An automated copper bar flaw detection device
Through the design of casual disassembly detection components and installation interlocking mechanism, the cumbersome problem of detection ring replacement is solved, and the rapid installation and disassembly of the detection ring is achieved, which improves the working efficiency and the fixing effect of the detection ring.
Patent Information
- Application Number
- CN202510443089.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-10
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2045-04-10
AI Technical Summary
In the existing automated copper rod flaw detection equipment, the replacement process of the detection ring is cumbersome, and the welding method leads to high replacement cost, while the bolt fastening method takes a long time, which affects working efficiency.
The casual disassembly detection assembly and installation interlocking mechanism are adopted to achieve rapid installation and disassembly of the detection ring by coupling the support column, driving slats and locking slats, and the fixing and support of the detection ring is strengthened by the auxiliary support components.
It realizes rapid installation and disassembly of the inspection ring, simplifies the replacement process, improves work efficiency, and ensures the firmness and stability of the inspection ring.
Smart Images

Figure CN119959507B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of flaw detection, and specifically relates to an automatic copper bar flaw detection device. Background Art
[0002] A copper bar is a kind of non-ferrous metal processing bar with good processing performance and high electrical conductivity. After the copper bar is produced, it needs to be subjected to flaw detection. Through flaw detection, internal transverse and longitudinal injuries such as internal and external penetration injuries, folds, inclusions, cracks, scars, cracks, pits, and delaminations of the copper bar can be detected to ensure the production quality of the copper bar. The existing automatic copper bar flaw detection devices have high working efficiency and are convenient to operate, but there are still certain deficiencies. That is, the detection rings on the flaw detection device are generally fixed on the detection frame by welding or bolt fastening. When the detection ring is damaged and needs to be replaced, it will be rather troublesome. For the welded detection ring, the entire detection frame needs to be replaced, resulting in a large replacement cost. When replacing the bolt-fastened detection ring, a lot of time is often consumed in the installation and removal of the detection ring, which is very inconvenient. Summary of the Invention
[0003] The purpose of the present invention is to provide an automatic copper bar flaw detection device to solve the problems raised in the above background art.
[0004] To achieve the above purpose, the present invention provides the following technical solutions:
[0005] An automatic copper bar flaw detection device includes a detection machine table. A detection bottom frame is fixedly arranged on the detection machine table. A detection top frame is fixedly arranged on the detection bottom frame. Removable detection components are respectively installed at both ends of the detection top frame;
[0006] The removable detection components detect the copper bar. An installation interlock mechanism is arranged on the detection bottom frame. The removable detection components are positioned on the detection top frame and fixed by the installation interlock mechanism;
[0007] An auxiliary support component is also arranged on the detection bottom frame. The auxiliary support component is driven by the installation interlock mechanism. The auxiliary support component can lock the installation interlock mechanism, and the auxiliary support component can also assist in supporting and locking the removable detection components.
[0008] Preferably, the removable detection component is a detection ring. A mating bottom hole is opened at the lower end of the detection ring. Detection support plates are symmetrically and fixedly arranged on both sides of the detection ring. Plug-in support columns are fixedly arranged on the detection support plates;
[0009] An installation cavity is provided on the detection support plate beside the plug-in support column, and connection channels are symmetrically provided at the upper and lower ends of the installation cavity. A connection jack is also provided on the detection support plate, and the connection jack is connected with the installation cavity.
[0010] Preferably, a movable connecting plate is inserted in the installation cavity, and moving blocks are symmetrically fixedly arranged at the upper and lower ends of the movable connecting plate, and the moving blocks are inserted in the connecting channel;
[0011] A matching protrusion is fixedly provided on the movable serial plate, and the matching protrusion is plugged into the connecting socket, and a connecting plug is also fixedly provided on the movable serial plate, and the connecting plug is located outside the installation cavity;
[0012] An elastic reset sheet is fixedly arranged in the installation cavity, and the other end of the elastic reset sheet is fixed on the movable serial plate.
