Quick cleaning equipment for sipunculus nudus
By designing the precipitation mechanism and cleaning mechanism of the lattice starworm rapid cleaning equipment, the problems of manual cleaning consume time and labor intensity are solved, automatic cleaning is realized, and efficiency and productivity are improved.
Patent Information
- Application Number
- CN202421627800.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-10
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2034-07-10
AI Technical Summary
In the prior art, the cleaning of square starworms mainly relies on manual manual, which takes a long time and has a high labor intensity, which limits the production scale and speed, making it difficult to meet processing needs.
A fast cleaning equipment for lattice worms is designed, including a sedimentation mechanism and a cleaning mechanism. The precipitation mechanism realizes preliminary precipitation and impurity removal of lattice worms through the precipitation tank and the first filter screen, and the cleaning mechanism realizes automatic cleaning through the vibration motor, the spray pipe and the filter screen.
Automatic cleaning of lattice worms has been realized, which significantly improves cleaning efficiency, reduces manpower demand, avoids possible omissions caused by manual cleaning, improves the uniformity and thoroughness of cleaning, and helps improve overall productivity.
Smart Images

Figure CN222885726U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of processing of Sipunculus nudus, in particular to a rapid cleaning device for Sipunculus nudus. Background Art
[0002] Sipunculus nudus is also often called Gymnarchus nudus, sandworm or sand intestine. It is an invertebrate living in the sandy mud bottom of coastal tidal flats. At the same time, it is also a kind of food with high protein and low fat, rich in amino acids, and is regarded as a nourishing food, similar to high-grade seafood such as sea cucumbers and shark fins.
[0003] Sipunculus nudus lives in sandy mud, and its body surface and digestive tract may carry sand, soil and other impurities. Therefore, it needs to be thoroughly cleaned before being processed for consumption to remove these impurities, ensure food safety and improve taste. At present, the cleaning of Sipunculus nudus is mostly carried out manually, but manual cleaning takes a long time and has a large labor intensity. Especially when dealing with a large number of Sipunculus nudus, it limits the production scale and speed and is difficult to meet the processing requirements. Content of the Utility Model
[0004] The purpose of the utility model is to provide a rapid cleaning device for Sipunculus nudus, which has the advantage of being able to automatically clean Sipunculus nudus, and solves the problem that the current Sipunculus nudus needs to be manually cleaned with low processing efficiency.
[0005] To achieve the above purpose, the utility model provides the following technical solution: a rapid cleaning device for Sipunculus nudus, including a support frame, on the surface of which a precipitation mechanism and a cleaning mechanism are arranged;
[0006] The precipitation mechanism includes a sedimentation tank, on the surface of which a conveying port is arranged, the inner wall of the sedimentation tank is slidably connected with a first filter screen, a push plate is arranged above the first filter screen, a pushing air cylinder is fixed at the bottom of the sedimentation tank, and a rodless air cylinder is fixed at the top of the sedimentation tank;
[0007] The cleaning mechanism includes an extension frame, a spring is fixed at the top of the extension frame, a cleaning shell is fixed at the top of the spring, a second filter screen is fixed on the surface of the cleaning shell, a discharge shell is fixed on one side of the cleaning shell, a vibration motor is fixed at the bottom of the cleaning shell, a spray pipe is arranged above the second filter screen, a waste collecting shell is arranged below the second filter screen, a conveying pump is arranged below the waste collecting shell, and a shunt pipe is communicated with the surface of the conveying pump.
[0008] Preferably, a drain valve is communicated with the lower surface of the waste collecting shell and the lower surface of the sedimentation tank.
[0009] Preferably, the number of the pushing air cylinders and the rodless air cylinders is two each.
[0010] Preferably, as a quick cleaning device for Sipunculus nudus of the present utility model, a U-shaped shell is fixed to the inner wall of the waste shell collection, a third filter screen is slidably connected to the surface of the U-shaped shell, and the third filter screen penetrates through the waste shell collection.
[0011] Preferably, as a quick cleaning device for Sipunculus nudus of the present utility model, a telescopic rod is arranged inside the spring, the bottom of the cleaning shell is fixedly connected to the top of the telescopic rod, and the top of the extension frame is fixedly connected to the bottom of the telescopic rod.
[0012] Preferably, as a quick cleaning device for Sipunculus nudus of the present utility model, the first filter screen, the second filter screen and the third filter screen are all made of stainless steel.
