Breeding system for blood wheat planting
By designing a breeding system that combines a buoyancy ball and a piston rod, the addition of nutrient solution is automatically adjusted, which solves the problem of untimely nutrient solution replenishment during the breeding process, achieves timely nutrient solution replenishment and uniform distribution of seeds, and improves breeding results.
Patent Information
- Application Number
- CN202510982450.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-16
- Publication Date
- 2025-09-23
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing breeding system device makes it difficult to add nutrient solution in time during the breeding process, resulting in the blood wheat seeds being unable to absorb nutrients in time, affecting the breeding effect.
A breeding system is designed that automatically adjusts the addition of nutrient solution through the cooperation of a buoyancy ball and a piston rod to ensure timely replenishment of nutrient solution according to consumption, and accelerates the flow of nutrient solution through a spoiler ramp to prevent sedimentation.
It achieves timely replenishment of nutrient solution, avoids the decline of breeding effect caused by untimely addition of nutrient solution during the breeding process, and ensures uniform distribution of seeds, thereby improving breeding efficiency.
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Figure CN120677950A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of breeding, and more particularly to a breeding system for blood wheat planting. Background Art
[0002] Blood wheat refers to certain wheat varieties with kernels that appear deep red or purple due to their rich anthocyanins or iron content. The cultivation of blood wheat seeds is directly related to their subsequent growth and survival. Traditionally, it is cultivated in greenhouses, but greenhouse seedlings have poor survival rates. Therefore, seed cultivation is often performed using breeding systems that provide the temperature, humidity, and light intensity necessary for seed growth and germination.
[0003] Currently, the breeding system devices on the market often have the following technical problems in the process of breeding and cultivating blood wheat seeds:
[0004] As the breeding system device is breeding and cultivating blood wheat seeds, it is difficult to add nutrient solution inside the breeding system device in a timely manner according to the consumption of the internal nutrient solution, resulting in the blood wheat seeds being unable to absorb the nutrients in the nutrient solution in a timely manner during the later breeding and cultivation process, thereby affecting the breeding and cultivation process of the blood wheat seeds. Summary of the Invention
[0005] In view of the shortcomings of the existing technology, the purpose of the present invention is to provide a breeding system for blood wheat planting that can timely add nutrient solution inside the breeding frame according to the consumption of the nutrient solution inside the breeding frame, so as to avoid the influence of untimely addition of nutrient solution on the later breeding and cultivation process, thereby reducing the breeding effect.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a breeding system for blood wheat planting, comprising a breeding component, on which a plurality of buoyancy components are slidably arranged; the breeding component comprises a frame part, the buoyancy component comprises a buoyancy part that is slidably fitted on the frame part and a spoiler that is slidably fitted on the buoyancy part, and the spoiler is slidably fitted with the frame part; the frame part comprises a breeding frame, wherein a plurality of breeding frames are fixed inside the breeding frame, and liquid storage tanks are fixed on both opposite outer sides of the breeding frame, a liquid inlet tank is provided through the outer top of the liquid storage tank, a baffle is fixed on the outer top of the liquid storage tank, a guide rod is fixed on the side of the baffle, and the breeding frame is relatively Both inner sides are connected to the outside with liquid circulation pipes, and the central peripheral side surfaces of the two liquid circulation pipes are located inside the breeding frame with liquid outlet grooves, one end of the liquid circulation pipe extends through the liquid storage box, and the surface of the liquid circulation pipe is located inside the liquid storage box with a plurality of liquid inlets, and two symmetrical groups of top plates are fixed on the top of the outer top of the breeding frame, and guide holes are opened through the top of the top plates; the buoyancy member includes a plurality of vertical rods that slide in the guide holes, a buoyancy ball is fixed at the bottom of the vertical rod, and a movable plate is fixed on the top of the plurality of vertical rods, and two symmetrical L-shaped sliding rods are fixed on the top of the movable plate, and the ends of the two L-shaped sliding rods are both dome-shaped, and the two L-shaped sliding rods are both slidably matched with the spoiler.
[0007] The present invention is further configured as follows: the spoiler includes several piston rods that are slidably fitted inside the liquid circulation pipe, several ends of the piston rods are fixed with T-shaped plates, the top of the T-shaped plate is fixed with a special-shaped plate that is slidably fitted on the outside of the liquid storage tank, two symmetrical trapezoidal vertical plates are fixed on the side of the special-shaped plate, both sides of the two trapezoidal vertical plates are provided with oblique grooves, and the two oblique grooves are respectively slidably fitted with two L-shaped sliding rods; a sliding hole that is slidably fitted on the guide rod is provided through the center position of the special-shaped plate, and a return spring that is sleeved and fitted on the guide rod is fixed between the special-shaped plate and the baffle.
