An intelligent small-grain precision compound direct seeding machine

By setting a baffle and filter structure in the intelligent small-grain precision compound direct seeding machine, combined with an air suction pump and a diverter pipe, the seed replacement process is carried out efficiently, solving the problem of low sowing efficiency and ensuring that the seeder's operating efficiency is not affected when changing seeds.

CN119866736BActive Publication Date: 2025-09-12江苏省黄海农场有限公司
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Patent Information

Application Number
CN202510354461.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2025-09-12
Estimated Expiration
2045-03-25

AI Technical Summary

Technical Problem

The existing intelligent small-grain precision compound direct seeding machine takes a lot of time to replace the seeds for sowing, which affects the sowing efficiency, resulting in the inability to complete large-scale planting in time and missing the best sowing season.

Method used

An intelligent small-grain precision compound direct seeding machine was designed. By setting baffles and filter structures in the outer and inner silos, seeds can be replaced when the seeds are not completely emptied. The residual seeds are recovered by using an air suction pump and a diversion pipe to achieve rapid seed replacement.

Benefits of technology

It improves sowing efficiency, reduces seed replacement time, ensures that the seeder can continue to work efficiently, and avoids missing the best sowing season.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of sowing technology, and discloses an intelligent small-grain precision compound direct seeding machine, comprising a sowing assembly, including a frame, an outer silo is provided on the top of the frame, an inner silo is fixed inside the outer silo, a seeding mechanism is provided on one side of the outer silo, and a seeding tube is provided below the seeding mechanism; an auxiliary assembly is provided in the outer silo, comprising a discharge pipe fixed to one side of the inner silo. The beneficial effects of the present invention are as follows: by setting the outer silo and the outer silo, wheat seeds and rapeseed seeds can be stored respectively, and when it is necessary to replace the sowing seeds, the seeds being sown can be intercepted so that they cannot continue to be sown downward, and the seeds inside the seeding tube are recovered to the inside of the designated silo, and then the seeds to be sown can be switched, and there is no need to completely empty the seeds inside the silo, thereby saving seed changing time and improving sowing efficiency.
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Description

Technical Field

[0001] The present invention relates to the technical field of sowing, in particular to an intelligent small-grain precision compound direct seeding machine. Background Art

[0002] The compound seeder is an advanced agricultural machinery and equipment that can complete multiple operations at one time, effectively improving the sowing quality and efficiency of wheat and rapeseed. It can complete multiple operations such as soil crushing, loosening, leveling, pre-sowing suppression, uniform strip sowing, and post-sowing suppression at one time, reducing the number of times the machine enters the field and reducing soil compaction. The compound seeder can sow wheat and rapeseed separately, and when replacing the seeds to be sown, the remaining seeds in the hopper and the lower seed tube need to be completely emptied, and new seeds are added after emptying. This results in a lot of time being required for seed replacement, which in turn causes the seeder to be unable to operate normally for a long time, reducing the sowing area per unit time, affecting the overall operation efficiency, and in large-scale planting, this may cause the sowing operation to not be completed in time, missing the best sowing season, and having an adverse effect on the growth and yield of crops. Summary of the Invention

[0003] In view of the above-mentioned problems existing in the existing intelligent small-grain precision compound direct seeding machine, the present invention is proposed.

[0004] Therefore, the problem to be solved by the present invention is that a lot of time is required to replace the seeds for sowing, which affects the sowing efficiency.

[0005] In order to solve the above technical problems, the present invention provides the following technical solutions: an intelligent small-grain precision compound direct seeding machine, which includes a sowing assembly, including a frame, an outer silo is provided on the top of the frame, an inner silo is fixed inside the outer silo, a seeding mechanism is provided on one side of the outer silo, and a seeding tube is provided below the seeding mechanism;

[0006] An auxiliary component is arranged in the outer silo, including a discharge pipe fixed to one side of the inner silo, a first baffle and a second baffle are provided in the discharge pipe, a diversion pipe is provided on one side of the lower seed pipe, the other end of the diversion pipe extends to the inside of the outer silo and the inner silo, a first filter screen and a second filter screen are provided in the diversion pipe, a first rotating column is fixed in the first baffle, and a second rotating column is fixed in the second baffle.

