A production and processing equipment for paper core cork stoppers and its usage method
By designing paper core wood plug head production and processing equipment, the extrusion forming and cutting of paper cores is achieved by combining the propulsion cylinder and the processing cylinder, and combining the suction fan and the crushing system, the problem of existing equipment requiring later polishing is solved, production efficiency and output are improved, and resource recycling is realized.
Patent Information
- Application Number
- CN202311170197.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-12
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2043-09-12
AI Technical Summary
The existing wood plug production equipment needs to be further polished after forming, resulting in low production efficiency and affecting the production progress.
Design a paper core wood plug head production and processing equipment, including material preparation components, recycling and recycling components and chip cleaning components. By promoting the cooperation between the cylinder and the processing cylinder, the paper core is extruded and molded and cut, and combined with the suction fan and crushing system, the waste chip recycling and reuse is realized, and the later cutting and grinding steps are reduced.
It improves the efficiency of timber production, reduces grinding time, improves output, and reduces waste of wood resources through recycling and recycling, providing contributions to environmental protection.
Smart Images

Figure CN117103784B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cork production, and specifically provides a production and processing device for paper core cork heads and a method for using the same. Background Art
[0002] A paper core tube plug is a common packaging material, which consists of two parts: a paper core tube and a plug. The paper core tube is formed by pressing multiple layers of cardboard and has a certain strength and hardness, while the plug is made of plastic or a composite material of plastic and metal and has a certain flexibility and sealing property.
[0003] In the prior art, such as the "cork processing device" with Chinese patent number CN101544007A, mainly consists of three major parts: a grinding part, a cutting part, and a chamfering part. Its characteristics are as follows: two conveying wheels squeeze and rotate a soft wooden rod into a rough grinding wheel, and the two grinding wheels rotate simultaneously to roughly grind the soft wooden rod; the soft wooden rod rotates and slides into the fine grinding wheels, while being ground and sliding towards the outlet direction to complete the grinding. When the cork slides outwards from the outlet, the blade rotates at high speed and the blade holder rotates driven by a turbine. The blade continuously cuts the soft wooden rod sliding out of the outlet to the required length and drops it into a vibrating basin. The rear seat of the vibrating basin vibrates, causing the corks in the basin to be arranged orderly along the spiral groove in the vibrating basin and sent to the conveyor belt through the outlet. The corks are sent to the front of the crankcase slider, and the slider pushes forward to push the corks onto the conveyor belt. They roll forward between the pressure strip and the conveyor belt, and the grinding wheel grinds off one corner and then the other corner, and the cork processing is completed.
[0004] However, in the prior art, the existing cork production and processing equipment needs to further perform grinding treatment on the cork after forming during cork production. Due to the large quantity of cork production, the grinding treatment will reduce the production efficiency, thereby affecting the production progress.
[0005] Therefore, we propose a production and processing device for paper core cork heads and a method for using the same to solve the problems mentioned above. Summary of the Invention
[0006] The purpose of the present invention is to provide a production and processing device for paper core cork heads and a method for using the same to solve the problem that the production progress is affected due to the long time of the cork grinding treatment process as mentioned in the above background art.
[0007] To achieve the above object, the present invention provides the following technical solutions: A production and processing equipment for paper core corks, including a feeding component, a recycling component is installed at the bottom of the feeding component, a processing component is installed on the side of the recycling component, a chip cleaning component is installed at one end of the top of the recycling component, a feeding tank is arranged outside the feeding component, a push plate is slidably installed inside the feeding tank, two telescopic push rods are installed on the side of the push plate, a processing cylinder is installed on the top of the processing component, a processing telescopic rod is connected to the bottom of the processing cylinder, an extrusion box is installed at the bottom of the processing telescopic rod, a plurality of forming sleeves are evenly distributed at the bottom of the extrusion box, and an extrusion disc is movably installed inside the forming sleeve;
[0008] Two suction boxes are installed on the top of the chip cleaning component, a plurality of hoses are evenly distributed at the bottom of the suction box, a gravity suction ball is connected to the bottom of the hose, a flexible connecting pipe is connected to one end of the suction box, a suction fan is installed at one end of the flexible connecting pipe, a crushing box is arranged outside the recycling component, two transmission shafts are arranged inside the crushing box, a plurality of crushing knives are distributed on the outer wall of the transmission shaft, air delivery boxes are installed on both sides of the recycling component, a plurality of jet nozzles are evenly distributed on the side of the air delivery box, and the jet nozzles penetrate inside the recycling component.
