Compound organic fertilizer and processing method thereof

By designing a composite organic fertilizer processing equipment, the internal and external flip of the fertilizer pile is achieved by using step-by-step operations, the problem of uneven flip of the fertilizer pile in the prior art is solved, and the effect of efficient automatic flip and uniform corruption is achieved.

CN120208708AInactive Publication Date: 2025-06-27赖燕雪
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Patent Information

Application Number
CN202510354027.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2025-06-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When turning compost, the prior art cannot efficiently turn the inside and outside of the fertilizer pile, resulting in the difficulty of uniformly corroding the materials and uneven turning effects.

Method used

A composite organic fertilizer processing equipment is designed, including components such as fixing frames, sliding frames, auxiliary rods, oblique plates and T-bars. Through step-by-step operations, the internal and external stacking of the fertilizer pile is realized.

Benefits of technology

It realizes efficient automatic stacking, promotes uniform decomposition of materials, avoids the phenomenon of "sanding" of outer layers, optimizes temperature distribution and microbial activity, and improves the overall quality of fertilizer stacks.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of fertilizer manufacturing, and particularly relates to a compound organic fertilizer and a processing method thereof and compound organic fertilizer processing equipment, the compound organic fertilizer processing equipment comprises a fixed frame, a sliding frame is connected to the fixed frame, two auxiliary rods are connected to the sliding frame, an inclined plate is slidably connected to each auxiliary rod, and a T-shaped rod is slidably connected to the sliding frame; a T-shaped rod can make contact with the two inclined plates, a first compressed spring is fixedly connected between each inclined plate and the corresponding auxiliary rod, the sliding frame can slide on the fixed frame, and the two auxiliary rods are rotationally connected to the sliding frame. The process comprises the following steps: step 1, crushing and sterilizing excrement, straws and mushroom dregs, and then stacking the raw materials into a fertilizer pile for composting fermentation; fertilizer piles can be efficiently overturned and stacked inwards and outwards, the purpose of efficiently and automatically overturning the piles is achieved, and convenience is brought to actual use.
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Description

Technical Field

[0001] The present invention belongs to the technical field of fertilizer manufacturing, and particularly relates to a compound organic fertilizer and a processing method thereof. Background Art

[0002] In the production process of compound organic fertilizers, compost turning is a key link that can affect the fermentation efficiency and quality. Compost turning can fully mix the unfermented materials outside the compost pile with the high-temperature compost layer inside, avoid local anaerobic conditions or fermentation stagnation caused by stratification, ensure uniform distribution of microbial activities, and accelerate the overall composting process;

[0003] However, in the existing technology during the turning operation, it can only break up the original fertilizer pile and recompost it, or only turn the fertilizer originally at the bottom to the upper side. The turning effect is uneven, and it is impossible to place the fertilizer originally on the outside of the fertilizer pile inside the new fertilizer pile. It is difficult to uniformly compost the materials. Therefore, a device that can efficiently turn the fertilizer pile inside out is needed. Summary of the Invention

[0004] In view of this, the technical problem to be solved by the present invention is to provide a compound organic fertilizer and a processing method thereof, which can efficiently turn the fertilizer pile inside out, achieve the purpose of efficient automatic compost turning, and bring convenience to actual use.

[0005] A compound organic fertilizer processing device includes a fixed frame, a sliding frame is connected to the fixed frame, two auxiliary rods are connected to the sliding frame, an inclined plate is slidably connected to each auxiliary rod, a T-shaped rod is slidably connected to the sliding frame, the T-shaped rod can contact the two inclined plates, a first compression spring is fixedly connected between each inclined plate and the auxiliary rod, and the sliding frame can slide on the fixed frame.

[0006] Both of the two auxiliary rods are rotatably connected to the sliding frame.

[0007] It further includes a vertical frame slidably connected to the fixed frame, a horizontal rod is slidably connected to the vertical frame, and a sliding frame is slidably connected to the horizontal rod.

[0008] A sliding rod is slidably connected to the vertical frame, an arc-shaped rod is fixedly connected to the sliding rod, a shifting rod is slidably connected to the arc-shaped rod, a sliding rod is slidably connected to the sliding frame, the sliding rod can contact the arc-shaped rod, the shifting rod can shift the sliding frame to slide, a second compression spring is fixedly connected between the horizontal rod and the sliding frame, a rectangular rod is slidably connected to the front side of the sliding rod, the rectangular rod can contact the horizontal rod, and a third compression spring is fixedly connected between the horizontal rod and the vertical frame.

