A livestock breeding feed mixing and stirring device
By introducing scraper and extrusion assembly into the livestock feed mixing device, the problems of increased friction and viscosity of high-water silage during the stirring process are solved, efficient stirring and recycling of water resources are achieved, and the feed intake and digestion and absorption effect of livestock and poultry are improved.
Patent Information
- Application Number
- CN202510662150.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-22
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-05-22
AI Technical Summary
When the existing livestock breeding feed mixing device treats silage with high moisture content, the friction force increases and the viscosity increases, resulting in low stirring efficiency and affecting the feed intake and digestion and absorption of livestock and poultry.
The scraper and extrusion assembly in the conical tank are used to extrude and collect the moisture of the silage through the coordinated work of the drive assembly and the transverse movement assembly, and the excess water is extruded with the rotation of the spiral shaft, and collected into the precipitation tank through the suction pump to realize the recycling of water resources.
Significantly reduce the moisture content of feed, reduce viscosity, improve stirring efficiency, reduce adhesion, realize the recycling of water resources, and reduce production costs.
Smart Images

Figure CN120189849B_ABST
Abstract
Description
Technical Field
[0001] The present invention mainly relates to the technical field of livestock breeding, and specifically relates to a livestock breeding feed mixing and stirring device. Background Technique
[0002] Livestock breeding refers to the agricultural activity of producing livestock and poultry products (such as meat, eggs, milk, etc.) through artificial feeding and management. With the rapid development of the livestock industry, the demand for feed has increased sharply. In livestock breeding feed, it usually consists of protein feed, energy feed, roughage, green feed, silage, mineral feed, and feed additives. Reasonable proportioning and efficient stirring have become the key to improving the nutritional value of feed.
[0003] A feed processing, mixing and stirring device described in the prior art includes a mixing tank. The mixing tank is composed of a cylindrical tank and a conical tank. An inlet pipe is provided on the front side of the cylindrical tank, and an outlet pipe is provided at the lower end of the conical tank. An electric control valve is provided on the outlet pipe, and a stirring mechanism is provided inside the mixing tank; the stirring mechanism includes a first U-shaped frame fixed in the middle of the upper side of the cylindrical tank. A motor is installed on the upper side of the first U-shaped frame. The output shaft of the motor penetrates through the first U-shaped frame and is connected to a rotating shaft. The lower end of the rotating shaft extends into the mixing tank and is connected to two groups of left and right symmetrically distributed stirring components; while the first scraper and the second scraper revolve, they can intermittently move towards the middle of the mixing tank and, through cooperation with the stirring rod, effectively stir and mix the raw materials in the middle of the mixing tank.
[0004] Although the above technology can improve production efficiency and reduce the situation where raw materials adhere to the inner wall of the mixing barrel and affect the stirring effect, for silage with a relatively high moisture content, the material has a relatively high viscosity, which will increase the friction between the stirring components of the mixing equipment and the feed. And during the mixing and stirring process, the high-moisture feed will make the moisture too much, the feed becomes wet and sticky, the palatability becomes poor, and it affects the feed intake and digestion and absorption of livestock and poultry. Summary of the Invention
[0005] Based on this, the purpose of the present invention is to provide a livestock breeding feed mixing and stirring device to solve the technical problems proposed in the above background technique.
[0006] To achieve the above purpose, the present invention provides the following technical solutions:
[0007] A livestock breeding feed mixing and stirring device, including a conical tank and a processing mechanism inside. A sealing cover is installed on the top of the conical tank. One side of the upper surface of the sealing cover is screwed with a suction pump. Four scraping plates are evenly and slidably arranged on the inner wall of the conical tank. Each scraping plate is provided with three stirring rods and a guiding inclined plate. The processing mechanism is used to control the movement of the four scraping plates along the inner wall of the conical tank and squeeze the moisture of the silage feed. One side of the sealing cover is installed with a feeding pipe. The tops of the four scraping plates are fixed with a ring plate. The outer wall of the ring plate is fixed with an annular track. The tank wall of the conical tank is provided with a chute corresponding to the annular track. The inner wall of the ring plate is provided with inner channel teeth;
[0008] The processing mechanism is composed of a driving component, a transverse movement component and an extrusion component. The driving component is arranged on the sealing cover. The driving component is used to control the movement of the ring plate along the chute. The extrusion component is arranged on the transverse movement component. The transverse movement component is used to control the horizontal movement of the extrusion component to adjust the position. The driving component and the extrusion component after position adjustment work together. The extrusion component is used to effectively extrude the silage feed with a high moisture content and collect the moisture.
