Circulating bolete soaking and washing pool

Through the design of the circulating bolete bath wash tank, the synergistic effect of the stirring shaft and the aeration tube group is used to achieve efficient cleaning and water resource recycling, solving the problem of low manual cleaning efficiency, and improving the economic benefits and environmental protection of boletete cleaning.

CN223298481UActive Publication Date: 2025-09-05YUNNAN WANLI TRADING CO LTD
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Patent Information

Application Number
CN202422515002.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-17
Publication Date
2025-09-05
Estimated Expiration
2034-10-17

AI Technical Summary

Technical Problem

In the prior art, porcini cleaning mainly relies on manual operations, which is inefficient and increases production costs.

Method used

A circulating boletus bathing tank is designed, including a soaking tank, agitating shaft, an aeration tube group, a circulation mechanism and an automated salvage mechanism. The cleaning effect is enhanced through the synergistic effect of the agitating shaft and aeration tube group, the reuse of cleaning water is realized, and the salvage efficiency is improved through automated equipment.

Benefits of technology

It significantly improves cleaning efficiency, reduces water consumption and wastewater treatment costs, maintains the softness and integrity of porcini mushrooms, meets environmental protection requirements, and improves economic benefits and work efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model is applicable to the technical field of soaking and washing pools, and provides a circulating bolete soaking and washing pool which comprises a soaking pool, the sieve plate is fixedly mounted in the soaking pool and divides the soaking pool into a soaking and washing cavity and a mixing cavity; the stirring shaft is rotationally mounted in the mixing cavity; the rotating motor is fixedly mounted at the bottom of the soaking pool, and an output shaft of the rotating motor is fixedly connected with the stirring shaft; the cleaning mechanism is arranged on the soaking pool and is used for cleaning impurities on the bolete; and the circulating mechanism is arranged on the soaking pool and is used for repeatedly utilizing the bolete cleaning water. According to the circulating bolete soaking and washing pool, the cleaning efficiency can be improved, large-scale cleaning can be conducted, manual participation is reduced, the cost is reduced, and economic benefits are improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of soaking and washing pools, and in particular relates to a circulating boletus soaking and washing pool. Background Art

[0002] Boletus is a general term for fungi from the Boletaceae family and the Pinecone Boletaceae family. Boletus is a wild, edible mushroom. Most varieties are edible, with the exception of a few that are poisonous or bitter and therefore inedible. The main varieties are white, yellow, and black boletus.

[0003] To quickly freeze and refrigerate porcini, they must first be cleaned. Because porcini are relatively soft, they cannot be cleaned with aggressive equipment. Gently washing them by hand in a soaking tank is ideal. However, manual cleaning is inefficient and increases cleaning costs, which in turn reduces economic benefits. Utility Model Content

[0004] The utility model provides a circulating porcini mushroom soaking and washing pool, aiming to solve the problem raised in the above background technology that porcini mushrooms are mostly cleaned manually, which has low cleaning efficiency and increases production costs.

[0005] To solve the above problems, the utility model is implemented as follows: a circulating porcini mushroom soaking and washing pool, comprising: a soaking pool; a sieve plate, which is fixedly installed in the soaking pool and divides the soaking pool into a soaking and washing chamber and a mixing chamber; a stirring shaft, which is rotatably installed in the mixing chamber; a rotating motor, which is fixedly installed at the bottom of the soaking pool, and the output shaft of the rotating motor is fixedly connected to the stirring shaft; a cleaning mechanism, which is arranged on the soaking pool and is used to clean impurities on the porcini mushrooms; and a circulation mechanism, which is arranged on the soaking pool and is used to reuse the water used to wash the porcini mushrooms.

[0006] Preferably, the cleaning mechanism includes an aeration tube group, multiple exhaust ports and an air pump. The aeration tube group is fixedly installed in the mixing chamber. The multiple exhaust ports are all opened on the aeration tube group and are arranged corresponding to the soaking and washing chamber. The air pump is fixedly installed on the immersion tank, and the output end of the air pump is fixedly connected to the aeration tube group.