[0009] Two bottom frames are fixedly connected to each inclined plate, a blanking mesh plate is slidably connected between the two bottom frames on the right inclined plate, and the blanking mesh plate can be inserted between the two bottom frames on the left inclined plate.

[0010] The described composite organic fertilizer processing equipment is used for the manufacturing process of manufacturing composite organic fertilizer, and this process includes the following steps:

[0011] Step 1: Crush and sterilize feces, straws, and fungal residues, and then stack the raw materials into a fertilizer pile for compost fermentation;

[0012] Step 2: Move the fixed frame to the side of the composting position, and then operate the T-shaped rod to slide upward on the sliding frame;

[0013] Step 3: Move the sliding frame on the fixed frame and move the sliding frame to an open position;

[0014] Step 4: Rotate the two auxiliary rods away from each other and slide the two inclined plates apart;

[0015] Step 5: Reset both the sliding frame and the T-shaped rod, and change the inclination angle of the two auxiliary rods;

[0016] Step 6: Repeat Steps 1 to 4 to re-stack the fertilizer on the fertilizer pile from the outside to the inside;

[0017] Step 7: Perform subsequent crushing, screening, granulation, and drying operations to complete the processing. Description of the Drawings

[0018] The following further elaborates on the present invention in detail in conjunction with the drawings and specific implementation methods.

[0019] Figure 1 It is a schematic structural diagram of the T-shaped rod;

[0020] Figure 2 It is a schematic structural diagram of the auxiliary rod;

[0021] Figure 3 It is a schematic structural diagram of the inclined plate;

[0022] Figure 4 It is a schematic structural diagram of the chassis;

[0023] Figure 5 It is a schematic structural diagram of the collection part;

[0024] Figure 6 It is a schematic structural diagram of the blanking mesh plate;

[0025] Figure 7 It is a schematic structural diagram of the arc-shaped rod;

[0026] Figure 8 It is a schematic structural diagram of the dialing rod;

[0027] Figure 9 and Figure 10 It is a schematic overall structural diagram of a composite organic fertilizer processing equipment. Detailed implementation mode

[0028] A compound organic fertilizer processing device includes a fixed frame 303. A sliding frame 101 is connected to the fixed frame 303. Two auxiliary rods 102 are connected to the sliding frame 101. An inclined plate 401 is slidably connected to each auxiliary rod 102. A T-shaped rod 201 is slidably connected to the sliding frame 101. The T-shaped rod 201 can contact the two inclined plates 401. A first compression spring is fixedly connected between each inclined plate 401 and the auxiliary rod 102. The sliding frame 101 can slide on the fixed frame 303. A first electric push rod capable of pushing the T-shaped rod 201 to slide is fixedly connected to the sliding frame 101. A cylindrical rod is provided on each inclined plate 401. A long rod is fixedly connected to each auxiliary rod 102. A notch capable of passing through the long rod is formed on each cylindrical rod. Through the cooperation of the notch and the long rod, the sliding connection between the two auxiliary rods 102 and the two inclined plates 401 is realized.

[0029] Both of the two auxiliary rods 102 are rotatably connected to the sliding frame 101. Two first motors are fixedly connected to the sliding frame 101. The output shafts of the two first motors are respectively fixedly connected to the two auxiliary rods 102.

[0030] It further includes a vertical frame 302 slidably connected to the fixed frame 303. A cross bar 301 is slidably connected to the vertical frame 302. The sliding frame 101 is slidably connected to the cross bar 301.