[0007] As a preferred solution of the intelligent small-grain precision compound direct seeding machine described in the present invention, the auxiliary component also includes a sealing part, which includes a support sleeve fixed to the bottom of the diversion pipe, a support ring fixed inside the support sleeve, a material receiving plate provided at the bottom of the support ring, a positioning shaft fixed to one side of the material receiving plate, a first torsion spring fixed to the outside of the positioning shaft, and the other end of the first torsion spring fixed to the support sleeve.

[0008] As a preferred solution of the intelligent small-grain precision compound direct seeding machine described in the present invention, the auxiliary component also includes a rotating part, the rotating part includes a turntable rotatably connected to one side of the discharge pipe, a rotating rod is fixed to one side of the first filter screen, and one side of the turntable is rotatably connected to a connecting rod through a rotating shaft, and the other end of the connecting rod is rotatably connected to the rotating rod.

[0009] As a preferred solution of the intelligent small-grain precision compound direct seeding machine described in the present invention, wherein: a movable groove is opened on the turntable, a first force-bearing rod is arranged in the movable groove, a first extrusion rod is fixed to the outside of the first rotating column, a second force-bearing rod is fixed to one side of the turntable, and a second extrusion rod is fixed to the outside of the second rotating column.

[0010] As a preferred solution of the intelligent small-grain precision compound direct seeding machine described in the present invention, an extension rod is inserted into the second extrusion rod, a spring is fixed on one side of the extension rod, and the other end of the spring is fixed to the inner wall of the second extrusion rod.

[0011] As a preferred solution of the intelligent small-grain precision compound direct seeding machine described in the present invention, a guide plate is provided at the end of the diversion pipe, a rotating shaft is fixed in the guide plate, a first stopper is fixed on the inner wall of the diversion pipe, and a second stopper is fixed in the seeding pipe.

[0012] As a preferred solution of the intelligent small-grain precision compound direct seeding machine described in the present invention, wherein: a fixed shaft is fixed inside the first force-bearing rod, the end of the fixed shaft passes through the outside of the turntable and is movably connected with the turntable, a second torsion spring is fixed outside the fixed shaft, and the other end of the second torsion spring is fixed to the turntable.

[0013] As a preferred solution of the intelligent small-grain precision compound direct seeding machine described in the present invention, a baffle is fixed on the top wall of the diversion pipe and above the first filter screen.

[0014] As a preferred solution of the intelligent small-grain precision compound direct seeding machine described in the present invention, the first filter is rotatably connected to the diversion pipe through a rotating shaft, and the second filter is vertically fixed to the inner wall of the diversion pipe.

[0015] As a preferred solution of the intelligent small-grain precision compound direct seeding machine described in the present invention, a connecting pipe is fixed to the end of the diversion pipe, an air suction pump is fixed to one side of the external silo, and the air suction pump is connected to the connecting pipe.

[0016] The beneficial effects of the present invention are as follows: through the setting of the outer silo and the outer silo, wheat seeds and rapeseed seeds can be stored respectively, and when the seeds to be sown need to be replaced, the seeds being sown can be intercepted so that they cannot continue to be sown downwards, and the seeds inside the seed tube are recovered into the designated silo, and then the seeds to be sown can be switched, and there is no need to completely empty the seeds inside the silo, thereby saving time for changing seeds and improving sowing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] 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 those skilled in the art, other drawings can be derived from these drawings without inventive effort. Among them:

[0018] Figure 1 This is the overall picture of the intelligent small-grain precision compound direct seeding machine.

[0019] Figure 2 This is the external silo structure diagram of the intelligent small-grain precision compound direct seeding machine.

[0020] Figure 3 For intelligent small grain precision compound direct seeding machine Figure 2 A partial enlarged structural diagram of point A in the middle.

[0021] Figure 4 This is the structural diagram of the outer and inner silos of the intelligent small-grain precision compound direct seeding machine.