[0007] Preferably, the circulation mechanism includes a circulation box, a first water pump, a suction pipe, a curved pipe, a second water pump and two connecting pipes. The circulation box is fixedly installed on the soaking pool, the first water pump is fixedly installed on the circulation box, the suction pipe is fixedly installed on the water inlet end of the first water pump and extends into the mixing chamber, the curved pipe is fixedly installed on the discharge end of the first water pump, and the other end of the curved pipe is arranged on the top of the circulation box, the second water pump is fixedly installed on the soaking pool, the two connecting pipes are respectively fixedly installed on the discharge end and the water inlet end of the second water pump, the water inlet of the connecting pipe connected to the water inlet end is arranged in the middle section of the circulation box, and the connecting pipe connected to the discharge end extends into the soaking chamber.

[0008] Preferably, a salvage mechanism is provided on the soaking pool for salvaging the cleaned porcini mushrooms. The salvage mechanism includes a filter screen, multiple fixed covers, multiple magnet one, multiple magnet two and a winding mechanism. The filter screen is arranged in the soaking chamber and contacts the sieve plate. The multiple fixed covers are respectively fixedly installed on both sides of the filter screen, the multiple magnet one are fixedly installed in the fixed cover, the multiple magnet two are respectively fixedly installed on the sieve plate, the multiple magnet two are respectively arranged corresponding to the multiple magnet one, and the winding mechanism is arranged on the soaking pool for driving the filter screen to rise.

[0009] Preferably, the winding mechanism includes multiple threaded sleeves, multiple connecting seats, multiple traction ropes, two electric winches, two fixed blocks and two guide wheel frames, the multiple threaded sleeves are respectively fixedly mounted on the tops of the multiple fixed covers, the multiple connecting seats are respectively threadedly mounted on the multiple threaded sleeves, the multiple traction ropes are respectively fixedly mounted on the multiple connecting seats, the two electric winches are respectively fixedly mounted on both sides of the soaking pool, the two electric winches are respectively wound around the multiple traction ropes, the two fixed blocks are respectively fixedly mounted on both sides of the soaking pool, and are respectively arranged corresponding to the two electric winches, the two guide wheel frames are respectively fixedly mounted on the two fixed blocks, and respectively conflict with the multiple traction ropes.

[0010] Preferably, the electric winch includes two support blocks, a winding shaft and a drive motor, the two support blocks are fixedly mounted on the immersion tank, the winding shaft is rotatably mounted between the two support blocks and is wound around the multiple traction ropes, the drive motor is fixedly mounted on any of the support blocks, and the output shaft of the drive motor is fixedly connected to the winding shaft.

[0011] Preferably, two limiting grooves are respectively provided on the front and rear inner walls of the washing chamber, and two sliding blocks are respectively fixedly installed on the other two sides of the filter screen, and the four sliding blocks are respectively slidably arranged in the four limiting grooves.

[0012] Compared with the related art, the circulating porcini mushroom soaking and washing pool provided by the utility model has the following beneficial effects:

[0013] Compared with the existing technology, the circulating porcini mushroom washing pool provided by this solution significantly enhances the cleaning effect through the synergistic effect of the stirring shaft and the aeration pipe group, effectively removes impurities and stubborn stains on the surface of the porcini mushrooms, and maintains the softness and integrity of the porcini mushrooms. The use of a circulation mechanism realizes the reuse of cleaning water, reduces water consumption, saves water resources, and reduces wastewater treatment costs, thereby improving economic benefits. The introduction of automated equipment such as electric winches makes the salvage process more convenient and efficient, reduces the complexity and labor intensity of manual operations, and improves overall work efficiency. The design of the limit groove and slider ensures the stability of the filter screen during the lifting process, avoids deviation or shaking, and ensures the accuracy and safety of the salvage process. The entire system focuses on environmental protection and energy saving. By recycling water resources and reducing wastewater discharge, it meets modern environmental protection requirements and is conducive to sustainable development. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 This is a schematic diagram of the main cross-sectional structure of a circulating porcini mushroom soaking and washing pool provided by the utility model;

[0015] Figure 2 This is a rear cross-sectional structural diagram of a circulating porcini mushroom soaking and washing pool provided by the utility model;

[0016] Figure 3 for Figure 1 Schematic diagram of the enlarged structure of part A shown in FIG.

