Stamping production line simulation equipment

By designing a stamping production line simulation device, the stamping process of sheet metal is simulated and displayed, solving the problem that consumers cannot visit existing stamping production lines, improving consumer experience and manufacturer trust, and reducing the manufacturing cost of the simulation device.

CN223669981UActive Publication Date: 2025-12-16BYD CO LTD
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Patent Information

Application Number
CN202423195105.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-12-16
Estimated Expiration
2034-12-20

AI Technical Summary

Technical Problem

In the current technology, consumers cannot visit the stamping production line at any time, which makes it difficult to enhance their trust and recognition of automobile manufacturers.

Method used

Design a stamping production line simulation device, including a display stand, a simulated stamping device, a transfer device, and detection sensors, to simulate and display the stamping process of sheet metal. The transfer device simulates the shape changes of the sheet metal after stamping, achieving automatic and continuous display.

Benefits of technology

This enhances the display effect and visual appeal, allowing consumers to experience the car production process firsthand, increasing their trust and recognition of car manufacturers, and reducing manufacturing costs.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN223669981U_ABST
    Figure CN223669981U_ABST
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Abstract

The utility model provides a stamping production line simulation device. The stamping production line simulation device comprises an exhibition stand; the simulation stamping device comprises a simulation stamping part and a bearing part; the simulation stamping parts are suitable for being matched with the bearing parts so as to simulate stamping of the simulation plates; the first transfer device is configured to transfer the simulation plate in the upstream process to the bearing piece in the downstream process in the two adjacent processes; and the second transfer device is configured to transfer the simulation plate in the downstream process to the simulation stamping device in the upstream process in the two adjacent processes. According to the stamping production line simulation equipment provided by the utility model, the second transfer device is arranged, so that the form change of a stamped plate can be simulated and displayed, a real stamping production line can be simulated, consumers can personally experience the process of automobile production, and the credibility and recognition degree of the consumers to automobile manufacturers are enhanced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to stamping production line simulation equipment manufacturing technical field especially is a kind of stamping production line simulation equipment. BACKGROUND

[0002] Stamping is the first step of vehicle manufacturing, and stamping is the process of stamping sheet metal parts into shape using a die according to design requirements. Its quality and precision will directly affect the quality of subsequent processes and the final quality of the vehicle. The existing stamping technology is applied to mature automobile production lines, and consumers need to enter the workshop to understand and visit the stamping production line. However, the production process in the workshop is complex, and it cannot be visited at any time, thus increasing the difficulty for consumers to understand and visit the existing stamping production line, which is not conducive to consumers experiencing the process of automobile production, and thus cannot enhance the trust and recognition of consumers to automobile manufacturers. SUMMARY

[0003] The utility model aims at at least one of the technical problems existing in the prior art. To this end, the utility model provides a stamping production line simulation device, which can enable consumers to experience the process of automobile production.

[0004] The stamping production line simulation device according to the utility model embodiment is used for simulating and displaying the production line of plate stamping forming. The production line includes a plurality of processes arranged in sequence along the conveying direction of the production line. The plurality of processes include a feeding process, at least one stamping process and a discharging process. The stamping production line simulation device includes: an exhibition stand, the exhibition stand is provided with at least one display port, the display port corresponds to the stamping process one by one; at least one simulation stamping device, the simulation stamping device is arranged one by one with the display port, and the simulation stamping device includes: a simulation stamping part and a bearing part, the simulation stamping part is arranged on the upper side of the exhibition stand, and the bearing part is arranged on the lower side of the exhibition stand; a plurality of simulation plates, the plurality of simulation plates include raw material plates before stamping and formed plates after stamping of any stamping process, the simulation plates are configured to be supported on the bearing part, and the simulation stamping part is adapted to cooperate with the bearing part to simulate stamping the simulation plates; a first transfer device, the first transfer device is configured to transfer the simulation plates in the upstream process to the bearing part in the downstream process as the raw material plates of the downstream process along the conveying direction of the production line; and a second transfer device, the second transfer device is configured to transfer the simulation plates in the downstream process to the simulation stamping device in the upstream process as the formed plates of the upstream process along the conveying direction.

[0005] According to the stamping production line simulation equipment, the second transfer device is arranged, the morphological change of the stamped plate part can be simulated and displayed, a real stamping production line can be simulated, and therefore the display effect and ornamental value can be improved, meanwhile, consumers can experience the automobile production process in person, and the trust and recognition of consumers to the automobile manufacturer can be enhanced.

[0006] According to some embodiments of the utility model, the second transfer device includes: a carrier plate, the carrier is arranged on the carrier plate; a first driving mechanism, the first driving mechanism is connected with the carrier plate, and is used for driving the carrier plate to move along the up-down direction; a second driving mechanism, the second driving mechanism is connected with the carrier plate, and is used for driving the carrier plate to move along the conveying direction between two adjacent processes.

[0007] According to some optional embodiments of the utility model, the first driving mechanism includes: a first driving motor, a gear and a rack, the gear is connected with the motor shaft of the first driving motor, the rack is engaged with the gear, and the first driving motor drives the carrier plate to move up and down through the gear and the rack.

[0008] According to some optional embodiments of the utility model, the first driving mechanism further includes: a follow-up plate, the rack extends along the horizontal direction and is fixed on the follow-up plate; a support rod, the support rod extends vertically, and the carrier plate is arranged on the support rod; a transmission rod, two ends of the transmission rod are rotatably connected with the follow-up plate and the support rod respectively, and the first driving motor drives the follow-up plate to move in the horizontal direction through the rack, so that the follow-up plate drives the support rod to move in the up-down direction through the transmission rod.

[0009] According to some optional embodiments of the utility model, the follow-up plate and the rack extend along the conveying direction, the number of the carrier plates is multiple and the carrier plates are arranged in sequence along the conveying direction, and the number of the support rods and the transmission rods is multiple and corresponds to the multiple carrier plates one by one.

[0010] According to some embodiments of the utility model, the first driving mechanism further includes: a first fixed seat, one of the first fixed seat and the follow-up plate is provided with a first guide rail, and the other is provided with a first sliding block which is in sliding fit with the first guide rail, the follow-up plate is arranged on the first fixed seat through the first sliding block and the first guide rail, and is slidable relative to the first fixed seat along the conveying direction.

[0011] According to some embodiments of the present application, the first driving mechanism further comprises: a second fixing base, one of the second fixing base and the support rod is provided with a second guide rail, and the other is provided with a second sliding block in sliding fit with the second guide rail, the support rod is arranged on the second fixing base through the second sliding block and the second guide rail, and is slidable relative to the second fixing base along the up-down direction.

[0012] According to some embodiments of the present application, the second driving mechanism comprises: a sliding rail extending along the conveying direction; a connecting plate vertically extending and slidably arranged on the sliding rail along the conveying direction, the carrier plate being arranged on the connecting plate; and a first driving member connected with the connecting plate and used for driving the connecting plate to move along the conveying direction.

[0013] According to some optional embodiments of the present application, the second driving mechanism further comprises: a guide plate extending along the conveying direction, the carrier plate being slidably arranged on the guide plate.

[0014] According to some optional embodiments of the present application, a limiting block is arranged on the guide plate, and the limiting block is configured to limit the horizontal movement of the carrier plate along the conveying direction.

[0015] According to some embodiments of the present application, the first transfer device comprises: a plurality of clamping mechanisms arranged between adjacent two processes, the clamping mechanisms being used for clamping the simulation plate in the upstream process to the carrier in the downstream process.