[0008] The present invention is further configured as follows: a connecting plate is fixed between the piston rods, a spoiler inclined plate is fixed at the bottom of the connecting plate and is slidably fitted in the liquid storage tank, and a spoiler hole is opened through the side of the spoiler inclined plate.
[0009] The present invention is further configured as follows: a plurality of push members and a plurality of breeding members that are adsorbed and positioned inside the frame member are reciprocatingly slidably engaged on the frame body; rectangular grooves are penetrated on both opposite outer sides of the breeding frame; the push member includes a U-shaped slide that slides between the two rectangular grooves, two side baffles that slide between the two rectangular grooves are fixed to the outer bottom of the U-shaped slide, a displacement frame is slidably engaged between the two side baffles, and a push plate is fixed to the bottom of the displacement frame.
[0010] The present invention is further configured as follows: a plurality of elastic springs are fixed to the outer bottom of the U-shaped slide between the baffles on both sides, and the bottoms of the plurality of elastic springs are fixedly connected to the top of the displacement frame; an L-shaped plate is fixed to the two opposite outer sides of the displacement frame, and a contact rod is fixed to the outer bottom of the two L-shaped plates, and the bottoms of the two contact rods are both dome-shaped, and a shift rod is fixed to an outer side of one of the L-shaped plates.
[0011] The present invention is further configured as follows: the breeding frame is fixed with path plates that are in sliding contact with the contact rod on both opposite outer sides, the path plate includes a first bottom plate, the first bottom plate is fixed with oblique plates on both opposite side sides, and the two oblique plates are fixed with second bottom plates on both opposite side sides; an L-shaped support plate is fixed to an outer side of the breeding frame, a drive motor is fixed to an inner side of the L-shaped support plate, a rotating arm is fixed to the output shaft of the drive motor, and a toggle rod is fixed to the side of the rotating arm.
[0012] The present invention is further configured as follows: a base plate is fixed to the other outer side surface of the breeding frame, a vertical pole is fixed to the top of the base plate, and two symmetrical limit grooves are provided on the peripheral side surfaces of the vertical pole; a sliding sleeve is slidably fitted on the peripheral side surfaces of the vertical pole, and two symmetrical limit rails are fixed to the inner wall of the sliding sleeve, and the two limit rails are slidably fitted with the two limit grooves respectively.
[0013] The present invention is further configured as follows: a lifting plate is fixed to the outer peripheral side of the sliding sleeve, and two groups of inclined guide rail grooves are opened on the side of the lifting plate in a linear array, the number of the inclined guide rail grooves in each group is two, and the two inclined guide rail grooves are symmetrically distributed; the inclined guide grooves are slidably matched with the toggle rod; an extension plate is fixed to the side of the lifting plate near the bottom, and a rectangular frame is fixed to the side of the extension plate that is slidably matched with the toggle rod.
[0014] The present invention is further configured as follows: a plurality of magnetic plates are fixed on the inner side surface of the breeding frame, and an arc-shaped plate is fixed on the top of the magnetic plate; the breeding component includes a cultivation frame that is snap-fitted between the plurality of arc-shaped plates, a metal mesh is provided on the bottom inner side of the cultivation frame, the aperture of the metal mesh is smaller than the outer diameter of the blood wheat seeds, and a plurality of magnets are fixed on the inner side surface of the cultivation frame, which are respectively adsorbed and positioned with the plurality of magnetic plates.
[0015] The advantages of the present invention are: 1. The present invention drives the buoyancy balls to descend through the consumption of the nutrient solution inside the breeding frame, so that the two L-shaped slide bars slide downward synchronously, compressing the reset spring, so that the piston rods begin to slide toward the side away from the breeding frame, driving the piston rods and the liquid inlet to be misaligned, so that the nutrient solution enters the liquid circulation tube through the liquid inlet, and finally enters the breeding frame through the liquid outlet trough, thereby completing the nutrient solution addition process in the entire process, and can timely add the nutrient solution inside the breeding frame according to the consumption of the nutrient solution inside the breeding frame, avoiding the influence on the later blood wheat breeding process due to the untimely addition of nutrient solution in the later breeding and cultivation process, thereby reducing the breeding effect.
