Conveying device for cutting machine
By designing a conveying device for cutting machines, components such as guide plates and material transfer plates are used to control the spacing of parts, the problem of part clamping is solved, the transfer efficiency is improved and the cost is reduced.
Patent Information
- Application Number
- CN202422237414.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-12
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-09-12
AI Technical Summary
In the prior art, it is difficult to control the spacing between each part during the transmission process of electronic parts, resulting in the interlocking of parts, and the efficiency and cost through the conveyor belt are low.
A conveying device for a cutting machine is designed, including a guide plate, a material transfer pressure plate, a transverse downward pressing mechanism and a transit platform. By setting a material transfer track and a guide groove, the moving and position of the parts are controlled by using the material transfer pressure plate and a limiting plate to prevent clamping, and cutting and other processes are performed during the conveying process.
The spacing control between parts is realized, prevents clamping, improves transmission efficiency, reduces costs, simplifies the structure, and improves work efficiency.
Smart Images

Figure CN223114014U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of automation equipment, in particular to a conveying device for a cutting machine. Background Art
[0002] When processing electronic components, generally, stamping is carried out on a metal plate to make a bracket for the component, and then each component forming the component is installed on the bracket. After assembly, the bracket is preliminarily cut to obtain a single component with a part of the bracket. Subsequently, further cutting, bending and forming and other steps are required for the component. The above components are generally transported by a conveyor belt or a robotic arm. The conveyor belt is difficult to control the spacing between each component, and the brackets carried on the components are prone to be stuck to each other during transportation. While the transportation by the robotic arm has low efficiency and high cost, and the transportation scheme of the components needs to be further optimized. Summary of the Utility Model
[0003] To solve the technical problems in the background art, the purpose of the utility model is to provide a conveying device for a cutting machine, which can control the spacing between each component when conveying components with part of the bracket, prevent the components from being stuck to each other, and has the advantages of high efficiency and low cost.
[0004] To achieve the above purpose, the technical solution adopted by the utility model is:
[0005] A conveying device for a cutting machine includes: a guiding plate, a material shifting pressing plate, a transverse moving and pressing-down mechanism and a transfer platform.
[0006] The guiding plate is provided with a material shifting track, the material shifting track has a preset depth and width, and the material shifting track is used for limiting the body of the component and accommodating a single component to pass through.
[0007] The moving end of the transverse moving and pressing-down mechanism is fixedly connected with the material shifting pressing plate, and is used for driving the material shifting pressing plate to perform transverse movement and pressing-down movement; the material shifting pressing plate is arranged parallel to the upper side of the material shifting track and is used for driving the component to move along the material shifting track.
[0008] The transfer platform is provided with a guiding groove with one end open, the open end of the guiding groove is used for docking with the material shifting track, and the guiding groove is used for temporarily storing components and feeding the components onto the material shifting track.
[0009] Further, the bottom surface of the material shifting pressing plate faces the material shifting track, and a material clamping groove is arranged on the bottom surface, and the size of the material clamping groove matches the body of the component.
[0010] Further, there are several material clamping grooves, which are uniformly arranged on the bottom surface of the material shifting pressing plate along the transverse movement direction of the material shifting pressing plate.
[0011] Further, stepped limit plates are installed on both sides of the material transfer track. The limit plates include a first step and a second step. The first step is arranged above the guide plate, and the gap between the first step and the guide plate is used to limit the bracket of the part; the second step is arranged above the material transfer track, and the gap between the second step and the material transfer track is used to limit the part body.
[0012] Further, lateral limit blocks with the same structure as the limit plates are arranged on both sides of the guide groove.
[0013] Further, there are several guide grooves on the transfer platform, which are arranged longitudinally on the transfer platform; a longitudinal movement mechanism is also included. The bottom of the transfer platform is fixedly connected to the moving end of the longitudinal movement mechanism. The longitudinal movement mechanism is used to drive the transfer platform to move longitudinally, so that several guide grooves are sequentially docked with the material transfer track.
[0014] Further, a back limit block is arranged at the end face of the guide groove. A loading station is arranged on the guide groove, and a slope facing the loading station is arranged on the back limit block.
