A washing and beating integrated device for syzygium samarindas pulp
The integrated wax apple pulp cleaning and pulping device, which combines zoned cleaning, cutting, and feeding mechanisms, solves the problems of difficult cleaning and limited functionality of wax apple pulping devices, and achieves a highly efficient and stable pulp processing process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ONE PERSON ONE MOUTH (HAINAN) AGRI CO LTD
- Filing Date
- 2026-03-09
- Publication Date
- 2026-06-02
Smart Images

Figure CN122124906A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of fruit pulp cleaning and pulping technology, and more specifically, to an integrated device for cleaning and pulping wax apple fruit pulp. Background Technology
[0002] In existing technologies, wax apple pulping devices generally adopt a single mechanical crushing structure, which crushes the pulp through high-speed rotating rotor motion. However, such equipment must be thoroughly cleaned after each batch to prevent fruit residue from remaining and spoiling. However, due to its narrow internal flow channels, irregular gaps between the blades and the cavity walls, and mostly closed or semi-closed designs, high-pressure water flow cannot effectively clean all dead corners. Residual fibrous pulp easily adheres to the blade roots or cavity recesses. Operators often need to use long-handled brushes to probe and clean each part or even disassemble major components to complete the cleaning. This tedious and time-consuming manual cleaning process not only significantly reduces the effective operating time of the equipment, but also poses a major hidden danger of microbial growth and cross-contamination between batches due to incomplete cleaning, directly threatening the hygiene, safety, and quality stability of the final product.
[0003] On the other hand, the existing pulping equipment relies heavily on a single mechanical crushing action, that is, using rotation and extrusion to tear the wax apple pulp into a pulp. However, wax apple pulp is rich in fiber and has a high water content. Simply relying on mechanical crushing is not only difficult to process the pulp into a uniform and fine pulp, which increases the burden on subsequent processes, but also the wax apple pulp at different ripeness levels has significant differences in hardness, fiber content and viscosity. Existing equipment cannot adjust the crushing fineness according to the characteristics of the raw materials, and lacks auxiliary means to pre-treat and soften the overly hard pulp. This functional limitation makes it difficult for the equipment to maintain the stability and consistency of the output pulp when faced with fluctuations in the quality of raw materials, which seriously restricts its process adaptability and the processing quality of the final product. Summary of the Invention
[0004] (a) Technical problems to be solved To address the problems existing in the prior art, the present invention provides an integrated device for washing and pulping wax apple pulp, thereby solving the technical problems mentioned in the background art.
[0005] (II) Technical Solution To achieve the above objectives, the present invention provides the following technical solution: an integrated device for washing and pulping wax apple pulp, comprising a fixedly installed base and a crushing pipe installed on the base; and further comprising a partitioned washing mechanism, a cutting mechanism and a feeding mechanism; The partitioned cleaning mechanism sets up multiple independent cleaning zones along the pulp conveying path inside the crushing tube, and controls the opening or closing of the cleaning channels in different zones in sequence according to the changes in the incoming cleaning water pressure, so that the cleaning water flow can be concentrated on specific zones at different time periods, thereby achieving partitioned sequential cleaning of various parts inside the crushing tube. During the process of conveying and squeezing the pulp, the cutting mechanism uses the centrifugal force generated by rotation to extend the cutting component outward and cut the pulp. The length of the extended cutting component increases with the increase of the rotation speed, thereby realizing dynamic cutting operation synchronized with the conveying and squeezing process. The feeding mechanism performs preliminary crushing of the pulp before it enters the crushing tube to reduce the volume and overall size of the pulp, making it easier to transport and pulp in subsequent operations.
[0006] Preferably, the partitioned cleaning mechanism includes an inner tube coaxially disposed inside the crushing tube, the outer wall of the inner tube being provided with extrusion plates with gradually decreasing pitch, and the diameter on one side decreasing as the pitch decreases, an inner shrinking tube being fixedly disposed inside the crushing tube, the inner shrinking tube being attached to the outer wall of the extrusion plates, and a water inlet pipe being connected to the inner tube.
