Soil turning device for agricultural production and use method thereof

By designing a multi-stage soil turning and a stable soil turning mechanism, the problem of uneven soil turning on rugged ground is solved, the soil turning roller is in close contact with the ground and the soil is loosened, which improves the soil turning effect and stability.

CN120202751BActive Publication Date: 2025-09-30TAIZHOU QINZHIYUAN MACHINERY PROCESSING CO LTD
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Patent Information

Application Number
CN202510388519.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-09-30
Estimated Expiration
2045-03-28

AI Technical Summary

Technical Problem

Existing soil turning devices have poor soil turning effects on rough and uneven ground, which affects the effect of crop planting.

Method used

A soil turning device for agricultural production is designed, which includes a rotary soil turning mechanism, a stabilizing component, an auxiliary component and a drying component. Through multi-stage soil turning, stable soil turning roller contact with the ground, and heater drying the top of the soil turning roller, multiple and stable soil turning is achieved.

Benefits of technology

It improves the turning effect and stability, prevents the rough road surface from affecting the turning, ensures that the turning roller is in close contact with the ground, enhances the turning effect of the turning roller and the looseness of the land, and prevents soil adhesion.

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Abstract

The present invention relates to the field of agricultural production technology, and discloses a soil-turning device for agricultural production and a method of using the same, comprising a vehicle body, a fixed platform fixedly connected to one side of the vehicle body, a vertical plate fixedly connected to the bottom of the fixed platform, and a connecting platform fixedly connected to the end of the fixed platform away from the vehicle body. The device also comprises a rotary soil-turning mechanism, which comprises a rotating plate, a motor, a rotating shaft frame, a soil-turning roller, and a stabilizing component for stabilizing the soil-turning roller. When the vehicle body is started, the vehicle body drives the fixed platform to move, the fixed platform drives the vertical plate to move, the vertical plate drives the rotating plate to move, the rotating plate drives the motor to move, the motor drives the rotating shaft frame to move, and the rotating shaft frame drives the soil-turning roller to move. Because the rotating plate rotates at the bottom end of the vertical plate and droops due to the gravity of the soil-turning roller itself, the bottom of the soil-turning roller can continue to be in close contact with the ground, preventing the rugged road surface from affecting the soil-turning effect of the soil-turning roller on the land.
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Description

Technical Field

[0001] The present invention relates to the technical field of agricultural production, and in particular to a soil turning device for agricultural production and a method of using the same. Background Art

[0002] Agricultural production refers to the cultivation of crops. This includes the production of grain, cotton, oilseed oil, hemp, silk, tea, sugar, vegetables, tobacco, fruit, medicinal herbs, and miscellaneous crops (referring to other cash crops, green manure crops, livestock crops, and other crops). However, during the crop cultivation process, low soil moisture often reduces the looseness of the soil, making it difficult to sow the crop seeds. Therefore, soil turning devices are required to turn the soil to facilitate agricultural production.

[0003] When the existing device turns the soil on the land, the height of the turning device is usually fixed. When turning the soil on uneven ground, the turning roller may not be able to turn the soil on the ground that is too low, thereby affecting the subsequent planting effect of crops. Summary of the Invention

[0004] The object of the present invention is to provide a soil turning device for agricultural production and a method of using the same, so as to solve the problems raised in the above-mentioned background technology.

[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions:

[0006] The present invention relates to a soil-turning device for agricultural production and a method of using the device, comprising a vehicle body, a fixed platform fixedly connected to one side of the vehicle body, a vertical plate fixedly connected to the bottom of the fixed platform, and a connecting platform fixedly connected to the end of the fixed platform away from the vehicle body. The device also comprises a rotary soil-turning mechanism, which comprises a rotating plate, a motor, a rotating shaft frame, a soil-turning roller, and a stabilizing component for stabilizing the soil-turning roller. Two rotating plates are provided, and the top end of the rotating plate is rotatably connected to one side of the bottom end of the vertical plate. One motor is provided, and one end of the motor is fixedly connected to the side wall of one of the rotating plates, and one end of the rotating shaft frame is fixedly connected to the output end of the motor. The inner wall of the soil-turning roller is fixedly connected to the outer wall of the middle end of the rotating shaft frame.

[0007] Furthermore, the stabilizing assembly includes a first rotating rod frame that passes through and is rotatably connected to the inner wall of the fixed platform. The outer wall of the rotating shaft frame away from the motor is rotatably connected to a belt, and the inner wall of one end of the belt is rotatably connected to the outer wall of one end of the first rotating rod frame.

[0008] Furthermore, the inner wall of one end of the belt close to the first rotating rod is rotatably connected to the second rotating rod, and the outer walls of both ends of the second rotating rod are rotatably connected to sliders. Square holes are respectively opened on both sides of the connecting platform, and the outer walls of the sliders are slidably connected to the inner walls of the square holes.

