Auxiliary mechanism for cupel production and processing
By designing an auxiliary mechanism for the production and processing of ash dishes including a workbench, a transfer plate, a transfer mechanism, a clamping mechanism, a transmission mechanism and a handling mechanism, the problem of manual handling of ash dishes after production and processing is solved, automatic handling is realized, and efficiency is improved.
Patent Information
- Application Number
- CN202510366539.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-26
- Publication Date
- 2025-06-20
AI Technical Summary
After the ash dish is produced and processed, the staff need to manually carry the ash dish, which is time-consuming and labor-intensive and inefficient.
Design an auxiliary mechanism for the production and processing of ash dishes, including a workbench, a transfer plate, a transfer mechanism, a clamping mechanism, a transmission mechanism and a handling mechanism, through which the automatic clamping, transmission and handling of ash dishes are realized, avoiding manual manual operation.
The automatic handling of gray dishes is realized, which reduces manpower, improves production and processing efficiency, and ensures the stability and safety of gray dishes during transportation.
Smart Images

Figure CN120172008A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of ashtray production and processing, and in particular to an ashtray production and processing auxiliary mechanism. Background Art
[0002] The ash tray is a porous refractory container used to absorb lead oxide when blowing lead buttons.
[0003] At present, after the ash dishes are produced and processed, they are taken out for drying, air-drying and standing, which usually requires manual movement and transportation. The staff manually carry the produced ash dishes one by one, which is time-consuming, labor-intensive and inefficient. A solution is proposed below to the above problems. Summary of the invention
[0004] The purpose of the present invention is to provide an auxiliary mechanism for the production and processing of ash dishes, which solves the problem of time-consuming, labor-intensive and inefficient transportation of ash dishes after production and processing by workers through a transfer mechanism, a handling mechanism and a clamping mechanism.
[0005] The above technical objectives of the present invention are achieved through the following technical solutions: A production and processing auxiliary mechanism for ash dishes, comprising a workbench, a transfer plate, a transfer mechanism, a clamping mechanism, a transmission mechanism and a conveying mechanism; the transfer plate is movably installed on the workbench, and is used as a carrier to receive the ash dishes, and the transfer plate is divided into a clamping part and a connecting part; the transfer mechanism is installed on the transfer plate, and is used to cooperate with the conveying mechanism for transfer; the clamping mechanism is installed on the transfer plate, and is used to clamp the ash dishes on the workbench; the conveying mechanism is installed on the workbench, and is used to move the ash dishes on the transfer plate; the transmission mechanism and the transfer mechanism are locked by a locking piece; the conveying mechanism is installed on one side of the workbench, and is used to connect several transfer plates, and the connecting part on the transfer plate and the conveying mechanism are fastened by a magnetic suction piece.
[0006] By adopting the above technical scheme, the ash dish is formed through production and processing, and is automatically clamped by the clamping mechanism on the transfer plate. The ash dish is transported from the processed side to the handling mechanism by the transmission mechanism. During transportation, the transfer mechanism can effectively cooperate with the transfer plate to ensure the stability of the transfer plate during transportation. The handling mechanism can carry multiple groups of ash dishes placed on the transfer plate after production and processing. The transportation method can avoid manual operation, reduce manpower labor, and improve the efficiency of the ash dish in production and processing.
[0007] Preferably, the transfer mechanism includes a hinge and wheels, the hinge is installed in a movable groove opened at the bottom of the transfer plate, and the wheel is installed on the hinge.
[0008] By adopting the above technical solution, the hinges and wheels cooperate to facilitate the rotation of the wheels, and the movable grooves allow the wheels to rotate. When the wheels are arranged vertically at the bottom of the transfer plate, the wheels can be positioned in coordination with the transmission mechanism. When the wheels are stored in the movable grooves, it is convenient to manually take the transfer plate.