[0007] Preferably, multiple partition tubes are installed at equal intervals on the side wall of the internal tube, and each partition tube is inserted between the extrusion plates. Each partition tube has a bidirectional groove, and a head plate and a tail plate are coaxially arranged inside the partition tube, and the head plate and the tail plate are connected to each other.
[0008] Preferably, a guide disk is slidably connected inside the partition tube, and multiple guide grooves are formed on the inner wall of the partition tube. The guide disk is slidably connected within the guide grooves, and the tail disk is connected to the guide disk.
[0009] Preferably, multiple sets of elastic strips are installed at equal intervals on the inner wall of the partition tube, and two elastic strips are symmetrically arranged in each set of elastic strips. A fixed ball is provided on each elastic strip, and an annular groove is opened on the tail plate.
[0010] Preferably, the partition tube is provided with a threaded sleeve, a push sleeve is coaxially provided inside the threaded sleeve, an intermediate rod is coaxially provided on the guide plate, a push spring is sleeved on the intermediate rod, and the push sleeve abuts against the push spring.
[0011] Preferably, the cutting mechanism includes two centrifugal rods rotatably connected within the extrusion plate, and each centrifugal rod is equipped with a rotating wheel. A fixed wheel is installed inside the crushing tube, and the two rotating wheels are respectively engaged within the fixed wheel.
[0012] Preferably, the centrifugal rod has multiple embedded grooves, each embedded groove has an interlaced groove at its upper end, a guide frame is slidably connected in the embedded groove, multiple cutting blades are installed on the guide frame, and the cutting blades are slidably connected in the interlaced grooves, a fixing ring is threaded in the embedded groove, and a return spring is provided on the guide frame, the return spring abutting against the fixing ring.
[0013] Preferably, the feeding mechanism includes a feeding shell installed on the crushing pipe, two crushing rollers are rotatably installed inside the feeding shell, one end of the two crushing rollers meshes with each other, the other end of the crushing rollers is equipped with a driven wheel, and the lower end of the crushing pipe is provided with a discharge pipe.
[0014] Preferably, a motor is fixedly mounted on the base, an intermediate pulley is provided on the internal tube, a belt is provided between the intermediate pulley and the transmission end of the motor, and a belt is also provided between the intermediate pulley and the driven pulley.
[0015] (III) Beneficial Effects Compared with the prior art, the present invention provides an integrated device for washing and pulping wax apple pulp, which has the following beneficial effects: This invention solves the problems of complex internal structure, numerous cleaning dead spots, and incomplete cleaning in traditional pulping equipment by using an innovative zoned cleaning mechanism. It utilizes multiple zoned pipes distributed along the pulp conveying path and opens the cleaning channels of different areas sequentially according to changes in the incoming water pressure. This allows the limited flow and pressure of the cleaning water to be concentrated on specific areas in time periods, thereby removing fruit residue residue from each part with maximum hydraulic flushing force in each cleaning cycle. This avoids the problem of water pressure dispersion and poor cleaning effect caused by water flowing to all areas at the same time. As the extrusion plate continues to rotate, all areas are covered sequentially in multiple cleaning cycles, achieving all-round cleaning of the inside of the crushing pipe without dead spots, improving the hygiene and safety of the equipment and the cleaning efficiency between batches.
[0016] The cutting mechanism constructed in this invention achieves dynamic matching between cutting intensity and conveying extrusion process during pulping. The centrifugal rod revolves with the extrusion plate while rotating at high speed under the action of the fixed wheel, causing the cutting blade to extend outward along the interlaced grooves under the action of centrifugal force. The higher the rotation speed, the greater the extension length of the cutting blade and the stronger the cutting effect. When the pulp is conveyed to the extrusion zone where the pitch decreases and the volume is compressed, the pulp density increases and the mutual extrusion intensifies. At this time, the cutting blade maintains a large extension due to the rotation speed being maintained or increased, and performs efficient cutting and crushing of dense pulp, realizing the dual pulping effect of extrusion and cutting. When the machine stops, the centrifugal force disappears, and the return spring automatically retracts the cutting blade, avoiding the safety hazard of the blade being exposed when the machine is stopped.