[0016] 2. The present invention enables the two levers to synchronously slide back and forth in the left and right directions inside a set of inclined guide grooves through the up and down movement of the lifting plate, driving the two push members to synchronously move back and forth horizontally in the left and right directions inside the two rectangular grooves. In this way, the stacked blood wheat seeds are reciprocally spread out, so that the blood wheat seeds are evenly spread out on the surface of the metal mesh, so as to carry out the later breeding and cultivation work, and avoid excessive accumulation of blood wheat seeds in a certain area to prevent it from affecting the later breeding and cultivation process. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 The present invention is a schematic structural diagram of a breeding system for blood wheat planting.
[0018] Figure 2 Schematic diagram of the structure of the breeding component of the present invention.
[0019] Figure 3 It is a structural schematic diagram of the buoyancy assembly of the present invention.
[0020] Figure 4 It is a structural schematic diagram of the frame member of the present invention.
[0021] Figure 5 It is a side view of the frame member of the present invention.
[0022] Figure 6 It is a top view of the frame member of the present invention.
[0023] Figure 7 It is a structural schematic diagram of the buoyancy member of the present invention.
[0024] Figure 8 Schematic diagram of the structure of the spoiler of the present invention.
[0025] Figure 9 It is a structural schematic diagram of the push member of the present invention.
[0026] Figure 10 It is a side view of the push member of the present invention.
[0027] Figure 11 It is a front view of the push member of the present invention.
[0028] Figure 12 Schematic diagram of the structure of the breeding piece of the present invention.
[0029] In the figure: 1. breeding component; 2. buoyancy component; 3. frame member; 4. buoyancy member; 5. spoiler member; 6. push member; 7. breeding member; 301. breeding frame; 302. breeding frame; 303. liquid storage box; 304. liquid inlet tank; 305. baffle; 306. guide rod; 307. liquid circulation pipe; 308. liquid inlet; 309. top plate; 310. guide hole; 311. rectangular groove; 312. path plate; 3121. first bottom plate; 3122. oblique plate; 3123. second bottom plate; 313. L-shaped support plate; 314. drive motor; 315. rotating arm; 316. toggle rod; 317. base plate; 318. vertical pole; 319. limit groove; 320. sliding sleeve; 321. limit Rail; 322, lifting plate; 323, inclined guide rail groove; 324, rectangular frame; 325, magnetic plate; 326, curved plate; 327, extension plate; 401, vertical rod; 402, buoyancy ball; 403, movable plate; 404, L-shaped slide rod; 501, piston rod; 502, T-shaped plate; 503, special-shaped plate; 504, trapezoidal vertical plate; 505, inclined groove; 506, sliding hole; 507, return spring; 508, connecting plate; 509, spoiler inclined plate; 601, U-shaped slide plate; 602, displacement frame; 603, push plate; 604, elastic spring; 605, L-shaped plate; 606, contact rod; 607, shift rod; 608, side baffle; 701, cultivation frame; 702, metal mesh; 703, magnet. DETAILED DESCRIPTION
[0030] It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in this application can be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.
[0031] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by ordinary technicians in the technical field to which this application belongs.
[0032] In the present invention, unless otherwise specified, directions such as "up" and "down" are generally used with respect to the directions shown in the drawings, or with respect to the vertical, perpendicular or gravity directions; similarly, for ease of understanding and description, "left" and "right" are generally used with respect to the left and right shown in the drawings; "inside" and "outside" refer to the inside and outside relative to the outline of each component itself, but the above-mentioned directions are not used to limit the present invention.
[0033] For example 1, please refer to Figure 1-12 The present invention provides the following technical solutions: a breeding system for blood wheat planting, specifically, comprising a breeding component 1, on which a plurality of buoyancy components 2 are slidably arranged; the breeding component 1 comprises a frame part 3, the buoyancy component 2 comprises a buoyancy component 4 slidably fitted on the frame part 3 and a spoiler 5 slidably fitted on the buoyancy component 4, the spoiler 5 slidably fitted with the frame part 3; the frame part 3 comprises a breeding frame 301, and a plurality of breeding frames 302 are fixed inside the breeding frame 301, and the breeding frames 302 are fixed with liquid storage tanks 303 on both opposite outer sides, and a liquid inlet tank 304 is penetrated through the outer top of the liquid storage tank 303, and a baffle 305 is fixed on the outer top of the liquid storage tank 303, and a guide rod 306 is fixed on the side of the baffle 305, and the breeding frames 302 are penetrated outwardly on both opposite inner sides. Liquid circulation tube 307, the side surface of the two liquid circulation tubes 307 is located inside the breeding frame 302 and has a liquid outlet groove, one end of the liquid circulation tube 307 extends through the liquid storage tank 303, and the surface of the liquid circulation tube 307 is located inside the liquid storage tank 303 and has a plurality of liquid inlets 308. Two symmetrical groups of top plates 309 are fixed on the top of the breeding frame 302, and a guide hole 310 is opened on the top of the top plate 309; the buoyancy member 4 includes a plurality of vertical rods 401 that are slidably fitted in the guide holes 310, a buoyancy ball 402 is fixed at the bottom of the vertical rod 401, and a movable plate 403 is fixed on the top of the plurality of vertical rods 401, and two symmetrical L-shaped slide rods 404 are fixed on the top of the movable plate 403, and the ends of the two L-shaped slide rods 404 are both dome-shaped, and the two L-shaped slide rods 404 are both slidably fitted with the spoiler 5.
