Scanning structure for rolled product detection

By introducing a multi-dimensional adjustment mechanism into the scanning structure for inspecting calendered products, the problem of limited adjustment range of the scanning camera position is solved, achieving more efficient position adjustment and applicability.

CN224095186UActive Publication Date: 2026-04-07SUZHOU KERUITIE ELECTRIC TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-04
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

The adjustment range of the existing scanning structure used for inspecting calendered products is limited, making it inconvenient to adjust the position of the scanning camera.

Method used

The scanning structure design includes a first adjustment mechanism, a second adjustment mechanism, and a third adjustment mechanism. Multi-dimensional adjustment of the scanning camera is achieved through a combination of adjusting fasteners, adjusting lead screws, and bevel gears.

Benefits of technology

It improves the adjustment range and applicability of the scanning camera, simplifies the position adjustment process, and enhances operational flexibility and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a scanning structure for rolled product detection, the scanning structure for rolled product detection comprises a supporting block and a scanning camera, the scanning structure also comprises a first adjusting mechanism, the first adjusting mechanism comprises a first adjusting block, a second adjusting block and an adjusting fixing piece, the supporting block is provided with a first chute, and the supporting block is provided with a second chute; the first adjusting block is arranged in the first sliding groove in a sliding mode. The scanning camera is arranged on the second adjusting block; the adjusting fixing piece is connected with the second adjusting block and the first adjusting block, and the adjusting fixing piece can fix the position of the first adjusting block. The method has the effect of improving the adjustment range.
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Description

Technical Field

[0001] This application relates to the technical field of product testing, and in particular to a scanning structure for testing rolled products. Background Technology

[0002] After calendering products, such as gold foil, are completed, they need to be tested for data such as flatness. If the data obtained from the test has a large error compared with the data required for production, the calendering equipment needs to be adjusted.

[0003] Currently, a scanning structure for inspecting calendered products includes a support block with multiple threaded holes; a scanning camera that abuts against the support block is placed on the support block, the scanning camera has a through hole, and a fixing bolt is provided on the scanning camera. The fixing bolt passes through and is threadedly connected to the threaded hole to fix the scanning camera on the support block.

[0004] When the position of the scanning camera needs to be adjusted, the fixing bolt must first be rotated to separate the fixing bolt from the threaded hole, and then the scanning camera is moved to change its position on the support block. It also takes some time to align the through hole and the threaded hole. Finally, the fixing bolt is threaded through the through hole and threaded into the threaded hole. Therefore, the adjustment range of the scanning camera is limited to the position of the threaded hole, that is, the adjustment range is limited. Utility Model Content

[0005] To improve the adjustment range, this application provides a scanning structure for testing calendered products.

[0006] This application provides a scanning structure for inspecting calendered products, which adopts the following technical solution:

[0007] A scanning structure for inspecting rolled products includes a support block and a scanning camera, and also includes a first adjustment mechanism. The first adjustment mechanism includes a first adjustment block, a second adjustment block, and an adjustment fixing member. The support block has a first sliding groove, and the first adjustment block is slidably disposed in the first sliding groove. The scanning camera is disposed on the second adjustment block. The adjustment fixing member connects the second adjustment block and the first adjustment block, and the adjustment fixing member can fix the position of the first adjustment block.

[0008] By adopting the above technical solution, the second adjustment block is connected to the first adjustment block through the adjustment fixing member. When the first adjustment block slides in the first slide groove, the first adjustment block drives the second adjustment block to move, and the second adjustment block drives the scanning camera to move. After the position of the scanning camera is fixed, the position of the first adjustment block is adjusted by the adjustment fixing member. Therefore, the first adjustment mechanism provided in this application can facilitate the adjustment of the position of the scanning camera and thus improve the adjustment range.

[0009] Optionally, the adjusting fastener includes an adjusting fixing bolt, the second adjusting block has a first through hole, the first adjusting block has a first threaded hole, the adjusting fixing bolt passes through the first through hole and is threadedly connected to the first threaded hole, and the adjusting fixing bolt remains threadedly connected to the first threaded hole when the first adjusting block moves.