[0017] Figure numerals: 1. Soaking tank; 2. Sieve plate; 3. Soaking chamber; 4. Mixing chamber; 5. Stirring shaft; 6. Rotating motor; 7. Aeration pipe group; 8. Exhaust port; 9. Air pump; 10. Circulation box; 11. First water pump; 12. Suction pipe; 13. Curved pipe; 14. Second water pump; 15. Connecting pipe; 16. Filter screen; 17. Fixed cover; 18. Magnet 1; 19. Magnet 2; 20. Threaded sleeve; 21. Connecting seat; 22. Traction rope; 23. Electric winch; 24. Fixed block; 25. Guide wheel frame; 26. Limiting groove; 27. Slider. DETAILED DESCRIPTION

[0018] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this application belongs; the terms used herein in the specification of the application are for the purpose of describing specific embodiments only and are not intended to limit this application; the terms "including" and "having" in the specification and claims of this application and the description of the above-mentioned drawings, as well as any variations thereof, are intended to cover non-exclusive inclusions. The terms "first", "second", etc. in the specification and claims of this application or the above-mentioned drawings are used to distinguish different objects, rather than to describe a specific order; the terms "inside", "outside", "left", and "right" indicate directions or positional relationships based on the directions or positional relationships shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction, and therefore cannot be understood as limiting the present invention.

[0019] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute an independent or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0020] The present invention provides a circulating porcini mushroom washing pool. Figure 1-3 As shown, the circulating porcini soaking and washing pool includes: a soaking pool 1; a sieve plate 2, which is fixedly installed in the soaking pool 1 and divides the soaking pool 1 into a soaking and washing chamber 3 and a mixing chamber 4; a stirring shaft 5, which is rotatably installed in the mixing chamber 4; a rotating motor 6, which is fixedly installed at the bottom of the soaking pool 1, and the output shaft of the rotating motor 6 is fixedly connected to the stirring shaft 5; a cleaning mechanism, which is arranged on the soaking pool 1 and is used to clean impurities on the porcini; and a circulation mechanism, which is arranged on the soaking pool 1 and is used to reuse the water used for washing the porcini.

[0021] In this embodiment, the soaking tank 1 serves as the main container of the entire cleaning system, holding the porcini mushrooms to be cleaned and the cleaning water. This provides a closed and stable cleaning environment, facilitating the control of various parameters during the cleaning process. A sieve plate 2 divides the soaking tank into a soaking chamber 3 and a mixing chamber 4. The soaking chamber is used for initial soaking and softening the porcini mushrooms, while the mixing chamber is used for stirring and mixing the cleaning water. This compartmentalized design enables zonal management of the cleaning process, improving cleaning efficiency and water resource utilization. Furthermore, the sieve plate design prevents damage to the porcini mushrooms during the stirring process. The stirring shaft 5, driven by a rotary motor 6, rotates, mixing and stirring the cleaning water and porcini mushrooms, enhancing the cleaning effect. The rotation of the stirring shaft effectively removes impurities and dirt from the surface of the porcini mushrooms while maintaining their softness and integrity, improving cleaning quality. The output shaft of the rotary motor 6 is fixedly connected to the stirring shaft, providing power for the stirring shaft. As the power source, the rotary motor 6 ensures continuous and stable rotation of the stirring shaft, thereby ensuring the continuity and efficiency of the cleaning process. The cleaning mechanism directly aerates the surface of the porcini mushrooms, removing stubborn stains and impurities. Combined with the stirring action of the agitator shaft, this mechanism further enhances cleaning effectiveness, ensuring the cleanliness of the porcini mushrooms. A circulation mechanism extracts cleaning water from the mixing chamber, filters it, and then re-injects it into the soaking or mixing chamber, reusing water resources. This significantly reduces water consumption during the cleaning process, conserving water resources and minimizing wastewater discharge, thus complying with environmental protection requirements. Furthermore, recycling the cleaning water maintains a stable temperature and concentration of the cleaning solution, enhancing cleaning effectiveness.

[0022] In a further preferred embodiment of the present invention, the cleaning mechanism includes an aeration pipe group 7, multiple exhaust ports 8 and an air pump 9, the aeration pipe group 7 is fixedly installed in the mixing chamber 4, the multiple exhaust ports 8 are all opened on the aeration pipe group 7, and are arranged corresponding to the soaking and washing chamber 3, the air pump 9 is fixedly installed on the soaking tank 1, and the output end of the air pump 9 is fixedly connected to the aeration pipe group 7.