[0034] Furthermore, the spoiler 5 includes several piston rods 501 that slide into the liquid circulation tube 307, and several piston rods 501 have T-shaped plates 502 fixed at their ends. A special-shaped plate 503 that slides into the outside of the liquid storage tank 303 is fixed on the top of the T-shaped plate 502. Two symmetrical trapezoidal vertical plates 504 are fixed on the side of the special-shaped plate 503. The sides of the two trapezoidal vertical plates 504 are both provided with oblique grooves 505, and the two oblique grooves 505 slide with the two L-shaped slide rods 404 respectively; a sliding hole 506 that slides into the guide rod 306 is provided through the center of the special-shaped plate 503, and a return spring 507 that is sleeved and fitted on the guide rod 306 is fixed between the special-shaped plate 503 and the baffle 305; a connecting plate 508 is fixed between the several piston rods 501, and a spoiler inclined plate 509 that slides into the inside of the liquid storage tank 303 is fixed at the bottom of the connecting plate 508, and a spoiler hole 510 is provided on the side of the spoiler inclined plate 509.
[0035] The specific application of the first embodiment of the present invention is as follows: after the blood wheat seeds that need to be bred and cultivated are evenly spread inside the breeding component 1, a certain amount of nutrient solution is added to the inside of the breeding frame 302 in advance, so that the nutrient solution inside the breeding frame 302 is in contact with the evenly spread blood wheat seeds. At this time, a number of buoyancy balls 402 floating above the nutrient solution inside the breeding frame 302 are in a floating state (the buoyancy balls 402 are hollow PP (polypropylene) floats or silica gel-coated foam floats, and the surface is sprayed with a nano-silicon dioxide hydrophobic coating to avoid nutrient solution residue). Subsequently, the nutrient solution required for the breeding and cultivation process is introduced into the liquid storage tank 303 (the nutrient solution required for the breeding and cultivation process is introduced into the liquid storage tank 303). When the nutrient solution is passed through the liquid storage tank 303, the piston rods 501 that are respectively slidably matched in the liquid circulation tube 307 completely cover the liquid inlet 308 opened on the side surface of the liquid circulation tube 307 to ensure that when the nutrient solution required for the breeding and cultivation process is passed through the liquid storage tank 303, the liquid inlet 308 is completely in a closed state, avoiding that when the nutrient solution is passed through the liquid storage tank 303, the nutrient solution enters the liquid circulation tube 307 from the liquid inlet 308, and finally enters the breeding frame 302 through the liquid outlet groove opened on the liquid circulation tube 307). In the later breeding and cultivation process, as the nutrient solution in the breeding frame 302 is consumed, the buoyancy balls 402 floating on the nutrient solution in the breeding frame 302 open. The breeding frames 302 and 701 are made of HDPE material, which is low-cost, resistant to chemical corrosion, and easy to clean. When the buoyancy balls 402 start to descend synchronously, the buoyancy members 4 that slide in the guide holes 310 start to descend synchronously (the guide rods 306 and the vertical rods 401 are made of stainless steel 316L+PTFE coating, which takes into account both strength and anti-stickiness). When the buoyancy members 4 start to descend synchronously, the two L-shaped slide rods 404 that slide in the two oblique grooves 505 respectively slide downward synchronously (when the two L-shaped slide rods 404 slide in the two oblique grooves 505 respectively, the ends of the two L-shaped slide rods 404 that slide in contact are dome-shaped), and thereby the buoyancy members 402 are fixedly connected to the special-shaped grooves 505. The return spring 507 between the plate 503 and the baffle 305 begins to be gradually compressed (the buoyancy of the plurality of buoyancy balls 402 in the nutrient solution matches the elastic coefficient of the return spring 507, which is convenient for the return spring 507 fixedly connected between the special-shaped plate 503 and the baffle 305 to be synchronously compressed when the plurality of buoyancy balls 402 float down in the later stage, and at the same time facilitates the return spring 507 compressed in the later stage to be reset), so that the plurality of piston rods 501 respectively slidably fitted in the liquid circulation tube 307 begin to slide toward the side away from the breeding rack 301. When the plurality of piston rods 501 respectively slidably fitted in the liquid circulation tube 307 begin to slide toward the side away from the breeding rack 301,The piston rods 501 sliding in the liquid circulation tube 307 begin to be synchronously dislocated with the liquid inlet 308 provided on the side surface of the liquid circulation tube 307 (the surface of the piston rod 501 and the inner wall of the liquid inlet 308 are coated with PTFE material to prevent the nutrient solution from adhering). When the piston rod 501 and the liquid inlet 308 begin to be dislocated, the nutrient solution temporarily stored in the liquid storage tank 303 begins to enter the liquid circulation tube 307 through the liquid inlet 308, and finally enters the breeding frame 302 through the liquid outlet groove provided on the liquid circulation tube 307, thereby completing the nutrient solution addition process. In addition, the nutrient solution in the breeding frame 302 can be added in time according to the consumption of the nutrient solution in the breeding frame 302, thereby avoiding the influence on the later breeding process of blood wheat due to the untimely addition of nutrient solution in the later breeding process, thereby reducing the breeding effect.