[0010] By adopting the above technical solution, when the first adjusting block needs to be fixed, the adjusting fixing bolt is rotated, and the adjusting fixing bolt causes the second adjusting block to press against the support block, thus fixing the position of the first adjusting block. When the first adjusting block needs to slide in the first groove, the adjusting fixing bolt is rotated, so that the second adjusting block does not press against the support block, and the adjusting fixing bolt remains threadedly connected to the first threaded hole on the first adjusting block. Thus, when the first adjusting block moves, the adjusting fixing bolt will drive the second adjusting block to move.

[0011] Optionally, the first adjustment block is provided with a second adjustment mechanism, the second adjustment mechanism including a third adjustment block and a first adjustment component, the third adjustment block being connected to the first adjustment block, and the first adjustment component being disposed on the support block and connected to the third adjustment block.

[0012] By adopting the above technical solution, the first adjustment component is activated, which drives the third adjustment block to move, which in turn drives the first adjustment block to move, and the first adjustment block drives the second adjustment block to move; the second adjustment mechanism facilitates the adjustment of the position of the first adjustment block.

[0013] Optionally, the first adjustment assembly includes an adjustment screw, an adjustment shaft, a first bevel gear, a second bevel gear, and a driving member. The adjustment screw passes through the third adjustment block and is threadedly connected to the third adjustment block. The adjustment shaft is rotatably mounted on the support block. The first bevel gear is keyed to the adjustment shaft, and the second bevel gear is keyed to the adjustment screw and meshes with the first bevel gear. The driving member is connected to the adjustment shaft.

[0014] By adopting the above technical solution, the driving component drives the adjusting shaft to rotate, the first bevel gear on the adjusting shaft drives the second bevel gear to rotate, the second bevel gear drives the adjusting screw to rotate, and the adjusting screw drives the third adjusting block to move on the support block; the first adjusting component has a simple structure and is easy to operate.

[0015] Optionally, the support block includes a first fixing block, a rotating shaft, a second fixing block, a positioning component, and a mounting component. The rotating shaft is rotatably mounted on the first fixing block, and the second fixing block is mounted on the rotating shaft. The positioning component is mounted on the first fixing block and connected to the rotating shaft. The mounting component is mounted on the first fixing block. The scanning camera is mounted on the second fixing block via the first adjustment mechanism.

[0016] By adopting the above technical solution, the first fixing block is installed in the desired position by the mounting component, and then the second fixing block is rotated. The rotating shaft on the second fixing block will rotate on the first fixing block, and the first adjustment mechanism on the second fixing block will cause the angle of the scanning camera relative to the first fixing block to change. After the position of the scanning camera is determined, the rotating shaft is fixed by the positioning component. Therefore, the adjustable support block can change the position of the scanning camera, thereby improving its applicability.

[0017] Optionally, the mounting assembly includes a mounting block and a mounting bolt. The mounting block is disposed on the first fixing block. The mounting block has a second through hole and a second threaded hole is provided on the main body for supporting the first fixing block. The mounting bolt passes through the second through hole and is threadedly connected to the second threaded hole.

[0018] By adopting the above technical solution, the mounting bolt passes through the second through hole and is threadedly connected to the second threaded hole, thereby fixing the first fixing block; the installation component has a simple structure and is easy to operate.

[0019] Optionally, the positioning component includes a connecting block and a positioning block. The connecting block is disposed on the rotating shaft and has a third through hole. The first fixing block has a positioning groove, and the positioning block passes through the third through hole and engages with the positioning groove.

[0020] By adopting the above technical solution, the rotating shaft will drive the connecting block to rotate when it rotates. After the position of the rotating shaft is fixed, the positioning block passes through the third through hole and engages with the positioning groove. Under the limitation of the positioning block, the connecting block will no longer rotate, and the rotating shaft will no longer rotate, thereby achieving the fixation of the position of the second fixing block relative to the first fixing block.

