting plate 121 and located on the same side of the first connecting plate 121.
[0040] When the housing 12 is installed on the main body 11, the first connecting plate 121 abuts against the upper end of the main body 11, and the two second connecting plates 122 abut against the main body 11 and cover the left and right sides of the cavity 111. That is, because of the presence of the two second connecting plates 122, the cavity 111 of the main body 11 will not be exposed; and the heat dissipation holes 1221 on the second connecting plates 122 are connected to the cavity 111 on the main body 11.
[0041] refer to Figure 2 and Figure 3 The fixing component 14 includes a fixing plate 141 integrally disposed on the second connecting plate 122. The first connecting plate 121 and the second connecting plate 122 are both perpendicular to the fixing plate 141. The fixing plate 141 has a fourth through hole, and the main body 11 has a fixing threaded hole. The fixing plate 141 is provided with a fixing bolt 142, which passes through the fourth through hole on the fixing plate 141 and is threadedly connected to the fixing threaded hole on the main body 11.
[0042] When the two second connecting plates 122 cover the cavity 111, the fixing plate 141 abuts against the main body 11, and the axis of the fourth through hole on the fixing plate 141 coincides with the axis of the fixing threaded hole on the main body 11; then the fixing bolt 142 passes through the fourth through hole on the fixing plate 141 and is threadedly connected to the fixing threaded hole on the main body 11, thereby fixing the housing 12 to the main body 11.
[0043] refer to Figure 1 and Figure 3 A protective mechanism 2 is provided on the second connecting plate 122. The protective mechanism 2 includes a protective net 21 that abuts against the second connecting plate 122 and covers all the heat dissipation holes 1221. A connecting component is provided on the protective net 21. The connecting component includes a connecting frame plate 22. The protective net 21 is fixed on the connecting frame plate 22. The connecting frame plate 22 can be flexible rubber or a rigid material. A connecting adhesive is applied to the second connecting plate 122, and the connecting frame plate 22 is adhered to the second connecting plate 122 by the connecting adhesive.
[0044] refer to Figure 1 , Figure 3 and Figure 4 In order to better adhere the connecting frame plate 22 to the second connecting plate 122, a calibration mechanism 4 is provided on the second connecting plate 122, and a positioning mechanism 3 is provided on the calibration mechanism 4.
[0045] refer to Figure 3 , Figure 4 and Figure 5 The alignment mechanism 4 includes a third connecting block 42 that abuts against the second connecting plate 122. The third connecting block 42 is located on the side of the second connecting plate 122 away from the first connecting plate 121. A slot 422 is provided on the third connecting block 42. A limiting block 43 is provided on the side of the second connecting plate 122 near the first connecting plate 121. A locking block 44 is fixedly connected to the limiting block 43. The end of the locking block 44 away from the limiting block 43 passes through the heat dissipation hole 1221 on the second connecting plate 122 and engages with the slot 422 on the third connecting block 42. The limiting block 43 and the third connecting block 42 abut against the side walls on both sides of the second connecting plate 122, respectively. The vertical cross-section of the locking block 44 is the same as the vertical cross-section of the heat dissipation hole 1221.
[0046] The third connecting block 42 has a first through hole communicating with the slot 422. The third connecting block 42 is provided with a limiting component 5. The limiting component 5 includes a limiting block 51 that is slidably connected in the first through hole. The slot 44 located in the slot 422 has a limiting groove that engages with the limiting block 51. A first spring 52 is sleeved on the limiting block 51. One end of the first spring 52 is connected to the limiting block 51 and the other end is connected to the third connecting block 42.
