A system for pickling phyla nodosa
By designing a physalis pickling system, the system utilizes a rotating drum and a pushing component to automate the cleaning and sorting of physalis, solving the problem of low efficiency in manual sorting, improving sorting accuracy and efficiency, reducing labor costs, and saving water resources.
Patent Information
- Application Number
- CN202522085258.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-28
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-09-28
AI Technical Summary
In the existing technology, the sorting and cleaning process of Stachys edulis relies on manual operation, which is inefficient, prone to missed detection and false detection, and has high labor costs.
Design a stachys gracilis pickling system, including a water storage tank, a cleaning mechanism and a processing mechanism. The system uses a rotating drum, a pushing component and a driving component to achieve automated cleaning and sorting of stachys gracilis. The rotating action causes hollow and damaged stachys gracilis to float and separate, while the sinking stachys gracilis is discharged through the outlet for further processing.
It achieves efficient cleaning and sorting of phycocyanin, reduces manual operation, improves sorting accuracy and efficiency, reduces labor costs, and solves the problem of water waste through the recycling component.
Smart Images

Figure CN224670796U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of food pickling technology, and in particular relates to a pickling system for Artemisia annua. Background Technology
[0002] *Cynanchum paniculatum* (also known as ground ring, sweet dew, or cordyceps) is a common edible plant, especially popular in parts of Asia. It not only has a unique flavor but also possesses certain nutritional value. Pickling is a traditional food preservation method that extends the shelf life of *Cynanchum paniculatum* and imparts a unique flavor. Before pickling, sorting and cleaning are crucial steps. In existing technologies, hollow and damaged *Cynanchum paniculatum* are typically first manually selected, a process that is time-consuming, labor-intensive, and inefficient. Subsequently, the selected intact *Cynanchum paniculatum* are cleaned using cleaning equipment. For example, Chinese utility model patent CN212605348U, "A Cleaning Device for Deep Processing of Cordyceps sinensis," details a cleaning device for deep processing of cordyceps sinensis, including a cleaning tank, a transducer, and a receiving frame. The bottom plate of the cleaning tank is inclined, and the transducer is installed at the bottom of the bottom plate, near the slope. A drain valve is installed at the bottom outlet of the cleaning tank. A discharge port is located on one side of the sloping top of the base plate, and a receiving hopper is fixedly installed below the discharge port. An opening is located on one side of the receiving hopper, below the sloping top of the base plate. A receiving frame, a wire mesh frame with a handle on the outside, is detachably installed inside the receiving hopper through this opening. The advantages are: using ultrasonic waves to clean the cordyceps sinensis improves cleaning efficiency and reduces manual labor; and the cleaned cordyceps sinensis is automatically pushed into the receiving frame, saving cleaning time and improving processing efficiency.
[0003] However, the aforementioned existing technology has significant limitations. It can only clean *Cymbidium goeringii*, and before cleaning, a large amount of manual labor is still required to pick out hollow and damaged *Cymbidium goeringii*. In large-scale production, manual sorting is not only inefficient but also prone to missed or incorrect detections. Furthermore, manual sorting requires substantial labor costs, and prolonged repetitive labor can easily lead to worker fatigue, further reducing the accuracy and efficiency of sorting. Summary of the Invention
[0004] Based on this, in order to solve the above-mentioned technical problems, this application provides a *Symplocos edulis* pickling system, including: a water storage tank, a cleaning mechanism, and a processing mechanism. A support frame is provided at the bottom of the water storage tank for storing clean water used to clean the *Symplocos edulis*. The cleaning mechanism includes a rotating material cylinder, a pushing component, a circulation component, and a driving component. The rotating material cylinder is rotatably disposed within the water storage tank, and one end of the rotating material cylinder is provided with a material collection outlet, which extends out of the side wall of the water storage tank. The pushing component is disposed on the rotating material cylinder away from the material collection outlet. One end of the outlet is used to move water toward the aggregate outlet; the inlet of the circulation component is connected to the aggregate outlet, and the outlet of the circulation component is connected to the inlet of the pushing component, for circulating the water flowing out of the aggregate outlet into the water storage tank; the drive component is disposed on one side of the water storage tank and is drivenly connected to the rotating material cylinder, for driving the rotating material cylinder to rotate; the feeding end of the processing mechanism cooperates with the feeding port of the water storage tank to complete subsequent processing, and the feeding end of the processing mechanism is provided with a pickling tank.