[0009] Specifically in this technical solution, the driving component includes a driving motor. The driving motor is installed on the sealing cover by screws. The output end of the driving motor penetrates the sealing cover and extends to the inside of the conical tank. And the outer wall of the output end of the driving motor is fixedly installed with a driving gear. The tooth surface of the driving gear close to the tank wall of the conical tank is meshed and connected with the tooth surface of the inner channel teeth;
[0010] One side of the driving gear is meshed and connected with a driven gear. A rotating shaft is fixedly penetrated through the center of the driven gear. The bottom of the rotating shaft is connected with a worm through a flange. One side of the worm close to the driving gear is meshed and connected with a worm gear.
[0011] Specifically in this technical solution, a shaft rod is fixedly penetrated through the center of the worm gear. One end of the shaft rod away from the tank wall of the conical tank is provided with a vertical plate. The top of the vertical plate is fixedly screwed with the lower surface of the sealing cover. The outer wall of the other end of the shaft rod is fixedly installed with a driving gear.
[0012] Specifically in this technical solution, the diameter of the driving gear is larger than the diameter of the driven gear. The top of the rotating shaft is rotatably connected with the lower surface of the sealing cover. The diameter of the worm gear is smaller than the diameter of the driving gear.
[0013] Specifically in this technical solution, the transverse movement component includes a transverse plate. The transverse plate is located in the inner circle of the ring plate. Through grooves are symmetrically opened on the transverse plate. T-shaped plates are penetrated through both of the through grooves. The T-shaped ends of the two T-shaped plates are slidably connected with the upper surface of the transverse plate. On the upper surface of the transverse plate between the two through grooves, connecting plates are symmetrically welded. The tops of the two connecting plates are fixedly screwed with the lower surface of the sealing cover.
[0014] Specifically, on the outer wall of one side of the two connecting plates close to the T-shaped plate, electric slide rails are installed by screws. On the outer wall of the T-shaped ends of the two T-shaped plates close to the connecting plates, sliders are installed by screws. The two sliders are both slidably connected to the corresponding electric slide rails.
[0015] Specifically, the extrusion assembly includes a conical material cylinder. Annular brackets are symmetrically sleeved on the outer wall of the material cylinder. The tops of the two annular brackets are fixedly installed by screws at the bottoms of the two T-shaped plates arranged in the transverse movement assembly. A plurality of mesh holes are formed on the outer wall of the lower surface of the material cylinder between the two annular brackets. A spiral shaft is rotatably installed in the material cylinder. One end of the spiral shaft penetrates the wall of the material cylinder and a transmission gear is fixedly installed on the outer wall. The tooth surface of the transmission gear is in dynamic meshing with the driving gear arranged in the driving assembly.
[0016] Specifically, on the upper surface of one end of the material cylinder away from the transmission gear, a feed pipe is provided. The feed pipe is matched with the inlet pipe. The bottom opening of the inlet pipe is smaller than the top opening of the feed pipe. On the lower surface of one end of the material cylinder close to the transmission gear, a discharge pipe is provided. And a collection box is installed by screws at the position of the mesh holes on the lower surface of the material cylinder. The top opening of the collection box is in close contact with the outer wall of the material cylinder.
