A device for breeding ice grass seeds
By designing automated ice grass seed propagation equipment, watering and sowing are coordinated, solving the problems of easy seed scattering and uneven soil in traditional equipment, improving seed survival rate and soil compaction effect, and enhancing the automation and scale of ice grass propagation.
Patent Information
- Application Number
- CN202511195603.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-26
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2045-08-26
AI Technical Summary
Existing ice grass seed propagation equipment has a low degree of automation, lacks coordinated design for watering and sowing, which easily leads to seed scattering or deep burial, uneven soil treatment, affecting germination rate and seedling growth, and has insufficient environmental adaptability, thus restricting the efficiency and quality of large-scale propagation.
A seed propagation device for ice grass, comprising an H-shaped workbench, a propagation mechanism, and auxiliary mechanisms, was designed. The device achieves automated coordination of watering and sowing through a motor-driven moving platform, controls seed release using a magnetic ring and a sliding frame, enhances soil saturation and compaction by combining a squeezing bladder and an expansion bladder, and dynamically adjusts the height of the planting tube to optimize light exposure.
It significantly improves the automation level and operational stability of the equipment, enhances seed survival rate, avoids seed waste, and improves the compaction effect of the nutrient soil, thereby improving the efficiency and quality of ice grass propagation.
Smart Images

Figure CN120677953B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of plant breeding equipment, in particular to an agrostis seed breeding equipment. BACKGROUND
[0002] In the field of plant breeding, as a plant with ecological and economic value, the efficiency and quality of agrostis seed breeding directly affect population expansion and application promotion. Agrostis seed breeding equipment, as a key equipment for realizing large-scale breeding, needs to integrate functions such as seeding, watering, and soil treatment, and ensure the suitable conditions for seed germination and growth through automation. The performance of such equipment not only relates to the success rate of breeding, but also affects the uniformity of agrostis seedlings and subsequent growth, and is an important technical support for promoting agrostis industrial planting.
[0003] The existing agrostis seed breeding equipment has many limitations. In terms of automation, traditional equipment relies on manual step-by-step watering and seeding, which is tedious and inefficient, and cannot guarantee the continuity and standardization of the process, increasing labor costs and time consumption. In terms of seed processing, the watering and seeding stages of traditional equipment lack collaborative design, which can easily cause the seeds to be washed away or buried deeply, resulting in reduced germination rate and seed waste. The soil treatment effect is not good, and the nutrient soil is easy to form cavities or uneven distribution after watering, affecting seedling root development, and lacking targeted tamping mechanism, further restricting seedling growth. In addition, the adaptability of traditional equipment to planting environment is insufficient, and the height of planting pipe cannot be dynamically adjusted according to the breeding stage to optimize the light conditions, and the water supply relies on manual operation, which is low in automation, and restricts the efficiency and quality of large-scale agrostis seed breeding. SUMMARY
[0004] (I) Technical problems solved
[0005] The present application provides an agrostis seed breeding equipment, which solves the problems mentioned in the background.
[0006] (II) Technical solutions
[0007] To achieve the above purpose, the present application is implemented by the following technical solutions: an agrostis seed breeding equipment, comprising a workbench, the cross section of the workbench is H-shaped, further comprising: a breeding mechanism fixedly installed on the workbench; an auxiliary mechanism fixedly installed on the breeding mechanism; wherein the breeding mechanism comprises a mounting bracket, the mounting bracket is slidingly inserted into the upper surface of the middle part of the workbench, the top inner surface of the mounting bracket is fixedly connected with a mounting strip, the cross section of the mounting strip is V-shaped, a through groove is formed in the upper surface of the mounting strip, the inner surface of the through groove is fixedly connected with a corrugated ring, the corrugated ring is set as a rubber ring, the inner side of the corrugated ring is fixedly connected with a planting pipe, and the inside of the planting pipe is filled with nutrient soil.
