Powder puff box cutting processing device
By designing the puff box cutting and processing device, the full-page flip and locking drive mechanism is used to achieve efficient and high-precision processing of multiple puff boxes, solving the problem of mismatch between efficiency and accuracy in the prior art, and improving the processing effect of the puff box.
Patent Information
- Application Number
- CN202510754394.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-06
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-06-06
AI Technical Summary
In the prior art, the processing efficiency of the puff box is low and the accuracy does not match. Multi-process switching and multiple clamping lead to a decrease in production efficiency, making it difficult to meet actual needs.
A powder puff box cutting processing device is designed, including a processing frame, a protective cover, a full-page transport mechanism and a flip mechanism. The locking drive mechanism realizes stable clamping and high-precision moving processing of the powder puff box. The full-page flip mechanism cooperates with the cutting mechanism to perform synchronous processing of multiple powder puff boxes.
The processing efficiency and accuracy of the puff box are improved, the high added value of each puff box is ensured, the processing time is reduced, and the production efficiency is improved.
Smart Images

Figure CN120394952A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of intelligent manufacturing equipment industry, and particularly to a puff box cutting and processing device. Background Art
[0002] In the modern makeup field, as a commonly used makeup tool, the storage box (puff box) of a puff has dual functions of practicality and decoration. The core requirements of a puff box lie in the geometric accuracy of its internal space (such as the size, shape, depth, and edge flatness of the cavity) and the surface finish of the inner and outer surfaces. This directly relates to the fit of the puff, the convenience of taking and placing, the storage tightness, and the overall product grade. Currently, the materials of puff boxes are mostly blanks formed by metals (such as aluminum alloy, zinc alloy, etc.) and plastics (such as PP, PET, ABS, etc.). The puff box blanks need to undergo further cutting and processing (usually milling or precision cutting) to complete the final forming and precision finishing of the key surfaces.
[0003] The key parts of puff box cutting and processing include: the precise inner cavity for accommodating the puff and powder cake inside the box body, the snap or threaded interface surface where the box lid and the box body fit tightly, the chamfer or rounding treatment of the product edge, and the flat area for printing brand logos or decorative patterns. The processing requirements for these precision parts are extremely high, requiring dimensional tolerance control at the micron level and surface roughness at the mirror or matte level to ensure smooth taking and placing of the puff, a tight fit of the box lid without any jamming, and no obvious processing marks or defects visually.
[0004] In the prior art, due to the increasing demand for the processing accuracy of puff boxes, multi-axis computer numerical control (CNC) milling machines or machining centers are often used for processing. A complete puff box often contains multiple areas that require precision machining (inner cavity, outer contour, bayonet, chamfer, etc.), and they are usually not in the same plane and need to be flipped and re-clamped for processing. Although traditional multi-axis CNC can complete the processing of multiple features through tool change and multi-axis linkage, the cumulative conversion time of processes such as switching required for different areas of processing results in a decrease in production efficiency. Problems such as multi-process switching, multiple clamping, the inherent low speed and inefficiency of finishing, and the waste of complex paths lead to a mismatch between the overall processing time and processing accuracy of the puff box, making it difficult to meet the actual production requirements for the processing efficiency of the puff box. Summary of the Invention
[0005] In view of the deficiencies of the prior art, the present invention provides a puff box cutting and processing device.
[0006] To solve the above technical problems, the present invention provides the following technical solutions:
[0007] A puff box cutting and processing device includes a processing frame and a protective hood. A transfer opening is provided on the front of the protective hood. On one side of the top of the processing frame away from the transfer opening, a lifting mounting frame is provided, and a position adjustment mechanism is arranged inside the lifting mounting frame; the position adjustment mechanism can drive a cutting mechanism to move inside the protective hood. A whole-plate transportation mechanism and a whole-plate flipping mechanism are arranged on the top of the processing frame. A workpiece tray is arranged inside the whole-plate flipping mechanism, and a number of puff boxes to be cut and processed can be stored inside the workpiece tray; the whole-plate transportation mechanism can drive the whole-plate flipping mechanism to drive the workpiece tray to move bidirectionally along the workpiece conveying path between the output position and the processing position. A locking drive mechanism is further arranged at the top of the whole-plate flipping mechanism; during the process of the workpiece tray moving from the output position to the processing position, the locking drive mechanism can drive the locking between the workpiece tray and the whole-plate flipping mechanism, and at the same time, the locking drive mechanism drives the locking between each puff box stored in the workpiece tray and the workpiece tray; during the process of the workpiece tray moving from the processing position to the output position, the locking drive mechanism can drive the unlocking between the workpiece tray and the whole-plate flipping mechanism, and at the same time, the locking drive mechanism drives the unlocking between each puff box stored in the workpiece tray and the workpiece tray.