[0017] Specifically, the suction port of the suction pump is connected with a suction pipe. The other end of the suction pipe sequentially penetrates the sealing cover and the collection box and extends into the interior of the collection box. The output port of the suction pump is connected with an output pipe. The other end of the output pipe is connected with a sedimentation tank.
[0018] Specifically, the conical end of the conical tank is communicated with a discharge pipe. An electromagnetic valve is installed on the discharge pipe. A controller is installed on the outer wall of the conical tank. The controller is electrically connected with the electromagnetic valve, the processing mechanism and the suction pump through wires respectively.
[0019] In summary, the present invention mainly has the following beneficial effects: The moisture of the silage feed is extruded by the extrusion assembly. The spiral shaft rotates in the material cylinder, applies pressure to the feed, and extrudes and collects the excess moisture through the mesh holes, which can significantly reduce the moisture content of the feed, reduce the viscosity of the feed, reduce the adhesion phenomenon of the feed during the stirring process, and improve the stirring efficiency;
[0020] At the same time, through the transverse movement assembly, the extrusion assembly can be moved below the feed pipe as needed and meshed with the driving gear in the driving assembly. Through the meshing of the driving gear and the inner ring teeth, the driving ring plate moves along the chute. Through the transmission of the worm and the worm gear, the spiral shaft in the extrusion assembly is driven to rotate, so as to realize a cooperative working mode, ensuring that when the feed is being extruded, the scraper can continuously push the feed, further improving the stirring efficiency;
[0021] Through the design of the collection tank and the suction pump, the extruded moisture can be collected and precipitated, and then reused for feed mixing or other purposes, realizing the recycling of water resources, reducing water waste, and also lowering the production cost. Description of the Drawings
[0022] Figure 1 Is a schematic front isometric structure diagram of the overall device of the present invention;
[0023] Figure 2 Is a schematic front isometric structure diagram of the cross-section of the conical tank of the present invention;
[0024] Figure 3 Is a schematic front isometric structure diagram of the scraper and the processing mechanism of the present invention;
[0025] Figure 4 Is a schematic front isometric structure diagram of the scraper and the drive assembly of the present invention;
[0026] Figure 5 Is a schematic front isometric structure diagram of the drive assembly of the present invention;
[0027] Figure 6 Is a schematic front isometric structure diagram of the transverse movement assembly and the extrusion assembly of the present invention;
[0028] Figure 7 Is a schematic front isometric structure diagram of the cross-section of the barrel of the present invention;
[0029] Figure 8 Of the present invention Figure 7 Front view structure diagram.
[0030] Description of the Drawings: 1. Conical tank; 101. Discharge pipe; 102. Sealing cover; 1021. Feed pipe; 103. Controller; 2. Scraper; 201. Stirring rod; 202. Guide inclined plate; 203. Ring plate; 2031. Ring track; 2032. Inner teeth; 3. Processing mechanism; 4. Drive assembly; 401. Drive motor; 402. Driving gear; 403. Driven gear; 404. Rotating shaft; 4041. Worm; 405. Worm gear; 406. Shaft rod; 407. Driving gear; 408. Vertical plate; 5. Transverse movement assembly; 501. Horizontal plate; 502. Connecting plate; 503. Electric slide rail; 504. Through groove; 505. T-shaped plate; 5051. Slide block; 6. Extrusion assembly; 601. Barrel; 602. Spiral shaft; 603. Feed pipe; 604. Discharge pipe; 605. Collection tank; 606. Ring support; 607. Transmission gear; 7. Suction pump; 701. Suction pipe; 702. Output pipe. Detailed Description of the Invention
[0031] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as a limitation of the present invention.
[0032] Next, according to the overall structure of the present invention, its embodiments will be described.