[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0014] 1. Through the setting of the precipitation mechanism of the present utility model, the Sipunculus nudus can be precipitated before cleaning. The Sipunculus nudus after being cut open at the abdomen can be placed on the surface of the first filter screen. At the same time, the sedimentation tank can be filled with water flow, so that the Sipunculus nudus can be static in the water between the first filter screen and the water. Static settlement can make the sand grains in the Sipunculus nudus naturally settle to the bottom of the water due to the action of gravity. Especially when the Sipunculus nudus is cut open, its internal structure is exposed, which is more conducive to the release of sand grains. In this way, the internal impurities can be preliminarily reduced without damaging its meat quality, and the muscle tissue of the Sipunculus nudus can be relaxed in the static water, softening its internal tissue, making the subsequent cleaning operation more effective. After the static settlement is over, the pushing cylinder is started to make the first filter screen push the Sipunculus nudus to move upward, so that the bottom of the first filter screen contacts the bottom of the push plate. Then the rodless cylinder is started to make the push plate push the Sipunculus nudus towards the conveying port, so that the static Sipunculus nudus can be pushed into the cleaning shell to start the cleaning process.
[0015] 2. With the setting of the cleaning mechanism in the present utility model, the sipunculus nudus can be automatically cleaned. After the sipunculus nudus is pushed onto the surface of the cleaning shell, the vibration motor starts, causing the cleaning shell, the second filter screen, and the discharge shell to vibrate. At this time, the spring will also be compressed and deformed to increase the vibration intensity. Due to the inclined design of the second filter screen, the sipunculus nudus can gradually move towards the discharge shell during vibration. Moreover, the transfer pump can connect to the external cleaning liquid, and the cleaning liquid can be transported through the shunt pipe into the spray pipe and then sprayed onto the surface of the sipunculus nudus through the nozzles on its surface. During this process, the vibration of the second filter screen can prompt the sipunculus nudus to rub against each other and with the second filter screen, which helps to loosen and detach the sediment and other impurities attached to the surface and inside. At the same time, the sprayed cleaning liquid can continuously wash away these loosened impurities and make them enter the waste collection shell through the second filter screen, thus achieving fast and in-depth cleaning. The cleaned sipunculus nudus can be discharged outward through the discharge shell. Through this automated cleaning method, the cleaning efficiency is significantly improved, the manpower requirement is reduced, the omission that may occur during manual cleaning is avoided, and the uniformity and thoroughness of cleaning are improved, which helps to improve the overall productivity. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a three-dimensional structure schematic diagram of the present utility model;
[0017] Figure 2 is a three-dimensional structure schematic diagram of another perspective of the present utility model;
[0018] Figure 3 is a structure schematic diagram of the precipitation mechanism in the present utility model;
[0019] Figure 4 is a structure schematic diagram of the cleaning mechanism in the present utility model;
[0020] Figure 5 is a structure schematic diagram of another perspective of the cleaning mechanism in the present utility model;
[0021] Figure 6 is a partial sectional structure schematic diagram of the cleaning mechanism in the present utility model.
[0022] In the figure: 1, support frame; 2, precipitation mechanism; 201, sedimentation tank; 202, delivery port; 203, first filter screen; 204, push plate; 205, push cylinder; 206, rodless cylinder; 207, drain valve; 3, cleaning mechanism; 301, extension frame; 302, spring; 303, cleaning shell; 304, second filter screen; 305, discharge shell; 306, vibration motor; 307, transfer pump; 308, shunt pipe; 309, spray pipe; 310, waste collection shell; 311, U-shaped shell; 312, third filter screen. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0023] Please refer to Figures 1-6 , a quick cleaning device for Sipunculus nudus, which includes a support frame 1, and a precipitation mechanism 2 and a cleaning mechanism 3 are arranged on the surface of the support frame 1;
[0024] The precipitation mechanism 2 enables the Sipunculus nudus to be precipitated before cleaning, and the cleaning mechanism 3 enables the Sipunculus nudus to be automatically cleaned.