[0015] Further, the back limit block is provided with an avoidance position in the extending direction of the guide groove, and the width of the avoidance position is greater than the width of the material transfer pressing plate.
[0016] Further, a loading mechanism is also included, and the loading mechanism is used to carry parts into the loading station.
[0017] Further, a frame is also included. The guide plate, the material transfer pressing plate and the transverse movement and pressing mechanism form a material transfer module. There are several groups of material transfer modules, which are sequentially installed on the frame along the extending direction of the guide groove. A processing station is arranged between each group of material transfer modules.
[0018] When the utility model is in use, the parts are first transferred to the guide groove of the transfer platform. The material transfer pressing plate is driven by the transverse movement and pressing mechanism to drive the parts from the guide groove into the material transfer track, and further move the parts in the material transfer track to complete the part transfer process.
[0019] Compared with the prior art, the beneficial effects of the utility model are as follows: by setting a fixed material transfer track to accommodate and limit the body of the part, the parts pass through the material transfer track individually, which can prevent the parts from being stuck to each other. And the material transfer pressing plate for driving the movement of the parts is arranged above the material transfer track, so that operations such as a cutting machine can be carried out on the material transfer track while transferring the parts, improving work efficiency. Compared with the robotic arm transverse movement and pressing mechanism, the utility model only needs to complete the movement in two directions, so the structure is simple, the cost can be reduced, and the transfer efficiency can be improved. Description of the Drawings
[0020] Figure 1 It is a schematic structural diagram of the transfer device for a cutting machine provided by an embodiment of the utility model;
[0021] Figure 2 This is a schematic structural diagram of the material transfer pressing plate in the embodiment of the present utility model;
[0022] Figure 3 This is a cross-sectional view of the limit plate in the embodiment of the present utility model;
[0023] Figure 4 This is a schematic structural diagram of the transfer platform in the embodiment of the present utility model;
[0024] Figure 5 This is an installation schematic diagram of the material transfer module in the embodiment of the present utility model.
[0025] Wherein, 1: guide plate; 2: material transfer pressing plate; 3: transverse pressing mechanism; 4: transfer platform; 5: part; 6: limit plate; 7: longitudinal moving mechanism; 8: back limit block; 9: frame; 11: material transfer track; 21: material clamping groove; 41: guide groove; 42: loading station; 51: support; 61: first step; 62: second step; 63: side limit block; 81: slope; 82: avoidance position; 91: processing station. Detailed implementation manners
[0026] It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.
[0027] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0028] It should be noted that all the directional indications (such as up, down, left, right, front, back...) in the embodiments of the present utility model are only used to explain the relative position relationship and movement conditions between components in a specific posture (as shown in the drawings). If the specific posture changes, the directional indications will also change accordingly. The described connection can be a direct connection or an indirect connection.
[0029] In addition, the descriptions such as "first" and "second" in the present utility model are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one of such features.
[0030] In addition, the technical solutions between various embodiments can be combined with each other, but it must be based on the ability of those of ordinary skill in the art to implement. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present utility model.
[0031] As Figure 1 shown, it is a schematic structural diagram of a conveying device for a cutting machine provided in this embodiment. The conveying device for a cutting machine provided in this embodiment includes: a guiding plate 1, a material-transfer pressing plate 2, a transverse movement pressing-down mechanism 3, and a transfer platform 4.
[0032] Among them, the conveying device provided in this embodiment is preferably used in a cutting machine. The part 5 to be conveyed has a bracket 51 that is not completely cut off. The part 5 can be sequentially transferred to the transfer platform 4 manually or by an automated feeding device, and then the transverse movement pressing-down mechanism 3 drives the material-transfer pressing plate 2 to convey the part 5 on the transfer platform 4 to the guiding plate 1 and convey it on the guiding plate 1. Along the conveying direction of the guiding plate 1, other mechanisms of the cutting machine, such as a cutting mechanism, a stamping and forming mechanism, etc., can be arranged.
[0033] A material-transfer track 11 is provided on the guiding plate 1. The material-transfer track 11 has a preset depth and width. The material-transfer track 11 is used to limit the body of the part 5 and accommodate a single part 5 to pass through.