[0017] The feeding mechanism of this invention pre-crushes the fruit pulp before it enters the main crushing tube. The intermeshing crushing rollers perform initial extrusion and tearing on whole or large pieces of wax apple pulp, reducing the volume of the pulp and creating cracks on its surface. This creates favorable conditions for subsequent entry into the extrusion channel with a gradually narrowing pitch. This avoids excessively large pieces of fruit getting stuck at the beginning of the extrusion plate, affecting the continuity of feeding, and improves the overall pulping efficiency and pulp uniformity. At the same time, this pre-treatment process and the main crushing chamber are driven by the same power source, realizing the intensive use of the power system and automatic synchronization of the action sequence.
[0018] This invention achieves automatic shut-off of the partitioned cleaning pipes when the water pressure exceeds a set threshold through the coordinated design of the elastic strip, fixed ball, and annular groove in the partitioned cleaning mechanism. After a certain area is cleaned, the tail plate passes over the fixed ball under continuous water pressure and locks it into the annular groove, switching the partitioned pipe to the closed state. This automatically terminates the water supply to the completed area during the cleaning process, avoiding water waste. The opening and closing pressure thresholds of each partitioned pipe can be changed by rotating the threaded sleeve to adjust the preload of the push spring. This allows the operator to flexibly set the cleaning sequence and duration of different areas according to water pressure fluctuations or cleaning priorities, achieving precise control of the cleaning process.
[0019] This invention integrates pulping and cleaning functions into a single main body of equipment. A single power source drives the rotating conveyor of the extrusion plates, the dynamic cutting of the cutting blade, and the pre-crushing of the crushing rollers. This simplifies the equipment structure, reduces manufacturing costs and floor space. After pulping, there is no need to transfer materials or change equipment; cleaning water is directly introduced through the inlet pipe, and each zone pipe is activated in a preset pressure sequence to complete the internal cleaning. This achieves continuous operation from material feeding to cleaning, significantly improving production efficiency and equipment utilization. Furthermore, all moving parts adopt a modular design, facilitating disassembly, maintenance, and replacement of vulnerable parts. This provides a highly efficient, hygienic, and energy-saving integrated solution for wax apple deep-processing enterprises. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of a wax apple pulp washing and pulping integrated device according to the present invention; Figure 2 In this invention Figure 1 A schematic diagram of the cross-sectional structure; Figure 3 This is a cross-sectional view of the constricted tube in this invention. Figure 4 This is a cross-sectional view of the internal tube in this invention. Figure 5 This is a cross-sectional view of the centrifugal rod in this invention; Figure 6 This is a schematic diagram of the partitioned pipe structure in this invention; Figure 7 In this invention Figure 6 A schematic diagram of the cross-sectional structure; Figure 8 This is a cross-sectional view of the partitioned pipe in this invention; Figure 9 This is a schematic diagram of the guide disk structure in this invention.
[0021] In the diagram: 11. Base; 12. Crushing tube; 21. Zoned cleaning mechanism; 22. Internal tube; 23. Extrusion plate; 24. Inner retraction tube; 25. Water inlet pipe; 26. Zoned tube; 27. Bidirectional groove; 28. Head plate; 29. Tail plate; 31. Cutting mechanism; 32. Centrifugal rod; 33. Rotating wheel; 34. Fixed wheel; 35. Embedded groove; 36. Interlaced groove; 37. Guide frame; 38. Cutting blade; 39. Fixed ring; 41. Feeding mechanism; 42. Feed shell; 43. Crushing roller; 44. Driven wheel; 45. Discharge pipe; 46. Motor; 47. Intermediate pulley; 48. Belt; 210. Guide plate; 211. Guide groove; 212. Elastic strip; 213. Fixed ball; 214. Annular groove; 215. Threaded sleeve; 216. Push sleeve; 217. Intermediate rod; 218. Push spring; 310. Return spring. Detailed Implementation
[0022] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0023] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0024] In this invention, unless otherwise stated, the directional terms such as "up" and "down" generally refer to the directions shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" generally refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not intended to limit this invention.