[0005] Preferably, the pushing assembly includes a vertical rod and a horizontal rod. The vertical rod extends from the center of the rotating cylinder away from the material outlet and is connected to the horizontal rod, and a water conveying channel is formed inside it. A plurality of nozzles are provided on the horizontal rod, and the water inlet of the nozzles is connected to the water conveying channel.
[0006] Preferably, the nozzles at both ends of the crossbar are inclined and their extended spray directions intersect.
[0007] Preferably, the circulation component includes a collection box, a pump body, and a circulation pipe. The collection box is located outside the water storage tank and below the aggregate outlet. The pump body is located inside the collection box and connected to the circulation pipe. The other end of the circulation pipe is connected to the end of the vertical rod away from the horizontal rod.
[0008] Preferably, a net bag is detachably provided at one end of the collection box near the aggregate outlet, the net bag being used to collect substandard stachys.
[0009] Preferably, the collection box is equipped with a filter plate, which is used to filter the mud and sand in the water flowing out of the aggregate outlet.
[0010] Preferably, a bushing is fitted onto the rotating material cylinder, and a bracket is provided at one end of the bushing. The end of the bracket away from the rotating material cylinder is connected to the bottom of the water storage tank, and the rotating material cylinder can rotate within the bushing.
[0011] Preferably, the driving assembly includes a driving member and a driving gear. The driving member is disposed on the outside of the water storage tank, and its shaft extension extends into the water storage tank and is connected to the driving gear. A geared disc is disposed at one end of the rotating material cylinder near the driving member, and the geared disc meshes with the driving gear.
[0012] The technical solution adopted in this application can achieve the following beneficial effects: This application utilizes a drive component to rotate a cylindrical feeder within a water storage tank. This achieves efficient cleaning of the stachys worms and effectively disperses them, causing hollow and damaged stachys worms to float on the surface. A pusher component then discharges the floating hollow and damaged stachys worms from the feed outlet. The intact stachys worms that sink to the bottom are discharged through the first and second discharge outlets to the processing mechanism for further processing. This allows cleaning and sorting to be completed within the same equipment, improving efficiency, reducing potential omissions and false positives from manual sorting, effectively lowering labor costs, and enhancing sorting accuracy and efficiency.
[0013] Meanwhile, the discharged water is circulated through the circulation component and then through the pushing component to solve the problem of water waste. The water is also circulated and replenished to make the water flow in a preset direction, thereby moving the phycocyanin, making cleaning and discharge more convenient. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the overall system for pickling Artemisia annua in this application. Figure 1 .
[0015] Figure 2 This is a front view of the stachys gracilis pickling system of this application.
[0016] Figure 3 This is a schematic diagram of the overall system for pickling Artemisia annua in this application. Figure 2 .
[0017] Figure 4 This is a partial schematic diagram of the stachys gracilis pickling system of this application. Figure 1 .
[0018] Figure 5 For this application Figure 4 A cross-sectional view of AA.
[0019] Figure 6 This is a partial schematic diagram of the stachys gracilis pickling system of this application. Figure 2 .
[0020] Figure 7 This is a partial schematic diagram of the stachys gracilis pickling system of this application. Figure 3 .
[0021] Figure 8This is a top view of the stachys gracilis pickling system of this application.
[0022] Figure 9 For this application Figure 8 A cross-sectional view of BB.
[0023] Figure 10 This is a partial schematic diagram of the stachys gracilis pickling system of this application. Figure 4 .
[0024] Figure 11 This is a partial schematic diagram of the stachys gracilis pickling system of this application. Figure 5 .
