Pre-adjustment detection system for formwork production line
By introducing adjustment components and support structures into the mold frame production line inspection system, the problem of high error rate during side flatness and height detection of mold frame is solved, and a more efficient and stable detection process is achieved.
Patent Information
- Application Number
- CN202510864667.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-26
- Publication Date
- 2025-08-12
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the prior art, the first slide rail and the second slide rail cannot be used when detecting the flatness and height of the side surface of the mold frame, resulting in a high error rate of the test step.
By introducing adjustment components, including a rotating platform and a fixing structure in the detection system, the working platform is allowed to be in a vertical state and inspected with an adjustable universal bracket and test probe, combining the support components and fixing devices to reduce the error rate.
The error rate of side flatness and height detection of mold frames is reduced, the stability and convenience of detection are improved, and the service life of fixing bolts is extended.
Smart Images

Figure CN120467147A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of mold frame detection, and in particular to a pre-adjustment detection system for a mold frame production line. Background Art
[0002] The pre-adjustment detection system for the mold frame production line is a device used to pre-adjust the levelness, positioning accuracy and clamping status of the workpiece outside the processing equipment. The main functions include workpiece level adjustment, positioning and alignment, pre-clamping and preliminary detection, which can reduce equipment downtime and improve processing efficiency. Its main structure includes an adjustment platform, a docking platform installed on one side of the adjustment platform for docking the production line, a working platform fixedly installed on the adjustment platform on one side of the docking platform, a first slide rail set on the left side of the working platform and arranged along the length direction of the working platform, a second slide rail set on the rear side of the working platform and arranged along the width direction of the working platform, two adjustable universal brackets respectively installed on the first slide rail and the second slide rail, and a test probe installed on the adjustable universal bracket. The mold frame on the production line is moved smoothly through the docking platform, and then the mold frame is moved to the working platform. At this time, the user only needs to adjust the angle of the test probe, and then push the adjustable universal bracket to slide on the first slide rail or the second slide rail, so that the test probe can smoothly detect the mold frame.
[0003] However, when inspecting the flatness and height of the side of the mold frame, since the inspection direction is from top to bottom or from bottom to top, the inspection staff cannot use the first slide rail and the second slide rail, but instead control the movement of the test probe through the universal bracket. This is a test of the staff's work experience, so the error rate of this test step is very high. For this reason, the present application proposes a pre-adjustment inspection system for a mold frame production line, which is used to solve the technical problem in the prior art that the first slide rail and the second slide rail cannot be used when inspecting the flatness and height of the side of the mold frame, so as to reduce the error rate of this test step. Summary of the Invention
[0004] In view of the shortcomings of the existing technology, the purpose of this application is to provide a pre-adjustment detection system for a mold frame production line, which is used to solve the technical problem in the existing technology that the first slide rail and the second slide rail cannot be used when detecting the flatness and height of the mold frame side, so as to reduce the error rate of this testing step.
[0005] The above-mentioned purpose of the present application is achieved through the following technical solutions: a pre-adjustment detection system for a mold frame production line, comprising an adjustment platform, a docking platform installed on one side of the adjustment platform for docking with the production line, a working platform arranged on one side of the docking platform, a first slide rail arranged on the left side of the working platform and along the length direction of the working platform, a second slide rail arranged on the rear side of the working platform and along the width direction of the working platform, two adjustable universal brackets respectively installed on the first slide rail and the second slide rail, and a test probe installed on the adjustable universal bracket, an adjustment component for adjusting the state of the mold frame is installed on one side of the docking platform, the adjustment component comprises two fixed plates respectively located at the front and rear ends of the first slide rail close to one side of the working platform and fixedly connected to the adjustment platform, and a rotating platform with one end located between the two fixed plates and rotatably connected to the fixed plate, and the other end extending toward the docking platform, and the working platform is installed on the rotating platform.
