A feed mixing and stirring device and stirring method for avoiding group fighting

By designing a multi-directional and automatic rushing feed mixing device, combined with automatic water refueling and dehydration structure and real-time monitoring system, the problems of low efficiency and difficulty in control of existing equipment are solved, uniform stirring and precise control of feed are achieved, and production efficiency and equipment application scope are improved.

CN116764504BActive Publication Date: 2025-06-27BORNSUN BIOENGINEERING CO LTD
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Patent Information

Application Number
CN202310838274.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-10
Publication Date
2025-06-27
Estimated Expiration
2043-07-10

AI Technical Summary

Technical Problem

Existing feed mixing equipment needs to be retrained when encountering special circumstances, which is inefficient and expensive, and will lead to increased equipment pressure and reduced yield under different humidity conditions.

Method used

A multi-directional and automatic rushing stirring device is designed, adopting an automatic water-adding and dehydration structure, and real-time monitoring and feedback is used to use a rotating ring and induction ratchet to adjust the speed of the stirring motor and the supply pump. Combined with the lifting motor and the quantitative fan wheel, uniform stirring and precise control of the feed are achieved.

Benefits of technology

The efficiency and uniformity of feed stirring are improved, the problems of adhesion and clumping of feed during the stirring process are avoided, and the precise water volume control and quantitative emission of feed are achieved, which improves the scope of application and production efficiency of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a feed mixing and stirring device and a stirring method for avoiding group fighting, which relates to the technical field of stirring devices. The stirring device includes a stirring barrel, a stirring inner barrel is arranged inside the stirring barrel, a stirring motor is arranged on the stirring barrel, a stirring frame is arranged at the output end of the stirring motor, the stirring frame is rotatably connected to the stirring inner barrel, a plurality of stirring supports are arranged on the stirring frame, a plurality of stirring rollers are arranged on each stirring support, a water control component is arranged on the stirring frame, the water control component is communicated with a supply pump through a blocking pipe, a feed box is arranged on the stirring barrel, a vibration motor and a screening mesh are arranged inside the feed box, the screening mesh is rotatably connected to the feed box, the output end of the vibration motor is engaged with the teeth on the edge of the screening mesh, a vibration dial rod is arranged inside the feed box, the screening mesh is in sliding contact with the vibration dial rod, a discharge port is arranged on the stirring barrel, and an anti-scattering mesh bag is arranged at the discharge port. The present invention has the functions of automatic monitoring of the dry water content of the feed and adaptive stirring.
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Description

Technical Field

[0001] The present invention relates to the technical field of stirring devices, and specifically to a feed mixing and stirring device and a stirring method that avoid agglomeration. Background Technique

[0002] Stirring devices, as one of the most commonly used moving equipment, are widely used in the chemical, food, dye, cosmetics, and pharmaceutical industries. With the rise of the livestock and pet industries, feed stirring is a matter of great concern to every pet owner. It is not only related to aspects such as the taste, digestion, and absorption of pets, but also directly affects the health of pets. In such a highly competitive market, how to produce high-quality pet feed has become the pursuit of every feed manufacturer. By reasonably using a feed mixer, a great deal of manpower and material resources can be saved to a large extent, greatly improving the work efficiency of breeders, and at the same time providing help for the rapid development of the livestock industry.

[0003] There are four main transmission methods for feed mixers, namely gear transmission, sprocket transmission, belt transmission, and worm transmission. Each stirring frame has different applicable ranges and different advantages and disadvantages within different ranges. For example, the advantage of worm transmission is that a feed mixer using worm transmission has a compact structure, stable operation, and low noise, and is suitable for a variety of working environments. However, it also has certain disadvantages. The efficiency of worm transmission is low and the price is expensive, which are not obvious. At the same time, in the face of some special situations, these stirring devices need to be retuned, which is very time-consuming. Different stirring methods for different humidities will also bring different pressures to the equipment and greatly reduce the yield rate during the production process. Summary of the Invention

[0004] The purpose of the present invention is to provide a feed mixing and stirring device and a stirring method that avoid agglomeration to solve the problems raised in the above background technique.

[0005] To solve the above technical problems, the present invention provides the following technical solution: A feed mixing and stirring device and a stirring method that avoid agglomeration.