[0025] Please see Figures 1 to 9 This embodiment provides an integrated device for washing and pulping wax apple pulp. This device aims to solve the technical problems of existing wax apple pulping equipment, such as difficulty in cleaning, limited functionality, and difficulty in dynamically adjusting the pulping effect according to the characteristics of the pulp. By integrating a partitioned cleaning mechanism with partitioned sequential cleaning function, a cutting mechanism with dynamic adjustment of cutting intensity according to rotation speed, and a pre-crushing feeding mechanism, the device realizes the integrated operation of the entire process of wax apple pulp from pretreatment, dynamic extrusion cutting to equipment self-cleaning.
[0026] 1. Overall structure and initial state The integrated washing and pulping device for wax apple pulp includes a base 11 as the installation foundation and a crushing pipe 12 fixed on the base 11. It also includes a partitioned washing mechanism 21, a cutting mechanism 31 and a feeding mechanism 41 installed inside and around the crushing pipe 12. The partitioned washing mechanism 21 is used to perform partitioned sequential washing inside the crushing pipe 12 after the pulping operation is completed. The cutting mechanism 31 is used to perform dynamic cutting simultaneously during the pulp conveying and extrusion process. The feeding mechanism 41 is used to perform preliminary crushing treatment on the pulp before it enters the crushing pipe 12.
[0027] 2. Composition of the core system 2.1 Zoned Cleaning Mechanism 21 The partitioned cleaning mechanism 21 is the core unit for efficiently cleaning the interior of the crushing pipe 12 under limited water supply conditions. It includes an inner pipe 22 coaxially disposed within the crushing pipe 12. The outer wall of the inner pipe 22 is provided with extrusion plates 23 whose pitch gradually decreases along the conveying direction and whose diameter decreases synchronously. An inner shrinking pipe 24 is fixedly disposed inside the crushing pipe 12, with its inner wall fitting against the outer edge of the extrusion plates 23. One end of the inner pipe 22 is connected to a water inlet pipe 25 for receiving cleaning water. Multiple partitioned pipes 26 are installed axially at equal intervals on the side wall of the inner pipe 22, with each partitioned pipe 26 inserted into the gap between adjacent extrusion plates 23. Each partitioned pipe 26 has an axially penetrating bidirectional groove 27 inside. A head plate 28 and a tail plate 29 are coaxially disposed and fixedly connected to each other within the partitioned pipe 26. A guide disk 210 is slidably connected inside the tube 26. Multiple axially extending guide grooves 211 are provided on the inner wall of the partition tube 26, and the guide disk 210 is slidably connected to the guide grooves 211. The tail disk 29 is fixedly connected to the guide disk 210. Multiple sets of elastic strips 212 are installed at equal intervals on the inner wall of the partition tube 26, and each set of elastic strips 212 consists of two symmetrically arranged elastic strips 212. A fixed ball 213 is fixedly provided on each elastic strip 212. An annular groove 214 that can engage with the fixed ball 213 is provided on the tail disk 29. A threaded sleeve 215 is threadedly connected to one end of the partition tube 26. A push sleeve 216 is coaxially fixed inside the threaded sleeve 215. An intermediate rod 217 is coaxially fixed on the guide disk 210. A push spring 218 is sleeved on the intermediate rod 217, and one end of the push spring 218 abuts against the push sleeve 216.
[0028] 2.2 Cutting Mechanism 31 The cutting mechanism 31 is the core unit for realizing dynamic cutting simultaneously during the pulp conveying and extrusion process. It includes two centrifugal rods 32 rotatably connected to the extrusion plate 23. Each centrifugal rod 32 is fixedly mounted with a rotating wheel 33. A fixed wheel 34 that meshes with the rotating wheel 33 is fixedly installed in the crushing tube 12. Multiple embedded grooves 35 are opened axially inside the centrifugal rods 32. Each embedded groove 35 has an interlaced groove 36 that penetrates the outer wall of the centrifugal rod 32 at its upper end. A guide frame 37 is slidably connected in the embedded groove 35. Multiple cutting blades 38 are fixedly mounted on the guide frame 37, and each cutting blade 38 is slidably connected in the corresponding interlaced groove 36. A fixing ring 39 is threadedly connected to the end of the embedded groove 35. A return spring 310 is provided between the guide frame 37 and the fixing ring 39, and the two ends of the return spring 310 abut against the guide frame 37 and the fixing ring 39, respectively.