[0036] During the above process, when the piston rod 501 inside the liquid circulation tube 307 starts to slide toward the side away from the breeding rack 301, the connecting plates 508 fixed on the side surfaces of the piston rod 501 and the spoiler inclined plates 509 fixed at the bottom of the connecting plates 508 will slide synchronously inside the liquid storage tank 303 (the spoiler inclined plates 509 are made of PTFE or PEEK (polyetheretherketone), which has high wear resistance and non-stick properties, and the surface of the spoiler inclined plates 509 is coated with PTFE to improve anti-adhesion and acid and alkali resistance), thereby Through the spoiler ramp 509 and the spoiler holes 510 provided on the side surfaces of the spoiler ramp 509 (the liquid circulation pipe 307 and the liquid storage tank 303 are lined with food-grade silicone (FDA certified), which improves flexibility and corrosion resistance, and has a smooth surface that is not easily adhered to organic precipitation), the water flow of the nutrient solution temporarily stored in the liquid storage tank 303 is accelerated and mixed before replenishment, thereby avoiding excessive precipitation of nutrients in the nutrient solution temporarily stored in the liquid storage tank 303 inside the liquid storage tank 303, thereby preventing it from affecting the timely replenishment process of the nutrient solution at a later stage.
[0037] For example 2, please refer to Figure 1-12, this embodiment 2 makes the following improvements on the basis of embodiment 1. Specifically, a plurality of push members 6 and a plurality of breeding members 7 adsorbed and positioned inside the frame member 3 are reciprocatingly slidably fitted on the frame member 3; rectangular grooves 311 are penetrated on both opposite outer sides of the breeding frame 302; the push member 6 includes a U-shaped slide 601 that slides between the two rectangular grooves 311, and two side baffles 608 that slide between the two rectangular grooves 311 are fixed on the outer bottom of the U-shaped slide 601. A displacement frame 602 is slidably fitted between the two side baffles 608, and a push plate 603 is fixed to the bottom of the displacement frame 602; a plurality of elastic springs 604 are fixed on the outer bottom of the U-shaped slide 601 between the two side baffles 608, and a plurality of elastic springs 60 4 bottoms are fixedly connected to the top of the displacement frame 602; the displacement frame 602 is fixed with L-shaped plates 605 on both opposite outer sides, and the outer bottoms of the two L-shaped plates 605 are fixed with contact rods 606, and the bottoms of the two contact rods 606 are both dome-shaped, and a shift rod 607 is fixed to an outer side of an L-shaped plate 605; the breeding frame 302 is fixed with a path plate 312 that is in sliding contact with the contact rod 606 on both opposite outer sides, and the path plate 312 includes a first bottom plate 3121, and the first bottom plate 3121 is fixed with an oblique plate 3122 on both opposite sides, and the two oblique plates 3122 are fixed with a second bottom plate 3123 on both opposite sides; an L-shaped support plate 313 is fixed to an outer side of the breeding frame 301, and an inner side of the L-shaped support plate 313 is fixed A driving motor 314 is fixed, a rotating arm 315 is fixed to the output shaft of the driving motor 314, and a toggle rod 316 is fixed to the side of the rotating arm 315; a base plate 317 is fixed to the other outer side of the breeding frame 301, a vertical rod 318 is fixed to the top of the base plate 317, and two symmetrical limit grooves 319 are provided on the side of the vertical rod 318; a sliding sleeve 320 is slidably matched with the side of the vertical rod 318, and two symmetrical limit rails 321 are fixed on the inner wall of the sliding sleeve 320, and the two limit rails 321 are slidably matched with the two limit grooves 319 respectively; a lifting plate 322 is fixed to the outer side of the sliding sleeve 320, and two groups of inclined guide grooves 323 are provided on the side of the lifting plate 322 in a linear array, and the number of each group of inclined guide grooves 323 There are two of them, and the two oblique guide grooves 323 are symmetrically distributed; the oblique guide grooves 323 are in sliding cooperation with the toggle rod 607; an extension plate 327 is fixed on the side of the lifting plate 322 near the bottom, and a rectangular frame 324 is fixed on the side of the extension plate 327 for sliding cooperation with the toggle rod 316; a plurality of magnetic plates 325 are fixed on the inner side of the breeding frame 302, and an arc plate 326 is fixed on the top of the magnetic plate 325; the breeding part 7 includes a breeding frame 701 that is snap-fitted between the plurality of arc plates 326, and a metal mesh 702 is provided on the bottom inner of the breeding frame 701, and the aperture of the metal mesh 702 is smaller than the outer diameter of the blood wheat seeds, and a plurality of magnets 703 are fixed on the side of the breeding frame 701 that are respectively adsorbed and positioned with the plurality of magnetic plates 325.