[0006] The stirring device includes a stirring barrel, a stirring inner barrel is arranged inside the stirring barrel, a stirring motor is arranged on the stirring barrel, a stirring frame is arranged at the output end of the stirring motor, the stirring frame is rotatably connected to the stirring inner barrel, a plurality of stirring brackets are arranged on the stirring frame, a plurality of stirring rollers are arranged on each stirring bracket, each stirring roller is rotatably connected to the stirring bracket respectively, a water control component is arranged on the stirring frame, the water control component is communicated with a supply pump through a blocking pipe, the stirring inner barrel is slidably connected to the stirring barrel, a feeding box is arranged on the stirring barrel, a vibration motor and a screening mesh are arranged inside the feeding box, the screening mesh is rotatably connected to the feeding box, the output end of the vibration motor meshes with the teeth on the edge of the screening mesh, a vibration lever is arranged inside the feeding box, the screening mesh is in sliding contact with the vibration lever, a discharge port is arranged on the stirring barrel, an anti-scattering mesh bag is arranged at the discharge port. When the feed needs to be stirred, the vibration motor will drive the screening mesh to rotate. While the screening mesh rotates, it contacts the vibration lever, so that the screening mesh screens out the qualified feed and enters it into the stirring inner barrel. Then the stirring motor is started, the stirring motor rotates, the stirring motor drives the stirring frame to rotate, the stirring brackets on the stirring frame will stir the feed, and at the same time, the internal stirring rollers will increase the fluidity of the feed, thus completing a better feed stirring operation. The water control component will control the water volume of the feed during stirring, so as to ensure that the feed can meet the production requirements after stirring. After the stirring is completed, the feed will be discharged from the discharge port, and the anti-scattering mesh bag will ensure that the feed will not scatter randomly, playing a guiding role.

[0007] A plurality of installation grooves are arranged on the stirring frame. The stirring bracket is threadedly connected to the installation groove. A sealing ring is arranged inside the installation groove. The sealing ring is in sliding contact with the stirring bracket. A water passing channel is opened inside the stirring frame. The water passing channel is communicated with the installation groove. The water passing channel is communicated with the water control component. An anti-sticking roller is arranged inside the water passing channel. Fan teeth are arranged on the anti-sticking roller. The anti-sticking roller is rotatably connected to the water passing channel. Before stirring, the number of stirring brackets installed can be used to stir the feed to different degrees, and at the same time, it can also adapt to feeds of various particles. After installation, the stirring motor drives the stirring frame to rotate. After the stirring frame rotates, it will drive the stirring brackets to rotate. The water passing channel is used to remove or add water to the feed in the stirring inner barrel. When performing the water absorption or water spraying operation, the anti-sticking roller will rotate, so as to clean the inner wall of the water passing channel in time to avoid the problem of residue.

[0008] The stirring support is provided with threads. The stirring support is connected to the mounting groove through the threads. A rotary bearing group is provided on the stirring support. The stirring roller is rotatably connected to the stirring support through the rotary bearing group. A repeated elastic piece is provided on the stirring support. Two ends of the repeated elastic piece respectively abut against the stirring roller and the stirring support. A plurality of stirring synapses are provided on the stirring roller. A stirring spring is sleeved on each stirring synapse. Two ends of the stirring spring respectively abut against the stirring synapse and the stirring roller. The stirring support will be installed on the stirring frame through the threads. After the installation is completed, the stirring support will rotate with the stirring frame. During the rotation process, the stirring roller will rotate on the stirring support, and the stirring synapses will slide on the stirring roller, so that the feed adhered to the stirring roller will fall off. The stirring spring will enable the stirring synapses to be reset in time and can also store energy to enhance the falling-off effect, thus fully avoiding the problem of feed adhesion on the stirring roller.

[0009] The water control component includes a liquid-gas shunt pipe. An air vent ring is provided on the liquid-gas shunt pipe. The air vent ring is sleeved on the stirring frame and is rotatably connected to the stirring frame. The input ends of the liquid-gas shunt pipe are respectively communicated with a supply pump. A plurality of breathing nozzles are provided on the stirring support. Each breathing nozzle is respectively communicated with the stirring support. A rotating ring is provided on the stirring support. Disturbing fan blades are provided on the rotating ring. The disturbing fan blades are rotatably connected to the rotating ring. A clamping groove is provided on the rotating ring. The disturbing fan blades abut against the clamping groove. During the stirring process, the supply pump will supply water or absorb water to the inner stirring cylinder through the liquid-gas shunt pipe, and then pass through the stirring frame and the stirring support. The cavities in the stirring frame and the stirring support are used as passages to achieve the transportation effect. These water vapors will pass through the breathing nozzles for dispersion or absorption. The rotating ring will rotate with the rotation of the stirring frame, and the disturbing fan blades will flip according to the viscosity of the feed, thereby driving the rotating ring to rotate. During the rotation of the rotating ring, signals will be transmitted to the supply pump and the stirring motor for real-time feedback.