[0047] First, the end of the locking block 44 away from the limiting block 43 passes through the heat dissipation hole 1221 on the second connecting plate 122, and the locking block 44 passes through the heat dissipation hole 1221 near the side of the first connecting plate 121 and near the end of the second connecting block 32. Then, the limiting block 51 is pulled so that the end of the limiting block 51 near the slot 422 is located in the first through hole, and the first spring 52 is stretched; then, the third connecting block 42 is moved so that the locking block 44 passing through the heat dissipation hole 1221 engages with the slot 422 on the third connecting block 42; when a part of the locking block 44 enters the slot 422 of the third connecting block, the limiting block 51 is released, and the force of the first spring 52 restoring its elastic deformation will drive the limiting block 51 to move, so that the limiting block 51 abuts against the side wall of the locking block 44; then Continue moving the third connecting block 42 or the limiting block 43 so that the slot 422 on the third connecting block 42 is fully engaged with the card block 44. At this time, the limiting block 43 and the third connecting block 42 will both press against the second connecting plate 122. The limiting block 51 is aligned with the limiting slot on the card block 44. The force of the first spring 52 restoring its elastic deformation will also drive the limiting block 51 to move, so that the limiting block 51 is engaged with the limiting slot on the card block 44, thus realizing that the third connecting block 42 and the limiting block 43 are both firmly connected to the second connecting plate 122.
[0048] refer to Figure 3 , Figure 4 and Figure 5 The third connecting block 42 has a dovetail groove 421, and a dovetail block 41 is slidably connected in the dovetail groove 421.
[0049] The positioning mechanism 3 includes a first connecting block 31 that is fixedly connected to the dovetail block 41. The first connecting block 31 has a placement groove 311 that can engage with a portion of the second connecting plate 122.
[0050] The third connecting block 42 has a second through hole and a second positioning component 6. The second positioning component 6 includes a second positioning block 61 that is slidably connected in the second through hole. The side wall of the first connecting block 31 has a positioning groove that engages with the second positioning block 61. A second spring 62 is sleeved on the second positioning block 61. One end of the second spring 62 is connected to the second positioning block 61 and the other end is connected to the third connecting block 42.
[0051] When the limiting block 51 engages with the limiting groove on the locking block 44, that is, when the third connecting block 42 and the limiting block 43 respectively abut against the side walls on both sides of the second connecting plate 122, the second positioning block 61 is pulled so that the end of the second positioning block 61 near the dovetail groove 421 enters the second through hole, and the second spring 62 is stretched; then the dovetail block 41 on the first connecting block 31 slides into the dovetail groove 421 of the third connecting block 42, and the second positioning block 61 is released. The force of the second spring 62 restoring its elastic deformation will drive the second positioning block 61 to move and make the second positioning block 61 abut against the side wall of the first connecting block 31; when the placement groove 311 on the first connecting block 31 is fully engaged with the second connecting plate 122, the second positioning block 61 is aligned with the positioning groove on the first connecting block 31, and the force of the second spring 62 restoring its elastic deformation will drive the second positioning block 61 to move, so that the second positioning block 61 engages with the positioning groove on the first connecting block 31.
[0052] refer to Figure 3 , Figure 4 and Figure 6 The first connecting block 31 has a groove communicating with the placement groove 311 and an adjusting threaded hole communicating with the groove. The groove is located between the placement groove 311 and the adjusting threaded hole. The first connecting block 31 is provided with a first positioning component 33, which includes a first positioning block 331 slidably connected in the groove. The first positioning block 331 can abut against the second connecting plate 122 located in the placement groove 311. An adjusting screw 332 is rotatably connected to the end of the first positioning block 331 away from the placement groove 311. The end of the adjusting screw 332 away from the first positioning block 331 passes through the adjusting threaded hole, and the adjusting screw 332 is threadedly connected to the adjusting threaded hole.
[0053] When the second positioning block 61 engages with the positioning groove on the first connecting block 31, the adjusting screw 332 is rotated. The adjusting screw 332 will move relative to the first connecting block 31. The adjusting screw 332 drives the first positioning block 331 to move in the groove toward the second connecting plate 122, so that the first positioning block 331 abuts against the second connecting plate 122 located in the placement groove 311, thereby fixing the first connecting block 31 onto the second connecting plate 122.