[0025] The precipitation mechanism 2 includes a sedimentation tank 201, the sedimentation tank 201 is fixed above the surface of the support frame 1, a conveying port 202 is arranged on the surface of the sedimentation tank 201, a first filter screen 203 is slidably connected to the inner wall of the sedimentation tank 201, a push plate 204 is arranged above the first filter screen 203, a pushing cylinder 205 is fixed at the bottom of the sedimentation tank 201, one end of the pushing cylinder 205 penetrates through the sedimentation tank 201 and is fixedly connected to the bottom of the first filter screen 203, a sealing ring is arranged at the penetration of the pushing cylinder 205 and the sedimentation tank 201, and the sealing ring is fixedly connected to the inner wall of the sedimentation tank 201, a rodless cylinder 206 is fixed at the top of the sedimentation tank 201, and the slide table on the surface of the rodless cylinder 206 is fixedly connected to the push plate 204;
[0026] The Sipunculus nudus after being cut open at the abdomen can be placed on the surface of the first filter screen 203. At the same time, water can be filled in the sedimentation tank 201, so that the Sipunculus nudus can be left standing between the first filter screen 203 and the water. Standing can make the sand grains in the Sipunculus nudus settle to the bottom naturally due to the action of gravity. Especially when the Sipunculus nudus is cut open, its internal structure is exposed, which is more conducive to the release of sand grains. In this way, the internal impurities can be initially reduced without damaging its meat quality, and standing in water can relax the muscle tissue of the Sipunculus nudus and soften its internal tissues, making the subsequent cleaning operation more effective. After standing, start the pushing cylinder 205 to make the first filter screen 203 push the Sipunculus nudus upward, so that the bottom of the first filter screen 203 contacts the bottom of the push plate 204. Then start the rodless cylinder 206 to enable the push plate 204 to push the Sipunculus nudus towards the conveying port 202, so that the standing Sipunculus nudus can be pushed into the cleaning shell 303 for cleaning treatment.
[0027] The cleaning mechanism 3 includes extension frames 301. The number of extension frames 301 is two. The extension frames 301 are fixed to the surface of the support frame 1. A spring 302 is fixed to the top of the extension frame 301. A cleaning shell 303 is fixed to the top of the spring 302. A second filter screen 304 is fixed to the surface of the cleaning shell 303. A discharge shell 305 is fixed to one side of the cleaning shell 303. A vibration motor 306 is fixed to the bottom of the cleaning shell 303. A spray pipe 309 is arranged above the second filter screen 304. A waste collection shell 310 is arranged below the second filter screen 304. Both the spray pipe 309 and the waste collection shell 310 are fixedly connected to the surface of the support frame 1. A plurality of nozzles are communicated with the bottom of the spray pipe 309. A transfer pump 307 is arranged below the waste collection shell 310. A shunt pipe 308 is communicated with the surface of the transfer pump 307. One end of the shunt pipe 308 penetrates through the support frame 1 and is communicated with the spray pipe 309. The cleaning shell 303, the second filter screen 304 and the discharge shell 305 are all arranged in an inclined structure;
[0028] After the peanut worms are pushed onto the surface of the cleaning shell 303, the vibration motor 306 starts, which can make the cleaning shell 303, the second filter screen 304 and the discharge shell 305 vibrate. And at this time, the spring 302 will also be compressed and deformed to improve the vibration intensity. Since the second filter screen 304 is designed in an inclined manner, the peanut worms can gradually move towards the discharge shell 305 during vibration. And the transfer pump 307 can connect to the external cleaning liquid. The cleaning liquid can be transported to the inside of the spray pipe 309 through the shunt pipe 308 and then be sprayed onto the surface of the peanut worms by the nozzles on its surface. During this process, the vibration of the second filter screen 304 can prompt the peanut worms to rub against each other and against the second filter screen 304, which helps to loosen and detach the sediment and other impurities attached to the surface and inside. At the same time, the sprayed cleaning liquid can continuously wash away these loosened impurities and make them enter the waste collection shell 310 through the second filter screen 304, thus realizing fast and in-depth cleaning. The cleaned peanut worms can be discharged outwards through the discharge shell 305. Through this automated cleaning method, the cleaning efficiency is significantly improved, the manpower requirement is reduced, the omission that may be brought by manual cleaning is avoided, the uniformity and thoroughness of cleaning are improved, and it helps to improve the overall productivity.
[0029] Further, drain valves 207 are communicated with the lower surface of the waste collection shell 310 and the lower surface of the sedimentation tank 201;
[0030] Opening the drain valve 207 on the surface of the sedimentation tank 201 can discharge the accumulated impurities and water flow inside the sedimentation tank 201, while opening the drain valve 207 on the surface of the waste collection shell 310 can enable the sewage to be discharged normally.