[0033] In this embodiment, please refer to Figures 1-4 As shown, a livestock breeding feed mixing and stirring device includes a conical tank 1 and a processing mechanism 3 inside. A sealing cover 102 is installed on the top of the conical tank 1. A suction pump 7 is installed on one side of the upper surface of the sealing cover 102 by screws. Four scraping plates 2 are evenly and slidably arranged on the inner wall of the conical tank 1. Three stirring rods 201 and one guiding inclined plate 202 are arranged on each scraping plate 2. The processing mechanism 3 is used to control the movement of the four scraping plates 2 along the inner wall of the conical tank 1 and squeeze the moisture of the silage feed. An inlet pipe 1021 is installed on one side of the sealing cover 102. The tops of the four scraping plates 2 are fixed with a ring plate 203. An annular track 2031 is fixed on the outer wall of the ring plate 203. A chute corresponding to the annular track 2031 is provided on the tank wall of the conical tank 1. Inner teeth 2032 are opened on the inner wall of the ring plate 203;
[0034] The processing mechanism 3 is composed of a driving component 4, a transverse movement component 5 and an extrusion component 6. The driving component 4 is arranged on the sealing cover 102. The driving component 4 is used to control the movement of the ring plate 203 along the chute. The extrusion component 6 is arranged on the transverse movement component 5. The transverse movement component 5 is used to control the horizontal movement of the extrusion component 6 to adjust the position. The driving component 4 and the extrusion component 6 after position adjustment work together. The extrusion component 6 is used to effectively extrude the silage feed with a high moisture content and collect the moisture. The conical end of the conical tank 1 is connected to a discharge pipe 101. An electromagnetic valve is installed on the discharge pipe 101. A controller 103 is installed on the outer wall of the conical tank 1. The controller 103 is electrically connected to the electromagnetic valve, the processing mechanism 3 and the suction pump 7 through wires.
[0035] When mixing and stirring livestock breeding feed, the operator sets stirring parameters (i.e., sets stirring time, speed, etc.) through the controller 103. At this time, the prepared mixed feed is put into the conical tank 1 from the feed pipe 1021. The driving component 4's driving part (the driving motor 401 in the text) is started, and the control ring plate 203 moves along the chute through the annular track 2031. The ring plate 203 drives the connected scraper 2 to rotate along the tank wall. The stirring rod 201 and the guiding inclined plate 202 on the scraper 2 work together to evenly stir the added feed. Among them, the guiding inclined plate 202 can make the feed slide more easily along the inclined plane under the action of gravity and stirring force through the inclination angle, thereby reducing the adhesion of the feed on the tank wall and improving the flow performance of the feed. After the mixing and stirring are completed, by opening the solenoid valve, the stirred feed is discharged from the discharge pipe 101;
[0036] When it is necessary to mix and stir silage feed or other feeds with relatively high water content, the operator needs to start the transverse movement component 5 through the controller 103 and adjust the position of the extrusion component 6 so that the feed inlet of the extrusion component 6 (the feed pipe 603 in the text) is located below the feed pipe 1021. At the same time, the driving part of the extrusion component 6 (the transmission gear 607 in the text) will be linked with the driving gear 407 of the driving component 4. It should be noted that the meshing accuracy between the transmission gear 607 and the driving gear 407 must be ensured to guarantee the stability of their coordinated work. At this time, the silage feed or other feeds are put into the feed inlet of the extrusion component 6 from the feed pipe 1021. The driving component 4 will drive the transmission gear 607 of the extrusion component 6 to rotate while driving the scraper 2 to rotate. The extrusion component 6 effectively extrudes the silage feed or other feeds with relatively high water content, separates and collects the excess water, ensures that the feed humidity is appropriate, and the feed after removing the water enters the conical tank 1 through the discharge pipe 604 and continues to be mixed and stirred with other feeds in the tank. Finally, a uniform and moderately humid feed mixture is formed and discharged through the solenoid valve-controlled discharge pipe 101 to complete the efficient feed treatment process;
[0037] Therefore, the present invention can significantly reduce the water content of the feed, reduce the viscosity of the feed, reduce the adhesion phenomenon of the feed during the stirring process, improve the stirring efficiency, and at the same time, the coordinated working mode ensures that when the feed is being extruded, the scraper 2 can continuously push the feed, further improving the stirring efficiency.