[0016] According to some embodiments of the present application, the simulation stamping part is movable along the up-down direction between an initial position and a stamping position, in the stamping position, the simulation stamping part covers the corresponding display opening, and the simulation stamping part in the stamping position is located below the simulation stamping part in the initial position.

[0017] According to some optional embodiments of the present application, the first transfer device is configured to transfer the simulation plate in the upstream process to the carrier in the downstream process when the simulation stamping part is in the initial position; and the second transfer device is configured to transfer the simulation plate in the downstream process to the simulation stamping device in the upstream process when the simulation stamping part is in the stamping position.

[0018] According to some optional embodiments of the present application, the simulation stamping piece has an initial state and a magnetic attraction state, in the initial state, the simulation stamping piece has no magnetic attraction, in the magnetic attraction state, the simulation stamping piece is suitable for adsorbing the simulation plate piece, so as to fix the simulation plate piece on the simulation stamping piece.

[0019] According to some optional embodiments of the present application, the stamping production line simulation equipment further comprises a detection sensor, the detection sensor is used for detecting whether the formed plate piece reaches the corresponding simulation stamping device, and the simulation stamping piece is configured to switch to the magnetic attraction state when the detection sensor detects that the formed plate piece reaches the simulation stamping device of the corresponding process.

[0020] According to some embodiments of the present application, the simulation stamping device further comprises a mounting seat, the mounting seat is arranged on the upper side of the exhibition stand, the simulation stamping piece is movably arranged on the mounting seat along the up-down direction, a second driving piece and a transmission piece, the second driving piece and the transmission piece are arranged in the mounting seat, the second driving piece is connected with the simulation stamping piece through the transmission piece, and the second driving piece is used for driving the simulation stamping piece to move between the initial position and the stamping position.

[0021] According to some embodiments of the present application, when the simulation stamping piece is in the initial position, the bearing piece is located in the display port to bear and display the simulation plate piece.

[0022] According to some embodiments of the present application, the stamping production line simulation equipment further comprises an output display device, the output display device is arranged downstream of the exhibition stand along the conveying direction, the output display device is used for receiving and outputting the formed plate piece after processing, and a sending back device, the sending back device is arranged between the output end of the output display device and the most downstream simulation stamping device along the conveying direction, and is used for conveying the formed plate piece to the most downstream simulation stamping device.

[0023] According to some optional embodiments of the present application, the output display device is a belt conveying device, the sending back device comprises a belt conveying mechanism and a grabbing mechanism, the belt conveying mechanism is arranged on the lower side of the belt conveying device, the conveying direction of the belt conveying device is opposite to the conveying direction of the belt conveying mechanism, the grabbing mechanism is arranged between the output end of the belt conveying mechanism and the most downstream simulation stamping device, and is used for transferring the formed plate piece on the belt conveying mechanism to the bearing piece of the most downstream simulation stamping device.

[0024] According to some optional embodiments of the present invention, the stamping production line simulation equipment further includes: a lifting platform, which is located at the output end of the output display device. The lifting platform can be raised and lowered in the vertical direction. The lifting platform is used to receive the formed plate output by the output display device and transport the formed plate to the input end of the belt conveyor mechanism.

[0025] According to some embodiments of the present invention, the display stand is provided with a raw material placement area at one upstream end in the conveying direction, and at least one of the raw material plates is placed in the raw material placement area.

[0026] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of a stamping production line simulation device according to an embodiment of the present utility model;

[0028] Figure 2 yes Figure 1 A schematic diagram of another angle of the stamping production line simulation equipment shown;

[0029] Figure 3 yes Figure 1 This is a schematic diagram of the stamping production line simulation equipment shown from another angle;

[0030] Figure 4 yes Figure 1 This is another schematic diagram of the stamping production line simulation equipment shown.

[0031] Figure 5 yes Figure 1 A schematic diagram of a portion of the structure of the stamping production line simulation equipment shown in the image;

[0032] Figure 6 yes Figure 1 A schematic diagram of the first drive mechanism shown;

[0033] Figure 7 yes Figure 1 The diagram shows the arrangement of the detection sensors.

[0034] Figure label:

[0035] 100. Stamping production line simulation equipment;

[0036] 10. Exhibition stand; 11. Display opening; 12. Raw material storage area;

[0037] 20. Simulated stamping device; 21. Simulated stamped part; 22. Bearing component;

[0038] 30. First transfer device;

[0039] 40. Second transfer device; 41. Carrier tray; 42. First drive mechanism; 421. First drive motor; 422. Follower plate; 423. Support rod; 424. Transmission rod; 425. First fixed seat; 426. Second fixed seat; 43. Second drive mechanism; 431. Slide rail; 432. Connecting plate; 433. First drive component; 434. Guide plate; 435. Limiting block;

[0040] 50. Detection sensor;

[0041] 61. Mounting base; 62. Second drive component; 63. Transmission component;

[0042] 71. Output display device; 72. Return device; 721. Belt conveyor mechanism; 722. Gripping mechanism;

[0043] 81. Lifting platform; 82. Fixed frame;

[0044] 90. Simulation board. Detailed Implementation

[0045] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.

[0046] The following is a reference appendix. Figures 1-7 Description of a stamping production line simulation device 100 according to an embodiment of the present utility model.

[0047] Reference Figure 1 , Figure 2 , Figure 4 , Figure 5 and Figure 6 According to an embodiment of the present invention, a stamping production line simulation device 100 is used to simulate and demonstrate a production line for stamping sheet metal. The production line includes multiple processes arranged sequentially along the conveying direction of the production line. The multiple processes include a feeding process, at least one stamping process, and a unloading process.

[0048] Specifically, the stamping production line simulation equipment 100 includes: a display stand 10, at least one simulated stamping device 20, multiple simulated sheet metal parts 90, a first transfer device 30, and a second transfer device 40. The display stand 10 has at least one display opening 11, each corresponding to a stamping process; the simulated stamping device 20 is configured to correspond to each display opening 11, and each simulated stamping device 20 includes: a simulated stamping part 21 and a supporting part 22. The simulated stamping part 21 is located on the upper side of the display stand 10 (e.g., on the upper side). Figure 1 The upper side of the booth 10 shown), and the support member 22 is located on the lower side of the booth 10 (e.g., the upper side of the booth 10). Figure 1 (The lower side of the booth 10 shown); multiple simulated panels 90 include raw material panels before stamping and formed panels after stamping in any stamping process. The simulated panels 90 are configured to be supported on the carrier 22. The simulated stamping part 21 is adapted to cooperate with the carrier 22 to simulate stamping the simulated panel 90. The first transfer device 30 is configured to transfer the simulated panel 90 located in the upstream process to the carrier 22 of the downstream process in the conveying direction of the production line, so as to serve as the raw material panel of the downstream process. The second transfer device 40 is configured to transfer the simulated panel 90 located in the downstream process to the simulated stamping device 20 of the upstream process in the conveying direction, so as to serve as the formed panel of the upstream process.

[0049] For example, such as Figure 1 , Figure 2 , Figure 4 , Figure 5 and Figure 6 As shown, the production line includes a feeding process, four stamping processes, and a blanking process. The four stamping processes are arranged sequentially from front to back. The display stand 10 is a horizontal plate extending in the front-to-back direction. The display stand 10 has four display openings 11, which penetrate the display stand 10 in the vertical direction. Each display opening 11 corresponds to a stamping process. The simulated stamping device 20 corresponds to each display opening 11. The simulated stamping part 21 is located on the upper side of the display stand 10, and the support member 22 is located on the lower side of the display stand 10. The simulated plate 90 is supported on the support member 22, and the simulated stamping part 21 is located on the upper side of the support member 22. The simulated stamping part 21 and the support member 22 work together to simulate the stamping of the simulated plate 90.