[0023] In this embodiment, the aeration tube assembly 7 is fixedly installed within the mixing chamber 4 and serves as a gas distribution device. The aeration tube assembly typically consists of multiple small aeration tubes evenly distributed within the mixing chamber to ensure that the gas is evenly distributed and diffused throughout the mixing chamber. Injecting gas into the mixing chamber through the aeration tube assembly forms tiny bubbles. These bubbles, as they rise, cause the water flow and the porcini to move slightly, thereby enhancing the cleaning effect. Furthermore, the bursting of the bubbles creates a certain impact force, helping to remove stubborn stains on the porcini surface. The provision of multiple exhaust ports 8 means that the gas discharged from the aeration tube assembly and the water carried along can enter the soaking and washing chamber through these exhaust ports, further facilitating the cleaning of the porcini. The provision of exhaust ports ensures a more even distribution of gas and water flow, covering every corner of the soaking and washing chamber and ensuring that the porcini are thoroughly cleaned. This design also helps improve cleaning efficiency and shorten cleaning time. The air pump 9 serves as the power source, compressing the gas and delivering it to the aeration tube assembly. Stable operation of the air pump is crucial to the proper functioning of the aeration tube assembly. The continuous air supply from the air pump ensures that there is always enough air in the aeration tube group to generate bubbles, thus maintaining the continuity and efficiency of the cleaning process. In addition, the use of the air pump also makes the entire cleaning process more automated and convenient.

[0024] In a further preferred embodiment of the present invention, the circulation mechanism includes a circulation box 10, a first water pump 11, a suction pipe 12, a curved pipe 13, a second water pump 14 and two connecting pipes 15. The circulation box 10 is fixedly installed on the soaking pool 1, the first water pump 11 is fixedly installed on the circulation box 10, the suction pipe 12 is fixedly installed on the water inlet end of the first water pump 11 and extends into the mixing chamber 4, the curved pipe 13 is fixedly installed on the discharge end of the first water pump 11, and the other end of the curved pipe 13 is arranged on the top of the circulation box 10, the second water pump 14 is fixedly installed on the soaking pool 1, and the two connecting pipes 15 are respectively fixedly installed on the discharge end and the water inlet end of the second water pump 14, the water inlet of the connecting pipe 15 connected to the water inlet end is arranged in the middle section of the circulation box 10, and the connecting pipe 15 connected to the discharge end extends into the soaking chamber 3.

[0025] In this embodiment, the circulation box 10 serves as a container for storing and filtering cleaning water, and is used to collect impurities and suspended matter in the cleaning water in the soaking tank 1. The design of the circulation box makes it possible to reuse it later. This not only saves water resources, but also reduces wastewater discharge, meeting environmental protection requirements. The first water pump 11 serves as a pumping power source. Its water inlet extends into the mixing chamber 4 through the pumping pipe 12, and is responsible for extracting the cleaning water from the mixing chamber. The operation of the first water pump realizes the preliminary extraction of cleaning water, laying the foundation for subsequent reuse. Its stable pumping capacity ensures the continuity and efficiency of the circulation process. The design of the pumping pipe makes the extraction process of cleaning water smoother and more efficient, avoiding circulation interruptions caused by problems such as pipe blockage or leakage. The curved pipe 13 is responsible for discharging the cleaning water in the mixing chamber from a high place back into the circulation box 10 to clean up the impurities remaining at the bottom. The second water pump 14 serves as a power source for water supply again, realizing the recycling of cleaning water. During cleaning in the soaking tank 1, the clean water in the circulation box 10 is allowed to stand. Most of the impurities on the boletus are dirt and leaves. The dirt sinks to the bottom of the circulation box 10 due to standing, while impurities such as leaves float on the water surface. The clean water extracted from the middle section is relatively clean. After extracting some water, clean water needs to be injected into the soaking tank 1, and the remaining water is discharged through the drain pipe at the bottom of the circulation box 10. When a new round of clean water is injected, the water discharged from the curved pipe 13 in the previous section is used to clean the circulation box 10. The connecting pipe 15 acts as a bridge connecting various components to ensure the smooth operation of the circulation mechanism. The choice of its material and connection method also directly affects the circulation efficiency and stability.