[0038] Please refer to Figures 3-5 As shown, the driving component 4 includes a driving motor 401. The driving motor 401 is installed on the sealing cover 102 by screws. The output end of the driving motor 401 penetrates the sealing cover 102 and extends into the conical tank 1. And the outer wall of the output end of the driving motor 401 is fixedly installed with a driving gear 402. The tooth surface of the driving gear 402 close to the tank wall of the conical tank 1 is meshed and connected with the tooth surface of the inner track tooth 2032;
[0039] One side of the driving gear 402 is meshed and connected with a driven gear 403. A rotating shaft 404 is fixedly penetrated through the center of the driven gear 403. A worm 4041 is connected to the bottom of the rotating shaft 404 through a flange. One side of the worm 4041 close to the driving gear 402 is meshed and connected with a worm wheel 405;
[0040] A shaft rod 406 is fixedly penetrated through the center of the worm wheel 405. One end of the shaft rod 406 away from the wall of the conical tank 1 is provided with a vertical plate 408. The top end of the vertical plate 408 is fixedly screwed to the lower surface of the sealing cover 102. A driving gear 407 is fixedly installed on the outer wall of the other end of the shaft rod 406. The diameter of the driving gear 402 is larger than that of the driven gear 403. The top end of the rotating shaft 404 is rotatably connected to the lower surface of the sealing cover 102. The diameter of the worm wheel 405 is smaller than that of the driving gear 407.
[0041] When the driving motor 401 is started, the output end of the driving motor 401 will drive the driving gear 402 to rotate, and then drive the driven gear 403 and the rotating shaft 404 to rotate cooperatively. During the rotation of the rotating shaft 404, the worm 4041 will be driven to rotate, and the worm 4041 will drive the worm wheel 405 to rotate, and then drive the shaft rod 406 and the driving gear 407 to rotate. When the driving gear 402 rotates, it will also drive the ring plate 203 to rotate synchronously through the inner race teeth 2032, so as to realize the linkage between the ring plate 203 and the scraper 2, ensure the uniform distribution of the feed in the conical tank 1, effectively prevent the feed from accumulating, and improve the stirring effect.
[0042] Please refer to Figures 6-7 As shown in the figure, the transverse movement assembly 5 includes a transverse plate 501. The transverse plate 501 is located in the inner circle of the ring plate 203. Through grooves 504 are symmetrically formed in the transverse plate 501. T-shaped plates 505 are penetrated through the two through grooves 504. The T-shaped ends of the two T-shaped plates 505 are slidably connected to the upper surface of the transverse plate 501. Connecting plates 502 are symmetrically welded on the upper surface of the transverse plate 501 between the two through grooves 504. The top ends of the two connecting plates 502 are fixedly screwed to the lower surface of the sealing cover 102. Electric slide rails 503 are screwed to the outer walls of one side of the two connecting plates 502 close to the T-shaped plates 505. Sliders 5051 are screwed to the outer walls of the T-shaped ends of the two T-shaped plates 505 close to the connecting plates 502. The two sliders 5051 are slidably connected to the corresponding electric slide rails 503;
[0043] The extrusion assembly 6 includes a conical barrel 601. An annular bracket 606 is symmetrically sleeved on the outer wall of the barrel 601. The tops of the two annular brackets 606 are fixedly screwed to the bottoms of the two T-shaped plates 505 provided in the transverse movement assembly 5. A plurality of mesh holes are formed in the outer wall of the lower surface of the barrel 601 between the two annular brackets 606. A spiral shaft 602 is rotatably installed in the barrel 601. One end of the spiral shaft 602 penetrates the wall of the barrel 601 and a transmission gear 607 is fixedly installed on the outer wall. The tooth surface of the transmission gear 607 is in dynamic meshing with the drive gear 407 provided in the drive assembly 4;
[0044] An inlet pipe 603 is provided on the upper surface of one end of the barrel 601 away from the transmission gear 607. The inlet pipe 603 is matched with the inlet pipe 1021. The bottom opening of the inlet pipe 1021 is smaller than the top opening of the inlet pipe 603. A discharge pipe 604 is provided on the lower surface of the end of the barrel 601 close to the transmission gear 607. A collection box 605 is screwed and installed at the position of the mesh hole on the lower surface of the barrel 601. The top opening of the collection box 605 is in close contact with the outer wall of the barrel 601. The suction port of the suction pump 7 is connected to a suction pipe 701. The other end of the suction pipe 701 sequentially penetrates the sealing cover 102 and the collection box 605 and extends into the interior of the collection box 605. The output port of the suction pump 7 is connected to an output pipe 702. The other end of the output pipe 702 is connected to a sedimentation tank. The suction pipe 701 is a flexible pipe to facilitate the movement of the barrel 601.