[0050] When the production line is simulated by using the stamping production line simulation device 100, for example, the first transfer device 30 transfers the raw plate piece on the carrier 22 of the first stamping process to the carrier 22 of the second stamping process, the simulation stamping piece 21 of the simulation stamping device 20 of the first stamping process moves downward to cooperate with the carrier 22 to clamp the raw plate piece, and the real stamping process is simulated. The simulation stamping piece 21 of the simulation stamping device 20 of the second stamping process moves downward to cooperate with the carrier 22 to clamp the raw plate piece, and the real stamping process is simulated. At this time, the second transfer device 40 transfers the formed plate piece on the carrier 22 of the third stamping process to the carrier 22 of the second stamping process, and simultaneously transfers the formed plate piece on the carrier 22 of the second stamping process to the carrier 22 of the first stamping process. When the simulation stamping piece 21 no longer cooperates with the carrier 22, the display port 11 of the second stamping process displays the formed plate piece after the second stamping process, and the display port 11 of the first stamping process displays the formed plate piece after the first stamping process. At this time, the simulation stamping process display is completed, and the remaining four simulation stamping processes are displayed as above, so that the real stamping production line of the plate piece 90 can be simulated.

[0051] The stamping production line simulation device 100 of the utility model, set up second transfer device 40, after first transfer device 30 transfer raw plate piece from upstream process to downstream process, second transfer device 40 transfer downstream process's formed plate piece to upstream process, can simulate and show the morphological change of the plate piece after stamping, so that the real stamping production line can be simulated, and then the display effect and the ornamental value can be improved. At the same time, through the transfer simulation plate piece 90 of the second device, the automatic continuous display of the stamping process can be realized, so that consumers can experience the process of automobile production, better understand the stamping automatic production line production process, and enhance the trust and recognition of consumers to the automobile production manufacturer. In addition, the cooperation of the first transfer device 30 and the second transfer device 40 can realize the recycling of the simulation plate piece 90, so that the manufacturing cost of the stamping production line simulation device 100 can be reduced.

[0052] According to the stamping production line simulation device 100 of the embodiment of the utility model, the second transfer device 40 is arranged, the morphological change of the plate piece after stamping can be simulated and shown, so that the real stamping production line can be simulated, and then the display effect and the ornamental value can be improved. At the same time, consumers can experience the process of automobile production, and the trust and recognition of consumers to the automobile production manufacturer can be enhanced.

[0053] According to some embodiments of the utility model, refer to Figure 1 、 Figure 2 、 Figure 5 and Figure 6The second transferring device 40 comprises a carrier plate 41, a first driving mechanism 42 and a second driving mechanism 43. The carrier 22 is arranged on the carrier plate 41; the first driving mechanism 42 is connected with the carrier plate 41 and used for driving the carrier plate 41 to move in the up-down direction (for example, the up-down direction shown in the figure); and the second driving mechanism 43 is connected with the carrier plate 41 and used for driving the carrier plate 41 to move in the conveying direction (for example, the front-rear direction shown in the figure) between two adjacent processes. Figure 1 Figure 1

[0054] In this way, the carrier plate 41 can provide a layout position for the carrier 22, so that the carrier 22 can be conveniently laid out. Meanwhile, the carrier 22 is driven to move by the carrier plate 41, and the carrier 22 does not need to be directly driven by the first driving mechanism 42 and / or the second driving mechanism 43, so that the manufacturing difficulty of the carrier 22 can be reduced. In addition, the first driving mechanism 42 drives the carrier plate 41 to move up and down, so that the carrier 22 can be separated from the simulated stamping part 21, and then the second driving mechanism 43 can drive the carrier plate 41 to drive the carrier to move in the conveying direction, so that the stamping production line simulation device 100 can simulate a stamping production line.

[0055] For example, as shown in Figure 1 、 Figure 2 、 Figure 5 and Figure 6 , the first driving mechanism 42 and the second driving mechanism 43 are connected with the carrier plate 41, the carrier 22 is arranged on the upper side of the carrier plate 41, the first driving mechanism 42 drives the carrier plate 41 to move in the up-down direction, and the second driving mechanism 43 drives the carrier plate 41 to move in the left-right direction.

[0056] According to some optional embodiments of the utility model, referring to Figure 1 、 Figure 2 、 Figure 5 and Figure 6 , the first driving mechanism 42 comprises a first driving motor 421, a gear and a rack. The gear is connected with the motor shaft of the first driving motor 421, the rack is engaged with the gear, and the first driving motor 421 drives the carrier plate 41 to move up and down through the gear and the rack. In this way, the transmission mechanism of the first driving motor 421, the gear and the rack is simple, so that the first driving mechanism 42 can drive the carrier plate 41 to move in the up-down direction, and meanwhile, the gear and the rack have high precision, so that the carrier plate 41 can accurately move in the up-down direction.

[0057] According to some optional embodiments of the utility model, referring to Figure 1 、 Figure 2 、 Figure 5 and Figure 6 , the second driving mechanism 43 comprises a second driving motor 431, a gear and a rack. The gear is connected with the motor shaft of the second driving motor 431, the rack is engaged with the gear, and the second driving motor 431 drives the carrier plate 41 to move in the conveying direction through the gear and the rack. In this way, the transmission mechanism of the second driving motor 431, the gear and the rack is simple, so that the second driving mechanism 43 can drive the carrier plate 41 to move in the conveying direction, and meanwhile, the gear and the rack have high precision, so that the carrier plate 41 can accurately move in the conveying direction.​The first driving mechanism 42 further comprises a follower plate 422, a support rod 423 and a transmission rod 424. Specifically, the rack extends in the horizontal direction and is fixed to the follower plate 422; the support rod 423 extends vertically, and the carrier plate 41 is arranged on the support rod 423; the transmission rod 424 is rotatably connected to the follower plate 422 and the support rod 423 at two ends thereof; and the first driving motor 421 drives the follower plate 422 to move in the horizontal direction through the rack, so that the follower plate 422 drives the support rod 423 to move in the vertical direction through the transmission rod 424.

[0058] In this way, the follower plate 422, the support rod 423 and the transmission rod 424 cooperate to convert the force of the first driving motor 421 driving the rack to move in the horizontal direction into driving force in the vertical direction, so that the first driving motor 421 can drive the carrier plate 41 to move up and down, and meanwhile, the driving force direction conversion structure is simple, thereby reducing energy loss and ensuring the transmission effect of the driving force.

[0059] For example, as shown in Figure 1 、 Figure 2 、 Figure 5 and Figure 6 , the gear sleeve is arranged on the motor shaft of the first driving motor 421 and is fixed, the gear extends in the front-rear direction, the gear is engaged with the rack, the follower plate 422 extends in the front-rear direction, the rack is fixed to the follower plate 422, the support rod 423 extends vertically, the carrier plate 41 is fixed to the upper end of the support rod 423, and the transmission rod 424 extends obliquely, the lower end of the transmission rod 424 is connected to the follower plate 422, and the upper end of the transmission rod 424 is connected to the lower end of the support rod 423.

[0060] When the first driving motor 421 operates, the first driving motor 421 drives the gear to rotate, the gear drives the rack to move in the front-rear direction, the rack drives the follower plate 422 to move in the front-rear direction, the follower plate 422 drives the support rod 423 to move up and down through the transmission rod 424, and the support rod 423 drives the carrier plate 41 to move up and down, so as to realize that the first driving mechanism 42 drives the carrier plate 41 to move in the vertical direction.