[0025] In the figure: water storage tank 100, second discharge port 110, second valve 111, cleaning mechanism 200, rotating material cylinder 210, material collection outlet 211, first discharge port 212, bushing 213, bracket 214, gear plate 215, cleaning plate 216, sealing plate 217, pushing assembly 220, vertical rod 221, horizontal rod 222, nozzle 223, circulation assembly 230, collection box 231, net bag 232, filter plate 233, pump body 234, circulation pipe 235, drive assembly 240, drive component 241, drive gear 242, processing mechanism 300. Detailed Implementation
[0026] To facilitate understanding of this application, a more complete description will be provided below with reference to the accompanying drawings. Preferred embodiments of this application are shown in the drawings. However, this application can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of this application.
[0027] It should be noted that when an element is referred to as being "set on" another element, it can be directly on the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," "top," "bottom," "end," "top," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.
[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein in the specification of this application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0029] Please see Figures 1 to 6This application provides a system for pickling *Symplocos edulis*, comprising a water storage tank 100, a cleaning mechanism 200, and a processing mechanism 300. The water storage tank 100 has a support frame at its bottom for storing clean water for cleaning the *Symplocos edulis*. The cleaning mechanism 200 includes a rotating cylinder 210, a pushing component 220, a circulation component 230, and a drive component 240. The rotating cylinder 210 is rotatably disposed within the water storage tank 100, and one end of the rotating cylinder 210 has a material collection outlet 211 extending beyond the side wall of the water storage tank 100. The pushing component 220 is disposed on the rotating cylinder 210 away from the material collection outlet 211. The water inlet of the circulation component 230 is connected to the aggregate outlet 211, and the water outlet of the circulation component 230 is connected to the inlet of the pushing component 220, for circulating the water flowing out of the aggregate outlet 211 into the water storage tank 100; the driving component 240 is disposed on one side of the water storage tank 100 and is connected to the rotating material cylinder 210 for driving the rotating material cylinder 210 to rotate; the feeding end of the processing mechanism 300 is engaged with the feeding port of the water storage tank 100 for completing subsequent processing, and the feeding end of the processing mechanism 300 is provided with a pickling tank.
[0030] Specifically, the water storage tank 100 is a semi-enclosed container with an open top for holding cleaning water. The bottom of the water storage tank 100 is equipped with a support frame to ensure its stability and safety. Depending on specific needs, lifting mechanisms, such as jacks or telescopic rods, can be installed on both sides of the support frame to tilt the water storage tank 100. The rotating cylinder 210 is installed inside the water storage tank 100 via bearings or similar support structures and rotates manually or mechanically.
[0031] To more effectively clean the stachys gracilis, a cleaning plate 216 is installed on the inner wall of the rotating drum 210. The cleaning plate 216 is vertically connected to the inner wall of the rotating drum 210, and its length direction is parallel to the axis of the rotating drum 210. When the rotating drum 210 rotates, the cleaning plate 216 also rotates. During this process, the stachys gracilis are brought onto the rotating cleaning plate 216 and move with it. At this time, under the action of gravity, the stachys gracilis slide off the cleaning plate 216 and fall back to the bottom of the rotating drum 210. This process is repeated continuously as the rotating drum 210 continues to rotate, causing the stachys gracilis to continuously tumble and disperse inside the rotating drum 210. Through this repeated lifting and falling, the stachys gracilis are more evenly distributed throughout the cleaning process, and through continuous rolling and mutual friction, a more thorough cleaning effect can be achieved, thus ensuring that each stachys gracilis is fully cleaned. The rotating feed cylinder 210 is equipped with a dedicated feeding port. The position and size of the feeding port are carefully designed to allow operators or automated devices to feed unwashed phycocyanin into the rotating feed cylinder 210, ensuring that the phycocyanin enters smoothly without causing blockage. The feeding port is also equipped with a sealing cover to prevent the phycocyanin from flowing out of the feeding port during the rotation of the rotating feed cylinder 210.