[0022] Figure 5 This is a top-down cross-sectional structural diagram of the external silo of the intelligent small-grain precision compound direct seeding machine.

[0023] Figure 6 This is a side view cross-sectional structural diagram of the external silo of the intelligent small-grain precision compound direct seeding machine.

[0024] Figure 7 This is a cross-sectional structural diagram of the discharge pipe of the intelligent small-grain precision compound direct seeding machine.

[0025] Figure 8 This is a partial structural diagram of the discharge pipe of the intelligent small-grain precision compound direct seeding machine.

[0026] Figure 9 This is a partial structural diagram of the diversion pipe of the intelligent small-grain precision compound direct seeding machine.

[0027] Figure 10 This is a cross-sectional structural diagram of the turntable and the second extrusion rod of the intelligent small-grain precision compound direct seeding machine.

[0028] Figure 11This is a partial cross-sectional structural diagram of the diversion pipe of the intelligent small-grain precision compound direct seeding machine.

[0029] In the figure: 100, sowing assembly; 101, frame; 102, outer silo; 103, inner silo; 104, seeding mechanism; 105, seeding tube; 200, auxiliary assembly; 201, discharge pipe; 202, first baffle; 203, second baffle; 204, diverter pipe; 205, first filter; 206, second filter; 202-1, first rotating column; 203-1, second rotating column; 300, locking member; 301, mounting block; 302, limiting column; 303, connecting block; 304, tension spring; 305, limiting hole; 208, blocking member; 208a, support sleeve; 208b, support ring; 208c, receiving plate; 208d, positioning shaft; 208e, first torsion spring; 209, rotating part; 209a, turntable; 209b, rotating rod; 209c, connecting rod; 209a-1, movable groove; 209d, first force-bearing rod; 209e, first extrusion rod; 209f, second force-bearing rod; 209g, second extrusion rod; 209g-1, extension rod; 209g-2, spring; 204-1, guide plate; 204-2, rotating shaft; 204-3, first stop block; 204-4, second stop block; 209d-1, fixed shaft; 209d-2, second torsion spring; 205-1, stop bar; 210, connecting pipe; 211, suction pump. DETAILED DESCRIPTION

[0030] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.

[0031] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0032] Secondly, the term "one embodiment" or "embodiment" herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in various places throughout this specification does not necessarily refer to the same embodiment, nor does it refer to a separate or selective embodiment that is mutually exclusive of other embodiments.

[0033] Example 1

[0034] Reference Figure 1-Figure 7, which is the first embodiment of the present invention, provides an intelligent small-grain precision compound direct seeding machine. The intelligent small-grain precision compound direct seeding machine includes a sowing component 100, including a frame 101, an external silo 102 is provided on the top of the frame 101, and an internal silo 103 is fixed on the inside of the external silo 102. Two different seeds can be stored respectively through the internal silo 103 and the external silo 102.

[0035] A seeding mechanism 104 is provided on one side of the outer silo 102, and a seeding tube 105 is provided below the seeding mechanism 104. There are multiple seeding mechanisms 104 and seeding tubes 105, which are evenly distributed in a straight line on one side of the outer silo 102. The seeding mechanism 104 is used to discharge the seeds outward into the seeding tube 105, so as to complete the sowing of the seeds. The working principle of the seeding mechanism 104 is the existing technology, and this solution will not go into details, and those skilled in the art can clearly understand the working principle.

[0036] A rotary tillage mechanism is provided below the frame 101, so the sowing assembly 100 of the present invention integrates the processes of tilling the land, pressing, sowing, etc., has good adaptability to sandy soil and clay soil, and can achieve high-standard and high-efficiency precision sowing.

[0037] Doppler radar speed measurement and intelligent control technology are used to accurately control the sowing amount. The bow-shaped integrated maintenance-free seed tray integrates the seedbed trenching, sowing and seed compacting processes to ensure accurate sowing amount and consistent sowing depth. The working principle of this part is existing technology, and technical personnel in this field can set it as needed, so it will not be elaborated here.