[0008] Preferably, the whole-plate transportation mechanism includes a transportation base, a linear drive guide rail and a mounting support. The whole-plate flipping mechanism includes a connection frame, a flipping drive unit and a flipping frame; the transportation base is fixed on the top of the processing frame, the bottom end of the linear drive guide rail is fixed to the transportation base, and the linear drive guide rail can drive the mounting support to move along the workpiece conveying path; the connection frame is fixed to the mounting support, the flipping frame is rotatably connected to the connection frame, and the flipping drive unit can drive the flipping frame to flip 180° around the connection frame each time.
[0009] Preferably, the workpiece tray includes a tray main body. A number of workpiece clamping grooves are arranged inside the tray main body, and tray locking frames are respectively arranged on both sides of the tray main body; a number of locking limit grooves are opened at the top of the flipping frame, and a locking drive pin is slidably arranged inside each locking limit groove; a locking groove is opened on one side of the tray locking frame close to the flipping frame, and each locking drive pin can extend into the corresponding locking groove under the drive of the locking drive mechanism to lock the flipping frame and the tray main body.
[0010] Preferably, at least two bidirectional clamping groups are further arranged inside the tray body. Each bidirectional clamping group includes a forward clamping frame and a reverse clamping frame, and the bidirectional clamping groups are arranged in a staggered manner; while the locking drive pin extends into the locking groove, the forward clamping frame and the reverse clamping frame move in opposite directions, and the workpiece is clamped in the center of the workpiece clamping groove by a part of the forward clamping frame and a part of the reverse clamping frame extending into the workpiece clamping groove.
[0011] Preferably, the locking drive mechanism includes two symmetrically arranged locking drive plates, which are respectively fixed between each of the locking drive pins on the same side. A locking drive air cylinder is arranged on one side of the locking drive plate; each of the locking drive air cylinders can synchronously extend and retract, and simultaneously drive each of the locking drive pins to move; during the process of the workpiece tray moving from the output position to the processing position, each of the locking drive air cylinders extends synchronously, driving each of the locking drive pins to slide along the locking limit groove and extend into the corresponding locking groove; during the process of the workpiece tray moving from the processing position to the output position, each of the locking drive air cylinders shortens synchronously, driving each of the locking drive pins to slide along the locking limit groove and disengage from the corresponding locking groove.
[0012] Preferably, a clamping drive gear is further arranged inside the tray body. The two sides of the clamping drive gear are respectively in gear engagement with the forward clamping frame and the reverse clamping frame; a locking drive gear is further arranged on the clamping drive gear, and the clamping drive gear and the locking drive gear are coaxially fixed. After the locking drive pin extends into the corresponding locking groove, the locking drive pin is in gear engagement with the locking drive gear.
[0013] Preferably, the lifting and mounting frame includes a mounting frame and a lifting drive guide rail, and the position adjustment mechanism includes a lateral drive guide rail and a longitudinal drive guide rail; the lifting drive guide rail is fixed inside the mounting frame, and the lifting drive guide rail can drive the lateral drive guide rail to perform lifting movement, the lateral drive guide rail can drive the longitudinal drive guide rail to perform lateral movement, and the longitudinal drive guide rail can drive the cutting mechanism to perform longitudinal movement.
[0014] Preferably, the cutting mechanism includes a cutting fixed bracket, a cutting mounting guide rod and a cutting drive motor. The longitudinal drive guide rail can drive the cutting fixed bracket to move, and a cutting tool can be installed inside the cutting mounting guide rod; the cutting mounting guide rod is rotatably connected to the cutting fixed bracket, and the cutting drive motor is power-connected to the cutting mounting guide rod.
[0015] Preferably, debris collection hoppers are respectively arranged at the top of the processing frame and on both sides of the full-page transportation mechanism. A separation channel is arranged at the bottom of the debris collection hopper. A separation collection drawer is slidably arranged inside the separation channel. A chip collection pump is arranged at one end of the separation channel away from the debris collection hopper. The chip collection pump can provide the power for the chips generated by cutting to be collected in the separation collection drawer after passing through the debris collection hopper and the separation channel.
