Mushroom cap rubber coating automatic water gap cutting device
The automatic water cutting device of mushroom cap is achieved by automatically loading the base, automatic removal of the mushroom cap and automatic removal of the water port, solving the problem of low manual operation efficiency and improving production efficiency and quality.
Patent Information
- Application Number
- CN202422450252.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-10
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-10-10
AI Technical Summary
In the production of existing mushroom caps, manual operation has problems such as inaccurate placement of the substrate, low efficiency and long time, which makes it difficult to improve production efficiency and quality.
The automatic water cutting device for mushroom caps is designed, including a feeding assembly and a water cutting assembly, to realize automatic feeding of the base, automatic removal of the mushroom cap and automatic cutting of the water port, instead of manual operation.
It improves the production efficiency and quality of mushroom caps, is more safe, and reduces the risk of manual operation.
Smart Images

Figure CN223147662U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of mushroom cap rubber coating production, in particular to an automatic mushroom cap rubber coating gate cutting device. Background Art
[0002] In the injection molding process of plastic products, gate materials will be generated, so the gate materials need to be cut off from the plastic products after being taken out of the mold. For example Figure 6 As shown in, a mushroom cap 20 for a game handle includes a base body 21 and a cladding 22, and the cladding 22 is formed on the outer side wall of the base body 21 by injection molding.
[0003] The production of the mushroom cap 20 involves processes such as feeding the base body 21, taking the mushroom cap 20 out of the mold, and cutting off the gate material 23 of the cladding 22. At present, the above processes are mainly completed manually by workers.
[0004] However, the manual operation method has the following deficiencies: Since the base body 21 is relatively small, it is too difficult to place it into the mold, and the problem of inaccurate placement is likely to occur; secondly, the manual operation method is too inefficient, and the above three processes take a long time, which will seriously restrict the production efficiency of the mushroom cap. Therefore, in order to improve the production quality and production efficiency of the mushroom cap, the automatic mushroom cap rubber coating gate cutting device of the present application is proposed to replace the manual operation of workers. Summary of the Utility Model
[0005] The purpose of the utility model is to overcome the deficiencies in the prior art and provide an automatic mushroom cap rubber coating gate cutting device for replacing manual operation to improve the production quality and production efficiency of mushroom caps.
[0006] The purpose of the utility model is achieved by the following technical solutions:
[0007] An automatic mushroom cap rubber coating gate cutting device, which is used to be adjacently installed on one side of a vertical injection molding machine, includes:
[0008] The feeding component, the feeding component includes a feeding table, a material tray, a stock preparation seat, a stock preparation driving part, a feeding driving part and a feeding head. The feeding table is adjacently arranged on one side of the vertical injection molding machine. The material tray is arranged on the feeding table. The stock preparation seat is slidably arranged on the feeding table. A plurality of material grooves are arranged at intervals on the stock preparation seat. The stock preparation driving part is arranged on the feeding table, and the output shaft of the stock preparation driving part is connected to the stock preparation seat. The stock preparation driving part is used to drive the stock preparation seat to slide so that each of the material grooves is sequentially connected to the discharge port of the material tray. The feeding driving part is arranged on the feeding table, and the feeding head is arranged on the output shaft of the feeding driving part. The feeding driving part is used to drive the feeding head to transfer the substrate from the stock preparation seat to the vertical injection molding machine; and
[0009] The gate cutting component, the gate cutting component includes a blanking table, a material loading seat, a material taking driving part, a material taking head, two cutting driving parts and two cutting knives. The blanking table is adjacently arranged on the side of the vertical injection molding machine away from the feeding table. The material loading seat is arranged on the blanking table. The material taking driving part is arranged on the blanking table. The material taking head is arranged on the output shaft of the material taking driving part. The material taking driving part is used to drive the material taking head to transfer the mushroom cap from the vertical injection molding machine to the material loading seat. The two cutting driving parts are respectively arranged on both sides of the material loading seat. The two cutting knives are respectively arranged on the output shafts of the two cutting driving parts. When the two cutting driving parts drive the two cutting knives to approach each other, the two cutting knives are used to cut the gate material of the mushroom cap located on the material loading seat.
[0010] Optionally, a linear vibrator is arranged at the discharge port of the material tray. A material discharging block is arranged at one end of the linear vibrator away from the material tray. When the stock preparation seat slides, each of the material grooves sequentially passes through the material discharging block.