[0013] Preferably, support guide rods are symmetrically fixedly arranged at both ends of the detection chassis, and limited position cavities are symmetrically opened at both ends of one side of the detection chassis;
[0014] A matching socket is provided on the detection base frame between the limit cavities, and matching upright poles are symmetrically fixedly arranged on both sides of the matching socket.
[0015] Preferably, the two ends of the detection top frame are symmetrically provided with matching cavities, and the inside of the matching cavities is provided with locking holes;
[0016] A plug-in support hole is provided on the detection top frame on one side of the matching cavity, and a load-bearing matching rod is fixedly provided on the detection top frame on the other side of the matching cavity;
[0017] When the detection ring is installed on the detection top frame, the plug-in support column is plugged into the plug-in support hole, and the connecting plug column is in the matching cavity.
[0018] Preferably, the installation interlocking mechanism comprises a driving slat and a locking slat, the driving slat is symmetrically provided with matching through holes at both ends, matching vertical rods are inserted into the matching through holes, and the matching vertical rods are sleeved with a first connecting spring;
[0019] Connecting strips are symmetrically fixed at both ends of the driving strips, connecting strips are fixed on the connecting strips, first matching connecting rods are symmetrically hinged on both sides of the connecting strips, and locking strips are hinged on the upper ends of the first matching connecting rods.
[0020] Preferably, there are two locking strips, which are symmetrically mounted on both sides of the detection top frame, and a load-bearing through hole is opened on the locking strip, and a load-bearing matching rod is inserted into the load-bearing through hole;
[0021] Insertion interlocking blocks are symmetrically fixedly arranged at both ends of the locking strip.
[0022] Preferably, a push top bar is also fixedly arranged on the driving bar. Mounting through holes are symmetrically formed on both sides of the push top bar, and movable lock frames are mounted at the mounting through holes;
[0023] Cooperating positioning rods are symmetrically and fixedly arranged on the movable lock frames. The cooperating positioning rods are inserted into the mounting through holes, and a second connecting spring is sleeved on the cooperating positioning rods.
[0024] Preferably, the auxiliary support assembly includes a movable bearing bar and a support plate member. A cooperating insertion rod is fixedly arranged on the movable bearing bar, and the cooperating insertion rod is inserted into a cooperating insertion hole;
[0025] A support vertical plate is fixedly arranged on the movable bearing bar where the cooperating insertion rod is located. An inclined plane plate is fixedly arranged on the support vertical plate. Side bearing plates are symmetrically and fixedly arranged on both sides of the inclined plane plate, and locking insertion holes are formed in the side bearing plates;
[0026] Cooperating bearing rods are symmetrically and fixedly arranged on the movable bearing bar. A cavity cooperating plate is fixedly arranged on the cooperating bearing rods, and the cavity cooperating plate is inserted into a limit cavity.
[0027] Preferably, driving connecting plates are also symmetrically and fixedly arranged on the movable bearing bar. A second cooperating connecting rod is hinged to the driving connecting plates, and the upper end of the second cooperating connecting rod is hinged to a support plate member;
[0028] A limit through hole is formed in the support plate member. A support guide rod is inserted into the limit through hole, and a support platform column is fixedly arranged on the support plate member. A cooperating lock column is fixedly arranged on the support platform column.
[0029] Compared with the prior art, the beneficial effects of the present invention are as follows: The structure of the present invention is reasonably arranged and has strong functionality, and has the following advantages:
[0030] 1. The positioning of the detection rings can be realized by the cooperation between the insertion support holes at both ends of the detection top frame and the insertion support columns. Then, by moving the driving bar downwards, the synchronous locking of the detection rings at both ends of the detection top frame can be realized, making the installation of the detection rings very convenient and fast. When disassembling, only by moving the movable lock frame can the detection rings be automatically unlocked, facilitating the installation and disassembly of the detection rings by the staff, and thus facilitating the replacement of the detection rings.