[0006] By adopting the above technical solution and adjusting the setting of the components, when the staff needs to detect the flatness and height of the side of the mold frame, they first move the adjustable universal bracket to the end of the first slide rail and the second slide rail close to the fixed plate, and then rotate the rotating platform to a vertical state, so that the working platform installed on the rotating platform is also in a vertical state, so that the mold frame follows the working platform to a vertical state. At this time, the staff only needs to adjust the adjustable universal bracket so that the test probe contacts the side of the mold frame, and then push the adjustable universal bracket to slide along the second slide rail to smoothly detect the mold frame, thereby solving the technical problem in the prior art that the first slide rail and the second slide rail cannot be used when detecting the flatness and height of the side of the mold frame, so as to reduce the error rate of this test step.
[0007] Furthermore, a fixing structure for fixing the rotating platform is provided on a side of one of the two fixing plates facing away from the other fixing plate.
[0008] Furthermore, the fixing structure includes a fixing threaded hole opened on the fixing plate and passing through the fixing plate, a connecting threaded hole opened on the side of the rotating platform close to the fixing plate and docking with the fixing threaded hole, and a fixing bolt that passes through the fixing threaded hole and is threadedly connected to the rotating platform.
[0009] By adopting the above technical solution, although the setting of the adjustment component reduces the error rate in the existing technology when detecting the flatness and height of the side of the mold frame, the staff needs to hold the rotating platform all the time to prevent it from tipping over after rotating the rotating platform to a vertical state, which makes it very inconvenient for the staff to use the test probe. The setting of the fixed structure solves this technical problem. Through the setting of the fixed structure, after the staff rotates the rotating platform to a vertical state, they pick up the fixing bolt and align it with the fixing threaded hole, and then screw in the fixing bolt so that the fixing bolt passes through the fixing threaded hole and the connecting threaded hole through the fixing plate and is threadedly connected to the rotating platform to fix the rotating platform. At this time, the staff does not need to hold the rotating platform to prevent it from tipping over, which makes it more convenient for the staff to test.
[0010] Furthermore, a support assembly for supporting the rotating platform is provided on a side of the rotating platform facing away from the working platform.
[0011] Furthermore, the support assembly includes a connecting block arranged on a side of the rotating platform away from the working platform, a fixed block arranged on the adjustment platform, a connecting rod with one end rotatably connected to the fixed block and the other end extending toward the connecting block, and a docking rod with one end rotatably connected to the connecting block and the other end abutting the connecting rod. A connecting shaft passing through the docking rod and the connecting rod is provided on one side of the end at which the docking rod and the connecting rod are abutted against each other, and a damping ring is provided at the connection where the docking rod and the connecting rod are rotatably connected to the connecting shaft.
[0012] By adopting the above technical solution, although the setting of the fixed structure makes it more convenient for the staff to test, since the mold frame itself has a certain weight, the fixing bolts need to bear most of the weight, resulting in more serious thread wear of the fixing bolts, which greatly reduces the service life of the fixing bolts. Through the setting of the support assembly, when the rotating platform is in a horizontal state, the docking rod and the connecting rod are folded together, and when the rotating platform is in a vertical state, the docking rod and the connecting rod are in a straight state, forming a triangular structure with the rotating platform and the adjustment platform, so that the docking rod and the connecting rod provide support for the rotating platform to reduce the weight borne by the fixing bolts, so as to improve the service life of the fixing bolts. Moreover, through the setting of the support assembly, the staff only needs to rotate the rotating platform to the limit, and the rotating platform is in a vertical state, which makes it easier for the staff to turn the rotating platform to a vertical state.
[0013] Furthermore, a receiving groove for receiving the docking rod and the connecting rod is provided on the adjustment platform, and the fixing block is fixedly arranged in one end of the receiving groove away from the connecting block.
[0014] By adopting the above technical solution, the docking rod and the connecting rod are folded together in the storage groove, preventing the docking rod and the connecting rod from affecting the rotation platform to restore to a horizontal state.