[0011] Optionally, a material blocking air cylinder is arranged on the material discharging block. A material blocking rod is arranged on the output shaft of the material blocking air cylinder. When the material blocking air cylinder drives the material blocking rod to approach the material discharging block, the material blocking rod is used to abut against the substrate.
[0012] Optionally, both the stock preparation driving part and the feeding driving part are lead screw modules driven by motors.
[0013] Optionally, the feeding head includes a feeding air cylinder, a feeding plate and a plurality of feeding suction seats. The feeding air cylinder is arranged on the output shaft of the feeding driving part. The feeding plate is arranged on the output shaft of the feeding air cylinder. Each of the feeding suction seats is arranged at intervals on the bottom side of the feeding plate.
[0014] Optionally, a limiting column is respectively arranged at both ends of the feeding plate.
[0015] Optionally, a plurality of clearance grooves are formed in the cutting knife at intervals.
[0016] Optionally, an inclined cutting surface is provided on one side of the cutting knife close to the mushroom cap, and the top edge of the inclined cutting surface is used to cut off the sprue material of the mushroom cap.
[0017] Optionally, the gate cutting assembly further includes a transfer driving member disposed on the blanking table. The material loading seat is slidably disposed on the blanking table, and the material loading seat is connected to the output shaft of the transfer driving member. The transfer driving member is used to drive the material loading seat to approach or move away from the material taking head.
[0018] Optionally, the automatic mushroom cap rubber coating gate cutting device further includes a blanking assembly, which includes a blanking driving member, a blanking head and a material rail. The blanking driving member is disposed on the blanking table, the blanking head is disposed on the output shaft of the blanking driving member, and the material rail is inclinedly disposed at the edge position of the blanking table. The blanking driving member is used to drive the blanking head to reciprocate between the material loading seat and the material rail.
[0019] Compared with the prior art, the present utility model has at least the following advantages:
[0020] For the automatic mushroom cap rubber coating gate cutting device of the present utility model, the base body is automatically loaded into the vertical injection molding machine through the provided loading assembly. After the mushroom cap is injection molded, the gate cutting assembly automatically takes out the mushroom cap from the vertical injection molding machine and automatically cuts off the gate, replacing manual loading, unloading and gate cutting operations, with higher safety, and effectively improving the production efficiency and production quality of the mushroom cap. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the drawings required for the embodiments. It should be understood that the following drawings only show some embodiments of the present utility model, and therefore should not be regarded as limiting the scope. For those of ordinary skill in the art, other related drawings can be obtained based on these drawings without creative efforts.
[0022] Figure 1 It is a schematic structural diagram of an automatic mushroom cap rubber coating gate cutting device according to an embodiment of the present utility model;
[0023] Figure 2 It is a partial structural diagram of a loading assembly according to an embodiment of the present utility model;
[0024] Figure 3 It is a schematic structural diagram of a gate cutting assembly and a blanking assembly according to an embodiment of the present utility model;
[0025] Figure 4 is Figure 1 a partial enlarged structural schematic diagram of part A;
[0026] Figure 5 is a structural schematic diagram of a cutting knife according to an embodiment of the present utility model;
[0027] Figure 6 is a structural schematic diagram of a mushroom cap according to an embodiment of the present utility model.
[0028] Description of reference numerals:
[0029] 20, mushroom cap; 21, base body; 22, cladding; 23, sprue material; 10, automatic mushroom cap rubber coating and sprue cutting device; 30, vertical injection molding machine; 100, feeding assembly; 200, sprue cutting assembly; 110, feeding table; 120, material tray; 130, stock preparation seat; 140, stock preparation driving part; 150, feeding driving part; 160, feeding head; 131, material groove; 210, blanking table; 220, material loading seat; 230, material taking driving part; 240, material taking head; 250, cutting driving part; 260, cutting knife; 171, linear vibrator; 172, material discharging block; 173, material blocking cylinder; 174, material blocking rod; 161, feeding cylinder; 162, feeding plate; 163, feeding suction seat; 164, limiting column; 261, clearance groove; 262, inclined cutting edge surface; 270, transfer driving part; 300, blanking assembly; 310, blanking driving part; 320, blanking head; 330, material rail. Specific embodiments
[0030] To facilitate the understanding of the present utility model, the present utility model will be described more comprehensively below with reference to the relevant drawings. The preferred embodiments of the present utility model are shown in the drawings.