[0008] According to one of the embodiments of the present application, the upper surfaces of the two sides of the workbench are symmetrically connected with driving rods, the driving rods are provided as threaded rods, the two driving rods are connected through a transmission belt, the ends of the driving rods are rotatably connected with motors, the motors are fixedly installed on the upper surfaces of the edges of the workbench, the driving rods are threadedly connected with moving seats, the bottom surfaces of the moving seats are slidably connected to the upper surfaces of the two sides of the workbench, the upper surfaces of the moving seats are fixedly connected with moving rods, and the top lower surfaces of the moving rods are fixedly connected with moving tables through bolts.
[0009] According to one of the embodiments of the present application, the inside of the workbench is provided with a mounting groove, the cross section of the mounting groove is provided as a concave type, a connecting plate is slidably connected in the mounting groove, the two ends of the connecting plate are fixedly connected to the bottom surfaces of the two moving seats, the inside of the mounting groove is fixedly filled with a water bag, the water bag is fixedly connected to the side surface of the connecting plate, one end of the water bag away from the connecting plate is fixedly connected with a water inlet pipe, and the side of the water bag away from the water inlet pipe is fixedly connected with a water outlet pipe, wherein the water inlet pipe and the water outlet pipe are respectively provided with one-way valves.
[0010] According to one of the embodiments of the present application, a water collecting groove is formed in the wall of the moving table, the top of the water collecting groove is fixedly connected with a water guide pipe, the water guide pipe is communicated with the water outlet pipe through a hose, and the two sides of the water collecting groove are respectively provided with openings.
[0011] According to one of the embodiments of the present application, a storage groove is formed in the upper surface of the side of the moving table away from the water collecting groove, the bottom of the storage groove is connected with a discharge port, the width of the discharge port is smaller than the width of the storage groove, a fitting groove is formed in the wall of the side of the moving table away from the water collecting groove, a sliding frame is elastically and slidably connected in the fitting groove, the sliding frame is initially arranged on the side of the fitting groove close to the water collecting groove, and the bottom of the sliding frame is provided as a plate type, wherein the bottom of the sliding frame initially blocks the discharge port.
[0012] According to one of the embodiments of the present application, auxiliary frames are symmetrically fixedly connected to the upper surfaces of the two sides of the workbench, slide rods are fixedly connected to the inner surfaces of the tops of the auxiliary frames, the slide rods pass through the moving table, the top of the sliding frame is slidably sleeved on the slide rod, a magnet ring is fixedly embedded on the slide rod, and the magnet ring is provided with seven magnets at a fixed interval around the slide rod.
[0013] According to one of the embodiments of the present application, the auxiliary mechanism comprises friction plates symmetrically and frictionally connected to the upper surfaces on both sides of the workbench, the friction plates are simultaneously sleeved on the driving rods, one side surface of the friction plates close to the moving base is fixedly connected with extrusion capsules, one end of the extrusion capsules away from the friction plates is fixedly connected to the side surface of the moving base, the middle upper surface of the connecting plate is rotatably connected with a poking plate, the middle upper surface of the workbench is provided with a limiting groove, the poking plate is arranged in the limiting groove, the bottom surface of the poking plate is fixedly connected with an expansion capsule, the bottom of the expansion capsule is fixedly connected to the middle upper surface of the connecting plate, the bottom of the expansion capsule is fixedly connected with a communication pipe, the communication pipe is communicated with the inner cavity of the extrusion capsule through a hose.
[0014] According to one of the embodiments of the present application, the bottom outer surface of the planting pipe is fixedly sleeved with a driving ring, the upper surface of the driving ring is fixedly connected with a telescopic ring, the telescopic ring is sleeved on the outer side of the planting pipe, the top of the telescopic ring is reserved with an interface, the top of the telescopic ring is fixedly connected with a connecting ring, the two sides of the connecting ring are rotatably connected to the bottom surface of the mounting strip, and the inner surface of the connecting ring is simultaneously and slidably connected to the outer surface of the planting pipe.
