Automatic feed mixing device convenient to clean

By designing a driver in the feed mixing device to drive the stirring blade assembly to move to the outside and a sealing device to prevent material leakage, the problem of inconvenient maintenance of the stirring blade wear is solved, and the cleaning efficiency and mixing effect of the device are improved.

CN120754755AInactive Publication Date: 2025-10-10TONGHUA NORMAL UNIV
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Patent Information

Application Number
CN202511173434.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-21
Publication Date
2025-10-10
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the existing feed mixing device, it is difficult to detect the wear of the mixing blade assembly in time during the mixing process, which makes maintenance inconvenient and causes the problem of residual material waste.

Method used

An automatic feed mixing device that is easy to clean is designed. The first drive drives the carrier plate and the stirring blade assembly to move upward, so that they move to the outside of the mixing barrel, which is convenient for checking wear. The sealing plate and the feed assembly are used to prevent material leakage, and the spiral stirring blades are combined to improve the mixing effect.

Benefits of technology

It enables timely maintenance of the mixing blade assembly, reduces material residue, improves mixing efficiency and cleaning convenience, and ensures stable operation of the device.

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Abstract

The invention relates to the technical field of feed mixing devices, in particular to an automatic feed mixing device convenient to clean, comprising: a mixing container, the mixing container comprises a base, the top of the base is fixedly provided with a mixing cylinder, and the top surface and the bottom surface of the mixing cylinder are both open; the stirring assembly comprises a bearing disc, the bearing disc is arranged at the bottom of the inner side of the material mixing barrel and can slide along the inner wall of the material mixing barrel, a stirring blade assembly is arranged on the top surface of the bearing disc, a first driver is fixedly arranged at the bottom of the base, and the output end of the first driver is connected with the bottom surface of the bearing disc; the driving device is used for driving the bearing disc to rotate and move in the vertical direction. When the feed mixing device is used, after feed is mixed and stirred, the first driver can drive the bearing disc and the stirring blade assembly to move upwards together, the stirring blade assembly can move to the outer side of the mixing barrel, an operator can find the abrasion problem of the stirring blade assembly in time, and overhaul and maintenance are facilitated.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of feed mixing devices, in particular to a feed automatic mixing device convenient to clean. BACKGROUND

[0002] The existing feed needs to add other auxiliary materials during processing, and uniform mixing and stirring are performed. After the material is stirred, the material is adhered to the stirring rod, so that the stirring rod is cleaned after mixing and stirring, which can avoid material waste. For example, a Chinese patent application No. CN202410891725.8 provides a raw material crushing and mixing device for feed processing. The device lowers the first, second, third and fourth extrusion plates in the extrusion cleaning assembly to scrape the first, second, third and fourth crushing blades in the crushing and mixing assembly, thereby achieving the purpose of preventing material waste and saving raw materials.

[0003] The device has the following disadvantages. The crushing and mixing assembly is always inside the mixing cylinder and cannot move to the outside of the mixing cylinder during stirring or scraping. Therefore, when the crushing and mixing assembly is worn, there will still be residual material after scraping, and the operator cannot find the wear problem in time. The device has the disadvantage of inconvenient maintenance. SUMMARY

[0004] The present application aims to provide a feed automatic mixing device convenient to clean. After the feed is mixed and stirred, the first drive can drive the carrier disc and the stirring blade assembly to move upward together, and the stirring blade assembly can move to the outside of the mixing cylinder. The operator can find the wear problem of the stirring blade assembly in time, which is convenient for maintenance and maintenance.

[0005] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a feed automatic mixing device convenient to clean, comprising: a mixing container, the mixing container comprising a base, the top of the base being fixedly provided with a mixing cylinder, the top surface and the bottom surface of the mixing cylinder being open; a stirring assembly, the stirring assembly comprising a carrier disc, the carrier disc being arranged at the inner bottom of the mixing cylinder and being capable of sliding along the inner wall of the mixing cylinder, the top surface of the carrier disc being provided with a stirring blade assembly, the bottom of the base being fixedly provided with a first drive, the output end of the first drive being connected with the bottom surface of the carrier disc, for driving the carrier disc to rotate and move in the vertical direction.