[0045] When it is necessary to move the extrusion assembly 6 below the inlet pipe 1021, the operator starts the two electric slide rails 503 in the transverse movement assembly 5 through the controller 103. The electric slide rails 503 drive the slider 5051 to drive the T-shaped plate 505 to slide along the through groove 504, so that the two T-shaped plates 505 drive the whole barrel 601 to move transversely through the connected annular brackets 606 until the T-shaped plate 505 moves from one end of the through groove 504 to the other end. At this time, the inlet pipe 603 of the barrel 601 is aligned with the inlet pipe 1021, and at the same time, the transmission gear 607 will automatically mesh with the drive gear 407;
[0046] Next, the silage feed with high water content or other feeds are sent into the barrel 601 through the feed pipe 1021 and the inlet pipe 603. At this time, the drive motor 401 is started, which will cause the drive gear 407 to rotate, driving the transmission gear 607 and the screw shaft 602 to rotate synchronously. The screw shaft 602 pushes the incoming feed towards the discharge pipe 604. At the same time, the squeezed water will be discharged through the mesh holes into the collection box 605. The suction pump 7 is started, and it will suck the water collected in the collection box 605 through the suction pipe 701 and discharge it into the sedimentation tank through the output pipe 702 for sedimentation treatment. The sedimented water can be reused for feed mixing or other purposes, realizing the recycling of water resources, reducing water resource waste, and also reducing production costs. At the same time, it solves the dehydration and separation of the feed, reduces the viscosity of the feed, and reduces the adhesion phenomenon of the feed during the stirring process.
[0047] The working principle of the present invention is as follows:
[0048] When mixing and stirring livestock and poultry breeding feeds, the operator sets the stirring parameters (i.e., sets the stirring time, speed, etc.) through the controller 103. At this time, the prepared mixed feed is put into the conical tank 1 from the feed pipe 1021, and the drive motor 401 is started. The output end of the drive motor 401 will drive the driving gear 402 to rotate, thereby driving the driven gear 403 and the rotating shaft 404 to rotate cooperatively. During the rotation of the rotating shaft 404, the worm 4041 will be driven to rotate, and the worm 4041 will drive the worm gear 405 to rotate, thereby driving the shaft rod 406 and the drive gear 407 to rotate. When the driving gear 402 rotates, it will also drive the ring plate 203 to rotate synchronously through the inner channel teeth 2032. The ring plate 203 moves along the chute through the annular track 2031. The ring plate 203 drives the connected scraper 2 to rotate along the tank wall. The stirring rod 201 and the guiding inclined plate 202 on the scraper 2 work together to evenly stir the added feed. After the mixing and stirring are completed, by opening the solenoid valve, the stirred feed is discharged from the discharge pipe 101;
[0049] When it is necessary to mix and stir silage feeds or other feeds with relatively high water content, the operator needs to start the two electric slide rails 503 in the transverse movement component 5 through the controller 103. The electric slide rails 503 drive the slider 5051 to drive the T-shaped plate 505 to slide along the through groove 504, so that the two T-shaped plates 505 drive the entire barrel 601 to move transversely through the connected annular bracket 606 until the T-shaped plate 505 moves from one end of the through groove 504 to the other end. At this time, the inlet pipe 603 of the barrel 601 is aligned with the feed pipe 1021, and at the same time, the transmission gear 607 will automatically engage with the drive gear 407;
[0050] Next, the silage or other feed with high water content is sent into the barrel 601 through the feed pipe 1021 and the feeding pipe 603. At this time, the driving motor 401 is started, which will cause the driving gear 407 to rotate, driving the transmission gear 607 and the screw shaft 602 to rotate synchronously. The screw shaft 602 pushes the incoming feed towards the discharge pipe 604, and at the same time, the squeezed water will be discharged through the mesh holes into the collection box 605. The suction pump 7 is started, and it will suck the water collected in the collection box 605 through the suction pipe 701 and discharge it into the sedimentation tank through the output pipe 702 for sedimentation treatment. The feed after removing the water enters the conical tank 1 through the discharge pipe 604, and continues to be mixed and stirred with other feeds in the tank. Finally, a uniform and moderately humid feed mixture is formed and discharged through the solenoid valve controlled discharge pipe 101, completing the efficient feed treatment process.