[0031] Such as Figure 1 and Figure 2As shown, a mushroom cap rubber-coated automatic gate-cutting device 10 is used to be adjacently installed on one side of a vertical injection molding machine 30, and includes a feeding component 100 and a gate-cutting component 200. The feeding component 100 includes a feeding table 110, a material tray 120, a stock preparation seat 130, a stock preparation driving part 140, a feeding driving part 150 and a feeding head 160. The feeding table 110 is adjacently arranged on one side of the vertical injection molding machine 30. The material tray 120 is arranged on the feeding table 110. The stock preparation seat 130 is slidably arranged on the feeding table 110. A plurality of spaced-apart material grooves 131 are formed on the stock preparation seat 130. The stock preparation driving part 140 is arranged on the feeding table 110, and the output shaft of the stock preparation driving part 140 is connected to the stock preparation seat 130. The stock preparation driving part 140 is used to drive the stock preparation seat 130 to slide so that each material groove 131 is sequentially connected to the discharge port of the material tray 120. The feeding driving part 150 is arranged on the feeding table 110. The feeding head 160 is arranged on the output shaft of the feeding driving part 150. The feeding driving part 150 is used to drive the feeding head 160 to transfer the substrate 21 from the stock preparation seat 130 to the vertical injection molding machine 30.
[0032] It should be noted that the feeding component 100 is used to transfer the substrate 21 into the vertical injection molding machine 30 so that a cladding 22 is formed on the outer side of the substrate 21 to form a mushroom cap 20. Among them, an injection mold is installed in the vertical injection molding machine 30, so that the feeding component 100 transfers the substrate 21 into the mold. Specifically, the feeding table 110 can be independently installed on one side of the vertical injection molding machine 30 or fixedly installed on the edge of the vertical injection molding machine 30 through bolts. The material tray 120 is a vibrating tray, and the material tray 120 is used to adjust the substrates 21 to a state with the same direction. In one embodiment, the stock preparation driving part 140 is a lead screw module driven by a motor. The stock preparation driving part 140 drives the stock preparation seat 130 to slide relative to the feeding table 110, so that when the material groove 131 of the stock preparation seat 130 is connected to the discharge port of the material tray 120, the substrates 21 in the material tray 120 move into the material groove 131. After each material groove 131 is filled with the substrate 21, the feeding driving part 150 drives the feeding head 160 to move, so that the feeding head 160 transfers the substrates 21 in each material groove 131 to the mold of the vertical injection molding machine 30. In this way, the automatic feeding operation of the substrate 21 is realized. In one embodiment, the feeding driving part 150 is also a lead screw module driven by a motor.
[0033] As Figure 1 and Figure 3As shown in the figure, the gate cutting assembly 200 includes a blanking table 210, a material loading seat 220, a material taking driving member 230, a material taking head 240, two material cutting driving members 250 and two cutting blades 260. The blanking table 210 is adjacently arranged on the side of the vertical injection molding machine 30 away from the feeding table 110. The material loading seat 220 is arranged on the blanking table 210. The material taking driving member 230 is arranged on the blanking table 210. The material taking head 240 is arranged on the output shaft of the material taking driving member 230. The material taking driving member 230 is used to drive the material taking head 240 to transfer the mushroom cap 20 from the vertical injection molding machine 30 to the material loading seat 220. The two material cutting driving members 250 are respectively arranged on both sides of the material loading seat 220. The two cutting blades 260 are respectively arranged on the output shafts of the two material cutting driving members 250. When the two material cutting driving members 250 drive the two cutting blades 260 to approach each other, the two cutting blades 260 cut off the gate material 23 of the mushroom cap 20 located on the material loading seat 220.
