Ginger straw recycling and crushing equipment and method
By employing a pressure-and-reverse linkage crushing mechanism and dust removal design, the problems of overhead accumulation and dust pollution during ginger straw crushing have been solved, achieving efficient, uniform crushing and clean production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-02-03
- Publication Date
- 2026-03-10
AI Technical Summary
Existing disc-type straw crushers are prone to accumulating debris when crushing ginger straw, resulting in low crushing efficiency, uneven particle size of the crushed product, and serious dust pollution.
A pressure-applying mechanism is used to apply pressure to ginger stalks, which are then crushed by a reverse-linked crushing component. A dust removal mechanism is also provided for dust separation, and the distance between the crushing components is adjusted to control the particle size.
It improves crushing efficiency, ensures uniform particle size of crushed products, reduces dust pollution, and enhances the applicability and environmental protection effect of the equipment.
Smart Images

Figure CN121621138A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of crushing equipment technology, and in particular to a crushing equipment and method for the reuse of ginger straw. Background Technology
[0002] With the deepening of the concept of green agricultural development, the resource-based reuse of ginger straw has become an important direction for solving agricultural waste pollution and tapping into the added value of resources. Ginger straw is rich in cellulose, hemicellulose and gingerol, which can not only be used for organic fertilizer preparation and biomass fuel processing, but also for extracting ginger essential oil through extraction process, realizing high-value resource utilization. In the existing ginger essential oil extraction process, ginger straw needs to be crushed by crushing equipment before it can enter the extraction process. Disc straw crusher is a device for crushing ginger straw. Its core structure mainly includes crushing cylinder, crushing blades and drive motor. When in use, ginger straw enters from the top of crushing cylinder and falls downward under the action of gravity. The drive motor drives the crushing blades to rotate. When the ginger straw passes through the crushing blades, the crushing blades crush the ginger straw.
[0003] However, when existing disc-type straw crushers crush ginger straw, the loose texture and hollow stems of the ginger straw make it easy for it to accumulate in the crushing drum during the feeding process, resulting in insufficient crushing and reduced crushing efficiency. Moreover, the crushing effect is limited by the unidirectional rotation of the crushing blades, and the crushed product has uneven particle size. The particle size cannot be adjusted, resulting in poor applicability. At the same time, a large amount of dust is generated during the crushing process, polluting the working environment.
[0004] Therefore, we propose a crushing equipment and method for the reuse of ginger straw. Summary of the Invention
[0005] To overcome the above-mentioned shortcomings in the prior art, the present invention aims to provide a ginger straw recycling crushing device and method that can avoid the accumulation of ginger straw, improve crushing efficiency, produce crushed products with uniform and controllable particle size, and eliminate dust pollution.
[0006] To achieve the above-mentioned objectives, the technical solution adopted by this invention is as follows: A ginger straw recycling and crushing device includes a crushing unit with a crushing mechanism inside. A pressure applying mechanism is located at the top of the crushing unit. The ginger straw enters the crushing unit from the top of the pressure applying mechanism. A feeding mechanism is located inside the pressure applying mechanism, which applies pressure to the ginger straw. The crushing mechanism crushes the ginger straw. The crushing mechanism has two crushing sections arranged vertically. A reverse linkage is provided on the crushing mechanism, which drives the two crushing sections to rotate in opposite directions. An adjustment mechanism is located at the bottom of the reverse linkage, which adjusts the vertical distance between the two crushing sections. A dust removal mechanism is located on the left side of the crushing unit to remove dust.
[0007] Preferably, the crushing device includes a fixed outer shell, with support legs fixedly connected to the four corners of the bottom surface of the fixed outer shell. A central hole is opened at the center of the top surface of the fixed outer shell. An outer gear ring is rotatably mounted on the top surface of the fixed outer shell. The outer gear ring and the central hole share a central axis. Four slots are evenly opened on the inner wall of the outer gear ring. The top of the slots is open and the opening is opened on the top surface of the outer gear ring. A material discharge pipe is coaxially inserted into the inner surface of the outer gear ring. The inner wall of the material discharge pipe is flush with the inner wall of the central hole. Four inserts are evenly fixedly connected to the bottom end of the outer side of the material discharge pipe. The four inserts are slidably inserted into the four slots respectively. A vertical bar located to the left of the central hole is fixedly connected to the top surface of the inner cavity of the fixed outer shell. An inclined plate is fixedly connected to the bottom end of the vertical bar. The right end of the inclined plate is inclined downward to the right and extends out from the right side of the fixed outer shell. An opening is opened on the right side of the fixed outer shell. The inclined plate is fixedly inserted into the opening. A partition plate located below the inclined plate is fixedly connected to the inner wall of the fixed outer shell.
[0008] Preferably, the crushing mechanism includes a drive motor, which is bolted to the middle position of the left end of the bottom surface of the fixed housing. A drive vertical shaft is fixedly connected to the top of the output shaft of the drive motor. The top of the drive vertical shaft extends upward through the partition plate and out of the top surface of the fixed housing, and a drive gear is fixedly sleeved thereon. The drive gear meshes with an external gear ring. A drive wheel located below the partition plate is fixedly sleeved outside the drive vertical shaft. The drive wheel is connected to a driven wheel via a drive belt. The driven wheel shares a central axis with the central hole. A crushing vertical shaft is fixedly inserted inside the driven wheel. The top of the crushing vertical shaft extends upward through the partition plate, the inclined plate, and the central hole, and into the inside of the discharge pipe. The outer surface of the crushing vertical shaft is symmetrical. Two transmission grooves are provided, with the top of the transmission grooves being open and located on the top surface of the crushing vertical shaft. An installation ring is slidably sleeved on the outside of the crushing vertical shaft. Four blades are evenly fixedly connected to the outer side of the installation ring. The installation ring and the four blades constitute the first crushing part, which is located inside the central hole. Two protrusions are symmetrically fixedly connected to the inner wall of the installation ring, and the two protrusions are slidably inserted into the inside of the two transmission grooves. A pressure ring is threaded on the outside of the crushing vertical shaft, which presses the installation ring in place. A crushing blade is installed at the top of the crushing vertical shaft, which constitutes the second crushing part. The second crushing part is located inside the feed pipe, and a flow divider cone is fixedly installed at the center of the top surface of the crushing blade.