[0029] 2.3 Feeding Mechanism 41 The feeding mechanism 41 is a unit that performs pretreatment before the pulp enters the crushing tube 12. It includes a feeding shell 42 fixedly installed on the upper end of the crushing tube 12. Two parallel crushing rollers 43 are rotatably installed inside the feeding shell 42. One end of the two crushing rollers 43 rotates synchronously in opposite directions through meshing gears. The other end of each crushing roller 43 is fixedly installed with a driven wheel 44. The lower end of the crushing tube 12 is provided with a discharge pipe 45 for discharging the pulped material.
[0030] 2.4 Power Unit A motor 46 is fixedly mounted on the base 11, and an intermediate wheel 47 is fixedly mounted on the internal tube 22. The intermediate wheel 47 is connected to the drive end of the motor 46 by a belt 48, and the intermediate wheel 47 is also connected to the driven wheel 44 by a belt 48.
[0031] 3. Working process and principle of the device The pulping and washing processes of the integrated wax apple pulp washing and pulping device are as follows: During the pulping process, the motor 46 is started first. The motor 46 drives the intermediate wheel 47 and the internal tube 22 fixed thereto to rotate through the belt 48. At the same time, the intermediate wheel 47 drives the driven wheel 44 and the crushing roller 43 to rotate through another set of belts 48. The operator puts the wax apple pulp to be processed into the feed shell 42. The two crushing rollers 43 rotate in opposite directions under the mutual meshing drive to perform preliminary compression and tearing of the pulp, so that large pieces of pulp are broken into smaller pieces and fall into the crushing tube 12 below. The pulp falling into the crushing tube 12 is driven by the rotating extrusion plate 23 to be conveyed along the spiral channel towards the discharge pipe 45. As the pitch of the extrusion plate 23 gradually decreases and the gap between the inner tube 24 and the outer edge of the extrusion plate 23 gradually narrows, the pulp is gradually compressed and subjected to strong tumbling and squeezing action during the conveying process, thereby realizing the crushing and pulping of the pulp cells.
[0032] As the extrusion plate 23 rotates, the centrifugal rod 32, which is rotatably connected to it, revolves along with it. Since the rotating wheel 33 is engaged with the stationary fixed wheel 34, the centrifugal rod 32 generates high-speed rotation while revolving. The centrifugal force generated by the high-speed rotation of the centrifugal rod 32 causes the guide frame 37 in the inner groove 35 to overcome the resistance of the return spring 310 and slide outward along the inner groove 35, thereby driving the cutting blade 38 to extend outward along the interlaced groove 36. The higher the rotation speed of the centrifugal rod 32, the greater the extension of the cutting blade 38. The extended cutting blade 38 is in the pulp conveying channel. The centrifugal rod 32 cuts and crushes the pulp. When the pulp is transported to the extrusion zone with the smallest pitch and volume, the pulp density is the highest and the mutual extrusion is the most intense. At this time, the centrifugal rod 32 maintains high-speed rotation so that the cutting blade 38 maintains a large extension, and performs efficient cutting on the dense pulp, realizing the synergistic pulping effect of extrusion and cutting. After pulping, the pulp is discharged through the discharge pipe 45. After the machine stops, the centrifugal rod 32 stops rotating, the centrifugal force disappears, and the guide frame 37 resets under the action of the return spring 310 and drives the cutting blade 38 to retract into the inner groove 35.
