Energy-saving environment-friendly intelligent innocent treatment device for feces in agriculture and animal husbandry

By using nozzles and moving column structures in the aeration tank, the bubble residence time is extended and tiny bubbles are formed, the problem of poor aeration effect is solved and the full dissolution of oxygen in the wastewater is achieved.

CN120309084AActive Publication Date: 2025-07-15TANGSHAN LAISHAN ANIMAL HUSBANDRY CO LTD
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Patent Information

Application Number
CN202510533892.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-27
Publication Date
2025-07-15
Estimated Expiration
2045-04-27

AI Technical Summary

Technical Problem

The contact time between bubbles and wastewater during the existing aeration treatment is short, which makes it difficult for oxygen to dissolve fully and affects the aeration effect.

Method used

The nozzle and the moving column structure are adopted, and the moving column is inserted into the pool through the driving component, extending the residence time of the bubbles in the wastewater, and driving the reciprocating movement of the nozzle and the intake pipe through the motor to form tiny bubbles and increasing the contact area between the bubbles and the wastewater.

Benefits of technology

It extends the residence time of bubbles in wastewater, improves the dissolution efficiency of oxygen, and enhances the aeration effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to an energy-saving and environment-friendly intelligent innocent treatment device for feces in agriculture and animal husbandry, and belongs to the technical field of innocent treatment of feces, the energy-saving and environment-friendly intelligent innocent treatment device comprises a pool body and a plurality of nozzles which are located in the pool body and are arranged downwards, and the nozzles communicate with the same air inlet pipe; a plurality of moving columns arranged in the width direction of the pool body are slidably connected to one side of the pool body in the height direction, and a driving assembly for driving the moving columns to be inserted into the pool body is arranged on the pool body. The aeration device has the effect of reducing the adverse effect on the aeration effect.
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Description

Technical Field

[0001] This application relates to the technical field of harmless treatment of fecal sewage, and in particular to an energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and pastoral fecal sewage. Background Art

[0002] During the breeding process in farms, a large amount of fecal sewage is generated. To meet environmental protection requirements, it is usually necessary to treat the fecal sewage. During the treatment, solid-liquid separation is usually carried out first, and then targeted treatment is carried out for solids and liquids. When treating the wastewater of fecal sewage in life, the aeration method is often used, and an aeration pipeline is laid at the bottom of the aeration tank. After the wastewater is introduced into the aeration tank, air is pressed into the aeration pipe and discharged from the pipe holes in the form of bubbles and enters the wastewater, creating a suitable living environment for microorganisms to promote their growth and reproduction, and then adsorbing and decomposing the organic matter in the wastewater through the metabolic activities of microorganisms.

[0003] The frictional force between the bubbles and the wastewater is relatively small, and the viscosity of the wastewater itself is limited. The bubbles quickly move from the bottom of the tank to the liquid surface under the action of buoyancy, which results in a short contact time between the wastewater and the bubbles, and the oxygen in the bubbles may not have enough time to fully dissolve into the wastewater, thus having an adverse effect on the aeration effect. Summary of the Invention

[0004] In order to reduce the adverse effect on the aeration effect, this application provides an energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and pastoral fecal sewage.

[0005] The energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and pastoral fecal sewage provided by this application adopts the following technical solutions: An energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and pastoral fecal sewage includes a pool body and a plurality of spray heads located in the pool body and arranged downward. The spray heads are all connected to the same intake pipe. A plurality of moving columns arranged along the width direction of the pool body are slidably connected to one side of the pool body in the height direction, and a driving component for driving the moving columns to insert into the pool body is provided on the pool body.

[0006] By adopting the above technical solutions, air enters the spray heads through the intake pipe and enters the wastewater through the spray heads. At this time, bubbles are formed in the wastewater. The driving component is used to drive the moving columns to insert into the pool body. At this time, the liquid level of the wastewater gradually rises, thereby prolonging the time for the bubbles to move from the bottom of the pool to the liquid surface, facilitating sufficient oxygen dissolution in the wastewater, and reducing the adverse effect on the aeration effect.