[0009] Preferably, the pressure applying mechanism includes four mounting arms, which are respectively fixedly connected to the four corners of the top surface of the fixed housing. The top ends of the four mounting arms are fixedly connected to the same tapered tube, the bottom end of the tapered tube is aligned with the top end of the discharge tube, and a pressure applying column is movably inserted into the top end of the inner cavity of the tapered tube.
[0010] Preferably, the feeding mechanism includes a lower cone and four straightening arms. The lower cone is coaxially fixedly connected to the top surface of the pressure column. A dispersion cone is coaxially fixedly connected to the top surface of the lower cone. Two guide rods are symmetrically fixedly connected to the surface of the lower cone, and the guide rods are in a vertical state. The four straightening arms are evenly fixedly connected to the bottom surface of the tapered tube. The bottom ends of the four straightening arms are fixedly connected to the same straightening ring, which is sleeved on the outside of the discharge tube. Two guide sliding holes are symmetrically opened on the inner wall of the tapered tube. The two guide sliding holes penetrate downward through the two symmetrical straightening arms and the straightening ring. The bottom ends of the guide rods pass through the guide sliding holes and extend out from below the straightening ring. A positioning device is fixedly sleeved on the outside of the discharge tube. At its bottom drive ring, two drive plates are evenly fixedly connected to the top surface of the drive ring. The drive plates extend along an arc trajectory. Both drive plates are fixedly connected to the surface of the blanking tube. The orthographic projection of the center plane between the two drive plates is a mirror-symmetrical right triangle. The guide rod is adapted to both the drive plate and the drive ring. A steel ball is movably embedded in the bottom end of the guide rod. A compensating arm is fixedly connected to the bottom end of the side of the guide rod. The other end of the compensating arm extends horizontally away from the blanking tube. A fixing hole is opened at the end of the compensating arm. An elastic element is fixedly connected inside the fixing hole. The other end of the elastic element extends obliquely to the corner of the top surface of the fixed housing and is fixed to the top surface of the fixed housing.
[0011] Preferably, the reverse linkage includes a mounting base, which is U-shaped. Both ends of the mounting base are fixedly connected to the bottom surface of the partition plate. The mounting base has mounting holes coaxial with the central hole. A rotating tube is rotatably mounted inside the mounting holes. A rotating disk is fixedly sleeved on the top of the side of the rotating tube. An internal gear ring is fixedly connected to the edge of the top surface of the rotating disk. An inner shaft is inserted inside the rotating tube. The crushing vertical shaft is hollow and tubular. The inner shaft is rotatably inserted into the channel inside the crushing vertical shaft. The top of the inner shaft extends from the crushing vertical shaft... An outer tube extends from the top of the shaft and is fitted onto it. The tops of both the inner shaft and the outer tube are fixedly connected to the center of the bottom surface of the crushing blade. The outer tube is rotatably fitted onto the outside of the crushing vertical shaft. A central gear located below the driven wheel is fixedly fitted onto the outside of the crushing vertical shaft. Three edge gears are evenly arranged around the central gear. All three edge gears mesh with the central gear and with the internal gear ring. Mounting shafts are rotatably mounted on the centers of the three edge gears. The tops of the three mounting shafts are fixedly connected to the bottom surface of the partition plate.
[0012] Preferably, the debugging mechanism includes two track grooves, two linkage protrusions, and a limiting ring. The two track grooves are symmetrically opened on the surface of the inner shaft and located at its bottom end. The two linkage protrusions are symmetrically fixedly connected to the inner wall of the rotating tube. The two linkage protrusions are slidably inserted into the two track grooves respectively. The inner shaft is inserted into the rotating tube and can move up and down. The bottom end of the inner shaft extends out from the bottom end of the rotating tube. The limiting ring is fixedly sleeved on the outside of the inner shaft and located at its bottom end. A limiting cap is movably sleeved on the outside of the limiting ring. The top surface of the limiting cap has a small hole for the inner shaft to pass through. A docking column is threaded inside the limiting cap. The docking column restricts the limiting ring inside the limiting cap. Spherical grooves are opened on the two end faces of the inner shaft and the docking column that are close to each other. The same ball is installed inside the two spherical grooves. An electric telescopic bar is fixedly connected to the bottom surface of the docking column. The electric telescopic bar extends out from the bottom surface of the fixed shell and is bolted to the bottom surface of the fixed shell.
[0013] Preferably, the dust removal mechanism includes a dust box, which is fixedly connected to the left side of the fixed housing. A sealing cover is installed at the bottom of the left end of the dust box, which can be hinged and flipped up and down. A dust removal pipe, which is arc-shaped, is installed inside the dust box. Both ends of the dust removal pipe pass through the left side of the fixed housing and extend into it. An isolation pipe located in the middle of the dust removal pipe is fixedly inserted between the two ends. A drive shaft is rotatably inserted into the isolation pipe. An inlet is opened at the top of the dust removal pipe, and the top of the dust removal pipe is fixedly connected to the left side of the vertical bar. On the surface, there are suction holes on the vertical bars. The inlet is connected to the space above the inclined plate through the suction holes. There is an outlet at the bottom of the dust removal pipe. There are three centrifugal ports extending tangentially on the arc surface of the dust removal pipe. The inner cavity of the dust box is connected to the inner cavity of the dust removal pipe through the centrifugal ports. There is a fan blade on the right side of the outlet. The fan blade is fixedly sleeved on the outside of the crushing vertical shaft. A constraint tube is sleeved on the outside of the fan blade. The bottom end of the constraint tube is fixedly connected to the top surface of the partition plate. There are fan-shaped holes on the partition plate that communicate with the constraint tube. There are air outlet holes on the bottom surface of the fixed outer shell.
[0014] Preferably, the radius of curvature of the dust removal pipe gradually decreases from the top to the bottom of the dust removal pipe.
[0015] Preferably, the cross-section of the air passage formed by the inner cavity of the dust removal pipe gradually decreases from top to bottom.
[0016] Preferably, a method of using a ginger straw recycling and crushing device includes the following steps: S1: First, use the adjustment mechanism to adjust the vertical distance between the two crushing sections so that the distance between the two crushing sections meets the requirements; S2: Turn on the ginger straw recycling and crushing equipment, and then convey the ginger straw into the pressure mechanism; S3: The feeding mechanism presses the ginger stalks in the pressure mechanism into the crushing device, then the crushing mechanism crushes the ginger stalks, and the crushing device discharges the crushed product.