[0015] Furthermore, the working platform is provided with a fixing device for fixing the mold frame.
[0016] Furthermore, the fixing device includes a first slide groove located in the middle of the working platform and opened along the width direction of the working platform, a second slide groove located in the middle of the working platform and opened along the length direction of the working platform, two adjusting screws respectively arranged in the first slide groove and the second slide groove, and two driving motors respectively arranged on the right side and the rear side of the working platform and used to drive the adjusting screw to rotate, the depth of the second slide groove is deeper than the first slide groove, the two adjusting screws are staggered up and down, and two sliding blocks threadedly connected to the adjusting screws and opposite to each other are installed on the two adjusting screws, and a clamping column extending out of the first slide groove and the second slide groove is installed on the top of the sliding block, and the driving motor is installed on the rotating platform.
[0017] By adopting the above technical solution, the mold frame is placed in the middle of the work platform, and then the drive motor is started to rotate the adjusting screw. The rotating adjusting screw causes the sliding blocks to approach each other, so that the clamping columns clamp the periphery of the mold frame and fix the mold frame on the work platform. This prevents the mold frame from being displaced or shaken during inspection by the staff, and mold frames of different sizes can be fixed by the fixing device.
[0018] Furthermore, wiring holes for routing the drive motor are provided on a side of the rotating platform away from the working platform and an upper surface of the adjusting platform.
[0019] By adopting the above technical solution, the wiring of the drive motor is facilitated (a certain length needs to be reserved when routing the drive motor to facilitate the rotation of the rotating platform).
[0020] Furthermore, the clamping column is made of natural latex.
[0021] By adopting the above technical solution, the clamping column made of natural latex has good elasticity and durability, which can avoid rigid contact between the clamping column and the mold frame, thereby preventing the clamping column from damaging the mold frame.
[0022] In summary, this application includes at least one of the following beneficial technical effects: By adjusting the setting of the components, when the staff needs to detect the flatness and height of the side of the mold frame, they first move the adjustable universal bracket to the end of the first slide rail and the second slide rail close to the fixed plate, and then rotate the rotating platform to a vertical state, so that the working platform installed on the rotating platform is also in a vertical state, so that the mold frame follows the working platform to a vertical state. At this time, the staff only needs to adjust the adjustable universal bracket so that the test probe contacts the side of the mold frame, and then push the adjustable universal bracket to slide along the second slide rail to smoothly detect the mold frame, thereby solving the technical problem in the prior art that the first slide rail and the second slide rail cannot be used when detecting the flatness and height of the side of the mold frame, so as to reduce the error rate of this test step. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 1 is a schematic diagram of the overall structure of the embodiment; Figure 2 yes Figure 1 Enlarged view of part A in the middle; Figure 3 This is another state diagram of the overall structure of the embodiment; Figure 4 It is a schematic diagram of the folding of the right-angle fixed structure; Figure 5 It is a schematic diagram of the expansion of the right-angle fixed structure; Figure 6 for Figure 5 Enlarged view of part B in .
[0024] 1. Adjustment platform; 10. Docking platform; 11. Working platform; 12. First slide rail; 13. Second slide rail; 14. Adjustable universal bracket; 15. Test probe; 2. Adjustment assembly; 20. Fixing plate; 21. Rotating platform; 3. Fixing structure; 30. Fixing threaded hole; 31. Fixing bolt; 4. Support assembly; 40. Connecting block; 41. Fixing block; 42. Connecting rod; 43. Docking rod; 44. Connecting shaft; 45. Storage slot; 5. Fixing device; 50. First slide slot; 51. Second slide slot; 52. Adjusting screw; 53. Driving motor; 54. Sliding block; 55. Clamping column; 6. Wiring hole; 7. Right-angle fixing structure; 70. Fixing slot; 71. Right-angle limiter; 710. Limiting base; 711. Measuring square; 712. Moving slide slot; 713. Push rod; 714. Moving track; 72. Hinge. DETAILED DESCRIPTION
[0025] The present application is further described in detail below with reference to the accompanying drawings.