[0010] A supercharging turbine is provided in the breathing nozzle. The supercharging turbine is rotatably connected to the breathing nozzle. A breathing elastic piece is provided at the output end of the breathing nozzle. Breathing holes are provided on the breathing elastic piece. A first spray elastic piece and a second spray elastic piece are provided in the breathing holes. When the supply pump inhales, the first spray elastic piece and the second spray elastic piece approach each other, and the breathing elastic piece sinks inward. When the supply pump blows air, the first spray elastic piece and the second spray elastic piece move away from each other, and the breathing elastic piece bulges. When inhaling, the spray elastic pieces approach each other, and the breathing nozzle is blocked by feed fragments, and it will not cause the breathing nozzle to malfunction due to complete closure. When blowing air, the spray elastic pieces move away from each other, and water flow will spray out from the breathing nozzle. Since there is negative pressure during air blowing, feed fragments can be prevented from entering the breathing nozzle. When the supercharging turbine rotates, it will increase the pressure of the water flow passing through the breathing nozzle and also buffer the water flow sufficiently.

[0011] A rotating spring piece is arranged inside the rotating ring, and an induction ratchet is arranged on the stirring support. The induction ratchet is electrically connected to the supply pump through a wire. One end of the rotating spring piece is fixedly connected to the inner wall of the rotating ring, and the end of the rotating spring piece away from the inner wall of the rotating ring makes intermittent sliding contact with the groove on the induction ratchet. The rotating ring is electrically connected to the input end of the supply pump and the input end of the stirring motor through wires. When the rotating ring rotates, it will drive the rotating spring piece to rotate. The rotating spring piece slides on the induction ratchet and will be electrified when in contact. The faster the rotating ring rotates, the faster the electrifying frequency; the slower the rotating ring rotates, the slower the electrifying frequency. Thus, the supply speed of the supply pump and the stirring speed of the stirring motor are controlled to adapt to the viscosity of the feed in the stirring inner cylinder and increase the stirring and forming speed.

[0012] Sliding blocks are arranged on the stirring inner cylinder. The sliding blocks are slidably connected to the stirring inner cylinder. A lifting motor is arranged inside the stirring barrel. A swinging connecting rod is arranged on the output end of the lifting motor. One end of the swinging connecting rod away from the output end of the lifting motor is rotatably connected to the stirring inner cylinder. Threads are respectively arranged on the outer wall of the stirring inner cylinder and the inner wall of the stirring barrel. The stirring barrel and the stirring inner cylinder are meshed through the threads. During the stirring process, the lifting motor will drive the swinging connecting rod to rotate, and the swinging connecting rod will drive the stirring inner cylinder to rotate. After the swinging inner cylinder rotates, the stirring inner cylinder will rise and fall through the threads. During the lifting process, the feed in the stirring inner cylinder will surge.

[0013] A quantitative fan wheel is arranged at the discharge port. The quantitative fan wheel is rotatably connected to the stirring inner cylinder through a rotating shaft. The rotating shaft is arranged at the discharge port. The discharge port of the stirring inner cylinder is communicated with the discharge port of the stirring barrel through a telescopic slideway. Quantitative grooves are arranged on the rotating shaft, and a quantitative spring piece is arranged on the quantitative fan wheel. The quantitative spring piece makes intermittent sliding contact with the quantitative grooves. A scraping rod is arranged at the discharge port. The scraping rod is connected to the stirring barrel through a swinging spring. When the stirring frame and the stirring support finish stirring the feed, the feed will be discharged from the discharge port of the stirring inner cylinder into the telescopic slideway, and then discharged from the telescopic slideway into the stirring barrel. The feed will fall on the quantitative fan blades. During the rotation of the quantitative fan blades, the quantitative spring piece will be driven. The quantitative spring piece abuts against the quantitative grooves. When the quantitative fan wheel reaches a certain amount, the stirred feed will be quantitatively released.

[0014] A stirring method for a feed mixing and stirring device that avoids caking, the method comprising the following steps:

[0015] Step 1: Feed the feed into the stirring equipment. Through screening by the screening mesh, the qualified feed will enter the stirring inner cylinder, and water-adding stirring and drying stirring are selected;

[0016] Step 2: When choosing to add water and stir, continuously add water to the equipment and conduct real-time monitoring, thereby adjusting the stirring speed to make the stirring motor rotate. When the rotation speed of the rotating ring gradually increases, the rotation speed of the stirring motor will increase at this time, and the supply speed of the supply pump will decrease;

[0017] Step 3: When choosing to dry and stir, timely remove the water vapor in the equipment and conduct monitoring, and adjust the stirring speed. When the rotation speed of the rotating ring decreases, the rotation speed of the stirring motor will decrease at this time, and the suction speed of the supply pump will increase;

[0018] Step 4: During the stirring process, start the lifting motor, and the lifting motor will drive the stirring inner cylinder to rotate to jolt the feed;

[0019] Step 5: Open the discharge port on the stirring inner cylinder, and the stirred feed will pass through the quantitative fan blades, thereby quantitatively discharging the stirred feed.