[0009] Furthermore, an auxiliary component is provided on the outer wall of the second rotating rod frame, and the auxiliary component includes a reciprocating screw fixedly connected to the outer walls at both ends of the second rotating rod frame, and the outer wall of one end of the reciprocating screw is threadedly connected to a threaded block, and the top of the threaded block is slidably connected to the top of the inner wall of the connecting platform, and the bottom of the threaded block is fixedly connected to a fixed plate, and the bottom of the fixed plate is fixedly connected to four conical soil-turning rods.

[0010] Furthermore, an extrusion assembly is provided on the side wall of the fixed plate, and the extrusion assembly includes a rotating bar rotatably connected to one side of the fixed plate, and the rotating bar is rotatably connected to a concave block at one end away from the fixed plate. The concave block is provided with one, and a cross bar is fixedly connected to one side of the outer wall of the concave block.

[0011] Furthermore, a limiting hole is opened on one side of the vertical plate, and the outer wall of one end of the horizontal rod is slidably connected to the inner wall of the limiting hole. The bottom of the horizontal rod is in contact with a square shell, and the top two sides of the square shell are respectively fixedly connected with vertical rod frames, and one end of the vertical rod frame passes through the connecting platform and extends to the outside of the connecting platform.

[0012] Furthermore, the top of the vertical rod frame is fixedly connected to a second spring, the bottom of the second spring is fixedly connected to the top of the connecting platform, and the top of the inner wall of the square shell is fixedly connected to a return spring.

[0013] Furthermore, the bottom of the return spring is fixedly connected to a lifting plate, the outer wall of the lifting plate is slidably connected to the inner wall of the square shell, and the two sides of the bottom of the lifting plate are respectively fixedly connected to extrusion racks, and the bottom contact of the extrusion rack is set at the side wall of the rotating plate.

[0014] Furthermore, a drying assembly is provided on the inner wall of the square shell, and the drying assembly includes heaters fixedly connected to both sides of the top of the inner wall of the square shell. One side of the inner wall of the square shell is connected to a bent pipe, one end of the bent pipe is connected to an exhaust shell, and one side of the outer wall of the exhaust shell is fixedly connected to one side of the outer wall of the square shell.

[0015] A method for using a soil turning device for agricultural production comprises the following steps:

[0016] Step 1: Perform the initial soil turning work, start the vehicle body, the vehicle body drives the fixed platform to move, the fixed platform drives the vertical plate to move, the vertical plate drives the rotating plate to move, the rotating plate drives the motor to move, the motor drives the rotating shaft frame to move, the rotating shaft frame drives the soil turning roller to move, because the rotating plate rotates at the bottom end of the vertical plate and droops under the gravity of the soil turning roller itself, so that the bottom of the soil turning roller can continue to be in close contact with the ground, preventing the rugged road surface from affecting the soil turning effect of the soil turning roller on the land. At the same time, start the motor, the motor drives the rotating shaft frame to rotate, and the rotating shaft frame drives the soil turning roller to rotate;

[0017] Step 2: Perform secondary soil turning work. When the rotating shaft frame rotates, the rotating shaft frame drives the belt to rotate, the belt drives the second rotating rod frame to rotate, and the second rotating rod frame drives the reciprocating screw rod to rotate. The reciprocating screw rod is limited by the connecting platform, and the reciprocating screw rod drives the threaded block to slide horizontally along the connecting platform. The threaded block drives the fixed plate to move back and forth, and the fixed plate drives the conical soil turning rod to move back and forth. During the reciprocating movement of the conical soil turning rod, the vertically turned land can be turned for the second time horizontally.

[0018] Step 3: Assisting the stability of soil turning. When the two fixed plates approach each other, the fixed plate drives the rotating bar to move. Limited by the limiting hole, the rotating bar drives the concave block and the cross bar to descend vertically along the inner wall of the limiting hole. When the cross bar falls, it contacts the top of the square shell, causing the square shell to descend. The square shell drives the lifting plate to descend, and the lifting plate drives the extrusion frame rod to descend. When the extrusion frame rod descends, it contacts the top of the rotating plate, causing the rotating plate to rotate slightly around the bottom end of the vertical plate, thereby improving the soil turning effect of the soil turning roller on the land.

[0019] Step 4: Dry the soil roller with air jets. When the extrusion frame rod comes into contact with the top of the rotating plate, the reaction force of the soil causes the extrusion frame rod to drive the lifting plate to move toward the inside of the square shell. The lifting plate slides up along the inside of the square shell. The heater is set to heat the internal air of the square shell. At this time, the sliding process of the lifting plate will cause the hot air flow to enter the inside of the bent pipe. The hot air flow enters the inside of the exhaust shell through the bent pipe. The hot air flow passes through the exhaust shell and jets to the top of the soil roller to dry the top of the soil roller.