[0021] Optionally, the first fixing block is provided with a reinforcing component, the reinforcing component including a reinforcing block and a first spring, the first fixing block is provided with a fourth through hole communicating with the positioning groove, the reinforcing block is slidably disposed in the fourth through hole, the positioning block is provided with a reinforcing groove that engages with the reinforcing block; one end of the first spring is connected to the reinforcing block and the other end is connected to the first fixing block.

[0022] By adopting the above technical solution, before the positioning block is engaged with the positioning groove, the reinforcing block is pulled so that the end of the reinforcing block near the positioning groove enters the fourth through hole, and the first spring deforms; when the positioning block is engaged with the positioning groove, the reinforcing block is released, and under the action of the first spring force, the reinforcing block will engage with the reinforcing groove on the positioning block, thereby improving the stability of the engagement between the positioning block and the positioning groove.

[0023] Optionally, the reinforcing block is provided with an adjustment component, which includes an adjustment block and a limiting bolt. The adjustment block is disposed on the reinforcing block and has a fifth through hole. The first fixing block has a third threaded hole, and the limiting bolt passes through the fifth through hole and is threadedly connected to the third threaded hole.

[0024] By adopting the above technical solution, pulling the adjustment plate will cause the reinforcing block to move. The adjustment plate is designed to facilitate the adjustment of the position of the reinforcing block. When the reinforcing block is engaged with the reinforcing groove, the limiting bolt passes through the fifth through hole and is threadedly connected to the third threaded hole, thereby fixing the adjustment plate on the reinforcing block to the first fixed block, thus improving the stability when the reinforcing block is engaged with the reinforcing groove.

[0025] Optionally, a third adjustment mechanism is provided on the second adjustment block. The third adjustment mechanism includes a fourth adjustment block, a fifth adjustment block, and a second adjustment component. The fourth adjustment block is disposed on the second adjustment block, and the fifth adjustment block is disposed on the fourth adjustment block through the second adjustment component. The scanning camera is disposed on the fourth adjustment block.

[0026] By adopting the above technical solution, the fifth adjustment block changes its position relative to the fourth adjustment block through the second adjustment component, thereby changing the position of the scanning camera; therefore, the third adjustment mechanism can change the position of the scanning camera, thereby improving applicability.

[0027] In summary, this application includes at least one of the following beneficial technical effects:

[0028] 1. The first adjustment mechanism provided in this application facilitates the adjustment of the scanning camera's position, thereby increasing the adjustment range;

[0029] 2. The adjustable support block allows for changes in the position of the scanning camera, thereby improving applicability. Attached Figure Description

[0030] Figure 1 This is a schematic diagram of the scanning structure used for testing calendered products in an embodiment of this application;

[0031] Figure 2 This is a schematic diagram of the positioning component in an embodiment of this application;

[0032] Figure 3 This is a schematic diagram of the structure of the reinforcement component in the embodiments of this application;

[0033] Figure 4 This is a schematic diagram of the structure of the second adjustment mechanism in the embodiments of this application;

[0034] Figure 5 This is a schematic diagram of the structure of the first adjustment component in an embodiment of this application;

[0035] Figure 6 This is a schematic diagram of the structure of the second adjustment component in the embodiments of this application;

[0036] Figure 7 This is a schematic diagram of the assembly components in an embodiment of this application.

[0037] Reference numerals: 1. Support block; 11. First fixing block; 12. Rotating shaft; 13. Second fixing block; 131. First sliding groove; 132. Second sliding groove; 14. Mounting assembly; 141. Mounting block; 142. Mounting bolt; 15. Positioning assembly; 151. Connecting block; 1511. Third through hole; 152. Positioning block; 16. First connecting bolt; 2. Scanning camera; 3. First adjustment mechanism; 31. First adjusting block; 311. First threaded hole; 32. Second adjusting block; 33. Adjusting fixing component; 4. Second adjustment mechanism; 41. Third adjusting block; 42. 1. Adjustment assembly; 421. Adjustment screw; 422. Adjustment shaft; 423. First bevel gear; 424. Second bevel gear; 425. Drive component; 5. Reinforcing assembly; 51. Reinforcing block; 52. First spring; 6. Adjustment assembly; 61. Adjustment block; 62. Limiting bolt; 7. Third adjustment mechanism; 71. Fourth adjustment block; 72. Fifth adjustment block; 721. Groove; 73. Second adjustment assembly; 731. Limiting block; 732. Screw; 733. Second spring; 8. Assembly assembly; 81. Assembly plate; 82. First assembly bolt; 83. Second assembly bolt. Detailed Implementation