[0054] refer to Figure 3 , Figure 4 and Figure 6 The first connecting block 31 has a connecting groove and a third through hole communicating with the connecting groove on its side wall. A fourth connecting block 35 is engaged in the connecting groove of the first connecting block 31. The fourth connecting block 35 is L-shaped. The fourth connecting block 35 engaged in the connecting groove has a fastening threaded hole. A fastening bolt 34 is provided on the first connecting block 31. The fastening bolt 34 passes through the third through hole on the first connecting block 31 and is threadedly connected to the fastening threaded hole on the fourth connecting block 35.
[0055] The fourth connecting block 35 is fixedly connected to a second connecting block 32 at the end away from the first connecting block 31. The second connecting block 32 can abut against the second connecting plate 122, and a limiting groove 321 is provided on the second connecting block 32. In this embodiment, both ends of the second connecting plate 122 are connected to the first connecting block 31. Thus, when the first connecting block 31 is connected to the second connecting plate 122, the multiple heat dissipation holes 1221 on the second connecting plate 122 are all located between the limiting grooves 321 of the two second connecting blocks. Furthermore, when the connecting frame plate 22 is located on the second connecting plate 122, both ends of the connecting frame plate 22 will abut against the sidewalls of the limiting grooves 321 on the two second connecting blocks 32.
[0056] The implementation principle of a detection data processing device according to an embodiment of this application is as follows: First, both the limiting block 43 and the third connecting block 42 are pressed against the side wall of the second connecting plate 122. Then, the placement groove 311 on the first connecting block 31 is engaged with the second connecting plate 122. Next, the first positioning block 331 is pressed against the second connecting plate 122, so that the first connecting block 31 is fixed on the second connecting plate 122.
[0057] Then pull the limiting block 51 so that the limiting block 51 is no longer engaged with the limiting slot on the card block 44. Then move the limiting block 43 so that the card block 44 is no longer engaged with the card slot 422 on the third connecting block 42 and is pulled out from the heat dissipation hole 1221. In this way, the limiting block 43 will no longer abut against the second connecting plate 122.
[0058] Then pull the second positioning block 61 so that the second positioning block 61 is no longer engaged with the positioning groove on the first connecting block 31. Then move the third connecting block 42 so that the dovetail groove 421 on the third connecting block 42 is separated from the dovetail groove 421 on the first connecting block 31.
[0059] Next, engage the fourth connecting block 35 with the connecting groove on the first connecting block 31, and rotate the fastening bolt 34 to make the fastening bolt 34 threadedly connected to the fastening threaded hole on the fourth connecting block 35.
[0060] Ultimately, there are two second connecting blocks 32 on the second connecting plate 122, and the multiple heat dissipation holes 1221 on the second connecting plate 122 are all located between the limiting grooves 321 of the two second connecting blocks 32.
[0061] Next, apply connecting adhesive to the second connecting plate 122, and then move the connecting frame so that both ends of the connecting frame are located in the limiting grooves 321 of the two second connecting blocks 32 and abut against the inner sidewall of the limiting grooves 321, thereby installing the connecting frame on the second connecting plate 122, and the protective net 21 on the connecting frame covers the multiple heat dissipation holes 1221 on the second connecting plate 122.
[0062] Then, rotate the adjusting screw 332 so that the first positioning block 331 is no longer pressed against the second connecting plate 122, move the first connecting block 31 so that the placement groove 311 on the first connecting block 31 is separated from the second connecting plate 122, and the connecting frame is no longer located in the limiting groove 321 of the second connecting block 32.
[0063] Finally, the housing 12 with the protective net 21 is installed onto the main body 11.
[0064] 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 detection data processing device, comprising a main body (11), a housing (12), a data processing unit (13), and a fixing component (14), wherein the data processing unit (13) is disposed within the main body (11), the housing (12) is connected to the main body (11) via the fixing component (14), and the housing (12) is provided with a plurality of heat dissipation holes (1221), characterized in that, It also includes a protective mechanism (2), which includes a protective net (21) and a connecting component. The protective net (21) is disposed on the housing (12) through the connecting component, and the protective net (21) covers all the heat dissipation holes (1221).