[0020] The present invention has the following beneficial effects:

[0021] (1) In the present invention, the vehicle body is started, and the vehicle body drives the fixed platform to move, the fixed platform drives the vertical plate to move, the vertical plate drives the rotating plate to move, the rotating plate drives the motor to move, the motor drives the rotating shaft frame to move, and the rotating shaft frame drives the turning roller to move. Because the rotating plate rotates at the bottom end of the vertical plate and droops due to the gravity of the turning roller itself, the bottom of the turning roller can continue to be in close contact with the ground, preventing the rugged road surface from affecting the turning effect of the turning roller on the land. At the same time, the motor is started, the motor drives the rotating shaft frame to rotate, and the rotating shaft frame drives the turning roller to rotate. During the rotation of the turning roller, the ground can be turned over.

[0022] (2) In the present invention, when the rotating shaft frame rotates, the rotating shaft frame drives the belt to rotate, and the belt drives the second rotating rod frame to rotate. The second rotating rod frame drives the reciprocating screw to rotate. Subject to the limitation of the connecting platform, the reciprocating screw drive drives the threaded block to slide horizontally along the connecting platform, and the threaded block drives the fixed plate to move back and forth. The fixed plate drives the conical turning rod to move back and forth. During the reciprocating movement of the conical turning rod, the vertically turned soil can be turned a second time, thereby increasing the looseness of the soil after turning and improving the turning effect. When encountering rugged land, the turning roller will move up and down slightly. At this time, it is elastically deformed by the first spring, and the first spring drives the slider to slide along the inner wall of the square hole. The slider drives the second rotating rod frame to move. Subject to the positioning limitation of the first rotating rod frame, the second rotating rod frame can stretch the belt during its movement, so that the tension of the belt becomes larger, thereby improving the running stability of the belt driving the second rotating rod frame and indirectly improving the turning effect of the conical turning rod.

[0023] (3) In the present invention, when the two fixed plates approach each other, the fixed plate drives the rotating bar to move, which is limited by the limiting hole. The rotating bar drives the concave block and the cross bar to vertically descend along the inner wall of the limiting hole. When the cross bar falls, it will come into contact with the top of the square shell, causing the square shell to descend. The square shell drives the lifting plate to descend, and the lifting plate drives the extrusion frame rod to descend. When the extrusion frame rod descends, it will come into contact with the top of the rotating plate, so that the rotating plate rotates slightly around the bottom end of the vertical plate, which improves the soil-turning effect of the soil-turning roller on the land. When the square shell resets and rises, it is elastically deformed by the reset spring, and the reset spring presses the lifting plate downward, so that the lifting plate can drive the extrusion frame rod to continuously press down the top of the rotating plate, thereby improving the soil-turning stability of the soil-turning roller on the land.

[0024] (4) In the present invention, when the extrusion frame rod comes into contact with the top of the rotating plate, the extrusion frame rod is subjected to the reaction force of the ground, so that the extrusion frame rod drives the lifting plate to move toward the inside of the square shell, and the lifting plate slides up along the inside of the square shell. The heater is set, and the heater heats the internal air of the square shell. At this time, the sliding process of the lifting plate will cause the hot air flow to enter the inside of the bent pipe, and the hot air flow enters the inside of the exhaust shell through the bent pipe. The hot air flow is sprayed toward the top of the soil-turning roller through the exhaust shell, and the top of the soil-turning roller is dried to prevent the soil-turning roller from continuously turning the soil. The soil with moisture adheres to the outer wall of the soil-turning roller. If it is not cleaned for a long time, it will firmly adhere to the outer wall of the soil-turning roller, which indirectly improves the soil-turning effect of the soil-turning roller on the land.

[0025] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0027] Figure 1 This is a schematic diagram of the overall top view of the structure of the present invention;

[0028] Figure 2 This is a schematic diagram of the overall cross-sectional structure of the present invention;

[0029] Figure 3 This is a schematic cross-sectional structural diagram of the fixing platform of the present invention;

[0030] Figure 4 This is a schematic diagram of the side structure of the belt of the present invention;

[0031] Figure 5 This is a schematic cross-sectional structural diagram of the connecting platform of the present invention;

[0032] Figure 6 This is a schematic cross-sectional view of the reciprocating screw rod of the present invention;

[0033] Figure 7 This is a schematic diagram of the structure of the conical soil turning rod of the present invention when viewed from above;

[0034] Figure 8 The figure is a flow chart of the method for using the present invention.