[0033] After the pulping operation is completed, when the equipment needs to be cleaned, the operator introduces pressurized cleaning water into the internal pipe 22 through the inlet pipe 25. The cleaning water then enters each partition pipe 26 through the internal pipe 22. Due to the limited pressure and flow of the water supply system, if all partition pipes 26 are opened simultaneously, the water pressure and flow at each outlet will decrease significantly, resulting in poor cleaning effect. Therefore, it is necessary to clean in a partitioned sequence. By rotating the threaded sleeve 215 on each partition pipe 26, the compression of the push sleeve 216 on the push spring 218 can be adjusted, thereby changing the preload of the head plate 28 pressing against one side of the bidirectional groove 27, that is, changing the opening pressure threshold of that partition pipe 26. When the water is introduced... As the cleaning water pressure gradually increases, the water pressure first overcomes the clamping force of the head plate 28 in the partition pipe 26 with the least pre-tightening force, causing the head plate 28 to disengage from the sealing fit with the bidirectional groove 27. The partition pipe 26 opens and concentrates all the water flow to powerfully flush the gap of the extrusion plate 23 in this area. As the water pressure continues to increase, the head plate 28 continues to move and drives the tail plate 29 to move to the other side. When the annular groove 214 on the tail plate 29 moves to the position corresponding to the fixed ball 213, the fixed ball 213 is stuck into the annular groove 214 under the action of the elastic strip 212, locking the tail plate 29 in the open position, and the partition pipe 26 remains open.
[0034] When the water pressure rises further to exceed the opening threshold of the next partition pipe 26, the second partition pipe 26 opens and, after reaching the set pressure, is locked by the fixing ball 213 into the annular groove 214. As the water pressure gradually increases, each partition pipe 26 opens and locks sequentially from low to high according to the preset pressure threshold, so that the cleaning water flow is concentrated on different cleaning areas at different times. When the water pressure continues to rise to exceed the opening pressure of a certain partition pipe 26 by too much, the head plate 28 in that partition pipe 26 will continue to move until the tail plate 29 is attached to the other side of the bidirectional groove 27, while the fixing ball 213 remains locked in the annular groove 214. At this time, the partition pipe 26 is switched to the closed state, and the cleaning water flow is transferred to other partition pipes 26 that are opened subsequently. Through this characteristic of the partition pipes 26 opening sequentially as the water pressure increases and closing sequentially under high pressure, it is achieved that only one or a few partition pipes 26 are in the open state under any given water pressure, ensuring that the limited water flow is concentrated on a specific area. During the cleaning process, the operator can slowly adjust the water supply pressure or use a step-by-step pressure increase method. With the continuous rotation of the extrusion plate 23, the entire area is covered by high-pressure water flow in sequence, completing the all-round cleaning of the inside of the crushing pipe 12 without dead angles. The cleaning wastewater is finally discharged through the discharge pipe 45.
[0035] Working principle summary: This invention achieves sequential cleaning of the interior of the crushing pipe 12 under limited water supply conditions by setting different opening pressure thresholds for multiple partition pipes 26 in the partition cleaning mechanism 21. This avoids water pressure dispersion and reduced cleaning effect caused by simultaneous opening. The cutting blade 38 is dynamically extended by the combined revolution and rotation of the centrifugal rod 32 in the cutting mechanism 31, so that the cutting intensity is automatically matched with the pulp conveying and extrusion process. The pre-crushing treatment of the feeding mechanism 41 creates favorable conditions for subsequent pulping. The three work together to achieve integrated and efficient operation of wax apple pulp from pre-treatment, dynamic extrusion cutting to equipment self-cleaning.
[0036] Of all the solutions mentioned above, those involving the connection between two components can be selected according to the actual situation, such as welding, bolt and nut connection, bolt or screw connection, or other known connection methods, which will not be elaborated here. For all the fixed connections mentioned above, welding is preferred. Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A wax apple pulp washing and pulping integrated device, comprising a fixedly installed base (11) and a crushing pipe (12) installed on the base (11); characterized in that: It also includes a partition cleaning mechanism (21), a cutting mechanism (31) and a feeding mechanism (41); The partition cleaning mechanism (21) sets up multiple independent cleaning areas along the pulp conveying path inside the crushing tube (12), and controls the opening or closing of the cleaning channels of different areas in sequence according to the changes in the incoming cleaning water pressure, so that the cleaning water flow can be concentrated on specific areas at different time periods, thereby realizing the partitioned sequential cleaning of each part inside the crushing tube (12). During the process of conveying and squeezing the pulp, the cutting mechanism (31) uses the centrifugal force generated by rotation to extend the cutting component outward and cut the pulp. The length of the extended cutting component increases with the increase of the rotation speed, thereby realizing a dynamic cutting operation synchronized with the conveying and squeezing process. The feeding mechanism (41) performs preliminary crushing of the pulp before it enters the crushing tube (12) to reduce the volume and overall size of the pulp, making it easier for subsequent conveying and pulping operations.
