A wastewater recycling treatment device based on beverage processing

CN122646933APending Publication Date: 2026-08-28SHANDONG YIPINTANG IND CO LTD
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Patent Information

Application Number
CN202611141610.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-07-30
Publication Date
2026-08-28

AI Technical Summary

Technical Problem

目前传统饮料废水处理装置大多采用简单滤网、静置沉淀或普通离心过滤结构,在实际使用中仍存在明显缺陷,首先,传统离心过滤设备在持续工作过程中,杂质容易在过滤筒内壁局部堆积过厚、分布不均,厚层杂质会堵塞透水通道,阻碍水体离心析出,导致固液分离效率快速下降,过滤稳定性差;其次,堆积的固体残渣结构密实、含水量高,杂质内部水分无法快速排出,脱水效果差,传统设备不具备自动开沟导流结构,杂质层密实无排水的通道,水分滞留严重,极大降低过滤效果

Benefits of technology

本装置在离心过滤筒内部设置螺旋送料条与限位条配合结构,可在过滤过程中实时限制筒壁杂质堆积厚度,避免局部杂质过厚、堵塞透水区域,使整个过滤筒内壁杂质厚度均匀,保证离心透水效果全程稳定,解决传统设备后期过滤效率大幅衰减的问题,设备可长时间连续稳定运行。

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Abstract

The application discloses a kind of based on beverage processing wastewater recycling processing device, it is related to wastewater treatment technical field, including machine body and rotationally connected in centrifugal filter cylinder inside machine body, still include: impurity control mechanism, it includes the feeding strip fixed on the inner wall of centrifugal filter cylinder, setting in centrifugal filter cylinder inside limiting strip and multiple material turning parts setting in limiting strip inside;Power mechanism is used to drive centrifugal filter cylinder rotation;By setting spiral feeding strip and limiting strip cooperation structure in centrifugal filter cylinder inside, can limit cylinder wall impurity accumulation thickness in real time during filtering process, avoid local impurity too thick, block water permeable area, make the whole filter cylinder inner wall impurity thickness uniform, ensure that centrifugal water permeation effect is stable throughout, utilize ditching strip to continuously draw out stable drainage ditch in the impurity layer inside accumulation, form water permeable passage, enable the retained water that is wrapped in residue to quickly seep outwards, substantially reduce waste residue moisture content, solid-liquid separation is more thorough.
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Description

Technical Field

[0001] This invention relates to the field of wastewater treatment technology, and more specifically to a wastewater recycling treatment device based on beverage processing. Background Technology

[0002] In the industrial production of beverages, processes such as washing, filling, and equipment rinsing generate a large amount of wastewater. This wastewater contains fruit pulp fragments, colloidal residues, fine suspended particles, and trace amounts of organic matter. Direct discharge not only wastes water resources but also pollutes the surrounding aquatic environment. Therefore, the industry commonly uses filtration and purification equipment to treat beverage processing wastewater, achieving wastewater recycling and realizing the production goals of energy conservation, environmental protection, and cost reduction. Currently, most traditional beverage wastewater treatment devices use simple filters, static sedimentation, or ordinary centrifugal filtration structures. However, these devices still have significant drawbacks in practical use. First, during continuous operation, impurities tend to accumulate excessively thickly and unevenly on the inner wall of the filter cylinder. Thick layers of impurities can clog the water permeability channels, hindering the centrifugal separation of water and causing a rapid decline in solid-liquid separation efficiency and poor filtration stability. Second, the accumulated solid residue has a dense structure and high water content, preventing the rapid drainage of water from the impurities and resulting in poor dehydration. Traditional equipment lacks an automatic drainage channel structure, and the dense impurity layer without drainage channels leads to severe water retention, greatly reducing the filtration effect. Summary of the Invention

[0003] The purpose of this invention is to provide a wastewater recycling treatment device based on beverage processing to overcome the above-mentioned shortcomings in the prior art.