[0038] The following is in conjunction with the appendix Figures 1-7 This application will be described in further detail.

[0039] This application discloses a scanning structure for testing rolled products.

[0040] refer to Figure 1 A scanning structure for inspecting calendered products includes a support block 1, a first adjustment mechanism 3 on the support block 1, a third adjustment mechanism 7 on the first adjustment mechanism 3, and a scanning camera 2 on the third adjustment mechanism 7. In this embodiment, the scanning camera 2 is a TDI camera.

[0041] refer to Figure 1 and Figure 2The support block 1 includes a first fixing block 11, on which an installation component 14 is provided. The installation component 14 includes an installation block 141 integrally provided on the first fixing block 11. The installation block 141 has a second through hole for supporting the second threaded hole on the main body of the first fixing block 11. The installation block 141 is provided with an installation bolt 142, which passes through the second through hole on the installation block 141 and is threadedly connected to the second threaded hole on the main body, thereby fixing the first fixing block 11 to the main body. In this embodiment, the main body is generally the frame of the processing equipment.

[0042] refer to Figure 1 and Figure 2 There are two first fixing blocks 11, and a second fixing block 13 is provided between the two first fixing blocks 11. The end of the second fixing block 13 near the first fixing block 11 is provided with a fixing groove and a sixth through hole communicating with the fixing groove. A rotating shaft 12 is rotatably connected to the first fixing block 11. The end of the rotating shaft 12 away from the first fixing block 11 is located in the fixing groove of the second fixing block 13. A fourth threaded hole is provided on the rotating shaft 12. A first connecting bolt 16 is provided on the second fixing block 13. The first connecting bolt 16 passes through the sixth through hole on the second fixing block 13 and is threadedly connected to the fourth threaded hole on the rotating shaft 12.

[0043] refer to Figure 1 and Figure 2 A positioning component 15 is provided on the first fixing block 11. The positioning component 15 includes a connecting block 151, which is located on the side of the first fixing block 11 away from the second fixing block 13 and is fixedly connected to the rotating shaft 12. The connecting block 151 has a plurality of third through holes 1511 along its circumference, and a positioning groove is provided on the first fixing block 11. A positioning block 152 is provided on the connecting block 151, and the positioning block 152 can pass through one of the third through holes 1511 on the connecting block 151 and engage with the positioning groove on the first fixing block 11.

[0044] When the second fixing block 13 drives the rotating shaft 12 to rotate on the first fixing block 11, the rotating shaft 12 drives the connecting block 151 to rotate. After the position of the second fixing block 13 is determined, the connecting block 151 passes through one of the third through holes 1511 on the connecting block 151 and engages with the positioning groove on the first fixing block 11.

[0045] refer to Figure 2 and Figure 3 The first fixing block 11 has a fourth through hole communicating with the positioning groove. The first fixing block 11 is provided with a reinforcing component 5. The reinforcing component 5 includes a reinforcing block 51 that is slidably connected in the fourth through hole. The positioning block 152 located in the positioning groove has a reinforcing block 51 that is engaged with the reinforcing groove. A first spring 52 is connected to the reinforcing block 51. The end of the first spring 52 away from the reinforcing block 51 is connected to the first fixing block 11.

