Seedling transfer device for storage and transportation of cherax quadricarinatus
By setting up lifting modules and diversion components in the shrimp fry transport device, uniform distribution and water quality purification of shrimp fry are achieved, and the problems of aggregation and pollution during shrimp fry transport are solved and the survival rate is improved.
Patent Information
- Application Number
- CN202510737176.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-04
- Publication Date
- 2025-08-12
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the existing shrimp fry transport device, shrimp fry is prone to gather during the transfer process, resulting in fighting and water pollution, affecting survival rate.
A seedling transport device for red crayfish storage and application is designed, including a storage and transportation box module and a lifting module. The lifting module circulates and lifts in the box to make the shrimp seedlings evenly distributed, and the sewage is suctioned through the diversion component for filtering to keep the water quality clean.
Effectively prevent shrimp seedlings from gathering and fighting, keep the water quality clean, and improve survival rate.
Smart Images

Figure CN120458060A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of storage and transportation equipment, and in particular relates to a red claw crayfish seedling transport device for storage and use. Background Art
[0002] The transshipment of red claw crayfish is a critical and high-risk link in the entire storage, transportation and sales chain. Successful transshipment requires careful planning, appropriate equipment and a deep understanding of the shrimp's physiological needs. The core goals are to minimize stress, prevent damage and maintain high survival rates.
[0003] Chinese patent CN116746534A discloses a shrimp seed transfer device for storage and use, comprising a water tank and a bracket, wherein the bracket is fixedly connected to the top four corners of the water tank, a filter is fixedly connected to the inside of the water tank and the bracket, a top cover is fixedly connected to the top of the bracket, a closed-loop groove is provided on all four sides of the inner wall of the water tank, a support plate is hingedly connected to the outer wall of the water tank, a T-shaped limit groove is provided on all four sides of the outer wall of the water tank, and an electromagnetic plate is fixedly connected to the inside of the T-shaped limit groove. Since water has a certain buoyancy, the buoyancy of water is utilized to make the floating plate in the water tank act as a float, drive the moving rod to move in the closed-loop groove, thereby touching the control block at the top of the closed-loop groove. The entire anti-dumping device can be operated without manual operation, so that the shrimp seed transfer vehicle is protected and the anti-dumping action is completed.
[0004] During the actual use of the above-mentioned device, due to the high density of shrimp fry during transportation, when a large number of shrimp fry gather in the same location in the transfer box, they are very likely to fight and attack each other, causing damage to the shrimp bodies and easy death. In addition, the excrement produced by a large number of shrimp fry during the long-term transportation process will seriously pollute the water quality, and the deteriorated water quality will affect the metabolic burden of the shrimp fry themselves. Summary of the Invention
[0005] In view of the shortcomings of the existing technology, the purpose of the embodiments of the present invention is to provide a red claw crayfish seedling transport device for storage and use to solve the problems in the above background technology.
[0006] To achieve the above object, the present invention provides the following technical solutions:
[0007] A device for transporting red claw crayfish seedlings for storage and use, comprising a storage and transportation box module and a lifting module. The storage and transportation box module is internally provided with a plurality of lifting modules arranged in an array. The plurality of lifting modules move independently and cyclically rise and fall within the storage and transportation box module to evenly distribute the crayfish seedlings in the storage and transportation box module within the box body.
[0008] The storage and transportation box module includes a box body assembly, and the lifting module includes a flow guide assembly;
[0009] The diversion assembly includes a diversion shell and a top suction port. Several of the diversion shells are slidably assembled in the storage and transportation box module. A top suction port is provided on the top of the diversion shell. During the movement, the diversion shell can suck the sewage in the storage and transportation box module and filter it, thereby allowing the water in the box to circulate.
[0010] As a further solution of the present invention, the box assembly includes a main box, a storage and transportation cavity, a cavity bottom plate, a limit groove and a fixed plate. The storage and transportation cavity is provided inside the main box, and the bottom of the storage and transportation cavity is provided with a cavity bottom plate. A number of limit grooves are arrayed on the cavity bottom plate. The guide shell is limitedly slidably assembled in the limit groove, and a fixed plate is also provided at the bottom of the cavity bottom plate.