[0009] Preferably, an extrusion groove is arranged at the inner bottom of the feeding tank, induction strips are symmetrically arranged on both sides of the inner wall of the feeding tank, a pushing cylinder is installed at one end of the telescopic push rod, a connecting box is installed at one end of the inner side of the feeding tank, the outer side of the telescopic push rod penetrates through the inner side of the connecting box, one end of the pushing cylinder is connected to the side of the connecting box, and a bottom support frame is fixedly installed at the bottom of the feeding tank.
[0010] Preferably, a side support frame is installed on the side of the feeding tank, a top support frame is fixedly installed on the side of the side support frame, the bottom of the processing cylinder is connected to the top of the top support frame, the top of the processing telescopic rod movably penetrates through the inner side of the top support frame, guide columns are arranged at the four corners of the top of the extrusion box, the guide columns movably penetrate through the four corners of the top support frame, and a bottom plate is fixedly installed at the bottom of the side support frame.
[0011] Preferably, the top of the extrusion disc penetrates through the bottom of the extrusion box, the top of the extrusion disc is connected to a top frame, the top frame is movably installed inside the extrusion box, and a plurality of electric telescopic rods are distributed at the bottom of the top frame.
[0012] Preferably, a telescopic track is installed on the top of the suction box, a telescopic push rod is installed on the top of the telescopic track, a lateral slide rail is installed at one end of the telescopic track, a lateral push rod is installed on the top of the lateral slide rail, and both ends of the lateral push rod are connected to one end of the telescopic push rod.
[0013] Preferably, two lifting slide rails are symmetrically arranged on one side of the lateral slide rail. A lifting push rod is connected to the bottom of the side of the lateral slide rail. The bottom of the lifting push rod is connected to a translation slide rail. One end of the translation slide rail is threadedly connected to a translation lead screw, and one end of the translation lead screw is equipped with a translation motor.
[0014] Preferably, the bottom of the translation slide rail is installed on the top of the crushing box. A feeding port is installed on the top of the crushing box. A crushing motor is installed at one end of the crushing box, and one end of the crushing motor is connected to one end of a transmission shaft.
[0015] Preferably, an air pump is installed at the other end of the crushing box. The bottom of the air pump is fixedly connected to two air delivery pipes. The outer side of the air delivery pipe is connected to the bottom of an air delivery box. A recovery box is installed at the bottom of the crushing box, and a side-opening cover plate is movably installed on one side of the recovery box.
[0016] A method for using a paper core wooden plug head production and processing device includes the following steps:
[0017] S1. First, a large amount of processed and crushed paper cores are put into the interior of the preparation tank. The telescopic movement of the pushing cylinder is pneumatically controlled to extend the push rod, and then the push plate is pushed to push the paper cores, so as to put in a large amount of paper cores for more compact extrusion. When it is pushed to the position of the induction strip in the forming mode, the pushing stops through a sensing method.
[0018] S2. At the same time, the processing cylinder pneumatically controls the downward push of the processing telescopic rod, and then drives the extrusion box to press on the top of the paper core, so that the paper core forms a square shape. During the downward push, the forming sleeve will cut the square block into the shape of a wooden plug through the cut at the bottom.
[0019] S3. And after cutting and forming, the electric telescopic rod will contract, driving the top frame to press down, thereby driving the extrusion disc to further press down inside the forming sleeve, so that the cut paper core wooden plug is more tightly formed. The integrated forming does not require later cutting and grinding, improving production efficiency.
[0020] S4. After the wooden plug is formed, the extrusion box will rise under the control of the processing cylinder and the processing telescopic rod. At the same time, the pushing cylinder pushes the telescopic push rod to drive the push plate to extend and push, pushing the excess material to the position of the blanking cover plate, and using the diagonal telescopic rod to control the opening of the blanking cover plate, so that the waste can be put into the interior of the crushing box through the feeding port for recycling.
[0021] S5. Subsequently, the electric telescopic rod contracts again to drive the top frame to press down, so that the extrusion disc pushes out the wooden plug formed inside the forming sleeve. The formed wooden plug will fall on the extrusion groove, facilitating the staff to quickly collect it. After collection, the above operations are repeated again.
[0022] S6. During the production process, the suction fan is connected to the suction box through a flexible pipe. The hose is connected to the gravity suction balls which are distributed on the suction box. Thus, the strong suction force generated by the suction fan sucks the waste chips from the gravity suction balls. Subsequently, the waste chips are sucked into the inside of the crushing box through the hose, the suction box and the flexible pipe for recycling. The gravity suction balls have a certain gravity and can cooperate with the flexible hose to provide suction for multiple dead corners of the equipment.