[0046] An adjustment component 6 is provided on the reinforcing block 51. The adjustment component 6 includes an adjustment block 61 integrally disposed on the reinforcing block 51. The adjustment block 61 is located at the end of the reinforcing block 51 away from the positioning groove. The end of the adjustment block 61 away from the reinforcing block 51 extends out of the first fixing block 11. When the reinforcing block 51 is engaged with the reinforcing groove on the positioning block 152, the adjustment block 61 abuts against the first fixing block 11. A fifth through hole is provided on the adjustment block 61, and a third threaded hole is provided on the first fixing block 11. A limiting bolt 62 is provided on the adjustment block 61. The limiting bolt 62 passes through the fifth through hole on the adjustment block 61 and is threadedly connected to the third threaded hole on the first fixing block 11.

[0047] Before the positioning block 152 engages with the positioning groove on the first fixing block 11, the adjusting block 61 is pulled. The adjusting block 61 moves the reinforcing block 51, so that the end of the reinforcing block 51 near the reinforcing groove is located in the fourth through hole of the first fixing block 11, and the first spring 52 is in a deformed state. After the positioning block 152 passes through the third through hole 1511 on the connecting block 151 and engages with the reinforcing groove on the first fixing block 11, the adjusting block 61 is released. The force of the first spring 52 restoring its elastic deformation drives the reinforcing block 51 to move, so that the reinforcing block 51 engages with the reinforcing groove on the positioning block 152, and the adjusting block 61 abuts against the first fixing block 11. Finally, the limiting bolt 62 is threaded through the fifth through hole on the adjusting block 61 and threaded into the third threaded hole on the first fixing block 11. This achieves the second fixing block 13 rotating relative to the first fixing block 11 before being fixed to the first fixing block 11.

[0048] refer to Figure 1 and Figure 4 Two first grooves 131 and a second groove 132 communicating with the two first grooves 131 are provided on the second fixed block 13.

[0049] A second adjustment mechanism 4 is provided on the second fixing block 13. The second adjustment mechanism 4 includes a third adjustment block 41 that is slidably connected within the second slide groove 132. A first adjustment component 42 is provided on the second fixing block 13.

[0050] refer to Figure 1 , Figure 4 and Figure 5The first adjustment assembly 42 includes an adjustment screw 421 rotatably connected in the second slide groove 132, the adjustment screw 421 passing through the third adjustment block 41 and being threadedly connected to the third adjustment block 41; one end of the adjustment screw 421 is keyed to a second bevel gear 424; an adjustment shaft 422 is rotatably connected to the second fixing block 13, and a first bevel gear 423 meshing with the second bevel gear 424 is keyed to the adjustment shaft 422; a driving member 425 is provided on the second fixing block 13, which in this embodiment is a driving shaft, rotatably connected to the second fixing block 13 and fixedly connected to the adjustment shaft 422; in other embodiments, the driving member 425 may also be a driving motor, which is fixed to the second fixing block 13 and its output shaft is connected to the adjustment shaft 422.

[0051] The driving component 425 drives the adjusting shaft 422 to rotate, the adjusting shaft 422 drives the first bevel gear 423 to rotate, the first bevel gear 423 drives the second bevel gear 424 to rotate, the second bevel gear 424 drives the adjusting screw 421 to rotate, and the adjusting screw 421 drives the third adjusting block 41 to slide within the second groove 132 of the second fixed block 13.

[0052] refer to Figure 1 and Figure 4 The first adjustment mechanism 3 includes two first adjustment blocks 31 fixedly connected to the third adjustment block 41. The two first adjustment blocks 31 are respectively slidably disposed in the two first slide grooves 131 of the second fixed block 13. The first adjustment block 31 is in the shape of a trapezoid, and the vertical cross section of the first adjustment block 31 gradually decreases in the direction away from the third adjustment block 41. The shape of the first slide groove 131 matches that of the first adjustment block 31.

[0053] The second fixing block 13 is provided with a second adjusting block 32, the second adjusting block 32 is provided with a first through hole, the first adjusting block 31 is provided with a first threaded hole 311, and the second adjusting block 32 is provided with an adjusting fixing member 33. In this embodiment, the adjusting fixing member 33 is an adjusting fixing bolt. The adjusting bolt passes through the first through hole on the second adjusting block 32 and is threadedly connected to the first threaded hole 311 on the first adjusting block 31.