[0038] The auxiliary component 200 is arranged in the outer silo 102 and includes a discharge pipe 201 fixed on one side of the inner silo 103. The discharge pipe 201 is inclined. The number of the discharge pipes 201 corresponds to the seeding mechanism 104, and the two ends are respectively connected to the seeding mechanism 104 and the inner silo 103, so that the seeds inside the inner silo 103 can enter the seeding mechanism 104.

[0039] A discharge chute is provided on the discharge pipe 201, which allows the seeds inside the external silo 102 to enter the seeding mechanism 104. A fixed plate is fixed between two adjacent discharge pipes 201, and the seeds inside the external silo 102 can be accumulated on the top of the discharge pipe 201 through the fixed plate.

[0040] A first baffle 202 and a second baffle 203 are provided in the discharge pipe 201 , and the number of the first baffle 202 and the second baffle 203 corresponds to the number of the discharge pipe 201 .

[0041] When it is necessary to sow the seeds inside the outer silo 102, the second baffle 203 is rotated to a vertical state, and the seeds inside the inner silo 103 are intercepted, so that the seeds cannot enter the seeding mechanism 104, and then the first baffle 202 is rotated downward to a vertical state. At this time, the seeds inside the outer silo 102 can enter the seeding mechanism 104 through the discharge chute, so that the seeds inside the outer silo 102 can be sown.

[0042] When it is necessary to replace the seeds to be sown, the first baffle 202 is rotated upward to block the feed chute. After the seeds remaining in the seeding mechanism 104 and the seeding tube 105 are discharged, the second baffle 203 is rotated downward to release the interception of the seeds in the inner silo 103 and allow them to enter the seeding mechanism 104, so that the seeds inside the inner silo 103 can be sown.

[0043] A diversion pipe 204 is provided on one side of the lower seeding pipe 105. The number of the diversion pipes 204 corresponds to the lower seeding pipe 105. One end of the diversion pipe 204 is connected to the lower seeding pipe 105, and the other end extends to the inside of the outer silo 102 and the inner silo 103, and passes through the outside of the outer silo 102.

[0044] A first filter screen 205 and a second filter screen 206 are provided in the diversion pipe 204. The diversion pipe 204 is provided with discharge holes at the positions of the outer silo 102 and the inner silo 103. The first filter screen 205 is rotatably connected to the diversion pipe 204 through a rotating shaft, and is located in the discharge hole corresponding to the outer silo 102 and blocks the discharge hole. The second filter screen 206 is fixed in a vertical state on one side of the discharge hole corresponding to the inner silo 103. Both the first filter screen 205 and the second filter screen 206 can intercept seeds.

[0045] When it is necessary to recover the seeds remaining inside the seed discharge mechanism 104 and the seed discharge tube 105 to the interior of the external silo 102, the first filter screen 205 is rotated upward to intercept the seeds inside the diversion tube 204. When suction is generated inside the diversion tube 204, the seeds falling from the seed discharge tube 105 can be sucked into the diversion tube 204 and intercepted when they come into contact with the first filter screen 205. At this time, the seeds will accumulate above the discharge hole, and as the number of seeds increases, the air suction device is intermittently opened and closed, so that the seeds can fall into the external silo 102 through the discharge hole, thereby completing the recovery of the seeds without discharging the seeds underground or using an additional collection device.

[0046] When it is necessary to recover the seeds remaining inside the seed-discharging mechanism 104 and the seed-discharging tube 105 to the inner silo 103, the first filter screen 205 is rotated downward to block the discharge hole, so that the seeds will not enter the outer silo 102 through the discharge hole. When suction is generated inside the diversion pipe 204, the seeds can be driven to move to one side of the second filter screen 206 and accumulate on one side of the second filter screen 206. At this time, the air suction device is intermittently opened and closed to allow the seeds to fall into the inner silo 103 through the discharge hole, thereby completing the recovery of the seeds. The second filter screen 206 can prevent the seeds from entering the air suction device.