[0023] S7. During the suction process, the cooperation of the telescopic track and the telescopic push rod can control the extension of the suction box. The cooperation of the lateral slide rail and the lateral push rod can control the telescopic track and the suction box to expand to both sides or merge inward. At the same time, the lifting slide rail and the lifting push rod can provide lifting adjustment control to achieve height adjustment. And with the cooperation of the translation motor driving the translation screw rod to control the translation of the translation slide rail, it helps to increase the scope of suction cleaning.
[0024] S8. The waste materials and waste chips recovered into the inside of the crushing box can be crushed again by the crushing motor driving the transmission shaft with the crushing knife. During the crushing process, the air pump is connected to the air jet nozzles distributed on one side of the air delivery box through the air delivery pipe. Thus, the waste chips can be blown up by the air pressure during crushing and repeatedly crushed by the crushing knife. After crushing, the paper cores are recovered and stored inside the recycling box and can be taken out through the opening of the side cover plate for recycling again.
[0025] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0026] 1. By pneumatically controlling the telescopic movement of the pushing cylinder, the push rod extends, and then the push plate is pushed to push the paper cores, so that a large number of paper cores are put in to be squeezed more tightly. The processing cylinder pneumatically controls the downward push of the processing telescopic rod, and then drives the extrusion box to press on the top of the paper cores, making the paper cores form a square shape. When pushing down, the forming sleeve cuts the square block into a cork shape through the incision at the bottom. After cutting and forming, the electric telescopic rod will contract, driving the top frame to press down, and then driving the extrusion disc to press down further inside the forming sleeve, making the cut paper core corks more tightly formed. The integrated forming does not require later cutting and grinding, improving the production efficiency, ensuring the production progress of the corks, and thus being beneficial to further increasing the output.
[0027] 2. The telescopic push rod is driven by a pushing cylinder to drive the push plate to extend and push, so as to push the redundant materials to the position of the blanking cover plate. The inclined telescopic rod is used to control the opening of the blanking cover plate, so that the waste materials can be put into the inside of the crushing box through the feeding port for recycling. The waste materials and chips recovered into the inside of the crushing box can be crushed again by the crushing motor driving the transmission shaft with the crushing knife. During the crushing process, the air pump is connected to the air nozzles distributed on one side of the air delivery box through the air delivery pipeline, and then the air pressure can be used to blow up the chips during crushing and perform repeated crushing operations with the crushing knife. After crushing, the paper cores are recovered and stored in the inside of the recycling box, and can be taken out and recycled again by opening the side opening cover plate. The adoption of recycling is beneficial to reducing the waste of wood resources, improving the saving effect, and making contributions to environmental protection.
[0028] 3. The strong suction force generated by the suction fan sucks the chips from the gravity suction ball, and then the chips are sucked into the inner side of the crushing box through the hose, the material suction box and the flexible connection pipe for recycling. The gravity suction ball has a certain gravity and can cooperate with the flexible action of the hose to provide a suction effect on multiple dead corners of the equipment. During the suction process, the cooperation of the telescopic track and the telescopic push rod can control the extension of the material suction box, and the cooperation of the lateral slide rail and the lateral push rod can control the telescopic track and the material suction box to expand to both sides or merge inward. At the same time, the lifting slide rail and the lifting push rod can provide lifting adjustment control to realize height adjustment, and cooperate with the translation motor to drive the translation screw rod to control the translation operation of the translation slide rail, which helps to increase the range of suction cleaning, so as to effectively reduce the problem that the operation of the equipment is affected by the accumulation of chips. Description of the Drawings
[0029] Figure 1 It is a three-dimensional structure schematic diagram of a paper core wooden plug head production and processing equipment of the present invention;
[0030] Figure 2 It is a schematic diagram of the structure of another angle of a paper core wooden plug head production and processing equipment of the present invention;
[0031] Figure 3 It is a schematic diagram of the structure of the stock preparation component of a paper core wooden plug head production and processing equipment of the present invention;
[0032] Figure 4 It is a schematic diagram of the structure of the processing component of a paper core wooden plug head production and processing equipment of the present invention;
[0033] Figure 5 It is a paper core wooden plug head production and processing equipment of the present invention Figure 4 The enlarged structure schematic diagram at A in;
[0034] Figure 6 It is a schematic diagram of the structure of the chip cleaning component of a paper core wooden plug head production and processing equipment of the present invention;
[0035] Figure 7 This is a schematic diagram of another angle structure of the chip cleaning component of a production and processing device for a paper core cork head according to the present invention;
[0036] Figure 8 This is a schematic diagram of the structure of the recycling and circulation component of a production and processing device for a paper core cork head according to the present invention.