[0054] When the position of the second adjusting block 32 needs to be moved, the second adjusting block 32 is not pressed against the second fixed block 13, and the adjusting fixing bolt remains engaged with the first threaded hole 311 on the first adjusting block 31. Through the driving action of the driving member 425, the third adjusting block 41 drives the first adjusting block 31 to slide in the first slide groove 131, and the adjusting fixing bolt on the first adjusting block 31 will drive the second adjusting block 32 to move relative to the second fixed block 13. After the position of the second adjusting block 32 is determined, the driving member 425 stops driving the third adjusting block 41 to rotate, and the adjusting fixing bolt is rotated. Under the action of the nut of the adjusting fixing bolt, the second adjusting block 32 is pressed against the second fixed block 13.

[0055] refer to Figure 4 and Figure 6 A third adjustment mechanism 7 is provided on the second adjustment block 32. The third adjustment mechanism includes a fourth adjustment block 71 fixedly connected to the second adjustment block 32. A fifth adjustment block 72 is provided on the side of the fourth adjustment block 71 away from the second adjustment block 32. Both the fourth adjustment block 71 and the fifth adjustment block 72 are cuboids. A second adjustment component 73 connected to the fourth adjustment block 71 is provided on the fifth adjustment block 72. The second adjustment component 73 includes a second spring 733, which is a mold spring. One end of the second spring 733 is connected to the fourth adjustment block 71 and the other end is connected to the fifth adjustment block 72. There are three second springs 733, which are located at three of the four corners of the fourth adjustment block 71. That is, no second spring 733 is connected to one corner of the fourth adjustment block 71. There are two second springs 733 along the length of the fourth adjustment block 71. One side of 33 is the first side of the fourth adjusting block 71, and the side of the fourth adjusting block 71 with a second spring 733 in the length direction is the second side of the fourth adjusting block 71; similarly, the three second springs 733 are located at three of the four corners of the fifth adjusting block 72, that is, there is no second spring 733 connected to one corner of the fifth adjusting block 72, the side of the fifth adjusting block 72 with two second springs 733 in the length direction is the first side of the fifth adjusting block 72, and the side of the fifth adjusting block 72 with one second spring 733 in the length direction is the second side of the fifth adjusting block 72.

[0056] Three fifth threaded holes are provided on the fourth adjusting block 71, each corresponding to one of the three second springs 733. A seventh through hole corresponding to each second spring 733 is provided on the fifth adjusting block 72. A groove 721 communicating with the seventh through hole is also provided on the fifth adjusting block 72, the cross-section of which is larger than the cross-section of the seventh through hole. A limiting block 731 is provided on the fifth adjusting block 72, and a screw 732 is fixedly connected to the limiting block 731. The end of the screw 732 away from the limiting block 731 passes sequentially through the groove 721, the seventh through hole, and the second springs 733 on the fifth adjusting block 72, and then is threadedly connected to the fifth threaded hole on the fourth adjusting block 71. The limiting block 731 is located within the groove 721. The cross-section of the limiting block 731 is larger than the cross-section of the seventh through hole but smaller than the cross-section of the groove 721. In this embodiment, the second spring 733 is always in a compressed state, and an internal hexagonal groove is provided on the end of the limiting block 731 away from the screw 732.

[0057] When it is necessary to adjust the angle of the fifth adjusting block 72 relative to the fourth adjusting block 71, an Allen wrench is used to engage with the Allen groove on the limiting block 731. The Allen groove on the limiting block 731 corresponding to the second side of the fourth adjusting block 71 and the second side of the fifth adjusting block 72 engages with the Allen handle. Rotating the Allen handle causes the Allen wrench to drive the limiting block 731 to rotate, which in turn drives the screw 732 to rotate. The length of the engagement between the screw 732 and the fifth threaded hole on the fourth adjusting block 71 will change, and the second spring 733 will change. The force of the second spring 733 corresponding to the second side of the fourth adjusting block 71 and the second side of the fifth adjusting block 72 restoring its elastic deformation will drive the fifth adjusting block 72 to move. Since the screw 732 and the limiting block 731 corresponding to the first side of the fourth adjusting block 71 and the first side of the fifth adjusting block 72 have not been adjusted, the angle of the fifth adjusting block 72 relative to the fourth adjusting block 71 will change.