[0007] Optionally, the driving assembly includes a driving plate located on one side outside the pool body. The same end of the moving columns is fixedly connected to the driving plate. Rack bars are fixedly connected to the upper sides of the moving columns. A gear ring meshing with the rack bars is rotatably connected to the outer side wall of the pool body. A driving member for driving the gear ring to rotate simultaneously is provided on the pool body, and a fixing member for fixing the moving columns is provided on the pool body.

[0008] By adopting the above technical solution, the driving member drives the gear ring to rotate, thereby driving the rack bars to drive the moving columns to move towards the pool body until they are completely inserted into the pool body. At this time, the moving columns are fixed by the fixing member, improving the stability of the moving columns in the pool body. After the aeration is completed, the fixing member releases the fixation, and the driving member drives the gear ring to rotate, thereby driving the rack bars to drive the moving columns to reset, facilitating the extension of the time for the bubbles to move from the bottom of the pool to the liquid surface, facilitating the full dissolution of oxygen in the wastewater, and reducing the adverse effects on the aeration effect.

[0009] Optionally, springs connecting the side walls of the pool body are provided at the ends of the moving columns away from the driving plate. The fixing member includes a fixing plate located on one side in the height direction of the driving plate. A hydraulic cylinder fixedly connected to the pool body is installed on the fixing plate. The hydraulic cylinder drives the fixing plate to move and abut against the side of the driving plate away from the side wall of the pool body.

[0010] By adopting the above technical solution, the hydraulic cylinder drives the fixing plate to move towards the driving plate until it abuts against the side of the driving plate away from the pool body, thereby limiting the moving columns and improving the stability of the moving columns in the pool body.

[0011] Optionally, the air inlet pipe is arranged along the length direction of the pool body and the nozzles are all installed on the lower side of the air inlet pipe. The air inlet pipe is located under the moving columns and is slidably connected to the pool body along the width direction of the pool body. A moving block is sleeved at one end of the air inlet pipe. A reciprocating lead screw rotatably connected to the pool body is passed through and threadedly connected to the moving block. A motor is installed at one end of the reciprocating lead screw.

[0012] By adopting the above technical solution, the motor drives the reciprocating lead screw to rotate, thereby driving the moving block to drive the air inlet pipe and the nozzles to reciprocate along the width direction of the pool body, facilitating the nozzles to evenly disperse the bubbles in the pool body while continuously agitating the wastewater in the pool body, further facilitating the raising of the liquid level of the wastewater in the pool body and the full dissolution of oxygen, and reducing the adverse effects on the aeration effect.

[0013] Optionally, the diameter of the lower end of the nozzle is larger than the diameter of the upper end of the nozzle. A plurality of air injection holes are opened in the circumferential direction of the lower end of the nozzle. A plurality of groups of dividing sheets arranged along the length direction of the nozzle are provided inside the nozzle. The dividing sheets of the same group are all arranged along the circumferential direction of the rotation axis of the nozzle, and the projections of the dividing sheets in the vertical direction do not overlap.

[0014] By adopting the above technical solution, when air enters the nozzle, it first contacts multiple groups of dividing plates. Since each dividing plate does not overlap, it is convenient to divide the air entering the nozzle, which is convenient for forming microbubbles after the air leaves the nozzle, increasing the contact area between the bubbles and the wastewater, further facilitating dissolved oxygen, and reducing the adverse impact on the aeration effect.

[0015] Optionally, one group of the dividing plates is spirally arranged along the rotation axis of the nozzle and is rotatably connected to the inner side wall of the nozzle. At the lower end inside the nozzle, a plurality of stabilizing plates arranged circumferentially along the nozzle are rotatably connected. One end of each stabilizing plate close to each other is fixedly connected to the same fixing rod, and the dividing plates rotatably connected to the nozzle are all fixedly connected to the fixing rod.