[0034] It should be noted that the gate cutting assembly 200 is installed on the side of the vertical injection molding machine 30 away from the feeding assembly 100, and the gate cutting assembly 200 is used to take out the formed mushroom cap 20 from the mold of the vertical injection molding machine 30. Specifically, the blanking table 210 is installed on one side of the vertical injection molding machine 30, the material loading seat 220 is installed on the blanking table 210, the material taking driving member 230 is installed on the blanking table 210, and the material taking head 240 is installed on the output shaft of the material taking driving member 230. In this way, the material taking driving member 230 drives the material taking head 240 to travel back and forth between the material loading seat 220 and the vertical injection molding machine 30, so that the material taking head 240 transfers the formed mushroom cap 20 from the mold of the vertical injection molding machine 30 to the material loading seat 220. In one embodiment, the material taking driving member 230 includes a material taking lifting part and a material taking transverse moving part, and both the material taking lifting part and the material taking transverse moving part are cylinders. In this way, under the combined action of the material taking lifting part and the material taking transverse moving part, the material taking head 240 can perform a linear motion along the horizontal direction and can perform a lifting motion along the vertical direction. Further, in one embodiment, the structure of the material taking head 240 is the same as that of the feeding head 160. Further, the two material cutting driving members 250 are both installed on the blanking table 210, and the two material cutting driving members 250 are respectively located on both sides of the material loading seat 220. The two cutting blades 260 are respectively installed on the output shafts of the two material cutting driving members 250. For example, the material cutting driving member 250 is a cylinder. In this way, when the two material cutting driving members 250 drive the two cutting blades 260 to approach each other and abut, the two cutting blades 260 cut off the gate material 23 on the cladding 22 of the mushroom cap 20. In this way, the automatic cutting operation of the gate material 23 of the mushroom cap 20 is realized.
[0035] In summary, the automatic mushroom cap encapsulation and gate cutting device 10 of the present application realizes automatic feeding of the substrate 21. After the mushroom cap 20 is formed, it realizes automatic discharging of the mushroom cap 20, and then automatically cuts the gate material 23 of the cladding 22. In this way, it replaces manual feeding, discharging and gate cutting operations, has higher safety, and effectively improves the production efficiency and production quality of the mushroom cap 20.
[0036] As Figure 1 and Figure 2 shown, in one embodiment, a linear vibrator 171 is provided at the discharge port of the tray 120. A material discharging block 172 is provided at one end of the linear vibrator 171 away from the tray 120. When the stock preparation seat 130 slides, each material groove 131 passes through the material discharging block 172 in sequence.
[0037] It should be noted that, in order to enable the substrates 21 in the tray 120 to be sequentially fed into the stock preparation seat 130, a linear vibrator 171 is installed at the discharge port of the tray 120. The linear vibrator 171 is equipped with a slideway that allows a single substrate 21 to slide through. Under the vibration of the linear vibrator 171, the substrates 21 enter the material discharging block 172 in sequence to be prepared to enter the material groove 131.
[0038] As Figure 2 shown, in one embodiment, a material blocking cylinder 173 is provided on the material discharging block 172. A material blocking rod 174 is provided on the output shaft of the material blocking cylinder 173. When the material blocking cylinder 173 drives the material blocking rod 174 to approach the material discharging block 172, the material blocking rod 174 abuts against the substrate 21.
[0039] It should be noted that, in order to transfer the substrates 21 one by one into the material groove 131, a material blocking cylinder 173 is installed on the material discharging block 172, so that when the material blocking cylinder 173 drives the material blocking rod 174 to slide downward, the material blocking rod 174 can block the substrates 21 in the material discharging block 172.
[0040] As Figure 1 and Figure 4 shown, in one embodiment, the feeding head 160 includes a feeding cylinder 161, a feeding plate 162 and a plurality of feeding suction seats 163. The feeding cylinder 161 is arranged on the output shaft of the feeding driving member 150. The feeding plate 162 is arranged on the output shaft of the feeding cylinder 161. Each feeding suction seat 163 is arranged at intervals on the bottom side of the feeding plate 162.
[0041] It should be noted that the feeding cylinder 161 is installed on the output shaft of the feeding driving member 150, and the feeding plate 162 is installed on the output shaft of the feeding cylinder 161. The feeding cylinder 161 drives the feeding plate 162 to move up and down. The feeding suction seats 163 are installed on the feeding plate 162 at intervals, and each feeding suction seat 163 is arranged downward along the vertical direction. Among them, the feeding suction seat 163 is communicated with the vacuum generator. In this way, the vacuum generator generates negative pressure in the feeding suction seat 163, so that the feeding suction seat 163 can suck the substrate 21.
[0042] As Figure 4 shown, in one embodiment, a limiting post 164 is provided at each end of the feeding plate 162. In this way, the distance between the feeding plate 162 and the stock preparation seat 130 or the mold in the vertical injection molding machine 30 is limited by the limiting post 164, ensuring that the substrate 21 can be stably picked up from the stock preparation seat 130 and can be stably placed in the mold of the vertical injection molding machine 30. It is avoided that the feeding plate 162 is too close to the stock preparation seat 130 or the mold of the vertical injection molding machine 30 resulting in failure of picking or placing materials.
