Auxiliary equipment for bending forming of high-quality stainless steel cold-rolled steel sheet
By designing a high-quality stainless steel cold-rolled steel plate bending molding auxiliary equipment including working platform, support frame, hydraulic telescopic rod, bending module, conversion mechanism and synchronous adjustment mechanism, the existing equipment needs to shut down, remove old modules, replace new modules and debug when replacing bending modules, and achieve rapid replacement of bending modules and improve production line efficiency.
Patent Information
- Application Number
- CN202421537504.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-01
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-07-01
AI Technical Summary
The existing stainless steel cold-rolled steel plate bending forming equipment needs to be shut down, remove old modules, replace new modules and debugged when replacing bending modules. The process is cumbersome and time-consuming.
A high-quality stainless steel cold-rolled steel plate bending forming auxiliary equipment including a working platform, a support frame, a hydraulic telescopic rod, a bending module, a conversion mechanism and a synchronous adjustment mechanism are designed. The synchronous adjustment mechanism drives the movement of the conversion mechanism, which realizes rapid conversion and locking of the bending module, reducing downtime.
It significantly improves the replacement efficiency of the bending module, reduces downtime, improves the overall operating efficiency of the production line, and simplifies the replacement process of the bending module.
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Figure CN222931602U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of cold-rolled steel plates, and in particular to an auxiliary device for bending and forming high-quality stainless steel cold-rolled steel plates. Background Technique
[0002] Cold rolling uses hot-rolled coil as raw material and is rolled at normal temperature below the recrystallization temperature. Cold-rolled steel plate is the steel plate produced through the cold-rolling process, abbreviated as cold plate. The thickness of cold-rolled plate is generally between 0.1 - 8.0 mm, and the thickness of cold-rolled steel plates produced by most factories is below 4.5 mm. The thickness and width of cold-rolled plates are determined according to the equipment capabilities of each factory and market demand.
[0003] When producing bent steel plates for some daily appliances or machinery, since the required steel plate size is small, generally a bending module is used to bend the steel plate. The specific bending steps are as follows: Place the steel plate to be bent above the module slot, and then use a hydraulic telescopic rod to push the bending module downward, so that the bending module squeezes the steel plate to complete the bending of the steel plate.
[0004] When producing steel plates with different bending degrees, the operator needs to replace the corresponding bending module. The bending module is generally directly bolted to the end of the hydraulic telescopic rod. When replacing, in order to ensure safety, the machine will be stopped first, then the old bending module will be removed, and then a new bending module will be replaced. Then debugging is also required, and the replacement is rather troublesome. Content of the Utility Model
[0005] The purpose of this application is to solve the problem that the bending module is generally directly bolted to the end of the hydraulic telescopic rod in the above-mentioned background technique. When replacing, in order to ensure safety, the machine will be stopped first, then the old bending module will be removed, and then a new bending module will be replaced. Then debugging is also required, and the replacement is rather troublesome. This application provides an auxiliary device for bending and forming high-quality stainless steel cold-rolled steel plates.
[0006] This application specifically adopts the following technical solutions to achieve the above purpose:
[0007] An auxiliary device for bending and forming high-quality stainless steel cold-rolled steel plates includes a working platform, a support frame is fixed on the working platform, a hydraulic telescopic rod is fixed on the support frame, several bending modules are arranged at the telescopic end of the hydraulic telescopic rod, a conversion mechanism is arranged between the several bending modules and the hydraulic telescopic rod, a synchronous adjustment mechanism is arranged on one side of the working platform, and a controller is fixed on the working platform.
[0008] By adopting the above technical solution, the synchronous adjustment mechanism is used to drive the conversion mechanism to move, so that the conversion mechanism drives the bending module to rotate on the hydraulic telescopic rod. At the same time, the conversion mechanism also converts the corresponding module slots on the working platform. After the corresponding bending module is converted, the conversion mechanism locks the bending module, thereby significantly improving the replacement efficiency of the bending module, reducing the downtime, and improving the overall operation efficiency of the production line.
[0009] Further, the conversion mechanism includes a hexagonal prism roller I arranged at the telescopic end of the hydraulic telescopic rod. A hexagonal prism roller II is arranged on the hexagonal prism roller I. Support blocks are rotatably connected to both ends of the hexagonal prism roller I and the hexagonal prism roller II. The support blocks at both ends of the hexagonal prism roller I are fixedly connected to the telescopic end of the hydraulic telescopic rod, and the support blocks at both ends of the hexagonal prism roller II are fixedly connected to the working platform. Six mounting blocks distributed in a circular pattern are fixed on the hexagonal prism roller I, and several bending modules are fixedly connected to the corresponding mounting blocks. Several module slots corresponding to the bending modules are opened on the hexagonal prism roller II. Rotating locking components are arranged at one end of the hexagonal prism roller I and the hexagonal prism roller II respectively.