[0004] To achieve the above objectives, the present invention provides the following technical solution: a wastewater recycling treatment device based on beverage processing, comprising a body and a centrifugal filter cylinder rotatably connected inside the body, and further comprising: The impurity control mechanism includes a feeding bar fixed to the inner wall of the centrifugal filter cylinder, a limiting bar disposed inside the centrifugal filter cylinder, and multiple material turning components disposed inside the limiting bar. The feeding bar has a spiral structure. The power mechanism, which is mounted on the machine body, is used to drive the centrifugal filter cartridge to rotate; The mixing mechanism includes a fixed base installed inside the machine body, multiple metering cylinders installed on top of the fixed base, a stirring component installed inside the metering cylinders, and a dosing component installed on top of the multiple metering cylinders.

[0005] Furthermore, a water inlet pipe is fixedly connected to one end of the machine body, and one end of the water inlet pipe is rotatably connected to one end of the centrifugal filter cylinder; a slag discharge pipe is fixedly connected to the other end of the machine body, and one end of the slag discharge pipe is rotatably connected to the other end of the centrifugal filter cylinder.

[0006] Furthermore, one end of the limiting strip is fixed to the inner wall of the water inlet pipe, and the other end of the limiting strip is fixed to the inner wall of the slag discharge pipe. The limiting strip has a hollow structure. The bottom of the limiting strip abuts against the inner side wall of the feeding strip.

[0007] Furthermore, multiple material-turning components are arranged sequentially along the length of the limiting strip; each material-turning component includes multiple fixed strips fixed to the inner wall of the top of the limiting strip, a grooved strip slidably sleeved on the outside of the fixed strip, and a spring sleeved on the outside of the fixed strip; the top end of the spring is fixedly connected to the inner wall of the top of the limiting strip, and the bottom end of the spring is fixedly connected to the top of the grooved strip; the bottom end of the grooved strip slides to the outside of the limiting strip and abuts against the inner wall of the centrifugal filter cylinder, and an oblique groove is formed at the bottom of the grooved strip near the water inlet pipe.

[0008] Furthermore, the power mechanism includes a gear ring fixedly sleeved on the outside of the centrifugal filter cylinder and a first motor installed at one end of the machine body; a gear is fixedly connected to the output end of the first motor, and the gear meshes with the gear ring.

[0009] Furthermore, a first conduit is installed on the inner wall of the top of the metering cylinder, and a first solenoid valve is installed on the first conduit; a liquid level sensor is installed inside the metering cylinder, and an air pipe is installed on the outer wall of one side of the metering cylinder; a second conduit is installed at the bottom of the metering cylinder, and a second solenoid valve is installed on the second conduit, and the second conduit passes through the fixing seat.

[0010] Furthermore, the stirring component includes a drive shaft rotatably connected inside the metering cylinder and a plurality of stirring blades fixed to the outside of the drive shaft; the bottom end of the drive shaft extends into the interior of the fixed base.

[0011] Furthermore, a second motor is installed inside the fixed base, and the output end of the second motor is fixedly connected to the bottom end of one of the drive shafts; the two adjacent drive shafts are connected by a pulley assembly.

[0012] Furthermore, the dosing component includes a distribution tube installed on the top of multiple metering cylinders and a main tube installed on one end of the multiple distribution tubes extending to the outside of the machine body; a metering valve is installed on the distribution tube.

[0013] Furthermore, a drainage channel is installed on the bottom of one side of the machine body, and the drainage channel is located below the fixed base.

