Blister cutting machine with automatic waste peeling effect

CN122584653APending Publication Date: 2026-08-18XUZHOU AO YANG AUTOMATION TECH CO LTD
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Patent Information

Application Number
CN202611091241.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-07-22
Publication Date
2026-08-18

AI Technical Summary

Technical Problem

现有技术中,吸塑切片机在作业的过程中,裁切轻薄材质时易出现成品粘连、切口毛边问题,其次,自动剥离结构易受片材材质、厚度影响出现分离不彻底、卡料故障,以及,废料未得到及时处理,容易影响设备作业效率,因此,针对这些情况进行了新的设计

Benefits of technology

一、该带废料自动剥离效果的吸塑切片机,第二电动推杆输出端与下模壳体底部连接,通过第二电动推杆升降控制部件高度,当下模壳体高度低于作业平台高度时,便于清理机构对下模壳体表面进行清理,以此减少部件表面杂质,防止影响后续裁切效果,通过第二电动推杆控制下模壳体带动下模块向作业平台顶部移动,使下模块与物料进行匹配,以此达到定位物料的作用,下模块与切刀块进行裁切适配,以此达到剥离物料成品的作用。

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Abstract

The application discloses a blister slicing machine with automatic waste stripping effect, and relates to the technical field of cutting equipment. The conveying mechanism is in contact with the two sides of the material, and is provided with two groups. The material is placed from the lower side of one group of the conveying mechanism, and is moved to the other group of the conveying mechanism by the conveying mechanism, so that the automatic feeding effect is achieved. In the process of controlling the movement of the material by the conveying mechanism, the lower die of the slicing mechanism is appropriately lifted from the bottom of the material, the conveying mechanism is stopped, and the component lifts the material, so that the material is positioned and the activity space of the material is limited. Then, the upper die of the slicing mechanism is controlled to be pressed to the lower die by the first electric push rod, so that the material is sliced. After slicing, the unloading mechanism adopts the vacuum adsorption form to grab the cut material, so that the automatic unloading effect is achieved. Finally, the conveying mechanism is used for re-conveying, and then reciprocating operation is carried out.
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Description

Technical Field

[0001] This invention relates to the field of cutting equipment technology, specifically to a vacuum forming slicing machine with an automatic waste removal effect. Background Technology

[0002] The blister slicing machine is a specialized post-processing equipment that complements the blister forming process. It takes the continuous blister sheet with the completed concave and convex shape as the processing object, and uses the matching die to cut and separate the individual blister products from the surrounding frame waste. Equipped with feeding positioning, finished product separation and waste recycling related structures, it can automatically complete the whole process of slicing, unloading and waste cleaning, replacing manual slicing and sorting, and realizing the large-scale cutting and production of blister packaging products. In the existing technology, when cutting thin materials, the vacuum forming slicing machine is prone to problems such as finished products sticking together and rough edges on the cut. Secondly, the automatic peeling structure is easily affected by the material and thickness of the sheet, resulting in incomplete separation and material jamming. In addition, the waste material is not handled in time, which can easily affect the operating efficiency of the equipment. Therefore, a new design has been made to address these issues. Summary of the Invention

[0003] To address the problems mentioned above, the present invention provides the following technical solution: a thermoforming slicing machine with automatic waste removal function, comprising: The work platform has a square plate structure and fixed support legs at the bottom of the square plates. A platform cutout is opened at the center of the top of the work platform. A slicing lower mold is fixedly connected to the bottom of the work platform near the platform cutout. Conveying mechanisms are fixedly connected to both sides of the top of the work platform. A support frame is fixedly connected to the top of the work platform near the platform cutout. A work top plate is fixedly connected to the top of the support frame. A first electric push rod is fixedly connected to the bottom of the work top plate. An upper slicing mold is fixedly connected to the output end of the first electric push rod. An external platform is provided, with a guide rod fixedly connected to its top and a material unloading mechanism slidably connected to the outside of the guide rod. The slicing upper mold includes an upper module body, an inner block groove, a block support rod slidably connected inside the block groove, a spring strip sleeved on the outer side of the block support rod, and a cutting block disposed at the bottom of the upper module body, the cutting block being fixedly connected to the bottom of the upper module body.