[0034] Among them, the depth and width of the material-transfer track 11 are designed according to the part 5 to be conveyed. The structure of the material-transfer track 11 is used to limit the body of the part 5, so that the body of the part 5 can just move in the material-transfer track 11 and pass through the material-transfer track 11 individually, preventing entanglement when multiple parts 5 are stacked. The bracket 51 of the part 5 is generally flat. Preferably, the preset depth of the material-transfer track 11 can be adjusted so that the bracket 51 of the part 5 is on the upper surface of the guiding plate 1. In this embodiment, the part 5 passes through the material-transfer track 11 individually, which can facilitate subsequent operations such as cutting and bending of the part 5 and is convenient for arranging other mechanisms of the cutting machine along the material-transfer track 11.
[0035] The moving end of the transverse movement pressing-down mechanism 3 is fixedly connected to the material-transfer pressing plate 2 and is used to drive the material-transfer pressing plate 2 to perform transverse movement and pressing-down movement; the material-transfer pressing plate 2 is arranged parallel to the upper part of the material-transfer track 11 and is used to drive the part 5 to move along the material-transfer track 11.
[0036] Among them, the transverse moving and pressing mechanism 3 can be any mechanism capable of realizing transverse movement and vertical movement. Preferably, the transverse movement can be realized by an electric cylinder, and the vertical movement can be realized by a cylinder. The material transfer pressing plate 2 can be any plate-like structure capable of driving the part 5 to move in the material transfer track 11. Preferably, the material transfer pressing plate 2 can drive the part 5 to move through friction, thrust or magnetic force. The contact surface between the material transfer pressing plate 2 and the part 5 has a large friction coefficient. Under the action of the transverse moving and pressing mechanism 3, the material transfer pressing plate 2 presses the part 5 tightly, and then continues to receive a thrust along the extending direction of the material transfer track 11. The friction between the part 5 and the material transfer track 11 is less than the friction between the part 5 and the material transfer pressing plate 2, so that the part 5 can be driven by the material transfer pressing plate 2. Raised protrusions can also be provided on the contact surface between the material transfer pressing plate 2 and the part 5 to push the part 5 to move, or a magnet can be installed to attach the part 5 that can be adsorbed by the magnet, and the part 5 can be driven to move through magnetic force.
[0037] A guiding groove 41 with an open end is provided on the transfer platform 4. The open end of the guiding groove 41 is used to dock with the material transfer track 11. The guiding groove 41 is used to temporarily store the part 5 and feed it onto the material transfer track 11.
[0038] Among them, the transfer platform 4 is used to temporarily store and transfer the part 5. The part 5 can be manually placed into the guiding groove 41 of the transfer platform 4 in sequence; or the part 5 can be placed on a tray, and then transferred to the guiding groove 41 of the transfer platform 4 by a suction cup mechanism. The open end of the guiding groove 41 can be docked with the material transfer track 11 and keep the relative position fixed, or can be moved to the position docked with the material transfer track 11 when needed. The guiding groove 41 is used to guide the part 5 into the material transfer track 11 to complete feeding onto the material transfer track 11. Its depth and width are preferably the same as those of the material transfer track 11. The guiding groove 41 can also be provided with inclined side walls to facilitate the part 5 to enter the guiding groove 41. Preferably, when the guiding groove 41 is docked with the material transfer track 11, the guiding groove 41 is within the stroke of the material transfer pressing plate 2. Therefore, the material transfer pressing plate 2 can bring the part 5 in the guiding groove 41 into the material transfer track 11 to complete feeding, and then the material transfer pressing plate 2 can continue to drive the part 5 to move along the material transfer track 11.
[0039] In this embodiment, by providing a fixed material transfer track 11 to accommodate and limit the body of the part 5, the part 5 passes through the material transfer track 11 individually, which can prevent the parts 5 from being stuck to each other. And the material transfer pressing plate 2 that drives the part 5 to move is arranged above the material transfer track 11, so that operations such as a cutting machine can be carried out on the material transfer track 11 while transferring the part 5, improving work efficiency. Compared with a robotic arm, the transverse moving and pressing mechanism 3 only needs to complete two-directional movement, so the structure is simple, the cost can be reduced, and the transfer efficiency can be improved.