[0032] The material collection outlet 211 is funnel-shaped, with its large opening connected to the rotating material cylinder 210 and its small opening extending out of the side wall of the water storage tank 100. A sealing plate 217 is installed at the end of the material collection outlet 211 (the small opening end). When the rotating material cylinder 210 rotates, the sealing plate 217 covers the end of the material collection outlet 211. When the rotation stops, the sealing plate 217 can be manually opened. The central axis of the material collection outlet 211 coincides with the central axis of the rotating material cylinder 210 (the central axis is the horizontal center line). Through the collection from the large opening to the small opening, unqualified stachys worms flow out from the small opening of the material collection outlet 211 with the flow of water, thereby discharging the unqualified stachys worms in the rotating material cylinder 210.
[0033] One end of the rotating feed cylinder 210 is equipped with a material outlet 211, primarily for discharging hollow or deteriorated stachys worms. These stachys worms, due to changes in their internal structure, have a lower density, causing them to float on the water surface during the washing process. The main reason is that hollow stachys worms have some space occupied by air, which reduces their overall density. Since this density is less than that of water, hollow stachys worms experience greater buoyancy and float. Deteriorated stachys worms become soft due to tissue decomposition, and their internal structure changes. During deterioration, stachys worms may produce gases (such as those released during fermentation or putrefaction), which accumulate inside, further reducing their density. Due to this lower density, deteriorated stachys worms also float in the water. When stachys worms are fed into the rotating feed cylinder 210, they continuously tumble in the water as the cylinder rotates. During this process, the water flow disperses the stachys worms within the rotating feed cylinder 210, preventing them from piling up. Due to the continuous collisions between the stachys worms, hollow and deteriorated stachys worms are more easily exposed. As the water flow within the rotating feed cylinder 210 continues to impact the stachys worms, those with lower density gradually float to the surface.
[0034] A first discharge port 212 is provided on the circumference of the rotating feed cylinder 210, and a first valve is equipped with it. By controlling the state of the first valve, the cleaned and confirmed good quality *Spiritobacteria spp.* are discharged to the next processing stage. A second discharge port 110 (that is, the discharge port of the water storage tank 100 mentioned above) is provided at the bottom of the water storage tank 100, which further transports the *Spiritobacteria spp.* discharged from the first discharge port 212 to the processing mechanism 300. The second discharge port 110 is equipped with a second valve 111 for controlling the discharge of *Spiritobacteria spp.* When the first discharge port 212 is located at the bottom (when the first discharge port 212 is closest to the water storage tank 100), the vertical projection of the first discharge port 212 is located within the second discharge port 110; that is, the cross-sectional dimension of the second discharge port 110 is larger than that of the first discharge port 212, ensuring that all the stachys worms discharged from the first discharge port 212 can smoothly enter the second discharge port 110, avoiding the stachys worms from getting stuck or accumulating during discharge and falling into the water storage tank 100. The first valve is used to control the opening and closing of the first discharge port 212. When the stachys worms discharged from the first discharge port 212 reach the second discharge port 110, the second valve 111 opens, allowing the stachys worms to smoothly enter the processing mechanism 300. The first discharge port 212 and the feeding port are both equipped with corresponding covers, which are not shown in the figure to indicate the position of the first discharge port 212 and the feeding port.
[0035] The drive assembly 240 employs, but is not limited to, a motor, transmission rod, etc., or the rotating drum 210 can be manually rotated. The circulation assembly 230 uses a water collection and transportation device to collect water discharged from the aggregate outlet 211, then channel it into the pushing assembly 220, and finally return it to the rotating drum 210, ensuring water flow while maintaining the water level within a controllable range (not lower than the lower edge of the small opening of the aggregate outlet 211). The pushing assembly 220 uses methods such as pipe spraying, pipe air jetting, and physical propulsion to drive the water to fluctuate towards one end of the aggregate outlet 211, thereby causing the caddisflies on the water surface to move in an orderly manner towards the aggregate outlet 211.