[0011] As a further solution of the present invention, the diversion assembly also includes a pump suction cylinder, a piston rod, a first diversion tube and a second diversion tube. The pump suction cylinder is rotatably arranged in the inner cavity of the diversion shell, and the piston rod is slidably inserted into the pump suction cylinder. The two ends of the cavity of the pump suction cylinder are respectively connected to the first diversion tube and the second diversion tube, the end of the first diversion tube is connected to the top suction port, and the end of the second diversion tube is connected to the shell of the diversion shell.
[0012] As a further solution of the present invention, the diversion assembly also includes a main drive rod, a shaft head, a transmission arm and a transmission plate. One end of the main drive rod is slidably inserted into the diversion shell, and the end of the main drive rod is fixedly assembled on the limit groove. The end of the main drive rod is fixedly assembled with a shaft head. One end of the transmission arm is rotatably assembled on the shaft head, and the other end of the transmission arm is fixedly assembled on the pump suction cylinder. One end of the transmission plate is fixedly assembled on the bottom of the diversion shell, and the other end of the transmission plate is slidably inserted into the limit groove.
[0013] As a further solution of the present invention, the red claw crayfish seedling transport device for storage and use also includes a filter assembly, which includes a guide chamber, a side notch, a piston housing, a linkage arm, an L-shaped plate, a guide rod and a return spring. The guide chamber is fixedly arranged on one side of the main box body, and a side notch is provided on one side of the guide chamber. The side notch and the storage and transportation chamber are communicated. The piston housing is slidably arranged in the guide chamber, one end of the linkage arm is fixedly connected to the piston housing, and the other end of the linkage arm is fixedly assembled with the L-shaped plate. One end of the guide rod is fixedly assembled on the main box body, and the other end of the guide rod and the linkage arm are elastically connected through the return spring.
[0014] As a further solution of the present invention, the filter assembly also includes a filter tank, a return pipe, a thermostat and a return port. The filter tank is fixedly arranged in the main box body and one end of the filter tank is connected to the guide cavity. One end of the return pipe is connected to the filter tank, and the other end of the return pipe is passed through the thermostat. One end of the reflux port is connected to the return pipe, and the other end of the reflux port is arranged on the top side of the storage and transportation cavity.
[0015] As a further solution of the present invention, a relative first cavity, a second cavity, a third cavity and a fourth cavity are provided inside the main box body. The first cavity is set between the storage and transportation cavity and the cavity bottom plate, the second cavity is set between the cavity bottom plate and the fixed plate, the third cavity is set between the fixed plate and the main box body, and the fourth cavity is set in the guide cavity. The first cavity and the second cavity are connected, and the second cavity and the fourth cavity are connected.
[0016] As a further solution of the present invention, the red claw crayfish seedling transporting device for storage and use also includes a driving assembly, the driving assembly including a driver, a first transmission wheel, a transmission shaft, a second transmission wheel, a cam, a side cam, a roller, a leakage cylinder and a leakage hole, the driver is arranged on one side of the main box body, the first transmission wheel, the transmission shaft and the second transmission wheel are all fixedly arranged on one side of the main box body, one end of the first transmission wheel is transmission-connected with the movable shaft of the driver, the other end of the first transmission wheel is transmission-connected with the transmission shaft and the second transmission wheel, several of the cam arrays are assembled on one end of the transmission shaft, and several of the cams are respectively movably abutted with several transmission plates, the side cam is fixedly arranged at the end of the transmission shaft, and a roller is rotatably assembled on the side cam, and the roller is movably abutted against one side of the L-shaped plate, a leakage cylinder is also provided in the storage and transportation cavity, one end of the leakage cylinder is fixedly connected to the second transmission wheel, the other end of the leakage cylinder is rotationally connected to the reflux port, and several leakage holes are also provided on the surface of the leakage cylinder.
[0017] In summary, the embodiments of the present invention have the following beneficial effects compared with the prior art:
[0018] The present invention provides a plurality of independently movable lifting modules inside the storage and transportation box module, which can make the crawfish seedlings swim back and forth during continuous take-off and landing, thereby preventing the crawfish seedlings from gathering together in large numbers and reducing the possibility of fighting among the crawfish seedlings. At the same time, the excrement and dirt on the bottom side of the cavity can be sucked out, thereby ensuring the cleanliness of the water quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 A partial cross-sectional view of a device for transporting redclaw crayfish seedlings for storage and use provided in one embodiment of the present invention.
[0020] Figure 2 This is a schematic structural diagram of a red claw crayfish seedling transport device for storage and use provided in one embodiment of the present invention.