[0015] According to one embodiment of the present invention, elastic telescopic plates are symmetrically fixedly connected to the lower surfaces of both sides of the mounting strip. The internal cavity of the elastic telescopic plate is connected to the interface on the telescopic ring. Squeezing plates are symmetrically fixedly connected to the upper surfaces of both sides of the workbench. Sliding grooves are symmetrically opened on the lower surfaces of both sides of the mounting frame. The squeezing plates are aligned with the sliding grooves and simultaneously with the elastic telescopic plates. When it is necessary to propagate ice grass, the mounting frame along with the planting tube filled with nutrient soil can be pushed and inserted into the upper surface of the workbench. Then, the motor is started, and the motor starts to drive the drive rod to start rotating. With the rotation of the two drive rods, the movable seats on both sides of the workbench move along the edge of the workbench. Then, the movable rod connected to the movable seat drives the movable platform to move above the mounting frame. As the movable seat moves, it simultaneously drives the connecting plate to slide in the mounting groove in the workbench. Then, the movement of the connecting plate squeezes the water bladder. When the water bladder is squeezed, the water stored inside is introduced into the water collection tank in the movable platform through the water outlet pipe. Finally, the water is released downwards through both sides of the water collection tank and flows into the planting tube through the inclined surface of the upper surface of the mounting strip. Then, the forward rotation of the motor drives the moving platform to move horizontally along the top of the mounting strip, adding water to the nutrient soil in the planting tube, so that the ice grass seeds sown later have a good germination environment. When the moving platform can no longer move forward, the motor starts to rotate in reverse, thus driving the moving platform to move in the opposite direction and reset. At the same time, the moving platform always slides along the sliding rod, and the storage tank inside the moving platform stores ice grass seeds. Since the sliding frame in the fitting groove inside the moving platform is also slidably connected to the sliding rod, when the moving platform moves in the opposite direction and resets, the sliding frame will slide along the sliding rod. When the sliding frame slides to the magnetic ring on the sliding rod, it will be attracted and fixed to the magnetic ring due to magnetic attraction. At this time, as the moving platform continues to move, it means that the sliding frame slides along the fitting groove and moves in the opposite direction to the moving platform, thereby opening the discharge port at the bottom of the storage tank and releasing the ice grass seeds inside into the planting tube.
[0016] (III) Beneficial Effects
[0017] This invention provides a seed propagation device for icewort. It has the following beneficial effects:
[0018] (I) This ice grass seed propagation equipment automatically waters the planting tube when the moving platform moves forward and simultaneously sows the ice grass seeds when the moving platform moves in reverse to reset, which greatly improves the automation level of the equipment and reduces the planting time. When the moving platform resets, it will also pull the water bag to reset, making the water bag in a negative pressure state, and then automatically replenishing the water bag through the water inlet pipe, further improving the automation level of the equipment and reducing the difficulty of operating the equipment.
[0019] (II) This icewort seed propagation equipment maintains a constant sliding frame that blocks the discharge port within the moving platform during forward movement, opening only during reverse movement. This significantly improves the equipment's operational stability and allows for separate watering and sowing processes. Watering before sowing prevents seeds from being washed away or buried deeply, greatly increasing the seed survival rate and avoiding seed waste. Furthermore, during forward movement to water the planting tube, the moving seat compresses the compression bladder, creating high pressure. This pressure is then introduced into the expansion bladder through the connecting pipe, causing it to expand and push the oscillating plate upwards. When the squeezing bladder can no longer be squeezed, it will synchronously drive the friction plate to slide along the upper surfaces of both sides of the workbench. At this time, the raised actuating plate will start to squeeze and actuate the bottom of the planting tube, and reset and shake when the actuating plate passes the bottom of the planting tube. Finally, the bottoms of adjacent planting tubes will collide relative to each other. At the same time, the nutrient soil in the planting tube is being watered. This not only improves the saturation rate of the nutrient soil, but also uses the relative impact of the planting tubes to generate a settling vibration force on the moistened nutrient soil, making the nutrient soil more compact. This prevents the formation of cavities in the nutrient soil from affecting the subsequent root development and nutrient absorption of the ice grass seeds, and greatly improves the propagation effect of ice grass.