[0017] The beneficial effects of this invention are as follows: 1. This invention uses a pressure-applying mechanism to temporarily store newly input ginger stalks. A crushing mechanism drives a crushing device, which in turn drives a feeding mechanism. The feeding mechanism then drives a pressure-applying mechanism to operate regularly. This regularly operating pressure-applying mechanism adds ginger stalks into the crushing device in a regular manner. Simultaneously, the pressure-applying mechanism applies pressure to the ginger stalks in the crushing device, which pushes and compacts the stalks, preventing them from becoming loose inside the crushing device and thus increasing crushing efficiency.
[0018] 2. This invention drives two pulverizing sections to rotate through a pulverizing mechanism. The two pulverizing sections pulverize the ginger stalks in sequence, resulting in better pulverization. Through a reverse linkage, the two pulverizing sections rotate in opposite directions under the drive of the pulverizing mechanism, shearing the ginger stalks in two directions, further enhancing the pulverization effect.
[0019] 3. The present invention can adjust the vertical distance between the two crushing sections through the adjustment mechanism, thereby adjusting the size of the crushed product, which has better applicability. Through the dust removal mechanism, a micro airflow passes above the crushed product. The micro airflow carries the dust and flows in the opposite direction to the movement of the crushed product, which achieves the purpose of separating the dust. At the same time, the dust removal mechanism can separate and store the dust in the airflow under the action of centrifugal force, avoiding dust pollution of the working environment. Attached Figure Description
[0020] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 For the present invention Figure 1 A schematic diagram of the three-dimensional structure after being cut along the center plane; Figure 3 For the present invention Figure 1 A three-dimensional structural diagram of the Lieutenant General's front cover plate after it has been removed; Figure 4 For the present invention Figure 2 A three-dimensional structural diagram of the crushing mechanism; Figure 5 For the present invention Figure 4 A three-dimensional structural diagram of the reverse linkage; Figure 6 For the present invention Figure 5 A three-dimensional structural diagram of the reverse linkage; Figure 7 For the present invention Figure 5 A schematic diagram of the split structure; Figure 8 For the present invention Figure 7 A three-dimensional structural diagram of the internal gear ring; Figure 9 For the present invention Figure 7 A three-dimensional structural diagram of the inner shaft; Figure 10 For the present invention Figure 1 A three-dimensional structural diagram of the dust removal mechanism after disassembly; Figure 11 For the present invention Figure 10 A three-dimensional structural diagram of the central dust collector pipe; Figure 12 For the present invention Figure 11 A schematic diagram of the three-dimensional structure from another perspective; Figure 13 For the present invention Figure 1 A schematic diagram of the disassembled structure of the central pressure mechanism; Figure 14 For the present invention Figure 13 A three-dimensional structural diagram of the end of the guide rod; Figure 15 For the present invention Figure 2 A three-dimensional structural diagram of the debugging mechanism.
[0021] In the diagram: 1. Crushing device; 101. Fixed outer casing; 102. Support leg; 103. Center hole; 104. External gear ring; 105. Slot; 106. Feed pipe; 107. Insert bar; 108. Vertical bar; 109. Inclined plate; 110. Opening; 111. Partition plate; 2. Crushing mechanism; 201. Drive motor; 202. Drive shaft; 203. Drive gear; 204. Drive wheel; 205. Drive belt; 206. Driven wheel; 207. Crushing shaft; 208. Transmission groove; 209. Mounting ring; 210. Blade; 211. Pressure ring; 212. Crushing cutter; 213. Diverter cone; 3. Pressure application mechanism; 301. Mounting arm; 302. Retractable tube; 303. Pressure application column; 4. Feeding mechanism; 401. Lower cone; 402. Dispersion cone; 403. Guide rod; 404. Centralizing arm; 405. Centralizing ring; 406. Guide slide hole; 407. Drive plate; 408. Drive ring; 409. Compensating arm; 410. Elastic element; 5. Reverse linkage; 501. Mounting base; 502. Mounting hole; 503. Rotating tube; 504. Rotating disk; 505. Internal gear ring; 506. Inner shaft; 507. Outer tube; 508. Center gear; 509. Edge gear; 510. Mounting shaft; 6. Debugging mechanism; 601. Track groove; 602. Linkage protrusion; 603. Limiting ring; 604. Limiting cap; 605. Connecting column; 606. Electric telescopic bar; 607. Ball bearing; 7. Dust removal mechanism; 701. Dust box; 702. Sealing cover; 703. Dust removal pipe; 704. Isolation pipe; 705. Inlet; 706. Outlet; 707. Centrifuge port; 708. Fan blade; 709. Constraint pipe; 710. Fan-shaped hole. Detailed Implementation
[0022] The technical solutions 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.
[0023] In this embodiment, refer to Figure 1-15 This solution provides a ginger straw recycling and crushing device, which includes a crushing device 1, a crushing mechanism 2 inside the crushing device 1, a pressure applying mechanism 3 at the top of the crushing device 1, ginger straw entering the crushing device 1 from the top of the pressure applying mechanism 3, a feeding mechanism 4 inside the pressure applying mechanism 3, the feeding mechanism 4 applying pressure to the ginger straw, the crushing mechanism 2 crushing the ginger straw, the crushing mechanism 2 having two crushing sections arranged vertically, the crushing mechanism 2 having a reverse linkage 5, the reverse linkage 5 driving the two crushing sections to rotate in opposite directions, the bottom of the reverse linkage 5 having an adjustment mechanism 6, the adjustment mechanism 6 adjusting the vertical distance between the two crushing sections, and a dust removal mechanism 7 on the left side of the crushing device 1 removing dust.