[0061] According to some optional embodiments of the present application, referring to Figure 1 、 Figure 2 、 Figure 5 and Figure 6 , the follower plate 422 and the rack both extend in the conveying direction (for example, the front-rear direction as shown in Figure 1 ), the number of the carrier plates 41 is multiple and arranged in sequence in the conveying direction, that is, the number of the carrier plates 41 is two, three or four or more, and the number of the support rods 423 and the transmission rods 424 is also multiple, that is, the number of the support rods 423 and the transmission rods 424 can be two, three or four or more, and corresponds to the multiple carrier plates 41 one by one.

[0062] In this way, each support rod 423 drives each carrier disc 41, so that the first driving mechanism 42 can ensure the stability of the movement of the carrier disc 41, and the plurality of support rods 423 can ensure that the plurality of driving points are arranged on the follower plate 422, so that the balance of force transmission can be ensured, and the first driving mechanism 42 can accurately drive the carrier disc 41 to move in the up-down direction.

[0063] According to some embodiments of the present application, referring to Figure 2 , Figure 5 , Figure 6 and Figure 1 , the first driving mechanism 42 further comprises a first fixed seat 425, one of the first fixed seat 425 and the follower plate 422 is provided with a first guide rail, and the other is provided with a first sliding block which is in sliding cooperation with the first guide rail, that is, the first fixed seat 425 can be provided with the first guide rail and the follower plate 422 can be provided with the first sliding block, or the follower plate 422 can be provided with the first guide rail and the first fixed seat 425 can be provided with the first sliding block, and the follower plate 422 is arranged on the first fixed seat 425 through the first sliding block and the first guide rail and is slidable relative to the first fixed seat 425 along the conveying direction.

[0064] In this way, the first fixed seat 425 and the follower plate 422 cooperate, the follower plate 422 moves forward and backward relative to the first fixed seat 425 through the cooperation of the first guide rail and the first sliding block, so that the stability of the movement of the follower plate 422 can be ensured, and the breaking of the follower plate 422 due to large span can be effectively prevented, so that the service life of the follower plate 422 can be ensured.

[0065] For example, as shown in Figure 2 , Figure 5 , Figure 6 and Figure 1 , the first fixed seat 425 is provided with the first guide rail, and the follower plate 422 is provided with the first sliding block, the first guide rail extends in the front-rear direction, and the first sliding block moves on the first guide rail in the front-rear direction, so that the follower plate 422 moves in the front-rear direction relative to the first fixed seat 425.

[0066] According to some embodiments of the present application, referring to Figure 2 , Figure 5 , Figure 6 and Figure 1The first driving mechanism 42 further comprises a second fixing base 426, one of the second fixing base 426 and the support rod 423 is provided with a second guide rail, and the other is provided with a second sliding block in sliding fit with the second guide rail, that is, the second fixing base 426 can be provided with the second guide rail and the support rod 423 can be provided with the second sliding block, or the support rod 423 can be provided with the second guide rail and the second fixing base 426 can be provided with the second sliding block, and the support rod 423 is arranged on the second fixing base 426 through the second sliding block and the second guide rail and is slidable relative to the second fixing base 426 in the up-down direction (for example, the up-down direction shown in Figure 2 .

[0067] In this way, the second fixing base 426 and the support rod 423 are matched, the support rod 423 moves up and down relative to the second fixing base 426 through the matching of the second guide rail and the second sliding block, so that the stability of the movement of the support rod 423 can be ensured, and thus the breakage of the support rod 423 due to excessive driving force borne by the support rod 423 can be effectively prevented, so that the service life of the support rod 423 can be ensured, and meanwhile, the second fixing base 426 can also move the moving direction of the support rod 423, so that the support rod 423 can move in the up-down direction.

[0068] For example, as shown in Figure 5 , Figure 6 , Figure 1 and Figure 2 , the second fixing base 426 is provided with a second guide rail and extends vertically, the support rod 423 is provided with a second sliding block, the second guide rail extends in the up-down direction, and the second sliding block moves on the second guide rail in the front-rear direction, so as to realize the movement of the support rod 423 relative to the second fixing base 426 in the up-down direction.

[0069] According to some embodiments of the utility model, referring to Figure 5 and Figure 6 , the second driving mechanism 43 comprises a sliding rail 431, a connecting plate 432 and a first driving piece 433. The sliding rail 431 extends in the conveying direction (for example, the front-rear direction shown in Figure 1 ); the connecting plate 432 extends vertically and is slidably arranged on the sliding rail 431 in the conveying direction, and the carrier disc 41 is arranged on the connecting plate 432; and the first driving piece 433 is connected with the connecting plate 432 and is used for driving the connecting plate 432 to move in the conveying direction.

[0070] Thus, the transmission mechanism of the first driving member 433, the slide rail 431 and the connecting plate 432 is simple, so that the second driving mechanism 43 can drive the connecting plate 432 to move relative to the slide rail 431, and then the connecting plate 432 can drive the carrier plate 41 to move in the front-back direction, and meanwhile, the connecting plate 432 cooperates with the slide rail 431 in a simple form, so that the friction between the connecting plate 432 and the slide rail 431 can be reduced, and then the stability of the connecting plate 432 moving relative to the slide rail 431 can be ensured.

[0071] For example, as shown in Figure 2 and Figure 5 , the slide rail 431 extends in the front-back direction, the connecting plate 432 extends vertically and the lower end of the connecting plate 432 is connected with the slide rail 431, the carrier plate 41 is arranged at the upper end of the connecting plate 432, the first driving member 433 drives the connecting plate 432 to move in the front-back direction relative to the slide rail 431, and the connecting plate 432 drives the carrier plate 41 to move in the front-back direction.

[0072] Further, as shown in Figure 6 and Figure 1 , the first driving member 433 is a linear motor, so that the first driving member 433 can drive the connecting plate 432 to move in the front-back direction.

[0073] According to some optional embodiments of the present application, referring to Figure 2 , Figure 5 and Figure 6 , the second driving mechanism 43 further comprises a guide plate 434, the guide plate 434 extends in the conveying direction (for example, the front-back direction as shown in Figure 1 , and the carrier plate 41 is slidably arranged on the guide plate 434. Thus, the carrier plate 41 can slide on the guide plate 434, so that the carrier plate 41 can be moved to the position of the corresponding simulation stamping device 20.

[0074] For example, as shown in Figure 2 , Figure 5 and Figure 6 , the guide plate 434 extends in the front-back direction, the guide plate 434 is fixed with the supporting rod 423, and the carrier plate 41 is slidably connected with the guide plate 434.

[0075] According to some embodiments of the present application, referring to Figure 1 and Figure 2 , the guide plate 434 is provided with a limiting block 435, the limiting block 435 is configured to limit the horizontal movement of the carrier plate 41 in the conveying direction (for example, the front-back direction as shown in Figure 5 . Thus, the horizontal movement of the carrier plate 41 can be avoided, so that the carrier plate 41 cannot correspond to the simulation stamping device 20, and then the carrier plate 41 can move the carrier 22 to the lower side of the corresponding simulation stamping part 21.

[0076] For example, as shown in Figure 6 and Figure 1 , the limiting block 435 is fixed at the upper end of the guide plate 434, and the limiting block 435 is arranged between the follower plate 422 and the guide plate 434, and the follower plate 422 and the guide plate 434 are slidably connected in the front-rear direction.

[0077] Further, as shown in Figure 2 and Figure 5 , the number of the carrier disc 41 is multiple, that is, the number of the carrier disc 41 can be two, three or four or more, and the multiple carrier discs 41 are arranged at intervals in the conveying direction, and the limiting block 435 is arranged between the adjacent two carrier discs 41. Therefore, the multiple carrier discs 41 can carry multiple simulation board pieces 90 of the stamping process, so that the stamping production line simulation equipment 100 can simulate multiple stamping processes.