[0004] The slicing upper mold also includes an upper mold support, which is disposed outside the upper module body. The upper mold support is fixedly connected to the upper module body. An upper mold slide rod is slidably connected to the inner side of the upper mold support. A counterweight is fixedly connected to the bottom of the upper mold slide rod, and a soft rubber pad is fixedly connected to the bottom of the counterweight.

[0005] An annular housing is fixedly connected to the top of the upper module near the upper mold slide rod, and a silicone pad is provided inside the annular housing.

[0006] A cleaning mechanism is fixedly connected to the bottom of the working platform near the platform cut, and a hopper is fixedly connected to the bottom of the external platform.

[0007] The slicing lower mold includes a lower mold frame, a second electric push rod is fixedly connected to one side of the top of the lower mold frame, a lower mold housing is fixedly connected to the output end of the second electric push rod, and a lower module is fixedly connected to the top of the lower mold housing at a position corresponding to the cutting block.

[0008] The unloading mechanism includes an unloading slider, the outer side of which is slidably connected to the outer side of a guide rod. A third electric push rod is fixedly connected to the bottom of the unloading slider. An unloading housing is fixedly connected to the output end of the third electric push rod. A suction pipe is fixedly connected to the bottom of the unloading housing.

[0009] The cleaning mechanism includes a cleaning housing, a perforated plate is fixedly connected to one side of the outer side of the cleaning housing, a fan is fixedly connected to the inside of the cleaning housing away from the perforated plate, and a grid plate is fixedly connected to the outside of the cleaning housing near the fan.

[0010] The conveying mechanism includes a telescopic frame, with a connecting shaft rotatably connected between opposite surfaces of the telescopic frame. A motor is fixedly connected to the outside of the telescopic frame, and the output end of the motor is fixedly connected to one end of the connecting shaft. A conveying device is provided outside the connecting shaft.

[0011] The conveying device includes a conveying housing, a docking frame fixedly connected to the outside of the conveying housing, the conveying housing being arranged in a mirror symmetrical manner, a screw being sleeved on the outside of the docking frame, a nut being threadedly connected to the outside of the screw, a housing cutout being opened at the circumference of the conveying housing, a beveled block being fixedly connected to the inner wall of the housing cutout, a conveyor belt being sleeved on the outside of the housing cutout, and a triangular block being fixedly connected to the outside of the conveyor belt.

[0012] This invention provides a thermoforming slicing machine with an automatic waste removal function. It has the following beneficial effects: 1. This blister slicing machine with automatic waste removal function has a second electric push rod output end connected to the bottom of the lower mold housing. The height of the component is controlled by the second electric push rod. When the height of the lower mold housing is lower than the height of the working platform, the cleaning mechanism can clean the surface of the lower mold housing to reduce impurities on the component surface and prevent it from affecting the subsequent cutting effect. The lower mold housing is controlled by the second electric push rod to move the lower module to the top of the working platform, so that the lower module matches the material, thereby achieving the function of positioning the material. The lower module is matched with the cutting block for cutting, thereby achieving the function of peeling the material into finished products.

[0013] II. This vacuum forming and slicing machine with automatic waste removal function has a discharge slider that drives the component to slide on the guide rod. After the material is cut, the discharge slider drives the component to move to one side of the working platform. The third electric push rod controls the height of the discharge housing, so that the component can fit against the surface of the material, thereby increasing the discharge speed of the material. The discharge housing is matched with the suction pipe, so that the material surface is adsorbed by vacuum adsorption, which facilitates the subsequent movement of the material.

[0014] Third, this thermoforming slicing machine with automatic waste removal function uses a perforated plate and a grid plate to block external impurities from entering, preventing blockage inside the cleaning housing and avoiding affecting airflow. The fan generates airflow, which flows through the perforated plate to wash the lower mold housing, thereby cleaning impurities from the surface of the parts, reducing impurity residue, preventing debris from sticking together, avoiding affecting the subsequent cutting quality and accuracy, reducing wear on parts, and thus extending the service life of the parts.