[0016] By adopting the above technical solution, the dividing plates are spirally arranged, which is convenient for the air to drive the dividing plates to rotate around the rotation axis of the nozzle when the air moves to the dividing plates. Thus, the stabilizing plates are driven to rotate through the fixing rod, which is convenient for driving the air divided by the dividing plates in the nozzle to be discharged through the air holes under the action of the centrifugal force provided by the stabilizing plates, facilitating the uniform dispersion of the bubbles in the wastewater, and reducing the adverse impact on the aeration effect.

[0017] Optionally, a plugging plate capable of plugging the nozzle is provided at the upper end inside the nozzle. A rotating rod arranged along the length direction of the air inlet pipe is penetrated and fixedly connected to the middle of each plugging plate. The end of the air inlet pipe is bent upward at a right angle, and a driving shaft parallel to the rotating rod is rotatably connected to the bent end of the air inlet pipe. A plurality of dial plates are fixedly connected to the circumference of the driving shaft. When the air moves through the air inlet pipe and contacts the dial plates, the driving shaft is driven to rotate. A first belt is installed between the driving shaft and the rotating rod.

[0018] By adopting the above technical solution, the air enters the air inlet pipe and pushes the dial plates to drive the driving shaft to rotate. At this time, the driving shaft drives the rotating rod through the first belt to drive the plugging plate to rotate, so as to continuously plug and open the nozzle, which is convenient for driving the air ejected from the nozzle to form microbubbles, further increasing the contact area between the bubbles and the wastewater, further facilitating dissolved oxygen, and reducing the adverse impact on the aeration effect.

[0019] Optionally, the driving member includes a first bevel gear fixedly connected to one side of the gear ring close to the reciprocating lead screw. A second bevel gear is engaged with one side of the first bevel gear. A second belt is installed between the second bevel gear and the reciprocating lead screw. A connecting member for connecting the two is provided between the first bevel gear and the gear ring.

[0020] By adopting the above technical solution, during the process of the reciprocating screw driving the air intake pipe to move from one side of the pool body to the other side through the moving block, the second belt drives the gear ring to rotate through the first bevel gear, the second bevel gear and the connecting rod and drives the rack to drive the moving column to insert into the pool body. At this time, the connecting piece connects the first bevel gear and the gear ring, and the spring is stretched. When the moving column is fully inserted into the pool body, the air intake pipe moves to the other side. At this time, the rack is disengaged from the gear ring, and the reciprocating screw continues to rotate and drives the air intake pipe to move back and forth. When driving the moving column to reset, the spring restores its deformation and drives the moving column to move away from the inside of the pool body. At this time, the rack contacts the gear ring and drives the gear ring to rotate. At this time, the connecting piece is not connected to the first bevel gear and the gear ring, thereby reducing the adverse effects on the movement of the air intake pipe and reducing the adverse effects on the aeration effect.

[0021] Optionally, the connecting member includes ratchets corresponding one-to-one to the gear rings and inserted into the inner side of the gear rings, the ratchets are plugged into and fixedly connected with the same connecting rod, and a pawl adapted to the ratchet is hinged on the inner side wall of the gear ring.

[0022] By adopting the above technical solution, when the reciprocating screw drives the ring gear to rotate, the ratchet and the pawl make the first bevel gear and the ring gear relatively fixed; when the rack drives the ring gear to rotate, the ratchet and the pawl make the first bevel gear and the ring gear rotate relatively, reducing the adverse effect on the rotation of the reciprocating screw.