[0020] Compared with the prior art, the beneficial effects achieved by the present invention are as follows: 1. The present invention adopts a multi-directional and automatic tumbling type stirring component. When stirring, the stirring motor drives the stirring frame to rotate, and the stirring frame drives the adjustable density stirring support to rotate, which can process different feeds to different degrees, increasing the applicable range of the equipment. Moreover, the stirring rollers on the stirring support also increase the rotation direction of the feed stirring, making the feed mixing more uniform.

[0021] 2. The present invention adopts a structure for automatic water addition and dehydration, uses an automatic monitoring structure to detect the moisture in the feed and gives timely feedback, which can accurately control the moisture content in the feed, thus meeting the standard of feed mixing. At the same time, using such a structure can also fully avoid the problem of a large amount of agglomeration during feed mixing.

[0022] 3. The present invention adopts a composite stirring barrel structure, which can make the feed fully tumble during stirring, and at the same time avoids the feed from sticking too much to the inner wall of the stirring inner cylinder during the stirring process. At the same time, a quantitative discharge component is adopted, which can also quantitatively discharge the feed from the equipment after stirring is completed, so that the amount of feed in the stirring inner cylinder can be controlled to timely control the amount of water absorption and dehydration. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] The drawings are used to provide a further understanding of the present invention and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation to the present invention. In the drawings:

[0024] Figure 1 is the three-dimensional structure schematic diagram of the present invention;

[0025] Figure 2It is a schematic diagram of the internal structure of the stirring inner cylinder of the present invention;

[0026] Figure 3 It is a schematic diagram of the internal structure of the stirring frame of the present invention;

[0027] Figure 4 It is a schematic diagram of the internal structure of the stirring support of the present invention;

[0028] Figure 5 It is a schematic diagram of the mating relationship structure between the rotating ring and the stirring support of the present invention;

[0029] Figure 6 It is a schematic diagram of the mating relationship structure between the ventilation ring and the stirring frame of the present invention;

[0030] Figure 7 It is a schematic diagram of the breathing elastic piece structure during water absorption and water spraying of the present invention;

[0031] Figure 8 It is a schematic diagram of the internal structure of the discharge port of the present invention;

[0032] Figure 9 It is a schematic diagram of the method step structure of the present invention;

[0033] In the figure: 1. Stirring barrel; 2. Stirring inner cylinder; 201. Slide block; 3. Stirring motor; 4. Stirring frame; 401. Installation groove; 402. Sealing ring; 403. Anti-sticking roller; 5. Stirring support; 501. Repeated elastic piece; 502. Stirring synapse; 503. Stirring spring; 504. Rotating ring; 505. Disturbing fan blade; 506. Rotating elastic piece; 507. Inductive ratchet; 6. Stirring roller; 7. Water control component; 701. Liquid-gas shunt pipe; 702. Ventilation ring; 703. Breathing nozzle; 704. Boosting turbine; 705. Breathing elastic piece; 706. First spraying elastic piece; 707. Second spraying elastic piece; 8. Supply pump; 9. Feed box; 10. Vibration motor; 11. Screening mesh; 12. Vibration lever; 13. Discharge port; 1301. Quantitative fan wheel; 1302. Rotating shaft; 1303. Quantitative elastic piece; 1304. Scraping rod; 14. Anti-scattering mesh bag; 15. Lifting motor; 16. Swing connecting rod. Detailed implementation manners

[0034] 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. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without making creative efforts belong to the scope of protection of the present invention.

[0035] The stirring device includes a stirring barrel 1, a stirring inner barrel 2 is arranged inside the stirring barrel 1, a stirring motor 3 is arranged on the stirring barrel 1, a stirring frame 4 is arranged on the output end of the stirring motor 3, the stirring frame 4 is rotatably connected to the stirring inner barrel 2, a plurality of stirring brackets 5 are arranged on the stirring frame 4, a plurality of stirring rollers 6 are arranged on each stirring bracket 5, and each stirring roller 6 is respectively rotatably connected to the stirring bracket 5. A water control component 7 is arranged on the stirring frame 4, and the water control component 7 is communicated with a supply pump 8 through a barrier pipe. The stirring inner barrel 2 is slidably connected to the stirring barrel 1. A feed box 9 is arranged on the stirring barrel 1, a vibration motor 10 and a screening mesh 11 are arranged inside the feed box 9, the screening mesh 11 is rotatably connected to the feed box 9, the output end of the vibration motor 10 meshes with the teeth on the edge of the screening mesh 11, a vibration lever 12 is arranged inside the feed box 9, and the screening mesh 11 is in sliding contact with the vibration lever 12. An outlet 13 is arranged on the stirring barrel 1, and an anti-scattering net bag 14 is arranged at the outlet 13. When the feed needs to be stirred, the vibration motor 10 will drive the screening mesh 11 to rotate. While the screening mesh 11 rotates, it contacts the vibration lever 12, so that the screening mesh 11 screens out qualified feed and enters the stirring inner barrel 2. Then, the stirring motor 3 is started, the stirring motor 3 rotates, the stirring motor 3 drives the stirring frame 4 to rotate, and the stirring brackets 5 on the stirring frame 4 will stir the feed. At the same time, the internal stirring rollers 6 will increase the fluidity of the feed, thus completing a better feed stirring operation. The water control component 7 will control the water volume of the feed during stirring, so as to ensure that the feed can meet the production requirements after stirring. After the stirring is completed, the feed will be discharged from the outlet 13, and the anti-scattering net bag 14 will ensure that the feed will not scatter randomly, playing a guiding role.