[0035] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0036] In the figure: 1, vehicle body; 2, fixed platform; 3, vertical plate; 4, connecting platform; 5, rotary soil turning mechanism; 51, rotating plate; 52, motor; 53, rotating shaft frame; 54, soil turning roller; 55, stabilizing component; 56, auxiliary component; 57, squeezing component; 58, drying component; 551, first rotating rod frame; 552, belt; 553, second rotating rod frame; 554, square hole; 555, slider; 556, first A spring; 561, reciprocating screw; 562, threaded block; 563, fixed plate; 564, conical tiller rod; 571, rotating bar; 572, concave block; 573, cross bar; 574, limiting hole; 575, square shell; 576, vertical rod frame; 577, second spring; 578, return spring; 579, lifting plate; 5710, extrusion frame rod; 581, heater; 582, elbow; 583, exhaust shell. DETAILED DESCRIPTION

[0037] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments 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 are within the scope of protection of the present invention.

[0038] Example 1, please refer to Figures 1-8 As shown, the present invention is a soil turning device for agricultural production and its use method, comprising a vehicle body 1, a fixing platform 2 fixedly connected to one side of the vehicle body 1, a vertical plate 3 fixedly connected to the bottom of the fixing platform 2, and a connecting platform 4 fixedly connected to the end of the fixing platform 2 away from the vehicle body 1, and further comprising;

[0039] The rotary soil turning mechanism 5 includes a rotating plate 51, a motor 52, a rotating shaft frame 53, and a soil turning roller 54. When the vehicle body 1 is started, the vehicle body 1 drives the fixed platform 2 to move, the fixed platform 2 drives the vertical plate 3 to move, the vertical plate 3 drives the rotating plate 51 to move, the rotating plate 51 drives the motor 52 to move, the motor 52 drives the rotating shaft frame 53 to move, and the rotating shaft frame 53 drives the soil turning roller 54 to move. Because the rotating plate 51 rotates at the bottom end of the vertical plate 3 and is drooped by the gravity of the soil turning roller 54 itself, the bottom of the soil turning roller 54 can continue to be in close contact with the ground, preventing the rugged road surface from affecting the soil turning effect of the soil turning roller 54 on the land. A stabilizing component 55 is used to stabilize the soil turning roller 54;

[0040] There are two rotating plates 51, the top of the rotating plate 51 is rotatably connected to one side of the bottom end of the vertical plate 3, and there is a motor 52. One end of the motor 52 is fixedly connected to the side wall of one of the rotating plates 51, and one end of the rotating shaft frame 53 is fixedly connected to the output end of the motor 52. The inner wall of the soil-turning roller 54 is fixedly connected to the outer wall of the middle end of the rotating shaft frame 53. When the motor 52 is started, the motor 52 drives the rotating shaft frame 53 to rotate, and the rotating shaft frame 53 drives the soil-turning roller 54 to rotate. During the rotation of the soil-turning roller 54, the ground can be turned over.

[0041] The stabilizing assembly 55 includes a first rotating rod frame 551 that passes through and is rotatably connected to the inner wall of the fixed platform 2. The outer wall of the rotating shaft frame 53 away from the motor 52 is rotatably connected to a belt 552. The inner wall of one end of the belt 552 is rotatably connected to the outer wall of one end of the first rotating rod frame 551.

[0042] When the lifting device 550 is in a state of being rotated and rotated, the lifting device 550 is rotated and rotated to move the lifting device 550 so that the lifting device 550 can be rotated. When the lifting device 550 is in a state of being rotated, the lifting device 550 is rotated and rotated to move the lifting device 550. When the lifting device 550 is in a state of being rotated, the lifting device 550 is rotated and rotated to move the lifting device 550.

[0043] The outer wall of the second rotating rod frame 553 is provided with an auxiliary component 56. When the rotating shaft frame 53 rotates, the rotating shaft frame 53 drives the belt 552 to rotate, the belt 552 drives the second rotating rod frame 553 to rotate, and the second rotating rod frame 553 drives the reciprocating screw rod 561 to rotate. The reciprocating screw rod 561 is limited by the connecting platform 4, and the threaded block 562 slides horizontally along the connecting platform 4. The threaded block 562 drives the fixed plate 563 to reciprocate, and the fixed plate 563 drives the conical tillage rod 564 to reciprocate. During the reciprocating movement, the vertically turned soil can be turned a second time horizontally, thereby increasing the looseness of the turned soil and improving the turning effect. The auxiliary component 56 includes a reciprocating screw 561 fixedly connected to the outer walls of both ends of the second rotating rod frame 553. The outer wall of one end of the reciprocating screw 561 is threadedly connected to a threaded block 562. The top of the threaded block 562 is slidably connected to the top of the inner wall of the connecting platform 4. The bottom of the threaded block 562 is fixedly connected to a fixing plate 563. The bottom of the fixing plate 563 is fixedly connected to four tapered turning rods 564.