[0026] In a further preferred embodiment of the present invention, a salvage mechanism is provided on the soaking pool 1 for salvaging the cleaned porcini mushrooms, and the salvage mechanism includes a filter 16, multiple fixed covers 17, multiple magnets 18, multiple magnets 19 and a winding mechanism. The filter 16 is arranged in the soaking chamber 3 and contacts the sieve plate 2. The multiple fixed covers 17 are respectively fixedly mounted on both sides of the filter 16, and the multiple magnets 18 are all fixedly mounted in the fixed cover 17. The multiple magnets 2 19 are respectively fixedly mounted on the sieve plate 2, and the multiple magnets 2 19 are respectively arranged corresponding to the multiple magnets 18. The winding mechanism is arranged on the soaking pool 1 for driving the filter 16 to rise.

[0027] In this embodiment, the filter screen 16 is used to intercept and collect porcini mushrooms during the salvaging process, preventing them from being lost in the water flow. The filter screen design makes the salvaging process more precise and efficient, ensuring that the majority of cleaned porcini mushrooms are collected, minimizing losses. A fixing cover 17 is used to secure and separate the filter screen in conjunction with a magnet. This fixing cover provides a mounting location for the magnet and, through interaction with the magnets on the sieve plate, ensures stable retention and convenient detachment of the filter screen during the salvaging process. Magnet 1 18 and magnet 2 19 on the sieve plate attract each other, maintaining the filter screen in a stable position during the salvaging process. The combination of magnets 1 and 2 secures the filter screen to the sieve plate, preventing it from shifting or falling due to water flow during cleaning, which could affect subsequent salvaging results. Magnet 2 19, a key component in securing the filter screen, works in conjunction with magnet 1 to ensure the stability and reliability of the salvaging mechanism. The reeling mechanism is used to lift the filter screen 16 upward, mechanically lifting it out of the washing chamber. The design of the reeling mechanism makes the salvaging process more automated and convenient. The operator only needs to control the winding mechanism to raise and lower the filter screen, which greatly improves work efficiency and safety.

[0028] In a further preferred embodiment of the present invention, the winding mechanism includes multiple threaded sleeves 20, multiple connecting seats 21, multiple traction ropes 22, two electric winches 23, two fixed blocks 24 and two guide wheel frames 25, the multiple threaded sleeves 20 are respectively fixedly mounted on the tops of the multiple fixed covers 17, the multiple connecting seats 21 are respectively threadedly mounted on the multiple threaded sleeves 20, the multiple traction ropes 22 are respectively fixedly mounted on the multiple connecting seats 21, the two electric winches 23 are respectively fixedly mounted on both sides of the immersion pool 1, the two electric winches 23 are respectively wound around the multiple traction ropes 22, the two fixed blocks 24 are respectively fixedly mounted on both sides of the immersion pool 1, and are respectively arranged corresponding to the two electric winches 23, the two guide wheel frames 25 are respectively fixedly mounted on the two fixed blocks 24, and respectively conflict with the multiple traction ropes 22.

[0029] In this embodiment, a threaded sleeve 20 serves as the mounting base for the connecting base 21, achieving secure installation through a threaded connection. The design of the threaded sleeve allows for easy installation and removal of the connecting base 21, facilitating maintenance and replacement. Furthermore, the threaded connection ensures a stable and reliable connection. The connecting base 21 serves as the anchor point for the traction rope 22, connecting it to the fixed cover 17. The design of the connecting base ensures that the traction rope is securely fixed to the fixed cover, preventing it from falling off or breaking during the winding process. It also facilitates adjustment of the traction rope's length and tension. The traction rope 22, serving as the power transmission medium for the winding mechanism, converts the rotational motion of the electric winch into the lifting motion of the filter screen. The design of the traction rope ensures a smoother and more reliable winding process. By controlling the rotational direction and speed of the electric winch, the height and speed of the filter screen can be precisely controlled. The electric winch 23, serving as the power source for the winding mechanism, rotates to wind and release the traction rope. The use of the electric winch makes the winding process more automated and convenient. The filter screen can be automatically reeled in and released through remote control or a preset program, greatly improving work efficiency and safety. The fixed block 24 serves as the mounting base for the guide wheel frame 25, allowing the guide wheel frame to be securely mounted on the soaking tank, preventing loosening or falling off due to vibration or impact. The guide wheel on the guide wheel frame 25 can guide the movement direction of the traction rope, reducing friction and wear. The design of the guide wheel frame makes the movement of the traction rope smoother and more stable. Through the guidance of the guide wheel, the friction contact between the traction rope and the fixed block or the soaking tank wall can be reduced, extending the service life of the traction rope.