[0058] refer to Figure 6 and Figure 7 The scanning camera 2 is provided with an assembly component 8, which includes an assembly plate 81 that abuts against the scanning camera 2. The assembly plate 81 has an eighth through hole, and the scanning camera 2 has a sixth threaded hole. The assembly plate 81 is provided with a first assembly bolt 82, which passes through the eighth through hole on the assembly plate 81 and is threadedly connected to the sixth threaded hole on the scanning camera 2. The assembly plate 81 can abut against a fifth adjustment block 72. The assembly plate 81 has a ninth through hole, and the fifth adjustment block 72 has a seventh threaded hole. The assembly plate 81 is provided with a second assembly bolt 83, which passes through the ninth through hole on the assembly plate 81 and is threadedly connected to the seventh threaded hole on the fifth adjustment block 72, thereby enabling the scanning camera 2 to be mounted on the fifth adjustment block 72.

[0059] The implementation principle of a scanning structure for testing calendered products according to an embodiment of this application is as follows: first, the scanning camera 2 is installed on the fifth adjustment block 72, and then the first fixing block 11 is installed on the required main body.

[0060] As needed, the third adjusting block 41 is driven by the driving component 425 to slide within the second slide groove 132 of the second fixed block 13. The first adjusting block 31 on the third adjusting block 41 drives the second adjusting block 32 to move laterally on the second fixed block 13. The fourth adjusting block 71 on the second adjusting block 32 drives the fifth adjusting block 72 to move laterally via the second spring 733. The assembly plate 81 on the fifth adjusting block 72 will then drive the scanning camera 2 to move laterally, causing the position of the scanning camera 2 relative to the second fixed block 13 to change. After the position of the scanning camera 2 is determined, the adjusting fixing bolt is rotated to make the second adjusting block 32 press against the second fixed block 13.

[0061] When it is necessary to adjust the angle of the scanning camera 2 relative to the first fixed block 11, firstly, the positioning block 152 is not engaged with the positioning groove on the first fixed block 11; then, the second fixed block 13 is rotated, and the angle of the second fixed block 13 relative to the first fixed block 11 changes to achieve coarse adjustment. After the position of the second fixed block 13 is determined, the positioning block 152 is engaged with the positioning groove on the first fixed block 11, and the reinforcing block 51 is engaged with the reinforcing groove on the positioning block 152; then, the positions of the limiting block 731 and the second spring 733 are adjusted, so that the angle of the fifth adjusting block 72 relative to the fourth adjusting block 71 changes, and the assembly plate 81 on the fifth adjusting block 72 will drive the scanning camera 2 to move to achieve fine adjustment; finally, the position of the scanning camera 2 relative to the first fixed block 11 changes.

[0062] 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 scanning structure for inspecting calendered products, comprising a support block (1) and a scanning camera (2), characterized in that, It also includes a first adjustment mechanism (3), which includes a first adjustment block (31), a second adjustment block (32) and an adjustment fixing member (33). The support block (1) is provided with a first sliding groove (131), and the first adjustment block (31) is slidably disposed in the first sliding groove (131). The scanning camera (2) is disposed on the second adjustment block (32). The adjustment fixing member (33) connects the second adjustment block (32) and the first adjustment block (31), and the adjustment fixing member (33) can fix the position of the first adjustment block (31).

2. The scanning structure for detecting calendered products according to claim 1, characterized in that, The adjusting fastener (33) includes an adjusting fixing bolt. The second adjusting block (32) has a first through hole, and the first adjusting block (31) has a first threaded hole (311). The adjusting fixing bolt passes through the first through hole and is threadedly connected to the first threaded hole (311). When the first adjusting block (31) moves, the adjusting fixing bolt is still threadedly connected to the first threaded hole (311).