[0031] A sliding rod 701 is slidably connected to the vertical frame 302. An arc-shaped rod 702 is fixedly connected to the sliding rod 701. A shifting rod 703 is slidably connected to the arc-shaped rod 702. A sliding rod 103 is slidably connected to the sliding frame 101. The sliding rod 103 can contact the arc-shaped rod 702. The shifting rod 703 can shift the sliding frame 101 to slide. A second compression spring is fixedly connected between the cross bar 301 and the sliding frame 101. A rectangular rod is slidably connected to the front side of the sliding rod 701. The rectangular rod can contact the cross bar 301. The second compression spring can provide a rightward elastic force for the sliding frame 101. A fourth motor is fixedly connected to the fixed frame 303. A first lead screw is fixedly connected to the output shaft of the fourth motor. The first lead screw is threadedly connected to the vertical frame 302. A third compression spring is fixedly connected between the cross bar 301 and the vertical frame 302. The third compression spring can provide a downward elastic force for the cross bar 301. A third electric push rod capable of pushing the arc-shaped rod 702 to slide is fixedly connected to the vertical frame 302. A fourth electric push rod capable of pushing the shifting rod 703 to slide is fixedly connected to the arc-shaped rod 702. During actual use, the shifting rod 703 has a relatively long length to ensure that the shifting rod 703 can always contact the sliding frame 101 after the cross bar 301 slides upward. In the figure, the length of the shifting rod 703 is not fully shown for the convenience of observing other structures. An eighth electric push rod capable of pushing the sliding rod 103 to slide is fixedly connected to the sliding frame 101. A ninth electric push rod capable of pushing the rectangular rod to slide is fixedly connected to the sliding rod 701.

[0032] Two base frames 402 are fixedly connected to each of the inclined plates 401, and a blanking mesh plate 406 is slidably connected between the two base frames 402 on the right inclined plate 401. The blanking mesh plate 406 can be inserted between the two base frames 402 on the left inclined plate 401, and a fifth electric push rod capable of pushing the blanking mesh plate 406 to slide is fixedly connected to the right inclined plate 401.

[0033] A moving rod 403 is slidably connected to each inclined plate 401, and the two moving rods 403 are slidably connected to two cylindrical rods respectively. A plurality of arc blocks 202 are fixedly connected to the T-shaped rod 201, and the plurality of arc blocks 202 are centrally symmetrically arranged on the T-shaped rod 201, and the heights of the plurality of arc blocks 202 gradually increase from the middle to both sides, and a sixth electric push rod capable of pushing the moving rod 403 to slide is fixedly connected to each cylindrical rod.

[0034] A moving seat 601 is slidably connected to the right side oblique plate 401 of the two oblique plates 401, and a stirring part 602 is rotatably connected to the moving seat 601. A plurality of knocking heads 603 are slidably connected to the stirring part 602, and a fourth compression spring is fixedly connected between each knocking head 603 and the stirring part 602. A first electric push rod capable of pushing the moving seat 601 to slide is fixedly connected to the right side oblique plate 401, and a second motor is fixedly connected to the moving seat 601. A gear is fixedly connected to the output shaft of the second motor, and a gear ring is fixedly connected to the stirring part 602. The gear is meshed with the gear ring, and a stirring paddle is fixedly connected to the stirring part 602 by tightening bolts.

[0035] A through slot 407 is provided on the right oblique plate 401, a slide plate 503 is slidably connected to the right oblique plate 401, a collecting portion 501 is rotatably connected to the slide plate 503, a plurality of collecting slots 502 are provided on the collecting portion 501, a wrapping sleeve 405 is fixedly connected to the right oblique plate 401, the wrapping sleeve 405 can be wrapped around the outside of the collecting portion 501, the through slot 407 and the collecting portion 501 are in corresponding positions, a baffle 404 is slidably connected to the oblique plate 401, the baffle 404 can block the through slot 407, a seventh electric push rod capable of pushing the baffle 404 to slide is fixedly connected to the right oblique plate 401, an eighth electric push rod capable of pushing the slide plate 503 to slide is fixedly connected to the right oblique plate 401, and a third motor capable of driving the collecting portion 501 to rotate is fixedly connected to the slide plate 503.

[0036] The composite organic fertilizer processing equipment is used to manufacture a manufacturing process of composite organic fertilizer, and the process comprises the following steps:

[0037] Step 1: crush and sterilize the feces, straw and fungus residue, and then pile the raw materials into a fertilizer pile for composting fermentation;

[0038] Step 2: Move the fixing frame 303 beside the composting position, and then operate the T-shaped rod 201 to slide upward on the sliding frame 101;

[0039] Step 3: Move the sliding frame 101 on the fixing frame 303 and move the sliding frame 101 to an open position;

[0040] Step 4: Rotate the two auxiliary rods 102 away from each other to slide the two inclined plates 401 apart;

[0041] Step 5: Reset both the sliding frame 101 and the T-shaped rod 201, and change the inclination angles of the two auxiliary rods 102;

[0042] Step 6: Repeat Steps 1 to 4 to re-stack the fertilizer on the fertilizer pile from the outside to the inside;

[0043] Step 7: Perform subsequent crushing, screening, granulation, and drying operations to complete the processing.