[0009] Preferably, the clamping mechanism comprises wedge block one, a spring, wedge block two, a clamping plate and a clamping transmission member, a guide groove is provided on the transfer plate, and both wedge block one and wedge block two move in the guide groove; the clamping transmission member is used to drive wedge block one to move in the guide groove and is installed on the transfer plate; wedge block two is slidably arranged in the guide groove and touches wedge block one; one end of the spring is connected to wedge block two, and the other end of the spring is connected to the clamping plate, and the clamping plate is slidably arranged in the guide groove.
[0010] By adopting the above technical scheme, the clamping transmission member, the spring, the wedge block one, the wedge block two and the splint are all arranged on both sides of the ash tray, and the two sides of each ash tray can correspond to the position of the splint. The clamping transmission member drives the wedge block one to move in the guide groove, the wedge block two and the wedge block one abut against each other, and the wedge block one drives the wedge block two and the splint to move, so that the splint moves toward the ash tray, and vice versa, the splint moves away from the ash tray. The spring between the wedge block two and the splint can play a certain buffering effect when clamping the ash tray to prevent the ash tray from being damaged by excessive clamping force.
[0011] Preferably, the clamping transmission component includes bevel gear 1, bevel gear 2, a transmission rod, a screw and a control motor, the control motor is installed on the transfer plate, the transmission rod is connected to the output shaft of the control motor and the transmission rod and the transfer plate are rotationally matched, the bevel gear 1 is installed on the transmission rod, the bevel gear 2 is installed on the screw and the bevel gear 2 and the bevel gear 1 are meshed with each other, the screw passes through the wedge block 1 and the transfer plate are rotationally matched, and the screw and the wedge block 1 are threadedly matched.
[0012] By adopting the above technical solution, after the control motor is started, the output shaft of the control motor drives the transmission rod and bevel gear one to rotate, and the bevel gear two meshing on the bevel gear one transmits the transmission, and the bevel gear two drives the screw rod one to rotate together, and each screw rod and the transmission rod are connected through the bevel gear one and the bevel gear two. After the screw rod is transmitted, it drives the wedge block one to slide in the guide groove, and the position of the wedge block one moves, thereby driving the position of the wedge block two to be squeezed.
[0013] Preferably, a slide groove is provided on the workbench, and the transmission mechanism includes a servo motor, a screw rod and a slider. The screw rod passes through the slider and is rotatably arranged in the slide groove. The screw rod and the slider are threadedly matched, and the servo motor is installed at one end of the screw rod that passes through the workbench.
[0014] With the above technical solution, after being driven by the servo motor, the output shaft of the servo motor drives the lead screw in the chute to rotate. After the lead screw rotates, it drives the slider to move in the chute, and the movement of the slider drives the components connected to the top of the slider to achieve position movement together.
[0015] Preferably, the locking member includes a locking block, an electric telescopic rod and a guide block. The locking block is rotatably installed on the slider. When the locking blocks are mutually attached, the locking block and the wheel are clamped tightly. The guide block is slidably arranged in the limiting groove provided on the workbench. One end of the electric telescopic rod is hinged with the guide block, and the other end of the electric telescopic rod is hinged with the locking block.
[0016] With the above technical solution, there are also matte lines on the top of the slider, which can increase the friction with the wheel and reduce the movement during placement. When the electric telescopic rod contracts, the electric telescopic rod drives the locking block to flip open to both sides of the wheel, so that the locking block releases the locking effect on the wheel. When the electric telescopic rod extends, the locking blocks on both sides of the wheel approach and fit together, so that the locking block can lock the wheel.
[0017] Preferably, the handling mechanism includes a support plate, a rotating motor, a spiral shaft and an inclined rack. The support plate is placed on one side of the workbench. The rotating motor is arranged on the support plate. A moving groove is opened on the support plate. The magnetic attraction member is installed in the moving groove. The spiral shaft is rotatably installed in the moving groove and the spiral shaft is fixed to the rotating motor. The inclined rack is installed on the magnetic attraction member and the inclined rack is in meshing transmission with the spiral shaft.