[0036] A plurality of installation grooves 401 are arranged on the stirring frame 4, the stirring bracket 5 is threadedly connected to the installation groove 401, a sealing ring 402 is arranged inside the installation groove 401, and the sealing ring 402 is in sliding contact with the stirring bracket 5. A water passing channel is opened inside the stirring frame 4, the water passing channel is communicated with the installation groove 401, the water passing channel is communicated with the water control component 7, and an anti-sticking roller 403 is arranged inside the water passing channel. Fan teeth are arranged on the anti-sticking roller 403, and the anti-sticking roller 403 is rotatably connected to the water passing channel. Before stirring, the number of stirring brackets 5 installed can be used to stir the feed to different degrees, and at the same time, it can also adapt to feeds of various particles. After installation, the stirring motor 3 drives the stirring frame 4 to rotate, and after the stirring frame 4 rotates, it will drive the stirring brackets 5 to rotate. Through the water passing channel, the feed inside the stirring inner barrel 2 is dewatered or watered. When performing water absorption or water spraying operations, the anti-sticking roller will rotate, so as to clean the inner wall of the water passing channel in time and avoid the problem of residue.

[0037] The stirring support 5 is provided with threads, and the stirring support 5 is connected to the installation groove 401 through the threads. A rotary bearing group is provided on the stirring support 5. The stirring roller 6 is rotatably connected to the stirring support 5 through the rotary bearing group. A repeated elastic piece 501 is provided on the stirring support 5. Both ends of the repeated elastic piece 501 respectively abut against the stirring roller 6 and the stirring support 5. A plurality of stirring synapses 502 are provided on the stirring roller 6. A stirring spring 503 is sleeved on each stirring synapse 502. Both ends of the stirring spring 503 respectively abut against the stirring synapse 502 and the stirring roller 6. The stirring support 5 will be installed with the stirring frame 4 through the threads. After the installation is completed, the stirring support 5 will rotate with the stirring frame 4. During the rotation process, the stirring roller 6 will rotate on the stirring support 5, and the stirring synapse 502 will slide on the stirring roller 6, so that the feed adhered to the stirring roller 6 will fall off. The stirring spring 503 will enable the stirring synapse 502 to be reset in time and can also store energy to enhance the falling-off effect, thus fully avoiding the problem of feed adhesion on the stirring roller 6.

[0038] The water control component 7 includes a liquid-gas shunt pipe 701. An air vent ring 702 is provided on the liquid-gas shunt pipe 701. The air vent ring 702 is sleeved on the stirring frame 4 and is rotatably connected to the stirring frame 4. The input ends of the liquid-gas shunt pipe 701 are respectively connected to the supply pump 8. A plurality of breathing nozzles 703 are provided on the stirring support 5. Each breathing nozzle 703 is respectively connected to the stirring support 5. A rotating ring 504 is provided on the stirring support 5. A disturbing fan blade 505 is provided on the rotating ring 504. The disturbing fan blade 505 is rotatably connected to the rotating ring 504. A clamping groove is provided on the rotating ring 504. The disturbing fan blade 505 abuts against the clamping groove. During the stirring process, the supply pump 8 will supply water or absorb water to the stirring inner cylinder 2 through the liquid-gas shunt pipe 701, and then pass through the stirring frame 4 and the stirring support 5. The cavities in the stirring frame 4 and the stirring support 5 are used as passages to achieve the transportation effect. These water vapors will pass through the breathing nozzles 703 for dispersion or absorption. The rotating ring 504 will rotate with the rotation of the stirring frame 4, and the disturbing fan blade 505 will flip according to the viscosity of the feed, thereby driving the rotating ring 504 to rotate. During the rotation of the rotating ring 504, signals will be sent to the supply pump 8 and the stirring motor 3 for real-time feedback.