[0024] Please see Figure 1 , Figure 2 and Figure 3The crushing device 1 includes a fixed outer shell 101. Support legs 102 are fixedly connected to the four corners of the bottom surface of the fixed outer shell 101. A central hole 103 is opened at the center of the top surface of the fixed outer shell 101. An outer gear ring 104 is rotatably mounted on the top surface of the fixed outer shell 101. The outer gear ring 104 shares a central axis with the central hole 103. Four slots 105 are evenly distributed on the inner wall of the outer gear ring 104. The top of each slot 105 is open, and the opening is located on the top surface of the outer gear ring 104. A material discharge pipe 106 is coaxially inserted into the inner surface of the outer gear ring 104. The inner wall of the material discharge pipe 106 is flush with the inner wall of the central hole 103. Four inserts 107 are evenly fixedly connected to the bottom of the outer side of 106. The four inserts 107 are slidably inserted into the four slots 105 respectively. A vertical bar 108 located to the left of the central hole 103 is fixedly connected to the top surface of the inner cavity of the fixed housing 101. An inclined plate 109 is fixedly connected to the bottom end of the vertical bar 108. The right end of the inclined plate 109 is inclined to the lower right and extends out from the right side of the fixed housing 101. An opening 110 is opened on the right side of the fixed housing 101. The inclined plate 109 is fixedly inserted into the opening 110. A partition plate 111 located below the inclined plate 109 is fixedly connected to the inner wall of the fixed housing 101.
[0025] The fixed outer casing 101 is composed of a main housing, a top cover plate, and a front cover plate, which are assembled by bolt fixing.
[0026] A vibration motor is installed on the bottom surface of the inclined plate 109, and the vibration motor is electrically connected to the external control box.
[0027] The vibrating motor causes the inclined plate 109 to vibrate, causing the crushed product to slide down the inclined plate 109.
[0028] The vibratory motor is linked with the drive motor 201. When the drive motor starts, the vibratory motor starts synchronously. When the drive motor 201 stops, the vibratory motor stops after a half-minute delay to ensure that the residual material is completely discharged.
[0029] Please see Figure 2 , Figure 4 , Figure 5 , Figure 6 and Figure 7The crushing mechanism 2 includes a drive motor 201, which is bolted to the middle position of the left end of the bottom surface of the fixed housing 101. The top end of the output shaft of the drive motor 201 is fixedly connected to a drive vertical shaft 202. The top end of the drive vertical shaft 202 extends upward through the partition plate 111 and out of the top surface of the fixed housing 101, and is fixedly sleeved with a drive gear 203. The drive gear 203 meshes with an external gear ring 104. The drive wheel 204 located below the partition plate 111 is fixedly sleeved on the outside of the drive vertical shaft 202. The drive wheel 204 is driven by a driven wheel 206 through a drive belt 205. The driven wheel 206 shares a central axis with the central hole 103. The crushing vertical shaft 207 is fixedly inserted inside the driven wheel 206. The top end of the crushing vertical shaft 207 extends upward through the partition plate 111, the inclined plate 109, and the central hole 103 and extends into the inside of the discharge pipe 106. Two transmission grooves 208 are symmetrically opened on the outer side of the crushing vertical shaft 207.
[0030] The top of the transmission groove 208 is open and the opening is located on the top surface of the crushing vertical shaft 207. An installation ring 209 is slidably sleeved on the outside of the crushing vertical shaft 207. Four blades 210 are evenly fixedly connected to the outer side of the installation ring 209. The installation ring 209 and the four blades 210 constitute the first crushing part, which is located inside the central hole 103. Two protrusions are symmetrically fixedly connected to the inner wall of the installation ring 209. The two protrusions are slidably inserted into the inside of the two transmission grooves 208. A pressure ring 211 is threaded on the outside of the crushing vertical shaft 207. The pressure ring 211 presses the installation ring 209. A crushing blade 212 is installed at the top of the crushing vertical shaft 207. The crushing blade 212 is the second crushing part, which is located inside the discharge pipe 106. A flow divider cone 213 is fixedly installed at the center of the top surface of the crushing blade 212.
[0031] The drive motor 201 is electrically connected to the control box of the peripheral device.
[0032] The diversion cone 213 diverts the ginger stalks to prevent them from accumulating in the middle of the top of the crushing blade 212.
[0033] Please see Figure 1 , Figure 2 , Figure 3 and Figure 13 The pressure applying mechanism 3 includes four mounting arms 301, which are fixedly connected to the four corners of the top surface of the fixed housing 101. The top ends of the four mounting arms 301 are fixedly connected to the same tapered tube 302. The bottom end of the tapered tube 302 is aligned with the top end of the discharge tube 106. The top end of the inner cavity of the tapered tube 302 is movably inserted with a pressure applying column 303.
[0034] After the pressure column 303 moves upward, the ginger straw enters the discharge pipe 106 through the annular gap. The pressure column 303 moves downward and inserts into the discharge pipe 106, pushing the ginger straw into the discharge pipe 106 to prevent the ginger straw from being suspended in the air. At the same time, the frequency of the up-and-down reciprocating movement of the pressure column 303 is used to limit the amount of ginger straw entering.
[0035] A circular cutter is fixedly connected to the bottom surface of the pressure column 303. As the pressure column 303 moves downward, the circular cutter moves downward simultaneously and is used to cut the ginger stalks, so as to prevent the ginger stalks from getting stuck in the pressure column 303. The pressure column 303 is slidably inserted into the discharge pipe 106.
[0036] Please see Figure 1 , Figure 2 , Figure 3 and Figure 13 , Figure 14 The feeding mechanism 4 includes a lower cone 401 and four straightening arms 404. The lower cone 401 is coaxially fixedly connected to the top surface of the pressure column 303. A dispersing cone 402 is coaxially fixedly connected to the top surface of the lower cone 401. Two guide rods 403 are symmetrically fixedly connected to the surface of the lower cone 401, and the guide rods 403 are in a vertical state. The four straightening arms 404 are evenly fixedly connected to the bottom surface of the tapered tube 302, and the bottom end of the four straightening arms 404 is fixedly connected to the same straightening ring 40. 5. The straightening ring 405 is sleeved on the outside of the discharge tube 106. Two guide sliding holes 406 are symmetrically opened on the inner wall of the tapered tube 302. The two guide sliding holes 406 pass downward through the two symmetrical straightening arms 404 and the straightening ring 405. The bottom end of the guide rod 403 passes through the guide sliding hole 406 and extends out from below the straightening ring 405. A drive ring 408 located at its bottom end is fixedly sleeved on the outside of the discharge tube 106. Two drive plates 407 are evenly fixedly connected to the top surface of the drive ring 408.