[0023] In summary, the present application includes at least one of the following beneficial technical effects: 1. Air enters the nozzle through the air inlet pipe and then enters the wastewater through the nozzle. At this time, bubbles are formed in the wastewater. The driving assembly drives the moving column to be inserted into the pool body. At this time, the wastewater level gradually rises, thereby extending the time for the bubbles to move from the bottom of the pool to the liquid surface, which is convenient for sufficient oxygen dissolution in the wastewater; 2. The motor drives the reciprocating screw to rotate, thereby driving the moving block to drive the air inlet pipe and the nozzle to reciprocate along the width direction of the pool body, so that the nozzle can evenly disperse the bubbles in the pool body while constantly stirring the wastewater in the pool body, further facilitating the wastewater level in the pool body to rise and fully dissolve oxygen; 3. Air enters the air inlet pipe and pushes the paddle to drive the drive shaft to rotate. At this time, the drive shaft drives the rotating rod through the first belt to drive the blocking plate to rotate, thereby continuously blocking and opening the nozzle, so as to drive the air ejected from the nozzle to form tiny bubbles, increase the contact area between the bubbles and the wastewater, and facilitate dissolved oxygen. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a schematic diagram of the overall structure of the energy-saving, environmentally friendly, intelligent agricultural and animal husbandry manure harmless treatment device in the embodiment of the present application.

[0025] Figure 2 It is a structural schematic diagram showing the positional relationship between the nozzle and the pool body in the embodiment of the present application.

[0026] Figure 3 It is a structural schematic diagram reflecting the positional relationship between the moving column and the pool body in the embodiment of the present application.

[0027] Figure 4 yes Figure 1 A magnified view of the structure in the middle.

[0028] Figure 5 It is a structural schematic diagram reflecting the position relationship between the air intake pipe and the paddle in the embodiment of the present application.

[0029] Figure 6 It is a structural schematic diagram showing the positional relationship between the nozzle and the paddle in the embodiment of the present application.

[0030] Explanation of the accompanying drawings: 1. pool body; 2. nozzle; 21. jet hole; 22. split plate; 23. stabilizing plate; 231. fixing rod; 3. air inlet pipe; 31. connecting pipe; 32. moving block; 33. reciprocating screw; 34. motor; 35. driving shaft; 351. dial plate; 36. rotating hole; 4. moving column; 5. driving assembly; 51. driving plate; 52. rack; 53. gear ring; 54. spring; 55. driving member; 551. first bevel gear; 552. second bevel gear; 553. connecting rod; 554. second belt; 56. fixing member; 561. fixing plate; 562. hydraulic cylinder; 57. connecting member; 571. ratchet; 572. pawl; 6. blocking plate; 61. rotating rod; 62. first belt. DETAILED DESCRIPTION

[0031] The present application is further described in detail below in conjunction with the accompanying drawings.

[0032] The present application discloses an energy-saving, environmentally friendly, intelligent agricultural and animal husbandry manure and sewage harmless treatment device. Figure 1 and Figure 2 An energy-saving, environmentally friendly, intelligent agricultural and animal husbandry manure harmless treatment device includes a pool body 1 with an opening on the upper side, and a plurality of nozzles 2 evenly distributed along the length direction of the pool body 1 are arranged on the lower side of the pool body 1, and the diameter of the lower end of the nozzle 2 is larger than the diameter of the upper end of the nozzle 2, and a plurality of evenly distributed jet holes 21 are opened circumferentially at the lower end of the nozzle 2.

[0033] The upper end of the nozzle 2 is fixedly connected and communicated with an air inlet pipe 3 which is arranged at the same level and along the length direction of the pool body 1. One end of the air inlet pipe 3 is bent upward at a right angle, and the bent end of the air inlet pipe 3 is fixedly connected to a connecting pipe 31 which is horizontal and located at one end on the upper side of the pool body 1. The end of the air inlet pipe 3 away from the connecting pipe 31 is inserted into the inner wall of the pool body 1 and is slidably connected to the inner wall of the pool body 1.

[0034] A moving block 32 that is sleeved on the connecting pipe 31 and slidably connected to the pool body 1 in the width direction of the pool body 1 is provided. A reciprocating lead screw 33 that is rotatably connected to the upper side wall of the pool body 1 is penetrated and threadedly connected to the lower side of the moving block 32. One end of the reciprocating lead screw 33 is provided with a motor 34 that is fixedly connected to the outer side wall of the pool body 1.

