Waxberry bacterial fertilizer and water mixed irrigation device

By designing a bayberry fertilizer-water mixed irrigation device that can mix water and bayberry fertilizer in proportion during the movement process, the problems of low artificial irrigation efficiency and high labor intensity in the prior art are solved, and efficient and stable irrigation effect is achieved.

CN120052140APending Publication Date: 2025-05-30ZHEJIANG TONGJI VOCATIONAL COLLEGE OF SCI & TECH +1
View PDF 6 Cites 0 Cited by

Patent Information

Application Number
CN202510275442.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-10
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

The existing bayberry fertilization water irrigation method requires a larger water tank and a car, making it difficult to enter areas that cannot be reached by large irrigation equipment, resulting in low manual irrigation efficiency and high labor intensity.

Method used

A mixed irrigation device for bayberry fertilizer and water is designed, including a mobile mixed irrigation mechanism and two water and fertilizer conveying mechanisms. It can mix water and bayberry fertilizer in proportion during the movement, and realize real-time mixing and adjustment of water at different locations through components such as peristaltic pump, connecting pipe, mixing tank, stirring leaf and spiral pressurized mixing fan blade.

Benefits of technology

The mixing of mobile fertilizer and water and the adjustment of watering at different locations is realized, which improves irrigation efficiency and plant nutrient absorption capacity. The device structure is simple and easy to use, and the mixing and watering are stable and reliable.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120052140A_ABST
    Figure CN120052140A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of irrigation, and discloses a myrica rubra bacterial fertilizer and water mixed irrigation device which comprises a movable mixed irrigation mechanism and two water and fertilizer conveying mechanisms, the movable mixed irrigation mechanism comprises a device base, a mounting seat is fixedly mounted at the top of the device base, and a mixing tank is fixedly mounted at the top of the mounting seat; peristaltic pumps are installed on the upper portions of the two sides of the mixing tank, inlet ports of the two peristaltic pumps are connected with connecting pipes, the two connecting pipes are fixedly connected with the surface of the mixing tank, and the ends, away from the peristaltic pumps, of the two connecting pipes are connected with the two water and fertilizer conveying mechanisms correspondingly to convey water and the waxberry bacterial fertilizer; the fertilizer and water mixed irrigation device for the waxberries has the functions of mobile fertilizer and water mixing and different-position adjusting irrigation, the fertilizer and water can be proportionally mixed in the device moving process through the mobile fertilizer and water mixing function, real-time material mixing in the irrigation process is achieved, and the use performance of the irrigation device is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention belongs to the technical field of irrigation, and specifically relates to a mixed irrigation device for bayberry bacterial fertilizer water. Background Art

[0002] Bayberry bacterial fertilizer water usually refers to the preparation of biological fertilizers or liquid fertilizers using bayberry bacteria. Such fertilizers utilize the decomposition ability and nutrient absorption ability of fungi to provide nutrients for plants; fungi such as bayberry bacteria can decompose organic substances in the soil, release essential nutrient elements for plants such as nitrogen, phosphorus, and potassium, provide fertilizers for plants, and can also improve the soil microbial community, increase soil biodiversity, and improve soil health; the fertilizer water made using fungi is generally environmentally friendly and reduces the harm of chemical fertilizers to the environment.

[0003] Preparation of bayberry bacterial fertilizer water: Soak fresh bayberry bacteria in water, usually soak for several days at room temperature to allow the bacteria to release nutrients, filter the soaked liquid to remove solid residues, then dilute according to requirements, and finally apply the fertilizer water to the roots or leaves of plants to promote plant growth; when using bayberry bacterial fertilizer water for irrigation, the prepared and mixed fertilizer water is usually loaded in a water tank, and then the crops are irrigated by moving the vehicle. This irrigation method requires a large water tank, and the vehicle matching the water tank also needs to be large. In some greenhouse planting areas, large irrigation equipment cannot enter, and at this time, manual dragging of water pipes for irrigation is required. Manual irrigation has low efficiency and high labor intensity; therefore, in view of the above problems, improvements are needed now. Summary of the Invention