[0044] A compound organic fertilizer, which comprises the following raw materials in parts by weight: 80 parts of livestock and poultry manure, 35 parts of straw, and 0.8 part of fungus residue.

[0045] The fixed frame 303 is moved to the side of the composting position, and then the T-bar 201 is operated to slide upward on the sliding frame 101, so that the bottom of the T-bar 201 contacts the two cylindrical bars. As the T-bar 201 slides upward, the two cylindrical bars slide upward along the long bars of the two auxiliary bars 102 respectively. Since the two cylindrical bars are respectively fixed to the two inclined plates 401, when the two cylindrical bars slide upward, the two inclined plates 401 are driven to slide upward synchronously, thereby moving the two inclined plates 401. At this time, the two inclined plates 401 slide in the two auxiliary bars 102 respectively. At the same time, due to the two auxiliary bars 102 is tilted, and when the two oblique plates 401 slide in the two auxiliary rods 102 respectively, the two oblique plates 401 will also move closer to each other on the T-bar 201. The width of the T-bar 201 is relatively wide, and the front side of the T-bar 201 is a plane, which ensures that the moving rod 403 and the arc block 202 will not contact each other during this process, avoiding interference caused by movement, that is, the two oblique plates 401 can move along a triangular trajectory, and then collect the outermost layer of fertilizer. After the two oblique plates 401 merge with each other, so that the fertilizer will not fall, the sliding rack 10 The first auxiliary rod 102 is used to slide on the fixing frame 303 to move the sliding frame 101 to an empty position, and then the T-shaped rod 201 is slid downward. At this time, the two cylindrical rods are pushed by the two first compression springs and then pressed against the T-shaped rod 201. Then, as the T-shaped rod 201 continues to move downward, the two cylindrical rods slide downward along the two long rods, and then the two oblique plates 401 move along the two auxiliary rods 102, so that the two oblique plates 401 that were originally moved to merge with each other are separated from each other again, so that a gap appears between the two oblique plates 401, and then the fertilizer in the two oblique plates 401 is sprinkled on the empty position, and then the fertilizer in the two oblique plates 401 is sprinkled on the empty position. The fertilizer originally on the outside of the fertilizer pile is collected and piled up, and then the sliding frame 101 is slid back to its original position, and the T-bar 201 is lifted up again to repeat the above operation, and then the fertilizer originally on the fertilizer pile is re-piled from the outside to the inside in turn, so that the fertilizer originally on the outside of the fertilizer pile is piled on the inside of the new fertilizer pile, and then piled outward in turn, so as to promote uniform decomposition of materials, avoid "cooked" outer layer, optimize temperature distribution and microbial activity, enhance oxygen permeability, and reduce anaerobic areas, so as to achieve the effect of efficiently turning the fertilizer pile inside out and stacking it, realize the purpose of efficient automatic turning of the pile, and bring convenience to actual use.

[0046] Continuously slide the T-shaped rod 201 upward, and then use the two inclined plates 401 to hold the fertilizer on the outermost side of the fertilizer pile. Subsequently, after operating the sliding frame 101 to move to an open position, the two auxiliary rods 102 can rotate away from each other on the sliding frame 101. During this process, the two inclined plates 401 will always abut against the T-shaped rod 201. Then, as the two auxiliary rods 102 rotate, the two inclined plates 401 will directly produce a sliding effect of moving away from each other, thus completing the smooth spilling operation of the stored fertilizer, enabling the two inclined plates 401 to directly slide away from each other horizontally without having to follow the triangular trajectory they passed through when collecting fertilizer, thereby reducing the space required for the two inclined plates 401 to move during the fertilizer spilling process, avoiding the newly rising fertilizer pile gradually formed by repeated fertilizer releases in the subsequent process, and facilitating the realization of the inside-out stacking effect of the fertilizer pile;