[0037] The drive plate 407 extends along an arc trajectory. Both drive plates 407 are fixedly connected to the surface of the blanking tube 106. The orthographic projection of the center plane between the two drive plates 407 is a mirror-symmetrical right triangle. The guide rod 403 is adapted to both the drive plate 407 and the drive ring 408. A steel ball is movably embedded in the bottom end of the guide rod 403. The steel ball can roll freely. A compensating arm 409 is fixedly connected to the bottom end of the side of the guide rod 403. The other end of the compensating arm 409 extends horizontally away from the blanking tube 106. A fixing hole is opened at the end of the compensating arm 409. An elastic element 410 is fixedly connected inside the fixing hole. The other end of the elastic element 410 extends obliquely to the corner of the top surface of the fixed housing 101 and is fixed to the top surface of the fixed housing 101.
[0038] The elastic element 410 is in an elastic tension state and can be an elastic rope or a spring. The elastic element 410 applies pressure to the pressure column 303 through the compensating arm 409, guide rod 403, and lower cone 401 to increase the pressure, improve the compaction effect, better overcome the problem of the ginger straw being suspended, and improve the crushing effect.
[0039] Two elastic elements 410 are installed at the end of each compensating arm 409. The two elastic elements 410 are symmetrically distributed on both sides of the compensating arm 409. The two elastic elements 410 together exert a downward resultant force on the compensating arm 409.
[0040] Please see Figure 2 , Figure 5 , Figure 6 , Figure 7 and Figure 8 The reverse linkage 5 includes a mounting base 501, which is U-shaped. Both ends of the mounting base 501 are fixedly connected to the bottom surface of the partition plate 111. The mounting base 501 has a mounting hole 502, which is coaxial with the center hole 103. A rotating tube 503 is rotatably installed inside the mounting hole 502. A thrust bearing is installed between the mounting hole 502 and the rotating tube 503.
[0041] A rotating disk 504 is fixedly sleeved on the top of the side of the rotating tube 503. An internal gear ring 505 is fixedly connected to the edge of the top surface of the rotating disk 504. An inner shaft 506 is inserted inside the rotating tube 503. The crushing vertical shaft 207 is a hollow tube. The inner shaft 506 is rotatably inserted into the channel inside the crushing vertical shaft 207. The top of the inner shaft 506 extends from the top of the crushing vertical shaft 207 and is fitted with an outer tube 507. The tops of both the inner shaft 506 and the outer tube 507 are fixedly connected to the center of the bottom surface of the crushing blade 212. The outer tube 507 can... A rotating sleeve is attached to the outside of the crushing vertical shaft 207. A central gear 508 located below the driven wheel 206 is fixedly sleeved on the outside of the crushing vertical shaft 207. Three edge gears 509 are evenly arranged around the central gear 508. All three edge gears 509 mesh with the central gear 508 and with the internal gear ring 505. Mounting shafts 510 are rotatably mounted at the center of each of the three edge gears 509. The top ends of the three mounting shafts 510 are fixedly connected to the bottom surface of the partition plate 111.
[0042] The edge gear 509 rotates around the mounting shaft 510, and the center gear 508 drives the internal gear ring 505 to rotate through the edge gear 509.
[0043] Please see Figure 2 , Figure 4 , Figure 5 , Figure 6 , Figure 9 and Figure 15The debugging mechanism 6 includes two track grooves 601, two linkage protrusions 602, and a limiting ring 603. The two track grooves 601 are symmetrically formed on the surface of the inner shaft 506 and located at its bottom end. The two linkage protrusions 602 are symmetrically fixedly connected to the inner wall of the rotating tube 503. The two linkage protrusions 602 are slidably inserted into the two track grooves 601 respectively. The inner shaft 506 is vertically movable and inserted into the rotating tube 503. The bottom end of the inner shaft 506 extends out from the bottom end of the rotating tube 503. The limiting ring 603 is fixedly sleeved on the outside of the inner shaft 506 and located at its bottom end. The limiting ring 603 is movably sleeved on the outside. The limiting cap 604 has a small hole on its top surface for the inner shaft 506 to pass through. A mating column 605 is threaded inside the limiting cap 604. The mating column 605 restricts the limiting ring 603 inside the limiting cap 604. Spherical grooves are opened on the two end faces of the inner shaft 506 and the mating column 605 that are close to each other. The same ball 607 is installed inside the two spherical grooves. An electric telescopic bar 606 is fixedly connected to the bottom surface of the mating column 605. The electric telescopic bar 606 extends from the bottom surface of the fixed housing 101 and is bolted to the bottom surface of the fixed housing 101.
[0044] The top of the internal extension rod of the electric telescopic bar 606 extends into the fixed housing 101 and is fixedly connected to the bottom surface of the docking column 605.
[0045] The inner shaft 506 can rotate inside the limit cap 604 with the limit ring 603, ensuring that the rotational force of the inner shaft 506 is not transmitted to the electric telescopic bar 606.
[0046] Ball bearing 607 can be replaced by a lift bearing.
[0047] Please see Figure 2 , Figure 3 , Figure 4 , Figure 10 , Figure 11 and Figure 12The dust removal mechanism 7 includes a dust box 701, which is fixedly connected to the left side of the fixed housing 101. A sealing cover 702 is installed at the bottom of the left end of the dust box 701 via a hinge, allowing it to be flipped up and down. A dust removal pipe 703 is installed inside the dust box 701. The dust removal pipe 703 is arc-shaped, with both ends passing through the left side of the fixed housing 101 and extending into it. An isolation pipe 704 is fixedly inserted between the two ends of the dust removal pipe 703, located in its middle. A drive shaft 202 is rotatably inserted into the isolation pipe 704. An inlet 705 is opened at the top of the dust removal pipe 703, and the top of the dust removal pipe 703 is fixedly connected to the left side of a vertical bar 108. An air intake hole is provided at the top, and the inlet 705 is connected to the space above the inclined plate 109 through the air intake hole. An outlet 706 is provided at the bottom end of the dust removal pipe 703. Three centrifugal ports 707 extending in the tangential direction are provided on the arc surface of the dust removal pipe 703. The inner cavity of the dust box 701 is connected to the inner cavity of the dust removal pipe 703 through the centrifugal ports 707. A fan blade 708 is provided on the right side of the outlet 706. The fan blade 708 is fixedly sleeved on the outside of the crushing vertical shaft 207. A constraint tube 709 is sleeved on the outside of the fan blade 708. The bottom end of the constraint tube 709 is fixedly connected to the top surface of the partition plate 111. A fan-shaped hole 710 communicating with the constraint tube 709 is provided on the partition plate 111. An air outlet hole is provided on the bottom surface of the fixed outer shell 101.