[0078] According to some embodiments of the present application, referring to Figure 6 and Figure 1 , the first transfer device 30 comprises a plurality of clamping mechanisms, that is, the first transfer device 30 comprises two, three or four or more clamping mechanisms, and the clamping mechanisms are arranged between adjacent two processes, and the clamping mechanisms are used to grasp the simulation board piece 90 in the upstream process to the carrier 22 in the downstream process.

[0079] In this way, the clamping mechanism can clamp the simulation board piece 90, and automatic continuous display can be realized, so that the real stamping effect can be simulated, and the viewing effect can be effectively improved.

[0080] For example, as shown in Figure 2 and Figure 5 , the first transfer device 30 comprises five clamping mechanisms, and the clamping mechanisms are arranged between adjacent two processes.

[0081] According to some embodiments of the present application, referring to Figure 6 and Figure 1 , the simulation stamping piece 21 is movable in the up-down direction between the initial position and the stamping position, and in the stamping position, the simulation stamping piece 21 covers the corresponding display port 11, and the simulation stamping piece 21 in the stamping position is located below the simulation stamping piece 21 in the initial position. Therefore, in the initial position, the simulation stamping piece 21 is located on the upper side of the exhibition stand 10, so that consumers can conveniently watch the simulation board piece 90 on the carrier 22, and at the same time, in the stamping position, the simulation stamping piece 21 cooperates with the carrier 22 to display the stamping process and cover the display port 11, facilitating the second transfer device 40 to move the simulation board piece 90 of the downstream process.

[0082] For example, as shown in Figure 2 and Figure 5As shown, the simulation stamping part 21 is in the initial position, the simulation stamping part 21 is higher than the exhibition stand 10, the simulation stamping part 21 is in the stamping position, and the simulation stamping part 21 covers the corresponding display opening 11.

[0083] According to some optional embodiments of the present application, referring to Figure 6 and Figure 1 , the first transfer device 30 is configured to transfer the simulation plate 90 of the upstream process to the carrier 22 of the downstream process when the simulation stamping part 21 is in the initial position; the second transfer device 40 is configured to transfer the simulation plate 90 of the downstream process to the simulation stamping device 20 of the upstream process when the simulation stamping part 21 is in the stamping position.

[0084] In this way, when the simulation stamping part 21 is in the initial position, the first transfer device 30 can visually display the movement of the simulation plate 90 to the next process, and when the simulation stamping part 21 is in the stamping position, the second transfer device 40 can hide the movement process of the simulation plate 90 from the next process to the previous process, thereby simulating the stamping effect of the real production line.

[0085] For example, as shown in Figure 2 and Figure 5 , taking the first stamping process as an example, when the simulation stamping part 21 is in the initial position, the clamping mechanism moves the raw plate on the carrier 22 of the first stamping process to the second stamping process, and then the simulation stamping part 21 moves to the stamping position, at which time the simulation stamping part 21 covers the display opening 11, and the second transfer device 40 moves the formed plate on the carrier 22 of the second stamping process to the lower side of the simulation stamping part 21 of the first stamping process. When the simulation stamping part 21 of the first stamping process moves to the initial position again, the consumer can directly watch the formed plate after stamping at the display opening 11 of the first stamping process.

[0086] According to some optional embodiments of the present application, referring to Figure 6 and Figure 1 , the simulation stamping part 21 has an initial state and a magnetic attraction state, in the initial state, the simulation stamping part 21 has no magnetic attraction, and in the magnetic attraction state, the simulation stamping part 21 is suitable for adsorbing the simulation plate 90 to fix the simulation plate 90 on the simulation stamping part 21.

[0087] In this way, the magnetic adsorption is simple, and the simulation plate 90 can be silently adsorbed during the movement of the second transfer device 40, thereby ensuring the authenticity of the simulation stamping production line. Preferably, the simulation plate 90 is generally made of metal, so that the simulation plate 90 does not need to be additionally processed, thereby ensuring that the simulation stamping part 21 can normally adsorb the simulation plate 90.

[0088] According to some optional embodiments of the present application, referring toFigure 2 and Figure 5 The stamping production line simulation equipment 100 also includes: a detection sensor 50, which is used to detect whether the formed sheet has reached the corresponding simulated stamping device 20. The simulated stamping part 21 is configured such that when the detection sensor 50 detects that the raw material sheet has reached the simulated stamping device 20 of the corresponding process, the simulated stamping part 21 moves to the stamping position, and when the detection sensor 50 detects that the formed sheet has reached the simulated stamping device 20 of the corresponding process, it switches to a magnetic attraction state.

[0089] This avoids the simulated stamping part 21 from moving from the initial position to the stamping position before the formed plate reaches the corresponding simulated stamping device 20, thus ensuring the display effect.

[0090] For example, such as Figure 6 and Figure 1 As shown, when the detection sensor 50 detects that the formed plate has reached the corresponding simulated stamping device 20, the simulated stamping part 21 switches to the magnetic attraction state, and the simulated stamping part 21 magnetically attracts the simulated plate 90. Then, the first drive member 433 of the second transfer device 40 drives the carrier plate 41 to move to the simulated stamping part 21 of the next process.

[0091] According to some optional embodiments of the present invention, refer to Figure 2 , Figure 5 and Figure 6 The simulated stamping device 20 also includes: a mounting base 61, a second drive component 62, and a transmission component 63. The mounting base 61 is located on the upper side of the display stand 10 (e.g., Figure 1 On the upper side of the booth 10 shown, the simulated stamping part 21 is movably mounted on the mounting base 61; the second driving part 62 and the transmission part 63 are both located in the mounting base 61. The second driving part 62 is connected to the simulated stamping part 21 through the transmission part 63 and is used to drive the simulated stamping part 21 to move between the initial position and the stamping position.

[0092] In this way, the mounting base 61 is positioned reasonably, which allows the simulated stamping part 21 to move in the vertical direction. At the same time, the second driving component 62 drives the simulated stamping part 21 to move relative to the mounting base 61, thereby ensuring that the simulated stamping part 21 can move between the initial position and the stamping position.

[0093] According to some embodiments of this utility model, refer to Figure 2 and Figure 5 When the simulated stamped part 21 is in its initial position, the support part 22 is located within the display opening 11 to support and display the simulated sheet metal 90. Thus, in its initial position, consumers can easily view the simulated sheet metal 90 directly, allowing them to experience the sheet metal stamping process firsthand.

[0094] According to some embodiments of the present application, referring to Figure 6 and Figure 1 , the stamping production line simulation device 100 further comprises an output display device 71 and a return device 72. The output display device 71 is arranged downstream of the exhibition stand 10 along the conveying direction, and is used to receive and output the finished shaped plate; the return device 72 is arranged between the output end of the output display device 71 and the most downstream simulation stamping device 20 along the conveying direction, and is used to convey the shaped plate to the most downstream simulation stamping device 20.

[0095] In this way, the output display device 71 and the return device 72 cooperate to realize the circulation of the shaped plate between the most downstream simulation stamping device 20 and the output display device 71, thereby realizing the display of the stamping process of the complete production line.

[0096] For example, as shown in Figure 2 and Figure 5 , after the simulation plate 90 of the most downstream simulation stamping device 20 is simulated and stamped, the output display device 71 receives and outputs the finished shaped plate, and then the output display device 71 transports the finished shaped plate to the return device 72, and the return device 72 conveys the shaped plate to the most downstream simulation stamping device 20.