[0030] In a further preferred embodiment of the present invention, the electric winch 23 includes two support blocks, a winding shaft and a drive motor, the two support blocks are fixedly mounted on the immersion tank 1, the winding shaft is rotatably mounted between the two support blocks and is wound around the plurality of traction ropes 22, the drive motor is fixedly mounted on any of the support blocks, and the output shaft of the drive motor is fixedly connected to the winding shaft.

[0031] In this embodiment, the support block serves as the basic structure of the electric winch, supporting and securing the winding shaft and drive motor. The design of the support block ensures the electric winch is securely mounted on the soaking tank, preventing loosening or falling due to vibration or impact, and improving the stability and reliability of the equipment. The winding shaft is the core component of the electric winch, rotating to wind and release the traction rope. The design of the winding shaft allows the traction rope to be wound around it in an orderly manner, preventing tangles and tangles. Furthermore, by controlling the rotation direction and speed of the winding shaft, the lifting height and speed of the filter can be precisely controlled. The drive motor serves as the power source of the electric winch, driving the winding shaft by rotating the output shaft. The use of the drive motor makes the electric winch's rotational motion more precise and controllable. By adjusting the motor's speed and direction, the lifting speed and direction of the filter can be precisely controlled. Furthermore, the use of the motor increases the automation level of the winding process, reducing the difficulty and labor intensity of manual operation.

[0032] In a further preferred embodiment of the present invention, two limiting grooves 26 are respectively provided on the front and rear inner walls of the washing chamber 3, and two sliders 27 are respectively fixedly installed on the other two sides of the filter screen 16, and the four sliders 27 are respectively slidably set in the four limiting grooves 26.

[0033] In this embodiment, two limiting grooves 26 are respectively provided on the inner walls on the front and rear sides of the washing chamber 3. These limiting grooves serve as sliding tracks for the slider 27, limiting the range of movement of the filter 16. The design of the limiting grooves ensures the stability of the filter 16 during the lifting process. By limiting the movement trajectory of the sliders on both sides of the filter, the filter is prevented from deflecting or shaking during the lifting process, thereby ensuring the accuracy and safety of the salvage process. The slider 27 is slidably arranged in the limiting groove 26, realizing a stable connection and relative movement between the filter and the washing chamber. The design of the slider enables the filter to be lifted and lowered smoothly along the limiting groove, reducing friction and resistance during the lifting process. At the same time, the cooperation between the slider and the limiting groove also enhances the stability of the filter during the lifting process, preventing it from falling off or being damaged due to external forces.

[0034] In summary, compared with related technologies, the synergistic effect of the stirring shaft and the aeration tube group significantly enhances the cleaning effect, effectively removing impurities and stubborn stains on the surface of the porcini, while maintaining the softness and integrity of the porcini. The use of a circulation mechanism enables the reuse of cleaning water, reducing water consumption, saving water resources, and lowering wastewater treatment costs, thereby improving economic benefits. The introduction of automated equipment such as electric winches makes the salvage process more convenient and efficient, reducing the complexity and labor intensity of manual operations and improving overall work efficiency. The design of the limit slots and sliders ensures the stability of the filter screen during the lifting process, avoiding deviation or shaking, and ensuring the accuracy and safety of the salvage process. The entire system focuses on environmental protection and energy conservation. By recycling water resources and reducing wastewater discharge, it meets modern environmental protection requirements and is conducive to sustainable development.

[0035] In the several embodiments provided in this application, it should be understood that the disclosed device can be implemented in other ways.

[0036] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the scope of protection of the present invention. Obviously, the embodiments described are only some embodiments of the present invention, rather than all embodiments. Based on these embodiments, all other embodiments obtained by ordinary technicians in this field without making any creative work are within the scope to be protected by the present invention. Although the present invention has been described in detail with reference to the above embodiments, ordinary technicians in this field can still combine, add, delete or make other adjustments to the features in the various embodiments of the present invention according to the circumstances without conflict, without making any creative work, so as to obtain different other technical solutions that do not deviate from the concept of the present invention in essence, and these technical solutions also fall within the scope to be protected by the present invention.