[0044] In Example 2, the side wall of the fixed plate 563 is provided with an extrusion assembly 57. When the two fixed plates 563 approach each other, the fixed plate 563 drives the rotating bar 571 to move. The rotating bar 571 drives the concave block 572 and the cross bar 573 to vertically descend along the inner wall of the limiting hole 574. When the cross bar 573 falls, it contacts the top of the square shell 575, causing the square shell 575 to descend. The square shell 575 drives the lifting plate 579 to descend, and the lifting plate 579 drives the extrusion assembly 571 to move. The frame rod 5710 descends, and the extrusion frame rod 5710 comes into contact with the top of the rotating plate 51 when it descends, so that the rotating plate 51 rotates slightly around the bottom end of the vertical plate 3, which improves the soil-turning effect of the soil-turning roller 54 on the side. The extrusion assembly 57 includes a rotating bar 571 rotatably connected to one side of the fixed plate 563, and the end of the rotating bar 571 away from the fixed plate 563 is rotatably connected to a concave block 572, and the concave block 572 is provided with a, and a horizontal bar 573 is fixedly connected to one side of the outer wall of the concave block 572.

[0045] A limiting hole 574 is provided on one side of the vertical plate 3, and the outer wall of one end of the cross bar 573 is slidably connected to the inner wall of the limiting hole 574. The bottom of the cross bar 573 is in contact with a square shell 575, and the top two sides of the square shell 575 are respectively fixedly connected with vertical rod frames 576. One end of the vertical rod frame 576 passes through the connecting platform 4 and extends to the outside of the connecting platform 4.

[0046] The top of the vertical rod frame 576 is fixedly connected to the second spring 577 , the bottom of the second spring 577 is fixedly connected to the top of the connecting platform 4 , and the top of the inner wall of the square shell 575 is fixedly connected to the return spring 578 .

[0047] The bottom of the reset spring 578 is fixedly connected to a lifting plate 579, and the outer wall of the lifting plate 579 is slidably connected to the inner wall of the square shell 575. The two sides of the bottom of the lifting plate 579 are respectively fixedly connected with an extrusion frame rod 5710, and the bottom contact of the extrusion frame rod 5710 is set at the side wall of the rotating plate 51. When the square shell 575 is reset and risen, it is elastically deformed by the reset spring 578, and the reset spring 578 presses down the lifting plate 579, so that the lifting plate 579 can drive the extrusion frame rod 5710 to continuously press down the top of the rotating plate 51, thereby improving the stability of the soil-turning roller 54 on the soil.

[0048] The inner wall of the square shell 575 is provided with a drying assembly 58. When the extrusion frame rod 5710 comes into contact with the top of the rotating plate 51, the extrusion frame rod 5710 is subjected to the reaction force of the ground, so that the extrusion frame rod 5710 drives the lifting plate 579 to move into the interior of the square shell 575. The lifting plate 579 slides upward along the interior of the square shell 575 and is set by the heater 581. The heater 581 heats the air inside the square shell 575. At this time, the sliding process of the lifting plate 579 causes the hot air to enter the interior of the elbow 582. The hot air enters the interior of the exhaust shell 583 through the elbow 582, and the hot air passes through the exhaust shell 583. 83 sprays air toward the top of the soil-turning roller 54 to dry the top of the soil-turning roller 54 and prevent the soil-turning roller 54 from continuously turning over the soil. The soil with moisture adheres to the outer wall of the soil-turning roller 54 and will firmly adhere to the outer wall of the soil-turning roller 54 if it is not cleaned for a long time, thereby improving the soil-turning effect of the soil-turning roller 54 on the land. The drying component 58 includes a heater 581 fixedly connected to both sides of the top of the inner wall of the square shell 575. One side of the inner wall of the square shell 575 is connected to a bend pipe 582, and one end of the bend pipe 582 is connected to an exhaust shell 583. One side of the outer wall of the exhaust shell 583 is fixedly connected to one side of the outer wall of the square shell 575.

[0049] A method for using a soil turning device for agricultural production comprises the following steps:

[0050] Step 1: Perform the initial soil turning work, start the vehicle body 1, the vehicle body 1 drives the fixed platform 2 to move, the fixed platform 2 drives the vertical plate 3 to move, the vertical plate 3 drives the rotating plate 51 to move, the rotating plate 51 drives the motor 52 to move, the motor 52 drives the rotating shaft frame 53 to move, the rotating shaft frame 53 drives the soil turning roller 54 to move, because the rotating plate 51 rotates at the bottom end of the vertical plate 3 and droops due to the gravity of the soil turning roller 54 itself, so that the bottom of the soil turning roller 54 can continue to be in close contact with the ground, preventing the rugged road surface from affecting the soil turning effect of the soil turning roller 54 on the land, and at the same time start the motor 52, the motor 52 drives the rotating shaft frame 53 to rotate, and the rotating shaft frame 53 drives the soil turning roller 54 to rotate;