[0020] (III) In this ice grass seed propagation equipment, when the mounting frame begins to gradually connect with the worktable, the extrusion plate on the upper surface of the worktable gradually enters the groove at the bottom of the mounting frame. Through the continuous introduction of the mounting frame, the extrusion plate begins to compress the elastic telescopic plate at the bottom of the mounting strip at the top of the mounting frame, thereby compressing the internal cavity of the elastic telescopic plate and transmitting its internal air pressure to the telescopic ring below the connecting ring. This causes the telescopic ring to expand downward, pushing the drive ring downward, thus pulling the planting tube downward. After the mounting frame is disconnected from the worktable after sowing, the telescopic ring resets through the reset of the elastic telescopic plate, which drives the planting tube to move upward and protrude out of the through groove. This achieves automatic downward movement of the planting tube during sowing to facilitate water inflow. At the same time, when the mounting frame is removed after sowing, the planting tube automatically moves upward and protrudes out of the through groove, increasing the height of the top of the planting tube and thus increasing the area of ice grass seeds in contact with sunlight. This avoids the problem of the planting tube always being at the bottom of the through groove, which affects the development of ice grass seeds. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0022] Figure 2 This is a schematic diagram of the mounting bracket and its connection structure of the present invention;
[0023] Figure 3 This is a cross-sectional structural diagram of the mounting bracket of the present invention;
[0024] Figure 4 This is a schematic diagram of the planting tube and its connection structure of the present invention;
[0025] Figure 5 This is a schematic diagram of the internal structure of the workbench of the present invention;
[0026] Figure 6 This is a schematic diagram of the structure of the mobile station of the present invention;
[0027] Figure 7 This is a schematic diagram of the toggle plate and its connection structure of the present invention;
[0028] Figure 8 This is a schematic diagram of the connecting ring and its connecting structure of the present invention.
[0029] In the diagram: 1. Workbench; 2. Breeding mechanism; 21. Mounting frame; 22. Mounting strip; 23. Through slot; 24. Corrugated ring; 25. Planting tube; 26. Drive rod; 27. Motor; 28. Moving base; 29. Moving rod; 210. Moving platform; 211. Mounting slot; 212. Connecting plate; 213. Water bladder; 214. Water inlet pipe; 215. Water outlet pipe; 216. Water collection tank; 217. Water guide pipe; 218. 219. Storage tank; 220. Discharge port; 221. Fitting groove; 222. Sliding frame; 223. Auxiliary frame; 224. Sliding rod; 225. Magnetic ring; 36. Auxiliary mechanism; 37. Friction plate; 38. Squeezing bladder; 39. Actuating plate; 30. Limiting groove; 310. Expansion bladder; 321. Connecting pipe; 332. Drive ring; 34. Telescopic ring; 35. Connecting ring; 36. Elastic telescopic plate; 37. Squeezing plate; 38. Squeezing plate; 39. Sliding groove. Detailed Implementation
[0030] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0031] First embodiment: as follows Figures 1 to 8 As shown, the present invention provides a technical solution: a seed propagation device for icewort, including a workbench 1, the cross-section of which is H-shaped, and further comprising:
[0032] Breeding facility 2 is fixedly installed on workbench 1;
[0033] Auxiliary mechanism 3 is fixedly installed on breeding mechanism 2;
[0034] The breeding mechanism 2 includes a mounting frame 21, which is slidably inserted into the upper middle surface of the workbench 1. A mounting strip 22 is fixedly connected to the inner top surface of the mounting frame 21. The mounting strip 22 has a V-shaped cross section. A through groove 23 is opened through the upper surface of the mounting strip 22. A corrugated ring 24 is fixedly connected to the inner surface of the through groove 23. The corrugated ring 24 is a rubber ring. A planting tube 25 is fixedly connected to the inner side of the corrugated ring 24. The inside of the planting tube 25 is filled with nutrient soil.
[0035] The upper surfaces of both sides of the worktable 1 are symmetrically connected to drive rods 26, which are threaded rods. The two drive rods 26 are connected by a transmission belt. The ends of the drive rods 26 are rotatably connected to motors 27, which are fixedly installed on the upper edge of the worktable 1. The drive rods 26 are connected to movable seats 28 by threads. The bottom surface of the movable seats 28 is slidably connected to the upper surfaces of both sides of the worktable 1. The upper surface of the movable seats 28 is fixedly connected to a movable rod 29, and the top and lower surface of the movable rod 29 is fixedly connected to a movable table 210 by bolts.