[0004] To achieve the above object, the present invention provides the following technical solution: A bayberry bacterial fertilizer and water mixed irrigation device, including a mobile mixed irrigation mechanism and two water and fertilizer conveying mechanisms. Both water and fertilizer conveying mechanisms are connected to the mobile mixed irrigation mechanism, and the ends of the two water and fertilizer conveying mechanisms away from the mobile mixed irrigation mechanism are respectively connected to an external water source and a bayberry bacterial fertilizer storage tank. The two water and fertilizer conveying mechanisms are respectively used to convey water and bayberry bacterial fertilizer to the mobile mixed irrigation mechanism. The mobile mixed irrigation mechanism includes a device base. At the top of the device base, a mounting seat is fixedly installed. At the top of the mounting seat, a mixing tank is fixedly installed. At the upper parts on both sides of the mixing tank, peristaltic pumps are installed. The inlet ports of the two peristaltic pumps are both connected with connecting pipes. The two connecting pipes are both fixedly connected to the surface of the mixing tank, and the ends of the two connecting pipes away from the peristaltic pumps are respectively connected to the two water and fertilizer conveying mechanisms to convey water and bayberry bacterial fertilizer. At one end of the bottom of the device base, a connecting shaft is rotatably installed. At both ends of the connecting shaft, moving wheels are fixedly installed. At the middle of the end of the device base away from the connecting shaft, a direction control shaft is rotatably installed. The bottom of the direction control shaft extends to the bottom of the device base and is fixedly installed with an n-shaped seat. Inside the n-shaped seat, a roller is rotatably installed. At the top of the direction control shaft, a control handle is fixedly installed. At the top of the mounting seat, a storage battery and a suction pump connected to the mixing tank are installed. At the top of the mounting seat, two lifting adjustment members are installed on one side of the suction pump. In the middle of the two lifting adjustment members, metal pipes are installed. One end of each of the two metal pipes is connected to the suction pump, and the other ends of the two metal pipes are respectively installed with a nozzle and a corrugated adjustment pipe.

[0005] Preferably, a large bevel gear A is fixedly installed in the middle of the connecting shaft. On the surface of the mixing tank, a double-output shaft motor is installed. At both output ends of the double-output shaft motor, worm gears are installed. One of the worm gears extends to the bottom of the device base and is fixedly installed with a small bevel gear A meshing with the large bevel gear A, so as to provide power for the movement of the device.

[0006] Preferably, a transmission shaft is rotatably installed at the top of the mixing tank. At one end of the transmission shaft close to the other worm gear, a worm wheel A meshing with the other worm gear is fixedly installed. At the end of the transmission shaft away from the worm wheel A, a large bevel gear B is fixedly installed. At the top of the mixing tank, an adjustment shaft A is rotatably installed. At the top of the adjustment shaft A, a small bevel gear B meshing with the large bevel gear B is fixedly installed.

[0007] Preferably, a premixing chamber is opened at the upper part of the mixing tank. The outlet ports of the two peristaltic pumps are both communicated with the premixing chamber through communicating pipes. At the bottom of the premixing chamber, a pressurized mixing chamber is opened. The adjustment shaft A extends into the premixing chamber and the pressurized mixing chamber. On the surface of the adjustment shaft A located inside the premixing chamber, stirring blades A are symmetrically fixedly installed. On the adjustment shaft A located inside the pressurized mixing chamber, a spiral pressurized mixing fan blade is fixedly installed, so as to perform a double mixing operation on the added water and bayberry bacterial fertilizer.

[0008] Preferably, a storage cavity communicating with the pressurized mixing cavity is formed in the lower part of the mixing tank. The suction port of the suction pump is communicated with the bottom of the storage cavity. A regulating shaft B is rotatably installed at the bottom of the storage cavity. A spraying disc located directly below the pressurized mixing cavity is fixedly installed at the top of the regulating shaft B. Stirring blades B are symmetrically and fixedly installed on the surface of the regulating shaft B.

[0009] Preferably, an inner cavity is formed in the middle of the mounting seat. The bottom of the regulating shaft B extends into the inner cavity and is fixedly installed with a small bevel gear C. A regulating shaft C extending outside one end of the mounting seat is rotatably installed inside the inner cavity. A large bevel gear C meshing with the small bevel gear C is fixedly installed at the end of the regulating shaft C located inside the inner cavity. A worm gear B meshing with one of the worm gears is fixedly installed at the end of the regulating shaft C located outside one end of the mounting seat, so as to mix the mixed water and bayberry bacterial fertilizer again.