[0026] Example, see Figure 1A pre-adjustment detection system for a mold frame production line includes an adjustment platform 1, a docking platform 10 for docking the production line is installed on one side of the adjustment platform 1, a working platform 11 is installed on one side of the docking platform 10, a first slide rail 12 extending along the length direction of the working platform 11 is provided on the left side of the working platform 11, a second slide rail 13 extending along the width direction of the working platform 11 is provided on the rear side of the working platform 11, two adjustable universal brackets 14 are installed on the first slide rail 12 and the second slide rail 13, and a test probe 15 is installed on the adjustable universal bracket 14, an adjustment component 2 for adjusting the state of the mold frame is installed on one side of the docking platform 10, wherein the adjustment component 2 includes two fixed plates 20 respectively located at the front and rear ends of the first slide rail 12 close to one side of the working platform 11 and fixedly connected to the adjustment platform 1, and one end is located between the two fixed plates 20 and rotatably connected to the fixed plate 20, and the other end is toward the docking platform 1 0 extends from the rotating platform 21, and the working platform 11 is installed on the rotating platform 21. By adjusting the setting of the component 2, when the staff needs to detect the flatness and height of the side of the mold frame, they first move the adjustable universal bracket 14 to the end of the first slide rail 12 and the second slide rail 13 close to the fixed plate 20, and then rotate the rotating platform 21 to a vertical state, so that the working platform 11 installed on the rotating platform 21 is also in a vertical state, so that the mold frame follows the working platform 11 to a vertical state. At this time, the staff only needs to adjust the adjustable universal bracket 14 so that the test probe 15 contacts the side of the mold frame, and then push the adjustable universal bracket 14 to slide along the second slide rail 13 to stably detect the mold frame, thereby solving the technical problem in the prior art that the first slide rail 12 and the second slide rail 13 cannot be used when detecting the flatness and height of the side of the mold frame, so as to reduce the error rate of this test step.
[0027] Although the setting of the adjustment component 2 reduces the error rate in the prior art when detecting the flatness and height of the mold base side, the staff needs to hold the rotating platform 21 after rotating it to a vertical state to prevent it from falling, which makes it very inconvenient for the staff to use the test probe 15. In order to solve this technical problem, Figure 2The fixing structure 3 is provided on one side of the two fixing plates 20, one of which is away from the other fixing plate 20, for fixing the rotating platform 21. The fixing structure 3 includes a fixing threaded hole 30 provided on the fixing plate 20 and passing through the fixing plate 20, a connecting threaded hole provided on the rotating platform 21 close to the fixing plate 20 and docking with the fixing threaded hole 30, and a fixing bolt 31 that passes through the fixing plate 20 and is threadedly connected to the rotating platform 21 through the fixing threaded hole 30. Through the setting of the fixing structure 3, after the staff rotates the rotating platform 21 to a vertical state, they pick up the fixing bolt 31 and align it with the fixing threaded hole 30, and then screw in the fixing bolt 31, so that the fixing bolt 31 passes through the fixing threaded hole 30 and the connecting threaded hole and is threadedly connected to the rotating platform 21, fixing the rotating platform 21. At this time, the staff does not need to hold the rotating platform 21 to prevent it from tipping over, making it more convenient for the staff to test.