[0016] Preferably, the protective hood includes a fixed hood and a sliding hood door. The sliding hood door is slidably connected to the fixed hood. The sliding hood door can open and close the transfer opening. Only when the sliding hood door opens the transfer opening, the full-page transportation mechanism can drive the full-page flipping mechanism to drive the workpiece tray to move along the workpiece conveying path.
[0017] Compared with the prior art, the present invention provides a powder puff box cutting and processing device, which has the following beneficial effects:
[0018] 1. For this powder puff box cutting and processing device, when the workpiece tray carries a plurality of powder puff box blanks and moves to the processing position, the position adjustment mechanism installed on the lifting mounting frame can drive the cutting mechanism to move inside the protective hood. By the movement of the cutting mechanism, in cooperation with the full-page flipping mechanism, the outer walls, inner walls, ends, etc. of the powder puff boxes locked inside the workpiece tray are processed. Through the locking between each powder puff box and the workpiece tray, the positions of each powder puff box are relatively fixed, and high-precision processing such as precision carving and precision grinding of the powder puff box can be carried out in cooperation with the high-precision movement of the cutting mechanism. Furthermore, the beauty degree of the processed powder puff boxes can be improved, generating higher added value. At the same time, with a plurality of powder puff box blanks carried by the workpiece tray at one time, multiple powder puff boxes can be cut and processed in one processing stage, effectively ensuring the processing efficiency of the powder puff boxes.
[0019] 2. In the process of the workpiece tray moving from the output position to the processing position, each locking drive air cylinder extends synchronously, thereby driving the locking drive plate to move towards the central position of the workpiece tray. Furthermore, it can drive each locking drive pin fixed to the locking drive plate to slide along the locking limit groove and extend into the corresponding locking groove, so as to lock the flipping frame and the workpiece tray. After the locking drive pin extends into the locking groove, the locking drive pin meshes with the locking drive gear. During the continuous movement of the locking drive pin, it drives the locking drive gear to drive the corresponding clamping drive gear to rotate. Then, through the gear meshing between both sides of the clamping drive gear and the forward clamping frame and the reverse clamping frame, it drives the forward clamping frame and the reverse clamping frame to approach each other. Furthermore, through the cooperation of multiple two-way clamping groups, the workpiece is clamped in the center of the workpiece clamping groove by each forward clamping frame and each reverse clamping frame extending into the workpiece clamping groove, and each powder puff box is locked with the workpiece tray. Thus, it can effectively ensure the stability of the cutting mechanism moving to perform cutting processing on the powder puff box, guarantee the processing accuracy of the powder puff box, and improve the processing effect of the powder puff box.
[0020] 3. In the process of the workpiece tray moving from the processing position to the output position, the locking drive mechanism can drive the unlocking between the workpiece tray and the full-page flipping mechanism, and at the same time, the locking drive mechanism drives the unlocking between each powder puff box stored in the workpiece tray and the workpiece tray, so as to facilitate the removal of the processed powder puff box and provide a larger placement space to place the uncut powder puff box blanks in each workpiece clamping groove, thereby improving the processing efficiency of the powder puff box. Brief Description of the Drawings
[0021] Figure 1 It is one of the three-dimensional structure diagrams of a powder puff box cutting and processing device of the present invention;
[0022] Figure 2 It is the second three-dimensional structure diagram of a powder puff box cutting and processing device of the present invention;
[0023] Figure 3 It is the three-dimensional structure diagram of a powder puff box cutting and processing device of the present invention with the protective cover removed;
[0024] Figure 4 It is the three-dimensional structure diagram of a powder puff box cutting and processing device of the present invention with the processing frame and the protective cover removed;
[0025] Figure 5 It is the three-dimensional structure diagram of the lifting mounting frame, position adjustment mechanism and cutting mechanism of a powder puff box cutting and processing device of the present invention;
[0026] Figure 6Schematic three-dimensional structure diagram of the position adjustment mechanism and the cutting mechanism of a powder puff box cutting and processing device according to the present invention;
[0027] Figure 7 Schematic three-dimensional structure diagram of the full-plate transportation mechanism, full-plate flipping mechanism, workpiece tray and locking drive mechanism of a powder puff box cutting and processing device according to the present invention;
[0028] Figure 8 Schematic three-dimensional structure diagram of the full-plate flipping mechanism, workpiece tray and locking drive mechanism of a powder puff box cutting and processing device according to the present invention;
[0029] Figure 9 Schematic three-dimensional structure diagram of the workpiece tray and locking drive mechanism of a powder puff box cutting and processing device according to the present invention;
[0030] Figure 10 Schematic internal structure diagram one of the workpiece tray of a powder puff box cutting and processing device according to the present invention;
[0031] Figure 11 Schematic internal structure diagram two of the workpiece tray of a powder puff box cutting and processing device according to the present invention.