[0036] The processing unit 300 is responsible for receiving qualified *Cynanchum paniculatum* discharged from the cleaning unit 200 and further processing it. The conveying end of the processing unit 300 is connected to the second discharge port 110 of the water storage tank 100, ensuring that qualified *Cynanchum paniculatum* can directly enter the processing unit 300 for subsequent processing. The discharge end of the processing unit 300 is equipped with a pickling tank for receiving and pickling the processed *Cynanchum paniculatum*. The conveying end of the processing unit 300 uses a conveyor belt with a filtering function, and a circulation component 230 is located below it to collect the outflowing water and circulate it back into the water storage tank 100.
[0037] Further, initially, water is injected into the water storage tank 100 until its water level is flush with the central axis of the rotating drum 210. Next, the stachys to be cleaned is fed into the feeding port on the rotating drum 210, and the sealing cap is tightened. The rotating drum 210 is then rotated by the drive unit. After a period of cleaning, the drive unit is stopped, allowing the rotating drum 210 to come to a stop. Once the rotating drum 210 is stationary, the push assembly 220 is pushed or activated to spray gas, liquid, or move horizontally towards the aggregate outlet 211, pushing the hollow and damaged stachys floating on the water surface into the aggregate outlet 211. Simultaneously, the sealing plate 217 at the end of the aggregate outlet 211 is opened, allowing these hollow and damaged stachys to be discharged along the aggregate outlet 211 out of the rotating drum 210 and the water storage tank 100, entering the circulation assembly 230. Water flows from the circulation assembly 230 into the push assembly 220 and then back into the water storage tank 100. After all the substandard *Spatholobus suberectus* (silkworms) are discharged, the sealing plate 217 is closed, and the first and second valves 111 are opened simultaneously. This allows the qualified *Spatholobus suberectus* to be discharged from the first outlet 212 under the influence of water, and then fall into the processing mechanism 300 through the second outlet 110. To accelerate the discharge rate, the support frame can be adjusted from a horizontal to an inclined state. After processing by the processing mechanism 300, the *Spatholobus suberectus* are transported to the pickling tank for pickling.
[0038] When the water flow rate provided by the circulation component 230 is insufficient, water can be replenished from the outside to keep the water level within a controllable range.
[0039] The above-mentioned technical solution adopted in the physalis pickling system provided in this application can achieve the following beneficial effects: This application uses a drive assembly 240 to rotate a rotating cylinder 210 within a water storage tank 100. This achieves efficient cleaning of the stachys worms and, more importantly, the rotation effectively disperses the stachys worms, causing hollow and damaged ones to float on the surface. The push assembly 220 then discharges the floating hollow and damaged stachys worms from the collection outlet 211. The intact stachys worms that sink to the bottom are discharged through the first outlet 212 and the second outlet 110 to the processing mechanism 300 for further processing. In this way, cleaning and sorting can be completed in the same equipment, improving efficiency, reducing potential omissions and false positives from manual sorting, effectively lowering labor costs, and improving sorting accuracy and efficiency.
[0040] Meanwhile, the discharged water is circulated through the circulation component 230 and then through the push component 220 to solve the problem of water waste. The water is also circulated and replenished to make it flow in a preset direction, thereby moving the phycocyanin and making cleaning and discharge more convenient.
[0041] In the above scheme, the pushing component 220 includes a vertical rod 221 and a horizontal rod 222. The vertical rod 221 extends from the center of the end of the rotating material cylinder 210 away from the material outlet 211 and is connected to the horizontal rod 222, forming a water conveying channel inside. The horizontal rod 222 is provided with a plurality of nozzles 223, and the water inlet of the nozzle 223 is connected to the water conveying channel. The nozzles 223 at both ends of the horizontal rod 222 are inclined, and the extension lines of their spraying directions intersect.