Claims

1. A circulating boletus soaking and washing pool, characterized in that: include: soaking pools; a sieve plate, the sieve plate being fixedly installed in the soaking tank and dividing the soaking tank into a soaking and washing chamber and a mixing chamber; a stirring shaft, the stirring shaft being rotatably mounted in the mixing chamber; A rotating motor, wherein the rotating motor is fixedly mounted on the bottom of the soaking tank, and an output shaft of the rotating motor is fixedly connected to the stirring shaft; a cleaning mechanism, the cleaning mechanism being arranged on the soaking tank and being used for cleaning impurities on the porcini; A circulation mechanism is provided on the soaking tank and is used for reusing the water used for washing the porcini mushrooms.

2. The circulating porcini mushroom washing pool according to claim 1, characterized in that: The cleaning mechanism includes an aeration tube group, multiple exhaust ports and an air pump. The aeration tube group is fixedly installed in the mixing chamber. The multiple exhaust ports are all opened on the aeration tube group and are arranged corresponding to the soaking and washing chamber. The air pump is fixedly installed on the soaking tank, and the output end of the air pump is fixedly connected to the aeration tube group.

3. The circulating porcini mushroom washing pool according to claim 1, characterized in that: The circulation mechanism includes a circulation box, a first water pump, a suction pipe, a curved pipe, a second water pump and two connecting pipes. The circulation box is fixedly installed on the soaking pool, the first water pump is fixedly installed on the circulation box, the suction pipe is fixedly installed on the water inlet end of the first water pump and extends into the mixing chamber, the curved pipe is fixedly installed on the discharge end of the first water pump, and the other end of the curved pipe is arranged on the top of the circulation box, the second water pump is fixedly installed on the soaking pool, the two connecting pipes are respectively fixedly installed on the discharge end and the water inlet end of the second water pump, the water inlet of the connecting pipe connected to the water inlet end is arranged in the middle section of the circulation box, and the connecting pipe connected to the discharge end extends into the soaking chamber.

4. The circulating porcini mushroom washing pool according to claim 1, characterized in that: The soaking pool is provided with a salvage mechanism for salvaging the cleaned porcini mushrooms. The salvage mechanism includes a filter, multiple fixed covers, multiple magnet one, multiple magnet two and a winding mechanism. The filter is arranged in the soaking chamber and contacts the sieve plate. The multiple fixed covers are respectively fixedly mounted on both sides of the filter, the multiple magnet one are fixedly mounted in the fixed cover, the multiple magnet two are respectively fixedly mounted on the sieve plate, the multiple magnet two are respectively arranged corresponding to the multiple magnet one, and the winding mechanism is arranged on the soaking pool to drive the filter to rise.

5. The circulating porcini mushroom washing pool according to claim 4, characterized in that: The winding mechanism includes multiple threaded sleeves, multiple connecting seats, multiple traction ropes, two electric winches, two fixed blocks and two guide wheel frames. The multiple threaded sleeves are respectively fixedly mounted on the tops of the multiple fixed covers, the multiple connecting seats are respectively threaded on the multiple threaded sleeves, the multiple traction ropes are respectively fixedly mounted on the multiple connecting seats, the two electric winches are respectively fixedly mounted on both sides of the soaking tank, the two electric winches are respectively wound around the multiple traction ropes, the two fixed blocks are respectively fixedly mounted on both sides of the soaking tank, and are respectively arranged corresponding to the two electric winches, and the two guide wheel frames are respectively fixedly mounted on the two fixed blocks, and respectively conflict with the multiple traction ropes.

6. The circulating porcini mushroom washing pool according to claim 5, characterized in that: The electric winch includes two support blocks, a winding shaft and a drive motor. The two support blocks are fixedly mounted on the immersion tank. The winding shaft is rotatably mounted between the two support blocks and is wound around multiple traction ropes. The drive motor is fixedly mounted on any of the support blocks, and the output shaft of the drive motor is fixedly connected to the winding shaft.

7. The circulating porcini mushroom washing pool according to claim 4, characterized in that: Two limiting grooves are respectively provided on the front and rear inner walls of the washing chamber, and two sliding blocks are respectively fixedly installed on the other two sides of the filter screen, and the four sliding blocks are respectively slidably arranged in the four limiting grooves.