[0035] A plurality of horizontally arranged moving columns 4 that are evenly distributed in the length direction of the pool body 1 are slidably connected to one vertical side of the pool body 1. The moving columns 4 are cylindrical and arranged in the width direction of the pool body 1. A driving assembly 5 for driving the moving columns 4 to insert into the wastewater in the pool body 1 is provided on the pool body 1.

[0036] Air enters the spray head 2 through the air inlet pipe 3 and enters the wastewater through the spray head 2. At this time, bubbles are formed in the wastewater. The motor 34 drives the reciprocating lead screw 33 to rotate, thereby driving the moving block 32 to drive the air inlet pipe 3 and the spray head 2 to reciprocate in the width direction of the pool body 1, facilitating the spray head 2 to evenly disperse the bubbles in the pool body 1 while continuously stirring the wastewater in the pool body 1. At the same time, the driving assembly 5 drives the moving columns 4 to insert into the pool body 1. At this time, the liquid level of the wastewater gradually rises, thereby prolonging the time for the bubbles to move from the bottom of the pool to the liquid surface, facilitating sufficient oxygen dissolution in the wastewater.

[0037] Refer to Figure 1 、 Figure 2 and Figure 3 , the driving assembly 5 includes a vertical driving plate 51 located outside the pool body 1 on the side close to the motor 34. One ends of the moving columns 4 close to the motor 34 are fixedly connected to the driving plate 51. Rack bars 52 arranged in the length direction of the moving columns 4 are fixedly connected to the upper sides of the moving columns 4. The rack bars 52 penetrate through the side wall of the pool body 1 and are slidably connected to the pool body 1. Refer to Figure 1 、 Figure 3 and Figure 4 , vertical toothed rings 53 that are rotatably connected to the outer side wall of the pool body 1 and are in one-to-one correspondence with and meshed with the rack bars 52 are provided. Spring members 54 are fixedly connected to the lower sides of the moving columns 4 at the ends far from the motor 34. One ends of the spring members 54 far from the moving columns 4 are fixedly connected to the side wall of the pool body 1. A driving member 55 for simultaneously rotating the toothed rings 53 and a fixing member 56 for fixing the moving columns 4 are provided on the pool body 1.

[0038] The fixing member 56 includes a vertical fixing plate 561 located on the side of the pool body 1 close to the driving plate 51. A hydraulic cylinder 562 that is fixedly connected to the outer side wall of the pool body 1 is installed on the upper side of the fixing plate 561. The side of the driving plate 51 close to the fixing plate 561 is set to be inclined away from the pool body 1 and away from the fixing plate 561. When the driving plate 51 approaches the outer side wall of the pool body 1, the hydraulic cylinder 562 drives the fixing plate 561 to move in the vertical direction and presses the driving plate 51 along the inclined surface towards the direction close to the inside of the pool body 1 until the driving plate 51 abuts against the outer side wall of the pool body 1. At this time, the rack bar 52 disengages from the toothed ring 53, and the fixing plate 561 abuts against the outside of the driving plate 51.

[0039] The driving member 55 drives the gear ring 53 to rotate, thereby driving the rack 52 to drive the moving column 4 to move towards the pool body 1 until the driving plate 51 approaches the pool body 1. The hydraulic cylinder 562 drives the fixed plate 561 to move in the vertical direction and presses the driving plate 51 along the inclined plane to move towards the inside of the pool body 1 until the driving plate 51 abuts against the outer side wall of the pool body 1. At this time, the rack 52 disengages from the gear ring 53, the spring 54 is stretched, and the fixed plate 561 abuts against the outside of the driving plate 51, improving the stability of the moving column 4 in the pool body 1, facilitating the extension of the time for the bubbles to move from the bottom of the pool to the liquid surface, and facilitating the full dissolution of oxygen in the wastewater.