[0006] Preferably, the top of the mixing barrel is provided with a concentrically arranged assembly ring, a first rotating disk and a second rotating disk, the assembly ring is rotatably connected to the mixing barrel, the first rotating disk is rotatably connected to the assembly ring, the second rotating disk is rotatably connected to the first rotating disk, the first rotating disk is provided with a plurality of first scraping grooves, and the second rotating disk is provided with a plurality of second scraping grooves; the stirring blade assembly includes a plurality of first stirring blades and a plurality of second stirring blades, the first stirring blades and the second stirring blades are both spiral and have opposite spiral directions, the plurality of first stirring blades are all provided below the first rotating disk, and the plurality of the second stirring blades are provided below the first rotating disk. The two stirring blades are both arranged below the second rotating disk, the first ends of several first stirring blades are fixedly connected to the carrying disk, the second ends of several first stirring blades are respectively extended into several first scraping grooves and can slide along the inner wall of the first scraping groove, the first ends of several second stirring blades are fixedly connected to the carrying disk, the second ends of several second stirring blades are respectively extended into several second scraping grooves and can slide along the inner wall of the second scraping groove; a plurality of discharge holes distributed at equal intervals are provided on the side wall of the assembly ring, and a plurality of guide grooves distributed at equal intervals are provided at the top edge of the carrying disk.

[0007] Preferably, the first rotating disk and the second rotating disk are provided with a first locking member, which can control the first rotating disk and the second rotating disk to enter a connected state and a separated state together; a cutting assembly is provided on the outside of the mixing barrel, and the cutting assembly includes: a retaining ring, which is sleeved on the assembly ring and can slide along the outer wall of the assembly ring; a second driver, which is fixedly arranged on the top surface of the assembly ring, and the output end of the second driver is connected to the retaining ring, for driving the retaining ring to move in a vertical direction; an annular blade, which is sleeved on the mixing barrel, and the outer wall of the mixing barrel and the outer wall of the retaining ring are aligned, and the annular blade can slide along the outer wall of the retaining ring and the outer wall of the assembly ring; a third driver, which is provided below the annular blade and fixedly connected to the outer wall of the mixing barrel, and the output end of the third driver is connected to the annular blade, for driving the annular blade to move in a vertical direction; a material receiving hopper, which is sleeved on the mixing barrel and located below the third driver, and the material receiving hopper is fixedly connected to the mixing barrel.

[0008] Preferably, it also includes a feeding assembly, which includes: a feed hopper, fixedly arranged on the top surface of the second rotating disk, a feed port is provided at the center of the top surface of the second rotating disk, and the interior of the feed hopper and the interior of the mixing barrel are both connected to the feed port; a sealing disk, arranged in the feed port and capable of sliding along the inner side wall of the feed port, and the sealing disk is detachably connected to the second rotating disk.

[0009] Preferably, the feeding component also includes: an assembly frame, which is arranged at the inner bottom of the feeding hopper and is fixedly connected to the feeding hopper, the assembly frame is in a C-shaped structure, the open end of the assembly frame faces the second rotating disk, and an assembly cavity is provided inside the assembly frame; a fourth driver, which is arranged in the assembly cavity, and the output end of the fourth driver is connected to the sealing disk for driving the sealing disk to move in the vertical direction.

[0010] Preferably, the fourth driver includes: a transmission plate, which is horizontally arranged at one end in the assembly cavity and can slide along the inner wall of the assembly cavity; a spring is arranged below the transmission plate, and the two ends of the spring are respectively fixedly connected to the transmission plate and the inner wall of the assembly cavity; a transmission rod is vertically arranged above the transmission plate, the first end of the transmission rod is fixedly connected to the top surface of the transmission plate, and the second end of the transmission rod passes through the top surface of the assembly frame and extends to the outside of the assembly frame; a changing column is horizontally arranged at the other end in the assembly cavity, and both ends of the changing column are fixedly connected to the inner wall of the assembly cavity; a pull rope, a rope outlet is provided on the middle bottom surface of the assembly cavity, the first end of the pull rope is fixedly connected to the top surface of the transmission plate, the second end of the pull rope passes around the bottom of the changing column and extends to the outside of the assembly frame through the rope outlet, and the second end of the pull rope is fixedly connected to the center of the top surface of the sealing disk.