[0010] Preferably, each of the two lifting and adjusting members includes a vertical plate fixedly installed on the top of the mounting seat. Vertical through grooves are formed in the middle of the two vertical plates. Threaded shafts are rotatably installed inside the two vertical through grooves. Moving blocks are threadedly connected to the surfaces of the threaded shafts. The tops of the two threaded shafts extend above the two vertical plates and are fixedly installed with rotating wheels.

[0011] Preferably, the two metal pipes are respectively installed through the middle parts of the two moving blocks, and hoses are connected between the two metal pipes and the suction pump. Control valves are installed inside the two metal pipes, so as to effectively adjust the spraying heights of the nozzles and the corrugated adjusting pipes.

[0012] Preferably, each of the two water and fertilizer conveying mechanisms includes a winding seat. Four moving brake wheels are installed at the bottom of each of the two winding seats. A pair of fixing plates are symmetrically and fixedly installed on the top of each of the two winding seats. Winding devices are rotatably installed between the upper parts of the two pairs of fixing plates. The middle parts of the two winding devices are both hollow structures. Rotary joints are installed in the middle of one end of each of the two winding devices. Fixed pipes are connected to the ends of the rotary joints away from the winding devices. One ends of the fixed pipes are connected with conduit pipes. The two conduit pipes are respectively connected with an external water source and a bayberry bacterial fertilizer storage tank. The ends of the two connecting pipes away from the peristaltic pump are respectively fixedly connected to the middle parts of the two winding devices and communicated with their hollow cavities.

[0013] Compared with the prior art, the beneficial effects of the present invention are: (1) This bayberry bacterial fertilizer and water mixed irrigation device has the functions of mobile fertilizer and water mixing and irrigation adjustment at different positions. The mobile fertilizer and water mixing function can perform proportional mixing operations on fertilizer and water during the movement of the device, realizing real-time mixing during irrigation, improving the performance of the irrigation device. The different position adjustment irrigation function can adjust the irrigation position according to different irrigation needs, which is beneficial for plants to absorb nutrients and grow. At the same time, the structure of this irrigation device is simply designed, and the use and adjustment operations are convenient and fast. The mixing and irrigation are stable and reliable, and its performance can meet the use requirements of fertilizer and water mixing and irrigation. (2) When the double-output shaft motor is started by the storage battery to make the two worm gears rotate, the rotation of the worm gears will drive the small bevel gear A to rotate and drive the large bevel gear A to rotate. The rotation of the large bevel gear A will drive the connecting shaft and the moving wheels to rotate and make the device move through the rollers. At the same time, the orientation is controlled and adjusted through the control handle, the direction control shaft, the n-shaped seat and the rollers. When in use, start the two peristaltic pumps to make the two peristaltic pumps transport water and bayberry bacterial fertilizer in different proportions to the inside of the premixing chamber through the connecting pipes for mixing. At the same time, when the worm gears rotate, they will drive the worm wheel A to rotate and drive the transmission shaft and the large bevel gear B to rotate. The rotation of the large bevel gear B will drive the small bevel gear B to rotate at an accelerated speed. The rotation of the small bevel gear B will drive the adjusting shaft A, the stirring blade A and the spiral pressurized mixing fan blade to rotate. The rotation of the stirring blade A will stir and mix the added water and bayberry bacterial fertilizer. At the same time, the rotation of the spiral pressurized mixing fan blade will mix and extrude and transport the mixed water and bayberry bacterial fertilizer for the second time. When the spiral pressurized mixing fan blade rotates to mix and extrude and transport the mixed water and bayberry bacterial fertilizer for the second time, so that the mixed water and bayberry bacterial fertilizer are sprayed onto the surface of the splash plate for scattering and splashing and mixed into the storage chamber. When the worm gears rotate, they will drive the worm wheel B to rotate and drive the adjusting shaft C and the large bevel gear C to rotate. The rotation of the large bevel gear C will drive the small bevel gear C to rotate at an accelerated speed. The rotation of the small bevel gear C will drive the adjusting shaft B and the stirring blade B to rotate, so that the stirring blade B will mix the mixed water and bayberry bacterial fertilizer inside the storage chamber again, effectively ensuring the mixing quality. Adjust the nozzle and the corrugated adjustment pipe according to the actual height of the plant and the height of the root covering soil. Rotate the threaded shaft through the runner. The rotation of the threaded shaft will make the moving block move on its surface. The movement of the moving block will drive the metal pipe to adjust the height, so that the nozzle is aligned with the leaves of the plant and the corrugated adjustment pipe is aligned with the root covering soil position of the plant. At the same time, through the two control valves, the nozzle and the corrugated adjustment pipe can synchronously fertilize the leaves and roots of the plant, or can be separately controlled according to the needs of the plant to fertilize the nozzle and the corrugated adjustment pipe. Then, by starting the suction pump, the suction pump conveys the fertilizer solution inside the storage chamber to the inside of the two metal pipes through the hose respectively, so that the nozzle and the corrugated adjusting pipe can fertilize the leaves and roots of the plants. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] The accompanying drawings are used to provide a further understanding of the present invention, and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention, and do not constitute a limitation to the present invention.