[0048] The rotation of the fan blade 708 will create a micro-airflow above the inclined plate 109. The micro-airflow carries the dust and moves it. Since the crushed product is large in size and has a large gravity, the micro-airflow has a minimal impact on it. By utilizing the difference in the force exerted by the airflow on particles of different sizes, the dust and material are separated efficiently without affecting their inherent movement, ensuring that the crushed product is smoothly discharged from the opening 110.
[0049] The radius of curvature of the dust removal pipe 703 gradually decreases from the top to the bottom, making the change in airflow direction more obvious, the centrifugal separation effect better, and helping to increase the dust removal effect.
[0050] The cross-section of the air passage formed inside the dust removal tube 703 gradually decreases from top to bottom, making the airflow faster and faster inside the dust removal tube 703, resulting in better centrifugal effect and helping to further increase the dust removal effect.
[0051] The combination of a gradually changing radius of curvature and a gradually narrowing cross-section of the air passage accelerates the airflow rotation within the dust removal pipe, thereby improving the efficiency of centrifugal dust separation.
[0052] A method for using a ginger straw recycling and crushing device includes the following steps: S1: First, use the adjustment mechanism 6 to adjust the vertical distance between the two crushing sections so that the distance between the two crushing sections meets the requirements; S2: Turn on the ginger straw recycling and crushing equipment, and then convey the ginger straw into the pressure mechanism 3; S3: The feeding mechanism 4 presses the ginger stalks in the pressure mechanism 3 into the crushing device 1, then the crushing mechanism 2 crushes the ginger stalks, and the crushing device 1 discharges the crushed product.
[0053] Working principle First, ginger straw is fed into the converging tube 302 via a conveyor belt. Guided by the dispersing cone 402, the ginger straw moves towards the edge. Then, the power is turned on, causing the drive motor 201 to run. The drive motor 201 then rotates the drive shaft 202, which in turn rotates the drive gear 203. The drive gear 203, through its meshing with the external gear ring 104, rotates the external gear ring 104. The external gear ring 104, through the insertion of the insert 107 and the slot 105, rotates the discharge pipe 106 counterclockwise. The discharge pipe 106 then rotates synchronously with the drive plate 407 and the drive ring 408. The bottom end of the guide rod 403 contacts the inclined surface of the drive plate 407, and the drive plate 407 moves relative to the guide rod 403. The inclined surface of the drive plate 407 applies an upward lifting force to the guide rod 403. The guide rod 403 then moves upward along with the pressure column 303 and the dispersing cone 402 via the lower cone 401. The pressure column 303 is then pulled out from the top of the discharge pipe 106. The annular gap between the bottom of the pressure column 303 and the top of the discharge pipe 106 gradually increases. The ginger stalks inside the tapered tube 302 then enter the discharge pipe 106 through the annular gap. The guide rod 403 then passes over the corner at the top of the drive plate 407. The lifting force on the guide rod 403 then disappears. The pressure column 303, the lower cone 401, and the dispersing cone 402 move downward under the action of gravity, applying downward pressure to the ginger stalks. The ginger stalks then enter the discharge pipe 106 under the pressure, preventing the ginger stalks from being suspended inside the discharge pipe 106, which helps to increase the crushing efficiency. The pressure column 303 then moves up and down repeatedly according to the above principle to achieve feeding.
[0054] Meanwhile, the drive shaft 202 drives the crushing shaft 207 to rotate through the cooperation of the drive wheel 204, drive belt 205, and driven wheel 206. Then, the crushing shaft 207 rotates through the insertion action between the transmission slide 208 and the protrusion, and the mounting ring 209 drives the blade 210 to rotate. Next, the crushing shaft 207 rotates through the meshing action between the central gear 508 and the edge gear 509, the meshing action between the edge gear 509 and the internal gear ring 505, the insertion action between the rotating disk 504, the rotating tube 503, the track groove 601 and the linkage protrusion 602, and the inner shaft 506 drives the crushing blade 212 to rotate in the opposite direction to the rotation direction of the mounting ring 209. Then, the crushing blade 212 crushes the ginger stalks for the first time, and the blade 210 crushes the ginger stalks for the second time. Then, the crushed ginger stalks fall on the top surface of the inclined plate 109 and slide out from the opening 110, thus achieving the purpose of crushing.
[0055] When it is necessary to control the length of the crushed product, the electric telescopic lever 606 is extended. Then, the electric telescopic lever 606 moves the crushing tool 212 upward through the docking column 605, ball bearing 607, and inner shaft 506. Next, the vertical distance between the crushing tool 212 and the blade 210 increases, causing the length of the crushed product to gradually increase. The electric telescopic lever 606 is then shortened. Then, the electric telescopic lever 606 moves the crushing tool 212 downward through the docking column 605, ball bearing 607, limit cap 604, limit ring 603, and inner shaft 506. Next, the vertical distance between the crushing tool 212 and the blade 210 decreases, causing the length of the crushed product to gradually decrease. Finally, the length of the crushed product can be controlled by controlling the extension of the electric telescopic lever 606.
[0056] During the crushing process, the crushing vertical shaft 207 rotates with the fan blades 708, and then the fan blades 708 drive the airflow. The air enters the space above the inclined plate 109 from the opening 110. At this time, the dust particles, due to their small size and light weight, are carried by the airflow and move in the opposite direction. Then, the air carries the dust into the dust removal pipe 703 through the air intake hole. The crushed products, due to their large size and heavy weight, have a gravity that is much greater than the force of the airflow and are not affected by the reverse airflow. With the assistance of the vibrating motor, the crushed products slide down the inclined plate 109 and are discharged from the opening 110. After that, the air flows along an arc trajectory inside the dust removal pipe 703. Then, the dust passes through the centrifugal port 707 and enters the dust box 701 under the action of centrifugal force. Then, the air enters the space below the inclined plate 109 from the outlet 706. After that, the air passes through the constraint pipe 709 and the fan-shaped hole 710 and is discharged from the air outlet, thus achieving the purpose of dust removal.