[0051] Although the embodiments of the present invention have been shown and described, the specific embodiments are only explanations of the present invention and are not limitations of the invention. The specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art can make modifications, substitutions and variations that do not make creative contributions to the embodiments as needed, but as long as they are within the scope of the claims of the present invention, they are protected by the patent law.
Claims
1. A livestock breeding feed mixing and stirring device, comprising a conical tank (1) and a processing mechanism (3) inside. A sealing cover (102) is installed at the top of the conical tank (1). A suction pump (7) is installed on one side of the upper surface of the sealing cover (102) by screws. Four scraping plates (2) are evenly and slidably arranged on the inner wall of the conical tank (1). Three stirring rods (201) and one guiding inclined plate (202) are arranged on each scraping plate (2). The processing mechanism (3) is used to control the movement of the four scraping plates (2) along the inner wall of the conical tank (1) and squeeze the moisture of the silage feed. It is characterized in that, On one side of the sealing cover (102), a feed pipe (1021) is installed. At the top ends of the four scraping plates (2), an annular plate (203) is fixed. On the outer peripheral wall of the annular plate (203), an annular track (2031) is fixed. On the tank wall of the conical tank (1), a chute corresponding to the annular track (2031) is provided. On the inner peripheral wall of the annular plate (203), inner channel teeth (2032) are formed. The processing mechanism (3) consists of a driving component (4), a transverse movement component (5) and an extrusion component (6). The driving component (4) is arranged on the sealing cover (102). The driving component (4) is used to control the annular plate (203) to move along the chute. The extrusion component (6) is arranged on the transverse movement component (5). The transverse movement component (5) is used to control the horizontal movement of the extrusion component (6) to adjust the position. The driving component (4) and the extrusion component (6) with adjusted position work together. The extrusion component (6) is used to effectively extrude the silage with a higher moisture content and collect the moisture. The transverse movement component (5) includes a transverse plate (501). The transverse plate (501) is located in the inner circle of the annular plate (203). Through slots (504) are symmetrically formed on the transverse plate (501). In both of the two through slots (504), a T-shaped plate (505) is inserted. The T-shaped ends of the two T-shaped plates (505) are slidably connected to the upper surface of the transverse plate (501). On the upper surface of the transverse plate (501) and between the two through slots (504), connecting plates (502) are symmetrically welded. The top ends of the two connecting plates (502) are fixed to the lower surface of the sealing cover (102) by screws. On the outer wall of one side of the two connecting plates (502) close to the T-shaped plate (505), electric slide rails (503) are installed by screws. On the outer wall of the T-shaped ends of the two T-shaped plates (505) close to the connecting plates (502), sliders (5051) are installed by screws. The two sliders (5051) are slidably connected to the corresponding electric slide rails (503). The extrusion component (6) includes a conical material cylinder (601). Annular brackets (606) are symmetrically sleeved on the outer wall of the material cylinder (601). The tops of the two annular brackets (606) are fixed to the bottom ends of the two T-shaped plates (505) arranged in the transverse movement component (5) by screws. On the outer wall of the lower surface of the material cylinder (601) and between the two annular brackets (606), a plurality of mesh holes are formed. And a spiral shaft (602) is rotatably installed in the material cylinder (601). One end of the spiral shaft (602) penetrates the wall body of the material cylinder (601) and a transmission gear (607) is fixedly installed on the outer wall. The tooth surface of the transmission gear (607) is in dynamic meshing with the driving gear (407) arranged in the driving component (4).