[0015] In the accompanying drawings: Figure 1 is a schematic structural diagram of the mobile mixing irrigation mechanism of the fertilizer solution mixed irrigation device for bayberry bacteria of the present invention; Figure 2 is a schematic structural diagram of the water and fertilizer conveying mechanism of the fertilizer solution mixed irrigation device for bayberry bacteria of the present invention; Figure 3 is for the present invention Figure 1 partial structural schematic diagram; Figure 4 is for the present invention Figure 3 sectional structural schematic diagram; Figure 5 is for the present invention Figure 1 partial sectional structural schematic diagram; In the figure: 1, mobile mixing irrigation mechanism; 2, water and fertilizer conveying mechanism; 3, device base; 4, mounting seat; 5, mixing tank; 6, peristaltic pump; 7, connecting pipe; 8, connecting shaft; 9, moving wheel; 10, direction control shaft; 11, n-shaped seat; 12, roller; 13, control handle; 14, storage battery; 15, suction pump; 16, metal pipe; 17, nozzle; 18, corrugated adjusting pipe; 19, large bevel gear A; 20, double-output shaft motor; 21, worm; 22, small bevel gear A; 23, transmission shaft; 24, worm gear A; 25, large bevel gear B; 26, adjusting shaft A; 27, small bevel gear B; 28, premixing chamber; 29, communicating pipe; 30, pressurized mixing chamber; 31, stirring blade A; 32, spiral pressurized mixing fan blade; 33, storage chamber; 34, adjusting shaft B; 35, splash plate; 36, stirring blade B; 37, inner cavity; 38, small bevel gear C; 39, adjusting shaft C; 40, large bevel gear C; 41, worm gear B; 42, vertical plate; 43, vertical through groove; 44, threaded shaft; 45, moving block; 46, runner; 47, hose; 48, control valve; 49, winding seat; 50, moving brake wheel; 51, fixing plate; 52, winder; 53, rotary joint; 54, fixed pipe; 55, conduit. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0016] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0017] Embodiment 1 is given by Figures 1 to 5 The present invention includes a mobile mixed irrigation mechanism 1 and two water and fertilizer delivery mechanisms 2. Both of the two water and fertilizer delivery mechanisms 2 are connected to the mobile mixed irrigation mechanism 1, and the ends of the two water and fertilizer delivery mechanisms 2 far from the mobile mixed irrigation mechanism 1 are respectively connected to an external water source and a bayberry bacterial fertilizer storage tank. The two water and fertilizer delivery mechanisms 2 are respectively used to deliver water and bayberry bacterial fertilizer to the mobile mixed irrigation mechanism 1. The mobile mixed irrigation mechanism 1 includes a device base 3. A mounting seat 4 is fixedly installed on the top of the device base 3. A mixing tank 5 is fixedly installed on the top of the mounting seat 4. Peristaltic pumps 6 are installed on the upper parts of both sides of the mixing tank 5. By using the peristaltic pumps 6, the flow rate can be controlled by adjusting the rotation speed of the peristaltic pumps 6, so as to meet the usage requirement of controlling the ratio. The inlet ports of the two peristaltic pumps 6 are both connected with connecting pipes 7. Both of the two connecting pipes 7 are fixedly connected to the surface of the mixing tank 5, and the ends of the two connecting pipes 7 far from the peristaltic pumps 6 are respectively connected to the two water and fertilizer delivery mechanisms 2 to deliver water and bayberry bacterial fertilizer. The two peristaltic pumps 6 are both connected to a battery 14 through wires and a switch.