[0028] Although the setting of the fixing structure 3 makes it more convenient for the staff to test, the mold frame itself has a certain weight, so that the fixing bolt 31 needs to bear most of the weight, resulting in serious wear of the thread of the fixing bolt 31, which greatly reduces the service life of the fixing bolt 31. In order to solve this technical problem, reference is made to Figure 3In this embodiment, a support assembly 4 for supporting the rotating platform 21 is provided on the side of the rotating platform 21 away from the working platform 11. The support assembly 4 includes a connecting block 40 provided on the side of the rotating platform 21 away from the working platform 11, a fixed block 41 provided on the adjustment platform 1, a connecting rod 42 with one end rotatably connected to the fixed block 41 and the other end extending toward the connecting block 40, and a docking rod 43 with one end rotatably connected to the connecting block 40 and the other end abutting the connecting rod 42. A connecting shaft 44 passing through the docking rod 43 and the connecting rod 42 is provided on one side of the end at which the docking rod 43 and the connecting rod 42 are abutted against each other. A damping ring is provided at the connection point where the docking rod 43 and the connecting rod 42 are rotatably connected to the connecting shaft 44. When the rotating platform 21 is in a horizontal state, the docking rod 43 and the connecting rod 42 are folded together. When the rotating platform 21 is in a vertical state, the docking rod 43 It is in a straight line with the connecting rod 42 and forms a triangular structure with the rotating platform 21 and the adjusting platform, so that the docking rod 43 and the connecting rod 42 provide support for the rotating platform 21, reduce the weight borne by the fixing bolt 31, and thus improve the service life of the fixing bolt 31. Moreover, through the setting of the support assembly 4, the staff only needs to rotate the rotating platform 21 to the limit, and the rotating platform 21 is in a vertical state, making it easier for the staff to turn the rotating platform 21 vertical. In this embodiment, a storage groove 45 for accommodating the docking rod 43 and the connecting rod 42 is provided on the adjustment platform 1, and the fixing block 41 is fixedly arranged in the end of the storage groove 45 away from the connecting block 40, so that the docking rod 43 and the connecting rod 42 are folded with each other in the storage groove 45, preventing the docking rod 43 and the connecting rod 42 from affecting the rotating platform 21 to restore to a horizontal state.
[0029] In order to enable the support assembly 4 to support the rotating platform 21, each rotating connection point of the support assembly 4 is set to an interference fit, that is, a certain support can be provided through friction.
[0030] Reference Figure 4 Furthermore, when the rotating platform is in the upright position, a 90° angle is formed between the rotating platform 21 and the adjustment platform 1 to facilitate the test probe 15 to measure the mold frame height. Therefore, a right-angle fixing structure 7 is provided at the bottom of the rotating platform 21 on the adjustment platform 1 and is embedded in the adjustment platform 1.
[0031] Combine Figure 4 、 Figure 5 The right-angle fixing structure 7 includes a fixing groove 70 provided on the adjustment platform 1, and a right-angle limiter 71 which is fully embedded in the fixing groove 70. After the right-angle limiter 71 is taken out of the fixing groove 70 and placed against the rotating platform 21, the verticality of the rotating platform 21 can be measured and then locked, so that the height measurement of the mold frame is more accurate.
[0032] Combine Figure 5 、 Figure 6 The right-angle limiter 71 is rotatably connected to the fixed groove 70. A hinge 72 is fixed to the right-angle limiter 71, and the other corner of the hinge 72 is fixed to the side wall of the fixed groove 70. The right-angle limiter 71 includes a limiting base 710 and a measuring ruler 711 slidably connected to the limiting base 710. A movable track 714 is provided at the bottom of the measuring ruler 711, and a movable slide 712 is provided at the top of the limiting base. A push rod 713 is provided in the movable slide for pushing the measuring ruler 711 in translation. After the measuring ruler 711 is rotated out of the fixed groove 70, it is pushed parallel to the limiting base 710 so that it is in contact with the rotating platform 21 to complete the measurement. The push rod 713 is a threaded rod and a threaded tube that are threadedly connected to each other. The threaded rod can be pushed to move by rotating the threaded tube.