[0037] In the figure:
[0038] 1. Stock preparation component; 101. Stock preparation tank; 102. Extrusion tank; 103. Induction strip; 104. Push plate; 105. Telescopic push rod; 106. Connection box; 107. Pushing cylinder; 108. Feeding cover plate; 109. Oblique pulling telescopic rod; 110. Bottom support frame; 2. Processing component; 201. Side support frame; 202. Top support frame; 203. Processing cylinder; 204. Processing telescopic rod; 205. Extrusion box; 206. Forming sleeve; 207. Guide post; 208. Bottom plate; 209. Extrusion disc; 210. Electric telescopic rod; 211. Top frame; 3. Chip cleaning component; 301. Gravity suction ball; 302. Hose; 303. Suction box; 304. Flexible connection pipe; 305. Suction fan; 306. Telescopic track; 307. Telescopic push rod; 308. Lateral slide rail; 309. Lateral push rod; 310. Lifting slide rail; 311. Lifting push rod; 312. Translation slide rail; 313. Translation lead screw; 314. Translation motor; 4. Recycling and circulation component; 401. Feeding port; 402. Crushing box; 403. Crushing motor; 404. Transmission shaft; 405. Crushing knife; 406. Air pump; 407. Air transmission pipeline; 408. Air transmission box; 409. Jet nozzle; 410. Recycling box; 411. Side opening cover plate. Specific embodiments
[0039] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0040] Embodiment 1: Please refer to Figures 1-8, the present invention provides a technical solution: a production and processing equipment for paper core corks, including a feeding component 1. A recycling and circulating component 4 is installed at the bottom of the feeding component 1. A processing component 2 is installed on the side of the recycling and circulating component 4. One end of the top of the recycling and circulating component 4 is installed with a chip cleaning component 3. A feeding groove 101 is arranged outside the feeding component 1. A push plate 104 is slidably installed inside the feeding groove 101. Two telescopic push rods 105 are installed on the side of the push plate 104. A processing cylinder 203 is installed on the top of the processing component 2. The bottom of the processing cylinder 203 is connected with a processing telescopic rod 204. The bottom of the processing telescopic rod 204 is installed with an extrusion box 205. A plurality of forming sleeves 206 are evenly distributed at the bottom of the extrusion box 205. An extrusion disc 209 is movably installed inside the forming sleeve 206. A large amount of processed and crushed paper cores are put into the inside of the feeding groove 101. The telescopic push rod 105 is extended by pneumatic control of the pushing cylinder 107, and then the push plate 104 is pushed to push the paper core to one side, and a large amount of paper cores are put in to facilitate more compact extrusion. The processing cylinder 203 pneumatically controls the downward push of the processing telescopic rod 204, and then drives the extrusion box 205 to extrude on the top of the paper core, so that the paper core forms a square shape. During the downward push, the forming sleeve 206 will cut the square block into the shape of a cork through the bottom cut. After cutting and forming, the electric telescopic rod 210 will contract, driving the top frame 211 to press down, thereby driving the extrusion disc 209 to further press down inside the forming sleeve 206, so that the cut paper core cork is more tightly formed;
[0041] There are two suction boxes 303 installed on the top of the chip cleaning component 3. A plurality of hoses 302 are evenly distributed at the bottom of the suction box 303. The bottom of the hose 302 is connected with a gravity suction ball 301. One end of the suction box 303 is connected with a flexible pipe 304. One end of the flexible pipe 304 is installed with a suction fan 305. A crushing box 402 is arranged on the outside of the recycling and circulation component 4. There are two transmission shafts 404 arranged inside the crushing box 402. A plurality of crushing knives 405 are distributed on the outer wall of the transmission shaft 404. Air delivery boxes 408 are installed on both sides of the recycling and circulation component 4. A plurality of air nozzles 409 are evenly distributed on the side surface of the air delivery box 408. The air nozzles 409 penetrate through the inner side of the recycling and circulation component 4. The suction fan 305 is communicated with the suction box 303 through the flexible pipe 304. The hoses 302 and the gravity suction balls 301 are communicated and distributed on the suction box 303. Thus, strong suction force is generated by the suction fan 305 to suck the waste chips from the gravity suction balls 301. Then, the waste chips are sucked into the inner side of the crushing box 402 through the hoses 302, the suction box 303 and the flexible pipe 304 for recycling. Among them, the gravity suction balls 301 have a certain gravity, and can cooperate with the flexible action of the hoses 302 to provide a suction function for multiple dead corners of the equipment. The waste materials and waste chips recovered into the inner part of the crushing box 402 can be driven by the crushing motor 403 to drive the transmission shaft 404 and be crushed again by the crushing knives 405. During the crushing process, the air pump 406 is communicated with the air nozzles 409 distributed on one side of the air delivery box 408 through the air delivery pipeline 407. Furthermore, the waste chips can be blown up by the air pressure during crushing and be repeatedly crushed by the crushing knives 405. After crushing, the paper cores are recovered and stored inside the recycling box 410. They can be taken out through the side-opening cover plate 411 for recycling again.