[0031] 2. When the driving bar moves downwards, it will drive the locking bar to move, so that the insertion locking blocks on the locking bar are inserted into the connection insertion holes to fix the detection rings. During the insertion process of the insertion locking blocks, they will push the movable continuous loading plate to move, so that the connection insertion columns on the movable continuous loading plate are inserted into the locking connection holes to strengthen the fixation of the detection rings.
[0032] 3. Additionally, during the downward movement of the drive strip, it can achieve automatic locking. Meanwhile, under the action of the push top strip, it will push the movable load-bearing strip to move. As the movable load-bearing strip moves, it will drive the support plate to move upward, which can support the detection ring. At the same time, in cooperation with the cooperation between the locking post and the cooperation bottom hole, the detection ring is further locked to ensure the firm installation of the detection ring. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Figure 1 It is a schematic diagram of the first perspective of the assembly of the inspection machine.
[0034] Figure 2 It is a schematic diagram of the second perspective of the assembly of the inspection machine.
[0035] Figure 3 For Figure 2 The enlarged schematic diagram of part A in
[0036] Figure 4 It is a schematic diagram of the structure of the inspection machine.
[0037] Figure 5 For Figure 4 The enlarged schematic diagram of part B in
[0038] Figure 6 It is a schematic diagram of the first perspective structure of the detection ring.
[0039] Figure 7 It is a schematic diagram of the second perspective structure of the detection ring.
[0040] Figure 8 It is a schematic diagram of the first perspective of the assembly of the drive strip and the locking strip.
[0041] Figure 9 It is a schematic diagram of the second perspective of the assembly of the drive strip and the locking strip.
[0042] Figure 10 It is a schematic diagram of the assembly of the movable load-bearing strip and the support plate.
[0043] In the figure: 1. Detection machine; 11. Detection chassis; 12. Support guide rod; 13. Limit cavity; 131. Fitting jack; 14. Fitting vertical rod; 15. Detection top frame; 16. Fitting cavity; 17. Locking connection hole; 18. Insertion support hole; 19. Bearing fitting rod; 2. Detection ring; 21. Fitting bottom hole; 22. Detection bearing plate; 23. Insertion support column; 24. Installation cavity; 25. Connection channel; 26. Connection jack; 27. Movable serial plate; 271. Moving block; 272. Fitting convex block; 273. Connection insertion column; 28. Elastic reset piece; 3. Driving plate strip; 31. Fitting through hole; 32. First connection spring; 33. Connection plate strip; 34. Connecting plate strip; 35. First fitting connecting rod; 36. Pushing top plate strip; 37. Installation through hole; 38. Movable lock frame; 381. Fitting positioning rod; 39. Second connection spring; 4. Locking plate strip; 41. Bearing through hole; 42. Insertion interlocking block; 5. Movable bearing strip; 51. Fitting insertion rod; 52. Support vertical plate; 53. Inclined plane plate; 54. Side bearing plate; 55. Locking jack; 56. Fitting bearing rod; 57. Cavity fitting plate; 58. Driving connection plate; 59. Second fitting connecting rod; 6. Support plate member; 61. Limit through hole; 62. Support table column; 63. Fitting lock column. Detailed implementation manner
[0044] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0045] The present invention provides a technical solution:
[0046] As Figure 1 and Figure 2 shown, an automatic copper bar flaw detection device includes a detection machine 1. A detection chassis 11 is fixedly arranged on the detection machine 1. A detection top frame 15 is fixedly arranged on the detection chassis 11. Removable detection components are respectively installed at both ends of the detection top frame 15. The removable detection components detect the copper bar. An installation interlocking mechanism is arranged on the detection chassis 11. The removable detection components are positioned on the detection top frame 15 and are fixed by the installation interlocking mechanism. An auxiliary support component is also arranged on the detection chassis 11. The auxiliary support component is driven by the installation interlocking mechanism. The auxiliary support component can lock the installation interlocking mechanism, and the auxiliary support component can also assist in supporting and locking the removable detection components.
