Radix rabdosiae cleaning and decontamination device

CN224794161UActive Publication Date: 2026-09-25ANHUI SHIMAO CHINESE MEDICINE CO LTD
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Patent Information

Application Number
CN202522092239.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-29
Publication Date
2026-09-25
Estimated Expiration
2035-09-29

AI Technical Summary

Technical Problem

[0004]针对上述问题,本实用新型目的是提供了一种冬凌草清洗去污装置,解决浸洗池内的冬凌草清洗不彻底的问题

Benefits of technology

1、本实用新型通过在输送管内壁底部设置引流槽及输出端配置分流道,实现清洗过程中泥沙杂质与水流的实时分离,有效避免传统浸洗池中顶部杂质掉落至底部草料造成的二次污染,显著提升冬凌草清洗均匀性及成品质量。

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Abstract

The utility model discloses a kind of winter wormwood cleaning decontamination devices, it is related to winter wormwood cleaning technical field, including the conveying pipe of output end corresponding to immersion washing pool, the drainage groove is evenly spaced and arranged in the inner wall bottom of conveying pipe, the output end side of conveying pipe is equipped with shunt, the drainage groove extends along shunt, conveying pipe is divided into material discharging section and liquid discharging section along shunt, the input end side wall of conveying pipe and the part corresponding to drainage groove are equipped with nozzle towards the inside of conveying pipe, by setting drainage groove in the inner wall bottom of conveying pipe and the shunt of output end configuration, the real-time separation of silt impurity and water flow in cleaning process is realized, effectively avoid the secondary pollution caused by the impurities falling to the bottom forage in the top of traditional immersion washing pool, significantly improve winter wormwood cleaning uniformity and finished product quality.
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Description

Technical Field

[0001] This utility model relates to the field of cleaning technology for *Rabdosia rubescens*, and in particular to a device for cleaning and removing dirt from *Rabdosia rubescens*. Background Technology

[0002] Fresh *Isodon japonicus* has a high water content and relatively delicate tissue, so it needs to be washed more gently and quickly to avoid excessive loss of active ingredients or tissue damage.

[0003] Most existing cleaning methods use immersion tanks. Users put the harvested *Rhizoma Barkara* directly into the tank, and the bubble nozzles in the immersion tank spray air outwards. The sprayed air washes the *Rhizoma Barkara*, cleaning it. However, in actual use, due to the characteristics of *Rhizoma Barkara* itself, it cannot be in contact with water for a long time, and it is not suitable for users to turn the *Rhizoma Barkara* over. The mud and impurities carried on the surface of the *Rhizoma Barkara* at the top of the immersion tank will fall down to the surface of the *Rhizoma Barkara* at the bottom. In a short period of time, the *Rhizoma Barkara* in the immersion tank may be cleaned unevenly, resulting in a decrease in the quality of the final cleaned product. Utility Model Content

[0004] To address the above problems, the purpose of this utility model is to provide a device for cleaning and removing dirt from *Rabdosia rubescens*, thereby solving the problem of incomplete cleaning of *Rabdosia rubescens* in the soaking tank.

[0005] The technical solution of this utility model is as follows: a conveying pipe with an output end corresponding to the immersion tank is included. The bottom of the inner wall of the conveying pipe is provided with evenly spaced diversion grooves. A diversion channel is provided on one side of the output end of the conveying pipe. The diversion grooves extend along the diversion channel. The conveying pipe is divided into a discharge section and a liquid discharge section along the diversion channel. The side wall of the input end of the conveying pipe and the part corresponding to the diversion groove are provided with nozzles facing the inside of the conveying pipe.

[0006] Furthermore, the conveying pipe is divided into an inclined section and a horizontal section. The bottom of the inclined section corresponds to the immersion tank, and the top is connected to the horizontal section. The top of the horizontal section has an opening, and a baffle is installed around the opening. The inclined section of the conveying pipe uses gravity to assist the grass to slide into the immersion tank, and the opening of the horizontal section facilitates feeding and the baffle prevents water from splashing.

[0007] Furthermore, the diversion channel is a vertical straight channel that smoothly transitions into the interior of the conveying pipe. There is a gap between the diversion channel and the output end of the conveying pipe. The bottom of the diversion channel is connected to the wastewater treatment device. The diversion channel allows the conveying pipe to have an outward straight discharge pipeline. This pipeline is directly connected to the wastewater treatment device, so that wastewater mixed with silt can be directly treated.

[0008] Furthermore, there are a total of five nozzles, one of which is located in the horizontal section of the conveying pipe and four in the inclined section of the conveying pipe. The nozzle located in the horizontal section of the conveying pipe is set on the side wall of the conveying pipe and its output direction is parallel to the diversion channel. The four nozzles located in the inclined section of the conveying pipe are evenly spaced on the upper side of the conveying pipe and are perpendicular to the diversion channel. The multiple nozzles located in the inclined section of the conveying pipe form a covering water flow matrix to accurately wash away the mud and sand on the surface of the grass. The nozzles located in the horizontal section can push the grass to move.