[0097] According to some optional embodiments of the present application, referring to Figure 6 and Figure 1 , the output display device 71 is a belt conveying device, the return device 72 comprises a belt conveying mechanism 721 and a grabbing mechanism 722, the belt conveying mechanism 721 is arranged on the lower side of the belt conveying device (for example, the lower side of the belt conveying device shown in Figure 2 ), and the conveying direction of the belt conveying device is opposite to the conveying direction of the belt conveying mechanism 721, the grabbing mechanism 722 is arranged between the output end of the belt conveying mechanism 721 and the most downstream simulation stamping device 20, and is used to transfer the shaped plate on the belt conveying mechanism 721 to the carrying member 22 of the most downstream simulation stamping device 20.

[0098] In this way, the belt conveying device is simple in structure and convenient to process, thereby facilitating the manufacturing of the output display device 71, and at the same time, the belt conveying device has high transportation efficiency, thereby facilitating the rapid transportation of the shaped plate, and in addition, the grabbing mechanism 722 can transfer the shaped plate from the output end of the belt conveying mechanism 721 to the most downstream simulation stamping device 20, thereby ensuring the circulation of the shaped plate.

[0099] For example, as shown in Figure 5 and Figure 6As shown, the belt conveying device extends along the left-right direction, the left end of the belt conveying device is adjacent to the rear end of the exhibition stand 10, the belt conveying mechanism 721 is arranged on the lower side of the belt conveying device, the belt conveying device moves from left to right, the belt conveying mechanism 721 moves from right to left, and the grabbing mechanism 722 is arranged between the output end of the belt conveying mechanism 721 and the most downstream simulation punching device 20.

[0100] According to some optional embodiments of the present application, referring to Figure 1 and Figure 2 , the stamping production line simulation device 100 can further comprise a lifting platform 81, the lifting platform 81 is arranged at the output end of the output display device 71, the lifting platform 81 is liftable along the up-down direction, and the lifting platform 81 is used for receiving the molded plate piece output by the output display device 71 and conveying the molded plate piece to the input end of the belt conveying mechanism 721.

[0101] In this way, the lifting platform 81 can realize the conveying of the molded plate piece from the output display device 71 to the belt conveying mechanism 721, without manual transfer of the molded plate piece, so as to realize the automatic and continuous display of the stamping production line simulation device 100, and further realize the real simulation of the production line operation.

[0102] Further, as shown in Figure 5 and Figure 6 , the stamping production line simulation device 100 can further comprise a fixing frame 82, the lifting platform 81 is arranged at the right end of the output display device 71, the right end of the lifting platform 81 is rotatably fixed on the fixing frame 82, the lifting platform 81 has an initial position and a transfer position, at the initial position, the left end of the lifting platform 81 abuts against the output end of the output display device 71, and at the transfer position, the left end of the lifting platform 81 rotates around the right end of the lifting platform 81 until the left end of the lifting platform 81 abuts against the right end of the belt conveying mechanism 721.

[0103] According to some embodiments of the present application, referring to Figure 1 and Figure 2 , one end of the exhibition stand 10 upstream in the conveying direction (such as the front end of the exhibition stand 10 as shown in Figure 5 ) is provided with a raw material placing area 12, and the raw material placing area 12 is placed with at least one raw material plate piece, that is, the raw material placing area 12 can be placed with one, two or more than three raw material plate pieces. Therefore, it is convenient to completely display all processes of the entire production line, and it is convenient for consumers to clearly understand the processing process from the plate to the plate piece.

[0104] Further, as shown in Figure 6 and Figure 1 , the raw material placing area 12 is provided with a check mechanism, so as to effectively prevent the simulation plate piece 90 from falling off when the carrier 22 moves.

[0105] The following will be describedFigure 2 A stamping production line simulation device 100 according to an embodiment of the present utility model is described.

[0106] A stamping production line simulation device 100 according to an embodiment of the present utility model is described. Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 Figure 2 Figure 5 Figure 6 Figure 1 As shown in the figure, it comprises: an exhibition stand 10, four simulated stamping devices 20, a plurality of simulated plate pieces 90, a first transfer device 30, a second transfer device 40, a detection sensor 50, a mounting seat 61, a second driving piece 62, a transmission piece 63, an output display device 71, a sending and returning device 72 and a lifting platform 81.

[0107] Specifically, the exhibition stand 10 is provided with four display openings 11, which are arranged at intervals along the front-rear direction, and the front side of the exhibition stand 10 is provided with a raw material placement area 12, in which a plurality of raw material plate pieces are placed. The simulated stamping device 20 is provided with four, representing the process of forming the plate piece through drawing, trimming, punching and flanging, and is provided one by one with the display opening 11. The simulated stamping device 20 comprises a simulated stamping piece 21 and a bearing piece 22, the simulated stamping piece 21 is arranged on the upper side of the exhibition stand 10, and the bearing piece 22 is arranged on the lower side of the exhibition stand 10. The simulated plate piece 90 comprises a raw material plate piece before stamping and a formed plate piece after stamping in any stamping process, and is supported on the bearing piece 22. The simulated stamping piece 21 cooperates with the bearing piece 22 to simulate stamping the simulated plate piece 90.

[0108] The first transfer device 30 comprises five clamping mechanisms, which are arranged on the upper side of the exhibition stand 10 and between two adjacent processes, and are used to transfer the simulated plate piece 90 in the upstream process of the two adjacent processes to the bearing piece 22 in the downstream process. The second transfer device 40 is arranged on the lower side of the exhibition stand 10, and is used to transfer the simulated plate piece 90 in the downstream process of the two adjacent processes to the simulated stamping device 20 in the upstream process.

[0109] The second transfer device 40 comprises a carrier disc 41, a first driving mechanism 42 and a second driving mechanism 43. The first driving mechanism 42 comprises a first driving motor 421, a gear, a rack, a follower plate 422, a support rod 423 and a transmission rod 424, the gear is connected with the motor shaft of the first driving motor 421, the rack extends along the front-rear direction, the rack is engaged with the gear, and the rack is connected with the follower plate 422, the support rod 423 extends vertically, the carrier disc 41 is arranged on the support rod 423, and the two ends of the transmission rod 424 are rotatably connected with the follower plate 422 and the support rod 423 respectively, and the first driving motor 421 drives the carrier disc 41 to move up and down through the gear, the rack, the follower plate 422, the transmission rod 424 and the support rod 423. The number of carrier discs 41 is five, and they are arranged in sequence along the front-rear direction, and the number of support rods 423 and transmission rods 424 is also five, and they correspond to the five carrier discs 41 one by one.

[0110] The first driving mechanism 42 further comprises a first fixing base 425 and a second fixing base 426. The first fixing base 425 is provided with a first guide rail, and the follower plate 422 is provided with a first sliding block. The follower plate 422 is arranged on the first fixing base 425 through the first sliding block and the first guide rail, and is slidable relative to the first fixing base 425 in the front-rear direction. The second fixing base 426 is provided with a second guide rail, and the support rod 423 is provided with a second sliding block. The support rod 423 is arranged on the second fixing base 426 through the second sliding block and the second guide rail, and is slidable relative to the second fixing base 426 in the up-down direction.