[0032] In the figure: 1. Processing machine frame; 11. Debris collection hopper; 12. Separation channel; 13. Separation collection drawer; 14. Chip collection pump; 2. Protective machine cover; 21. Transfer opening; 22. Fixed cover; 23. Sliding cover door; 3. Lifting mounting frame; 31. Mounting frame; 32. Lifting drive guide rail; 4. Position adjustment mechanism; 41. Transverse drive guide rail; 42. Longitudinal drive guide rail; 5. Cutting mechanism; 51. Cutting fixed bracket; 52. Cutting installation guide rod; 53. Cutting drive motor; 6. Full-plate transportation mechanism; 61. Transportation base; 62. Linear drive guide rail; 63. Mounting support; 7. Full-plate flipping mechanism; 71. Connection frame; 72. Flipping drive unit; 73. Flipping frame; 731. Locking limit groove; 732. Locking drive pin; 8. Workpiece tray; 81. Tray main body; 82. Workpiece clamping groove; 83. Tray locking frame; 831. Locking groove; 84. Forward clamping frame; 85. Reverse clamping frame; 86. Clamping drive gear; 87. Locking drive gear; 9. Locking drive mechanism; 91. Locking drive plate; 92. Locking drive air rod. Detailed implementation manners
[0033] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0034] As introduced in the background art, there are deficiencies in the prior art. To solve the above technical problems, the present application proposes a puff box cutting and processing device.
[0035] Embodiment 1:
[0036] Please refer to Figures 1-11 , a puff box cutting and processing device, including a processing frame 1 and a protective hood 2. A transfer opening 21 is provided on the front of the protective hood 2. A lifting mounting frame 3 is provided on one side of the top of the processing frame 1 away from the transfer opening 21. A position adjustment mechanism 4 is provided inside the lifting mounting frame 3; the position adjustment mechanism 4 can drive a cutting mechanism 5 to move inside the protective hood 2. A whole plate transportation mechanism 6 and a whole plate flipping mechanism 7 are provided on the top of the processing frame 1. A workpiece tray 8 is provided inside the whole plate flipping mechanism 7, and a number of puff boxes to be cut and processed can be stored inside the workpiece tray 8; the whole plate transportation mechanism 6 can drive the whole plate flipping mechanism 7 to drive the workpiece tray 8 to move bidirectionally along the workpiece transportation path between the output position and the processing position. A locking drive mechanism 9 is further provided on the top of the whole plate flipping mechanism 7; during the process of the workpiece tray 8 moving from the output position to the processing position, the locking drive mechanism 9 can drive the locking between the workpiece tray 8 and the whole plate flipping mechanism 7, and at the same time, the locking drive mechanism 9 drives the locking between each puff box stored in the workpiece tray 8 and the workpiece tray 8; during the process of the workpiece tray 8 moving from the processing position to the output position, the locking drive mechanism 9 can drive the unlocking between the workpiece tray 8 and the whole plate flipping mechanism 7, and at the same time, the locking drive mechanism 9 drives the unlocking between each puff box stored in the workpiece tray 8 and the workpiece tray 8.