[0018] With the above technical solution, after the rotating motor is started, the output shaft of the rotating motor drives the spiral shaft to rotate in the moving groove. When the spiral shaft and the inclined rack are meshed with each other, the inclined rack and the magnetic attraction member realize movement in the moving groove. The structures of the inclined rack and the spiral shaft are compactly matched and have a certain self-locking property to avoid movement during static placement.
[0019] Preferably, the magnetic attraction member includes an iron block and a magnetic plate. The magnetic plate is installed on the connecting part of the transfer plate. The iron block is installed on the inclined rack. The iron blocks are arranged at equal intervals and slide in the moving groove.
[0020] With the above technical solution, the magnetic plate and the equally spaced iron blocks are mutually attached, enhancing the firmness between the transfer plate and the support plate. Multiple groups of transfer plates can be connected to the support plate to realize the carrying and placement of multiple groups of transfer plates. The transfer plates arranged vertically on the support plate can be equally spaced apart from each other to avoid mutual collision during transfer, making the space placement more scientific and reasonable.
[0021] Beneficial effects: 1. Control the motor to drive the screw, bevel gear set and transmission rod, as well as several wedge-shaped blocks I connected to the screw. The position of the wedge-shaped block I moves in the guide groove, thereby driving the wedge-shaped block II and the clamping plate to clamp or loosen the ash pan, realizing the function of synchronously clamping multiple ash pans. There is a certain gap distance between the clamping plate and the end face of the workbench, making it more convenient and stable after the ash pan is clamped.
[0022] The clamping mechanism cooperates with the transmission mechanism to accurately position the position of each ash pan, thereby ensuring the tightness during the clamping process.
[0023] The spiral shaft and the inclined rack in the handling mechanism, as well as the iron block and the magnetic plate in the magnetic attraction part, cooperate with each other to ensure the bearing and placement of multiple transfer plates. At the same time, the equidistant placement on one side of the support can avoid interference with each other and prevent the problem of collision. The placement space is more reasonable and scientific, effectively utilizing the space.
[0024] The overall ash pan plays a good auxiliary role in the production, processing and handling process. Compared with the traditional manual handling of each one, it reduces a large amount of labor output and improves the efficiency in the production and processing of the ash pan. Description of the drawings
[0025] Figure 1 It is a schematic structural diagram of the embodiment; Figure 2 It is a cross-sectional view of the embodiment for showing the clamping mechanism and the transmission mechanism; Figure 3 It is an enlarged view in the direction A of the embodiment; Figure 4 It is a cross-sectional view of the embodiment for showing the handling mechanism; Figure 5 It is a cross-sectional view of the embodiment for showing the transfer mechanism; Figure 6 It is a cross-sectional view of the embodiment for showing the transmission mechanism; Figure 7 It is an enlarged view in the direction B of the embodiment; Figure 8 It is an enlarged view in the direction C of the embodiment.
[0026] Reference numerals: 1, workbench; 2, transfer plate; 3, transfer mechanism; 4, clamping mechanism; 5, transmission mechanism; 6, handling mechanism; 7, locking member; 8, magnetic member; 31, hinge member; 32, wheel; 41, wedge-shaped block 1; 42, wedge-shaped block 2; 43, spring; 44, clamping plate; 45, clamping transmission member; 451, bevel gear 1; 452, bevel gear 2; 453, transmission rod; 454, screw rod; 455, control motor; 51, servo motor; 52, lead screw; 53, slider; 71, locking block; 72, electric telescopic rod; 73, guide block; 61, support plate; 62, transfer motor; 63, spiral shaft; 64, inclined rack; 81, iron block; 82, magnetic plate. Embodiment
[0027] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0028] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention. In addition, the terms "first", "second", and "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0029] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, the terms "installation", "connection", and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0030] In addition, the technical features involved in different embodiments of the present invention described below can be combined with each other as long as they do not conflict with each other.