[0010] By adopting the above technical solution, the rotating locking component drives the corresponding hexagonal prism roller I and hexagonal prism roller II to rotate, so that the bending modules on the hexagonal prism roller I and the module slots on the hexagonal prism roller II turn synchronously. Then, the rotating locking component locks the hexagonal prism roller I and the hexagonal prism roller II, thereby being able to conveniently and quickly switch the required bending modules and reducing the time spent on replacing the bending modules.
[0011] Further, the rotating locking component includes two locking blocks respectively arranged at one end of the hexagonal prism roller I and the hexagonal prism roller II. The locking blocks are L-shaped and fixedly connected to the support blocks. A rotating rod is arranged between the locking block and the support block. The rotating rod penetrates and is rotatably connected to the support block and is fixedly connected to the corresponding hexagonal prism roller I and hexagonal prism roller II. A locking rod is sleeved and slidably connected on the rotating rod. Six clamping blocks distributed in a circular pattern are fixed on the locking rod. Clamping grooves corresponding to the clamping blocks and the locking rod are opened on the locking block.
[0012] By adopting the above technical solution, the locking rod is pushed to make the locking rod slide on the rotating rod, so that the clamping blocks on the locking rod disengage from the clamping grooves. Then, the locking rod and the rotating rod are rotated to make the corresponding hexagonal prism roller I and hexagonal prism roller II rotate. After the conversion is completed, the clamping blocks on the locking rod re-enter the clamping grooves, making the hexagonal prism roller I and the hexagonal prism roller II unable to rotate, thereby being able to conveniently rotate the hexagonal prism roller I and the hexagonal prism roller II and conveniently lock the hexagonal prism roller I and the hexagonal prism roller II.
[0013] Further, a limiting spring is arranged between the rotating rod and the locking rod, and both ends of the limiting spring are fixedly connected to the rotating rod and the locking rod.
[0014] By adopting the above technical solution, when the locking rod is released, the locking rod is pushed by the limiting spring so that the engaging block on the locking rod enters the engaging groove, thereby reducing the possibility of the locking rod sliding on the rotating rod and causing the engaging block to disengage from the engaging groove.
[0015] Furthermore, the clamping block is provided with clamping inclined surfaces on both sides of one end facing the clamping groove.
[0016] By adopting the above technical solution, the clamping bevel abuts against the edge of the clamping groove. Under the action of the clamping bevel, the clamping block enters the clamping groove, thereby making it easier for the clamping block to enter the clamping groove and reducing the possibility of deviation of the hexagonal prism roller one and the hexagonal prism roller two.
[0017] Furthermore, the synchronous adjustment mechanism includes an adjustment plate arranged on one side of the working platform, a pushing assembly is arranged between the adjustment plate and the working platform, two symmetrical adjustment heads are rotatably connected to the adjustment plate, an adjustment groove corresponding to the adjustment head is opened on the locking rod, and a rotating assembly is arranged between the two adjustment heads.
[0018] By adopting the above technical solution, the two adjustment heads are inserted into the adjustment slots on the locking rod at the same time, the clamping blocks on the locking rod are disengaged from the clamping slots at the same time, and then the rotating assembly is used to drive the two adjustment heads to rotate at the same time, so that the hexagonal prism roller one and the hexagonal prism roller two can be easily adjusted at the same time, thereby reducing the offset of the bending modules and module slots on the hexagonal prism roller one and the hexagonal prism roller two.
[0019] Furthermore, the pushing assembly includes a support seat fixed on the working platform, the support seat is rotatably connected to a threaded rod, the threaded rod is threadedly connected to a threaded block, the threaded block is fixedly connected to the adjustment plate, and a drive motor is fixed on the support seat, the output end of the drive motor passes through the support seat and is fixedly connected to the threaded rod.
[0020] By adopting the above technical solution, the adjustment plate is driven by the threaded block so that the two adjustment heads enter the adjustment groove at the same time, so that the two adjustment heads can easily drive the hexagonal prism roller one and the hexagonal prism roller two at the same time.
[0021] Furthermore, the rotating assembly includes two rotating gears rotatably connected to the adjustment plate, the rotating gears are fixedly connected to the adjustment head, and a synchronous chain is transmission-connected between the two rotating gears.