[0051] Step 2: Perform secondary soil turning work. When the rotating shaft frame 53 rotates, the rotating shaft frame 53 drives the belt 552 to rotate, and the belt 552 drives the second rotating rod frame 553 to rotate. The second rotating rod frame 553 drives the reciprocating screw rod 561 to rotate. Limited by the connecting platform 4, the reciprocating screw rod 561 drives the threaded block 562 to slide horizontally along the connecting platform 4. The threaded block 562 drives the fixed plate 563 to move back and forth. The fixed plate 563 drives the conical soil turning rod 564 to move back and forth. During the reciprocating movement of the conical soil turning rod 564, the vertically turned land can be turned for the second time horizontally.

[0052] Step 3: Assisting in the stability of soil turning. When the two fixed plates 563 approach each other, the fixed plate 563 drives the rotating bar 571 to move. Limited by the limiting hole 574, the rotating bar 571 drives the concave block 572 and the cross bar 573 to vertically descend along the inner wall of the limiting hole 574. When the cross bar 573 falls, it contacts the top of the square shell 575, causing the square shell 575 to descend. The square shell 575 drives the lifting plate 579 to descend. The lifting plate 579 drives the extrusion frame rod 5710 to descend. When the extrusion frame rod 5710 descends, it contacts the top of the rotating plate 51, causing the rotating plate 51 to rotate slightly around the bottom end of the vertical plate 3, thereby improving the soil turning effect of the soil turning roller 54 on the land.

[0053] Step 4: Dry the soil roller 54 with a jet of air. When the extrusion frame rod 5710 comes into contact with the top of the rotating plate 51, the reaction force of the ground causes the extrusion frame rod 5710 to drive the lifting plate 579 to move toward the inside of the square shell 575. The lifting plate 579 slides upward along the inside of the square shell 575 and is set by the heater 581. The heater 581 heats the internal air of the square shell 575. At this time, the sliding process of the lifting plate 579 will cause the hot air flow to enter the inside of the bent pipe 582. The hot air flow enters the inside of the exhaust shell 583 through the bent pipe 582. The hot air flow passes through the exhaust shell 583 to spray toward the top of the soil roller 54 to dry the top of the soil roller 54.

[0054] When in use, the vehicle body 1 is started, and the vehicle body 1 drives the fixed platform 2 to move, the fixed platform 2 drives the vertical plate 3 to move, the vertical plate 3 drives the rotating plate 51 to move, the rotating plate 51 drives the motor 52 to move, the motor 52 drives the rotating shaft frame 53 to move, and the rotating shaft frame 53 drives the turning roller 54 to move. Because the rotating plate 51 rotates at the bottom end of the vertical plate 3 and droops due to the gravity of the turning roller 54 itself, the bottom of the turning roller 54 can continue to be in close contact with the ground, preventing the rugged road surface from affecting the turning effect of the turning roller 54 on the land. At the same time, the motor 52 is started, the motor 52 drives the rotating shaft frame 53 to rotate, and the rotating shaft frame 53 drives the turning roller 54 to rotate. During the rotation of the turning roller 54, the ground can be turned over.

[0055] When the rotating shaft frame 53 rotates, the rotating shaft frame 53 drives the belt 552 to rotate, the belt 552 drives the second rotating rod frame 553 to rotate, and the second rotating rod frame 553 drives the reciprocating screw rod 561 to rotate. Limited by the connecting platform 4, the reciprocating screw rod 561 drives the threaded block 562 to slide horizontally along the connecting platform 4, and the threaded block 562 drives the fixed plate 563 to move back and forth. The fixed plate 563 drives the conical turning rod 564 to move back and forth. During the reciprocating movement of the conical turning rod 564, the vertically turned soil can be turned a second time, thereby increasing the looseness of the soil after being turned. , which improves the effect of turning over the soil. When encountering rugged land, the turning roller 54 will move up and down slightly. At this time, it is elastically deformed by the first spring 556. The first spring 556 drives the slider 555 to slide along the inner wall of the square hole 554, and the slider 555 drives the second rotating rod frame 553 to move. It is restricted by the positioning of the first rotating rod frame 551. During the movement of the second rotating rod frame 553, the belt 552 can be stretched to increase the tension of the belt 552, thereby improving the operating stability of the belt 552 driving the second rotating rod frame 553, and the side improves the turning over effect of the conical turning rod 564.