[0018] A connecting shaft 8 is rotatably installed at one end of the bottom of the device base 3. Moving wheels 9 are fixedly installed at both ends of the connecting shaft 8. A direction control shaft 10 is rotatably installed in the middle of the device base 3 at the end far from the connecting shaft 8. The bottom of the direction control shaft 10 extends to the bottom of the device base 3 and a U-shaped seat 11 is fixedly installed. A roller 12 is rotatably installed inside the U-shaped seat 11. A control handle 13 is fixedly installed at the top of the direction control shaft 10.

[0019] A battery 14 and a suction pump 15 connected to the mixing tank 5 are installed on the top of the mounting seat 4. Two lifting adjustment members are installed on the top of the mounting seat 4 on one side of the suction pump 15. Metal pipes 16 are installed in the middle of the two lifting adjustment members. One end of each of the two metal pipes 16 is connected to the suction pump 15, and spray nozzles 17 and corrugated adjustment pipes 18 are respectively installed at the other ends of the two metal pipes 16.

[0020] The two water and fertilizer delivery mechanisms 2 both include winding bases 49. Four moving brake wheels 50 are installed at the bottom of each of the two winding bases 49. A pair of fixing plates 51 are symmetrically and fixedly installed at the top of each of the two winding bases 49. A winder 52 is rotatably installed between the upper parts of the two pairs of fixing plates 51. The middle parts of the two winders 52 are both hollow structures. A rotary joint 53 is installed in the middle of one end of each of the two winders 52. The end of the rotary joint 53 away from the winder 52 is connected to a fixed pipe 54. One end of the fixed pipe 54 is connected to a conduit 55. The two conduits 55 are respectively connected to an external water source and a bayberry bacterial fertilizer storage tank. The ends of the two connecting pipes 7 away from the peristaltic pump 6 are respectively fixedly connected to the middle parts of the two winders 52 and communicate with their hollow cavities. Thus, the connecting pipes 7 can be effectively wound and unwound and adjusted, enabling the device to effectively move during irrigation and effectively deliver fertilizer and water. And the connecting pipes 7 can be wound and unwound by rotating the winders 52. At the same time, the device can complete the irrigation operation of two rows of plants by reciprocating between the gaps between two rows of plants.

[0021] This bayberry bacterial fertilizer and water mixed irrigation device has the functions of mobile fertilizer and water mixing and irrigation position adjustment at different positions. The mobile fertilizer and water mixing function can perform proportional mixing operations on fertilizer and water during the movement of the device, realizing real-time mixing during irrigation and improving the use performance of the irrigation device. The irrigation position adjustment function at different positions can adjust the irrigation position according to different irrigation needs, which is beneficial to the plants to absorb nutrients and grow. At the same time, the structure of this irrigation device is simply designed, the use and adjustment operations are convenient and fast, the mixing and irrigation are stable and reliable, and its performance can meet the use requirements of fertilizer and water mixing and irrigation.

[0022] Embodiment 2, on the basis of Embodiment 1, a large bevel gear A19 is fixedly installed in the middle of the connecting shaft 8. A double-output shaft motor 20 is installed on the surface of the mixing tank 5. The double-output shaft motor 20 is connected to the battery 14 through a wire and a switch. Worms 21 are installed at both output ends of the double-output shaft motor 20. One of the worms 21 extends to the bottom of the device base 3 and is fixedly installed with a small bevel gear A22 that meshes with the large bevel gear A19, thereby providing power for the movement of the device. The double-output shaft motor 20 is turned on through the battery 14 to rotate the two worms 21. The rotation of the worms 21 will drive the small bevel gear A22 to rotate and drive the large bevel gear A19 to rotate. The rotation of the large bevel gear A19 will drive the connecting shaft 8 and the moving wheels 9 to rotate and make the device move through the rollers 12. At the same time, the orientation is controlled and adjusted through the control handle 13, the direction control shaft 10, the n-shaped seat 11 and the rollers 12.