[0021] Figure 3 The present invention is a schematic structural diagram of a filter assembly in a device for transporting red claw crayfish seedlings for storage and use provided in one embodiment of the present invention.
[0022] Figure 4 for Figure 3 An enlarged schematic diagram of the figure marked A.
[0023] Figure 5 This is a side structural schematic diagram of a red claw crayfish seedling transport device for storage and use provided in one embodiment of the present invention.
[0024] Figure 6 for Figure 5 An enlarged schematic diagram of the figure marked B.
[0025] Figure 7 The present invention is a schematic structural diagram of a flow guide assembly in a device for transporting red claw crayfish seedlings for storage and use provided in one embodiment of the present invention.
[0026] Figure 8 for Figure 7 An enlarged schematic diagram of the figure marked C.
[0027] Reference numerals: 1-box assembly, 101-main box, 102-storage and transportation chamber, 103-chamber bottom plate, 104-limiting groove, 105-fixing plate, 2-flow guide assembly, 201-flow guide housing, 202-top suction port, 203-pump suction cylinder, 204-piston rod, 205-first flow guide pipe, 206-second flow guide pipe, 207-main driving rod, 208-shaft head, 209-transmission arm, 210-transmission plate, 3-filter assembly, 301-flow guide chamber, 302-side notch, 303-piston housing, 304-linkage arm, 305-L-shaped plate, 306-guide rod, 307-return spring, 308-filter tank, 309-reflux pipe, 310-thermostat, 311-reflux port, 4-drive assembly, 401-driver, 402-first transmission wheel, 403-transmission shaft, 404-second transmission wheel, 405-cam, 406-side cam, 407-roller, 408-leakage cylinder, 409-leakage hole. DETAILED DESCRIPTION
[0028] In order to more clearly illustrate the structural features and effects of the present invention, the present invention is described in detail below with reference to the accompanying drawings and specific embodiments.
[0029] See also Figures 1-8, a red claw crayfish seedling transport device for storage and use in an embodiment of the present invention, the red claw crayfish seedling transport device for storage and use has a relative first direction x, a second direction y and a third direction z, the red claw crayfish seedling transport device for storage and use includes a storage and transportation box module and a lifting module, the storage and transportation box module is internally arrayed with a plurality of lifting modules, the plurality of lifting modules move independently, and the lifting modules circulate and rise and fall in the storage and transportation box module so that the crayfish seedlings in the storage and transportation box module are evenly distributed in the box body; the storage and transportation box module includes a box assembly 1, the lifting module includes a diversion assembly 2; the diversion assembly 2 includes a diversion shell 201 and a top suction port 202, and the plurality of diversion shells 201 are slidably assembled in the storage and transportation box module, the guide A top suction port 202 is provided on the top of the flow shell 201, and the diversion shell 201 can suck the sewage in the storage and transportation box module and filter it during movement, thereby making the water in the box circulate; the main box body 101 is internally provided with a relative first cavity a1, a second cavity a2, a third cavity a3 and a fourth cavity a4, the first cavity a1 is set between the storage and transportation cavity 102 and the cavity bottom plate 103, the second cavity a2 is set between the cavity bottom plate 103 and the fixed plate 105, the third cavity a3 is set between the fixed plate 105 and the main box body 101, and the fourth cavity a4 is set inside the diversion cavity 301, the first cavity a1 and the second cavity a2 are connected, and the second cavity a2 and the fourth cavity a4 are connected.
[0030] In actual application of this embodiment, when the red claw crayfish seedlings are transported by the transfer device, the transfer device includes a storage and transportation box module and a lifting module. A plurality of lifting modules are independently arranged inside the storage and transportation box module. The plurality of lifting modules are linearly arranged in the second direction y and reciprocate in the third direction z, and the plurality of lifting modules are alternately lifted and lowered in the third direction z, and the plurality of lifting modules are cyclically moved along the second direction y, so that when any group of lifting modules moves in the positive direction of the third direction z, the crayfish seedlings staying on the lifting module on the side are pushed. By swimming downward toward the unraised end of the lifting module on the adjacent side, so that when several lifting modules are cyclically raised in the third direction z, the crawfish seedlings in the storage and transportation chamber 102 can swim back and forth in the storage and transportation chamber 102 during the pushing process, preventing a large number of crawfish seedlings from gathering together, thereby reducing the possibility of fighting among the crawfish seedlings. At the same time, the lifting module can also suck out the excrement and dirt on the bottom side of the storage and transportation chamber 102 during the movement, thereby ensuring the cleanliness of the water quality, avoiding the growth of bacteria that affect the health of the crawfish seedlings, and reducing the metabolic burden of the shrimp seedlings themselves.