[0040] After the aeration is completed, the fixed plate 561 moves and releases the fixation, the spring 54 resumes deformation and drives the rack 52 to contact the gear ring 53, and the driving member 55 drives the gear ring 53 to rotate, thereby driving the rack 52 to drive the moving column 4 to reset.

[0041] Refer to Figure 1 、 Figure 3 and Figure 4 As shown in, the driving member 55 includes a vertical first bevel gear 551 disposed on one side of the gear ring 53 close to the reciprocating lead screw 33 and rotatably connected to the outer side wall of the pool body 1. A second bevel gear 552 that is meshed with the first bevel gear 551 on one side and rotatably connected to the side wall of the pool body 1 is provided. A second belt 554 is installed between the second bevel gear 552 and the reciprocating lead screw 33, and a connecting member 57 is provided between the gear ring 53 and the corresponding first bevel gear 551.

[0042] The connecting member 57 includes ratchets 571 corresponding to the gear rings 53 one by one and inserted into the gear rings 53. The ratchets 571 are all inserted and fixedly connected with the same connecting rod 553. Pawls 572 adapted to the ratchets 571 are hinged on the inner side wall of the gear ring 53. When the reciprocating lead screw 33 drives the gear ring 53 to rotate, the ratchets 571 and the pawls 572 make the first bevel gear 551 and the gear ring 53 relatively fixed.

[0043] During the process of the reciprocating lead screw 33 driving the air inlet pipe 3 to move from one side of the pool body 1 to the other side through the moving block 32, the second belt 554 drives the gear ring 53 to rotate through the first bevel gear 551, the second bevel gear 552 and the connecting rod 553 and drives the rack 52 to drive the moving column 4 to insert into the pool body 1. At this time, the ratchets 571 and the pawls 572 make the first bevel gear 551 and the gear ring 53 relatively fixed, and the spring 54 is stretched. When the driving plate 51 approaches the side wall of the pool body 1, the air inlet pipe 3 moves to the other side, driving the fixed plate 561 to move in the vertical direction and pressing the driving plate 51 along the inclined plane to move towards the inside of the pool body 1 until the driving plate 51 abuts against the outer side wall of the pool body 1. At this time, the rack 52 disengages from the gear ring 53, the spring 54 is stretched, and the reciprocating lead screw 33 continues to rotate and drives the air inlet pipe 3 to reciprocate.

[0044] When driving the moving column 4 to reset, the fixed plate 561 moves and releases the fixation of the driving plate 51. The spring 54 restores its deformation and drives the moving column 4 to move away from the inside of the pool body 1. At this time, the rack 52 contacts the gear ring 53 and drives the gear ring 53 to rotate. At this time, the ratchet 571 and the pawl 572 enable the first bevel gear 551 and the gear ring 53 to rotate relative to each other, reducing the adverse effect on the movement of the air inlet pipe 3.

[0045] Referring to Figure 5 and Figure 6 , in the nozzle 2, there are multiple groups of dividing sheets 22 evenly distributed in the vertical direction. Each group of dividing sheets 22 is evenly distributed along the circumferential direction of the rotation axis of the nozzle 2, and the projections of adjacent dividing sheets 22 in the vertical direction do not overlap. On the lower side inside the nozzle 2, there are multiple stabilizing plates 23 evenly distributed along the circumferential direction of the rotation axis. The length of the stabilizing plate 23 is greater than the radius of the upper end of the nozzle 2. At the ends of the stabilizing plates 23 close to each other, there are vertically fixed rods 231 fixedly connected to the nozzle 2 in a rotational manner.