[0023] A drive shaft 23 is rotatably installed at the top of the mixing tank 5. One end of the drive shaft 23 close to another worm 21 is fixedly installed with a worm gear A 24 meshed and connected with the other worm 21. The end of the drive shaft 23 away from the worm gear A 24 is fixedly installed with a large bevel gear B 25. An adjusting shaft A 26 is rotatably installed at the top of the mixing tank 5. The top of the adjusting shaft A 26 is fixedly installed with a small bevel gear B 27 meshed and connected with the large bevel gear B 25. A premixing chamber 28 is formed in the upper part of the mixing tank 5. The outlet ports of the two peristaltic pumps 6 are both communicated with the premixing chamber 28 through a connecting pipe 29. A pressurized mixing chamber 30 is formed at the bottom of the premixing chamber 28. The adjusting shaft A 26 extends into the premixing chamber 28 and the pressurized mixing chamber 30. Stirring blades A 31 are symmetrically and fixedly installed on the surface of the adjusting shaft A 26 located inside the premixing chamber 28. A spiral pressurized mixing fan blade 32 is fixedly installed on the adjusting shaft A 26 located inside the pressurized mixing chamber 30, so as to be able to perform a double mixing operation on the added water and bayberry bacterial fertilizer; During use, start the two peristaltic pumps 6 to enable the two peristaltic pumps 6 to transport water and bayberry bacterial fertilizer in different proportions to the inside of the premixing chamber 28 through the connecting pipe 29 for mixing. At the same time, when the worm 21 rotates, it will drive the worm gear A 24 to drive the drive shaft 23 and the large bevel gear B 25 to rotate. The rotation of the large bevel gear B 25 will accelerate the transmission and rotation of the small bevel gear B 27. The rotation of the small bevel gear B 27 will drive the adjusting shaft A 26, the stirring blades A 31 and the spiral pressurized mixing fan blade 32 to rotate. The rotation of the stirring blades A 31 will stir and mix the added water and bayberry bacterial fertilizer. At the same time, the rotation of the spiral pressurized mixing fan blade 32 will mix and extrude and transport the mixed water and bayberry bacterial fertilizer for the second time.

[0024] A storage chamber 33 communicated with the pressurized mixing chamber 30 is formed in the lower part of the mixing tank 5. The suction port of the suction pump 15 is communicated with the bottom of the storage chamber 33. An adjusting shaft B 34 is rotatably installed at the bottom of the storage chamber 33. The top of the adjusting shaft B 34 is fixedly installed with a splash plate 35 located directly below the pressurized mixing chamber 30. Stirring blades B 36 are symmetrically and fixedly installed on the surface of the adjusting shaft B 34. An inner cavity 37 is formed in the middle of the mounting seat 4. The bottom of the adjusting shaft B 34 extends into the inner cavity 37 and is fixedly installed with a small bevel gear C 38. An adjusting shaft C 39 extending outside one end of the mounting seat 4 is rotatably installed inside the inner cavity 37. A large bevel gear C 40 meshed and connected with the small bevel gear C 38 is fixedly installed at the end of the adjusting shaft C 39 located inside the inner cavity 37. A worm gear B 41 meshed and connected with one of the worms 21 is fixedly installed at the end of the adjusting shaft C 39 located outside one end of the mounting seat 4, so as to be able to mix the mixed water and bayberry bacterial fertilizer again; When the spiral pressure mixing fan blade 32 rotates to perform secondary mixing and extrusion transportation on the mixed water and bayberry bacterial fertilizer, so that the mixed water and bayberry bacterial fertilizer are sprayed onto the surface of the splash plate 35 for dispersion and splashing and mixed into the inside of the storage cavity 33. When the worm 21 rotates, it will drive the worm wheel B41 to drive the adjusting shaft C39 and the large bevel gear C40 to rotate. The rotation of the large bevel gear C40 will accelerate the transmission and rotation of the small bevel gear C38. The rotation of the small bevel gear C38 will drive the adjusting shaft B34 and the stirring blade B36 to rotate, so that the stirring blade B36 will mix the water and bayberry bacterial fertilizer that have been mixed inside the storage cavity 33 again, thus effectively ensuring the mixing quality.