[0040] Such as Figure 2As shown in the figure, it is a schematic structural diagram of the material transfer pressing plate. In this embodiment, the bottom surface of the material transfer pressing plate 2 faces the material transfer track 11, and a material clamping groove 21 is provided on the bottom surface. The size of the material clamping groove 21 matches the body of the part 5.
[0041] Among them, the size of the material clamping groove 21 matches the body of the part 5, and the width of the material clamping groove 21 can be slightly larger than the width of the part 5. During use, the material transfer pressing plate 2 moves downward, so that the body of the part 5 is restricted in the material clamping groove 21, and the part 5 can be pushed to move through the side of the material clamping groove 21.
[0042] In this embodiment, there are several material clamping grooves 21, which are evenly arranged on the bottom surface of the material transfer pressing plate 2 along the transverse movement direction of the material transfer pressing plate 2.
[0043] Among them, setting multiple material clamping grooves 21 can transfer multiple parts 5 at the same time, improving the working efficiency of this embodiment. The distance between each material clamping groove 21 is equal, which can control the moving distance of the part 5 and improve the transfer accuracy. In this embodiment, the transverse movement distance of the transverse movement and pressing mechanism 3 can be equal to the distance between the material clamping grooves 21. After the material transfer pressing plate 2 moves forward by a distance of one interval, it moves upward to separate from the part 5, and then moves backward to return to the original position. The material transfer pressing plate 2 moves in the above cycle, and can transfer the part 5 forward in an intermittent movement manner. The intermittent movement transfer method. The total transfer distance in this embodiment can be determined by the length of the material transfer pressing plate 2. The longer the length of the material transfer pressing plate 2, the farther the part 5 can be transferred, and this embodiment can use a transverse movement mechanism with a shorter displacement, thus saving costs.
[0044] As Figure 3 shown, it is a cross-sectional view of the limiting plate in this embodiment. In this embodiment, stepped limiting plates 6 are installed on both sides of the material transfer track 11. The limiting plate 6 includes a first step 61 and a second step 62. The first step 61 is arranged above the guide plate 1, and the gap between the first step 61 and the guide plate 1 is used to limit the bracket 51 of the part 5; the second step 62 is arranged above the material transfer track 11, and the gap between the second step 62 and the material transfer track 11 is used to limit the body of the part 5.
[0045] Among them, the limiting plate 6 is stepped, the stepped surface is parallel to the material transfer track 11, and it is fixed on the guiding plate 1 in the way of smaller at the bottom and larger at the top, so that the stepped surface can form a gap with the upper surface of the guiding plate 1 and the bottom surface of the material transfer track 11. The parts 5 conveyed in this application are provided with brackets 51. By setting the depth of the material transfer track 11, the body of the part 5 can be located in the material transfer track 11, while part of the bracket 51 is located on the horizontal plane of the guiding plate 1. In this embodiment, part of the bracket 51 can be limited by the gap formed by the first step 61 and the upper surface of the guiding plate 1, preventing the part 5 from shaking during the conveying process. Further, the body of the part 5 is also limited by the gap formed by the second step 62 and the material transfer track 11, improving the stability of the part 5 during the conveying process.
[0046] As Figure 4 shown, it is a schematic structural diagram of the transfer platform in this embodiment. In this embodiment, lateral limiting blocks 63 with the same structure as the limiting plate 6 are arranged on both sides of the guiding groove 41, and the lateral limiting blocks 63 are used for laterally positioning the parts in the guiding groove 41.
[0047] Among them, the lateral limiting block 63 has the same structure as the limiting plate 6, both are stepped, and have a first step 61 and a second step 62. The thickness and length of the lateral limiting block 63 can be changed according to the guiding groove 41. The lateral limiting block 63 is also fixed on the transfer platform 4 in the way of smaller at the bottom and larger at the top. The gap between the first step 61 of the lateral limiting block 63 and the upper surface of the transfer platform 4 is used to limit the bracket 51 of the part 5; the second step 62 is arranged above the guiding groove 41, and the gap between it and the guiding groove 41 is used to limit the body of the part 5.