[0036] The workbench 1 has an installation groove 211 inside, and the cross-section of the installation groove 211 is concave. A connecting plate 212 is slidably connected inside the installation groove 211. The two ends of the connecting plate 212 are respectively fixedly connected to the bottom surfaces of two movable seats 28. The installation groove 211 is fixedly filled with a water bladder 213. The water bladder 213 is fixedly connected to the side surface of the connecting plate 212. The end of the water bladder 213 away from the connecting plate 212 is fixedly connected to a water inlet pipe 214. The side of the water bladder 213 away from the water inlet pipe 214 is fixedly connected to a water outlet pipe 215. The water inlet pipe 214 and the water outlet pipe 215 are respectively equipped with a one-way valve.
[0037] A water collection tank 216 is provided in the wall of the mobile platform 210. A water guide pipe 217 is fixedly connected to the top of the water collection tank 216. The water guide pipe 217 is connected to the water outlet pipe 215 through a flexible hose. Openings are provided on both sides of the water collection tank 216.
[0038] A storage trough 218 is provided on the upper surface of the side of the moving platform 210 away from the water collection tank 216. The bottom of the storage trough 218 is connected to the discharge port 219, wherein the width of the discharge port 219 is smaller than the width of the storage trough 218. A fitting groove 220 is provided in the wall of the moving platform 210 away from the water collection tank 216. A sliding frame 221 is elastically slidably connected in the fitting groove 220. The sliding frame 221 is initially set on the side of the fitting groove 220 close to the water collection tank 216. The bottom of the sliding frame 221 is plate-shaped, and the bottom of the sliding frame 221 initially blocks the discharge port 219.
[0039] Auxiliary frames 222 are symmetrically fixedly connected to the upper surfaces of both sides of the workbench 1. A slide rod 223 is fixedly connected to the inner top surface of the auxiliary frame 222. The slide rod 223 passes through the moving table 210. The top of the sliding frame 221 is slidably sleeved on the slide rod 223. A magnetic ring 224 is fixedly embedded on the slide rod 223. Seven magnetic rings 224 are arranged at fixed intervals around the slide rod 223.
[0040] Second embodiment: as follows Figures 1 to 8 As shown, the auxiliary mechanism 3 includes a friction plate 31, which is symmetrically and slidably connected to the upper surfaces of both sides of the worktable 1. The friction plate 31 is also slidably sleeved on the drive rod 26. A compression bladder 32 is fixedly connected to the side surface of the friction plate 31 near the moving seat 28. The end of the compression bladder 32 away from the friction plate 31 is fixedly connected to the side surface of the moving seat 28. A toggle plate 33 is rotatably connected to the upper surface of the middle part of the connecting plate 212. A limit groove 34 is opened on the upper surface of the middle part of the worktable 1, in which the toggle plate 33 is set. An expansion bladder 35 is fixedly connected to the bottom surface of the toggle plate 33. The bottom of the expansion bladder 35 is fixedly connected to the upper surface of the middle part of the connecting plate 212. A connecting pipe 36 is fixedly connected to the bottom of the expansion bladder 35. The connecting pipe 36 is connected to the internal cavity of the compression bladder 32 through a flexible hose.
[0041] A drive ring 37 is fixedly sleeved on the bottom outer surface of the implantation tube 25. A telescopic ring 38 is fixedly connected to the upper surface of the drive ring 37. The telescopic ring 38 is sleeved on the outside of the implantation tube 25. An interface is reserved at the top of the telescopic ring 38. A connecting ring 39 is fixedly connected to the top of the telescopic ring 38. The two sides of the connecting ring 39 are rotatably connected to the bottom surface of the mounting strip 22. The inner surface of the connecting ring 39 is simultaneously slidably connected to the outer surface of the implantation tube 25.