[0039] A supercharging turbine 704 is provided inside the breathing nozzle 703. The supercharging turbine 704 is rotatably connected to the breathing nozzle 703. A breathing elastic piece 705 is provided at the output end of the breathing nozzle 703. Breathing holes are provided on the breathing elastic piece 705. A first spraying elastic piece 706 and a second spraying elastic piece 707 are provided inside the breathing holes. When the supply pump 8 inhales, the first spraying elastic piece 706 and the second spraying elastic piece 707 move closer to each other, and the breathing elastic piece 705 sinks inwards. When the supply pump 8 blows air, the first spraying elastic piece 706 and the second spraying elastic piece 707 move away from each other, and the breathing elastic piece 705 bulges. When inhaling, the spraying elastic pieces move closer to each other, and the breathing nozzle 703 is blocked by feed debris. At the same time, it will not cause the breathing nozzle 703 to stop working due to complete closure. When blowing air, the spraying elastic pieces move away from each other, and water will spray out from the breathing nozzle 703. Since there is negative pressure during air jetting, it can prevent feed debris from entering the breathing nozzle 703. When the supercharging turbine 704 rotates, it will increase the pressure of the water flowing through the breathing nozzle 703, and at the same time, the water flow will be fully buffered.

[0040] A rotating elastic piece 506 is provided inside the rotating ring 504. An induction ratchet 507 is provided on the stirring bracket 5. The induction ratchet 507 is electrically connected to the supply pump 8 through a wire. One end of the rotating elastic piece 506 is fixedly connected to the inner wall of the rotating ring 504. The end of the rotating elastic piece 506 away from the inner wall of the rotating ring 504 makes intermittent sliding contact with the groove on the induction ratchet 507. The rotating ring 504 is electrically connected to the input end of the supply pump 8 and the input end of the stirring motor 3 through a wire. When the rotating ring 504 rotates, it will drive the rotating elastic piece 506 to rotate. The rotating elastic piece 506 slides on the induction ratchet 507 and will be energized when in contact. The faster the rotating ring 504 rotates, the faster the energization frequency. The slower the rotating ring 504 rotates, the slower the energization frequency. Thus, the supply speed of the supply pump 8 and the stirring speed of the stirring motor 3 are controlled to adapt to the viscosity of the feed in the stirring inner cylinder 2 and increase the stirring and forming speed.

[0041] A sliding block 201 is provided on the stirring inner cylinder 2. The sliding block 201 is slidably connected to the stirring inner cylinder 2. A lifting motor 15 is provided inside the stirring barrel 1. A swinging connecting rod 16 is provided at the output end of the lifting motor 15. One end of the swinging connecting rod 16 away from the output end of the lifting motor 15 is rotatably connected to the stirring inner cylinder 2. Threads are respectively provided on the outer wall of the stirring inner cylinder 2 and the inner wall of the stirring barrel 1. The stirring barrel 1 and the stirring inner cylinder 2 are engaged by threads. During the stirring process, the lifting motor 15 will drive the swinging connecting rod 16 to rotate, and the swinging connecting rod 16 will drive the stirring inner cylinder 2 to rotate. After the swinging inner cylinder rotates, the stirring inner cylinder 2 will be lifted and lowered through the threads. During the lifting and lowering process, the feed in the stirring inner cylinder 2 will be churned.

[0042] A quantitative fan wheel 1301 is provided on the discharge port 13. The quantitative fan wheel 1301 is rotatably connected to the stirring inner cylinder 2 through a rotating shaft 1302. The rotating shaft 1302 is provided on the discharge port 13. The discharge port 13 of the stirring inner cylinder 2 is communicated with the discharge port 13 of the stirring barrel 1 through a telescopic slideway. A quantitative groove is provided on the rotating shaft 1302, and a quantitative elastic piece 1303 is provided on the quantitative fan wheel 1301. The quantitative elastic piece 1303 is in intermittent sliding contact with the quantitative groove. A scraping rod 1304 is provided on the discharge port 13. The scraping rod 1304 is connected to the stirring barrel 1 through a swinging spring. When the stirring frame 4 and the stirring support 5 finish stirring the feed, the feed will be discharged from the discharge port 13 on the stirring inner cylinder 2 into the telescopic slideway, and the feed will be discharged from the telescopic slideway into the stirring barrel 1. The feed will fall on the quantitative fan blades. During the rotation of the quantitative fan blades, the quantitative elastic piece 1303 will be driven. The quantitative elastic piece 1303 abuts against the quantitative groove. When the quantitative fan wheel reaches a certain amount, the stirred feed will be quantitatively released.