[0025] Embodiment 3, on the basis of Embodiment 1, both lifting and adjusting members include vertical plates 42 fixedly installed on the top of the mounting seat 4. Vertical through grooves 43 are opened in the middle of both vertical plates 42. Threaded shafts 44 are rotatably installed inside both vertical through grooves 43. A moving block 45 is threadedly connected to the surface of the threaded shaft 44. The tops of both threaded shafts 44 extend above both vertical plates 42 and are fixedly installed with runners 46; two metal tubes 16 are respectively installed through the middle of both moving blocks 45, and hoses 47 are connected between both metal tubes 16 and the suction pump 15. Control valves 48 are installed inside both metal tubes 16, so that the spraying heights of the nozzles 17 and the corrugated adjusting tubes 18 can be effectively adjusted; The nozzles 17 and the corrugated adjusting tubes 18 are adjusted according to the actual height of the plant and the root covering height. The threaded shaft 44 is rotated through the runner 46. The rotation of the threaded shaft 44 will cause the moving block 45 to move on its surface. The movement of the moving block 45 will drive the metal tube 16 to adjust the height, so that the nozzle 17 is aligned with the leaves of the plant and the corrugated adjusting tube 18 is aligned with the root covering position of the plant; At the same time, through the two control valves 48, the nozzles 17 and the corrugated adjusting tubes 18 can simultaneously perform fertilization operations on the leaves and roots of the plant, or can separately control the nozzles 17 and the corrugated adjusting tubes 18 to perform fertilization operations according to the needs of the plant; Then, by starting the suction pump 15, the suction pump 15 transports the fertilizer water inside the storage cavity 33 to the inside of the two metal tubes 16 through the hoses 47 respectively, so that the nozzles 17 and the corrugated adjusting tubes 18 perform fertilization operations on the leaves and roots of the plant.

[0026] It should be noted that, in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements not only includes those elements but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device.

[0027] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A bayberry fungus fertilizer water mixing irrigation device, comprising a mobile mixing irrigation mechanism (1) and two water fertilizer delivery mechanisms (2), the two water fertilizer delivery mechanisms (2) are both connected to the mobile mixing irrigation mechanism (1), and one end of the two water fertilizer delivery mechanisms (2) away from the mobile mixing irrigation mechanism (1) is respectively connected to an external water source and a bayberry fungus fertilizer storage tank, the two water fertilizer delivery mechanisms (2) are respectively used to deliver water and bayberry fungus fertilizer to the mobile mixing irrigation mechanism (1), characterized in that: The mobile mixing irrigation mechanism (1) comprises a device base (3), a mounting seat (4) is fixedly mounted on the top of the device base (3), a mixing tank (5) is fixedly mounted on the top of the mounting seat (4), peristaltic pumps (6) are mounted on the upper parts of both sides of the mixing tank (5), inlet ports of the two peristaltic pumps (6) are connected to connecting pipes (7), the two connecting pipes (7) are fixedly connected to the surface of the mixing tank (5), and the ends of the two connecting pipes (7) away from the peristaltic pumps (6) are respectively connected to two water and fertilizer conveying mechanisms (2) to convey water and bayberry fertilizer; A connecting shaft (8) is rotatably mounted on one end of the bottom of the device base (3), moving wheels (9) are fixedly mounted on both ends of the connecting shaft (8), a direction control shaft (10) is rotatably mounted on the middle of the device base (3) away from one end of the connecting shaft (8), the bottom of the direction control shaft (10) extends to the bottom of the device base (3) and is fixedly mounted with an n-shaped seat (11), a roller (12) is rotatably mounted inside the n-shaped seat (11), and a control handle (13) is fixedly mounted on the top of the direction control shaft (10); A storage battery (14) and a suction pump (15) connected to the mixing tank (5) are mounted on the top of the mounting seat (4). Two lifting adjustment members located on one side of the suction pump (15) are mounted on the top of the mounting seat (4). Metal pipes (16) are mounted in the middle of the two lifting adjustment members. One end of the two metal pipes (16) is connected to the suction pump (15), and the other end of the two metal pipes (16) is mounted with a nozzle (17) and a corrugated adjustment pipe (18), respectively.

2. The bayberry bacteria fertilizer water mixing irrigation device according to claim 1, characterized in that: A large bevel gear A (19) is fixedly mounted in the middle of the connecting shaft (8), a double-shaft motor (20) is mounted on the surface of the mixing tank (5), and worm gears (21) are mounted on both output ends of the double-shaft motor (20), one of the worm gears (21) extending to the bottom of the device base (3) and fixedly mounted with a small bevel gear A (22) meshing with the large bevel gear A (19).

3. A bayberry bacteria fertilizer water mixing irrigation device according to claim 2, characterized in that: A transmission shaft (23) is rotatably mounted on the top of the mixing tank (5); a worm gear A (24) meshingly connected to the other worm gear (21) is fixedly mounted on one end of the transmission shaft (23) close to the other worm gear (21); a large bevel gear B (25) is fixedly mounted on one end of the transmission shaft (23) away from the worm gear A (24); an adjustment shaft A (26) is rotatably mounted on the top of the mixing tank (5); a small bevel gear B (27) meshingly connected to the large bevel gear B (25) is fixedly mounted on the top of the adjustment shaft A (26).