[0042] Specifically, both the vertical rod 221 and the horizontal rod 222 are made of hollow tubing. The circulation assembly 230 and the vertical rod 221 are connected together by a hose or other tubing. The horizontal rod 222 is connected to the vertical rod 221 to form a water delivery channel. An even number of nozzles 223 are provided, and each nozzle 223 is connected to the water delivery channel. A valve is installed on the vertical rod 221, which is opened manually to connect the channels. By spraying water, the water moves towards one end of the aggregate outlet 211, thereby moving the unqualified stachys on the water surface to the aggregate outlet 211. In order to make the stachys gather more quickly, the nozzles 223 at both ends are tilted so that they push the stachys on both sides to move slowly towards the middle, and are pushed by the nozzle 223 in the middle of the horizontal rod so that they move faster.
[0043] In one embodiment of this application, the circulation component includes a collection box 231, a pump body 234, and a circulation pipe 235. The collection box 231 is disposed outside the water storage tank 100 and below the aggregate outlet 211. The pump body 234 is located inside the collection box 231 and is connected to the circulation pipe 235. The other end of the circulation pipe 235 is connected to the end of the vertical rod 221 away from the horizontal rod 222.
[0044] At least one collection box 231 is provided, one located below the aggregate outlet 211 and the other located below the conveying end of the processing mechanism 300 (that is, below the first discharge port 212 and the second discharge port 110); the pump body 234 is provided according to the number of collection boxes 231, and the circulation pipe 235 is a flexible hose or a water pipe. The water in the collection box 231 is transported to the pushing component 220 by the pump body 234, thereby reducing the waste of water resources and keeping the water level within a controllable range, so that it can continuously drive the phycocrassifolia to flow out from the aggregate outlet 211 and the first discharge port 212.
[0045] Furthermore, a net bag 232 is detachably provided at one end of the collection box 231 near the material outlet 211, and the net bag 232 is used to collect unqualified stachys gracilis.
[0046] Net bags 232 are installed on both collection boxes 231 (one located below the material collection outlet 211, and the other located below the conveying end of the processing mechanism 300). When unqualified grass-stone silkworms are carried out of the material collection outlet 211 by the water flow, the unqualified grass-stone silkworms fall onto the net bag 232, and the water enters the collection box 231. The operator can remove the net bag 232 containing the unqualified grass-stone silkworms for processing by replacing it. The operation is simple and convenient. Similarly, the net bag 232 located below the conveying end of the processing mechanism 300 is used to collect qualified grass-stone silkworms that fall from the conveying end. The operator can manually put the qualified grass-stone silkworms inside back onto the conveying end. The operation is simple and convenient.
[0047] Furthermore, a filter plate 233 is installed inside the collection box 231. The filter plate 233 is used to filter the sediment in the water flowing out of the aggregate outlet 211. The filter plate 233 is made of activated carbon, sponge, cotton, etc., and is vertically installed in the collection box 231, dividing it into two chambers (the left chamber houses the pump body 234, and the right chamber receives the flowing water). When water enters the right chamber, the sediment is blocked by the filter plate 233, and the filtered water flows into the left chamber and is circulated by the pump body 234 to the water storage tank 100. This solves the problem of sediment clogging the pump body 234, which reduces the lifespan of the pump body 234, and at the same time makes the water in the water storage tank 100 cleaner.
[0048] In another embodiment of this application, a bushing 213 is fitted on the rotating material cylinder 210, and a bracket 214 is provided at one end of the bushing 213. The end of the bracket 214 away from the rotating material cylinder 210 is connected to the bottom of the water storage tank 100, and the rotating material cylinder 210 can rotate within the bushing 213.
[0049] The bushing 213 has a bearing-like structure. The rotating material cylinder 210 is connected inside the bushing 213, and the support 214 is connected outside the bushing 213. The support 214 is used to raise the height of the rotating material cylinder 210 so that it does not rub against the bottom of the water storage tank 100 when it rotates. The rotating material cylinder 210 can be rotated more conveniently by manual rotation or by driving device.
[0050] Furthermore, the drive assembly 240 includes a drive member 241 and a drive gear 242. The drive member 241 is disposed on the outside of the water storage tank 100, and its shaft extension end extends into the water storage tank 100 and is connected to the drive gear 242. A gear disk 215 is disposed at one end of the rotating material cylinder 210 near the drive member 241, and the gear disk 215 meshes with the drive gear 242.