[0043] A stirring method for a feed mixing and stirring device that avoids agglomeration, the method comprising the following steps:

[0044] Step 1: Feed the feed into the stirring equipment. Through the screening of the screening mesh 11, the qualified feed will enter the stirring inner cylinder 2, and water addition stirring and drying stirring are selected;

[0045] Step 2: When water addition stirring is selected, continuously add water to the equipment and monitor in real time, so as to adjust the stirring speed and drive the stirring motor 3 to rotate. When the rotation speed of the rotating ring 504 gradually increases, at this time, the rotation speed of the stirring motor 3 will increase and the supply speed of the supply pump 8 will decrease;

[0046] Step 3: When drying stirring is selected, timely precipitate the water vapor in the equipment and monitor it, and adjust the stirring speed. When the rotation speed of the rotating ring 504 decreases, at this time, the rotation speed of the stirring motor 3 will decrease and the suction speed of the supply pump 8 will increase;

[0047] Step 4: During the stirring process, start the lifting motor 15. The lifting motor 15 will drive the stirring inner cylinder 2 to rotate and jolt the feed;

[0048] Step 5: Open the discharge port 13 on the stirring inner cylinder 2. The stirred feed will pass through the quantitative fan blades, so as to quantitatively discharge the stirred feed.

[0049] Working principle of the present invention: When it is necessary to stir the feed, first determine the stirring method, adopt water-added stirring or dehydration stirring, and then start the vibration motor 10. The vibration motor 10 will drive the screening mesh 11 to rotate. While the screening mesh 11 is rotating, it contacts the vibration lever 12, so that the screening mesh 11 screens out qualified feed and enters the stirring inner cylinder 2. Then start the stirring motor 3. The stirring motor 3 rotates, and the stirring motor 3 drives the stirring frame 4 to rotate. The stirring brackets 5 on the stirring frame 4 will stir the feed. At the same time, the internal stirring rollers 6 will increase the fluidity of the feed, thus completing a better feed stirring operation. The rotating ring 504 timely feedbacks the water content in the feed, so that the stirring motor 3 and the supply pump 8 match the current rotation mode. During dry stirring, when the rotation speed of the rotating ring 504 decreases, at this time, the rotation speed of the stirring motor 3 decreases, and the suction speed of the supply pump 8 increases, increasing the dehydration speed and accelerating the mixing speed. During water-added stirring, when the rotation of the rotating ring 504 gradually increases in speed with the increase of the water addition amount, the rotation speed of the stirring motor 3 increases, and the supply speed of the supply pump 8 decreases, ensuring the mixing rate and also avoiding the problem that the feed is easily broken and deposited after being wetted, so as to ensure that the feed can meet the production requirements after stirring. Start the lifting motor 15, and the lifting motor 15 will drive the stirring inner cylinder 2 to rotate, jolting the feed to avoid the problem of feed stratification and deposition. After the stirring is completed, the feed will be discharged from the discharge port 13. The quantitative fan blades 1301 will achieve the effect of quantitative discharge, and the anti-scattering net bag 14 guides the feed.

[0050] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.

[0051] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A feed mixing and stirring device that avoids group fighting, characterized in that: The stirring device includes a stirring barrel (1), a stirring inner barrel (2) is arranged inside the stirring barrel (1), a stirring motor (3) is arranged on the stirring barrel (1), a stirring frame (4) is arranged at the output end of the stirring motor (3), the stirring frame (4) is rotatably connected to the stirring inner barrel (2), a plurality of stirring brackets (5) are arranged on the stirring frame (4), a plurality of stirring rollers (6) are arranged on each stirring bracket (5), each stirring roller (6) is respectively rotatably connected to the stirring bracket (5), a water control component (7) is arranged on the stirring frame (4), the water control component (7) is communicated with a supply pump (8) through a barrier pipe, the stirring inner barrel (2) is slidably connected to the stirring barrel (1), a feed box (9) is arranged on the stirring barrel (1), a vibration motor (10) and a screening mesh (11) are arranged inside the feed box (9), the screening mesh (11) is rotatably connected to the feed box (9), the output end of the vibration motor (10) meshes with the teeth on the edge of the screening mesh (11), a vibration lever (12) is arranged inside the feed box (9), the screening mesh (11) is in sliding contact with the vibration lever (12), a discharge port (13) is arranged on the stirring barrel (1), and an anti-scattering mesh bag (14) is arranged at the discharge port (13); A plurality of mounting grooves (401) are arranged on the stirring frame (4), the stirring bracket (5) is threadedly connected to the mounting groove (401), a sealing ring (402) is arranged inside the mounting groove (401), the sealing ring (402) is in sliding contact with the stirring bracket (5), a water passing channel is formed inside the stirring frame (4), the water passing channel is communicated with the mounting groove (401), the water passing channel is communicated with the water control component (7), an anti-sticking roller (403) is arranged inside the water passing channel, fan-shaped teeth are arranged on the anti-sticking roller (403), and the anti-sticking roller (403) is rotatably connected to the water passing channel; Threads are arranged on the stirring bracket (5), the stirring bracket (5) is connected to the mounting groove (401) through threads, a rotating bearing group is arranged on the stirring bracket (5), the stirring roller (6) is rotatably connected to the stirring bracket (5) through the rotating bearing group, a repeated elastic sheet (501) is arranged on the stirring bracket (5), two ends of the repeated elastic sheet (501) respectively abut against the stirring roller (6) and the stirring bracket (5), a plurality of stirring synapses (502) are arranged on the stirring roller (6), a stirring spring (503) is sleeved on each stirring synapse (502), and two ends of the stirring spring (503) respectively abut against the stirring synapse (502) and the stirring roller (6); The water control component (7) includes a liquid-gas shunt pipe (701). An air vent ring (702) is arranged on the liquid-gas shunt pipe (701). The air vent ring (702) is sleeved on the stirring frame (4) and rotatably connected to the stirring frame (4). The input end of the liquid-gas shunt pipe (701) is respectively communicated with a supply pump (8). A plurality of breathing nozzles (703) are arranged on the stirring support (5). Each breathing nozzle (703) is respectively communicated with the stirring support (5). A rotating ring (504) is arranged on the stirring support (5). A disturbing fan blade (505) is arranged on the rotating ring (504). The disturbing fan blade (505) is rotatably connected to the rotating ring (504). A clamping groove is arranged on the rotating ring (504). The disturbing fan blade (505) abuts against the clamping groove. A rotating elastic sheet (506) is arranged inside the rotating ring (504). An induction ratchet (507) is arranged on the stirring support (5). The induction ratchet (507) is electrically connected to the supply pump (8) through a wire. One end of the rotating elastic sheet (506) is fixedly connected to the inner wall of the rotating ring (504). The end of the rotating elastic sheet (506) far from the inner wall of the rotating ring (504) is intermittently in sliding contact with the groove on the induction ratchet (507). The rotating ring (504) is electrically connected to the input end of the supply pump (8) and the input end of the stirring motor (3) through a wire.