[0043] As Figure 5 shown, in one embodiment, a plurality of spaced-apart relief grooves 261 are formed on the cutting knife 260. It should be noted that since a long rod structure is provided at the bottom of the substrate 21, in order to avoid the cutting knife 260 cutting the long rod structure, relief grooves 261 are formed on the cutting knife 260 to provide clearance for the long rod structure.
[0044] As Figure 5 shown, in one embodiment, a beveled edge surface 262 is provided on one side of the cutting knife 260 close to the mushroom cap 20, and the top edge of the beveled edge surface 262 is used to cut off the sprue material 23 of the mushroom cap 20.
[0045] It should be noted that the beveled edge surface 262 is an inclined structure. Specifically, the beveled edge surface 262 is inclined from top to bottom in a direction away from the mushroom cap 20. In this way, the top edge of the beveled edge surface 262 can accurately cut off the sprue material 23 at the bottom wall of the cladding 22.
[0046] As Figure 3 shown, in one embodiment, the gate cutting assembly 200 further includes a transfer driving member 270. The transfer driving member 270 is arranged on the blanking table 210. The material loading seat 220 is slidably arranged on the blanking table 210, and the material loading seat 220 is connected to the output shaft of the transfer driving member 270. The transfer driving member 270 is used to drive the material loading seat 220 to approach or move away from the picking head 240.
[0047] It should be noted that, compared with the structure where the material loading seat 220 is fixedly installed on the blanking table 210, in this embodiment, the material loading seat 220 is slidably installed on the blanking table 210. For example, a slide rail is installed on the blanking table 210, and the material loading seat 220 is slidably installed on the slide rail. Then, the transfer driving member 270 drives the material loading seat 220 to slide relative to the blanking table 210. In this way, after the picking head 240 picks up the mushroom cap 20 from the mold and places it on the material loading seat 220 under the drive of the picking driving member 230, the sprue material 23 of the cladding 22 of the mushroom cap 20 is cut off by the cutting knife 260, and then the transfer driving member 270 drives the material loading seat 220 to slide out of the blanking table 210, so that the worker can take away the mushroom cap 20 in the material loading seat 220 for blanking. For example, the transfer driving member 270 is also a cylinder.
[0048] As Figure 1 and Figure 3 shown, in one embodiment, the automatic mushroom cap rubber coating and sprue cutting device 10 further includes a blanking assembly 300. The blanking assembly 300 includes a blanking driving member 310, a blanking head 320, and a material rail 330. The blanking driving member 310 is disposed on the blanking table 210, the blanking head 320 is disposed on the output shaft of the blanking driving member 310, and the material rail 330 is inclinedly disposed at the edge position of the blanking table 210. The blanking driving member 310 is used to drive the blanking head 320 to reciprocate between the material loading seat 220 and the material rail 330.
[0049] It should be noted that in order to realize automatic collection of the mushroom cap 20 without manual removal from the material loading seat 220, the above structure is provided. Specifically, the material rail 330 is inclinedly installed at the edge position of the blanking table 210 and is aligned with the cargo box. In this way, the blanking driving member 310 drives the blanking head 320 to pick up the mushroom cap 20 of the material loading seat 220 and transfer it into the material rail 330, and the mushroom cap 20 falls into the cargo box along the material rail 330. In this way, automatic feeding, automatic sprue cutting, and automatic blanking of the mushroom cap 20 are realized, without manual operation by the worker, thereby effectively improving the production efficiency and production quality of the mushroom cap 20. In one embodiment, the blanking driving member 310 is also a cylinder, and the structure of the blanking head 320 is the same as that of the feeding head 160.
[0050] The above-described embodiments merely represent several implementation manners of the present utility model. The description thereof is relatively specific and detailed, but it should not be construed as a limitation on the scope of the utility model patent. Among them, the installation / fixing / setting mentioned in the present utility model, unless otherwise specifically defined, can be understood to include but not limited to locking and fixing by using screws or welding. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present utility model, several deformations and improvements can still be made, and these all belong to the protection scope of the present utility model. Therefore, the protection scope of the present utility model patent shall be subject to the appended claims.