[0057] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A ginger straw recycling and crushing device, comprising a crushing device (1), characterized in that, The inside of the crushing device (1) is provided with a crushing mechanism (2), the top of the crushing device (1) is provided with a pressing mechanism (3), the ginger straw enters the crushing device (1) from the top of the pressing mechanism (3), the inside of the pressing mechanism (3) is provided with a feeding mechanism (4), the feeding mechanism (4) applies pressure to the ginger straw, the crushing mechanism (2) crushes the ginger straw, two crushing parts are arranged on the crushing mechanism (2) in the vertical direction, a reverse linkage (5) is arranged on the crushing mechanism (2), the reverse linkage (5) drives the two crushing parts to rotate in opposite directions, a debugging mechanism (6) is arranged at the bottom of the reverse linkage (5), the debugging mechanism (6) adjusts the vertical distance between the two crushing parts, and a dust removal mechanism (7) is arranged on the left side of the crushing device (1), which removes dust.
2. The ginger stalk recycling and pulverizing apparatus according to claim 1, wherein The crushing device (1) comprises a fixed shell (101), four support legs (102) are fixedly connected to the bottom surface of the fixed shell (101), a center hole (103) is formed in the center of the top surface of the fixed shell (101), an outer gear ring (104) is rotatably installed on the top surface of the fixed shell (101), the outer gear ring (104) shares a center axis with the center hole (103), four insertion slots (105) are uniformly formed in the inner wall of the outer gear ring (104), the top end of each insertion slot (105) is open and the opening is formed on the top surface of the outer gear ring (104), a blanking pipe (106) is coaxially inserted into the inner part of the outer gear ring (104), the inner wall of the blanking pipe (106) is flush with the inner wall of the center hole (103), four insertion strips (107) are fixedly connected to the bottom end of the outer side surface of the blanking pipe (106), the four insertion strips (107) are respectively slidably inserted into the four insertion slots (105), a vertical strip (108) is fixedly connected to the left side of the center hole (103) on the top surface of the inner cavity of the fixed shell (101), a inclined plate (109) is fixedly connected to the bottom end of the vertical strip (108), the right end of the inclined plate (109) is inclined downward to the right and extends out from the right side surface of the fixed shell (101), an opening (110) is formed in the right side surface of the fixed shell (101), the inclined plate (109) is fixedly inserted into the inner part of the opening (110), and a partition plate (111) is fixedly connected to the inner wall of the fixed shell (101) below the inclined plate (109).
3. The ginger stalk recycling and pulverizing apparatus according to claim 2, wherein The pulverizing mechanism (2) comprises a driving motor (201) which is bolted at the middle position of the left end of the bottom surface of the fixed shell (101), the top end of the output shaft of the driving motor (201) is fixedly connected with a driving vertical shaft (202), the top end of the driving vertical shaft (202) penetrates through the partition plate (111) upward and extends out from the top surface of the fixed shell (101) and is fixedly sleeved with a driving gear (203), the driving gear (203) is engaged with the outer gear ring (104), the outer part of the driving vertical shaft (202) is fixedly sleeved with a driving wheel (204) which is located below the partition plate (111), the driving wheel (204) is drivingly connected with a driven wheel (206) through a driving belt (205), the driven wheel (206) shares the central axis with the central hole (103), the inner part of the driven wheel (206) is fixedly inserted with a pulverizing vertical shaft (207), the top end of the pulverizing vertical shaft (207) penetrates through the partition plate (111), the inclined plate (109) and the central hole (103) upward and extends into the blanking pipe (106), two transmission sliding grooves (208) are symmetrically formed on the outer side surface of the pulverizing vertical shaft (207), the top end of the transmission sliding groove (208) is open and the opening is arranged on the top end surface of the pulverizing vertical shaft (207), the outer part of the pulverizing vertical shaft (207) is slidingly sleeved with a mounting ring (209), four blades (210) are uniformly fixedly connected to the outer side surface of the mounting ring (209), the mounting ring (209) and the four blades (210) form a first pulverizing part, the first pulverizing part is located in the central hole (103), two protrusions are symmetrically fixedly connected to the inner wall of the mounting ring (209), the two protrusions are slidingly inserted into the inner part of the two transmission sliding grooves (208), a pressing ring (211) is screw-mounted on the outer part of the pulverizing vertical shaft (207), the pressing ring (211) presses the mounting ring (209), a pulverizing cutter (212) is mounted at the top end of the pulverizing vertical shaft (207), the pulverizing cutter (212) is a second pulverizing part, the second pulverizing part is located in the blanking pipe (106), and a shunt cone (213) is fixedly mounted at the center of the top surface of the pulverizing cutter (212).
4. The ginger stalk recycling and pulverizing apparatus according to claim 3, wherein The pressing mechanism (3) comprises four mounting arms (301), the four mounting arms (301) are fixedly connected to the four corners of the top surface of the fixed shell (101), the top end of the four mounting arms (301) is fixedly connected with a same tapered tube (302), the bottom end of the tapered tube (302) is aligned with the top end of the blanking pipe (106), and the top end of the inner cavity of the tapered tube (302) is movably inserted with a pressing column (303).
5. The ginger stalk recycling and pulverizing apparatus according to claim 4, wherein The feeding mechanism (4) includes a lower cone (401) and four righting arms (404), the lower cone (401) is coaxially fixedly connected on the top surface of the pressing column (303), the top surface of the lower cone (401) is coaxially fixedly connected with a dispersion cone (402), the surface of the lower cone (401) is fixedly connected with two guide rods (403) in a symmetrical manner, the guide rods (403) are in a vertical state, the four righting arms (404) are uniformly fixedly connected on the bottom surface of the tapered tube (302), the bottom ends of the four righting arms (404) are fixedly connected with a same righting ring (405), the righting ring (405) is sleeved outside the blanking pipe (106), the inner wall of the tapered tube (302) is symmetrically provided with two guide sliding holes (406), the two guide sliding holes (406) downwardly penetrate the two symmetrical righting arms (404) and the righting ring (405), the bottom ends of the guide rods (403) penetrate the guide sliding holes (406) and extend out from below the righting ring (405), the blanking pipe (106) is fixedly sleeved with a driving ring (408) at the bottom end thereof, the top surface of the driving ring (408) is uniformly fixedly connected with two driving plates (407), the driving plates (407) extend along an arc track, the two driving plates (407) are fixedly connected on the surface of the blanking pipe (106) in a buckling manner, the central projection on the surface between the two driving plates (407) is a mirror-symmetrical right-angled triangle, the guide rods (403) are matched with the driving plates (407) and the driving ring (408), the bottom end surface of the guide rods (403) movably embeds a steel ball, the bottom end of the side surface of the guide rods (403) is fixedly connected with a compensation arm (409), the other end of the compensation arm (409) extends horizontally away from the blanking pipe (106), a fixing hole is formed in the end portion of the compensation arm (409), an elastic member (410) is fixedly connected in the fixing hole, the other end of the elastic member (410) extends to the corner of the top surface of the fixed shell (101) in an inclined manner and is fixed on the top surface of the fixed shell (101).