2. The feed mixing and stirring device for avoiding group fighting according to claim 1, characterized in that: A booster turbine (704) is arranged inside the breathing nozzle (703). The booster turbine (704) is rotatably connected to the breathing nozzle (703). A breathing elastic sheet (705) is arranged at the output end of the breathing nozzle (703). Breathing holes are arranged on the breathing elastic sheet (705). A first spray elastic sheet (706) and a second spray elastic sheet (707) are arranged in the breathing holes. When the supply pump (8) inhales, the first spray elastic sheet (706) and the second spray elastic sheet (707) approach each other, and the breathing elastic sheet (705) sinks in. When the supply pump (8) blows air, the first spray elastic sheet (706) and the second spray elastic sheet (707) move away from each other, and the breathing elastic sheet (705) bulges.

3. A feed mixing and stirring device for avoiding group fighting according to claim 2, characterized in that: A sliding block (201) is arranged on the inner stirring cylinder (2). The sliding block (201) is slidably connected to the inner stirring cylinder (2). A lifting motor (15) is arranged in the stirring barrel (1). A swinging connecting rod (16) is arranged at the output end of the lifting motor (15). The end of the swinging connecting rod (16) far from the output end of the lifting motor (15) is rotatably connected to the inner stirring cylinder (2). Threads are respectively arranged on the outer wall of the inner stirring cylinder (2) and the inner wall of the stirring barrel (1). The stirring barrel (1) and the inner stirring cylinder (2) are meshed through the threads.

4. A feed mixing and stirring device for avoiding group fighting according to claim 3, characterized in that: A metering fan wheel (1301) is provided on the discharge port (13). The metering fan wheel (1301) is rotatably connected to the inner stirring cylinder (2) through a rotating shaft (1302). The rotating shaft (1302) is arranged on the discharge port (13). The discharge port (13) of the inner stirring cylinder (2) is communicated with the discharge port (13) of the stirring barrel (1) through a telescopic slideway. A metering groove is arranged on the rotating shaft (1302). A metering elastic piece (1303) is arranged on the metering fan wheel (1301). The metering elastic piece (1303) is in intermittent sliding contact with the metering groove. A scraping rod (1304) is arranged on the discharge port (13). The scraping rod (1304) is connected to the stirring barrel (1) through a swinging spring.

5. The stirring method of a feed mixing and stirring device for avoiding group fighting according to claim 4, characterized in that: The method comprises the following steps: Step 1: Feed the feed into the stirring equipment and select water-adding stirring and drying stirring; Step 2: When water-adding stirring is selected, continuously add water to the equipment and conduct real-time monitoring, so as to adjust the stirring speed; Step 3: When drying stirring is selected, timely discharge the water vapor in the equipment and conduct monitoring, and adjust the stirring speed; Step 4: During the stirring process, jolt the feed; Step 5: Meter and discharge the stirred feed.

Citation Information

Patent Citations

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