[0042] Such as Figure 3As shown in the figure, an extrusion groove 102 is provided at the inner bottom of the stock preparation tank 101. Induction strips 103 are symmetrically arranged on both sides of the inner wall of the stock preparation tank 101. One end of the telescopic push rod 105 is equipped with a pushing cylinder 107. A connection box 106 is installed at one end of the inner side of the stock preparation tank 101. The outer side of the telescopic push rod 105 penetrates through the inner side of the connection box 106. One end of the pushing cylinder 107 is connected to the side surface of the connection box 106. A bottom support frame 110 is fixedly installed at the bottom of the stock preparation tank 101. The extrusion groove 102 facilitates providing an auxiliary function during cutting, which is beneficial to deep cutting of the forming sleeve 206 and improves the cutting and forming effect. The induction strip 103 uses electromagnetic sensing and can switch to work in different modes. In the extrusion forming mode, when the push plate 104 moves to the position of the induction strip 103, it can provide induction positioning control, causing the pushing cylinder 107 to stop pushing, which is beneficial to avoiding the situation that the extrusion box 205 contacts the push plate 104 and causes extrusion damage when the extrusion box 205 descends. After the extrusion is completed, when the components of the processing assembly 2 rise, the pushing cylinder 107 can be used to control the telescopic push rod 105 to further extend and push the push plate 104, making the push plate 104 close to the blanking cover plate 108, which is convenient for pushing out the excess waste. The connection box 106 provides a stable installation function for the pushing cylinder 107 and the telescopic push rod 105.
[0043] As Figure 4 and Figure 5 shown in the figure, a side support frame 201 is installed on the side surface of the stock preparation tank 101. A top support frame 202 is fixedly installed on the side surface of the side support frame 201. The bottom of the processing cylinder 203 is connected to the top of the top support frame 202. The top of the processing telescopic rod 204 movably penetrates through the inner side of the top support frame 202. Guide columns 207 are provided at the four corners of the top of the extrusion box 205. The guide columns 207 movably penetrate through the four corners of the top support frame 202. A bottom plate 208 is fixedly installed at the bottom of the side support frame 201. The side support frame 201 and the top support frame 202 provide an installation support function for the components of the processing cylinder 203. The guide columns 207 are beneficial to providing a guiding and supporting function when the extrusion box 205 is lifted and lowered, ensuring the stability during lifting and lowering. The bottom plate 208 provides a stable support and installation function for the whole at the bottom.
[0044] As Figure 4 and Figure 5 shown in the figure, the top of the extrusion disc 209 penetrates through the bottom of the extrusion box 205. The top of the extrusion disc 209 is connected to a top frame 211. The top frame 211 is movably installed inside the extrusion box 205. A plurality of electric telescopic rods 210 are distributed at the bottom of the top frame 211. Through the telescopic adjustment function of the electric telescopic rods 210, the top frame 211 can be driven to realize lifting adjustment, and then the extrusion disc 209 installed at the bottom of the top frame 211 can be driven to realize the effect of lifting adjustment, ensuring the normal operation of the extrusion function.
[0045] AsFigure 6 and Figure 7 As shown in Figure 7 , a telescopic rail 306 is installed at the top of the material suction box 303, a telescopic push rod 307 is installed at the top of the telescopic rail 306, a lateral slide rail 308 is installed at one end of the telescopic rail 306, a lateral push rod 309 is installed at the top of the lateral slide rail 308, and both ends of the lateral push rod 309 are connected to one end of the telescopic push rod 307. By connecting the telescopic rail 306 with the telescopic push rod 307, the telescopic control function of the telescopic push rod 307 can be used to drive the telescopic rail 306 and the components of the material suction box 303 to achieve the lifting adjustment effect. By cooperating the lateral slide rail 308 with the lateral push rod 309, the material suction box 303 can be controlled to achieve the functions of expansion and contraction, which is beneficial to expanding the cleaning range.