[0014] Compared with the prior art, the wastewater recycling treatment device based on beverage processing provided by the present invention has the following beneficial effects: This device features a spiral feeding bar and a limiting bar structure inside the centrifugal filter cylinder. This structure can limit the thickness of impurities accumulated on the cylinder wall in real time during the filtration process, preventing excessive local impurities from clogging the water permeable area. This ensures that the thickness of impurities on the entire inner wall of the filter cylinder is uniform, guaranteeing a stable centrifugal water permeability throughout the process. It solves the problem of significant filtration efficiency degradation in the later stages of traditional equipment, allowing the equipment to operate continuously and stably for extended periods. This device is equipped with multiple sets of elastic material turning components. It uses the trenching bar to continuously carve stable drainage trenches inside the accumulated impurity layer, forming a water-permeable channel. This allows the water trapped inside the residue to seep out quickly, significantly reducing the moisture content of the waste residue and making solid-liquid separation more thorough. At the same time, the device uses the rotating extrusion of the feeding bar in conjunction with the automatic extension and retraction of the spring to avoid obstacles and automatically reset, achieving continuous dynamic trenching without power. This device is equipped with multiple sets of metering cylinders, along with level sensors and metering valves, to achieve quantitative storage of wastewater and precise dosing of chemicals, completely solving the problems of inaccurate dosing and inconsistent disinfection effects caused by traditional manual dosing. Through the timing control of solenoid valves, it realizes fully automated operation of the entire process, including automatic water intake, automatic water stoppage, automatic dosing, and automatic mixing. This device integrates centrifugal coarse filtration, impurity dehydration, automatic slag discharge, precise dosing, and stirring and disinfection functions into one unit. The overall structure is compact and the process is smoothly connected, which greatly reduces the equipment footprint. The treated wastewater can be directly recycled and reused, reducing production water consumption, lowering production costs, and meeting the requirements of green and environmentally friendly production. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.

[0016] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the internal structure of the body of the present invention; Figure 3 This is a schematic diagram of the impurity control mechanism and power mechanism of the present invention; Figure 4 This is a schematic diagram of the material turning component structure of the present invention; Figure 5 This is a schematic diagram of the drug mixing mechanism of the present invention; Figure 6 This is a schematic diagram of the internal structure of the metering cylinder and the fixing seat of the present invention.

[0017] Explanation of reference numerals in the attached figures: 1. Machine body; 2. Centrifugal filter cylinder; 3. Feed bar; 4. Limit bar; 5. Fixing base; 6. Metering cylinder; 7. Water inlet pipe; 8. Slag discharge pipe; 9. Fixing bar; 10. Grooving bar; 11. Spring; 12. Inclined groove; 13. Gear ring; 14. First motor; 15. Gear; 16. First guide pipe; 17. First solenoid valve; 18. Liquid level sensor; 19. Second guide pipe; 20. Second solenoid valve; 21. Air pipe; 22. Drive shaft; 23. Stirring blade; 24. Second motor; 25. Pulley assembly; 26. Diverter pipe; 27. Main pipe; 28. Metering valve; 29. ​​Drainage channel. Detailed Implementation

[0018] To enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.

[0019] Example: Please refer to Figure 1 - Figure 6 A wastewater recycling treatment device based on beverage processing includes a body 1 and a centrifugal filter cylinder 2 rotatably connected inside the body 1. One end of the body 1 is fixedly connected to a water inlet pipe 7, and one end of the water inlet pipe 7 is rotatably connected to one end of the centrifugal filter cylinder 2. The other end of the body 1 is fixedly connected to a slag discharge pipe 8, and one end of the slag discharge pipe 8 is rotatably connected to the other end of the centrifugal filter cylinder 2. A power mechanism is installed on the body 1 to drive the centrifugal filter cylinder 2 to rotate. The power mechanism includes a gear ring 13 fixedly sleeved on the outside of the centrifugal filter cylinder 2 and a first motor 14 installed at one end of the body 1. A gear 15 is fixedly connected to the output end of the first motor 14, and the gear 15 meshes with the gear ring 13. Wastewater enters the centrifugal filter cylinder 2 through the inlet pipe 7. The first motor 14 drives the gear 15 to rotate. Through the meshing action between the gear 15 and the gear ring 13, the centrifugal filter cylinder 2 rotates. The centrifugal force generated by the rotation of the centrifugal filter cylinder 2 throws out the water inside the centrifugal filter cylinder 2. The particulate impurities in the wastewater are filtered inside the centrifugal filter cylinder 2. Finally, the impurities filtered inside the centrifugal filter cylinder 2 are discharged through the slag discharge pipe 8.