[0038] The specific application of the second embodiment is as follows: in the process of planting and cultivating blood wheat seeds, the blood wheat seeds that have been processed in advance are poured into the cultivation frame 701 that is adsorbed and positioned between a plurality of arc-shaped plates 326, and thereby the blood wheat seeds poured into the cultivation frame 701 are respectively located on the opposite sides of the two horizontal push members 6 that are reciprocatingly slidably fitted between the two rectangular grooves 311 (the initial position is that the two horizontal push members 6 that are respectively reciprocatingly slidably fitted above the cultivation frame 701 are close to each other, for details, please refer to Figure 2), then, the driving motor 314 is started, driving the rotating arm 315 fixed to its output shaft to rotate, so that the toggle rod 316 fixed to the side of the rotating arm 315 slides back and forth inside the rectangular frame 324, thereby driving the sliding sleeve 320 to synchronously reciprocate up and down on the peripheral side of the vertical rod 318 (when the sliding sleeve 320 synchronously reciprocates up and down on the peripheral side of the vertical rod 318, the two limiting rails 321 respectively cooperate with the two limiting grooves 319 to prevent the sliding sleeve 320 from rotating in the circumferential direction when it reciprocates up and down), so that the lifting plate 322 fixed to the outer peripheral surface of the sliding sleeve 320 moves up and down synchronously, so that the toggle rods 6 respectively provided in the two horizontal push members 6 07 will synchronously slide back and forth in the left and right directions inside a group of symmetrically arranged inclined guide grooves 323, thereby driving the two horizontal push members 6 to synchronously move back and forth in the left and right directions inside the two rectangular grooves 311. When the two horizontal push members 6 synchronously move back and forth in the left and right directions inside the two rectangular grooves 311, the contact rods 606 respectively provided on the two horizontal push members 6 will simultaneously slide back and forth left and right above the path plate 312. When the contact rods 606 slide back and forth left and right above the path plate 312, in the initial stage, the two horizontal push members 6 slide from the middle position to the two side positions of the breeding member 7 respectively. At this time, the contact rods 606 move from the top of the first bottom plate 3121 toward the inclined portion of the inclined plate 3122. When the contact rod 606 slides from the top of the first bottom plate 3121 to the inclined surface of the inclined plate 3122, the several elastic springs 604 fixedly connected between the U-shaped slide plate 601 and the displacement frame 602 are compressed, and the displacement frame 602 slidingly matched between the baffles 608 on both sides moves upward synchronously until the contact rod 606 slides from the inclined surface of the inclined plate 3122 to the top of the second bottom plate 3123, and the push plate 603 fixedly connected to the bottom of the displacement frame 602 moves up a distance (at this time, the distance between the push plate 603 and the metal mesh 702 is slightly larger than the size of the blood wheat seeds). In this way, as the two push members 6 slide from the middle position to the two side positions of the breeding member 7, the seeds stacked on the two push members 6 are pushed upward. The blood wheat seeds on the opposite side of the member 6 are spread and pushed. When the contact rod 606 slides from the top of the first bottom plate 3121 to the inclined plate 3122, and then slides from the inclined plate 3122 to the second bottom plate 3123, the two push members 6 continue to move away from each other above the breeding member 7 until the push plate 603 moves to the inner side close to the breeding frame 701. The two push members 6 begin to gradually approach each other, and move back and forth synchronously, so that the two push members 6 move back and forth above the breeding member 7, so that the piled blood wheat seeds are evenly spread on the surface of the metal mesh 702, so as to carry out the later breeding and cultivation work, avoid excessive accumulation of blood wheat seeds in a certain area, and prevent it from affecting the later breeding and cultivation process.