[0037] During specific use, according to the types (sizes, specifications) of the puff boxes to be cut and processed, a suitable workpiece tray 8 can be selected, and the preliminarily machined puff box blanks (puff boxes to be cut and processed) are placed inside the workpiece tray 8. The whole plate transportation mechanism 6 can drive the whole plate flipping mechanism 7 to drive the workpiece tray 8 to move bidirectionally along the workpiece transportation path between the output position and the processing position. During the process of the workpiece tray 8 moving from the output position to the processing position, the locking drive mechanism 9 can drive the locking between the workpiece tray 8 and the whole plate flipping mechanism 7, and at the same time, the locking drive mechanism 9 drives the locking between each puff box stored in the workpiece tray 8 and the workpiece tray 8; during the process of the workpiece tray 8 moving from the processing position to the output position, the locking drive mechanism 9 can drive the unlocking between the workpiece tray 8 and the whole plate flipping mechanism 7, and at the same time, the locking drive mechanism 9 drives the unlocking between each puff box stored in the workpiece tray 8 and the workpiece tray 8;
[0038] When the workpiece tray 8 carries a number of powder puff box blanks and moves to the processing position, the position adjustment mechanism 4 installed on the lifting mounting frame 3 can drive the cutting mechanism 5 to move inside the protective hood 2, so as to process the outer walls, inner walls, ends, etc. of each powder puff box locked inside the workpiece tray 8 through the movement coordination of the cutting mechanism 5 and the whole-plate flipping mechanism 7. Through the locking between each powder puff box and the workpiece tray 8, the positions of each powder puff box are guaranteed to be relatively fixed, and high-precision processing such as fine carving and fine grinding of the powder puff box can be carried out in cooperation with the high-precision movement of the cutting mechanism 5. Furthermore, the delicacy of the processed powder puff boxes can be improved, generating higher added value. At the same time, through a number of powder puff box blanks carried by the workpiece tray 8 at one time, a number of powder puff boxes can be cut in one processing stage, effectively ensuring the processing efficiency of the powder puff boxes.
[0039] Embodiment 2:
[0040] Please refer to Figures 1-11 , which is different from the above embodiment in that the whole-plate transport mechanism 6 includes a transport base 61, a linear drive guide rail 62 and a mounting support 63, and the whole-plate flipping mechanism 7 includes a connection frame 71, a flipping drive unit 72 and a flipping frame 73; the transport base 61 is fixed at the top of the processing frame 1, the bottom end of the linear drive guide rail 62 is fixed to the transport base 61, and the linear drive guide rail 62 can drive the mounting support 63 to move along the workpiece transport path; the connection frame 71 is fixed to the mounting support 63, the flipping frame 73 is rotatably connected to the connection frame 71, and the flipping drive unit 72 can drive the flipping frame 73 to flip 180° around the connection frame 71 each time.
[0041] In specific use, the flipping drive unit 72 includes a flipping motor (the flipping motor is a stepping motor), a flipping shaft seat and a flipping shaft. The flipping shaft is fixed to the flipping frame 73, and the flipping motor can drive the flipping frame 73 to flip 180° around the connection frame 71 each time under control; and through the drive of the linear drive guide rail 62, the mounting support 63 is driven to carry the whole-plate flipping mechanism 7, the workpiece tray 8 and the locking drive mechanism 9 to move along the workpiece transport path, thereby being able to cooperate with the transport and flipping processes of the workpiece tray 8 and the cutting process of the powder puff boxes inside the workpiece tray 8.
[0042] The workpiece tray 8 includes a tray body 81. Inside the tray body 81, a number of workpiece clamping grooves 82 are provided. On both sides of the tray body 81, tray locking frames 83 are respectively provided. At the top of the flipping frame 73, a number of locking limit grooves 731 are provided. Inside each locking limit groove 731, a locking driving pin 732 is slidably provided. On the side of the tray locking frame 83 close to the flipping frame 73, a locking groove 831 is provided. Each locking driving pin 732 can be driven by the locking driving mechanism 9 to extend into the corresponding locking groove 831 to lock between the flipping frame 73 and the tray body 81.
[0043] Inside the tray body 81, at least two bidirectional clamping groups are further provided. Each bidirectional clamping group includes a forward clamping frame 84 and a reverse clamping frame 85. Each bidirectional clamping group is arranged in a staggered manner. While the locking driving pin 732 extends into the locking groove 831, the forward clamping frame 84 and the reverse clamping frame 85 move in opposite directions, clamping the workpiece at the center of the workpiece clamping groove 82 through a part of the forward clamping frame 84 and a part of the reverse clamping frame 85 extending into the workpiece clamping groove 82.
[0044] The locking driving mechanism 9 includes two symmetrically arranged locking driving plates 91. The two locking driving plates 91 are respectively fixed to the respective locking driving pins 732 on the same side. On one side of the locking driving plate 91, a locking driving air cylinder 92 is provided. Each locking driving air cylinder 92 can extend and retract synchronously, driving each locking driving pin 732 to move at the same time. During the process of the workpiece tray 8 moving from the output position to the processing position, each locking driving air cylinder 92 extends synchronously, driving each locking driving pin 732 to slide along the locking limit groove 731 and extend into the corresponding locking groove 831. During the process of the workpiece tray 8 moving from the processing position to the output position, each locking driving air cylinder 92 contracts synchronously, driving each locking driving pin 732 to slide along the locking limit groove 731 and disengage from the corresponding locking groove 831.