Claims
1. An automatic mushroom cap rubber - coated gate cutting device, which is used to be adjacently installed on one side of a vertical injection molding machine, is characterized in that, Comprising: A loading component, which includes a loading table, a material tray, a stock preparation seat, a stock preparation driving member, a loading driving member and a loading head. The loading table is adjacently arranged on one side of the vertical injection molding machine. The material tray is arranged on the loading table. The stock preparation seat is slidably arranged on the loading table. A plurality of spaced-apart material grooves are formed on the stock preparation seat. The stock preparation driving member is arranged on the loading table, and the output shaft of the stock preparation driving member is connected to the stock preparation seat. The stock preparation driving member is used to drive the stock preparation seat to slide, so that each of the material grooves is sequentially connected to the discharge port of the material tray. The loading driving member is arranged on the loading table, and the loading head is arranged on the output shaft of the loading driving member. The loading driving member is used to drive the loading head to transfer the substrate from the stock preparation seat to the vertical injection molding machine; and A gate cutting component, which includes a blanking table, a material loading seat, a picking driving member, a picking head, two cutting driving members and two cutting knives. The blanking table is adjacently arranged on the side of the vertical injection molding machine away from the loading table. The material loading seat is arranged on the blanking table. The picking driving member is arranged on the blanking table. The picking head is arranged on the output shaft of the picking driving member. The picking driving member is used to drive the picking head to transfer the mushroom cap from the vertical injection molding machine to the material loading seat. The two cutting driving members are respectively arranged on both sides of the material loading seat. The two cutting knives are respectively arranged on the output shafts of the two cutting driving members. When the two cutting driving members drive the two cutting knives to approach each other, the two cutting knives are used to cut off the gate material of the mushroom cap located on the material loading seat.
2. The automatic mushroom cap rubber-coated gate cutting device according to claim 1, characterized in that, A linear vibrator is arranged at the discharge port of the material tray. A discharging block is arranged at one end of the linear vibrator away from the material tray. When the stock preparation seat slides, each of the material grooves sequentially passes through the discharging block.
3. The mushroom cap rubber-coated automatic gate-cutting device according to claim 2, characterized in that, A material blocking cylinder is arranged on the discharging block. A material blocking rod is arranged on the output shaft of the material blocking cylinder. When the material blocking cylinder drives the material blocking rod to approach the discharging block, the material blocking rod is used to abut against the substrate.
4. The mushroom cap rubber-coated automatic gate cutting device according to claim 1, characterized in that Both the stock preparation driving member and the loading driving member are lead screw modules driven by motors.
5. The mushroom cap rubber-coated automatic gate cutting device according to claim 1, wherein, The loading head includes a loading cylinder, a loading plate and a plurality of loading suction seats. The loading cylinder is arranged on the output shaft of the loading driving member. The loading plate is arranged on the output shaft of the loading cylinder. Each of the loading suction seats is spaced apart on the bottom side surface of the loading plate.
6. The mushroom cap rubber-coated automatic gate cutting device according to claim 5, wherein, A limiting column is respectively arranged at both ends of the loading plate.
7. The mushroom cap rubber-coated automatic gate cutting device according to claim 1, characterized in that, A plurality of spaced-apart relief grooves are formed on the cutting knife.
8. The mushroom cap rubber-coated automatic gate cutting device according to claim 7, characterized in that, An inclined cutting surface is arranged on the side surface of the cutting knife close to the mushroom cap. The top edge of the inclined cutting surface is used to cut off the gate material of the mushroom cap.
9. The mushroom cap rubber-coated automatic gate cutting device according to claim 1, characterized in that, The gate cutting component further includes a transfer driving member. The transfer driving member is arranged on the blanking table. The material loading seat is slidably arranged on the blanking table, and the material loading seat is connected to the output shaft of the transfer driving member. The transfer driving member is used to drive the material loading seat to approach or move away from the picking head.
10. The mushroom cap rubber-coated automatic gate-cutting device according to claim 9, characterized in that, The mushroom cap rubber-coated automatic gate-cutting device further includes a blanking assembly. The blanking assembly includes a blanking driving member, a blanking head, and a material rail. The blanking driving member is arranged on the blanking table. The blanking head is arranged on the output shaft of the blanking driving member. The material rail is inclinedly arranged at the edge position of the blanking table. The blanking driving member is used to drive the blanking head to reciprocate between the material loading seat and the material rail.