[0009] Furthermore, the nozzles in the inclined section of the conveying pipe are high-flow oscillating nozzles, and the nozzles in the horizontal section of the conveying pipe are high-flow direct-flow nozzles. The oscillating nozzles generate dynamic wide-range water flow to remove stubborn stains, while the direct-flow nozzles provide stable thrust to convey forage.

[0010] Furthermore, the gap between the junction of the diversion channel and the delivery pipe and the diversion groove is smoothly transitioned to prevent the stems and leaves of the forage from being caught and broken by the gap, and to reduce tissue friction caused by the tumbling of water flow.

[0011] Furthermore, the top two sides of the drainage channel are provided with rounded chamfers to prevent damage to the skin caused by mechanical scratches.

[0012] The beneficial effects of this utility model are as follows: 1. This utility model achieves real-time separation of mud and sand impurities from water flow during the washing process by setting a diversion groove at the bottom of the inner wall of the conveying pipe and configuring a diversion channel at the output end. This effectively avoids secondary pollution caused by top impurities falling to the bottom grass in traditional soaking tanks, and significantly improves the uniformity of wintergreen washing and the quality of finished products.

[0013] 2. This utility model uses a high-flow swing nozzle to vertically spray water in the inclined section of the conveying pipe, which gently removes mud and sand from the surface of the grass through dynamic flushing. At the same time, a high-flow DC nozzle in the horizontal section smoothly propels the material along the direction of the diversion channel. No manual turning is required throughout the process, which minimizes mechanical damage to the delicate tissues of the wintergreen grass and the loss of effective ingredients.

[0014] 3. This utility model features a smooth transition structure at the intersection of the diversion channel and the conveying pipe, and rounded chamfers on both sides of the top of the diversion channel to ensure that the winter grass is not stuck or scratched during the conveying process, further reducing the risk of tissue damage and ensuring the integrity of the grass after cleaning. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a cross-sectional schematic diagram of the conveying pipe structure of this utility model; Figure 3 This is a cross-sectional view of the overall structure of this utility model.

[0016] Reference numerals: 1. Delivery pipe; 2. Drainage channel; 3. Diversion channel; 4. Nozzle. Detailed Implementation

[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0018] like Figure 1-3 As shown, a device for cleaning and decontaminating wintergreen grass includes a conveying pipe 1 with its output end corresponding to the soaking tank. The conveying pipe 1 is divided into an inclined section and a horizontal section. The bottom of the inclined section corresponds to the soaking tank, and the top is connected to the horizontal section. The top of the horizontal section has an opening, and a baffle is arranged around the opening. The inclined section of the conveying pipe 1 uses gravity to assist the grass to slide into the soaking tank, and the opening of the horizontal section facilitates feeding and the baffle prevents water from splashing. The bottom of the inner wall of the conveying pipe 1 is evenly spaced with diversion channels 2. The top two sides of the diversion channels 2 are rounded to prevent mechanical scratches that could damage the surface. The output end of the conveying pipe 1 is provided with a diversion channel 3. The diversion channel 3 is a vertical straight channel that smoothly transitions into the interior of the conveying pipe 1. There is a gap between the diversion channel 3 and the output end of the conveying pipe 1. The bottom of the diversion channel 3 is connected to the wastewater treatment device. The diversion channel 3 allows the conveying pipe 1 to have a straight outward discharge pipe. This pipe is directly connected to the wastewater treatment device, so that wastewater mixed with mud and sand can be directly treated. The gap between the diversion channel 3 and the conveying pipe 1 and the diversion channel 2 is smoothly transitioned to prevent the stems and leaves of the forage from being caught and broken by the gap, and to reduce tissue friction caused by water turbulence. The diversion channel 2 extends along the diversion channel 3, and the conveying pipe 1 is divided into a discharge section and a liquid discharge section along the diversion channel 3. The input end sidewall of the conveying pipe 1 and the corresponding part of the diversion channel 2 are provided with nozzles 4 facing the inside of the conveying pipe 1. There are five nozzles 4 in total. One is set in the horizontal section of the conveying pipe 1, and four are set in the inclined section of the conveying pipe 1. The nozzle 4 located in the horizontal section of the conveying pipe 1 is set on the sidewall of the conveying pipe 1 and its output direction is parallel to the diversion channel 2. The four nozzles 4 located in the inclined section of the conveying pipe 1 are evenly spaced on the upper side of the conveying pipe 1 and are perpendicular to the diversion channel 2. The multiple nozzles 4 located in the inclined section of the conveying pipe 1 form a covering water flow matrix to accurately wash the mud and sand on the surface of the grass. The nozzles 4 located in the horizontal section can push the grass to move. The nozzles 4 in the inclined section of the conveying pipe 1 are high-flow swing nozzles, and the nozzles 4 in the horizontal section of the conveying pipe 1 are high-flow direct flow nozzles. The swing nozzles 4 generate dynamic wide-width water flow to peel off stubborn stains, and the direct flow nozzles 4 provide stable thrust to convey the grass.