6. The ginger stalk recycling and pulverizing apparatus according to claim 5, wherein The reverse linkage (5) includes an installation base body (501), the installation base body (501) is a concave letter shape, both ends of the installation base body (501) are fixedly connected on the bottom surface of the partition plate (111), the installation base body (501) is provided with an installation through hole (502), the installation through hole (502) is coaxial with the center hole (103), a rotating tube (503) is rotatably installed in the installation through hole (502), a rotating disc (504) is fixedly sleeved on the top end of the side surface of the rotating tube (503), an inner gear ring (505) is fixedly connected on the top surface of the rotating disc (504), an inner shaft (506) is inserted into the rotating tube (503), the pulverizing vertical shaft (207) is a hollow tubular shape, the inner shaft (506) is rotatably inserted into the channel in the pulverizing vertical shaft (207), the top end of the inner shaft (506) extends out of the top end of the pulverizing vertical shaft (207) and is sleeved with an outer tube (507), the top end of the inner shaft (506) and the outer tube (507) are fixedly connected on the bottom surface of the center of the pulverizing cutter (212), the outer tube (507) is rotatably sleeved on the outside of the pulverizing vertical shaft (207), a center gear (508) is fixedly sleeved on the outside of the pulverizing vertical shaft (207) below the driven wheel (206), three edge gears (509) are uniformly arranged around the center gear (508), the three edge gears (509) are engaged with the center gear (508), the three edge gears (509) are engaged with the inner gear ring (505), the three edge gears (509) are rotatably installed on the installation shaft bodies (510), the top end of the three installation shaft bodies (510) are fixedly connected on the bottom surface of the partition plate (111).
7. The ginger stalk recycling and pulverizing apparatus according to claim 6, wherein The debugging mechanism (6) comprises two track grooves (601), two linkage protrusions (602) and a limiting ring (603), the two track grooves (601) are symmetrically arranged on the surface of the inner shaft (506) and located at the bottom end, the two linkage protrusions (602) are symmetrically fixedly connected to the inner wall of the rotating pipe (503), the two linkage protrusions (602) are respectively slidably inserted into the two track grooves (601), the inner shaft (506) is slidably inserted into the rotating pipe (503), the bottom end of the inner shaft (506) extends out of the bottom end of the rotating pipe (503), the limiting ring (603) is fixedly sleeved outside the inner shaft (506) and located at the bottom end, the limiting ring (603) is movably sleeved with a limiting cap (604) outside, the top surface of the limiting cap (604) is provided with a small hole for the inner shaft (506) to pass through, the inner part of the limiting cap (604) is screwedly provided with a butt joint column (605), the butt joint column (605) limits the limiting ring (603) in the limiting cap (604), the two end faces of the inner shaft (506) and the butt joint column (605) that are close to each other are both provided with spherical grooves, the same ball (607) is arranged in the two spherical grooves, the bottom surface of the butt joint column (605) is fixedly connected with an electric telescopic lever (606), the electric telescopic lever (606) extends out of the bottom surface of the fixed shell (101), and the electric telescopic lever (606) is screwedly installed on the bottom surface of the fixed shell (101).
8. The ginger stalk recycling and pulverizing apparatus according to claim 7, wherein The dust removal mechanism (7) includes a dust box (701) fixedly connected to the left side of the fixed shell (101), a sealing cover (702) installed on the bottom of the left end face of the dust box (701) and capable of being turned up and down through a hinge, a dust removal pipe (703) arranged in the dust box (701), the dust removal pipe (703) being in a circular arc shape, both ends of the dust removal pipe (703) penetrating through the left side of the fixed shell (101) and extending into the fixed shell (101), a partition pipe (704) fixedly inserted between the two ends of the dust removal pipe (703) and located at the middle part of the dust removal pipe (703), a driving vertical shaft (202) rotatably inserted into the partition pipe (704), an inlet (705) arranged at the top end of the dust removal pipe (703), the dust removal pipe (703) being fixedly connected to the left side of the vertical bar (108), the vertical bar (108) being provided with an air suction hole, the inlet (705) being in communication with the space above the inclined plate (109) through the air suction hole, an outlet (706) arranged at the bottom end of the dust removal pipe (703), three centrifugal openings (707) arranged on the circular arc surface of the dust removal pipe (703) and extending in a tangent direction, the inner cavity of the dust box (701) being in communication with the inner cavity of the dust removal pipe (703) through the centrifugal openings (707), a fan blade (708) arranged at the right side of the outlet (706) and fixedly sleeved on the outside of the crushing vertical shaft (207), a constraint pipe (709) sleeved on the outside of the fan blade (708), the bottom end of the constraint pipe (709) being fixedly connected to the top surface of the partition plate (111), the partition plate (111) being provided with a fan-shaped hole (710) in communication with the constraint pipe (709), and an air outlet hole arranged on the bottom surface of the fixed shell (101).
9. The ginger stalk recycling and pulverizing apparatus according to claim 8, wherein The curvature radius of the dust removal pipe (703) gradually decreases from the top end to the bottom end of the dust removal pipe (703); The air passage cross section formed by the inner cavity of the dust removal pipe (703) gradually decreases from top to bottom.
10. A method for using the ginger stalk recycling and crushing equipment, applied to the ginger stalk recycling and crushing equipment according to any one of claims 1-9, characterized in that, The method comprises the following steps: S1: first, the vertical distance between the two crushing parts is adjusted by using the debugging mechanism (6) to make the distance between the two crushing parts meet the requirements; S2: the ginger straw recycling crushing equipment is started, and then the ginger straw is conveyed to the pressing mechanism (3); S3: the ginger straw in the pressing mechanism (3) is pressed into the crushing device (1) by the feeding mechanism (4), and then the ginger straw is crushed by the crushing mechanism (2), and the crushing device (1) discharges the crushing products.
Citation Information
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