[0046] As Figure 6 and Figure 7 shown, two lifting slide rails 310 are symmetrically arranged on one side of the lateral slide rail 308. The bottom of the side of the lateral slide rail 308 is connected to a lifting push rod 311, the bottom of the lifting push rod 311 is connected to a translation slide rail 312, one end of the 212 is threadedly connected to a translation lead screw 313, and a translation motor 314 is installed at one end of the translation lead screw 313. The cooperation of the lifting slide rail 310 and the lifting push rod 311 uses pneumatic control to achieve height adjustment, and the translation motor 314 drives the translation lead screw 313 to rotate to achieve the translation operation of the translation slide rail 312, which is beneficial to providing multi-position cleaning operations.
[0047] As Figure 8 shown, the bottom of the translation slide rail 312 is installed on the top of the crushing box 402. An inlet 401 is installed on the top of the crushing box 402. A crushing motor 403 is installed at one end of the crushing box 402, and one end of the crushing motor 403 is connected to one end of the transmission shaft 404. Through the inlet 401, it is convenient to discharge the excess waste in the preparation tank 101 through the blanking cover plate 108 and then collect it inside the crushing box 402. The crushing motor 403 can drive the transmission shaft 404 and the crushing knife 405 to rotate to achieve the crushing work.
[0048] As Figure 8 shown, an air pump 406 is installed at the other end of the crushing box 402. Two air delivery pipes 407 are fixedly connected to the bottom of the air pump 406. The outside of the air delivery pipes 407 is connected to the bottom of the air delivery box 408. A recycling box 410 is installed at the bottom of the crushing box 402. A side-opening cover plate 411 is movably installed on one side of the recycling box 410. The air pump 406 can accumulate air pressure, which is delivered to the air delivery box 408 through the air delivery pipes 407, and finally the air pressure is ejected from the air jet nozzle 409, which is beneficial to blowing up and agitating the waste chips inside and improving the efficiency of the crushing work. Through the side-opening cover plate 411, it is convenient to recycle the paper cores processed and recycled inside the recycling box 410.
[0049] The working principle of the whole mechanism is as follows: First, a large amount of processed and crushed paper cores are put into the interior of the stock preparation tank 101. The telescopic push rod 105 is pneumatically controlled to extend by the pushing cylinder 107, and then the push plate 104 is pushed to push the paper cores to one side, so as to put in a large amount of paper cores for more compact extrusion. When pushed to the position of the induction bar 103 in the forming mode, the pushing stops through the sensing method. At the same time, the processing cylinder 203 pneumatically controls the processing telescopic rod 204 to push down, and then drives the extrusion box 205 to extrude on the top of the paper core, so that the paper core forms a square shape. During the downward push, the forming sleeve 206 will cut the square block into the shape of a wooden plug through the incision at the bottom. And after cutting and forming, the electric telescopic rod 210 will contract, driving the top frame 211 to press down, thereby driving the extrusion disc 209 to further press down inside the forming sleeve 206, making the cut paper core wooden plug more tightly formed. The integrated forming does not require later cutting and grinding, improving the production efficiency. After the wooden plug is formed, the extrusion box 205 will rise under the control of the processing cylinder 203 and the processing telescopic rod 204. At the same time, the pushing cylinder 107 pushes the telescopic push rod 105 to drive the push plate 104 to extend and push, pushing the redundant materials to the position of the blanking cover plate 108, and using the diagonal telescopic rod 109 to control the opening of the blanking cover plate 108, so that the waste materials can be put into the interior of the crushing box 402 through the feeding port 401 for recycling. Subsequently, the electric telescopic rod 210 contracts again to drive the top frame 211 to press down, so that the extrusion disc 209 pushes out the wooden plug formed inside the forming sleeve 206. The formed wooden plugs will fall on the extrusion groove 102, facilitating the staff to collect them quickly. After collection, the above operations are repeated. During the production process, the suction fan 305 is connected to the suction box 303 through the flexible pipe 304, and the flexible pipe 302 is connected to the gravity suction ball 301 and distributed on the suction box 303. Thus, the strong suction force generated by the suction fan 305 sucks the waste chips from the gravity suction ball 301, and then the waste chips are sucked into the inner side of the crushing box 402 through the flexible pipe 302, the suction box 303 and the flexible pipe 304 for recycling. Among them, the gravity suction ball 301 has a certain gravity, and can cooperate with the flexible action of the flexible pipe 302 to provide a suction effect on multiple dead corners of the equipment. During the suction process, the cooperation of the telescopic track 306 and the telescopic push rod 307 can control the extension of the suction box 303. The cooperation of the lateral slide rail 308 and the lateral push rod 309 can control the telescopic track 306 and the suction box 303 to expand to both sides or merge inward. At the same time, the lifting slide rail 310 and the lifting push rod 311 can provide lifting adjustment control to realize height adjustment. And with the cooperation of the translation motor 314 driving the translation lead screw 313 to control the translation of the translation slide rail 312, it helps to increase the range of suction cleaning. The waste materials and waste chips recovered into the interior of the crushing box 402 can be crushed again by the crushing motor 403 driving the transmission shaft 404 using the crushing knife 405.During the crushing process, the air pump 406 is connected through the air delivery pipeline 407 to the air jet nozzles 409 distributed on one side of the air delivery box 408. Thus, during crushing, the waste chips can be blown up by air pressure and repeatedly crushed by the crushing knives 405. After crushing, the paper cores are recycled and stored inside the recycling box 410, and can be taken out and recycled again by opening the side-opening cover plate 411.,