[0031] See also Figure 2 and Figure 3In a preferred embodiment of the present invention, the box assembly 1 includes a main box 101, a storage and transportation cavity 102, a cavity bottom plate 103, a limiting groove 104 and a fixing plate 105. The storage and transportation cavity 102 is provided inside the main box 101, and a cavity bottom plate 103 is provided at the bottom of the storage and transportation cavity 102. A plurality of limiting grooves 104 are arrayed on the cavity bottom plate 103. The guide shell 201 is slidingly assembled in the limiting groove 104, and a fixing plate 105 is also provided at the bottom of the cavity bottom plate 103.
[0032] In actual application of this embodiment, a storage and transportation cavity 102 is provided in the middle of the main box body 101, and a plurality of limiting grooves 104 are provided on the cavity bottom plate 103 on the bottom side of the storage and transportation cavity 102 to connect the first cavity a1 and the second cavity a2. A fixing plate 105 is also provided at the bottom of the cavity bottom plate 103, and a third cavity a3 is provided between the fixing plate 105 and the main box body 101. The bottom of the diversion shell 201 is slidably inserted on the fixing plate 105, and a sliding sealing structure is adopted between the third cavity a3 and the second cavity a2, so that the seedling excrement and dirt in the first cavity a1 are diverted to the second cavity a2, and then flow along the second cavity a2 to the fourth cavity a4, and a filter is provided on one side of the fourth cavity a4 to filter out dirt in the sewage.
[0033] See also Figure 7 and Figure 8 In a preferred embodiment of the present invention, the diversion assembly 2 further includes a pump suction cylinder 203, a piston rod 204, a first diversion tube 205 and a second diversion tube 206. The pump suction cylinder 203 is rotatably arranged in the inner cavity of the diversion housing 201, and the piston rod 204 is slidably inserted into the pump suction cylinder 203. The two ends of the cavity of the pump suction cylinder 203 are respectively connected to the first diversion tube 205 and the second diversion tube 206. The end of the first diversion tube 205 is connected to the top suction port 202, and the end of the second diversion tube 206 is connected to the shell of the diversion housing 201.
[0034] In actual application of this embodiment, several of the diversion shells 201 are respectively slidably assembled in several limit grooves 104 along the third direction z, and the transmission plate 210 at the bottom of the diversion shell 201 is slidably inserted on the fixed plate 105, and the transmission plate 210 and the fixed plate 105 are elastically connected. Several pump suction cylinders 203 are also provided in the inner cavity of the diversion shell 201, and a piston rod 204 is slidably inserted at one end of the pump suction cylinder 203. When the piston rod 204 slides back and forth inside the pump suction cylinder 203, the inner cavity of the pump suction cylinder 203 is cyclically switched between positive and negative pressure states. When the pump suction cylinder 203 is in a positive and negative pressure state, the piston rod 204 is pressed against the inner cavity of the pump suction cylinder 203. When the inner cavity of the pump suction cylinder 203 is in a negative pressure state, the pump suction cylinder 203 draws water into the pump suction cylinder 203 through the first guide tube 205 provided at one end thereof, and the end of the first guide tube 205 is connected to the top suction port 202, so that the dirt accumulated at the bottom of the first cavity a1 is sucked into the pump suction cylinder 203 through the top suction port 202. When the inner cavity of the pump suction cylinder 203 is in a positive pressure state, the pump suction cylinder 203 pumps water into the second cavity a2 through the second guide tube 206 provided at one end thereof, so that the amount of sewage in the second cavity a2 continues to increase, and then the sewage flows into the fourth cavity a4 under the action of pressure.
[0035] In one case of this embodiment, one-way check valves are provided on both the first flow conduit 205 and the second flow conduit 206 to limit the fluid to flow in one direction along the first flow conduit 205 into the inner cavity of the pump suction cylinder 203 , and to limit the fluid to flow in one direction along the inner cavity of the pump suction cylinder 203 into the second flow conduit 206 .