[0045] Inside the tray body 81, a clamping driving gear 86 is further provided. On both sides of the clamping driving gear 86, it is in gear engagement with the forward clamping frame 84 and the reverse clamping frame 85 respectively. The clamping driving gear 86 is also provided with a locking driving gear 87. The clamping driving gear 86 and the locking driving gear 87 are coaxially fixed. After the locking driving pin 732 extends into the corresponding locking groove 831, the locking driving pin 732 is in gear engagement with the locking driving gear 87.
[0046] During specific use, when the workpiece tray 8 moves from the output position to the processing position, each locking drive air cylinder 92 extends synchronously, thereby driving the locking drive plate 91 to move towards the central position of the workpiece tray 8. Further, it can drive each locking drive pin 732 fixed to the locking drive plate 91 to slide along the locking limit groove 731 and extend into the corresponding locking groove 831, so as to lock between the flipping frame 73 and the workpiece tray 8 (after locking, it can prevent the flipping frame 73 and the workpiece tray 8 from separating under the drive of the flipping drive unit 72). After the locking drive pin 732 extends into the locking groove 831, the locking drive pin 732 meshes with the locking drive gear 87. During the continuous movement of the locking drive pin 732, it drives the locking drive gear 87 to drive the corresponding clamping drive gear 86 to rotate. Further, through the gear meshing between both sides of the clamping drive gear 86 and the forward clamping frame 84 and the reverse clamping frame 85, it drives the forward clamping frame 84 and the reverse clamping frame 85 to approach each other. Further, through the cooperation of multiple two-way clamping groups, the workpiece is clamped in the center of the workpiece clamping groove 82 by each forward clamping frame 84 and each reverse clamping frame 85 extending into the workpiece clamping groove 82 (during specific use, the forward clamping frame 84 and the reverse clamping frame 85 can also be provided with convex structures capable of supporting the top and bottom of the powder puff box to provide higher clamping stability for the powder puff box), and lock between each powder puff box and the workpiece tray 8. Further, it can effectively ensure the stability of the cutting mechanism 5 moving to perform cutting processing on the powder puff box, ensure the processing accuracy of the powder puff box, and improve the processing effect on the powder puff box;
[0047] During the process of the workpiece tray 8 moving from the processing position to the output position, the locking drive mechanism 9 can drive the unlocking between the workpiece tray 8 and the full-page flipping mechanism 7, and at the same time, the locking drive mechanism 9 drives the unlocking between each powder puff box stored in the workpiece tray 8 and the workpiece tray 8 (the same as the locking process), which is convenient for taking out the processed powder puff box and can provide a larger placement space to place the uncut powder puff box blanks in each workpiece clamping groove 82, thereby improving the processing efficiency of the powder puff box.
[0048] Embodiment Three:
[0049] Please refer to Figures 1-11 , the difference from the above embodiment is that the lifting mounting frame 3 includes a mounting frame 31 and a lifting drive guide rail 32, and the position adjustment mechanism 4 includes a transverse drive guide rail 41 and a longitudinal drive guide rail 42; the lifting drive guide rail 32 is fixed inside the mounting frame 31, the lifting drive guide rail 32 can drive the transverse drive guide rail 41 to perform lifting movement, the transverse drive guide rail 41 can drive the longitudinal drive guide rail 42 to perform transverse movement, and the longitudinal drive guide rail 42 can drive the cutting mechanism 5 to perform longitudinal movement.
[0050] The cutting mechanism 5 includes a cutting fixed bracket 51, a cutting installation guide rod 52, and a cutting drive motor 53. The longitudinal drive guide rail 42 can drive the cutting fixed bracket 51 to move, and the cutting installation guide rod 52 can install a cutting tool inside. The cutting installation guide rod 52 is rotatably connected to the cutting fixed bracket 51, and the cutting drive motor 53 is power-connected to the cutting installation guide rod 52.