[0050] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.,
Claims
1. A production and processing equipment for paper core corks, comprising a stock preparation component (1), characterized in that: A recycling and circulation component (4) is installed at the bottom of the stock preparation component (1). A processing component (2) is installed on the side of the recycling and circulation component (4). A chip cleaning component (3) is installed at one end of the top of the recycling and circulation component (4). A stock preparation groove (101) is arranged outside the stock preparation component (1). A push plate (104) is slidably installed inside the stock preparation groove (101). Two telescopic push rods (105) are installed on the side of the push plate (104). A processing cylinder (203) is installed on the top of the processing component (2). The bottom of the processing cylinder (203) is connected to a processing telescopic rod (204). An extrusion box (205) is installed at the bottom of the processing telescopic rod (204). A plurality of forming sleeves (206) are evenly distributed at the bottom of the extrusion box (205). An extrusion disc (209) is movably installed inside the forming sleeve (206). Two suction boxes (303) are installed on the top of the chip cleaning component (3). A plurality of hoses (302) are evenly distributed at the bottom of the suction box (303). A gravity suction ball (301) is connected to the bottom of the hose (302). One end of the suction box (303) is connected to a flexible connecting pipe (304). A suction fan (305) is installed at one end of the flexible connecting pipe (304). A crushing box (402) is arranged outside the recycling and circulation component (4). Two transmission shafts (404) are arranged inside the crushing box (402). A plurality of crushing knives (405) are distributed on the outer wall of the transmission shaft (404). Air delivery boxes (408) are installed on both sides of the recycling and circulation component (4). A plurality of air jet nozzles (409) are evenly distributed on the side of the air delivery box (408). The air jet nozzle (409) penetrates through the inside of the recycling and circulation component (4). An extrusion groove (102) is arranged at the inner bottom of the stock preparation groove (101). Induction strips (103) are symmetrically arranged on both sides of the inner wall of the stock preparation groove (101). A pushing cylinder (107) is installed at one end of the telescopic push rod (105). A connecting box (106) is installed at one end inside the stock preparation groove (101). The outer side of the telescopic push rod (105) penetrates through the inside of the connecting box (106). One end of the pushing cylinder (107) is connected to the side of the connecting box (106). A bottom support frame (110) is fixedly installed at the bottom of the stock preparation groove (101). A side support frame (201) is installed on the side of the stock preparation groove (101). A top support frame (202) is fixedly installed on the side of the side support frame (201). The bottom of the processing cylinder (203) is connected to the top of the top support frame (202). The top of the processing telescopic rod (204) movably penetrates through the inside of the top support frame (202). Guide columns (207) are arranged at the four corners of the top of the extrusion box (205). The guide column (207) movably penetrates through the four corners of the top support frame (202). A bottom plate (208) is fixedly installed at the bottom of the side support frame (201).
2. The paper core cork production and processing equipment according to claim 1, characterized in that: The top of the extrusion disc (209) penetrates through the bottom of the extrusion box (205). The top of the extrusion disc (209) is connected to a top frame (211). The top frame (211) is movably installed inside the extrusion box (205). A plurality of electric telescopic rods (210) are distributed at the bottom of the top frame (211).
3. The paper core cork production and processing equipment according to claim 2, characterized in that: A telescopic track (306) is installed at the top of the material suction box (303). A telescopic push rod (307) is installed at the top of the telescopic track (306). A lateral sliding rail (308) is installed at one end of the telescopic track (306). A lateral push rod (309) is installed at the top of the lateral sliding rail (308). Both ends of the lateral push rod (309) are connected to one end of the telescopic push rod (307).
4. The paper core cork head production and processing equipment according to claim 3, characterized in that: Two lifting sliding rails (310) are symmetrically arranged on one side of the lateral sliding rail (308). A lifting push rod (311) is connected to the bottom of the side of the lateral sliding rail (308). The bottom of the lifting push rod (311) is connected to a translation sliding rail (312). One end of the translation sliding rail (312) is threadedly connected to a translation lead screw (313). A translation motor (314) is installed at one end of the translation lead screw (313).