[0047] As Figure 6 and Figure 7As shown, the detachable detection component is the detection ring 2. A mating bottom hole 21 is provided at the lower end of the detection ring 2. Detection support plates 22 are symmetrically and fixedly arranged on both sides of the detection ring 2. A plug-in support column 23 is fixedly arranged on the detection support plate 22. An installation cavity 24 is provided on the detection support plate 22 beside the plug-in support column 23. Connecting channels 25 are symmetrically provided at the upper and lower ends of the installation cavity 24. A connecting jack 26 is also provided on the detection support plate 22, and the connecting jack 26 communicates with the installation cavity 24.
[0048] As Figure 6 shown, a movable serial connection plate 27 is inserted into the installation cavity 24. Moving blocks 271 are symmetrically and fixedly arranged at the upper and lower ends of the movable serial connection plate 27. The moving blocks 271 are inserted into the connecting channels 25. A mating convex block 272 is fixedly arranged on the movable serial connection plate 27. The mating convex block 272 is inserted into the connecting jack 26. And a connecting plug post 273 is also fixedly arranged on the movable serial connection plate 27. The connecting plug post 273 is located outside the installation cavity 24. An elastic reset piece 28 is fixedly arranged in the installation cavity 24, and the other end of the elastic reset piece 28 is fixed on the movable serial connection plate 27.
[0049] As Figure 3 and Figure 5 shown, support guide rods 12 are symmetrically and fixedly arranged at both ends of the detection bottom frame 11. And limiting cavities 13 are symmetrically provided at both ends on one side of the detection bottom frame 11. A mating jack 131 is provided on the detection bottom frame 11 between the limiting cavities 13. Mating vertical rods 14 are symmetrically and fixedly arranged on both sides of the mating jack 131.
[0050] As Figure 1 、 Figure 4 and Figure 5 shown, mating cavities 16 are symmetrically provided at both ends of the detection top frame 15. Locking connection holes 17 are provided inside the mating cavities 16. A plug-in support hole 18 is provided on the detection top frame 15 beside the mating cavity 16. And a load-bearing mating rod 19 is fixedly arranged on the detection top frame 15 beside the other mating cavity 16. When the detection ring 2 is installed on the detection top frame 15, the plug-in support column 23 is inserted into the plug-in support hole 18, and the connecting plug post 273 is located in the mating cavity 16.
[0051] In addition, when the connecting plug post 273 plays an auxiliary fixing role for the detection ring 2, it is inserted into the locking connection hole 17.
[0052] As Figure 2 and Figure 8As shown, the installation interlock mechanism includes a drive strip 3 and a locking strip 4. At both ends of the drive strip 3, mating through holes 31 are symmetrically formed. A mating vertical rod 14 is inserted into the mating through holes 31. A first connecting spring 32 is sleeved on the mating vertical rod 14, and both ends of the first connecting spring 32 are respectively fixed on the detection chassis 11 and the drive strip 3. At both ends of the drive strip 3, connecting strips 33 are also symmetrically and fixedly arranged. An adapter strip 34 is fixedly arranged on the connecting strip 33. On both sides of the adapter strip 34, first mating connecting rods 35 are symmetrically hinged. The upper ends of the first mating connecting rods 35 are hinged to the locking strip 4.
[0053] As Figure 2 and Figure 9 shown, there are two locking strips 4, which are symmetrically installed on both sides of the detection top frame 15. A bearing through hole 41 is formed in the locking strip 4. A bearing mating rod 19 is inserted into the bearing through hole 41. At both ends of the locking strip 4, plug-in interlock blocks 42 are also symmetrically and fixedly arranged.