[0031] This embodiment provides an auxiliary mechanism for the production and processing of ash pans, as shown in Figures 1 to 8As shown, the ash tray production and processing auxiliary mechanism includes a workbench 1, a transfer plate 2, a transfer mechanism 3, a clamping mechanism 4, a transmission mechanism 5 and a handling mechanism 6; the transfer plate 2 is movably installed on the workbench 1 and is used as a carrier to receive the ash tray. The transfer plate 2 is divided into a clamping part and a connecting part; the structure of the transfer plate 2 is as shown in Figure 1 As shown in , the shape shown can better clamp and load and unload the ash dish.
[0032] See also Figure 1 and Figure 7 As shown, the transfer mechanism 3 is installed on the transfer plate 2, and is used for cooperation with the transmission mechanism 5 for transfer; the transfer mechanism 3 includes a hinge 31 and a wheel 32, the hinge 31 is installed in a movable groove provided at the bottom of the transfer plate 2, and the wheel 32 is installed on the hinge 31. The hinge 31 and the wheel 32 cooperate to facilitate the rotation of the wheel 32, and the movable groove allows the wheel 32 to rotate. When the wheel 32 is vertically arranged at the bottom of the transfer plate 2, the wheel 32 can cooperate with the transmission mechanism 5 for positioning, and when the wheel 32 is stored and arranged in the movable groove, it is convenient to manually take the transfer plate 2.
[0033] See also Figure 3 As shown, the clamping mechanism 4 is installed on the transfer plate 2 and is used to clamp the ash dish on the workbench 1; the clamping mechanism 4 includes a wedge block 1 41, a spring 43, a wedge block 2 42, a clamping plate 44 and a clamping transmission member 45, and a guide groove is opened on the transfer plate 2, and the wedge block 1 41 and the wedge block 2 42 are both movable in the guide groove; the clamping transmission member 45 is used to drive the wedge block 1 41 to move in the guide groove, and is installed on the transfer plate 2; the wedge block 2 42 is slidably arranged in the guide groove and touches the wedge block 1 41; one end of the spring 43 is connected to the wedge block 2 42, and the other end of the spring 43 is connected to the clamping plate 44, and the clamping plate 44 is slidably arranged in the guide groove.
[0034] The clamping transmission member 45, spring 43, wedge block 1 41, wedge block 2 42 and clamping plate 44 are all arranged on both sides of the ash dish, and both sides of each ash dish can correspond to the position of clamping plate 44. The clamping transmission member 45 drives wedge block 1 41 to move in the guide groove, wedge block 2 42 and wedge block 1 41 abut against each other, wedge block 1 41 drives wedge block 2 42 and clamping plate 44 to move, so that clamping plate 44 moves toward the ash dish, conversely, clamping plate 44 moves away from the ash dish, and the spring 43 between wedge block 2 42 and clamping plate 44 can play a certain buffering effect when clamping the ash dish to prevent the ash dish from being damaged by excessive clamping force.
[0035] See also Figure 3As shown, the clamping transmission member 45 includes a bevel gear 1 451, a bevel gear 2 452, a transmission rod 453, a screw 454 and a control motor 455, the control motor 455 is mounted on the transfer plate 2, the transmission rod 453 is connected to the output shaft of the control motor 455, and the transmission rod 453 and the transfer plate 2 are rotationally matched, the bevel gear 1 451 is mounted on the transmission rod 453, the bevel gear 2 452 is mounted on the screw 454, and the bevel gear 2 452 and the bevel gear 1 451 are meshed with each other, the screw 454 passes through the wedge block 1 41 and the transfer plate 2 is rotationally matched, and the screw 454 and the wedge block 1 41 are threadedly matched.