5. The paper core cork production and processing equipment according to claim 4, characterized in that: The bottom of the translation sliding rail (312) is installed on the top of the crushing box (402). A feed inlet (401) is installed on the top of the crushing box (402). A crushing motor (403) is installed at one end of the crushing box (402), and one end of the crushing motor (403) is connected to one end of a transmission shaft (404).
6. The paper core cork production and processing equipment according to claim 5, characterized in that: An air pump (406) is installed at the other end of the crushing box (402). Two air delivery pipes (407) are fixedly connected to the bottom of the air pump (406). The outer sides of the air delivery pipes (407) are connected to the bottom of an air delivery box (408). A recovery box (410) is installed at the bottom of the crushing box (402). A side-opening cover plate (411) is movably installed on one side of the recovery box (410).
7. A method of using a production and processing device for paper core cork stoppers, characterized in that, Using a paper core cork head production and processing device according to claim 6, comprising the following steps: S1. First, a large amount of processed and crushed paper cores are put into the interior of the preparation tank (101). The telescopic push rod (105) is pneumatically controlled to extend by the pushing cylinder (107), and then the push plate (104) is pushed to push the paper cores to one side, so as to put in a large amount of paper cores to be extruded more tightly. When it is pushed to the position of the induction strip (103) in the forming mode, the pushing is stopped by sensing means; S2. At the same time, the processing cylinder (203) pneumatically controls the processing telescopic rod (204) to push down, and then drives the extrusion box (205) to extrude on the top of the paper cores, so that the paper cores form a square shape. During the process of pushing down, the forming sleeve (206) will cut the square block into the shape of a cork through the notch at the bottom; S3. Moreover, after cutting and forming, the electric telescopic rod (210) will contract, driving the top frame (211) to press down, thereby driving the extrusion disc (209) to further press down inside the forming sleeve (206), making the cut paper core cork more tightly formed. The integrated forming eliminates the need for subsequent cutting and grinding, improving production efficiency. S4. After the cork is formed, the extrusion box (205) will rise under the control of the processing cylinder (203) and the processing telescopic rod (204). At the same time, the pushing cylinder (107) pushes the telescopic push rod (105) to drive the push plate (104) to extend and push the excess material to the position of the blanking cover plate (108). The inclined pull telescopic rod (109) is used to control the opening of the blanking cover plate (108), so that the waste is put into the inside of the crushing box (402) through the feeding port (401) for recycling. S5. Subsequently, the electric telescopic rod (210) contracts again to drive the top frame (211) to press down, so that the extrusion disc (209) pushes out the cork formed inside the forming sleeve (206). The formed cork will fall on the extrusion groove (102), which is convenient for the staff to quickly collect. After collection, the above operations are repeated. S6. During the production process, the suction fan (305) is connected to the suction box (303) through the flexible pipe (304). The hose (302) is connected to the gravity suction ball (301) and distributed on the suction box (303). Thus, the suction fan (305) generates a strong suction force to suck the waste chips from the gravity suction ball (301). Then, the waste chips are sucked into the inside of the crushing box (402) through the hose (302), the suction box (303) and the flexible pipe (304) for recycling. The gravity suction ball (301) has a certain gravity, and the flexible action of the hose (302) provides a suction function for multiple dead corners of the equipment. S7. During the suction process, the cooperation of the telescopic track (306) and the telescopic push rod (307) controls the extension of the suction box (303). The cooperation of the lateral slide rail (308) and the lateral push rod (309) controls the telescopic track (306) and the suction box (303) to expand to both sides or merge inward. At the same time, the lifting slide rail (310) and the lifting push rod (311) provide lifting adjustment control to achieve height adjustment. And with the cooperation of the translation motor (314) driving the translation screw rod (313) to control the translation operation of the translation slide rail (312), it helps to improve the scope of suction cleaning. S8. The waste materials and waste chips recovered into the inside of the crushing box (402) are re-crushed by the crushing motor (403) driving the transmission shaft (404) using the crushing knife (405). During the crushing process, the air pump (406) is connected to the jet nozzle (409) distributed on one side of the air delivery box (408) through the air delivery pipe (407). Then, during crushing, the waste chips are blown up by air pressure and repeatedly crushed by the crushing knife (405). After crushing, the paper core is recovered and stored inside the recycling box (410), and can be taken out by opening the side opening cover plate (411) for recycling again.
Citation Information
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