[0047] A first rotating column 202-1 is fixed in the first baffle 202, and a second rotating column 203-1 is fixed in the second baffle 203. The first rotating column 202-1 and the second rotating column 203-1 respectively connect multiple first baffles 202 and second baffles 203 so that they can rotate synchronously when rotating. One end of the first rotating column 202-1 and the first rotating column 202-1 both penetrate to the outside of the outer silo 102.

[0048] The outer material bin 102 is provided with a locking part 300, including a mounting block 301 fixed to one side of the outer material bin 102, a limiting column 302 is inserted on the mounting block 301, a connecting block 303 is fixed to the top of the limiting column 302, a tension spring 304 is fixed to the bottom of the connecting block 303, and the bottom end of the tension spring 304 is fixed to the mounting block 301, and a limiting hole 305 is provided on the first rotating column 202-1. When the limiting column 302 is engaged with the limiting hole 305, the first rotating column 202-1 can be locked by cooperation between the two to prevent it from rotating at will.

[0049] There are two groups of locking members 300, and the other group corresponds to the second rotating column 203-1 and is also used to lock it. There are two limiting holes 305, which can lock the first rotating column 202-1 or the second rotating column 203-1 at different angles.

[0050] Example 2

[0051] Reference Figure 7-11 , which is the second embodiment of the present invention, and is based on the previous embodiment.

[0052] Specifically, the auxiliary component 200 also includes a blocking piece 208, the number of which corresponds to the discharge hole. The blocking piece 208 includes a support sleeve 208a fixed to the bottom of the diverter pipe 204, the support sleeve 208a coincides with the discharge hole, a support ring 208b is fixed inside the support sleeve 208a, and a receiving plate 208c is provided at the bottom of the support ring 208b. The receiving plate 208c is blocked by the support ring 208b. When suction is generated inside the diverter pipe 204, the receiving plate 208c will not rotate upward, and can seal the support sleeve 208a and the discharge hole, so as to avoid the suction generated by the diverter pipe 204 from acting on the discharge hole, causing the suction inside the diverter pipe 204 to be dispersed, thereby failing to suck the seeds inside the seed tube 105 upward.

[0053] A positioning shaft 208d is fixed on one side of the receiving plate 208c, and the positioning shaft 208d is used to support and position the receiving plate 208c. When the seeds fall downward to the top of the receiving plate 208c, the receiving plate 208c can be opened downward so that the seeds can fall downward. A first torsion spring 208e is fixed on the outside of the positioning shaft 208d, and the other end of the first torsion spring 208e is fixed to the support sleeve 208a. The first torsion spring 208e is used to close the opened receiving plate 208c upward.

[0054] Specifically, the auxiliary component 200 also includes a rotating part 209, which includes a turntable 209a rotatably connected to one side of the discharge pipe 201, and a rotating rod 209b is fixed on the rotating shaft inside the first filter screen 205. The rotating rod 209b can drive the first filter screen 205 to rotate. One side of the turntable 209a is rotatably connected to a connecting rod 209c through the rotating shaft, and the other end of the connecting rod 209c is rotatably connected to the rotating rod 209b. The connecting rod 209c is used to connect the turntable 209a with the rotating rod 209b.

[0055] When the rotating disk 209a rotates, the connecting rod 209c can drive the rotating rod 209b to move upward or downward, so that the rotating rod 209b can drive the first filter screen 205 to rotate upward or downward.

[0056] Specifically, a movable groove 209a-1 is opened on the turntable 209a, a first force-bearing rod 209d is arranged in the movable groove 209a-1, a first extrusion rod 209e is fixed to the outside of the first rotating column 202-1, a second force-bearing rod 209f is fixed to one side of the turntable 209a, and a second extrusion rod 209g is fixed to the outside of the second rotating column 203-1.