[0051] During use, the lifting drive guide rail 32 of the lifting mounting frame 3 drives the cutting fixed bracket 51 to move up and down, the transverse drive guide rail 41 drives the cutting fixed bracket 51 to move horizontally, and the longitudinal drive guide rail 42 drives the cutting fixed bracket 51 to move longitudinally. Thus, it can drive the cutting fixed bracket to carry the cutting tool installed on the cutting installation guide rod 52 to move with high precision in three dimensions. And through the power connection between the cutting drive motor 53 and the cutting installation guide rod 52, the cutting tool installed on the cutting installation guide rod 52 is driven to adjust the angle, thereby being able to ensure the accuracy during the cutting process of the cutting tool and guarantee the cutting processing effect on the powder puff box.
[0052] At the top of the processing frame 1 and on both sides of the full - sheet transport mechanism 6, debris collection hoppers 11 are respectively provided. A separation channel 12 is provided at the bottom of the debris collection hopper 11. A separation collection drawer 13 is slidably arranged inside the separation channel 12. A chip collection pump 14 is provided at one end of the separation channel 12 away from the debris collection hopper 11. The chip collection pump 14 can provide the power for the debris generated by cutting to be collected in the separation collection drawer 13 after passing through the debris collection hopper 11 and the separation channel 12.
[0053] The protective hood 2 includes a fixed hood 22 and a sliding hood door 23. The sliding hood door 23 is slidably connected to the fixed hood 22, and the sliding hood door 23 can open and close the transfer opening 21. Only when the sliding hood door 23 opens the transfer opening 21, the full - sheet transport mechanism 6 can drive the full - sheet flipping mechanism 7 to drive the workpiece tray 8 to move along the workpiece conveying path.
[0054] During specific use, the space between the processing frame 1 and the protective hood 2 serves as a processing space. A chip collection pump 14 generates an air flow passage from the processing space through the separation channel 12 and the separation and collection drawer 13 to the chip collection pump 14. In cooperation with the setting of the chip collection hopper 11, under the combined action of the air flow and gravity on the chips, the chips enter the separation and collection drawer 13 and stay inside the separation and collection drawer 13 under the action of the sieve mesh of the separation and collection drawer 13, enabling the collection of chips. During actual use, by opening and closing the transfer opening 21 with the sliding hood door 23, the transportation process of the full-plate transportation mechanism 6 can be controlled. Only when the sliding hood door 23 opens the transfer opening 21, the full-plate transportation mechanism 6 can drive the full-plate flipping mechanism 7 to drive the workpiece tray 8 to move along the workpiece transportation path, which can avoid the chips inside the processing space from flying out and also avoid external interference with the cutting process inside the processing space.
[0055] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A puff box cutting and processing device, comprising a processing machine frame and a protective machine cover, characterized in that: A transfer opening is provided on the front of the protective hood. A lifting mounting frame is provided on one side of the top of the processing frame away from the transfer opening, and a position adjustment mechanism is provided inside the lifting mounting frame; The position adjustment mechanism can drive the cutting mechanism to move inside the protective hood. A full-page transport mechanism and a full-page flipping mechanism are provided on the top of the processing frame. A workpiece tray is provided inside the full-page flipping mechanism, and a plurality of powder puff boxes to be cut and processed can be stored inside the workpiece tray; The full-page transport mechanism can drive the full-page flipping mechanism to drive the workpiece tray to move bidirectionally along the workpiece transport path between the output position and the processing position. A locking drive mechanism is also provided at the top of the full-page flipping mechanism; During the process of the workpiece tray moving from the output position to the processing position, the locking drive mechanism can drive the locking between the workpiece tray and the full-page flipping mechanism, and at the same time, the locking drive mechanism drives the locking between each powder puff box stored in the workpiece tray and the workpiece tray; During the process of the workpiece tray moving from the processing position to the output position, the locking drive mechanism can drive the unlocking between the workpiece tray and the full-page flipping mechanism, and at the same time, the locking drive mechanism drives the unlocking between each powder puff box stored in the workpiece tray and the workpiece tray.
2. The powder puff box cutting and processing device according to claim 1, wherein: The full-page transport mechanism includes a transport base, a linear drive guide rail and a mounting support. The full-page flipping mechanism includes a connection frame, a flipping drive unit and a flipping frame; The transport base is fixed on the top of the processing frame. The bottom end of the linear drive guide rail is fixed to the transport base, and the linear drive guide rail can drive the mounting support to move along the workpiece transport path; The connection frame is fixed to the mounting support, the flipping frame is rotatably connected to the connection frame, and the flipping drive unit can drive the flipping frame to flip 180° around the connection frame each time.