[0022] By adopting the above technical solution, the rotating gear uses a synchronous chain to drive another rotating gear, so that the two adjusting heads rotate at the same time, thereby enabling the two adjusting heads to simultaneously drive the hexagonal prism roller one and the hexagonal prism roller two to rotate.
[0023] In summary, the present application includes at least one of the following beneficial effects:
[0024] 1. The present application, when the required bending module needs to be replaced, first push the locking rod to make the locking rod slide on the rotating rod, then the locking rod and the clamping block fixed on the locking rod disengage from the clamping groove on the locking block, then rotate the locking rod to make the locking rod drive the rotating rod, and the rotating rod drives the hexagonal roller one or the hexagonal roller two to rotate, aligning the bending module and the module groove on the hexagonal roller one and the hexagonal roller two together, and then release the locking rod, and the locking rod re-enters the clamping groove on the locking block under the push of the limiting spring, and the rotating rod and the locking rod cannot rotate under the restriction of the clamping block, so that the hexagonal roller one and the hexagonal roller two cannot rotate, and the bending module replacement is completed, so as to achieve the purpose of being able to conveniently and quickly switch the required bending module, reduce the time spent on replacing the bending module, reduce downtime, and improve the overall operation efficiency of the production line.
[0025] 2. In the present application, when the hexagonal roller one and the hexagonal roller two need to rotate, the driving motor drives the threaded rod, the threaded block moves on the threaded rod, the threaded block drives the adjustment plate toward the working platform, and then the two adjustment heads on the adjustment plate are simultaneously inserted into the adjustment groove on the locking rod, and the locking rod is pushed to disengage the clamping block on the locking rod from the clamping groove on the locking block, and then the rotating gear is turned, and the rotating gear drives another rotating gear with a synchronous chain, so that the two adjustment heads rotate at the same time, and the two adjustment heads simultaneously drive the hexagonal roller one and the hexagonal roller two to rotate, thereby achieving the purpose of conveniently converting the bending module, synchronously converting the bending module and the module slot, and reducing the possibility of offset of the bending module and the bending slot. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 It is a first three-dimensional structural schematic diagram of the auxiliary device in this application;
[0027] Figure 2 It is a schematic diagram of the cross-sectional three-dimensional structure of the auxiliary equipment in this application;
[0028] Figure 3 It is a schematic diagram of the exploded three-dimensional structure of the auxiliary equipment in this application;
[0029] Figure 4 This application Figure 2 The enlarged schematic diagram at A in the middle;
[0030] Figure 5 This application Figure 3 Enlarged schematic diagram of point B in the middle.
[0031] Description of reference numerals:
[0032] 1. Working platform; 2. Support frame; 3. Hydraulic telescopic rod; 4. Bending module; 5. Conversion mechanism; 51. First hexagonal prism roller; 52. Second hexagonal prism roller; 53. Support block; 54. Mounting block; 55. Rotating locking assembly; 551. Rotating rod; 552. Locking rod; 553. Clamping block; 554. Clamping groove; 555. Locking block; 556. Limiting spring; 557. Clamping inclined surface; 6. Synchronous adjustment mechanism; 61. Adjusting head; 62. Adjusting groove; 63. Adjusting plate; 64. Rotating assembly; 641. Rotating gear; 642. Synchronous chain; 65. Pushing assembly; 651. Support seat; 652. Threaded block; 653. Threaded rod; 654. Driving motor; 7. Controller. Detailed implementation manners
[0033] The following further elaborates on this application with reference to Figure 1 —5.
[0034] The embodiment of this application discloses an auxiliary device for bending and forming high-quality cold-rolled stainless steel plates.
[0035] Referring to Figure 1 、 Figure 2 and Figure 3 , an auxiliary device for bending and forming high-quality cold-rolled stainless steel plates includes a working platform 1, a support frame 2 is fixed on the working platform 1, a hydraulic telescopic rod 3 is fixed on the support frame 2, a plurality of bending modules 4 are arranged at the telescopic end of the hydraulic telescopic rod 3, a conversion mechanism 5 is arranged between the plurality of bending modules 4 and the hydraulic telescopic rod 3, a synchronous adjustment mechanism 6 is arranged on one side of the working platform 1, and a controller 7 is fixed on the working platform 1.