[0046] A group of dividing sheets 22 located at the upper end of the nozzle 2 are all arranged in a spiral shape along the rotation axis of the nozzle 2, and their ends close to each other are fixedly connected to the upper ends of the fixed rods 231. At the upper ends of the nozzles 2, there are blocking plates 6 for blocking the nozzles 2. In the middle of each blocking plate 6, there is a rotating rod 61 horizontally arranged along the length direction of the air inlet pipe 3 and fixedly connected. When the blocking plate 6 rotates to the vertical position, the lower side of the blocking plate 6 is located inside the nozzle 2, and the upper side of the blocking plate 6 is located inside the air inlet pipe 3. When the blocking plate 6 is horizontal, it blocks the corresponding nozzle 2.

[0047] On one side of the vertical end of the air inlet pipe 3, there is a drive shaft 35 rotatably connected parallel to the rotating rod 61. On the circumference of the drive shaft 35, there are multiple evenly distributed dial plates 351 fixedly connected. The length of the dial plate 351 is adapted to the diameter of the air inlet pipe 3. On the side wall of the vertical end of the air inlet pipe 3, there is a rotating hole 36 adapted to the dial plate 351, and a first belt 62 is installed between the drive shaft 35 and the rotating rod 61.

[0048] The air enters the air inlet pipe 3 and pushes the paddle 351 to drive the driving shaft 35 to rotate. At this time, the driving shaft 35 drives the rotating rod 61 through the first belt 62 to drive the blocking plate 6 to rotate, thereby continuously blocking and opening the nozzle 2, so as to drive the air sprayed from the nozzle 2 to form tiny bubbles. The air enters the nozzle 2 and contacts with multiple groups of split pieces 22. Since the split pieces 22 do not overlap, it is convenient to split the air entering the nozzle 2, so that the air forms tiny bubbles after leaving the nozzle 2. The split pieces 22 at the upper end of the nozzle 2 are spirally arranged, so that when the air moves to the split piece 22, the split piece 22 is driven to rotate around the rotation axis of the nozzle 2, thereby driving the stabilizing plate 23 to rotate through the fixing rod 231, so that the air moved to the stabilizing plate 23 is discharged through the jet hole 21 under the action of the centrifugal force provided by the stabilizing plate 23, so that the bubbles are evenly dispersed in the wastewater.

[0049] The implementation principle of an energy-saving, environmentally friendly, intelligent, harmless treatment device for agricultural and animal husbandry manure in an embodiment of the present application is as follows: air enters the wastewater through the nozzle 2 to form bubbles, driving the air inlet pipe 3 and the nozzle 2 to move back and forth along the width direction of the pool body 1, so that the nozzle 2 can evenly disperse the bubbles in the pool body 1 while constantly stirring the wastewater in the pool body 1, and at the same time drive the moving column 4 to be inserted into the pool body 1. At this time, the wastewater level gradually rises, thereby extending the time for the bubbles to move from the bottom of the pool to the liquid surface, which is convenient for sufficient dissolved oxygen in the wastewater.

[0050] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. An energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and livestock manure, characterized in that: It includes a pool body (1) and a plurality of spray heads (2) located in the pool body (1) and arranged downward. The spray heads (2) are all connected to the same intake pipe (3). One side in the height direction of the pool body (1) is slidably connected with a plurality of moving columns (4) arranged along the width direction of the pool body (1), and a driving component (5) for driving the moving columns (4) to insert into the pool body (1) is provided on the pool body (1).

2. The energy-saving, environment-friendly and intelligent harmless treatment device for agricultural and pastoral manure according to claim 1, wherein: The driving component (5) includes a driving plate (51) located on one side outside the pool body (1). The same ends of the moving columns (4) are fixedly connected to the driving plate (51). Rack bars (52) are fixedly connected to the upper sides of the moving columns (4). A gear ring (53) meshing with the rack bars (52) is rotatably connected to the outer side wall of the pool body (1). A driving member (55) for driving the gear ring (53) to rotate simultaneously is provided on the pool body (1), and a fixing member (56) for fixing the moving columns (4) is provided on the pool body (1).