[0033] In this embodiment, a fixing device 5 for fixing the mold frame is provided on the working platform 11. The fixing device 5 includes a first slide 50 located in the middle of the working platform 11 and opened along the width direction of the working platform 11, a second slide 51 located in the middle of the working platform 11 and opened along the length direction of the working platform 11, two adjusting screws 52 respectively rotated in the first slide 50 and the second slide 51, and two driving motors 53 respectively arranged on the right side and the rear side of the working platform 11 and used to drive the adjusting screws 52 to rotate. The depth of the second slide 51 is deeper than that of the first slide 50. The two adjusting screws 52 are staggered up and down. Two sliding blocks 54 are installed on each of the plates, which are threadedly connected to the adjusting screw 52 and are opposite to each other. A clamping column 55 extending out of the first slide groove 50 and the second slide groove 51 is installed on the top of the sliding block 54. The driving motor 53 is installed on the rotating platform 21. By placing the mold frame in the middle of the working platform 11 and then starting the driving motor 53, the adjusting screw 52 rotates. The rotating adjusting screw 52 makes the sliding blocks 54 approach each other, so that the clamping column 55 clamps the periphery of the mold frame and fixes the mold frame on the working platform 11, so that the mold frame will not be displaced or shaken when the staff inspects it, and mold frames of different sizes can be fixed by the fixing device 5.
[0034] In this embodiment, a wiring hole 6 for the driving motor 53 is provided on the side of the rotating platform 21 facing away from the working platform 11 and the upper surface of the adjustment platform 1, which facilitates the wiring of the driving motor 53 (a certain length needs to be reserved when wiring the driving motor 53 to facilitate the rotation of the rotating platform 21).
[0035] In this embodiment, the clamping column 55 is made of natural latex. The clamping column 55 made of natural latex has good elasticity and durability, which can avoid rigid contact between the clamping column 55 and the mold frame, thereby preventing the clamping column 55 from damaging the mold frame.
[0036] Example 2: When the working platform 11 is erected, in order to enable the test probe 15 to work Specific implementation process: When the staff needs to check the flatness and height of the side of the mold frame, first place the mold frame on the center of the working platform 11, then start the drive motor 53 to rotate the adjusting screw 52, and the rotating adjusting screw 52 makes the sliding blocks 54 approach each other, so that the clamping column 55 clamps the periphery of the mold frame, and fixes the mold frame on the working platform 11, and then rotates the rotating platform 21 to a vertical state, so that the working platform 11 installed on the rotating platform 21 is also in a vertical state, so that the mold frame follows the working platform 11 to a vertical state, and then pick up the fixing bolt 31 and align it with the fixing threaded hole 30, and then screw in the fixing bolt 31, so that the fixing bolt 31 passes through the fixing threaded hole 30 and the connecting threaded hole through the fixing plate 20 and is threadedly connected to the rotating platform 21, and the rotating platform 21 is fixed. At this time, it is only necessary to adjust the adjustable universal bracket 14 so that the test probe 15 contacts the side of the mold frame, and then push the adjustable universal bracket 14 to slide along the second slide rail 13 to smoothly detect the mold frame.
[0037] The embodiments of this specific implementation method are all preferred embodiments of the present application and are not intended to limit the scope of protection of the application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A pre-adjustment detection system for a mold frame production line, characterized in that: The invention comprises an adjustment platform (1), a docking platform (10) installed on one side of the adjustment platform (1) for docking with a production line, a working platform (11) arranged on one side of the docking platform (10), a first slide rail (12) arranged on the left side of the working platform (11) and arranged along the length direction of the working platform (11), a second slide rail (13) arranged on the rear side of the working platform (11) and arranged along the width direction of the working platform (11), two adjustable universal brackets (14) respectively installed on the first slide rail (12) and the second slide rail (13), and a plurality of adjustable universal brackets (14) installed on the adjustable universal brackets. A test probe (15) is mounted on a bracket (14); an adjustment assembly (2) for adjusting the state of the mold frame is installed on one side of the docking platform (10); the adjustment assembly (2) comprises two fixed plates (20) respectively located at the front and rear ends of the first slide rail (12) close to one side of the working platform (11) and fixedly connected to the adjustment platform (1); and a rotating platform (21) with one end located between the two fixed plates (20) and rotatably connected to the fixed plate (20) and the other end extending toward the docking platform (10); and the working platform (11) is installed on the rotating platform (21).