[0011] Preferably, the top surface of the sealing disk is a conical structure, and the middle bottom surface of the assembly frame is provided with two first fitting surfaces with mirror-symmetrical structures; the feeding component also includes an adsorption component, and the adsorption component includes: an annular metal plate, which is sleeved on the sealing disk and fixedly connected to the outer wall of the sealing disk; a first electromagnet, which is fixedly arranged on the inner wall of the feed port; and a second electromagnet, which is fixedly arranged on the outer wall of the assembly frame facing the annular metal plate.

[0012] Preferably, the top radius of the feed hopper is larger than the bottom radius, and the length of the top radius of the feed hopper is smaller than the distance between the center of the second rotating disk and the second scraping groove near one end of the feed hopper; the feeding assembly also includes a holding assembly, and the holding assembly includes: a fixed block, fixedly arranged at the second end of the transmission rod; a force plate, the feed hopper is provided with an avoidance gap near one end of the transmission rod, the force plate is arranged in the avoidance gap and is located above the fixed block, the length extension direction of the force plate is coplanar with the central axis of the second rotating disk, the bottom surface of the force plate is provided with a slide, the length extension direction of the slide is the same as the length extension direction of the force plate, the fixed block is arranged in the slide and can slide along the slide; a pressure rod, fixedly arranged on the top surface of the force plate.

[0013] Preferably, the feeding assembly further includes: a second locking member, which is arranged between the top of the feeding hopper and the holding assembly, and can control the feeding hopper and the holding assembly to enter a connected state and a separated state together; an isolation plate, which is arranged inside the feeding hopper, and both ends of the isolation plate are fixedly connected to the inner side wall of the feeding hopper, and the end of the force plate away from the avoidance notch abuts against the side wall of the isolation plate.

[0014] Preferably, the top position of the isolation plate is higher than the top of the feed hopper, and an assembly groove is provided at the bottom of the isolation plate. The middle part of the top surface of the assembly frame is provided in the assembly groove and is fixedly connected to the isolation plate. A second fitting surface is provided on each side of the assembly groove, and both of the second fitting surfaces are aligned with the first fitting surface close to the side of the avoidance gap.

[0015] Compared with the prior art, the present invention has the following beneficial effects: (1) When the present invention is in use, after the feed is mixed and stirred, the first driver can drive the carrier plate and the stirring blade assembly to move upward together, and the stirring blade assembly can move to the outside of the mixing barrel. The operator can promptly detect wear problems of the stirring blade assembly, facilitating inspection and maintenance. The first and second stirring blades are both spiral-shaped, which improves the feed mixing effect.

[0016] (2) The present invention also includes a feed assembly, which includes a feed hopper and a blocking disk. A feed inlet is provided at the center of the top surface of the second rotating disk, and the blocking disk is positioned within the inlet. When the mixing process is complete and the carrier disk drives the feed upward, the blocking disk blocks the feed, preventing it from exiting the mixing barrel through the feed inlet.

[0017] (3) In the present invention, the feed assembly further includes a gripping assembly connected to the transmission rod, facilitating operator control of the upward and downward movement of the transmission rod. When the first and second stirring blades move above the first and second rotating disks, neither the feed hopper nor the gripping assembly obstructs the first and second stirring blades. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is an axonometric drawing of the present invention; Figure 2 It is an axial cross-sectional view of the base and mixing barrel in the present invention; Figure 3 This is an axial exploded view of the assembly ring, the first rotating disk, and the second rotating disk in the present invention; Figure 4 This is an axonometric view of the stirring assembly of the present invention; Figure 5 This is an exploded view of the cutting assembly in the present invention from the axial side; Figure 6 It is an axonometric view of the feed assembly in the present invention; Figure 7 It is an axonometric view of the feed hopper in the present invention; Figure 8 This is an axonometric view of the occluding disk of the present invention; Figure 9 This is an exploded view of the mounting bracket and the fourth driver of the present invention; Figure 10 is an axonometric view of the force application plate of the present invention; Figure 11 is an axonometric view of the isolation board of the present invention; Figure 12 It is a front cross-sectional view of the feed assembly in the present invention; Figure 13 It is an axial cross-sectional view of the present invention after the blocking disk is separated from the second rotating disk; Figure 14 for Figure 13 Enlarged view of point A in the middle; Figure 15 is an axonometric view of the present invention after the stirring blade assembly has moved upward; Figure 16 for Figure 15 Enlarged view of point B in the middle.