[0015] IV. This blister slicing machine with automatic waste removal function uses a telescopic frame that is raised and lowered pneumatically or electrically. This facilitates control of component height and adjustment of the distance between components and materials, increasing the applicability of the equipment and allowing for adjustments based on material size. The motor controls the rotation of the connecting shaft, which in turn drives the conveying device to rotate. The conveying device contacts the material surface, thus conveying the material and achieving automatic feeding, thereby improving the equipment's operating efficiency.

[0016] V. This blister slicing machine with automatic waste removal function has two conveyor housings that are joined together to form a whole. The two connecting frames are fitted together, and the screw passes through one connecting frame to the other. Then, the nut is tightened onto the screw to quickly fix the component. This facilitates adjustment according to the edge size of the material, ensures full contact with the material, and guarantees the quality of frictional conveying of the component. The diagonal blocks are evenly arrayed around the circumference of the conveyor housing, and the diagonal blocks are distributed in a mirror-shaped design to increase the friction and pulling force on the component. The conveyor belt is fitted onto the conveyor housing to further improve the stability of the component during installation and reduce component offset. In addition, triangular blocks are set on the outside of the conveyor belt to increase the contact area with the material surface, improve the friction between the component and the material, maintain the gripping effect of the component, prevent the component from spinning, and thus fully drive the material to move. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the external platform structure of the present invention; Figure 2 This is a schematic diagram of the conveying mechanism of the present invention; Figure 3 This is a schematic diagram of the module structure of the present invention; Figure 4 This is a schematic diagram of the upper mold slide bar structure of the present invention; Figure 5 This is a schematic diagram of the counterweight structure of the present invention; Figure 6 This is a schematic diagram of the lower mold housing structure of the present invention; Figure 7 This is a schematic diagram of the unloading shell structure of the present invention; Figure 8 This is a schematic diagram of the connecting shaft structure of the present invention; Figure 9 This is a schematic diagram of the conveyor housing structure of the present invention.

[0018] In the diagram: 1. Working platform; 2. Upper slicing mold; 3. Lower slicing mold; 4. Conveying mechanism; 5. Unloading mechanism; 6. Support frame; 7. Working top plate; 8. External platform; 9. Cleaning mechanism; 10. First electric push rod; 11. Platform cut; 12. Discharge hopper; 13. Guide rod; 201. Upper module body; 202. Block groove; 203. Block support rod; 204. Cutter block; 205. Upper mold support; 206. Upper mold slide bar; 207. Spring strip; 208. Counterweight; 209. Soft rubber pad; 210. Annular shell; 211. Silicone 31. Pad; 32. Lower mold frame; 33. Second electric push rod; 34. Lower mold housing; 45. Lower module; 46. Telescopic frame; 47. Connecting shaft; 48. Motor; 49. Conveying equipment; 40. Conveying housing; 41. Connecting frame; 42. Screw; 43. Nut; 444. Housing cut; 45. Beveled block; 46. Conveyor belt; 47. Triangular block; 48. Unloading slider; 59. Third electric push rod; 50. Unloading housing; 51. Suction pipe; 92. Cleaning housing; 93. Grating plate; 94. Fan; 95. Mesh plate. Detailed Implementation