[0020] It also includes: an impurity control mechanism, which comprises a feeding bar 3 fixed to the inner wall of the centrifugal filter cylinder 2, a limiting bar 4 disposed inside the centrifugal filter cylinder 2, and multiple material turning components disposed inside the limiting bar 4. The feeding bar 3 has a spiral structure. One end of the limiting bar 4 is fixed to the inner wall of the water inlet pipe 7, and the other end of the limiting bar 4 is fixed to the inner wall of the slag discharge pipe 8. The limiting bar 4 has a hollow structure. The bottom of the limiting bar 4 abuts against the inner wall of the feeding bar 3. The multiple material turning components are arranged along the length of the limiting bar 4. The next setting includes a series of fixed bars 9 fixed to the inner wall of the top of the limiting bar 4, a grooved bar 10 slidably sleeved on the outside of the fixed bar 9, and a spring 11 sleeved on the outside of the fixed bar 9; the top end of the spring 11 is fixed to the inner wall of the top of the limiting bar 4, and the bottom end of the spring 11 is fixed to the top of the grooved bar 10; the bottom end of the grooved bar 10 slides to the outside of the limiting bar 4 and abuts against the inner wall of the centrifugal filter cylinder 2, and an inclined groove 12 is opened at the bottom of the grooved bar 10 near the water inlet pipe 7; During the filtration process inside the centrifugal filter cylinder 2, the centrifugal filter cylinder 2 drives the feeding bar 3 to rotate synchronously, causing the impurities inside the centrifugal filter cylinder 2 to gradually move to the left. The limiting bar 4 ensures that the thickness of the impurities on the inner wall of the centrifugal filter cylinder 2 does not exceed the thickness of the feeding bar 3, achieving automatic uniform distribution of impurities on the inner wall of the centrifugal filter cylinder 2. This avoids the problem of excessively thick local impurities affecting the water separation effect. Furthermore, during the rotation of the centrifugal filter cylinder 2 and the feeding bar 3, the grooved bars 10 automatically scrape the impurities inside the feeding bar 3, creating drainage channels within the impurities and improving the adequacy of impurity-water separation. When the feeding bar 3 rotates to contact the inclined groove 12, it drives the grooved bars 10 to move towards the limiting bar 4, compressing the spring 11. When the feeding bar 3 passes the grooved bars 10, the spring 11's rebound force drives the grooved bars 10 downwards, re-contacting the inner wall of the centrifugal filter cylinder 2, continuing to create grooves from the impurities.