[0039] Obviously, the embodiments described above are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of the present invention.
[0040] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, tasks, devices, components and / or combinations thereof.
[0041] It should be noted that the terms "first," "second," and the like in the specification and claims of this application and the accompanying drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or precedence. It should be understood that the terms used in this manner are interchangeable where appropriate, so that the embodiments of the present application described herein can be implemented in an order other than that illustrated or described herein.
[0042] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that various modifications and variations of the present invention are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention are intended to be within the scope of protection of the present invention.
[0043] The above description is merely a preferred embodiment of the present invention. The scope of protection of the present invention is not limited to the above embodiment. All technical solutions based on the concept of the present invention are within the scope of protection of the present invention. It should be noted that for those skilled in the art, various improvements and modifications that do not depart from the principles of the present invention should also be considered within the scope of protection of the present invention.
Claims
1. A breeding system for blood wheat cultivation, comprising a breeding component (1), characterized in that: A plurality of buoyancy components (2) are slidably arranged on the breeding component (1); The breeding component (1) comprises a frame member (3), the buoyancy component (2) comprises a buoyancy member (4) slidably fitted on the frame member (3) and a spoiler (5) slidably fitted on the buoyancy member (4), the spoiler (5) slidably fitted on the frame member (3); The frame member (3) includes a breeding frame (301), a plurality of breeding frames (302) are fixed inside the breeding frame (301), liquid storage boxes (303) are fixed on the two opposite outer sides of the breeding frame (302), a liquid inlet groove (304) is opened through the outer top of the liquid storage box (303), a baffle (305) is fixed on the outer top of the liquid storage box (303), a guide rod (306) is fixed on the side of the baffle (305), and the breeding frame (302) is connected to the liquid storage box (303) through the two opposite inner sides. A liquid circulation tube (307) is provided, and a liquid outlet groove is provided on the side surface of the two liquid circulation tubes (307) located inside the breeding frame (302). One end of the liquid circulation tube (307) extends through the liquid storage box (303). A plurality of liquid inlets (308) are provided on the surface of the liquid circulation tube (307) located inside the liquid storage box (303). Two symmetrical sets of top plates (309) are fixed to the top of the breeding frame (302), and a guide hole (310) is provided through the top of the top plate (309); The buoyancy member (4) comprises a plurality of vertical rods (401) that are slidably fitted inside the guide hole (310), a buoyancy ball (402) being fixed to the bottom of the vertical rods (401), a movable plate (403) being fixed to the top of the plurality of vertical rods (401), and two symmetrical L-shaped sliding rods (404) being fixed to the top of the movable plate (403), the ends of the two L-shaped sliding rods (404) being both dome-shaped, and the two L-shaped sliding rods (404) are both slidably fitted with the spoiler (5).
2. The breeding system for blood wheat planting according to claim 1, characterized in that: The spoiler (5) includes a plurality of piston rods (501) that are slidably fitted inside the liquid circulation tube (307), a T-shaped plate (502) is fixed to the end of the plurality of piston rods (501), a special-shaped plate (503) that is slidably fitted outside the liquid storage tank (303) is fixed to the top of the T-shaped plate (502), two symmetrical trapezoidal vertical plates (504) are fixed to the side of the special-shaped plate (503), and oblique grooves (505) are formed on the side of the two trapezoidal vertical plates (504), and the two oblique grooves (505) are slidably fitted with two L-shaped sliding rods (404) respectively; A sliding hole (506) is provided at the center of the special-shaped plate (503) and is slidably engaged with the guide rod (306). A return spring (507) is fixed between the special-shaped plate (503) and the baffle (305) and is sleeved and engaged with the guide rod (306).