2. A pre-adjustment detection system for a mold frame production line according to claim 1, characterized in that: A fixing structure (3) for fixing the rotating platform (21) is provided on a side of one of the two fixing plates (20) facing away from the other fixing plate (20).
3. A pre-adjustment detection system for a mold frame production line according to claim 2, characterized in that: The fixing structure (3) comprises a fixing threaded hole (30) provided on the fixing plate (20) and passing through the fixing plate (20), a connecting threaded hole provided on a side of the rotating platform (21) close to the fixing plate (20) and butting against the fixing threaded hole (30), and a fixing bolt (31) passing through the fixing threaded hole (30) and threadedly connected to the rotating platform (21).
4. A pre-adjustment detection system for a mold frame production line according to claim 1, characterized in that: A support assembly (4) for supporting the rotating platform (21) is provided on a side of the rotating platform (21) facing away from the working platform (11).
5. A pre-adjustment detection system for a mold frame production line according to claim 4, characterized in that: The support assembly (4) comprises a connecting block (40) arranged on a side of the rotating platform (21) away from the working platform (11), a fixed block (41) arranged on the adjusting platform (1), a connecting rod (42) having one end rotatably connected to the fixed block (41) and the other end extending toward the connecting block (40), and a docking rod (43) having one end rotatably connected to the connecting block (40) and the other end abutting the connecting rod (42), a connecting shaft (44) passing through the docking rod (43) and the connecting rod (42) being provided on one side of one end where the docking rod (43) and the connecting rod (42) abut each other, and a damping ring being provided at the connection where the docking rod (43) and the connecting rod (42) are rotatably connected to the connecting shaft (44).
6. A pre-adjustment detection system for a mold frame production line according to claim 5, characterized in that: The adjustment platform (1) is provided with a receiving groove (45) for receiving the docking rod (43) and the connecting rod (42), and the fixing block (41) is fixedly arranged in an end of the receiving groove (45) away from the connecting block (40).
7. The pre-adjustment detection system for a mold frame production line according to claim 1, characterized in that: The working platform (11) is provided with a fixing device (5) for fixing the mold frame.
8. A pre-adjustment detection system for a mold frame production line according to claim 7, characterized in that: The fixing device (5) includes a first sliding groove (50) located in the middle of the working platform (11) and opened along the width direction of the working platform (11), a second sliding groove (51) located in the middle of the working platform (11) and opened along the length direction of the working platform (11), two adjusting screws (52) respectively rotatably arranged in the first sliding groove (50) and the second sliding groove (51), and two driving motors (53) respectively arranged on the right side and the rear side of the working platform (11) and used to drive the adjusting screws (52) to rotate, the depth of the second sliding groove (51) is deeper than the first sliding groove (50), the two adjusting screws (52) are staggered up and down, and two sliding blocks (54) threadedly connected to the adjusting screws (52) and opposite to each other are installed on the two adjusting screws (52), the top of the sliding block (54) is installed with a clamping column (55) extending out of the first sliding groove (50) and the second sliding groove (51), and the driving motor (53) is installed on the rotating platform (21).
9. A pre-adjustment detection system for a mold frame production line according to claim 8, characterized in that: The side of the rotating platform (21) facing away from the working platform (11) and the upper surface of the adjusting platform (1) are both provided with wiring holes (6) for routing the driving motor (53).
10. The pre-adjustment detection system for a mold frame production line according to claim 8, characterized in that: The clamping column (55) is made of natural latex.