[0019] Reference numerals include: 1-mixing container, 11-base, 12-mixing barrel, 13-assembly ring, 131-discharge hole, 14-first rotating disk, 141-first scraping groove, 15-second rotating disk, 151-second scraping groove, 152-feeding port, 16-first locking member, 2-stirring assembly, 21-carrying plate, 211-guide trough, 22-stirring blade assembly, 221-first stirring blade, 222-second stirring blade, 23-first drive, 3-cutting assembly, 31-enclosing ring, 32-second drive, 33-annular blade, 34-third drive, 35-receiving hopper, 4-feeding assembly, 41-feeding Hopper, 411-avoidance gap, 42-sealing disk, 43-assembly frame, 431-assembly chamber, 432-rope outlet, 433-first fitting surface, 44-fourth driver, 441-transmission plate, 442-spring, 443-transmission rod, 444-direction changing column, 445-pull rope, 45-adsorption assembly, 451-annular metal plate, 452-first electromagnet, 453-second electromagnet, 46-holding assembly, 461-fixed block, 462-force plate, 4621-slide, 463-pressure rod, 47-second locking member, 48-isolation plate, 481-assembly groove, 482-second fitting surface. DETAILED DESCRIPTION

[0020] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0021] Example 1

[0022] See also Figures 1-16 The present invention provides a technical solution: an automatic feed mixing device that is easy to clean, comprising a mixing container 1 and a stirring assembly 2. The mixing container 1 includes a base 11 and a mixing drum 12. The stirring assembly 2 includes a carrier plate 21, a stirring blade assembly 22, and a first driver 23. After the main and auxiliary ingredients of the feed enter the mixing drum 12, the first driver 23 drives the carrier plate 21 and the stirring blade assembly 22 to rotate together, completing the automatic mixing of the feed. When the wear of the stirring blade assembly 22 needs to be inspected, the first driver 23 drives the carrier plate 21 and the stirring blade assembly 22 upward. The stirring blade assembly 22 can be moved to the outside of the mixing drum 12, allowing the operator to promptly detect wear problems of the stirring blade assembly, facilitating inspection and maintenance. In this embodiment, the first driver 23 includes a first electric telescopic rod, a circular disc, and a motor. When the first driver 23 is in operation, the motor drives the carrier plate 21 to rotate. The extension and contraction of the first electric telescopic rod are achieved by the circular disc and the motor driving the carrier plate 21 and the stirring blade assembly 22 to move vertically together.

[0023] See also Figures 1-4 and Figures 13-16 The top of the mixing barrel 12 is provided with an assembly ring 13, a first rotating disk 14, and a second rotating disk 15. The first rotating disk 14 is provided with a plurality of first scraping grooves 141, and the second rotating disk 15 is provided with a plurality of second scraping grooves 151. The stirring blade assembly 22 includes a plurality of first stirring blades 221 and a plurality of second stirring blades 222. The carrying disk 21 is located at the bottom of the mixing barrel 12. The tops of the first stirring blades 221 are located in the first scraping grooves 141, and the tops of the second stirring blades 222 are located in the second scraping grooves 151. When the feed needs to be mixed and stirred, the first driver 23 drives the rotation, and the first driver 23 drives the first stirring blades 221 and the second stirring blades 222 to rotate synchronously to stir the feed. Since the relative positions of the first stirring blades 221 and the second stirring blades 222 do not change, the first rotating disk 14 and the second rotating disk 15 can also rotate synchronously.

[0024] See also Figures 1-4 and Figures 13-16The first stirring blade 221 and the second stirring blade 222 are both spiral-shaped, and the spiral directions are opposite, so that the feed mixing effect is better. A number of discharge holes 131 are provided on the side wall of the assembly ring 13, and a number of guide grooves 211 are provided on the top surface of the supporting plate 21. When the feed mixing process is completed, the assembly ring 13 is rotated so that the discharge holes 131 are aligned with the guide grooves 211, and the first driver 23 drives the supporting plate 21 to move upward, and the supporting plate 21 drives the feed to rise. The supporting plate 21 can squeeze the feed together with the assembly ring 13, the first rotating plate 14 and the second rotating plate 15, and the mixing barrel 12 can move to the outside of the mixing barrel 12 through the guide grooves 211 and the discharge holes 131 to complete the discharge.