[0042] Elastic telescopic plates 310 are symmetrically fixedly connected to the lower surfaces of both sides of the mounting strip 22. The internal cavity of the elastic telescopic plate 310 is connected to the interface on the telescopic ring 38. Extrusion plates 311 are symmetrically fixedly connected to the upper surfaces of both sides of the workbench 1. Slide grooves 312 are symmetrically opened on the lower surfaces of both sides of the mounting frame 21. The extrusion plate 311 is aligned with the slide groove 312 and simultaneously aligned with the elastic telescopic plate 310.
[0043] When propagating ice grass, the mounting frame 21, along with the planting tube 25 filled with nutrient soil, is pushed and inserted onto the upper surface of the workbench 1. Then, the motor 27 is started, causing the drive rods 26 to rotate. The rotation of the two drive rods 26 causes the movable seats 28 on both sides of the workbench 1 to move along the edge of the workbench 1. This, in turn, causes the movable platform 210 to move above the mounting frame 21 via the movable rods 29 connected to the movable seats 28. As the movable seats 28 move, the connecting plate 212 slides in the mounting groove 211 within the workbench 1. The movement of the connecting plate 212 then compresses the water bladder 213, causing the water stored inside to flow through the outlet pipe 21. 5. Water is introduced into the water collection tank 216 in the moving platform 210, and finally released downwards through both sides of the water collection tank 216 and flows into the planting tube 25 through the inclined surface of the upper surface of the mounting strip 22. Then, the forward rotation of the motor 27 drives the moving platform 210 to move horizontally along the top of the mounting strip 22, adding water to the nutrient soil in the planting tube 25, so that the subsequently sown ice grass seeds have a good germination environment. When the moving platform 210 can no longer move forward, the motor 27 is started to rotate in reverse, thus driving the moving platform 210 to move in the reverse direction and reset. At the same time, the movement of the moving platform 210 always slides along the slide bar 223, and the storage tank 218 in the moving platform 210 stores ice grass seeds. Also, because the sliding frame 2 in the fitting groove 220 in the moving platform 210... Simultaneously, the sliding frame 221 is slidably connected to the slide rod 223. That is, when the moving platform 210 moves in the reverse direction to reset, the sliding frame 221 will slide along the slide rod 223. When the sliding frame 221 slides to the magnetic ring 224 on the slide rod 223, it will be attracted and fixed to the magnetic ring 224 due to magnetic attraction. At this time, as the moving platform 210 continues to move, the sliding frame 221 slides along the fitting groove 220 and moves in the opposite direction to the moving platform 210, thereby opening the discharge port 219 at the bottom of the storage tank 218 and releasing the ice grass seeds inside downward into the planting tube 25. This achieves automatic watering of the planting tube 25 when the moving platform 210 moves in the forward direction and synchronous watering when the moving platform 210 moves in the reverse direction to reset. The process of sowing and planting ice grass seeds significantly improves the automation level of this equipment, reduces planting time, and simultaneously pulls the water bladder 213 back to its original position when the moving platform 210 resets, creating a negative pressure state inside the water bladder 213. This allows for automatic water replenishment into the water bladder 213 through the water inlet pipe 214, further enhancing the automation level and reducing the difficulty of operation. Furthermore, the sliding frame 221 remains stationary while the moving platform 210 moves forward, sealing the discharge port 219 inside the moving platform 210, only opening it during reverse movement. This significantly improves the operational stability of the equipment. It also separates soil watering and sowing, and by watering before sowing, it prevents seeds from being washed away or buried too deeply, greatly improving the seed survival rate.This avoids wasting ice plant seeds. Simultaneously, while the moving platform 210 moves forward to water the planting tube 25, the moving seat 28 begins to compress the compression bladder 32, creating a high-pressure state inside. This pressure is then introduced into the expansion bladder 35 through the connecting pipe 36, causing the expansion bladder 35 to expand and push the oscillating plate upwards. When the compression bladder 32 can no longer be compressed, it synchronously drives the friction plate 31 to slide along both sides of the upper surface of the worktable 1. At this time, the raised actuating plate 33 begins to water the planting tube 25. The bottom of the tube is squeezed and pushed, and when the pushing plate 33 passes