[0021] The mixing mechanism includes a fixed base 5 installed inside the body 1, multiple metering cylinders 6 installed on top of the fixed base 5, a stirring component installed inside the metering cylinders 6, and a dosing component installed on top of the multiple metering cylinders 6. A drain pipe can be installed on the top of the fixed base 5 and extends to the outside of the body 1. A valve is installed on the drain pipe to discharge the remaining wastewater inside the body 1 when the water filter stops. A first conduit 16 is installed on the inner wall of the top of the metering cylinder 6, and a first solenoid valve 17 is installed on the first conduit 16. A liquid level sensor 18 is installed inside the metering cylinder 6. An air pipe 21 is installed on the outer wall of one side of the metering cylinder 6. The air pipe 21 is designed to facilitate the entry of wastewater into the metering cylinder 6 through the first conduit 16. The air pipe 21 can extend to the top of the body 1. A second conduit 19 is installed at the bottom of the metering cylinder 6. A second solenoid valve 20 is installed, and a second conduit 19 is installed through the fixed base 5. The stirring component includes a drive shaft 22 rotatably connected inside the metering cylinder 6 and multiple stirring blades 23 fixed to the outside of the drive shaft 22. The bottom end of the drive shaft 22 extends into the interior of the fixed base 5. A second motor 24 is installed inside the fixed base 5, and the output end of the second motor 24 is fixed to the bottom end of one of the drive shafts 22. Adjacent drive shafts 22 are connected by a belt pulley component 25. The dosing component includes a diversion pipe 26 installed on the top of multiple metering cylinders 6 and a main pipe 27 installed on one end of the multiple diversion pipes 26 extending to the outside of the machine body 1. A metering valve 28 is installed on the diversion pipe 26, and a third solenoid valve is also installed on the diversion pipe 26. A drainage channel 29 is installed at the bottom of one side of the machine body 1, and the drainage channel 29 is located below the fixed base 5. Wastewater filtered from centrifugal filter cartridge 2 collects at the top of fixed base 5. When the wastewater exceeds the upper edge of metering cylinder 6, it enters the inside of metering cylinder 6 through first conduit 16. When level sensor 18 detects that the wastewater level inside metering cylinder 6 has reached the set value, it sends a signal to controller. Controller controls first solenoid valve 17 to close, stopping the introduction of wastewater into metering cylinder 6, and controls the corresponding third solenoid valve to open. The agent is injected into the diversion pipe 26 opened by the third solenoid valve through main pipe 27 and metered by metering valve 28. After adding a measured amount of agent, the third solenoid valve is closed. The second motor 24 drives one of the drive shafts 22 to rotate. Through the transmission connection of each pulley component 25, each drive shaft 22 is driven to rotate synchronously at low speed. Stirring blade 23 rotates accordingly, mixing the wastewater and agent inside metering cylinder 6 to achieve disinfection and sterilization. Then, the second solenoid valve 20 is opened, and the water inside metering cylinder 6 is discharged to the bottom of fixed base 5 through second conduit 19 and finally discharged through drainage channel 29.