[0051] The operator controls the drive component 241 (motor, engine, etc.) to drive the drive gear 242 to rotate (the drive gear 242 is connected to the water tank 100 by a sealed bearing or other sealing method). The gear disc 215 that meshes with the drive gear 242 is driven, thereby realizing the rotation of the rotating cylinder 210, which is simple and convenient.
[0052] Obviously, the embodiments described above are only some embodiments of this application, not all embodiments. The accompanying drawings show preferred embodiments of this application, but do not limit the patent scope of this application. This application can be implemented in many different forms; rather, the purpose of providing these embodiments is to provide a more thorough and comprehensive understanding of the disclosure of this application. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing specific embodiments, or make equivalent substitutions for some of the technical features. Any equivalent structures made using the content of this application's specification and drawings, directly or indirectly applied to other related technical fields, are similarly within the scope of patent protection of this application.
[0053] The above embodiments merely illustrate several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.
Claims
1. A system for pickling Artemisia annua, characterized in that, include: A water storage tank, with a support frame at the bottom, is used to store clean water for cleaning phytohey. A cleaning mechanism includes a rotating drum, a pushing component, a circulation component, and a drive component. The rotating drum is rotatably disposed within a water storage tank, and one end of the rotating drum has a material collection outlet that extends beyond the side wall of the water storage tank. The pushing component is disposed at the end of the rotating drum away from the material collection outlet and is used to move water towards the material collection outlet. The inlet of the circulation component is connected to the material collection outlet, and the outlet of the circulation component is connected to the inlet of the pushing component, for circulating the water flowing from the material collection outlet back into the water storage tank. The drive component is disposed on one side of the water storage tank and is drively connected to the rotating drum, for driving the rotating drum to rotate. The processing mechanism has a feeding end that cooperates with the discharge port of the water storage tank to complete subsequent processing. The discharge end of the processing mechanism is equipped with a pickling tank.
2. The *Scleroderma purpureus* pickling system as described in claim 1, characterized in that, The pushing assembly includes a vertical rod and a horizontal rod. The vertical rod extends from the center of the rotating cylinder away from the material outlet and is connected to the horizontal rod. A water conveying channel is formed inside the vertical rod. Several nozzles are provided on the horizontal rod, and the water inlet of each nozzle is connected to the water conveying channel.
3. The *Scleroderma purpureus* pickling system as described in claim 2, characterized in that, The nozzles at both ends of the crossbar are inclined and their extended spray directions intersect.
4. The *Scleroderma purpureus* pickling system as described in claim 2, characterized in that, The circulation assembly includes a collection tank, a pump body, and a circulation pipe. The collection tank is located outside the water storage tank and below the aggregate outlet. The pump body is located inside the collection tank and connected to the circulation pipe. The other end of the circulation pipe is connected to the end of the vertical rod away from the horizontal rod.
5. The *Scleroderma purpureus* pickling system as described in claim 4, characterized in that, The collection box is detachably equipped with a net bag at one end near the aggregate outlet, and the net bag is used to collect unqualified caddisfly.
6. The *Scleroderma purpureus* pickling system as described in claim 4, characterized in that, The collection box is equipped with a filter plate, which is used to filter out the mud and sand in the water flowing out of the aggregate outlet.
7. The *Scleroderma purpureus* pickling system as described in claim 1, characterized in that, A bushing is fitted onto the rotating material cylinder, and a bracket is provided at one end of the bushing. The end of the bracket away from the rotating material cylinder is connected to the bottom of the water storage tank. The rotating material cylinder can rotate within the bushing.
8. The physalis pickling system as described in claim 7, characterized in that, The drive assembly includes a drive component and a drive gear. The drive component is located on the outside of the water storage tank, and its shaft extension extends into the water storage tank and is connected to the drive gear. A gear plate is provided at one end of the rotating material cylinder near the drive component, and the gear plate meshes with the drive gear.
Citation Information
Patent Citations
Flower field transportation trolley
CN212605348U