the bottom of the planting tube 25, it is reset and shaken, ultimately causing the bottoms of adjacent planting tubes 25 to collide relative to each other. Combined with the watering of the nutrient soil inside the planting tube 25 at this time, this not only increases the saturation rate of the nutrient soil, but also uses the relative impact of the planting tubes 25 to generate a settling vibration force on the moistened nutrient soil, making the nutrient soil more compacted. This prevents the formation of cavities inside the nutrient soil from affecting the subsequent root development and nutrient absorption of the ice grass seeds, significantly improving the propagation effect of ice grass. Meanwhile, on the mounting frame 21... As the device initially begins to connect with the workbench 1, the extrusion plate 311 on the upper surface of the workbench 1 gradually enters the groove 312 at the bottom of the mounting bracket 21. Through the continuous insertion of the mounting bracket 21, the extrusion plate 311 begins to compress the elastic telescopic plate 310 at the bottom of the top mounting strip 22 of the mounting bracket 21. This compresses the internal cavity of the elastic telescopic plate 310 and transmits its internal air pressure to the telescopic ring 38 below the connecting ring 39, causing the telescopic ring 38 to expand downwards. This pushes the drive ring 37 downwards, thereby guiding the implantation tube 25 towards... Pulling down, and after the installation frame 21 is disengaged from the worktable 1, the telescopic ring 38 resets via the elastic telescopic plate 310, causing the planting tube 25 to move upward and protrude out of the through groove 23. This allows for automatic downward movement of the planting tube 25 during sowing to facilitate water flow. Simultaneously, when the installation frame 21 is removed after sowing, the planting tube 25 automatically moves upward and protrudes out of the through groove 23, increasing the height of the top of the planting tube 25 and thus increasing the area of the ice grass seeds exposed to sunlight. This prevents the planting tube 25 from always being at the bottom of the through groove 23, which could negatively impact seed development.
[0044] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0045] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A seed propagation device for icewort, comprising a workbench (1), characterized in that: The workbench (1) has an H-shaped cross-section and also includes: A breeding facility (2) is fixedly installed on a workbench (1); Auxiliary mechanism (3), which is fixedly installed on the breeding mechanism (2); The breeding mechanism (2) includes a mounting frame (21), which is slidably inserted into the upper middle surface of the workbench (1). A mounting strip (22) is fixedly connected to the inner top surface of the mounting frame (21). The cross section of the mounting strip (22) is V-shaped. A through groove (23) is opened through the upper surface of the mounting strip (22). A corrugated ring (24) is fixedly connected to the inner surface of the through groove (23). The corrugated ring (24) is a rubber ring. A planting tube (25) is fixedly connected to the inner side of the corrugated ring (24). The planting tube (25) is filled with nutrient soil. The upper surfaces of both sides of the workbench (1) are symmetrically connected to drive rods (26), and the ends of the drive rods (26) are rotatably connected to motors (27). A movable seat (28) is threaded onto the drive rods (26), and a movable rod (29) is fixedly connected to the upper surface of the movable seat (28). A movable table (210) is fixedly connected to the top and lower surface of the movable rod (29) by bolts. The workbench (1) has an installation groove (211) inside, and a connecting plate (212) is slidably connected inside the installation groove (211). The installation groove (211) is fixedly filled with a water bladder (213). One end of the water bladder (213) away from the connecting plate (212) is fixedly connected to a water inlet pipe (214), and the other side of the water bladder (213) away from the water inlet pipe (214) is fixedly connected to a water outlet pipe (215). The water inlet pipe (214) and the water outlet pipe (215) are respectively equipped with a one-way valve. The mobile platform (210) has a water collection tank (216) in its wall, and a water guide pipe (217) is fixedly connected to the top of the water collection tank (216). The water guide pipe (217) is connected to the water outlet pipe (215) through a flexible hose. A storage tank (218) is provided on the upper surface of the side of the moving platform (210) away from the water collection tank (216). The bottom of the storage tank (218) is connected to the discharge port (219). A fitting groove (220) is provided in the wall of the moving platform (210) away from the water collection tank (216). A sliding frame (221) is elastically slidably connected in the fitting groove (220).