3. The scanning structure for detecting calendered products according to claim 1, characterized in that, The first adjustment block (31) is provided with a second adjustment mechanism (4), the second adjustment mechanism (4) includes a third adjustment block (41) and a first adjustment component (42), the third adjustment block (41) is connected to the first adjustment block (31), and the first adjustment component (42) is provided on the support block (1) and connected to the third adjustment block (41).

4. The scanning structure for detecting calendered products according to claim 3, characterized in that, The first adjustment assembly (42) includes an adjustment screw (421), an adjustment shaft (422), a first bevel gear (423), a second bevel gear (424), and a drive member (425). The adjustment screw (421) passes through the third adjustment block (41) and is threadedly connected to the third adjustment block (41). The adjustment shaft (422) is rotatably mounted on the support block (1). The first bevel gear (423) is keyed to the adjustment shaft (422). The second bevel gear (424) is keyed to the adjustment screw (421) and meshes with the first bevel gear (423). The drive member (425) is connected to the adjustment shaft (422).

5. The scanning structure for detecting calendered products according to claim 1, characterized in that, The support block (1) includes a first fixing block (11), a rotating shaft (12), a second fixing block (13), a positioning component (15), and a mounting component (14). The rotating shaft (12) is rotatably mounted on the first fixing block (11), and the second fixing block (13) is mounted on the rotating shaft (12). The positioning component (15) is mounted on the first fixing block (11) and connected to the rotating shaft (12). The mounting component (14) is mounted on the first fixing block (11). The scanning camera (2) is mounted on the second fixing block (13) via the first adjustment mechanism (3).

6. The scanning structure for detecting calendered products according to claim 5, characterized in that, The mounting component (14) includes a mounting block (141) and a mounting bolt (142). The mounting block (141) is disposed on the first fixing block (11). The mounting block (141) has a second through hole and a second threaded hole on its main body for supporting the first fixing block (11). The mounting bolt (142) passes through the second through hole and is threadedly connected to the second threaded hole.

7. The scanning structure for detecting calendered products according to claim 5, characterized in that, The positioning component (15) includes a connecting block (151) and a positioning block (152). The connecting block (151) is disposed on the rotating shaft (12). A third through hole (1511) is provided on the connecting block (151). A positioning groove is provided on the first fixing block (11). The positioning block (152) passes through the third through hole (1511) and engages with the positioning groove.

8. The scanning structure for detecting calendered products according to claim 7, characterized in that, The first fixing block (11) is provided with a reinforcing component (5), the reinforcing component (5) includes a reinforcing block (51) and a first spring (52). The first fixing block (11) is provided with a fourth through hole that communicates with the positioning groove. The reinforcing block (51) is slidably disposed in the fourth through hole. The positioning block (152) is provided with a reinforcing groove that engages with the reinforcing block (51). One end of the first spring (52) is connected to the reinforcing block (51) and the other end is connected to the first fixing block (11).

9. A scanning structure for detecting calendered products according to claim 8, characterized in that, An adjustment component (6) is provided on the reinforcing block (51). The adjustment component (6) includes an adjustment block (61) and a limiting bolt (62). The adjustment block (61) is provided on the reinforcing block (51). A fifth through hole is provided on the adjustment block (61). A third threaded hole is provided on the first fixing block (11). The limiting bolt (62) passes through the fifth through hole and is threadedly connected to the third threaded hole.

10. A scanning structure for detecting calendered products according to claim 1, characterized in that, The second adjustment block (32) is provided with a third adjustment mechanism (7), the third adjustment mechanism (7) includes a fourth adjustment block (71), a fifth adjustment block (72) and a second adjustment component (73), the fourth adjustment block (71) is provided on the second adjustment block (32), the fifth adjustment block (72) is provided on the fourth adjustment block (71) through the second adjustment component (73), and the scanning camera (2) is provided on the fourth adjustment block (71).