[0047] During the process of collecting fertilizer multiple times from the outside to the inside, before each collection, the two auxiliary rods 102 are rotated in the direction of approaching each other, and then the operation of lifting the T-shaped rod 201 upward is carried out. Then, during the multiple sliding processes of the two inclined plates 401, the sliding angle can change each time, thus adapting to the gradually shrinking original fertilizer pile, thereby realizing the collection effect of the fertilizer pile from the outside to the inside and completing the turning pile function;

[0048] At the same time, when carrying out the fertilizer collection operation, if the height of the fertilizer pile is relatively low and the two inclined plates 401 cannot be closed at the uppermost side of the fertilizer pile during the sliding collection process, which is likely to cause the spilled fertilizer. When the two inclined plates 401 move to the uppermost side of the fertilizer pile, the two auxiliary rods 102 can be rotated to approach each other, so that the two inclined plates 401 slide straightly towards each other, so that they can be timely closed at the uppermost side of the fertilizer pile, reducing the spilled fertilizer that has been collected and ensuring the collection effect.

[0049] When carrying out the fertilizer turning pile operation, after the two inclined plates 401 approach each other to complete the fertilizer collection, the horizontal rod 301 can be slid upward to lift the collected fertilizer. Subsequently, operate the vertical frame 302 to slide on the fixed frame 303 to move the collected fertilizer to an open position. Then, make the two inclined plates 401 move away from each other to complete the fertilizer spilling operation. Then, reset the two inclined plates 401 and rotate the two auxiliary rods 102 on the sliding frame 101, thereby changing the sliding angle of the two inclined plates 401 during the collection process, so that the two inclined plates 401 can adapt to the original fertilizer pile with a gradually decreasing volume, and specifically scrape and collect the external fertilizer of the gradually decreasing original fertilizer pile in sequence to complete the collection effect of the fertilizer pile from the outside to the inside in sequence;

[0050] As the collecting operation proceeds, the fertilizer pile will gradually decrease. During this process, the inclination angle of the fertilizer pile from the upper right to the lower right gradually increases. The setting of the two inclined plates 401 with changeable inclination angles can fit and collect the fertilizer pile whose volume and inclination angle have changed, ensuring that the fertilizer can be gradually collected from the outside to the inside, and the inside-outside turning effect is successfully completed. If the sliding angle during the collection process cannot be changed, then after several fertilizer collections, the two inclined plates 401 will not be able to contact the fertilizer pile normally, thereby making it impossible to perform subsequent fertilizer turning operations.

[0051] Each time the fertilizer is sprinkled, the slide bar 701 is slid upward on the vertical frame 302, and then the rectangular rod is used to push the transverse rod 301 to slide upward on the vertical frame 302 to overcome the elastic force of the third compression spring, and then the transverse rod 301 is moved to a suitable height in cooperation with the vertical frame 302 to slide on the fixed frame 303, and the two oblique plates 401 are located directly above the fertilizer pile, and then the rectangular rod is slid back and the slide bar 103 is moved to a position where it can overlap with the arc surface rod 702, and then the lever 703 is operated to move the arc surface rod 70 2, and the sliding frame 101 is moved to slide on the transverse rod 301 by using the lever 703. During this process, the sliding rod 103 is always pressed against the arc rod 702 by the elastic force of the third compression spring, so that the two oblique plates 401 can perform the fertilizer dropping operation along an arc track with a high middle and low sides during the fertilizer dropping process, thereby ensuring that the fertilizer dropping process is carried out closely to the fertilizer pile at the lower side, avoiding the situation that the fertilizer is scattered due to the fertilizer dropping height being too high, and further facilitating the fertilizer to be dropped again to form a new fertilizer pile.