[0025] See also Figures 1-4 and Figures 13-16 As the carrier plate 21 moves upward, the first stirring blade 221 slides along the inner wall of the first scraping groove 141, driving the first rotating disk 14 to rotate forward. The second stirring blade 222 slides along the inner wall of the second scraping groove 151, driving the second rotating disk 15 to rotate counterclockwise. The first scraping groove 141 and the second scraping groove 151 can scrape off the feed material on the first stirring blade 221 and the second stirring blade 222, ensuring the cleanliness of the stirring blade assembly 22. In addition, as the stirring blade assembly 22 rises, the first stirring blade 221 and the second stirring blade 222 gradually move above the first rotating disk 14 and the second rotating disk 15, allowing the operator to promptly detect whether the first stirring blade 221 and the second stirring blade 222 are worn.

[0026] See also Figures 1-5 and Figures 13-16 The first rotating disk 14 and the second rotating disk 15 are provided with a first locking member 16. In this embodiment, the first locking member 16 comprises two insert plates and a latch. The two insert plates are fixedly mounted on the top surfaces of the assembly ring 13 and the first rotating disk 14, respectively. When the latch passes through the two insert plates, the assembly ring 13 and the first rotating disk 14 are connected together, enabling synchronous rotation, thereby increasing the stability of the present invention when mixing and stirring the feed. When the latch is moved so that it leaves the insert plates on the assembly ring 13, the assembly ring 13 and the first rotating disk 14 are separated, and the assembly ring 13 can rotate freely, so that the discharge hole 131 can be aligned with the guide trough 211.

[0027] See also Figures 1-5 and Figures 13-16The outer side of the mixing barrel 12 is provided with a cutting assembly 3, which comprises a blocking ring 31, a second driver 32, an annular blade 33, a third driver 34 and a receiving hopper 35. When it is necessary to mix and stir the feed, the second driver 32 drives the blocking ring 31 to move downwards to block a plurality of discharge holes 131, so that the feed cannot leave the interior of the mixing barrel 12 through the discharge holes 131 during the mixing process. When the feed mixing process is completed, the second driver 32 drives the blocking ring 31 to move upwards, so that the discharge holes 131 are exposed, facilitating the discharge of the feed. When the feed is extruded through the discharge holes 131, the third driver 34 drives the annular blade 33 to reciprocate upwards and downwards to cut the feed. The cut feed can fall into the receiving hopper 35 below to be collected. In the embodiment, the second driver 32 and the third driver 34 are respectively a second electric telescopic rod and a third electric telescopic rod.

[0028] Embodiment Two

[0029] On the basis of Embodiment One, referring to Figures 1-8 and Figures 13-16 , the present application further comprises a feeding assembly 4, which comprises a feeding hopper 41 and a blocking disc 42. The top surface of the second rotating disc 15 is provided with a feeding port 152, the interior of the feeding hopper 41 and the interior of the mixing barrel 12 are both in communication with the feeding port 152, and the blocking disc 42 is arranged in the feeding port 152. When it is necessary to mix and stir the feed, the blocking disc 42 is first separated from the second rotating disc 15, then the main material and the auxiliary material of the feed are poured into the feeding hopper 41, and the main material and the auxiliary material of the feed will both enter the interior of the mixing barrel 12 through the feeding port 152. Subsequently, the blocking disc 42 is connected to the second rotating disc 15 to perform the subsequent mixing and stirring operation of the feed, and when the mixing process is completed and the feed is moved upwards by the carrying disc 21, the blocking disc 42 can block the feed, so that the feed cannot leave the mixing barrel 12 through the feeding port 152.