3. An energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and pastoral manure according to claim 2, characterized in that: Springs (54) connecting the side walls of the pool body (1) are provided at the ends of the moving columns (4) far from the driving plate (51). The fixing member (56) includes a fixing plate (561) located on one side in the height direction of the driving plate (51). A hydraulic cylinder (562) fixedly connected to the pool body (1) is installed on the fixing plate (561). The hydraulic cylinder (562) drives the fixing plate (561) to move and abut against the side of the driving plate (51) far from the side wall of the pool body (1).

4. According to claim 3, an energy-saving, environmentally friendly, intelligent agricultural and animal husbandry manure harmless treatment device is characterized by: The intake pipe (3) is arranged along the length direction of the pool body (1), and the spray heads (2) are all installed on the lower side of the intake pipe (3). The intake pipe (3) is located under the moving columns (4) and is slidably connected to the pool body (1) along the width direction of the pool body (1). A moving block (32) is sleeved at one end of the intake pipe (3). A reciprocating lead screw (33) rotatably connected to the pool body (1) is penetrated and threadedly connected to the moving block (32). A motor (34) is installed at one end of the reciprocating lead screw (33).

5. An energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and pastoral manure sewage according to claim 4, characterized in that: The diameter of the lower end of the spray head (2) is larger than that of the upper end of the spray head (2). A plurality of spray holes (21) are formed in the circumferential direction of the lower end of the spray head (2). A plurality of groups of dividing sheets (22) arranged along the length direction of the spray head (2) are provided inside the spray head (2). The dividing sheets (22) in the same group are all arranged along the circumferential direction of the rotation axis of the spray head (2), and the projections of the dividing sheets (22) in the vertical direction do not overlap.

6. The energy-saving, environmentally friendly, intelligent agricultural and animal husbandry manure harmless treatment device according to claim 5 is characterized by: One group of the dividing sheets (22) is arranged spirally along the rotation axis of the spray head (2) and is rotatably connected to the inner side wall of the spray head (2). A plurality of stabilizing plates (23) arranged along the circumferential direction of the spray head (2) are rotatably connected to the lower end inside the spray head (2). The ends of the stabilizing plates (23) close to each other are fixedly connected to the same fixing rod (231). The dividing sheets (22) rotatably connected to the spray head (2) are all fixedly connected to the fixing rod (231).

7. An energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and pastoral manure, characterized in that: At the upper ends inside the nozzle (2), there are plugging plates (6) capable of plugging the nozzle (2). A rotating rod (61) arranged along the length direction of the air inlet pipe (3) is inserted through and fixedly connected to the middle of each plugging plate (6). The end of the air inlet pipe (3) bends upwards at a right angle. One end of the bent air inlet pipe (3) is rotatably connected to a drive shaft (35) parallel to the rotating rod (61). A plurality of baffle plates (351) are fixedly connected to the circumference of the drive shaft (35). When air moves through the air inlet pipe (3) and contacts the baffle plates (351), the drive shaft (35) is driven to rotate. A first belt (62) is installed between the drive shaft (35) and the rotating rod (61).

8. An energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and pastoral manure, characterized in that: The driving member (55) includes a first bevel gear (551) fixedly connected to one side of the gear ring (53) close to the reciprocating lead screw (33). A second bevel gear (552) is engaged with one side of the first bevel gear (551). A second belt (554) is installed between the second bevel gear (552) and the reciprocating lead screw (33). A connecting member (57) for connecting the first bevel gear (551) and the gear ring (53) is provided therebetween.

9. An energy-saving, environmentally friendly and intelligent harmless treatment device for agricultural and pastoral manure, characterized in that: The connecting member (57) includes ratchets (571) corresponding to the gear rings (53) one by one and inserted into the inner sides of the gear rings (53). The ratchets (571) are inserted and fixedly connected to the same connecting rod (553). Pawls (572) adapted to the ratchets (571) are hinged to the inner side walls of the gear rings (53).

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