[0036] See also Figure 7 In a preferred embodiment of the present embodiment, the guide assembly 2 further includes a main driving rod 207, a shaft head 208, a transmission arm 209 and a transmission plate 210, one end of the main driving rod 207 is slidably inserted into the guide housing 201, and the end of the main driving rod 207 is fixedly assembled on the limiting groove 104, the end of the main driving rod 207 is fixedly assembled with a shaft head 208, one end of the transmission arm 209 is rotatably assembled on the shaft head 208, and the other end of the transmission arm 209 is fixedly assembled on the pump suction cylinder 203, one end of the transmission plate 210 is fixedly assembled on the bottom of the guide housing 201, and the other end of the transmission plate 210 is slidably inserted into the limiting groove 104.
[0037] In actual application of this embodiment, the end of the main driving rod 207 is fixedly assembled on the fixed plate 105, so that when the deflector shell 201 moves along the negative direction of the third direction z, the shaft head 208 at the end of the main driving rod 207 moves synchronously along the negative direction of the third direction z, thereby causing the transmission arm 209 installed at the end of the shaft head 208 to rotate and simultaneously press the piston rod 204 to move in the pump suction cylinder 203, thereby controlling the positive and negative pressure states in the pump suction cylinder 203.
[0038] See also Figure 4 and Figure 6 In a preferred embodiment of the present invention, the red claw crayfish seedling transport device for storage and use further includes a filter assembly 3, which includes a guide chamber 301, a side notch 302, a piston housing 303, a linkage arm 304, an L-shaped plate 305, a guide rod 306 and a return spring 307. The guide chamber 301 is fixedly arranged on one side of the main box 101, and a side notch 302 is provided on one side of the guide chamber 301. The side notch 302 and the storage and transportation chamber 102 are communicated. The piston housing 303 is slidably arranged in the guide chamber 301, one end of the linkage arm 304 is fixedly connected to the piston housing 303, and the other end of the linkage arm 304 is fixedly assembled with the L-shaped plate 305. One end of the guide rod 306 is fixedly assembled on the main box 101, and the other end of the guide rod 306 is elastically connected to the linkage arm 304 through the return spring 307.
[0039] In actual application of this embodiment, the diversion chamber 301 is fixedly provided on one side of the main housing 101, and a side notch 302 provided at one end of the diversion chamber 301 is used to connect the second cavity a2 and the fourth cavity a4. The piston housing 303 is slidably provided in the fourth cavity a4. The diversion chamber 301 is further provided with a first plane b1, a second plane b2, and a third plane b3 relative to each other. One end of the side notch 302 is provided as the second plane b2, and the side of the piston housing 303 slidingly connected with the second plane b3 is provided as the second plane b2. The front end of the piston housing 303 is provided as the third plane b3. When the piston housing 303 moves in the negative direction of the first direction x, the second plane b2 at one end thereof slides in contact with the first plane b1. While the second plane b2 blocks the side notch 302, the third plane b3 squeezes the sewage in the fourth cavity a4 toward the side of the filter tank 308 during continuous movement, so that the sewage flows along the fourth cavity a4 into the filter tank 308.
[0040] Furthermore, the filter assembly 3 further includes a filter tank 308, a return pipe 309, a thermostat 310 and a return port 311. The filter tank 308 is fixedly arranged in the main box 101 and one end of the filter tank 308 is connected to the guide cavity 301. One end of the return pipe 309 is connected to the filter tank 308, and the other end of the return pipe 309 is passed through the thermostat 310. One end of the return port 311 is connected to the return pipe 309, and the other end of the return port 311 is arranged on the top side of the storage and transportation cavity 102. After the sewage flowing into the filter tank 308 is filtered again, the filtered liquid is transported to the reflux port 311 through the reflux pipe 309. Since the reflux pipe 309 is installed in the thermostat 310, and the thermostat 310 is used to cool the water in the reflux pipe 309, the temperature of the circulating water flowing back to the first cavity a1 along the reflux port 311 is kept at a low temperature, thereby reducing the metabolic rate of the crayfish seedlings, reducing oxygen consumption and activity, allowing the shrimp body to enter a stable state, and reducing the risk of fighting and injury.