3. The powder puff box cutting and processing device according to claim 2, characterized in that: The workpiece tray includes a tray main body. A plurality of workpiece clamping grooves are provided inside the tray main body, and tray locking frames are respectively provided on both sides of the tray main body; A plurality of locking limit grooves are provided at the top of the flipping frame, and a locking drive pin is slidably provided inside each locking limit groove; A locking groove is provided on one side of the tray locking frame close to the flipping frame. Each of the locking drive pins can be driven by the locking drive mechanism to extend into the corresponding locking groove to lock the flipping frame and the tray main body.
4. A puff box cutting and processing device according to claim 3, characterized in that: At least two bidirectional clamping groups are further provided inside the tray main body. Each bidirectional clamping group includes a forward clamping frame and a reverse clamping frame, and each bidirectional clamping group is arranged in a staggered manner; While the locking drive pin extends into the locking groove, the forward clamping frame and the reverse clamping frame move in opposite directions to clamp the workpiece in the center of the workpiece clamping groove by a part of the forward clamping frame and a part of the reverse clamping frame extending into the workpiece clamping groove.
5. A puff box cutting and processing device according to claim 4, characterized in that: The locking drive mechanism includes two symmetrically arranged locking drive plates, and each of the two locking drive plates is fixed to each of the locking drive pins on the same side. A locking drive air cylinder is arranged on one side of the locking drive plate; Each of the locking drive air cylinders can synchronously extend and retract, and simultaneously drive each of the locking drive pins to move; During the movement of the workpiece tray from the output position to the processing position, each of the locking drive air cylinders synchronously extends, driving each of the locking drive pins to slide along the locking limit groove and extend into the corresponding locking groove; During the movement of the workpiece tray from the processing position to the output position, each of the locking drive air cylinders synchronously shortens, driving each of the locking drive pins to slide along the locking limit groove and disengage from the corresponding locking groove; 6. The cutting and processing device for a powder puff box according to claim 5, wherein: A clamping drive gear is further arranged inside the tray body, and both sides of the clamping drive gear are in gear engagement with the forward clamping frame and the reverse clamping frame respectively; The clamping drive gear is further provided with a locking drive gear, and the clamping drive gear and the locking drive gear are coaxially fixed. After the locking drive pin extends into the corresponding locking groove, the locking drive pin is in gear engagement with the locking drive gear; 7. A puff box cutting and processing device according to claim 1, characterized in that: The lifting mounting frame includes a mounting frame and a lifting drive guide rail, and the position adjustment mechanism includes a transverse drive guide rail and a longitudinal drive guide rail; The lifting drive guide rail is fixed inside the mounting frame. The lifting drive guide rail can drive the transverse drive guide rail to perform lifting movement. The transverse drive guide rail can drive the longitudinal drive guide rail to perform transverse movement. The longitudinal drive guide rail can drive the cutting mechanism to perform longitudinal movement; 8. A puff box cutting and processing device according to claim 7, characterized in that: The cutting mechanism includes a cutting fixed bracket, a cutting mounting guide rod and a cutting drive motor. The longitudinal drive guide rail can drive the cutting fixed bracket to move, and a cutting tool can be installed inside the cutting mounting guide rod; The cutting mounting guide rod is rotatably connected to the cutting fixed bracket, and the cutting drive motor is power-connected to the cutting mounting guide rod; 9. The cutting and processing device for a powder puff box according to claim 1, characterized in that: Debris collection hoppers are respectively arranged at the top of the processing machine frame and on both sides of the full-page transport mechanism. A separation channel is arranged at the bottom of the debris collection hopper. A separation collection drawer is slidably arranged inside the separation channel. A chip collection pump is arranged at one end of the separation channel away from the debris collection hopper; The chip collection pump can provide the power for the chips generated by cutting to be collected in the separation collection drawer after passing through the debris collection hopper and the separation channel; 10. A puff box cutting and processing device according to claim 1, characterized in that: The protective hood includes a fixed hood and a sliding hood door. The sliding hood door is slidably connected to the fixed hood, and the sliding hood door can open and close the transfer opening; Only when the sliding hood door opens the transfer opening, the full-page transport mechanism can drive the full-page flipping mechanism to drive the workpiece tray to move along the workpiece conveying path.
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