[0019] Working principle of this utility model: After starting the equipment, the operator turns on the main power and checks the unobstructed flow channel 3. Then, the water pressure of the inclined section swing nozzle 4 is adjusted to a suitable value. The nozzle 4 sprays dynamic water flow at a set angle. Next, fresh wintergreen grass is put into the horizontal section through the top opening. After the grass enters the horizontal section of the conveying pipe 1, the direct-flow nozzle 4 is turned on to spray parallel water along the direction of the diversion channel 2 at a suitable pressure, forming a stable thrust to move the grass at a uniform speed. At the same time, the water flow continuously washes away dirt in the gaps. Under the action of gravity, the grass slides along the inclined conveying pipe 1 into the soaking tank. During this process, the swing nozzle 4 vertically washes the peeling surface. The sludge and sand are stripped and settled to the bottom of the diversion trough 2 with the water flow. Guided by the inclined structure of the trough, the mixture with the wastewater flows into the diversion channel 3 for direct discharge. The rounded chamfer at the top of the diversion trough 2 and the smooth transition structure at the connection with the diversion channel 3 ensure that the forage is not scraped or stuck. The sludge and wastewater are discharged into the wastewater treatment device through the vertical diversion channel 3. After the treatment is completed, the main power is turned off and the power is cut off after the equipment is emptied. At this time, there is no residue accumulation on the rounded chamfer and transition structure of the diversion trough 2, and it can be directly rinsed and cleaned. The whole process realizes the coordinated operation of gentle forage transportation, directional collection of sludge and sand and efficient direct discharge of wastewater.

[0020] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A device for cleaning and removing dirt from *Isodon japonicus*, comprising a conveying pipe (1) with its output end corresponding to the immersion tank, characterized in that: The bottom of the inner wall of the conveying pipe (1) is provided with evenly spaced diversion grooves (2), and a diversion channel (3) is provided on one side of the output end of the conveying pipe (1). The diversion grooves (2) extend along the diversion channel (3). The conveying pipe (1) is divided into a discharge section and a liquid discharge section along the diversion channel (3). The side wall of the input end of the conveying pipe (1) and the part corresponding to the diversion groove (2) are provided with nozzles (4) facing the inside of the conveying pipe (1).

2. The device for cleaning and removing dirt from *Isodon japonicus* according to claim 1, characterized in that: The conveying pipe (1) is divided into an inclined section and a horizontal section. The bottom of the inclined section corresponds to the immersion pool, and the top is connected to the horizontal section. The top of the horizontal section has an opening, and a baffle is provided around the opening.

3. The device for cleaning and removing dirt from *Isodon japonicus* according to claim 1, characterized in that: The diversion channel (3) is a vertical straight channel that smoothly transitions into the inside of the conveying pipe (1). There is a gap between the diversion channel (3) and the output end of the conveying pipe (1). The bottom of the diversion channel (3) is connected to the wastewater treatment device.

4. The device for cleaning and removing dirt from *Isodon japonicus* according to claim 2, characterized in that: There are five nozzles (4), one of which is set in the horizontal section of the conveying pipe (1) and four of which are set in the inclined section of the conveying pipe (1). The nozzle (4) located in the horizontal section of the conveying pipe (1) is set on the side wall of the conveying pipe (1) and its output direction is parallel to the diversion groove (2). The four nozzles (4) located in the inclined section of the conveying pipe (1) are evenly spaced on the upper side of the conveying pipe (1) and vertically facing the diversion groove (2).

5. The device for cleaning and removing dirt from *Isodon japonicus* according to claim 4, characterized in that: The nozzle (4) of the inclined section of the conveying pipe (1) is a high-flow swing nozzle, and the nozzle (4) of the horizontal section of the conveying pipe (1) is a high-flow direct nozzle.

6. The device for cleaning and removing dirt from *Isodon japonicus* according to claim 1, characterized in that: The gap between the junction of the diversion channel (3) and the delivery pipe (1) and the diversion groove (2) is smoothly transitioned.

7. The device for cleaning and removing dirt from *Isodon japonicus* according to claim 1, characterized in that: The top two sides of the drainage channel (2) are provided with rounded chamfers.