[0030] Referring to Figures 1-9 and Figures 13-16The feeding assembly 4 also includes an assembly frame 43 and a fourth driver 44. The assembly frame 43 is arranged at the inner bottom of the feed hopper 41. The assembly frame 43 is provided with an assembly cavity 431 inside. The fourth driver 44 is arranged in the assembly cavity 431. The fourth driver 44 includes a transmission plate 441, a spring 442, a transmission rod 443, a direction-changing column 444 and a pull rope 445. When the fourth driver 44 is working, if the transmission rod 443 is lifted upward, it can drive the transmission plate 441 and the first end of the pull rope 445 to rise, the spring 442 is stretched to store elastic potential energy, and the second end of the pull rope 445 moves downward along the inner wall of the rope outlet 432 at the bottom of the assembly cavity 431. The sealing disk 42 moves downward by gravity into the interior of the mixing barrel 12, so that the feed port 152 becomes open. At this time, the main ingredients and auxiliary ingredients of the feed can be introduced into the feed hopper 41. If the transmission rod 443 is released, the spring 442 releases its elastic potential energy and shortens, and the spring 442 drives the transmission plate 441 and the transmission rod 443 to move downward and reset. The transmission plate 441 drives the first end of the pull rope 445 to move together, and the second end of the pull rope 445 moves upward along the inner wall of the rope outlet 432. The pull rope 445 lifts the blocking disk 42 upward, and the blocking disk 42 returns to the feed port 152 and re-blocks the feed port 152. In this embodiment, the middle part of the pull rope 445 bypasses the direction-changing column 444 to achieve direction change. Therefore, when the fourth driver 44 is working, both ends of the assembly frame 43 are subjected to force, thereby extending the service life of the assembly frame 43.

[0031] See also Figures 1-9 and Figures 13-16 The top surface of the blocking disk 42 has a conical structure. During the process of introducing the main ingredients and auxiliary materials of the feed into the feed hopper 41, the main ingredients and auxiliary materials of the feed can slide along the top surface of the blocking disk 42 and will not accumulate on the blocking disk 42. And because the blocking disk 42 is only connected to the assembly frame 43 by the pull rope 445, the blocking disk 42 can swing and rotate in space, speeding up the speed at which the main ingredients and auxiliary materials of the feed on the top surface of the blocking disk 42 slide down. When the present invention is finished using, press the transmission rod 443 downward, and the pull rope 445 can further lift the blocking disk 42 upward, so that the blocking disk 42 moves to the top of the second rotating disk 15, making it easier for the operator to clean the blocking disk 42.

[0032] See also Figures 1-9 and Figures 12-16The feeding assembly 4 also includes an adsorption assembly 45, which includes an annular metal plate 451, a first electromagnet 452 and a second electromagnet 453. The annular metal plate 451 is arranged on the blocking disk 42, the first electromagnet 452 is arranged on the inner wall of the feed port 152, and the second electromagnet 453 is arranged on the outer wall of the assembly frame 43. When the blocking disk 42 is in the feed port 152, the first electromagnet 452 can adsorb the annular metal plate 451 to ensure that the blocking disk 42 does not move at will. When the first electromagnet 452 is powered off, the blocking disk 42 can move up and down. The middle bottom surface of the assembly frame 43 is provided with two first fitting surfaces 433 with mirror-symmetrical structures. When the blocking disk 42 moves to the top of the second rotating disk 15, the top surface of the blocking disk 42 is fitted with the first fitting surface 433, and the second electromagnet 453 can adsorb the annular metal plate 451, which is convenient for the operator to clean the blocking disk 42.

[0033] Example 3

[0034] Based on Example 2, please refer to Figures 1-16 The feeding assembly 4 also includes a holding assembly 46, which is connected to the transmission rod 443 to facilitate the operator to control the up and down movement of the transmission rod 443. When the first stirring blade 221 and the second stirring blade 222 move to the top of the first rotating disk 14 and the second rotating disk 15, the feeding hopper 41 and the holding assembly 46 will not form an obstacle to the first stirring blade 221 and the second stirring blade 222. The holding assembly 46 includes a fixed block 461, a force plate 462 and a pressure rod 463. The fixed block 461 is connected to the transmission rod 443. The feeding hopper 41 is provided with an avoidance gap 411. The force plate 462 is arranged in the avoidance gap 411. The bottom surface of the force plate 462 is provided with a slide 4621. The fixed block 461 is arranged in the slide 4621. The pressure rod 463 is fixedly arranged on the top surface of the force plate 462.

[0035] See also Figures 1-16 If the force plate 462 is pushed out of the clearance notch 411, the fixed block 461 slides along the slideway 4621. The operator can then grasp the pressure rod 463 and apply downward pressure. The pressure rod 463 transmits the pressure to the fixed block 461 and the transmission rod 443 through the force plate 462, thereby driving the transmission rod 443 and the transmission plate 441 downward. The operator grasps the pressure rod 463 and applies upward pulling force, ultimately driving the transmission rod 443 and the transmission plate 441 upward. If the force plate 462 is pushed out of the clearance notch 411, the force plate 462 will not hinder the upward movement of the first stirring blade 221 and the second stirring blade 222.