[0031] Further, the number of the push cylinders 205 and the rodless cylinders 206 is two each;
[0032] With this design, the thrust forces on the first filter screen 203 and the push plate 204 are more evenly distributed, avoiding tilting due to unilateral force application.
[0033] Furthermore, a U-shaped shell 311 is fixed to the inner wall of the waste collection shell 310. A third filter screen 312 is slidably connected to the surface of the U-shaped shell 311, and the third filter screen 312 penetrates the waste collection shell 310.
[0034] The third filter screen 312 can be limited within the U-shaped shell 311, and the third filter screen 312 can block impurities under the scouring of water flow. At the same time, the operator can also pull out the third filter screen 312 from inside the U-shaped shell 311 to facilitate the cleaning of the third filter screen 312.
[0035] Furthermore, a telescopic rod is provided inside the spring 302. The bottom of the cleaning shell 303 is fixedly connected to the top of the telescopic rod, and the top of the extension frame 301 is fixedly connected to the bottom of the telescopic rod.
[0036] The telescopic rod can guide the moving direction of the cleaning shell 303, enabling the cleaning shell 303 to only vibrate up and down, avoiding the left and right shaking of the cleaning shell 303 and hitting the sedimentation tank 201.
[0037] Furthermore, the first filter screen 203, the second filter screen 304, and the third filter screen 312 are all made of stainless steel.
[0038] The stainless steel material has extremely high corrosion resistance, can withstand the impact force of water flow and the friction of solid impurities during the cleaning process, and can also be used for a long time in seawater, fresh water, and various chemical substance environments without being prone to rusting or corrosion, which is particularly important for processing the cleaning water of Sipunculus nudus that may contain brackish water or other corrosive components.
[0039] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principles of the present invention shall be included within the protection scope of the present invention.
Claims
1. A quick cleaning device for Sipuncula, comprising a support frame (1), characterized in that: The support frame (1) is provided with a precipitation mechanism (2) and a cleaning mechanism (3) on its surface; The sedimentation mechanism (2) comprises a sedimentation tank (201), a conveying port (202) is provided on the surface of the sedimentation tank (201), a first filter screen (203) is slidably connected to the inner wall of the sedimentation tank (201), a push plate (204) is provided above the first filter screen (203), a pushing cylinder (205) is fixed at the bottom of the sedimentation tank (201), a rodless cylinder (206) is fixed at the top of the sedimentation tank (201), and a sliding table on the surface of the rodless cylinder (206) is fixedly connected to the push plate (204); The cleaning mechanism (3) comprises an extension frame (301), a spring (302) is fixed on the top of the extension frame (301), a cleaning shell (303) is fixed on the top of the spring (302), a second filter screen (304) is fixed on the surface of the cleaning shell (303), a discharge shell (305) is fixed on one side of the cleaning shell (303), a vibration motor (306) is fixed on the bottom of the cleaning shell (303), a spray pipe (309) is arranged above the second filter screen (304), a waste collection shell (310) is arranged below the second filter screen (304), a delivery pump (307) is arranged below the waste collection shell (310), and a shunt pipe (308) is connected to the surface of the delivery pump (307).
2. The device for quickly cleaning Sipuncula according to claim 1, characterized in that: A drain valve (207) is provided below the surface of the waste collecting shell (310) and below the surface of the sedimentation tank (201).
3. The device for rapid cleaning of Sipuncula worms according to claim 1, characterized in that: The number of the pushing cylinder (205) and the rodless cylinder (206) is two.
4. The device for quickly cleaning Sipuncula according to claim 1, characterized in that: A U-shaped shell (311) is fixed to the inner wall of the waste collecting shell (310), a third filter screen (312) is slidably connected to the surface of the U-shaped shell (311), and the third filter screen (312) passes through the waste collecting shell (310).
5. The device for rapid cleaning of Sipuncula spp. according to claim 1, characterized in that: A telescopic rod is arranged inside the spring (302), the bottom of the cleaning shell (303) is fixedly connected to the top of the telescopic rod, and the top of the extension frame (301) is fixedly connected to the bottom of the telescopic rod.
6. The device for quickly cleaning Sipuncula according to claim 4, characterized in that: The first filter screen (203), the second filter screen (304) and the third filter screen (312) are all made of stainless steel.