[0036] After the control motor 455 is started, the output shaft of the control motor 455 drives the transmission rod 453 and the bevel gear 1 451 to rotate, and the bevel gear 2 452 meshing on the bevel gear 1 451 is transmitted, and the bevel gear 2 452 drives the screw 454 to rotate together. Each screw 454 and the transmission rod 453 are connected by the bevel gear 1 451 and the bevel gear 2 452. After the screw 454 is transmitted, it drives the wedge block 1 41 to slide in the guide groove, and the position of the wedge block 1 41 moves, thereby driving the position of the wedge block 2 42 to be squeezed.
[0037] See also Figure 8 As shown, the transmission mechanism 5 is installed on the workbench 1 and is used to move the ash dish on the transfer plate 2; a slide slot is provided on the workbench 1, and the transmission mechanism 5 includes a servo motor 51, a screw rod 52 and a slider 53. The screw rod 52 passes through the slider 53 and is arranged in the slide slot for rotation. The screw rod 52 and the slider 53 are threadedly matched, and the servo motor 51 is installed at one end of the screw rod 52 that passes through the workbench 1. After the servo motor 51 is driven, the output shaft of the servo motor 51 drives the screw rod 52 in the slide slot to rotate, and after the screw rod 52 rotates, it drives the slider 53 to move in the slide slot, and the movement of the slider 53 drives the components connected to the top of the slider 53 to move together.
[0038] See also Figure 7 As shown, the transmission mechanism 5 and the transfer mechanism 3 are locked by a locking member 7; the locking member 7 includes a locking block 71, an electric telescopic rod 72 and a guide block 73. The locking block 71 is rotatably mounted on the slider 53. When the locking blocks 71 fit together, the locking block 71 and the wheel 32 are clamped. The guide block 73 is slidably arranged in a limiting groove provided on the workbench 1. One end of the electric telescopic rod 72 is hingedly matched with the guide block 73, and the other end of the electric telescopic rod 72 is hingedly matched with the locking block 71. The top of the slider 53 also has frosted patterns, which can increase friction between the wheel 32 and reduce movement when placed. When the electric telescopic rod 72 is retracted, the electric telescopic rod 72 drives the locking block 71 to flip and open to both sides of the wheel 32, so that the locking block 71 releases the locking effect on the wheel 32. When the electric telescopic rod 72 is extended, the locking blocks 71 on both sides of the wheel 32 are close to each other, so that the locking block 71 can lock the wheel 32.
[0039] See Figure 4 As shown, the handling mechanism 6 is installed on one side of the workbench 1 and is used to connect a number of transfer plates 2. The connection between the connection part on the transfer plate 2 and the handling mechanism 6 is fastened by a magnetic attraction member 8. The handling mechanism 6 includes a support plate 61, a rotating motor, a screw shaft 63 and an inclined rack 64. The support plate 61 is placed on one side of the workbench 1, and the rotating motor is arranged on the support plate 61. A moving groove is provided on the support plate 61, and the magnetic attraction member 8 is installed in the moving groove. The screw shaft 63 is rotatably installed in the moving groove and the screw shaft 63 is fixed to the rotating motor. The inclined rack 64 is installed on the magnetic attraction member 8 and the inclined rack 64 is in meshing transmission with the screw shaft 63. After the rotating motor is started, the output shaft of the rotating motor drives the screw shaft 63 to rotate in the moving groove. When the screw shaft 63 and the inclined rack 64 are meshed with each other, the inclined rack 64 and the magnetic attraction member 8 are realized to move in the moving groove. The structures of the inclined rack 64 and the screw shaft 63 are compactly matched and have a certain self-locking property to avoid moving when placed statically.
[0040] The magnetic attraction member 8 includes an iron block 81 and a magnetic plate 82. The magnetic plate 82 is installed on the connection part of the transfer plate 2, and the iron block 81 is installed on the inclined rack 64. The iron blocks 81 are arranged at equal intervals and slide in the moving groove. The magnetic plate 82 is in contact with the equally spaced iron blocks 81, enhancing the firmness between the transfer plate 2 and the support plate 61. Multiple groups of transfer plates 2 can be connected to the support plate 61 to realize the carrying and placement of multiple groups of transfer plates 2. The transfer plates 2 arranged vertically on the support plate 61 can be equally spaced from each other to avoid mutual collision during transfer, making the space placement more scientific and reasonable.