[0041] See also Figure 2 and Figure 4 In a preferred embodiment of the present invention, the red claw crayfish seedling transport device for storage and use further includes a driving assembly 4, which includes a driver 401, a first transmission wheel 402, a transmission shaft 403, a second transmission wheel 404, a cam 405, a side cam 406, a roller 407, a leakage cylinder 408 and a leakage hole 409. The driver 401 is arranged on one side of the main box 101, and the first transmission wheel 402, the transmission shaft 403 and the second transmission wheel 404 are all fixedly arranged on one side of the main box 101. One end of the first transmission wheel 402 is connected to the movable shaft of the driver 401 for transmission, and the other end of the first transmission wheel 402 is connected to the transmission shaft 403 and The second transmission wheel 404 is connected for transmission, and several of the cams 405 are arrayed at one end of the transmission shaft 403, and several of the cams 405 are movably abutted against several transmission plates 210 respectively. The side cam 406 is fixedly arranged at the end of the transmission shaft 403, and a roller 407 is rotatably installed on the side cam 406, and the roller 407 is movably abutted against one side of the L-shaped plate 305. A leakage cylinder 408 is also provided in the storage and transportation cavity 102, and one end of the leakage cylinder 408 is fixedly connected to the second transmission wheel 404, and the other end of the leakage cylinder 408 is rotatably connected to the reflux port 311. A plurality of leakage holes 409 are also provided on the surface of the leakage cylinder 408.
[0042] In actual application of this embodiment, the driver 401 synchronously drives the first transmission wheel 402 to rotate in the driving state, and the first transmission wheel 402 synchronously drives the transmission shaft 403 and the second transmission wheel 404 to rotate during the rotation process. The transmission shaft 403 is fixedly arranged in the third cavity a3, and a plurality of cams 405 are coaxially fixedly assembled on the transmission shaft 403. The cams 405 are spirally arranged along the layout direction of the transmission shaft 403, so that when the plurality of cams 405 rotate and abut against one side of the transmission plate 210 during the coaxial rotation, they can simultaneously drive the plurality of guide housings 201 to alternately rise and fall in the third direction z. The transmission shaft 403 can also synchronously drive the side cam 406 to rotate during the rotation process. One end of the side cam 406 is rotated during the rotation process. When the roller 407 rotates and abuts against one side of the L-shaped plate 305, it can push the linkage arm 304 to slide synchronously on the guide rod 306, so that the linkage arm 304 overcomes the elastic force of one side of the return spring 307 and moves in the negative direction of the first direction x. When the roller 407 rotates and disengages from one side of the L-shaped plate 305, the linkage arm 304 automatically returns to its initial position under the elastic force of the return spring 307. During the rotation, the second transmission wheel 404 drives the leakage cylinder 408 to rotate, so that the reflux water pumped out of the reflux port 311 flows into the leakage cylinder 408 and drips into the first cavity a1 along the several leakage holes 409 on the leakage cylinder 408, so that the cooled water is evenly dripped into the first cavity a1, reducing the stimulation of local low temperature on the crayfish seedlings.
[0043] The above-mentioned embodiment of the present invention provides a red claw crayfish seedling transport device for storage and use. By arranging a plurality of independently movable lifting modules inside the storage and transportation box module, the crayfish seedlings can be made to swim back and forth during continuous take-off and landing, thereby preventing the crayfish seedlings from gathering together in large numbers and reducing the possibility of fighting among the crayfish seedlings. At the same time, the excrement and dirt on the bottom side of the cavity can be sucked out, thereby ensuring the cleanliness of the water quality.
[0044] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A device for transporting red claw crayfish seedlings for storage and use, characterized in that: The red claw crayfish seedling transport device for storage and use comprises: A storage and transportation box module and a lifting module, wherein the storage and transportation box module is provided with a plurality of lifting modules in an array, and the plurality of lifting modules move independently, and the lifting modules circulate and rise and fall within the storage and transportation box module so that the crawfish seedlings in the storage and transportation box module are evenly distributed within the box body; The storage and transportation box module includes a box body assembly, and the lifting module includes a flow guide assembly; The diversion assembly includes a diversion shell and a top suction port. Several of the diversion shells are slidably assembled in the storage and transportation box module. A top suction port is provided on the top of the diversion shell. During the movement, the diversion shell can suck the sewage in the storage and transportation box module and filter it, thereby allowing the water in the box to circulate.
2. The device for transporting red claw crayfish seedlings for storage and use according to claim 1, characterized in that: The box assembly includes a main box, a storage and transportation cavity, a cavity bottom plate, a limit groove and a fixed plate. The storage and transportation cavity is provided inside the main box, and the bottom of the storage and transportation cavity is provided with a cavity bottom plate. A plurality of limit grooves are arranged in an array on the cavity bottom plate. The guide shell is limitedly slidably assembled in the limit groove, and a fixed plate is also provided at the bottom of the cavity bottom plate.