[0036] When using this device, first use the synchronous adjustment mechanism 6 to drive the conversion mechanism 5 to move, so that the conversion mechanism 5 drives the bending module 4 to rotate on the hydraulic telescopic rod 3. At the same time, the conversion mechanism 5 also converts the corresponding module slot on the working platform 1. After the corresponding bending module 4 is converted out, the conversion mechanism 5 locks the bending module 4. Then place the steel plate above the module slot, and then use the hydraulic telescopic rod 3 to drive the bending module 4 to press the steel plate to make the steel plate bend and form. By installing a plurality of bending modules 4 on the telescopic end of the hydraulic telescopic rod 3 by means of the conversion mechanism 5 at the same time, and then using the synchronous adjustment mechanism 6, the corresponding bending module 4 can be converted out from the conversion mechanism 5, thus significantly improving the replacement efficiency of the bending module 4, reducing the downtime, and improving the overall operation efficiency of the production line.
[0037] Referring to Figure 2 、 Figure 3 、 Figure 4 and Figure 5, the conversion mechanism 5 includes a hexagonal prism roller 51 arranged at the telescopic end of the hydraulic telescopic rod 3. A hexagonal prism roller 52 is arranged on the hexagonal prism roller 51. Support blocks 53 are rotatably connected to both ends of the hexagonal prism roller 51 and the hexagonal prism roller 52. The support blocks 53 at both ends of the hexagonal prism roller 51 are fixedly connected to the telescopic end of the hydraulic telescopic rod 3, and the support blocks 53 at both ends of the hexagonal prism roller 52 are fixedly connected to the working platform 1. Six mounting blocks 54 distributed in a circular pattern are fixed on the hexagonal prism roller 51, and several bending modules 4 are fixedly connected to the corresponding mounting blocks 54. A number of module slots corresponding to the bending modules 4 are formed on the hexagonal prism roller 52. Rotating locking components 55 are arranged at one end of both the hexagonal prism roller 51 and the hexagonal prism roller 52.
[0038] In addition, the rotating locking component 55 includes two locking blocks 555 respectively arranged at one end of the hexagonal prism roller 51 and the hexagonal prism roller 52. The locking blocks 555 are L-shaped and fixedly connected to the support blocks 53. A rotating rod 551 is arranged between the locking block 555 and the support block 53. The rotating rod 551 penetrates and rotatably connects the support block 53 and is fixedly connected to the corresponding hexagonal prism roller 51 and hexagonal prism roller 52. A locking rod 552 is sleeved and slidably connected on the rotating rod 551. Six clamping blocks 553 distributed in a circular pattern are fixed on the locking rod 552. Clamping slots 554 corresponding to the clamping blocks 553 and the locking rod 552 are formed on the locking block 555.
[0039] Moreover, a limiting spring 556 is arranged between the rotating rod 551 and the locking rod 552. Both ends of the limiting spring 556 are fixedly connected to the rotating rod 551 and the locking rod 552.
[0040] When it is necessary to replace the required bending module 4, first push the locking rod 552 to make the locking rod 552 slide on the rotating rod 551. Then, the locking block 553 fixed on the locking rod 552 disengages from the locking groove 554 on the locking block 555. After that, rotate the locking rod 552 to drive the rotating rod 551 by the locking rod 552, and the rotating rod 551 drives the hexagonal prism roller 51 or the hexagonal prism roller 52 to rotate, align the bending module 4 and the module slot on the hexagonal prism roller 51 and the hexagonal prism roller 52. Then release the locking rod 552, and the locking rod 552 re-enters the locking groove 554 on the locking block 555 under the push of the limiting spring 556. Under the restriction of the locking block 553, the rotating rod 551 and the locking rod 552 cannot rotate, and the hexagonal prism roller 51 and the hexagonal prism roller 52 cannot rotate. Then place the steel plate on the hexagonal prism roller 52, and let the hydraulic telescopic rod 3 drive the hexagonal prism roller 51 to approach the hexagonal prism roller 52. Make the bending module 4 on the mounting block 54 enter the module slot to complete the bending of the steel plate. By installing several bending modules 4 on the hexagonal prism roller 51 together, when the hexagonal prism roller 51 rotates, the bending module 4 on the hexagonal prism roller 51 can be switched, so that the required bending module 4 can be switched conveniently and quickly, and the time spent on replacing the bending module 4 can be reduced.