[0056] When the two fixed plates 563 approach each other, the fixed plates 563 drive the rotating bar 571 to move, which is limited by the limiting hole 574. The rotating bar 571 drives the concave block 572 and the cross bar 573 to vertically descend along the inner wall of the limiting hole 574. When the cross bar 573 falls, it contacts the top of the square shell 575, causing the square shell 575 to descend. The square shell 575 drives the lifting plate 579 to descend, and the lifting plate 579 drives the extrusion frame rod 5710 to descend. When 5710 descends, it will come into contact with the top of the rotating plate 51, causing the rotating plate 51 to rotate slightly around the bottom end of the vertical plate 3, which laterally improves the turning effect of the soil-turning roller 54 on the soil. When the square shell 575 resets and rises, it is elastically deformed by the reset spring 578, and the reset spring 578 presses down on the lifting plate 579, so that the lifting plate 579 can drive the extrusion frame rod 5710 to continuously press down on the top of the rotating plate 51, thereby improving the turning stability of the soil-turning roller 54 on the soil.

[0057] When the extrusion frame rod 5710 comes into contact with the top of the rotating plate 51, the reaction force of the soil is applied to the extrusion frame rod 5710, causing the lifting plate 579 to move toward the inside of the square shell 575. The lifting plate 579 slides up along the inside of the square shell 575 and is set by the heater 581. The heater 581 heats the internal air of the square shell 575. At this time, the sliding process of the lifting plate 579 will cause the hot air flow to enter the inside of the bent pipe 582. The hot air flow enters the inside of the exhaust shell 583 through the bent pipe 582. The hot air flow is sprayed toward the top of the soil-turning roller 54 through the exhaust shell 583 to dry the top of the soil-turning roller 54, preventing the soil-turning roller 54 from continuously turning the soil. The soil with moisture adheres to the outer wall of the soil-turning roller 54. If it is not cleaned for a long time, it will firmly adhere to the outer wall of the soil-turning roller 54, thereby improving the soil-turning effect of the soil-turning roller 54 on the land.

[0058] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to specific embodiments. Obviously, many modifications and variations are possible based on the contents of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. A soil turning device for agricultural production, characterized in that: The invention comprises a vehicle body (1), one side of the vehicle body (1) is fixedly connected to a fixing platform (2), the bottom of the fixing platform (2) is fixedly connected to a vertical plate (3), and one end of the fixing platform (2) away from the vehicle body (1) is fixedly connected to a connecting platform (4), and further comprises: A rotary soil turning mechanism (5), comprising a rotating plate (51), a motor (52), a rotating shaft frame (53), a soil turning roller (54), and a stabilizing component (55) for stabilizing the soil turning roller (54); Two rotating plates (51) are provided, the top end of each rotating plate (51) is rotatably connected to one side of the bottom end of the vertical plate (3), one motor (52) is provided, one end of each motor (52) is fixedly connected to the side wall of one of the rotating plates (51), one end of each rotating shaft frame (53) is fixedly connected to the output end of the motor (52), and the inner wall of each soil turning roller (54) is fixedly connected to the outer wall of the middle end of the rotating shaft frame (53); The stabilizing assembly (55) comprises a first rotating rod frame (551) penetrating and rotatably connected to the inner wall of the fixed platform (2); an outer wall of one end of the rotating shaft frame (53) away from the motor (52) is rotatably connected to a belt (552); and an inner wall of one end of the belt (552) is rotatably connected to an outer wall of one end of the first rotating rod frame (551); The inner wall of one end of the belt (552) close to the first rotating rod frame (551) is rotatably connected to the second rotating rod frame (553), and the outer walls of both ends of the second rotating rod frame (553) are rotatably connected to sliders (555), and square holes (554) are respectively opened on both sides of the connecting platform (4), and the outer wall of the slider (555) is slidably connected to the inner wall of the square hole (554); The first spring (556) drives the slider (555) to slide along the inner wall of the square hole (554); An auxiliary component (56) is provided on the outer wall of the second rotating rod frame (553), and the auxiliary component (56) includes a reciprocating screw (561) fixedly connected to the outer walls of both ends of the second rotating rod frame (553); the outer wall of one end of the reciprocating screw (561) is threadedly connected to a threaded block (562); the top of the threaded block (562) is slidably connected to the top of the inner wall of the connecting platform (4); the bottom of the threaded block (562) is fixedly connected to a fixing plate (563); the bottom of the fixing plate (563) is fixedly connected to four conical soil turning rods (564); The side wall of the fixed plate (563) is provided with an extrusion assembly (57), and the extrusion assembly (57) includes a rotation bar (571) rotatably connected to one side of the fixed plate (563), and the end of the rotation bar (571) away from the fixed plate (563) is rotatably connected to a concave block (572), and the concave block (572) is provided with one, and a cross bar (573) is fixedly connected to one side of the outer wall of the concave block (572).

2. The soil turning device for agricultural production according to claim 1, characterized in that: A limiting hole (574) is provided on one side of the vertical plate (3), and an outer wall of one end of the cross bar (573) is slidably connected to the inner wall of the limiting hole (574). A square shell (575) is provided at the bottom of the cross bar (573), and vertical rod frames (576) are fixedly connected to both sides of the top of the square shell (575). One end of the vertical rod frame (576) passes through the connecting platform (4) and extends to the outside of the connecting platform (4).