[0111] The second driving mechanism 43 comprises a sliding rail 431, a connecting plate 432, a first driving member 433, and a guide plate 434. The sliding rail 431 extends in the front-rear direction. The connecting plate 432 extends vertically and is slidably arranged on the sliding rail 431 in the front-rear direction. The carrier disc 41 is arranged at the upper end of the connecting plate 432. The first driving member 433 is connected with the connecting plate 432. The guide plate 434 extends in the front-rear direction. The guide plate 434 is fixed to the upper end of the support rod 423. The carrier disc 41 is slidably arranged at the upper end of the guide plate 434. The upper end of the connecting plate 432 is slidably connected with the guide plate 434 in the front-rear direction. The guide plate 434 is provided with a limiting block 435 corresponding to the first end of the support rod 423.

[0112] The mounting base 61 is arranged at the upper side of the exhibition stand 10. The simulated stamping part 21 is movably arranged on the mounting base 61 in the up-down direction. The second driving member 62 and the transmission member 63 are arranged in the mounting base 61. The second driving member 62 is connected with the simulated stamping part 21 through the transmission member 63.

[0113] The output display device 71 is arranged at the rear end of the exhibition stand 10. The output display device 71 is a belt conveying device for receiving and outputting the formed plate parts after processing. The belt conveying device conveys the simulated plate parts 90 from left to right. The return device 72 is arranged between the output end of the output display device 71 and the most downstream simulated stamping device 20 in the conveying direction, for conveying the formed plate parts to the most downstream simulated stamping device 20. The belt conveying mechanism 721 conveys the simulated plate parts 90 from right to left.

[0114] The return device 72 comprises the belt conveying mechanism 721 and a grabbing mechanism 722. The grabbing mechanism 722 is arranged between the output end of the belt conveying mechanism 721 and the most downstream simulated stamping device 20, for transferring the formed plate parts on the belt conveying mechanism 721 to the carrier 22 of the most downstream simulated stamping device 20.

[0115] The lifting platform 81 is arranged at the output end of the output display device 71. The lifting platform 81 is liftable in the up-down direction. The lifting platform 81 is used for receiving the formed plate parts output by the output display device 71, and conveying the formed plate parts to the input end of the belt conveying mechanism 721.

[0116] When simulating the stamping production line with the stamping production line simulation device 100, the clamping mechanism clamps the simulation plate 90 in the raw material placement area 12 to the carrying table of the first stamping process, at the same time, the clamping mechanism clamps the primary stamping forming plate to the carrying table of the second stamping process, the clamping mechanism clamps the secondary stamping forming plate to the carrying table of the third stamping process, and the clamping mechanism clamps the tertiary stamping forming plate to the carrying table of the fourth stamping process.

[0117] When the detection sensor 50 detects that the simulation plate 90 reaches the appropriate position, the second driving member 62 drives the simulation stamping piece 21 to move downward through the transmission member 63 until the simulation stamping piece 21 is in close contact with the carrying piece 22 for simulation stamping.

[0118] Taking the first stamping process as an example, the first driving motor 421 drives the follower plate 422 to move backward through the gear and rack, the follower plate 422 drives the support rod 423 to move downward through the transmission rod 424, the support rod 423 drives the carrier disc 41 to move downward, and the carrier disc 41 drives the carrying piece 22 and the simulation plate 90 on the upper side of the carrying piece 22 to move downward, then the second driving mechanism 43 drives the connecting plate 432 to move forward through the first driving member 433, that is, the carrier disc 41 and the simulation plate 90 of the first stamping process move to the raw material placement area 12, the carrier disc 41 and the simulation plate 90 of the second stamping process move to the position directly below the simulation stamping piece 21 of the first stamping process, then the first driving motor 421 drives the carrier disc 41 to move upward until the carrying piece 22 is flush with the exhibition stand 10, then the simulation stamping piece 21 is powered to attract the simulation plate 90, then the carrier disc 41 of the first stamping process returns to the position below the simulation stamping piece 21 of the first stamping process and is flush with the exhibition stand 10, the carrier disc 41 of the second stamping process returns to the position below the simulation stamping piece 21 of the second stamping process and is flush with the exhibition stand 10, then the simulation stamping piece 21 is powered off and moves upward, at this time, the forming plate after stamping is shown on the carrying piece 22, and the exhibition of a single simulation stamping process is completed. The second stamping process, the third stamping process, and the fourth stamping process have the same operation logic as the first stamping process.

[0119] When the stamping process exhibition is completed, the simulation plate 90 after stamping is delivered to the left end of the output exhibition device 71, the output exhibition device 71 transports the forming plate to the lifting table 81 at the right end, the lifting table 81 delivers the forming plate to the belt conveying mechanism 721 of the return device 72, the belt conveying mechanism 721 transports the forming plate to the left, and finally, the grabbing mechanism 722 grabs the forming plate to the most downstream simulation stamping device 20, at this time, the entire simulation stamping production line exhibition is completed.

[0120] The stamping production line simulation device 100 of the embodiment is provided with the second transfer device 40, and can simulate the shape change of the stamped plate, so that a real stamping production line can be simulated, and the display effect and ornamental value are improved, and consumers can experience the automobile production process, and the trust and recognition of the consumers to the automobile manufacturer are enhanced. In addition, the simulation stamping device 20 can be adjusted according to actual production requirements, for example, a single station or any number of stations, and a single stamping process or several stamping processes are displayed, so that the versatility of the stamping production line simulation device 100 is improved, and various display requirements are met.

[0121] In the description of the utility model, it is understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the utility model and simplifying the description, and does not indicate or imply that the indicated device or element must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the utility model.

[0122] In addition, the terms "first" and "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" can explicitly or implicitly include one or more of the features. In the description of the utility model, the meaning of "multiple" is two or more, unless otherwise specifically limited.

[0123] In the utility model, unless otherwise specifically defined and limited, the terms "mounting", "connection", "connection", "fixing" and the like should be understood in a broad sense, for example, can be fixedly connected, or can be detachably connected, or can be integrated; can be mechanically connected, or can be electrically connected, or can be communicated; can be directly connected, or can be indirectly connected through an intermediate medium; can be the communication or interaction relationship between two elements. For ordinary skilled in the art, the specific meaning of the above terms in the utility model can be understood according to the specific circumstances.

[0124] In the description of the present specification, the description referring to the terms "one embodiment", "some embodiments", "an example", "a specific example", or "some examples" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any appropriate manner in any one or more embodiments or examples. Furthermore, the person skilled in the art can combine and combine the different embodiments or examples described in the present specification and the features of the different embodiments or examples, without mutual contradiction.

[0125] Although the embodiments of the present application have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the present application, and the scope of the present application is defined by the claims and their equivalents.

Claims

1. A press production line simulation apparatus (100) for simulating and demonstrating a production line of press forming of a panel, the production line comprising a plurality of processes arranged in series along a conveying direction of the production line, the plurality of processes including a feeding process, at least one press process, and a discharging process, characterized in that, The stamping production line simulation device (100) comprises: an exhibition stand (10) provided with at least one display opening (11) corresponding to the stamping process one by one; at least one simulation stamping device (20) corresponding to the display opening (11) one by one, the simulation stamping device (20) comprising: a simulation stamping part (21) arranged on the upper side of the exhibition stand (10), and a bearing part (22) arranged on the lower side of the exhibition stand (10); a plurality of simulation plate parts (90) comprising raw plate parts before stamping and formed plate parts after stamping of any of the stamping processes, the simulation plate parts (90) being configured to be supported on the bearing part (22), and the simulation stamping part (21) being adapted to cooperate with the bearing part (22) to simulate stamping of the simulation plate parts (90); a first transfer device (30) configured to transfer the simulation plate parts (90) in the upstream process of the adjacent two processes to the bearing part (22) of the downstream process along the conveying direction of the production line, so as to serve as the raw plate parts of the downstream process; a second transfer device (40) configured to transfer the simulation plate parts (90) in the downstream process of the adjacent two processes to the simulation stamping device (20) of the upstream process along the conveying direction, so as to serve as the formed plate parts of the upstream process.