[0022] Working principle: Wastewater from beverage processing is fed into the centrifugal filter cylinder 2 through the inlet pipe 7 at one end of the machine body 1; the first motor 14 is started, driving the output gear 15 to rotate, and the gear 15 meshes with the outer gear ring 13 of the centrifugal filter cylinder 2 to drive the centrifugal filter cylinder 2 to rotate at high speed. The high-speed rotation generates a strong centrifugal force, and the water passes through the wall of the centrifugal filter cylinder 2 and is thrown outward into the inner cavity of the machine body 1. Particulate impurities such as fruit pulp fragments, colloids, and solid residues in the wastewater are trapped in the centrifugal filter cylinder 2, completing the initial solid-liquid separation; the impurities accumulated in the cylinder can finally be discharged outward through the slag discharge pipe 8 at the other end of the machine body 1. When the centrifugal filter cylinder 2 rotates, it synchronously drives the spiral feeding strip 3 on the inner wall to rotate as well. The spiral structure continuously pushes the impurities accumulated inside the cylinder towards the slag discharge pipe 8. The two ends of the limiting strip 4 are fixed to the inner walls of the water inlet pipe 7 and the slag discharge pipe 8, respectively. The bottom of the limiting strip 4 is attached to the inner side of the feeding strip 3, which limits the height of the impurities accumulated on the cylinder wall and restricts the thickness of the impurities from exceeding the height of the feeding strip 3. This prevents the local impurity layer from being too thick and blocking the water penetration, and ensures a continuous and stable centrifugal separation efficiency. The limiting strip 4 is equipped with multiple sets of turning components. Under normal conditions, the spring 11 pushes the groove strip 10 downward, so that its bottom end is close to the inner wall of the centrifugal filter cylinder 2 and inserts into the impurity layer to draw a guide groove. The groove forms a drainage channel, and the water trapped in the gaps between the impurities can flow quickly to the cylinder wall along the groove and seep out, greatly improving the degree of impurity dehydration. When the rotating feed bar 3 contacts the inclined groove 12 at the bottom of the groove bar 10, the inclined surface is squeezed and pushed upward along the fixed bar 9 to compress the spring 11 and avoid the feed bar 3. After the feed bar 3 completely passes the groove bar 10, the compressed spring 11 rebounds, pushing the groove bar 10 to move downward again and cut into the impurity layer, continuously circulating the groove opening and continuously draining the impurity layer. The clean wastewater thrown out by the centrifugal filter cartridge 2 is collected inside the machine body 1 and above the fixed base 5. After the water level overflows the upper edge of the metering cylinder 6, the water flows into the metering cylinder 6 through the first conduit 16. The air pipe 21 balances the air pressure inside and outside the cylinder to ensure smooth water intake. The liquid level sensor 18 inside the cylinder monitors the water level in real time. When the water volume reaches the preset mixing volume, the sensor transmits a signal to the controller, and the controller immediately closes the first solenoid valve 17 to cut off the water intake. After the water intake stops, the controller opens the third solenoid valve on the corresponding diversion pipe 26, and the external agent is diverted into the diversion pipe 26 through the main pipe 27. The metering valve 28 precisely controls the dosage of the agent. After the quantitative agent is added, the third solenoid valve is closed, completing the quantitative ratio of wastewater and agent. The second motor 24 is started to drive a drive shaft 22 to rotate. Adjacent drive shafts 22 are synchronously driven by the pulley assembly 25. All drive shafts 22 rotate synchronously at low speed. The outer stirring blades 23 thoroughly stir and mix the wastewater and agent in the cylinder, and the agent is evenly dissolved, completing the disinfection, sterilization and purification treatment of microorganisms and organic matter in the beverage wastewater.After the mixing and disinfection process is completed, the controller opens the second solenoid valve 20 on the second conduit 19. The mixed purified water is discharged from the second conduit 19 to the bottom cavity of the fixed seat 5, and finally discharged outward through the drainage channel 29 at the bottom of the machine body 1. When the impurities in the cylinder accumulate to a certain amount, they can be uniformly discharged and cleaned through the slag discharge pipe 8. The equipment continuously circulates and treats beverage production wastewater.

[0023] It should be noted that the device structure and accompanying drawings of this invention mainly describe the principle of the invention. The technical details of the device's power mechanism, power supply system, and control system are not fully described. However, those skilled in the art, understanding the principles of the invention, can clearly understand the specifics of its power mechanism, power supply system, and control system. The control method described in the application is automatic control via a controller, and the controller's control circuit can be implemented through simple programming by those skilled in the art. The above description only illustrates certain exemplary embodiments of the invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of this invention.

[0024] In the description of this invention, it should be understood that the orientations or positional relationships indicated by terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", and "counterclockwise" are based on the orientations or positional relationships shown in the accompanying drawings and are only for the convenience of describing this invention and simplifying the description. They are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention.

[0025] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined as "first" or "second" may explicitly or implicitly include one or more of the stated features. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified. Furthermore, the terms "installed," "connected," and "linked" should be interpreted broadly; for example, they may refer to a fixed connection, a detachable connection, or an integral connection; they may refer to a mechanical connection or an electrical connection; they may refer to a direct connection or an indirect connection through an intermediate medium; and they may refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

Claims

1. A wastewater recycling treatment device based on beverage processing, comprising a body (1) and a centrifugal filter cylinder (2) rotatably connected inside the body (1), characterized in that, Also includes: The impurity control mechanism includes a feeding bar (3) fixed to the inner wall of the centrifugal filter cylinder (2), a limiting bar (4) set inside the centrifugal filter cylinder (2), and multiple turning parts set inside the limiting bar (4). The feeding bar has a spiral structure. The power mechanism, which is installed on the machine body (1), is used to drive the centrifugal filter cartridge (2) to rotate; The mixing mechanism includes a fixed base (5) installed inside the body (1), multiple metering cylinders (6) installed on top of the fixed base (5), a stirring component installed inside the metering cylinders (6), and a dosing component installed on top of the multiple metering cylinders (6).