[0041] When transferring the fired crucibles after production and processing to be dried and air-dried, the transfer plate 2 is fastened to the transmission mechanism 5 through the locking member 7. The transmission mechanism 5 transports the transfer plate 2 to the side of the crucible for clamping. After the clamping mechanism 4 is started, the clamping mechanism 4 clamps and fastens the crucible. The transmission mechanism 5 is started again, and the transmission mechanism 5 will drive the crucible to be transported to the side of the handling mechanism 6. At this time, the locking member 7 will be released, and the transfer mechanism 3 and the transmission mechanism 5 can move freely. The handling mechanism 6 and the transfer plate 2 are stabilized by relying on the magnetic attraction member 8. The handling mechanism 6 is manually moved to adjust the height of the transfer plate 2, and then the next group of transfer plates 2 and the crucibles on the transfer plate 2 are handled.
[0042] In summary, the control motor 455 drives the screw rod 454, the bevel gear set and the transmission rod 453, as well as a number of wedge-shaped blocks 41 connected to the screw rod 454. The position of the wedge-shaped block 41 in the guide groove moves, thereby driving the wedge-shaped block 42 and the clamping plate 44 to clamp or release the ash pan. The function of synchronously clamping multiple ash pans is realized. There is a certain clearance distance between the clamping plate 44 and the end face of the workbench 1, and the ash pan is more convenient and stable after being clamped. The clamping mechanism 4 cooperates with the transmission mechanism 5 to accurately position the position of each ash pan, thereby ensuring the tightness during the clamping process. The spiral shaft 63 and the inclined rack 64 in the handling mechanism 6, as well as the iron block 81 and the magnetic plate 82 in the magnetic attraction member 8, can cooperate with each other to ensure the bearing and placement of multiple sets of transfer plates 2. At the same time, they can be placed equidistantly on one side and can not interfere with each other, avoiding the problem of impact, and the placement space is more reasonable and scientific, effectively utilizing the space. The overall ash pan plays a good auxiliary role in the production, processing and handling process. Compared with the traditional manual handling of each ash pan, it reduces a large amount of labor output and improves the efficiency in the production and processing of the ash pan.
[0043] Obviously, the above embodiments are only examples clearly described and not limitations on the implementation manners. For those of ordinary skill in the art, other different forms of changes or variations can be made based on the above description. It is not necessary and impossible to list all the implementation manners here. And the obvious changes or variations derived therefrom are still within the protection scope of the present invention.
Claims
1. An auxiliary mechanism for producing and processing ash trays, characterized in that: It comprises a workbench (1), a transfer plate (2), a transfer mechanism (3), a clamping mechanism (4), a transmission mechanism (5) and a handling mechanism (6); The transfer plate (2) is movably mounted on the workbench (1) and is used as a carrier to receive the ash tray. The transfer plate (2) is divided into a clamping portion and a connecting portion. The transfer mechanism (3) is installed on the transfer plate (2) and is used to cooperate with the transmission mechanism (5) for transfer; The clamping mechanism (4) is installed on the transfer plate (2) and is used to clamp the ash dish on the workbench (1); The transmission mechanism (5) is installed on the workbench (1) and is used to move the ash tray on the transfer plate (2); The transmission mechanism (5) and the transfer mechanism (3) are locked by a locking member (7); The transport mechanism (6) is installed on one side of the workbench (1) and is used to connect a plurality of transfer plates (2). The connection parts on the transfer plates (2) and the transport mechanism (6) are fastened via magnetic suction parts (8).