[0048] In this embodiment, there are several guiding grooves 41, which are arranged longitudinally on the transfer platform 4; a longitudinal moving mechanism 7 is further arranged at the bottom of the transfer platform 4; the moving end of the longitudinal moving mechanism 7 is fixedly connected to the bottom of the transfer platform 4, and is used to drive the transfer platform 4 to move longitudinally, so that several guiding grooves 41 are sequentially docked with the material transfer track 11.
[0049] Among them, the longitudinal direction and the transverse direction are perpendicular to each other, and the moving direction of the longitudinal moving mechanism 7 is perpendicular to the transverse movement of the transverse moving and pressing mechanism 3. Arranging multiple guiding grooves 41 side by side can improve the feeding efficiency onto the transfer platform 4, and when the transfer pressing plate 2 moves the part 5 in the guiding groove 41 towards the material transfer track 11, workers or the feeding mechanism can also feed materials onto other guiding grooves 41 of the transfer platform 4, and the feeding process and the conveying process will not affect each other, thereby further improving the overall processing efficiency of the device.
[0050] In this embodiment, a back limiting block 8 is arranged at the closed end of the guiding groove 41, a feeding station 42 is arranged on the guiding groove 41, and a slope 81 facing the feeding station 42 is arranged on the back limiting block 8.
[0051] Among them, the part 5 conveyed in this application is provided with a bracket 51, and the bracket 51 has burrs, and it may not be possible to complete the feeding smoothly during the feeding process. In this embodiment, the back limiting block 8 can limit the part 5 at the closed end of the guiding groove 41, and a slope 81 is provided to guide the part 5 into the feeding station 42, so that the part 5 can be fed more smoothly. The feeding station 42 will not be blocked by the lateral limiting block 63 or the back limiting block 8, so feeding can be performed from above.
[0052] In this embodiment, the back limiting block 8 is provided with an avoidance position 82 in the extending direction of the closed end of the guiding groove 41, and the width of the avoidance position 82 is greater than the width of the material shifting pressing plate 2.
[0053] Among them, in order to make the cooperation between the material shifting pressing plate 2 and the part 5 more stable, the material clamping groove 21 is generally arranged in the middle of the material shifting pressing plate 2 and has a certain distance from the end of the material shifting pressing plate 2. Therefore, a certain avoidance position 82 needs to be set for the end of the material shifting pressing plate 2, so that the end of the material shifting pressing plate 2 can extend into the avoidance position 82, so that the material clamping groove 21 can be docked with the part 5 at the feeding station 42. The length of the avoidance position 82 can be determined according to the end of the material shifting pressing plate 2.
[0054] In this embodiment, the conveying device for the cutting machine further includes a feeding mechanism for transporting the part 5 into the feeding station 42.
[0055] Among them, the feeding mechanism in this embodiment can be any mechanism capable of feeding the transfer platform 4. Preferably, it is a jaw or suction cup mechanism with longitudinal movement and vertical movement functions. The part 5 is placed in the tray, and the parts 5 can be arranged neatly through the limitation of the tray. The tray can be placed on the moving plate with horizontal movement, so that the feeding mechanism can grab the part 5 from the tray and transfer it to the guiding groove 41 of the transfer platform 4.
[0056] As Figure 5 shown, it is a schematic installation diagram of the material shifting module. In this embodiment, the conveying device for the cutting machine further includes a frame 9. The guiding plate 1, the material shifting pressing plate 2 and the transverse moving and pressing down mechanism 3 form a material shifting module. There are several groups of material shifting modules, which are sequentially installed on the frame 9 along the extending direction of the guiding groove 41, and a processing station 91 is arranged between each group of material shifting modules.
[0057] Among them, the specific structure of the material shifting module can be adjusted according to the processing requirements and does not need to be completely consistent. For example, it can be combined with the cutting mechanism. As Figure 5As shown, this embodiment includes two groups of material transfer modules, and a processing station 91 is arranged between the two groups of material transfer modules. To facilitate the showing of the part 5, a limit plate 6 of the first group of material transfer modules is omitted. Setting multiple groups of material transfer modules in this embodiment can extend the conveying distance. By dividing the material transfer modules into several groups, it is more convenient to set the processing station 91 between each group of material transfer modules. The processing station 91 can be a cutting station, and a corresponding cutting mechanism is arranged at this station. The processing station 91 can also be a bending station, and a corresponding bending mechanism is arranged at this station. The conveying device for the cutting machine provided by this embodiment has a modular feature, can be disassembled and assembled according to requirements, reduces the equipment cost, and improves the application range of the device.