[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0020] First embodiment, such as Figures 1 to 6 As shown, the present invention provides a technical solution: a thermoforming slicing machine with automatic waste removal effect, comprising: The work platform 1 has a square plate structure and fixed support legs at the bottom of the square plate. A platform cutout 11 is opened at the center of the top of the work platform 1. A slicing lower mold 3 is fixedly connected to the bottom of the work platform 1 near the platform cutout 11. Conveying mechanisms 4 are fixedly connected to both sides of the top of the work platform 1. A support frame 6 is fixedly connected to the top of the work platform 1 near the platform cutout 11. A work top plate 7 is fixedly connected to the top of the support frame 6. A first electric push rod 10 is fixedly connected to the bottom of the work top plate 7. A slicing upper mold 2 is fixedly connected to the output end of the first electric push rod 10. An external platform 8 is fixedly connected to a guide rod 13 at its top, and a material unloading mechanism 5 is slidably connected to the outside of the guide rod 13. The conveying mechanism 4 contacts both sides of the material. The conveying mechanism 4 is provided with two sets. The material is placed from the bottom of one set of conveying mechanisms 4 and moved to the other set of conveying mechanisms 4 through the conveying mechanism 4, thereby achieving the function of automatic feeding. During the process of controlling the movement of the material, the lower slicing mold 3 is appropriately lifted from the bottom of the material. The material is lifted by the stopping component of the conveying mechanism 4, thereby playing a certain positioning role for the material and restricting the movement space of the material. Then, the upper slicing mold 2 is controlled by the first electric push rod 10 to press down on the lower slicing mold 3, thereby slicing the material. After slicing, the material unloading mechanism 5 uses vacuum adsorption to grab the cut material, thereby achieving the function of automatic unloading. Finally, the material is conveyed again by the conveying mechanism 4, and the operation is repeated.

[0021] A cleaning mechanism 9 is fixedly connected to the bottom of the working platform 1 near the platform cut 11, and a feeding hopper 12 is fixedly connected to the bottom of the external platform 8. The cleaning mechanism 9 is located at the bottom of the working platform 1. When the slicing die 3 slides down, the cleaning mechanism 9 flushes and cleans the slicing die 3, removing residual plastic debris and adhesive material from the gaps between parts. This prevents debris from affecting the cutting accuracy, causing burrs or material jamming, reducing die wear, ensuring continuous and stable cutting, and extending the die's service life. The feeding hopper 12 guides the collection of finished materials, thus guiding the material out of the machine.

[0022] The second embodiment is based on the first embodiment; please refer to [link / reference]. Figures 3 to 5As shown, the slicing upper mold 2 includes an upper module body 201, a block groove 202 is provided inside the upper module body 201, a block support rod 203 is slidably connected inside the block groove 202, a spring strip 207 is sleeved on the outside of the block support rod 203, and a cutter block 204 is provided at the bottom of the upper module body 201, and the cutter block 204 is fixedly connected to the bottom of the upper module body 201. The cutting block 204 at the bottom of the upper module 201 is horizontally aligned with the lower slicing mold 3. As the first electric push rod 10 applies pressure to the upper module 201, the cutting block 204 cuts the material, thereby separating the finished product. The block support rod 203 protrudes beyond the upper module 201. When the upper module 201 is pressed against the lower slicing mold 3, the block support rod 203 compresses and contracts the spring strip 207, thereby providing shock absorption and buffering. This buffers the impact force generated during cutting, reduces hard collisions between parts, reduces blade wear and equipment vibration, and prevents the thermoformed product from being deformed by pressure and the cut from breaking, thus extending the service life of the equipment.

[0023] The slicing upper mold 2 also includes an upper mold support 205, which is disposed outside the upper module body 201. The upper mold support 205 is fixedly connected to the upper module body 201. An upper mold slide rod 206 is slidably connected to the inner side of the upper mold support 205. A counterweight 208 is fixedly connected to the bottom of the upper mold slide rod 206. A soft rubber pad 209 is fixedly connected to the bottom of the counterweight 208. Under normal conditions, the counterweight 208 causes the upper mold slide bar 206 to fall. When the upper mold support 205 is attached to the lower slicing mold 3 along with the upper module body 201, the counterweight 208 presses down on both sides of the material to prevent the material from slipping or warping during the cutting process, improve the regularity of the cutting outline, and reduce the rebound and adhesion of the sheet material. This facilitates the automatic separation of finished products and waste materials, thereby improving the efficiency of equipment operation. The soft rubber pad 209 is set at the bottom of the counterweight 208. On the one hand, it plays a role in shock absorption and buffering, reducing collisions between parts. On the other hand, it increases the wear resistance of parts and reduces wear. At the same time, it has a certain anti-slip effect, increases the friction on the material, and improves the anti-deviation effect of the material.