[0057] When the first rotating column 202-1 drives the first baffle 202 to rotate upward, it will also drive the first extrusion rod 209e to rotate downward, and push the first force-bearing rod 209d to rotate downward through the first extrusion rod 209e. At this time, the first force-bearing rod 209d will contact the inside of the movable groove 209a-1 and drive the turntable 209a to rotate, so that the turntable 209a can drive the rotating rod 209b to rotate through the connecting rod 209c, so that the first filter screen 205 can rotate upward and intercept the seeds. Therefore, when the first baffle 202 blocks the discharge chute, the first filter screen 205 can be rotated upward at the same time to intercept the seeds.

[0058] When the first rotating column 202-1 drives the first baffle 202 to rotate 90 degrees, the first squeezing rod 209e will be separated from the first force rod 209d due to length limitation. Therefore, when the turntable 209a rotates in the opposite direction, the first force rod 209d will not contact the first squeezing rod 209e and will not be hindered.

[0059] At the same time, the turntable 209a will drive the second force-bearing rod 209f to contact the second squeezing rod 209g. When the seeds inside the lower seed tube 105 are emptied and the seeds in the inner silo 103 need to be moved outward, the second rotating column 203-1 is rotated to drive the second baffle 203 to rotate downward. At this time, the second squeezing rod 209g will be driven to squeeze the second force-bearing rod 209f, thereby driving the turntable 209a to rotate in the opposite direction, and driving the rotating rod 209b to rotate downward through the connecting rod 209c, so that the first filter 205 can be rotated downward to a horizontal state.

[0060] In this state, the seeds inside the diverter tube 204 can be prevented from entering the outer silo 102. When recovering the seeds, it is only necessary to rotate the second baffle 203 upward to intercept the seeds inside the inner silo 103. The seeds inside the diverter tube 204 will directly enter the inner silo 103 under the action of suction.

[0061] When it is necessary to sow seeds inside the outer hopper 102 again, it is only necessary to rotate the first baffle 202 downward to separate it from the discharge chute. At this time, the first squeezing rod 209e will rotate in the direction of the first force-bearing rod 209d and squeeze the first force-bearing rod 209d. At this time, the first force-bearing rod 209d will rotate in the movable groove 209a-1. When the first squeezing rod 209e is reset, it will be separated from the first force-bearing rod 209d. At this time, the first force-bearing rod 209d will return to its original position. When the first squeezing rod 209e is rotated downward again, it can push the first force-bearing rod 209d to rotate downward again, and the above operation is repeated.

[0062] Specifically, an extension rod 209g-1 is inserted into the second extrusion rod 209g, and the extension rod 209g-1 is movably connected to the second extrusion rod 209g to extend the length of the second extrusion rod 209g so that it can push the second extrusion rod 209g to move a sufficient angle.

[0063] A spring 209g-2 is fixed to one side of the extension rod 209g-1, and the other end of the spring 209g-2 is fixed to the inner wall of the second extrusion rod 209g. The spring 209g-2 applies a thrust to the extension rod 209g-1, thereby enabling it to move outward.

[0064] Specifically, a guide plate 204-1 is provided at the end of the diversion tube 204, and a rotating shaft 204-2 is fixed inside the guide plate 204-1. The rotating shaft 204-2 is tightly connected to the diversion tube 204 to prevent the guide plate 204-1 from rotating at will. Multiple guide plates 204-1 are connected and fixed by a rotating shaft 204-2.

[0065] When it is necessary to recover the seeds inside the lower seed tube 105, the guide plate 204-1 is rotated toward the lower seed tube 105 to intercept the seeds falling from the lower seed tube 105. In this way, the diverter tube 204 can suck away the seeds when generating suction, preventing the seeds from falling to the ground.

[0066] A first stopper 204 - 3 is fixed to the inner wall of the shunt pipe 204 . When the guide plate 204 - 1 is in a vertical state, it will be released from the first stopper 204 - 3 and blocked by the first stopper 204 - 3 to prevent it from rotating into the shunt pipe 204 .

[0067] A second stopper 204-4 is fixed in the lower seed tube 105. When the guide plate 204-1 rotates toward the lower seed tube 105, the second stopper 204-4 supports the guide plate 204-1 to prevent the guide plate 204-1 from opening downward due to pressure from seeds.