[0054] When the plug-in interlock block 42 fixes the detection ring 2, it is inserted into the connection jack 26.
[0055] As Figure 3 and Figure 9 shown, a push top strip 36 is also fixedly arranged on the drive strip 3. Installation through holes 37 are symmetrically formed on both sides of the push top strip 36. An active lock frame 38 is installed at the installation through holes 37. On the active lock frame 38, mating positioning rods 381 are symmetrically and fixedly arranged. The mating positioning rods 381 are inserted into the installation through holes 37. A second connecting spring 39 is sleeved on the mating positioning rods 381, and both ends of the second connecting spring 39 are respectively fixed on the active lock frame 38 and the drive strip 3.
[0056] As Figure 2 , Figure 3 and Figure 10 shown, the auxiliary support assembly includes an active bearing strip 5 and a support plate member 6. A mating insertion rod 51 is fixedly arranged on the active bearing strip 5. The mating insertion rod 51 is inserted into the mating through hole 131. On the active bearing strip 5 where the mating insertion rod 51 is located, a support vertical plate 52 is fixedly arranged. An inclined plane plate 53 is fixedly arranged on the support vertical plate 52. On both sides of the inclined plane plate 53, side bearing plates 54 are symmetrically and fixedly arranged. Locking jacks 55 are formed in the side bearing plates 54. On the active bearing strip 5, mating bearing rods 56 are symmetrically and fixedly arranged. A cavity mating plate 57 is fixedly arranged on the mating bearing rods 56. The cavity mating plate 57 is inserted into the limiting cavity 13. Before the drive strip 3 moves downward, the mating positioning rod 381 is in contact with the side bearing plate 54, and at this time, the second connecting spring 39 is in a compressed state. In addition, the elastic force generated by the second connecting spring 39 is less than the negative pressure generated in the limiting cavity 13.
[0057] As Figure 2 andFigure 10 As shown, driving connecting plates 58 are symmetrically and fixedly arranged on the movable bearing bar 5. A second mating connecting rod 59 is hinged on the driving connecting plate 58. The upper end of the second mating connecting rod 59 is hinged to a support plate member 6. A limiting through hole 61 is formed in the support plate member 6. A support guide rod 12 is inserted into the limiting through hole 61. And a support platform column 62 is fixedly arranged on the support plate member 6. A mating locking column 63 is fixedly arranged on the support platform column 62.
[0058] When installing the detection ring 2, insert the plugging support column 23 on the detection ring 2 into the plugging support hole 18 to position the detection ring 2. Then, push down the driving strip 3. As the driving strip 3 moves downward, under the cooperation of the pushing top strip 36 and the inclined surface plate 53, the pushing movable bearing strip 5 will move away from the detection bottom frame 11. When the driving strip 3 moves downward, under the action of the first cooperation connecting rod 35, it will drive the locking strip 4 to move towards the detection top frame 15. As the locking strip 4 moves, the plugging interlocking block 42 on the locking strip 4 will contact the cooperation convex block 272. The plugging interlocking block 42 is inserted into the connection jack 26 to fix the detection ring 2. At the same time, the plugging interlocking block 42 will push the cooperation convex block 272 to move. As the cooperation convex block 272 moves, the connection plug post 273 on the movable serial plate 27 will be inserted into the locking connection hole 17. Thus, under the cooperation of the locking connection hole 17 and the connection plug post 273, the fixing effect of the detection ring 2 is strengthened. In addition, as the driving strip 3 moves downward, the cooperation positioning rod 381 on the movable lock frame 38 will align with the locking jack 55 on the side bearing plate 54. Since the second connection spring 39 is in a compressed state at this time, when the movable bearing strip 5 moves, under the action of the elastic force of the second connection spring 39, the cooperation positioning rod 381 will always contact the side bearing plate 54 until the cooperation positioning rod 381 aligns with the locking jack 55. At this time, under the action of the second connection spring 39, the cooperation positioning rod 381 will be inserted into the locking jack 55, so as to fix the driving strip 3 and prevent the driving strip 3 from moving upward to reset. When the movable bearing strip 5 moves away from the detection bottom frame 11, as the cavity cooperation plate 57 moves, a negative pressure will be generated in the limit cavity 13. At the same time, the movement of the movable bearing strip 5 will also drive the second