2. The detection data processing device according to claim 1, characterized in that, The connecting assembly includes a connecting frame plate (22) and a connecting adhesive. The protective net (21) is disposed on the connecting frame plate (22), and the connecting frame plate (22) is bonded to the housing (12) by the connecting adhesive.
3. The detection data processing device according to claim 2, characterized in that, It also includes a positioning mechanism (3), which includes a first connecting block (31), a second connecting block (32) and a first positioning component (33). There are two first connecting blocks (31), and each of the two first connecting blocks (31) has a placement groove (311). A part of the housing (12) is located in the placement groove (311). There are two second connecting blocks (32), and each of the two second connecting blocks (32) corresponds to one of the two first connecting blocks (31). The first connecting block (31) has a connection groove, and the second connecting block (32) is engaged with the connection groove. The second connecting block (32) has a limiting groove (321), and both ends of the connecting frame plate (22) are located in the limiting groove (321) of the two second connecting blocks (32). The first positioning component (33) is disposed on the first connecting block (31) and connected to the housing (12).
4. The detection data processing device according to claim 3, characterized in that, The first positioning component (33) includes a first positioning block (331) and an adjusting screw (332). The first connecting block (31) has a groove communicating with the placement slot (311). The first positioning block (331) is slidably disposed on the first connecting block (31). The first connecting block (31) has an adjusting threaded hole communicating with the groove. The adjusting screw (332) is threadedly connected to the adjusting threaded hole. One end of the adjusting screw (332) is rotatably connected to the first positioning block (331).
5. The detection data processing device according to claim 3, characterized in that, The first connecting block (31) is provided with a calibration mechanism (4), which includes a dovetail block (41), a third connecting block (42), a limiting block (43), and a locking block (44). The dovetail block (41) is provided on the first connecting block (31). The third connecting block (42) has a dovetail groove (421) for sliding of the dovetail block (41) and a locking groove (422). The locking block (44) is provided on the limiting block (43). One end of the locking block (44) away from the limiting block (43) passes through the heat dissipation hole (1221) and engages with the locking groove (422). The limiting block (43) and the third connecting block (42) both abut against the side wall of the housing (12).
6. The detection data processing device according to claim 5, characterized in that, The third connecting block (42) is provided with a limiting component (5), the limiting component (5) includes a limiting block (51) and a first spring (52), the third connecting block (42) is provided with a first through hole communicating with the slot (422), the limiting block (51) is slidably disposed in the first through hole, the slot (44) is provided with a limiting groove that engages with the limiting block (51); one end of the first spring (52) is connected to the limiting block (51) and the other end is connected to the third connecting block (42).
7. The detection data processing device according to claim 5, characterized in that, The third connecting block (42) is provided with a second positioning component (6), the second positioning component (6) includes a second positioning block (61) and a second spring (62), the third connecting block (42) is provided with a second through hole, the second positioning block (61) is slidably disposed in the second through hole, the first connecting block (31) is provided with a positioning groove that engages with the second positioning block (61); one end of the second spring (62) is connected to the second positioning block (61) and the other end is connected to the third connecting block (42).
8. The detection data processing device according to claim 3, characterized in that, The first connecting block (31) has a third through hole communicating with the connecting groove. The second connecting block (32) has a fourth connecting block (35) that is engaged with the connecting groove. The fourth connecting block (35) has a fastening thread hole. The first connecting block (31) has a fastening bolt (34). The fastening bolt (34) passes through the third through hole and is threadedly connected to the fastening thread hole.
9. The detection data processing device according to claim 1, characterized in that, The fixing component (14) includes a fixing plate (141) and a fixing bolt (142). The fixing plate (141) is disposed on the housing (12). A fourth through hole is provided on the fixing plate (141). A fixing threaded hole is provided on the main body (11). The fixing bolt (142) passes through the fourth through hole and is threadedly connected to the fixing threaded hole.