[0052] Before the two auxiliary rods 102 are rotated away from each other and the two inclined plates 401 are directly slid away from each other in the horizontal direction, the drop mesh plate 406 is first slid to the lower side of the two inclined plates 401, and the drop mesh plate 406 is inserted between the two bottom frames 402 on the left side, and then the two inclined plates 401 are moved away from each other. At this time, the fertilizer sliding down from the two inclined plates 401 will pass through the drop mesh plate 406 and then fall down, thereby ensuring that the fertilizer can achieve a slow and uniform falling effect during the falling process, and cooperate with the sliding frame 101 to move along an arc-shaped trajectory with a high middle and low sides, so that the collected fertilizer is evenly scattered on the outside of the new fertilizer pile, ensuring the uniformity of the pile turning, and further improving the composting effect;

[0053] The blanking mesh plate 406 has a longer width. When the blanking mesh plate 406 is inserted between the two base frames 402 on the left, it will have a longer space margin, thereby ensuring that when the two inclined plates 401 move away from each other, the blanking mesh plate 406 can always be in the space between the two inclined plates 401 to achieve a filtering effect.

[0054] After the two auxiliary rods 102 are rotated away from each other, so that the two inclined plates 401 move from the closed state to a state where a gap gradually appears, thus completing the fertilizer spilling operation, the two moving rods 403 can be moved to a position where they can contact a plurality of arc-shaped blocks 202. As the auxiliary rods 102 continue to rotate, when the moving rods 403 move into contact with the arc-shaped blocks 202, the inclined plates 401 will continuously slide upward within the auxiliary rods 102. When the inclined plates 401 move away from the arc-shaped blocks 202, the inclined plates 401 will quickly slide downward and reset on the auxiliary rods 102 under the elastic force of the first compression spring, causing the inclined plates 401 to collide and strike the T-shaped rods 201 once. As the two auxiliary rods 102 continue to slide, the two inclined plates 401 will strike the T-shaped rods 201 multiple times, causing the two inclined plates 401 to shake as a whole, thereby shaking off the fertilizer adhering to the blanking mesh plate 406 and avoiding the situation where the fertilizer cannot be completely discharged;

[0055] The arrangement that the heights of the plurality of arc-shaped blocks 202 gradually increase from the middle to both sides enables the inclined plates 401 to perform vibration operations with different amplitudes, further facilitating the shaking off of the fertilizer adhering to the blanking mesh plate 406.

[0056] After collecting the fertilizer and making the two inclined plates 401 contact each other, the movable seat 601 can be operated to slide on the inclined plates 401, and the stirring part 602 is continuously rotated on the movable seat 601. Then, the collected fertilizer is stirred by the rotating movable seat 601, facilitating the rapid dissipation of the heat generated by the fertilizer accumulation. Subsequently, the subsequent fertilizer spilling operation is carried out, bringing convenience to the subsequent composting operation again;

[0057] When the stirring part 602 rotates continuously, a plurality of knocking heads 603 on the stirring part 602 will slide against the elastic force of the fourth compression spring. As the rotation speed of the stirring part 602 increases, the centrifugal force received by the plurality of knocking heads 603 will increase, and then the plurality of knocking heads 603 can contact the blanking mesh plate 406, further knocking on the blanking mesh plate 406, thereby causing the blanking mesh plate 406 to vibrate, facilitating the complete falling of the fertilizer and avoiding fertilizer residue.

[0058] After each use of the two diagonal plates 401 for fertilizer collection, the baffle 404 can be slid on the diagonal plate 401 to expose the through groove 407, so that part of the fertilizer falls into the collection groove 502 that is directly opposite the through groove 407 among the multiple collection grooves 502. Then, the baffle 404 is slid back, and the collection part 501 is rotated on the sliding plate 503 to move the next collection groove 502 to the position directly opposite the through groove 407. Subsequently, the above operations are repeated during the next fertilizer collection, so as to retain part of the sample of the fertilizer collected each time. Subsequently, the staff can operate the sliding plate 503 to slide on the diagonal plate 401 to take out the fertilizer sampled multiple times, which is convenient for the staff to accurately observe the fertilizer fermentation effect and further brings convenience to the actual use;

[0059] Since the wrapping sleeve 405 can wrap around the outside of the collection part 501, after the fertilizer is collected in the collection groove 502 and rotates with the collection part 501, the collected fertilizer will be blocked by the wrapping sleeve 405, so that it will not fall out of the collection part 501, ensuring the sampling effect.