cooperation connecting rod 59 to rotate. Then, under the action of the second cooperation connecting rod 59, it will push the support plate member 6 to move upward. As the support plate member 6 moves upward, the cooperation lock post 63 on the support plate member 6 will be inserted into the cooperation bottom hole 21 at the lower end of the detection ring 2. In this way, under the cooperation of the cooperation lock post 63 and the cooperation bottom hole 21, the locking of the detection ring 2 can be further strengthened, fully ensuring the firmness of the installation of the detection ring 2. As the support plate member 6 moves upward, finally the support column 62 will contact the lower end of the detection ring 2. In this way, under the action of the support column 62, it can play an auxiliary supporting role for the detection ring 2 and ensure the stability of the detection ring 2. The installation operation of the detection ring 2 is very convenient and fast. Just push down the driving strip 3 to realize the synchronous fixed installation of the two detection rings 2. When the detection ring 2 needs to be replaced, at this time, just push the movable lock frame 38 towards the detection bottom frame 11 to make the cooperation positioning rod 381 on the movable lock frame 38 withdraw from the locking jack 55 to unlock the driving strip 3. In this way, under the action of the first connection spring 32, the driving strip 3 can move upward to reset. As the driving strip 3 moves upward to reset,Under the action of the first mating connecting rod 35, the locking strip 4 will be driven to move reversely and reset. At the same time, under the action of the elastic reset piece 28, the movable continuous plate 27 will also be driven to reset. In addition, as the driving strip 3 moves up and resets, the movable bearing strip 5 is no longer restricted. In this way, under the action of the negative pressure in the limiting cavity 13, the cavity mating plate 57 will be driven to move reversely and reset. As the cavity mating plate 57 moves reversely and resets, the movable bearing strip 5 will also be driven to move reversely and reset, so that the mating lock post 63 on the support plate member 6 withdraws from the mating bottom hole 21 to realize the complete unlocking of the detection ring 2. The unlocking of the detection ring 2 is very convenient. Just push the movable lock frame 38 to realize the automatic unlocking of the detection ring 2, which is convenient for the staff to replace the detection ring 2 and greatly improves the replacement work efficiency.
[0059] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An automated copper bar flaw detection device, comprising a detection machine table, a detection bottom frame is fixedly arranged on the detection machine table, and a detection top frame is fixedly arranged on the detection bottom frame, characterized in that: Both ends of the detection top frame are respectively installed with easily detachable detection components; The detachable detection component detects the copper rod, and the detection bottom frame is provided with an installation interlocking mechanism. The detachable detection component is positioned on the detection top frame and fixed by the installation interlocking mechanism. The detachable detection component is a detection ring, a matching bottom hole is opened at the lower end of the detection ring, detection support plates are symmetrically fixedly arranged on both sides of the detection ring, and plug-in support columns are fixedly arranged on the detection support plates; An installation cavity is provided on the detection support plate beside the plug-in support column, and connection channels are symmetrically provided at the upper and lower ends of the installation cavity. A connection jack is also provided on the detection support plate, and the connection jack is connected to the installation cavity; The installation interlocking mechanism comprises a driving slat and a locking slat, the driving slat is symmetrically provided with matching through holes at both ends, matching vertical rods are inserted into the matching through holes, and the matching vertical rods are sleeved with a first connecting spring; The two ends of the driving slat are also symmetrically fixed with connecting slats, the connecting slats are fixedly provided with engaging slats, the two sides of the engaging slats are symmetrically hinged with first matching connecting rods, and the upper end of the first matching connecting rod is hinged with a locking slat; An auxiliary support assembly is also provided on the detection chassis. The auxiliary support assembly is driven by the installation interlocking mechanism. The auxiliary support assembly locks the installation interlocking mechanism and also provides auxiliary support and auxiliary locking for the detachable detection assembly.