3. The device for transporting red claw crayfish seedlings for storage and use according to claim 1, characterized in that: The diversion assembly also includes a pump suction cylinder, a piston rod, a first diversion tube and a second diversion tube. The pump suction cylinder is rotatably arranged in the inner cavity of the diversion shell. The piston rod is slidably inserted into the pump suction cylinder. The first and second diversion tubes are respectively connected at both ends of the cavity of the pump suction cylinder. The end of the first diversion tube is connected to the top suction port, and the end of the second diversion tube is connected to the shell of the diversion shell.
4. The device for transporting red claw crayfish seedlings for storage and use according to claim 1, characterized in that: The diversion assembly also includes a main driving rod, a shaft head, a transmission arm and a transmission plate. One end of the main driving rod is slidably inserted into the diversion housing, and the end of the main driving rod is fixedly assembled on the limit groove. The end of the main driving rod is fixedly assembled with a shaft head. One end of the transmission arm is rotatably assembled on the shaft head, and the other end of the transmission arm is fixedly assembled on the pump suction cylinder. One end of the transmission plate is fixedly assembled on the bottom of the diversion housing, and the other end of the transmission plate is slidably inserted into the limit groove.
5. The device for transporting red claw crayfish seedlings for storage and use according to claim 1, characterized in that: The red claw crayfish seedling transport device for storage and use also includes a filter assembly, which includes a guide chamber, a side notch, a piston housing, a linkage arm, an L-shaped plate, a guide rod and a return spring. The guide chamber is fixedly arranged on one side of the main box body, and a side notch is provided on one side of the guide chamber. The side notch and the storage and transportation chamber are communicated. The piston housing is slidably arranged in the guide chamber, one end of the linkage arm is fixedly connected to the piston housing, and the other end of the linkage arm is fixedly assembled with the L-shaped plate. One end of the guide rod is fixedly assembled on the main box body, and the other end of the guide rod is elastically connected to the linkage arm through the return spring.
6. The device for transporting red claw crayfish seedlings for storage and use according to claim 5, characterized in that: The filter assembly also includes a filter tank, a return pipe, a thermostat and a return port. The filter tank is fixedly arranged in the main box and one end of the filter tank is connected to the guide cavity. One end of the return pipe is connected to the filter tank, and the other end of the return pipe is passed through the thermostat. One end of the return port is connected to the return pipe, and the other end of the return port is arranged on the top side of the storage and transportation cavity.
7. The device for transporting red claw crayfish seedlings for storage and use according to claim 1, characterized in that: The main box body is provided with a relative first cavity, a second cavity, a third cavity and a fourth cavity. The first cavity is set between the storage and transportation cavity and the cavity bottom plate, the second cavity is set between the cavity bottom plate and the fixed plate, the third cavity is set between the fixed plate and the main box body, and the fourth cavity is set in the guide cavity. The first cavity and the second cavity are connected, and the second cavity and the fourth cavity are connected.
8. The device for transporting red claw crayfish seedlings for storage and use according to claim 1, characterized in that: The red claw crayfish seedling transporting device for storage and use also includes a driving assembly, which includes a driver, a first transmission wheel, a transmission shaft, a second transmission wheel, a cam, a side cam, a roller, a leakage cylinder and a leakage hole. The driver is arranged on one side of the main box body, and the first transmission wheel, the transmission shaft and the second transmission wheel are all fixedly arranged on one side of the main box body. One end of the first transmission wheel is connected to the movable shaft of the driver for transmission, and the other end of the first transmission wheel is connected to the transmission shaft and the second transmission wheel for transmission. Several cam arrays are assembled at one end of the transmission shaft, and several cams are respectively movably abutted against several transmission plates. The side cam is fixedly arranged at the end of the transmission shaft, and a roller is rotatably assembled on the side cam, and the roller movably abuts against one side of the L-shaped plate. A leakage cylinder is also provided in the storage and transportation cavity, one end of the leakage cylinder is fixedly connected to the second transmission wheel, and the other end of the leakage cylinder is rotatably connected to the reflux port, and several leakage holes are also provided on the surface of the leakage cylinder.
Citation Information
Patent Citations
Shrimp seed transfer device for shrimp culture
CN116746534A