[0041] Refer to Figure 2 and Figure 4 , on both sides of one end of the locking block 553 facing the locking groove 554, there are locking inclined surfaces 557. When the limiting spring 556 pushes the locking rod 552 to make the locking block 553 on the locking rod 552 re-enter the locking groove 554, when there is a small offset between the locking block 553 and the locking groove 554 and they cannot be locked together, the locking inclined surface 557 abuts against the edge of the locking groove 554. Under the action of the locking inclined surface 557, the locking block 553 enters the locking groove 554. By using the restriction of the locking inclined surface 557 on the locking block 553, the locking block 553 can enter the locking groove 554 more easily, reducing the possibility of the hexagonal prism roller 51 and the hexagonal prism roller 52 shifting.
[0042] Refer to Figure 3 and Figure 5 , the synchronous adjustment mechanism 6 includes an adjustment plate 63 arranged on one side of the working platform 1. There is a pushing component 65 between the adjustment plate 63 and the working platform 1. Two symmetric adjustment heads 61 are rotatably connected to the adjustment plate 63. There is an adjustment groove 62 corresponding to the adjustment head 61 on the locking rod 552. A rotating component 64 is arranged between the two adjustment heads 61.
[0043] In addition, the pushing component 65 includes a support base 651 fixed on the working platform 1. A threaded rod 653 is rotatably connected to the support base 651. A threaded block 652 is threadedly connected to the threaded rod 653. The threaded block 652 is fixedly connected to the adjusting plate 63. A driving motor 654 is fixed on the support base 651. The output end of the driving motor 654 penetrates through the support base 651 and is fixedly connected to the threaded rod 653.
[0044] Moreover, the rotating component 64 includes two rotating gears 641 rotatably connected to the adjusting plate 63. The rotating gears 641 are fixedly connected to the adjusting heads 61. A synchronous chain 642 is drivingly connected between the two rotating gears 641.
[0045] When it is necessary to rotate the hexagonal prism roller I 51 and the hexagonal prism roller II 52, the driving motor 654 is made to drive the threaded rod 653, so that the threaded block 652 moves on the threaded rod 653. The threaded block 652 drives the adjusting plate 63 to approach the working platform 1. Then, the two adjusting heads 61 on the adjusting plate 63 are simultaneously inserted into the adjusting slots 62 on the locking rod 552 and push the locking rod 552, so that the clamping block 553 on the locking rod 552 disengages from the clamping slot 554 on the locking block 555. Then, the rotating gear 641 is toggled. The rotating gear 641 drives another rotating gear 641 by means of the synchronous chain 642, so that the two adjusting heads 61 rotate simultaneously, and the two adjusting heads 61 simultaneously drive the hexagonal prism roller I 51 and the hexagonal prism roller II 52 to rotate. By inserting the adjusting heads 61 into the adjusting slots 62 on the locking rod 552 and then making the two adjusting heads 61 rotate simultaneously, the bending module 4 can be conveniently converted, and the bending module 4 and the module slot can be synchronously converted, reducing the possibility of the bending module 4 and the bending slot being offset.
[0046] Working principle: When it is necessary to replace the bending module 4 during the use of the device, the driving motor 654 is made to drive the threaded rod 653, so that the threaded block 652 moves on the threaded rod 653. The threaded block 652 drives the adjusting plate 63 to approach the working platform 1. Then, the two adjusting heads 61 on the adjusting plate 63 are simultaneously inserted into the adjusting slots 62 on the locking rod 552 and push the locking rod 552, so that the clamping block 553 on the locking rod 552 disengages from the clamping slot 554 on the locking block 555. Then, the rotating gear 641 is toggled. The rotating gear 641 drives another rotating gear 641 by means of the synchronous chain 642, so that the two adjusting heads 61 rotate simultaneously, and the two adjusting heads 61 simultaneously drive the hexagonal prism roller I 51 and the hexagonal prism roller II 52 to rotate, and the bending module 4 and the module slot of the hexagonal prism roller I 51 and the hexagonal prism roller II 52 are converted.
[0047] After the conversion is completed, move the adjusting head 61 away from the adjusting groove 62. Then, under the push of the limiting spring 556, the locking rod 552 re-enters the clamping groove 554 on the locking block 555. Under the restriction of the clamping block 553, the rotating rod 551 and the locking rod 552 cannot rotate, and the hexagonal prism roller 51 and the hexagonal prism roller 52 cannot rotate. Then, place the steel plate on the hexagonal prism roller 52, and let the hydraulic telescopic rod 3 drive the hexagonal prism roller 51 to approach the hexagonal prism roller 52. Let the bending module 4 on the mounting block 54 enter the module groove to complete the bending of the steel plate.