Claims

1. A composite organic fertilizer processing equipment, characterized in that, The invention comprises a fixed frame (303), the fixed frame (303) is connected to a sliding frame (101), the sliding frame (101) is connected to two auxiliary rods (102), each auxiliary rod (102) is slidably connected to an inclined plate (401), the sliding frame (101) is slidably connected to a T-shaped rod (201), the T-shaped rod (201) can contact the two inclined plates (401), a first compression spring is fixedly connected between each inclined plate (401) and the auxiliary rod (102), and the sliding frame (101) can slide on the fixed frame (303).

2. A composite organic fertilizer processing equipment according to claim 1, characterized in that, The two auxiliary rods (102) are both rotatably connected to the sliding frame (101).

3. A composite organic fertilizer processing equipment according to claim 2, characterized in that, It also includes a vertical frame (302) slidably connected to the fixed frame (303), a transverse rod (301) slidably connected to the vertical frame (302), and a sliding frame (101) slidably connected to the transverse rod (301).

4. A composite organic fertilizer processing equipment according to claim 3, characterized in that, The vertical frame (302) is slidably connected with a slide bar (701), a curved surface bar (702) is fixedly connected to the slide bar (701), a lever (703) is slidably connected to the curved surface bar (702), a slide bar (103) is slidably connected to the sliding frame (101), the slide bar (103) can contact the curved surface bar (702), the lever (703) can drive the sliding frame (101) to slide, a second compression spring is fixedly connected between the transverse bar (301) and the sliding frame (101), a rectangular bar is slidably connected to the front side of the slide bar (701), the rectangular bar can contact the transverse bar (301), and a third compression spring is fixedly connected between the transverse bar (301) and the vertical frame (302).

5. A composite organic fertilizer processing equipment according to claim 4, characterized in that, Two base frames (402) are fixedly connected to each of the inclined plates (401); a blanking mesh plate (406) is slidably connected between the two base frames (402) on the right inclined plate (401); and the blanking mesh plate (406) can be inserted between the two base frames (402) on the left inclined plate (401).

6. A composite organic fertilizer processing equipment according to claim 5, characterized in that, Each inclined plate (401) is slidably connected to a moving rod (403), a plurality of arc blocks (202) are fixedly connected to the T-shaped rod (201), the plurality of arc blocks (202) are centrally symmetrically arranged on the T-shaped rod (201), and the heights of the plurality of arc blocks (202) gradually increase from the middle to both sides.

7. A composite organic fertilizer processing equipment according to claim 6, characterized in that, A moving seat (601) is slidably connected to the right-hand inclined plate (401) of the two inclined plates (401), a stirring portion (602) is rotatably connected to the moving seat (601), a plurality of striking heads (603) are slidably connected to the stirring portion (602), and a fourth compression spring is fixedly connected between each striking head (603) and the stirring portion (602).

8. A composite organic fertilizer processing equipment according to claim 7, characterized in that, A through slot (407) is provided on the right oblique plate (401), a slide plate (503) is slidably connected to the right oblique plate (401), a collecting portion (501) is rotatably connected to the slide plate (503), a plurality of collecting slots (502) are provided on the collecting portion (501), a wrapping sleeve (405) is fixedly connected to the right oblique plate (401), and a baffle (404) is slidably connected to the oblique plate (401).

9. A manufacturing process for manufacturing compound organic fertilizer using a compound organic fertilizer processing equipment according to claim 4, characterized in that: The process includes the following steps: Step 1: crush and sterilize the feces, straw and fungus residue, and then pile the raw materials into a fertilizer pile for composting fermentation; Step 2: Move the fixed frame (303) to the side of the composting position, and then operate the T-bar (201) to slide upward on the sliding frame (101); Step 3: Move the sliding frame (101) on the fixed frame (303) to an open position; Step 4: Rotate the two auxiliary rods (102) away from each other to slide the two inclined plates (401) apart; Step 5: Reset the sliding frame (101) and the T-shaped rod (201) and change the inclination angles of the two auxiliary rods (102); Step 6: Repeat steps 1 to 4 to stack the fertilizer on the pile from the outside to the inside; Step 7: Carry out subsequent crushing, screening, granulation and drying operations to complete the processing.

10. The compound organic fertilizer prepared by the compound organic fertilizer manufacturing process according to claim 9, characterized in that: The compound organic fertilizer comprises the following raw materials in parts by weight: 60-80 parts of livestock and poultry manure, 30-35 parts of straws and 0.5-0.8 parts of fungus residues.

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