2. The ash tray production and processing auxiliary mechanism according to claim 1, characterized in that: The transfer mechanism (3) comprises a hinge (31) and wheels (32); the hinge (31) is installed in a movable groove provided at the bottom of the transfer plate (2); and the wheels (32) are installed on the hinge (31).
3. The ash tray production and processing auxiliary mechanism according to claim 1, characterized in that: The clamping mechanism (4) comprises a wedge-shaped block (41), a spring (43), a wedge-shaped block (42), a clamping plate (44) and a clamping transmission member (45); a guide groove is provided on the transfer plate (2), and the wedge-shaped block (41) and the wedge-shaped block (42) are both movable in the guide groove; the clamping transmission member (45) is used to drive the wedge-shaped block (41) to move in the guide groove, and is installed on the transfer plate (2); the wedge-shaped block (42) is slidably arranged in the guide groove and contacts with the wedge-shaped block (41); one end of the spring (43) is connected to the wedge-shaped block (42), and the other end of the spring (43) is connected to the clamping plate (44), and the clamping plate (44) is slidably arranged in the guide groove.
4. The ash tray production and processing auxiliary mechanism according to claim 3 is characterized in that: The clamping transmission member (45) comprises a bevel gear 1 (451), a bevel gear 2 (452), a transmission rod (453), a screw rod (454) and a control motor (455); the control motor (455) is mounted on the transfer plate (2); the transmission rod (453) is connected to the output shaft of the control motor (455) and the transmission rod (453) and the transfer plate (2) are rotationally matched; the bevel gear 1 (451) is mounted on the transmission rod (453); the bevel gear 2 (452) is mounted on the screw rod (454) and the bevel gear 2 (452) and the bevel gear 1 (451) are meshed with each other; the screw rod (454) passes through the wedge block 1 (41) and the transfer plate (2) and is rotationally matched; the screw rod (454) and the wedge block 1 (41) are threadedly matched.
5. The ash tray production and processing auxiliary mechanism according to claim 2, characterized in that: The workbench (1) is provided with a slide groove, and the transmission mechanism (5) comprises a servo motor (51), a screw rod (52) and a slider (53). The screw rod (52) passes through the slider (53) and is rotatably arranged in the slide groove. The screw rod (52) and the slider (53) are threadedly matched, and the servo motor (51) is installed at one end of the screw rod (52) that passes through the workbench (1).
6. The ash tray production and processing auxiliary mechanism according to claim 5, characterized in that: The locking member (7) comprises a locking block (71), an electric telescopic rod (72) and a guide block (73); the locking block (71) is rotatably mounted on the slider (53); when the locking blocks (71) are in contact with each other, the locking block (71) and the wheel (32) are clamped; the guide block (73) is slidably arranged in a limiting groove provided on the workbench (1); one end of the electric telescopic rod (72) is hingedly matched with the guide block (73); and the other end of the electric telescopic rod (72) is hingedly matched with the locking block (71).
7. The ash tray production and processing auxiliary mechanism according to claim 1, characterized in that: The transport mechanism (6) comprises a support plate (61), a rotating motor, a screw shaft (63) and a bevel gear rack (64); the support plate (61) is placed on one side of the workbench (1); the rotating motor is arranged on the support plate (61); a movable groove is provided on the support plate (61); the magnetic attraction member (8) is installed in the movable groove; the screw shaft (63) is rotatably installed in the movable groove and the screw shaft (63) and the rotating motor are fixed; the bevel gear rack (64) is installed on the magnetic attraction member (8) and the bevel gear rack (64) and the screw shaft (63) are meshed for transmission.
8. The ash tray production and processing auxiliary mechanism according to claim 7, characterized in that: The magnetic attraction member (8) comprises an iron block (81) and a magnetic plate (82), wherein the magnetic plate (82) is mounted on the connecting portion of the transfer plate (2), and the iron block (81) is mounted on the bevel rack (64), and the iron blocks (81) are equidistantly spaced and slidably arranged in the movable groove.