Claims
1. A high-quality stainless steel cold-rolled steel plate bending and forming auxiliary equipment, comprising a working platform (1), characterized in that: A support frame (2) is fixed on the working platform (1), a hydraulic telescopic rod (3) is fixed on the support frame (2), a plurality of bending modules (4) are arranged at the telescopic end of the hydraulic telescopic rod (3), a conversion mechanism (5) is arranged between the plurality of bending modules (4) and the hydraulic telescopic rod (3), a synchronous adjustment mechanism (6) is arranged on one side of the working platform (1), and a controller (7) is fixed on the working platform (1).
2. The high-quality stainless steel cold-rolled steel plate bending and forming auxiliary equipment according to claim 1 is characterized by: The conversion mechanism (5) comprises a hexagonal roller 1 (51) arranged at the telescopic end of the hydraulic telescopic rod (3), a hexagonal roller 2 (52) being arranged on the hexagonal roller 1 (51), both ends of the hexagonal roller 1 (51) and the hexagonal roller 2 (52) being rotatably connected with support blocks (53), the support blocks (53) at both ends of the hexagonal roller 1 (51) being fixedly connected to the telescopic end of the hydraulic telescopic rod (3), the support blocks (53) at both ends of the hexagonal roller 2 (52) being fixedly connected to the working platform (1), six circumferentially distributed mounting blocks (54) being fixedly connected to the hexagonal roller 1 (51), a plurality of the bending modules (4) being fixedly connected to the corresponding mounting blocks (54), a plurality of module slots corresponding to the bending modules (4) being provided on the hexagonal roller 2 (52), and a rotation locking assembly (55) being arranged at one end of each of the hexagonal roller 1 (51) and the hexagonal roller 2 (52).
3. The high-quality stainless steel cold-rolled steel plate bending forming auxiliary equipment according to claim 2 is characterized by: The rotation locking assembly (55) comprises two locking blocks (555) respectively arranged at one end of the hexagonal prism roller 1 (51) and the hexagonal prism roller 2 (52); the locking blocks (555) are L-shaped and fixedly connected to the support block (53); a rotation rod (551) is arranged between the locking block (555) and the support block (53); the rotation rod (551) penetrates the rotation connection support block (53) and is fixedly connected to the corresponding hexagonal prism roller 1 (51) and the hexagonal prism roller 2 (52); a locking rod (552) is slidably sleeved on the rotation rod (551); six circumferentially distributed clamping blocks (553) are fixed on the locking rod (552); and clamping grooves (554) corresponding to the clamping blocks (553) and the locking rod (552) are provided on the locking block (555).
4. The high-quality stainless steel cold-rolled steel plate bending and forming auxiliary equipment according to claim 3 is characterized by: A limiting spring (556) is provided between the rotating rod (551) and the locking rod (552), and both ends of the limiting spring (556) are fixedly connected to the rotating rod (551) and the locking rod (552).
5. The high-quality stainless steel cold-rolled steel plate bending and forming auxiliary equipment according to claim 3 is characterized by: The clamping block (553) is provided with clamping inclined surfaces (557) on both sides of one end facing the clamping groove (554).
6. The high-quality stainless steel cold-rolled steel plate bending and forming auxiliary equipment according to claim 3 is characterized by: The synchronous adjustment mechanism (6) comprises an adjustment plate (63) arranged on one side of the working platform (1), a pushing assembly (65) is arranged between the adjustment plate (63) and the working platform (1), two symmetrical adjustment heads (61) are rotatably connected to the adjustment plate (63), an adjustment slot (62) corresponding to the adjustment head (61) is formed on the locking rod (552), and a rotating assembly (64) is arranged between the two adjustment heads (61).
7. The high-quality stainless steel cold-rolled steel plate bending and forming auxiliary equipment according to claim 6 is characterized by: The pushing assembly (65) comprises a support seat (651) fixed on the working platform (1); a threaded rod (653) is rotatably connected to the support seat (651); a threaded block (652) is threadedly connected to the threaded rod (653); the threaded block (652) is fixedly connected to the adjustment plate (63); a driving motor (654) is fixed to the support seat (651); an output end of the driving motor (654) passes through the support seat (651) and is fixedly connected to the threaded rod (653).
8. The high-quality stainless steel cold-rolled steel plate bending and forming auxiliary equipment according to claim 6 is characterized by: The rotating assembly (64) comprises two rotating gears (641) rotatably connected to the adjustment plate (63); the rotating gears (641) are fixedly connected to the adjustment head (61); and a synchronous chain (642) is transmission-connected between the two rotating gears (641).
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