[0024] An annular housing 210 is fixedly connected to the top of the upper module body 201 near the upper mold slide rod 206. A silicone pad 211 is installed inside the annular housing 210. After the counterweight 208 contacts the material surface, the counterweight 208 drives the upper mold slide rod 206 to slide to the top of the upper module body 201. When the upper module body 201 is raised and contracted by the first electric push rod 10, the upper mold slide rod 206 falls with the counterweight 208. The annular housing 210 guides the movement of the component and limits the deformation range of the silicone pad 211 to ensure the deformation performance of the component. In addition, the silicone pad 211 plays a role in shock absorption and buffering, reducing the impact pressure on the component, reducing the operating noise of the equipment, and reducing the wear between components.

[0025] The third embodiment is based on embodiments one and two; please refer to [link / reference]. Figures 4 to 9 As shown, the slicing lower mold 3 includes a lower mold frame 31. A second electric push rod 32 is fixedly connected to one side of the top of the lower mold frame 31. The output end of the second electric push rod 32 is fixedly connected to a lower mold housing 33. A lower module 34 is fixedly connected to the top of the lower mold housing 33 at a position corresponding to the cutter block 204. The output end of the second electric push rod 32 is connected to the bottom of the lower mold housing 33. The height of the component is controlled by the second electric push rod 32. When the height of the lower mold housing 33 is lower than the height of the working platform 1, the cleaning mechanism 9 can clean the surface of the lower mold housing 33 to reduce impurities on the component surface and prevent it from affecting the subsequent cutting effect. When the lower mold housing 33 is controlled by the second electric push rod 32 to move the lower module 34 to the top of the working platform 1, the lower module 34 matches the material to achieve the function of positioning the material. The lower module 34 and the cutter block 204 are cut and adapted to achieve the function of peeling off the finished material.

[0026] The unloading mechanism 5 includes an unloading slider 51, which is slidably connected to the outer side of the guide rod 13. A third electric push rod 52 is fixedly connected to the bottom of the unloading slider 51, and an unloading housing 53 is fixedly connected to the output end of the third electric push rod 52. A suction pipe 54 is fixedly connected to the bottom of the unloading housing 53. The unloading slider 51 drives the component to slide on the guide rod 13. After the material is cut, the unloading slider 51 drives the component to move towards one side of the working platform 1. The third electric push rod 52 controls the height of the unloading housing 53, so that the component can fit against the surface of the material, thereby increasing the unloading speed of the material. The unloading housing 53 is matched with the suction pipe 54, so that the material surface is adsorbed by vacuum adsorption, which facilitates the subsequent movement of the material.

[0027] The cleaning mechanism 9 includes a cleaning housing 91. A perforated plate 94 is fixedly connected to one side of the cleaning housing 91. A fan 93 is fixedly connected to the inside of the cleaning housing 91, away from the perforated plate 94. A grid plate 92 is fixedly connected to the outside of the cleaning housing 91, near the fan 93. The perforated plate 94 and the grid plate 92 prevent external impurities from entering, thus preventing blockage inside the cleaning housing 91 and avoiding affecting airflow. The fan 93 generates airflow, which flows through the perforated plate 94 and washes the lower mold housing 33, thereby cleaning impurities from the surface of the parts, reducing impurity residue, preventing debris adhesion, avoiding affecting subsequent cutting quality and accuracy, reducing wear on parts, and extending the service life of the parts.

[0028] The conveying mechanism 4 includes a telescopic frame 41, with a connecting shaft 42 rotatably connected between opposite faces of the telescopic frame 41. A motor 43 is fixedly connected to the outside of the telescopic frame 41, and the output end of the motor 43 is fixedly connected to one end of the connecting shaft 42. A conveying device 44 is installed outside the connecting shaft 42. The telescopic frame 41 is raised and lowered pneumatically or electrically, which facilitates the control of the component height and the adjustment of the distance between the component and the material, thereby increasing the scope of use of the equipment and facilitating adjustments according to the size of the material. The motor 43 controls the rotation of the connecting shaft 42, which in turn drives the conveying device 44 to rotate. The conveying device 44 contacts the surface of the material, thereby conveying the material and achieving automatic feeding, thus improving the operating efficiency of the equipment.