[0068] Example 3

[0069] Reference Figures 1-11 , which is the third embodiment of the present invention, and is based on the first two embodiments.

[0070] Specifically, a fixed shaft 209d-1 is fixed inside the first force-bearing rod 209d, and the end of the fixed shaft 209d-1 passes through the outside of the turntable 209a. The fixed shaft 209d-1 is used to support and position the first force-bearing rod 209d, and is movably connected with the turntable 209a. A second torsion spring 209d-2 is fixed to the outside of the fixed shaft 209d-1, and the other end of the second torsion spring 209d-2 is fixed to the turntable 209a. The second torsion spring 209d-2 is used to reset the first force-bearing rod 209d after rotation.

[0071] Specifically, a baffle 205-1 is fixed on the inner top wall of the diversion tube 204 and above the first filter screen 205. When the first filter screen 205 rotates upward, it will contact the baffle 205-1 and support the first filter screen 205, thereby preventing the first filter screen 205 from being pushed and rotated by the thrust of the seeds.

[0072] Specifically, the first filter screen 205 is rotatably connected to the diversion pipe 204 via a rotating shaft, and the second filter screen 206 is vertically fixed to the inner wall of the diversion pipe 204 .

[0073] Specifically, a connecting pipe 210 is fixed at the end of the diversion pipe 204, and the connecting pipe 210 connects multiple diversion pipes 204. An air suction pump 211 is fixed on one side of the external silo 102, and the air suction pump 211 generates suction inside the connecting pipe 210, so that suction can be generated inside the diversion pipe 204, and the air suction pump 211 is connected to the connecting pipe 210.

[0074] During use, when it is necessary to sow the seeds inside the outer silo 102, the second baffle 203 is rotated to a vertical state, and the seeds inside the inner silo 103 are intercepted, so that the seeds cannot enter the seeding mechanism 104, and then the first baffle 202 is rotated downward to a vertical state. At this time, the seeds inside the outer silo 102 can enter the seeding mechanism 104 through the discharge chute, so that the seeds inside the outer silo 102 can be sown.

[0075] When the sown seeds need to be replaced, the first baffle 202 is rotated upward to block the feed chute. When the first rotating column 202-1 drives the first baffle 202 to rotate upward, it will simultaneously drive the first extrusion rod 209e to rotate downward, and push the first force-bearing rod 209d to rotate downward through the first extrusion rod 209e. At this time, the first force-bearing rod 209d will contact the inside of the movable groove 209a-1 and drive the turntable 209a to rotate, so that the turntable 209a can drive the rotating rod 209b to rotate through the connecting rod 209c, so that the first filter screen 205 can be rotated upward and intercept the seeds. Therefore, when the first baffle 202 blocks the feed chute, the first filter screen 205 can be rotated upward at the same time to intercept the seeds.

[0076] At this time, the guide plate 204-1 is rotated toward the inside of the lower seed tube 105 to intercept the seeds falling from the lower seed tube 105, and then the air suction pump 211 is started to generate suction inside the diversion tube 204, so that the seeds falling from the lower seed tube 105 can be sucked into the diversion tube 204 and intercepted when contacting the first filter screen 205. At this time, the seeds will accumulate above the discharge hole, and as the number of seeds increases, the air suction pump 211 is intermittently opened and closed, so that the seeds can fall into the outer silo 102 through the discharge hole, thereby completing the recovery of the seeds without discharging the seeds underground or using an additional collection device.

[0077] At this time, the second baffle 203 is rotated downward to release the interception of the seeds in the inner silo 103 and allow them to enter the seeding mechanism 104, so that the seeds inside the inner silo 103 can be sown, thereby avoiding the need to empty the seeds inside the silo when changing the seeds to be sown, thereby saving time for changing seeds and improving sowing efficiency.

[0078] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.