2. The integrated device for washing and pulping wax apple pulp according to claim 1, characterized in that: The partition cleaning mechanism (21) includes an inner tube (22) coaxially arranged inside the crushing tube (12). The outer wall of the inner tube (22) is provided with an extrusion plate (23) with a gradually decreasing pitch, and the diameter on the side with the decreasing pitch also decreases. An inner shrink tube (24) is fixedly arranged inside the crushing tube (12). The inner shrink tube (24) is attached to the outer wall of the extrusion plate (23). A water inlet pipe (25) is connected to the inner tube (22).
3. The integrated device for washing and pulping wax apple pulp according to claim 2, characterized in that: Multiple partition tubes (26) are installed at equal intervals on the side wall of the internal tube (22), and each partition tube (26) is inserted between the extrusion plates (23). Each partition tube (26) has a bidirectional groove (27) inside, and a head plate (28) and a tail plate (29) are coaxially arranged inside the partition tube (26), and the head plate (28) and the tail plate (29) are connected to each other.
4. The integrated device for washing and pulping wax apple pulp according to claim 3, characterized in that: A guide disk (210) is slidably connected inside the partition tube (26). Multiple guide grooves (211) are provided on the inner wall of the partition tube (26), and the guide disk (210) is slidably connected in the guide groove (211). The tail disk (29) is connected to the guide disk (210).
5. The integrated device for washing and pulping wax apple pulp according to claim 4, characterized in that: Multiple sets of elastic strips (212) are installed at equal intervals on the inner wall of the partition tube (26), and two elastic strips (212) are symmetrically arranged in each set of elastic strips. A fixed ball (213) is provided on each elastic strip (212), and an annular groove (214) is opened on the tail plate (29).
6. The integrated device for washing and pulping wax apple pulp according to claim 5, characterized in that: The partition tube (26) is provided with a threaded sleeve (215) with an internal thread. A push sleeve (216) is coaxially provided inside the threaded sleeve (215). An intermediate rod (217) is coaxially provided on the guide plate (210). A push spring (218) is sleeved on the intermediate rod (217). The push sleeve (216) abuts against the push spring (218).
7. The integrated device for washing and pulping wax apple pulp according to claim 2, characterized in that: The cutting mechanism (31) includes two centrifugal rods (32) rotatably connected inside the extrusion plate (23), and each centrifugal rod (32) is equipped with a rotating wheel (33). A fixed wheel (34) is installed inside the crushing tube (12), and the two rotating wheels (33) are respectively engaged in the fixed wheel (34).
8. The integrated device for washing and pulping wax apple pulp according to claim 7, characterized in that: The centrifugal rod (32) has multiple embedded grooves (35) inside, and each embedded groove (35) has an interlaced groove (36) at its upper end. A guide frame (37) is slidably connected inside the embedded groove (35). Multiple cutting blades (38) are installed on the guide frame (37), and the cutting blades (38) are slidably connected inside the interlaced groove (36). A fixing ring (39) is threaded inside the embedded groove (35), and a return spring (310) is provided on the guide frame (37). The return spring (310) abuts against the fixing ring (39).
9. The integrated device for washing and pulping wax apple pulp according to claim 2, characterized in that: The feeding mechanism (41) includes a feeding shell (42) installed on the crushing pipe (12). Two crushing rollers (43) are rotatably installed inside the feeding shell (42), and one end of the two crushing rollers (43) meshes with each other. A driven wheel (44) is installed at the other end of the crushing rollers (43). A discharge pipe (45) is provided at the lower end of the crushing pipe (12).
10. The integrated device for washing and pulping wax apple pulp according to claim 9, characterized in that: A motor (46) is fixedly installed on the base (11), an intermediate wheel (47) is provided on the internal tube (22), a belt (48) is provided between the intermediate wheel (47) and the transmission end of the motor (46), and a belt (48) is also provided between the intermediate wheel (47) and the driven wheel (44).