2. The press line simulation apparatus (100) according to claim 1, characterized in that The second transfer device (40) comprises: a carrier disc (41), the bearing part (22) being arranged on the carrier disc (41); a first driving mechanism (42) connected with the carrier disc (41) and used for driving the carrier disc (41) to move up and down; a second driving mechanism (43) connected with the carrier disc (41) and used for driving the carrier disc (41) to move between the adjacent two processes along the conveying direction.

3. The press line simulation apparatus (100) according to claim 2, characterized in that The first driving mechanism (42) comprises a first driving motor (421), a gear and a rack, the gear being connected with the motor shaft of the first driving motor (421), the rack being engaged with the gear, and the first driving motor (421) driving the carrier disc (41) to move up and down through the gear and the rack.

4. The press line simulation apparatus (100) according to claim 3, characterized in that The first driving mechanism (42) further comprises: a follow-up plate (422), the rack extending in the horizontal direction and being fixed on the follow-up plate (422); a support rod (423) extending vertically, the carrier disc (41) being arranged on the support rod (423); A transmission rod (424) is rotatably connected to the follower plate (422) and the support rod (423) at two ends respectively, and the first driving motor (421) drives the follower plate (422) to move in the horizontal direction through the rack, so that the follower plate (422) drives the support rod (423) to move in the up-down direction through the transmission rod (424).

5. The press line simulation apparatus (100) according to claim 4, characterized in that The follower plate (422) and the rack extend along the conveying direction, the number of the carrier plates (41) is multiple and arranged in sequence along the conveying direction, and the number of the support rods (423) and the transmission rods (424) is multiple and corresponds to the multiple carrier plates (41) one by one.

6. The press line simulation apparatus (100) according to claim 4, characterized in that The first driving mechanism (42) further comprises a first fixed seat (425), one of the first fixed seat (425) and the follower plate (422) is provided with a first guide rail, and the other is provided with a first sliding block in sliding fit with the first guide rail, the follower plate (422) is arranged on the first fixed seat (425) through the first sliding block and the first guide rail, and is slidable relative to the first fixed seat (425) along the conveying direction.

7. The press line simulation apparatus (100) according to claim 4, characterized in that The first driving mechanism (42) further comprises a second fixed seat (426), one of the second fixed seat (426) and the support rod (423) is provided with a second guide rail, and the other is provided with a second sliding block in sliding fit with the second guide rail, the support rod (423) is arranged on the second fixed seat (426) through the second sliding block and the second guide rail, and is slidable relative to the second fixed seat (426) along the up-down direction.

8. The press line simulation apparatus (100) according to claim 2, characterized in that The second driving mechanism (43) comprises: A slide rail (431) extending along the conveying direction; A connecting plate (432) extending vertically and slidably arranged on the slide rail (431) along the conveying direction, the carrier plate (41) is arranged on the connecting plate (432); A first driving member (433) connected with the connecting plate (432) for driving the connecting plate (432) to move along the conveying direction.

9. The press line simulation apparatus (100) according to claim 8, characterized in that The second driving mechanism (43) further comprises a guide plate (434) extending along the conveying direction, and the carrier plate (41) is slidably arranged on the guide plate (434).

10. The press line simulation apparatus (100) according to claim 9, characterized in that A limiting block (435) is arranged on the guide plate (434), and the limiting block (435) is configured to limit the horizontal movement of the carrier plate (41) in the conveying direction.

11. The press line simulation apparatus (100) of claim 1, characterized in that, The first transfer device (30) comprises a plurality of clamping mechanisms arranged between adjacent two processes, and the clamping mechanisms are used for grabbing the simulation plate (90) in the upstream process to the carrier (22) in the downstream process.

12. The press line simulation apparatus (100) of claim 1, characterized in that, The simulation stamping piece (21) is movable between an initial position and a stamping position in the up-down direction, and the simulation stamping piece (21) covers the corresponding display opening (11) in the stamping position. The simulation stamping piece (21) in the stamping position is located below the simulation stamping piece (21) in the initial position.

13. The press line simulation apparatus (100) according to claim 12, characterized in that The first transfer device (30) is configured to transfer the simulation plate piece (90) of an upstream process to the carrier (22) of a downstream process when the simulation stamping piece (21) is in the initial position. The second transfer device (40) is configured to transfer the simulation plate piece (90) of a downstream process to the simulation stamping device (20) of an upstream process when the simulation stamping piece (21) is in the stamping position.

14. The press line simulation apparatus (100) according to claim 13, characterized in that The simulation stamping piece (21) has an initial state and a magnetic attraction state. In the initial state, the simulation stamping piece (21) has no magnetic attraction. In the magnetic attraction state, the simulation stamping piece (21) is suitable for attracting the simulation plate piece (90) to fix the simulation plate piece (90) on the simulation stamping piece (21).

15. The press line simulation apparatus (100) according to claim 14, characterized in that Further comprising: A detection sensor (50) for detecting whether the formed plate piece reaches the corresponding simulation stamping device (20), The simulation stamping piece (21) is configured to switch to the magnetic attraction state when the detection sensor (50) detects that the formed plate piece reaches the simulation stamping device (20) of the corresponding process.

16. The press line simulation apparatus (100) of claim 12, characterized in that, The simulation stamping device (20) further comprises: A mounting seat (61) provided on the upper side of the exhibition stand (10), and the simulation stamping piece (21) is movably arranged on the mounting seat (61) in the up-down direction; A second driving member (62) and a transmission member (63) are arranged in the mounting seat (61), and the second driving member (62) is connected with the simulation stamping piece (21) through the transmission member (63) and used to drive the simulation stamping piece (21) to move between the initial position and the stamping position.

17. The press line simulation apparatus (100) of claim 12, characterized in that, The carrier (22) is located in the display opening (11) to carry and display the simulation plate piece (90) when the simulation stamping piece (21) is in the initial position.

18. The press line simulation apparatus (100) of claim 1, wherein, Further comprising: An output display device (71) arranged downstream of the exhibition stand (10) in the conveying direction, and the output display device (71) is used to receive and output the formed plate piece after processing; A sending back device (72) arranged between the output end of the output display device (71) and the most downstream simulation stamping device (20) in the conveying direction, and the sending back device (72) is used to convey the formed plate piece to the most downstream simulation stamping device (20).

19. The press line simulation apparatus (100) according to claim 18, characterized in that The output display device (71) is a belt conveying device, the returning device (72) comprises a belt conveying mechanism (721) and a grabbing mechanism (722), the belt conveying mechanism (721) is arranged on the lower side of the belt conveying device, and the conveying direction of the belt conveying device is opposite to the conveying direction of the belt conveying mechanism (721), the grabbing mechanism (722) is arranged between the output end of the belt conveying mechanism (721) and the most downstream simulation stamping device (20), and is used for transferring the formed plate piece on the belt conveying mechanism (721) to the carrier (22) of the most downstream simulation stamping device (20).

20. The press line simulation apparatus (100) of claim 19, characterized in that, Further comprising: A lifting platform (81) is arranged at the output end of the output display device (71), the lifting platform (81) can be lifted in the up-down direction, the lifting platform (81) is used for receiving the formed plate piece output by the output display device (71) and conveying the formed plate piece to the input end of the belt conveying mechanism.

21. The press line simulation apparatus (100) of claim 1, wherein, One end of the exhibition stand (10) in the conveying direction is provided with a raw material placing area (12), and at least one raw material plate piece is placed in the raw material placing area (12).