Claims

1. An intelligent small grain precision compound direct seeding machine, characterized by: include, A sowing assembly (100) comprises a frame (101), an outer silo (102) is provided on the top of the frame (101), an inner silo (103) is fixed inside the outer silo (102), a seeding mechanism (104) is provided on one side of the outer silo (102), and a seeding tube (105) is provided below the seeding mechanism (104); An auxiliary component (200) is arranged in the outer silo (102), comprising a discharge pipe (201) fixed to one side of the inner silo (103), a first baffle (202) and a second baffle (203) being arranged in the discharge pipe (201), a diversion pipe (204) being arranged on one side of the seed lower pipe (105), the other end of the diversion pipe (204) extending to the interior of the outer silo (102) and the inner silo (103), a first filter screen (205) and a second filter screen (206) being arranged in the diversion pipe (204), a first rotating column (202-1) being fixed in the first baffle (202), and a second rotating column (203-1) being fixed in the second baffle (203); The auxiliary component (200) further comprises a blocking member (208), the blocking member (208) comprising a support sleeve (208a) fixed to the bottom of the diverter pipe (204), a support ring (208b) fixed inside the support sleeve (208a), a material receiving plate (208c) provided at the bottom of the support ring (208b), a positioning shaft (208d) fixed to one side of the material receiving plate (208c), a first torsion spring (208e) fixed to the outside of the positioning shaft (208d), and the other end of the first torsion spring (208e) fixed to the support sleeve (208a); The auxiliary component (200) further includes a rotating member (209), the rotating member (209) including a rotating disk (209a) rotatably connected to one side of the discharge pipe (201), a rotating rod (209b) being fixed to one side of the first filter screen (205), one side of the rotating disk (209a) being rotatably connected to a connecting rod (209c) via a rotating shaft, and the other end of the connecting rod (209c) being rotatably connected to the rotating rod (209b); A movable groove (209a-1) is provided on the rotating disk (209a), a first force-bearing rod (209d) is provided in the movable groove (209a-1), a first extrusion rod (209e) is fixed to the outside of the first rotating column (202-1), a second force-bearing rod (209f) is fixed to one side of the rotating disk (209a), and a second extrusion rod (209g) is fixed to the outside of the second rotating column (203-1).

2. The intelligent small-grain precision compound direct seeding machine according to claim 1, characterized in that: An extension rod (209g-1) is inserted into the second extrusion rod (209g), a spring (209g-2) is fixed to one side of the extension rod (209g-1), and the other end of the spring (209g-2) is fixed to the inner wall of the second extrusion rod (209g).

3. The intelligent small-grain precision compound direct seeding machine according to claim 2, characterized in that: A guide plate (204-1) is provided at the end of the diverter tube (204), a rotating shaft (204-2) is fixed in the guide plate (204-1), a first stopper (204-3) is fixed on the inner wall of the diverter tube (204), and a second stopper (204-4) is fixed in the lower seed tube (105).

4. The intelligent small-grain precision compound direct seeding machine according to claim 3, characterized in that: A fixed shaft (209d-1) is fixed inside the first force-bearing rod (209d), the end of the fixed shaft (209d-1) passes through the outside of the turntable (209a) and is movably connected to the inside of the turntable (209a), and a second torsion spring (209d-2) is fixed outside the fixed shaft (209d-1), and the other end of the second torsion spring (209d-2) is fixed to the turntable (209a).

5. The intelligent small-grain precision compound direct seeding machine according to claim 4, characterized in that: A blocking bar (205-1) is fixed on the inner top wall of the diversion pipe (204) and located above the first filter screen (205).

6. The intelligent small-grain precision compound direct seeding machine according to claim 5, characterized in that: The first filter screen (205) is rotatably connected to the diversion pipe (204) via a rotating shaft, and the second filter screen (206) is vertically fixed to the inner wall of the diversion pipe (204).

7. The intelligent small-grain precision compound direct seeding machine according to claim 6, characterized in that: A connecting pipe (210) is fixed to the end of the diversion pipe (204), and an air suction pump (211) is fixed to one side of the external silo (102), and the air suction pump (211) is in communication with the connecting pipe (210).

Citation Information

Patent Citations

  • Precise sowing device for small Chinese herbal medicine seeds

    CN119138155A

  • Small grain seeder

    CN222073857U