[0058] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, shall be equally included in the patent protection scope of the present invention.
Claims
1. A conveying device for a cutting machine, characterized in that, Including: A guiding plate (1), a material-transfer pressing plate (2), a transverse moving and pressing mechanism (3), and a transfer platform (4); A material-transfer track (11) is formed on the guiding plate (1), the material-transfer track (11) has a preset depth and width, and the material-transfer track (11) is used for limiting the body of a part (5) and accommodating a single part (5) to pass through; The moving end of the transverse moving and pressing mechanism (3) is fixedly connected to the material-transfer pressing plate (2) and is used for driving the material-transfer pressing plate (2) to perform transverse movement and downward pressing movement; the material-transfer pressing plate (2) is arranged parallel to the upper side of the material-transfer track (11) and is used for driving the part (5) to move along the material-transfer track (11); A guiding groove (41) with an open end is arranged on the transfer platform (4), the open end of the guiding groove (41) is used for docking with the material-transfer track (11), and the guiding groove (41) is used for temporarily storing the part (5) and feeding the part (5) onto the material-transfer track (11).
2. The conveying device for a cutting machine according to claim 1, characterized in that, The bottom surface of the material-transfer pressing plate (2) faces the material-transfer track (11), and a material clamping groove (21) is arranged on the bottom surface, and the size of the material clamping groove (21) matches the body of the part (5).
3. The conveying device for a cutting machine according to claim 2, wherein, There are several material clamping grooves (21), which are uniformly arranged on the bottom surface of the material-transfer pressing plate (2) along the transverse movement direction of the material-transfer pressing plate (2).
4. The conveying device for a cutting machine according to claim 1, characterized in that, Step-shaped limiting plates (6) are installed on both sides of the material-transfer track (11), the limiting plates (6) include a first step (61) and a second step (62), the first step (61) is arranged above the guiding plate (1), and the gap between the first step (61) and the guiding plate (1) is used for limiting the bracket (51) of the part (5); the second step (62) is arranged above the material-transfer track (11), and the gap between the second step (62) and the material-transfer track (11) is used for limiting the body of the part (5).
5. The conveying device for a cutting machine according to claim 4, wherein, Side limiting blocks (63) with the same structure as the limiting plates (6) are arranged on both sides of the guiding groove (41), and the side limiting blocks (63) are used for laterally positioning the part (5) in the guiding groove (41).
6. The conveying device for a cutting machine according to claim 5, characterized in that, There are several guiding grooves (41), which are arranged longitudinally on the transfer platform (4); a longitudinal moving mechanism (7) is further arranged at the bottom of the transfer platform (4); the moving end of the longitudinal moving mechanism (7) is fixedly connected to the transfer platform (4) and is used for driving the transfer platform (4) to move longitudinally so that several guiding grooves (41) are sequentially docked with the material-transfer track (11).
7. The conveying device for a cutting machine according to claim 6, characterized in that, A back limiting block (8) is arranged at the closed end of the guiding groove (41), a feeding station (42) is arranged on the guiding groove (41), and a slope (81) facing the feeding station (42) is arranged on the back limiting block (8).
8. The conveying device for a cutting machine according to claim 7, wherein, An avoidance position (82) is formed in the back limiting block (8) along the extending direction of the closed end of the guiding groove (41), and the width of the avoidance position (82) is greater than the width of the material-transfer pressing plate (2).
9. The conveying device for a cutting machine according to claim 7, wherein, It further includes a feeding mechanism, which is used to convey the parts (5) to the feeding station (42).
10. The conveying device for a cutting machine according to claim 1, characterized in that, It further includes a frame (9). The guiding plate (1), the transfer pressing plate (2) and the transverse pressing-down mechanism (3) form a transfer module. There are several groups of the transfer modules, which are sequentially installed on the frame (9) along the extension direction of the guiding groove (41). A processing station (91) is arranged between each group of the transfer modules.