2. The ice plant seed propagation equipment according to claim 1, characterized in that: The drive rod (26) is configured as a threaded rod, wherein the two drive rods (26) are connected by a transmission belt, the motor (27) is fixedly installed on the upper surface of the edge of the workbench (1), and the bottom surface of the movable seat (28) is slidably connected to the upper surfaces of both sides of the workbench (1).
3. The ice plant seed propagation equipment according to claim 2, characterized in that: The cross-section of the mounting groove (211) is concave, and the two ends of the connecting plate (212) are respectively fixedly connected to the bottom surface of the two movable seats (28). The water bag (213) is fixedly connected to the side surface of the connecting plate (212).
4. The ice plant seed propagation equipment according to claim 3, characterized in that: The water collection tank (216) has openings on both sides.
5. The ice plant seed propagation equipment according to claim 4, characterized in that: The width of the discharge port (219) is smaller than the width of the storage tank (218). The sliding frame (221) is initially set on the side of the fitting groove (220) near the water collection tank (216). The bottom of the sliding frame (221) is plate-shaped, and the bottom of the sliding frame (221) initially blocks the discharge port (219).
6. The ice plant seed propagation equipment according to claim 5, characterized in that: Auxiliary frames (222) are symmetrically fixedly connected to the upper surfaces of both sides of the workbench (1). A slide rod (223) is fixedly connected to the inner top surface of the auxiliary frame (222). The slide rod (223) passes through the moving table (210). The top of the sliding frame (221) is slidably sleeved on the slide rod (223). A magnet ring (224) is fixedly embedded on the slide rod (223). The magnet ring (224) is arranged at seven fixed intervals around the slide rod (223).
7. The ice plant seed propagation equipment according to claim 6, characterized in that: The auxiliary mechanism (3) includes a friction plate (31), which is symmetrically and slidably connected to the upper surfaces of both sides of the worktable (1). The friction plate (31) is also slidably sleeved on the drive rod (26). A compression bladder (32) is fixedly connected to the side surface of the friction plate (31) near the moving seat (28). The end of the compression bladder (32) away from the friction plate (31) is fixedly connected to the side surface of the moving seat (28). The upper surface of the middle part of the connecting plate (212) rotates. A toggle plate (33) is connected to the workbench (1). A limiting groove (34) is opened on the upper middle surface of the workbench (1). The toggle plate (33) is set in the limiting groove (34). An expansion bladder (35) is fixedly connected to the bottom surface of the toggle plate (33). The bottom of the expansion bladder (35) is fixedly connected to the upper middle surface of the connecting plate (212). A connecting pipe (36) is fixedly connected to the bottom of the expansion bladder (35). The connecting pipe (36) is connected to the internal cavity of the compression bladder (32) through a flexible hose.
8. The ice plant seed propagation equipment according to claim 7, characterized in that: A drive ring (37) is fixedly sleeved on the bottom outer surface of the implantation tube (25). A telescopic ring (38) is fixedly connected to the upper surface of the drive ring (37). The telescopic ring (38) is sleeved on the outside of the implantation tube (25). An interface is reserved at the top of the telescopic ring (38). A connecting ring (39) is fixedly connected to the top of the telescopic ring (38). The two sides of the connecting ring (39) are rotatably connected to the bottom surface of the mounting strip (22). The inner surface of the connecting ring (39) is simultaneously slidably connected to the outer surface of the implantation tube (25).
9. The ice plant seed propagation equipment according to claim 8, characterized in that: The lower surfaces of the two sides of the mounting strip (22) are symmetrically fixed with elastic telescopic plates (310). The internal cavity of the elastic telescopic plate (310) is connected to the interface on the telescopic ring (38). The upper surfaces of the two sides of the workbench (1) are symmetrically fixed with extrusion plates (311). The lower surfaces of the two sides of the mounting frame (21) are symmetrically provided with sliding grooves (312). The extrusion plate (311) is aligned with the sliding groove (312), and the extrusion plate (311) is also aligned with the elastic telescopic plate (310).
Citation Information
Patent Citations
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