4. The bayberry bacteria fertilizer water mixing irrigation device according to claim 3, characterized in that: A premixing chamber (28) is provided at the top of the mixing tank (5); outlet ports of the two peristaltic pumps (6) are connected to the premixing chamber (28) via a connecting pipe (29); a pressurized mixing chamber (30) is provided at the bottom of the premixing chamber (28); an adjustment shaft A (26) extends into the interior of the premixing chamber (28) and the pressurized mixing chamber (30); stirring blades A (31) are symmetrically fixedly mounted on the surface of the adjustment shaft A (26) located inside the premixing chamber (28); and spiral pressurized mixing blades (32) are fixedly mounted on the surface of the adjustment shaft A (26) located inside the pressurized mixing chamber (30).

5. The bayberry bacteria fertilizer water mixing irrigation device according to claim 4, characterized in that: A material storage chamber (33) connected to the pressurized mixing chamber (30) is provided at the bottom of the mixing tank (5); a suction port of the suction pump (15) is connected to the bottom of the material storage chamber (33); an adjusting shaft B (34) is rotatably mounted at the bottom of the material storage chamber (33); a splash plate (35) located directly below the pressurized mixing chamber (30) is fixedly mounted on the top of the adjusting shaft B (34); and stirring blades B (36) are symmetrically fixedly mounted on the surface of the adjusting shaft B (34).

6. The bayberry bacteria fertilizer water mixing irrigation device according to claim 5, characterized in that: An inner cavity (37) is formed in the middle of the mounting seat (4), the bottom of the adjusting shaft B (34) extends into the inner cavity (37) and is fixedly mounted with a small bevel gear C (38), an adjusting shaft C (39) extending to the outside of one end of the mounting seat (4) is rotatably mounted inside the inner cavity (37), a large bevel gear C (40) meshingly connected to the small bevel gear C (38) is fixedly mounted on the end of the adjusting shaft C (39) located inside the inner cavity (37), and a worm gear B (41) meshingly connected to one of the worms (21) is fixedly mounted on the end of the adjusting shaft C (39) located outside of one end of the mounting seat (4).

7. The bayberry bacteria fertilizer water mixing irrigation device according to claim 1, characterized in that: The two lifting adjustment members each comprise a vertical plate (42) fixedly mounted on the top of the mounting seat (4); a vertical through slot (43) is provided in the middle of the two vertical plates (42); a threaded shaft (44) is rotatably mounted inside the two vertical through slots (43); a moving block (45) is threadedly connected to the surface of the threaded shaft (44); and the tops of the two threaded shafts (44) extend above the two vertical plates (42) and are fixedly mounted with a rotating wheel (46).

8. The bayberry bacteria fertilizer water mixing irrigation device according to claim 7, characterized in that: The two metal tubes (16) are respectively installed through the middle of the two moving blocks (45), and a hose (47) is connected between the two metal tubes (16) and the suction pump (15), and a control valve (48) is installed inside the two metal tubes (16).

9. The bayberry bacteria fertilizer water mixing irrigation device according to claim 1, characterized in that: The two water-fertilizer conveying mechanisms (2) each comprise a reel (49), the bottoms of the two reeling seats (49) are each provided with four movable brake wheels (50), the tops of the two reeling seats (49) are each symmetrically fixedly provided with a pair of fixing plates (51), the upper parts of the two pairs of fixing plates (51) are each rotatably pressed with a reel (52), the middle parts of the two reels (52) are each a hollow structure, the middle parts of one end of the two reels (52) are each provided with a rotating joint (53), the ends of the rotating joint (53) away from the reels (52) are each connected to a fixing pipe (54), the ends of the fixing pipe (54) are each connected to a conduit (55), the two conduits (55) are respectively connected to an external water source and a bayberry fertilizer storage tank, and the ends of the two connecting pipes (7) away from the peristaltic pump (6) are respectively fixedly connected to the middle parts of the two reels (52) and communicate with their hollow cavities.

Citation Information

Patent Citations

  • Fertilizer applying device

    CN110663336A

  • Movable water and fertilizer integrated irrigation and fertilization equipment

    CN213847627U

  • Organic fertilizer preparation, fertilization and watering integrated system

    CN216492007U

  • Irrigation device for grape planting

    CN216567104U

  • Water and fertilizer integrated device for nursery management

    CN216600795U