3. A breeding system for blood wheat planting according to claim 2, characterized in that: A connecting plate (508) is fixed between the piston rods (501), and a spoiler inclined plate (509) is fixed at the bottom of the connecting plate (508) and is slidably fitted inside the liquid storage box (303). A spoiler hole (510) is opened through the side of the spoiler inclined plate (509).
4. The breeding system for blood wheat planting according to claim 3, characterized in that: The frame member (3) is provided with a plurality of push members (6) and a plurality of breeding members (7) positioned by adsorption inside the frame member (3) in a reciprocating sliding manner; The breeding frame (302) is provided with rectangular grooves (311) extending through two opposite outer sides. The horizontal push member (6) comprises a U-shaped slide plate (601) that is slidably fitted between the two rectangular grooves (311); two side baffles (608) that are slidably fitted between the two rectangular grooves (311) are fixed to the outer bottom of the U-shaped slide plate (601); a displacement frame (602) is slidably fitted between the two side baffles (608); and a horizontal push plate (603) is fixed to the bottom of the displacement frame (602).
5. The breeding system for blood wheat planting according to claim 4, characterized in that: A plurality of elastic springs (604) are fixed on the outer bottom of the U-shaped slide plate (601) between the baffles (608) on both sides, and the bottoms of the plurality of elastic springs (604) are fixedly connected to the top of the displacement frame (602); L-shaped plates (605) are fixed to the two opposite outer sides of the displacement frame (602), contact rods (606) are fixed to the outer bottoms of the two L-shaped plates (605), and the bottoms of the two contact rods (606) are both dome-shaped. A shifting rod (607) is fixed to one outer side of one of the L-shaped plates (605).
6. The breeding system for blood wheat planting according to claim 5, characterized in that: The breeding frame (302) is fixed with a path plate (312) on both sides thereof, which is in sliding contact with the contact rod (606). The path plate (312) includes a first bottom plate (3121). The first bottom plate (3121) is fixed with an oblique plate (3122) on both sides thereof. The two oblique plates (3122) are fixed with a second bottom plate (3123) on both sides thereof. An L-shaped support plate (313) is fixed to an outer side of the breeding frame (301), a driving motor (314) is fixed to an inner side of the L-shaped support plate (313), a rotating arm (315) is fixed to an output shaft of the driving motor (314), and a toggle rod (316) is fixed to a side of the rotating arm (315).
7. The breeding system for blood wheat planting according to claim 6, characterized in that: A base plate (317) is fixed to the other outer side of the breeding frame (301), a vertical rod (318) is fixed to the top of the base plate (317), and two symmetrical limiting grooves (319) are formed on the side surface of the vertical rod (318); The side surface of the vertical rod (318) is slidably engaged with a sliding sleeve (320), and the inner wall of the sliding sleeve (320) is fixed with two symmetrical limiting rails (321), and the two limiting rails (321) are slidably engaged with the two limiting grooves (319) respectively.
8. The breeding system for blood wheat planting according to claim 7, characterized in that: A lifting plate (322) is fixed to the outer peripheral side of the sliding sleeve (320), and two groups of inclined guide rail grooves (323) are opened on the side of the lifting plate (322) in a linear array, with each group of the inclined guide rail grooves (323) having two in number, and the two inclined guide rail grooves (323) are symmetrically distributed; The inclined guide rail groove (323) is slidably engaged with the shifting rod (607); An extension plate (327) is fixed on the side of the lifting plate (322) near the bottom, and a rectangular frame (324) that is slidably engaged with the toggle rod (316) is fixed on the side of the extension plate (327).
9. The breeding system for blood wheat planting according to claim 8, characterized in that: A plurality of magnetic plates (325) are fixed to the inner side surface of the breeding frame (302), and an arc-shaped plate (326) is fixed to the top of the magnetic plate (325); The breeding piece (7) comprises a breeding frame (701) that is snap-fitted between a plurality of arc-shaped plates (326); a metal mesh (702) is provided at the bottom of the breeding frame (701); the aperture of the metal mesh (702) is smaller than the outer diameter of the blood wheat seeds; and a plurality of magnets (703) are fixed to the side surface of the breeding frame (701) and are respectively attracted to and positioned by a plurality of magnetic plates (325).