2. The livestock breeding feed mixing and stirring device according to claim 1, wherein, The driving assembly (4) includes a driving motor (401). The driving motor (401) is installed on the sealing cover (102) by screws. The output end of the driving motor (401) penetrates through the sealing cover (102) and extends into the conical tank (1). And a driving gear (402) is fixedly installed on the outer wall of the output end of the driving motor (401). The tooth surface of the driving gear (402) close to the wall of the conical tank (1) is meshed and connected with the tooth surface of the inner race teeth (2032). One side of the driving gear (402) is meshed and connected with a driven gear (403). A rotating shaft (404) is fixedly penetrated through the center of the driven gear (403). A worm (4041) is connected to the bottom of the rotating shaft (404) by a flange. One side of the worm (4041) close to the driving gear (402) is meshed and connected with a worm gear (405).
3. The livestock breeding feed mixing and stirring device according to claim 2, wherein A shaft rod (406) is fixedly penetrated through the center of the worm gear (405). One end of the shaft rod (406) away from the wall of the conical tank (1) is provided with a vertical plate (408). The top end of the vertical plate (408) is fixedly screwed to the lower surface of the sealing cover (102). A driving gear (407) is fixedly installed on the outer wall of the other end of the shaft rod (406).
4. A livestock breeding feed mixing and stirring device according to claim 3, characterized in that, The diameter of the driving gear (402) is larger than that of the driven gear (403). The top end of the rotating shaft (404) is rotatably connected to the lower surface of the sealing cover (102). The diameter of the worm gear (405) is smaller than that of the driving gear (407).
5. A livestock breeding feed mixing and stirring device according to claim 1, characterized in that, The upper surface of one end of the barrel (601) away from the transmission gear (607) is provided with a feed pipe (603). The feed pipe (603) is matched with the feed inlet pipe (1021). The bottom opening of the feed inlet pipe (1021) is smaller than the top opening of the feed pipe (603). The lower surface of one end of the barrel (601) close to the transmission gear (607) is provided with a discharge pipe (604). And a collection box (605) is installed on the lower surface of the barrel (601) at the mesh hole by screws. The top opening of the collection box (605) is in close contact with the outer wall of the barrel (601).
6. The livestock breeding feed mixing and stirring device according to claim 5, characterized in that The suction port of the suction pump (7) is connected with a suction pipe (701). The other end of the suction pipe (701) sequentially penetrates through the sealing cover (102) and the collection box (605) and extends into the collection box (605). The output port of the suction pump (7) is connected with an output pipe (702). The other end of the output pipe (702) is connected with a sedimentation tank.
7. A livestock breeding feed mixing and stirring device according to claim 1, characterized in that, The conical end of the conical tank (1) is communicated with a discharge pipe (101). An electromagnetic valve is installed on the discharge pipe (IOI). A controller (103) is installed on the outer wall of the conical tank (1). The controller (103) is electrically connected to the electromagnetic valve, the processing mechanism (3) and the suction pump (7) respectively through wires.
Citation Information
Patent Citations
Stirring and mixing device for feed processing
CN116351282A
Crushing device for fermentation pretreatment of organic fertilizer and use method of crushing device
CN119524953A