3. The soil turning device for agricultural production according to claim 2, characterized in that: The top of the vertical rod frame (576) is fixedly connected to a second spring (577), the bottom of the second spring (577) is fixedly connected to the top of the connecting platform (4), and the top of the inner wall of the square shell (575) is fixedly connected to a return spring (578).

4. The soil turning device for agricultural production according to claim 3, characterized in that: The bottom of the return spring (578) is fixedly connected to a lifting plate (579), the outer wall of the lifting plate (579) is slidably connected to the inner wall of the square shell (575), and the two sides of the bottom of the lifting plate (579) are respectively fixedly connected to an extrusion frame rod (5710), and the bottom of the extrusion frame rod (5710) is contacted with the side wall of the rotating plate (51).

5. The soil turning device for agricultural production according to claim 4, characterized in that: The inner wall of the square shell (575) is provided with a drying assembly (58), and the drying assembly (58) includes heaters (581) fixedly connected to both sides of the top of the inner wall of the square shell (575). One side of the inner wall of the square shell (575) is connected to a curved pipe (582), and one end of the curved pipe (582) is connected to an exhaust shell (583). One side of the outer wall of the exhaust shell (583) is fixedly connected to one side of the outer wall of the square shell (575).

6. A method for using a soil turning device for agricultural production, using the soil turning device for agricultural production according to claim 5, characterized in that : including the following steps, Step 1: Perform the initial soil turning work, start the vehicle body (1), the vehicle body (1) drives the fixed platform (2) to move, the fixed platform (2) drives the vertical plate (3) to move, the vertical plate (3) drives the rotating plate (51) to move, the rotating plate (51) drives the motor (52) to move, the motor (52) drives the rotating shaft frame (53) to move, the rotating shaft frame (53) drives the soil turning roller (54) to move, because the rotating plate (51) rotates at the bottom end of the vertical plate (3) and is drooped by the gravity of the soil turning roller (54), so that the bottom of the soil turning roller (54) can continue to be in close contact with the ground, preventing the rugged road surface from affecting the soil turning effect of the soil turning roller (54) on the land, and at the same time start the motor (52), the motor (52) drives the rotating shaft frame (53) to rotate, and the rotating shaft frame (53) drives the soil turning roller (54) to rotate; Step 2: Perform secondary soil turning work. When the rotating shaft frame (53) rotates, the rotating shaft frame (53) drives the belt (552) to rotate. The belt (552) drives the second rotating rod frame (553) to rotate. The second rotating rod frame (553) drives the reciprocating screw rod (561) to rotate. The reciprocating screw rod (561) is limited by the connecting platform (4). The threaded block (562) slides horizontally along the connecting platform (4). The threaded block (562) drives the fixed plate (563) to move back and forth. The fixed plate (563) drives the conical soil turning rod (564) to move back and forth. During the reciprocating movement of the conical soil turning rod (564), the vertical soil turning land can be turned over for the second time horizontally. Step 3: Assisting the stability of soil turning. When the two fixed plates (563) approach each other, the fixed plate (563) drives the rotating bar (571) to move. When the fixed plate (563) is limited by the limiting hole (574), the rotating bar (571) drives the concave block (572) and the cross bar (573) to vertically descend along the inner wall of the limiting hole (574). When the cross bar (573) falls, it contacts the top of the square shell (575), causing the square shell (575) to descend. The square shell (575) drives the lifting plate (579) to descend. The lifting plate (579) drives the extrusion frame rod (5710) to descend. When the extrusion frame rod (5710) descends, it contacts the top of the rotating plate (51), causing the rotating plate (51) to rotate slightly around the bottom end of the vertical plate (3), thereby improving the soil turning effect of the soil turning roller (54) on the land. Step 4: Drying and jetting the soil turning roller (54). When the extrusion frame rod (5710) contacts the top of the rotating plate (51), the extrusion frame rod (5710) is subjected to the reaction force of the ground, so that the extrusion frame rod (5710) drives the lifting plate (579) to move toward the inside of the square shell (575). The lifting plate (579) slides upward along the inside of the square shell (575) and is set by the heater (581). The heater (581) heats the internal air of the square shell (575). At this time, the sliding process of the lifting plate (579) causes the hot air flow to enter the inside of the bent pipe (582). The hot air flow enters the inside of the exhaust shell (583) through the bent pipe (582). The hot air flow passes through the exhaust shell (583) and jets toward the top of the soil turning roller (54), thereby drying the top of the soil turning roller (54).

Citation Information

Patent Citations

  • Ground leveling device for land collection

    CN215829518U