2. The automated copper bar flaw detection and testing equipment according to claim 1, characterized in that: A movable connecting plate is inserted in the installation cavity, and moving blocks are symmetrically fixedly arranged at the upper and lower ends of the movable connecting plate, and the moving blocks are inserted in the connecting channel; A matching protrusion is fixedly provided on the movable serial plate, and the matching protrusion is plugged into the connecting socket, and a connecting plug is also fixedly provided on the movable serial plate, and the connecting plug is located outside the installation cavity; An elastic reset sheet is fixedly arranged in the installation cavity, and the other end of the elastic reset sheet is fixed on the movable serial plate.
3. An automated copper bar flaw detection device according to claim 2, characterized in that: Support guide rods are symmetrically fixed at both ends of the detection chassis, and limited position cavities are symmetrically provided at both ends of one side of the detection chassis; A matching socket is provided on the detection base frame between the limit cavities, and matching upright poles are symmetrically fixedly arranged on both sides of the matching socket.
4. An automatic copper bar flaw detection device according to claim 3, characterized in that: The two ends of the detection top frame are symmetrically provided with matching cavities, and the inside of the matching cavities is provided with locking holes; A plug-in support hole is provided on the detection top frame on one side of the matching cavity, and a load-bearing matching rod is fixedly provided on the detection top frame on the other side of the matching cavity; When the detection ring is installed on the detection top frame, the plug-in support column is plugged into the plug-in support hole, and the connecting plug column is in the matching cavity.
5. An automated copper bar flaw detection device according to claim 4, characterized in that: There are two locking strips, which are symmetrically installed on both sides of the detection top frame. The locking strips are provided with load-bearing through holes, and the load-bearing matching rods are inserted into the load-bearing through holes. Insertion interlocking blocks are symmetrically fixedly arranged at both ends of the locking strip.
6. The automated copper bar flaw detection and inspection equipment according to claim 5, wherein: The driving strip is also fixedly provided with a push strip, and mounting holes are symmetrically opened on both sides of the push strip, and a movable locking frame is installed at the mounting holes; The movable lock frame is symmetrically and fixedly provided with matching positioning rods, the matching positioning rods are inserted into the installation through holes, and a second connecting spring is sleeved on the matching positioning rods.
7. An automated copper bar flaw detection device according to claim 6, characterized in that: The auxiliary support assembly includes a movable bearing bar and a support plate member. A mating plug rod is fixedly arranged on the movable bearing bar, and the mating plug rod is inserted into a mating jack. A support vertical plate is fixedly arranged on the movable bearing bar above the mating plug rod. An inclined plane plate is fixedly arranged on the support vertical plate. Side bearing plates are symmetrically and fixedly arranged on both sides of the inclined plane plate, and locking jacks are formed in the side bearing plates. Mating support rods are symmetrically and fixedly arranged on the movable bearing bar. A cavity mating plate is fixedly arranged on the mating support rod, and the cavity mating plate is inserted into a limiting cavity.
8. An automated copper bar flaw detection and testing device according to claim 7, characterized in that: Drive connecting plates are also symmetrically and fixedly arranged on the movable bearing bar. A second mating connecting rod is hinged on the drive connecting plate, and the upper end of the second mating connecting rod is hinged to the support plate member. A limiting through hole is formed in the support plate member. A support guide rod is inserted into the limiting through hole, and a support column is fixedly arranged on the support plate member. A mating lock column is fixedly arranged on the support column.
Citation Information
Patent Citations
Flaw detection transmission device for continuous casting and rolling copper rod production
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