[0029] The conveying device 44 includes a conveying housing 441, a docking frame 442 fixedly connected to the outside of the conveying housing 441, the conveying housing 441 is arranged in a mirror symmetrical distribution, a screw 443 is sleeved on the outside of the docking frame 442, a nut 444 is threadedly connected to the outside of the screw 443, a housing cutout 445 is opened at the circumference of the conveying housing 441, a beveled block 446 is fixedly connected to the inner wall of the housing cutout 445, a conveyor belt 447 is sleeved on the outside of the housing cutout 445, and a triangular block 448 is fixedly connected to the outside of the conveyor belt 447. Two conveyor housings 441 are provided, which are joined together to form a whole. Two docking frames 442 are fitted together, and a screw 443 is passed through one docking frame 442 to the other. Then, a nut 444 is tightened onto the screw 443 to quickly fix the component, which facilitates adjustment according to the edge size of the material, ensures full contact with the material, and guarantees the quality of frictional conveying of the component. The oblique blocks 446 are evenly arrayed around the circumference of the conveyor housing 441, and the oblique blocks 446 are distributed in a mirror-shaped design to increase the friction and pulling force on the component. The conveyor belt 447 is fitted onto the conveyor housing 441 to further improve the stability of the component during installation and reduce the component offset effect. In addition, triangular blocks 448 are set on the outside of the conveyor belt 447 to increase the contact area with the material surface, improve the friction between the component and the material, maintain the gripping effect of the component, prevent the component from spinning, and thus fully drive the material to move.

[0030] In use, the conveying mechanism 4 is set on both sides of the top of the working platform 1. It mainly moves the material from one side of the conveying mechanism 4 to the other side of the conveying mechanism 4, thereby playing the role of automatic loading and unloading. At the same time, it is convenient to collect the cutting waste. A support frame 6 is installed on the top of the work platform 1, and a work top plate 7 is installed on the support frame 6. The work top plate 7 controls the upper slicing mold 2 to move up and down through the first electric push rod 10. The lower slicing die 3 is controlled by the second electric push rod 32 to raise and lower the lower die housing 33, thereby lifting the material appropriately to position the material and prevent it from shifting. The cutting block 204 of the upper slicing mold 2 is adapted to the lower module 34 for cutting, thereby realizing the separation of the finished material and the waste edge is moved outward by the conveying mechanism 4. After the material is cut, the unloading mechanism 5 slides to the lower die 3 side via the guide rod 13. The unloading mechanism 5 uses vacuum adsorption to grab the material. The unloading mechanism 5 moves the material to the side of the external platform 8. Then, the material is grabbed and the material is guided to flow through the hopper 12. Thus, the material is loaded and unloaded through the conveying mechanism 4, and the upper slicing die 2 squeezes the material against the lower slicing die 3 to achieve the cutting operation. Then, the material is unloaded through the unloading mechanism 5, and the operation is repeated.

[0031] Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

Claims

1. A thermoforming slicing machine with automatic waste removal function, characterized in that, include: The work platform (1) has a square plate structure and fixed support legs at the bottom of the square plate. The work platform (1) has a platform cutout (11) at the center of the top. The bottom of the work platform (1) is fixedly connected to a lower slicing mold (3) near the platform cutout (11). The top two sides of the work platform (1) are fixedly connected to a conveying mechanism (4). The top of the work platform (1) is fixedly connected to a support frame (6) near the platform cutout (11). The top of the support frame (6) is fixedly connected to a work top plate (7). The bottom of the work top plate (7) is fixedly connected to a first electric push rod (10). The output end of the first electric push rod (10) is fixedly connected to an upper slicing mold (2). An external platform (8) is fixedly connected to the top of the external platform (8), and a material unloading mechanism (5) is slidably connected to the outside of the guide rod (13). The slice upper mold (2) includes: The upper module body (201) has a block groove (202) inside, and a block support rod (203) is slidably connected inside the block groove (202). A spring strip (207) is sleeved on the outside of the block support rod (203). And a cutting block (204) is provided at the bottom of the upper module body (201), the cutting block (204) being fixedly connected to the bottom of the upper module body (201).