2. The wastewater recycling treatment device based on beverage processing according to claim 1, characterized in that, One end of the machine body (1) is fixedly connected to a water inlet pipe (7), and one end of the water inlet pipe (7) is rotatably connected to one end of the centrifugal filter cylinder (2); the other end of the machine body (1) is fixedly connected to a slag discharge pipe (8), and one end of the slag discharge pipe (8) is rotatably connected to the other end of the centrifugal filter cylinder (2).

3. The wastewater recycling treatment device based on beverage processing according to claim 2, characterized in that, One end of the limiting strip (4) is fixed to the inner wall of the water inlet pipe (7), and the other end of the limiting strip (4) is fixed to the inner wall of the slag discharge pipe (8). The limiting strip (4) has a hollow structure. The bottom of the limiting strip (4) abuts against the inner wall of the feeding strip (3).

4. The wastewater recycling treatment device based on beverage processing according to claim 3, characterized in that, Multiple material-turning components are arranged sequentially along the length of the limiting strip (4); the material-turning components include multiple fixed strips (9) fixed to the inner wall of the top of the limiting strip (4), a grooved strip (10) slidably sleeved on the outside of the fixed strip (9), and a spring (11) sleeved on the outside of the fixed strip (9); the top end of the spring (11) is fixed to the inner wall of the top of the limiting strip (4), and the bottom end of the spring (11) is fixed to the top of the grooved strip (10); the bottom end of the grooved strip (10) slides to the outside of the limiting strip (4) and abuts against the inner wall of the centrifugal filter cylinder (2); the bottom of the grooved strip (10) near the water inlet pipe (7) is provided with an inclined groove (12).

5. A wastewater recycling treatment device based on beverage processing according to claim 4, characterized in that, The power mechanism includes a gear ring (13) fixedly sleeved on the outside of the centrifugal filter cylinder (2) and a first motor (14) installed at one end of the machine body (1); the output end of the first motor (14) is fixedly connected to a gear (15), which meshes with the gear ring (13).

6. A wastewater recycling treatment device based on beverage processing according to claim 5, characterized in that, A first conduit (16) is installed on the inner wall of the top of the metering cylinder (6), and a first solenoid valve (17) is installed on the first conduit (16); a liquid level sensor (18) is installed inside the metering cylinder (6), and an air pipe (21) is installed on the outer wall of one side of the metering cylinder (6); a second conduit (19) is installed at the bottom of the metering cylinder (6), and a second solenoid valve (20) is installed on the second conduit (19), and the second conduit (19) passes through the fixed seat (5).

7. A wastewater recycling treatment device based on beverage processing according to claim 6, characterized in that, The stirring component includes a drive shaft (22) rotatably connected inside the metering cylinder (6) and a plurality of stirring blades (23) fixed to the outside of the drive shaft (22); the bottom end of the drive shaft (22) extends into the interior of the fixed base (5).

8. A wastewater recycling treatment device based on beverage processing according to claim 7, characterized in that, The fixed base (5) is equipped with a second motor (24), the output end of which is fixedly connected to the bottom end of one of the drive shafts (22); the two adjacent drive shafts (22) are connected by a pulley assembly (25).

9. A wastewater recycling treatment device based on beverage processing according to claim 8, characterized in that, The dosing component includes a diversion tube (26) installed on the top of a plurality of metering cylinders (6) and a main tube (27) installed on one end of the plurality of diversion tubes (26) extending to the outside of the body (1); a metering valve (28) is installed on the diversion tube (26).

10. A wastewater recycling treatment device based on beverage processing according to claim 9, characterized in that, A drainage channel (29) is installed at the bottom of one side of the body (1), and the drainage channel (29) is located below the fixed base (5).