2. The thermoforming slicing machine with automatic waste removal effect according to claim 1, characterized in that: The upper slicing mold (2) also includes: An upper mold support (205) is provided outside the upper module body (201) and is fixedly connected to the upper module body (201); The upper mold support (205) is slidably connected to the inner side of the upper mold slide rod (206), and the bottom of the upper mold slide rod (206) is fixedly connected to the counterweight block (208), and the bottom of the counterweight block (208) is fixedly connected to the soft rubber pad (209).

3. The thermoforming slicing machine with automatic waste removal effect according to claim 2, characterized in that: An annular housing (210) is fixedly connected to the top of the upper module body (201) near the upper mold slide rod (206), and a silicone pad (211) is provided inside the annular housing (210).

4. The thermoforming slicing machine with automatic waste removal effect according to claim 3, characterized in that: The bottom of the working platform (1) is fixedly connected to a cleaning mechanism (9) near the platform cut (11), and the bottom of the external platform (8) is fixedly connected to a feeding hopper (12).

5. The thermoforming slicing machine with automatic waste removal effect according to claim 1, characterized in that: The slicing lower mold (3) includes a lower mold frame (31), a second electric push rod (32) is fixedly connected to one side of the top of the lower mold frame (31), a lower mold housing (33) is fixedly connected to the output end of the second electric push rod (32), and a lower module (34) is fixedly connected to the top of the lower mold housing (33) at a position corresponding to the cutter block (204).

6. The thermoforming slicing machine with automatic waste removal effect according to claim 1, characterized in that: The unloading mechanism (5) includes an unloading slider (51), the outer side of the unloading slider (51) is slidably connected to the outer side of the guide rod (13), a third electric push rod (52) is fixedly connected to the bottom of the unloading slider (51), an unloading housing (53) is fixedly connected to the output end of the third electric push rod (52), and a suction pipe (54) is fixedly connected to the bottom of the unloading housing (53).

7. A thermoforming slicing machine with automatic waste removal effect according to claim 4, characterized in that: The cleaning mechanism (9) includes a cleaning housing (91), a perforated plate (94) is fixedly connected to one side of the outer side of the cleaning housing (91), a fan (93) is fixedly connected to the inside of the cleaning housing (91) away from the perforated plate (94), and a grid plate (92) is fixedly connected to the outside of the cleaning housing (91) near the fan (93).

8. A thermoforming slicing machine with automatic waste removal effect according to claim 1, characterized in that: The conveying mechanism (4) includes a telescopic frame (41), a connecting shaft (42) is rotatably connected between opposite surfaces of the telescopic frame (41), a motor (43) is fixedly connected to the outside of the telescopic frame (41), the output end of the motor (43) is fixedly connected to one end of the connecting shaft (42), and a conveying device (44) is provided outside the connecting shaft (42).

9. A thermoforming slicing machine with automatic waste removal effect according to claim 8, characterized in that: The conveying device (44) includes a conveying housing (441), a docking frame (442) is fixedly connected to the outside of the conveying housing (441), the conveying housing (441) is arranged in a mirror symmetrical distribution, a screw (443) is sleeved on the outside of the docking frame (442), a nut (444) is threaded on the outside of the screw (443), a housing cut (445) is opened at the circumference of the conveying housing (441), a beveled block (446) is fixedly connected to the inner wall of the housing cut (445), a conveyor belt (447) is sleeved on the outside of the housing cut (445), and a triangular block (448) is fixedly connected to the outside of the conveyor belt (447).