[0036] See also Figures 1-16The second locking member 47 is a Z-shaped locking rod with an arc in the embodiment. The operator can insert the second locking member 47 into the fixed block 461 and the force plate 462 by operating the second locking member 47 near the holding assembly 46 on the top of the feeding hopper 41, so that the force plate 462 is limited and cannot move to the outside of the avoiding gap 411 by gravity, and the force plate 462 does not form an obstacle. The operator can release the force plate 462 by operating the second locking member 47 away from the holding assembly 46 on the top of the feeding hopper 41, so that the operator can adjust the position of the force plate 462 and control the working state of the fourth driver 44.

[0037] Please refer to Figures 1-16 The feeding assembly 4 further comprises an isolation plate 48 arranged inside the feeding hopper 41. The isolation plate 48 divides the feeding hopper 41 into two areas. When the main feed and the auxiliary feed are introduced into the feeding hopper 41, the main feed and the auxiliary feed should be poured from the side away from the holding assembly 46, so that the main feed and the auxiliary feed can be prevented from spilling from the position of the avoiding gap 411. The bottom of the isolation plate 48 is provided with a mounting groove 481, and the top surface of the mounting frame 43 is arranged in the mounting groove 481. The two sides of the mounting groove 481 are respectively provided with a second abutting surface 482. When the second electromagnet 453 adsorbs the annular metal plate 451, the top surface of the sealing disc 42 is abutted with the two second abutting surfaces 482.

[0038] It is apparent to those skilled in the art that the present application is not limited to the details of the foregoing exemplary embodiments, and that the present application can be implemented in other specific forms without departing from the spirit or essential characteristics of the present application. Therefore, the embodiments should be considered in all respects as illustrative and not restrictive, and the scope of the present application should be defined by the appended claims rather than the above description, and it is intended to include all changes falling within the meaning and scope of equivalents of the claims. Any reference signs in the claims should not be construed as limiting the claims to which the reference signs belong.

[0039] In addition, it should be understood that, although the present specification is described in terms of embodiments, not every embodiment contains only one independent technical solution, and the description of the specification is only for the sake of clarity, and those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can be properly combined to form other embodiments that those skilled in the art can understand.

Claims

1. An automatic feed mixing device that is easy to clean, characterized in that: include: A mixing container, comprising a base, a mixing barrel fixedly provided on the top of the base, and the top and bottom surfaces of the mixing barrel are both open; A stirring assembly, the stirring assembly includes a carrying plate, the carrying plate is arranged at the inner bottom of the mixing barrel and can slide along the inner wall of the mixing barrel, the top surface of the carrying plate is provided with a stirring blade assembly, and a first driver is fixedly provided at the bottom of the base, the output end of the first driver is connected to the bottom surface of the carrying plate, and is used to drive the carrying plate to rotate and move in the vertical direction.

2. The easy-to-clean automatic feed mixing device according to claim 1, characterized in that: The top of the mixing cylinder is provided with a concentrically arranged assembly ring, a first rotating disk and a second rotating disk, the assembly ring is rotatably connected to the mixing cylinder, the first rotating disk is rotatably connected to the assembly ring, the second rotating disk is rotatably connected to the first rotating disk, the first rotating disk is provided with a plurality of first scraping grooves, and the second rotating disk is provided with a plurality of second scraping grooves; The stirring blade assembly includes a plurality of first stirring blades and a plurality of second stirring blades, the first stirring blades and the second stirring blades are both spiral-shaped and have opposite spiral directions, the plurality of first stirring blades are all arranged below the first rotating disk, the plurality of second stirring blades are all arranged below the second rotating disk, the first ends of the plurality of first stirring blades are all fixedly connected to the carrying disk, the second ends of the plurality of first stirring blades respectively extend into the plurality of first scraping grooves and are capable of sliding along the inner walls of the first scraping grooves, the first ends of the plurality of second stirring blades are all fixedly connected to the carrying disk, the second ends of the plurality of second stirring blades respectively extend into the plurality of second scraping grooves and are capable of sliding along the inner walls of the second scraping grooves; A plurality of discharge holes distributed at equal intervals are provided on the side wall of the assembly ring, and a plurality of guide grooves distributed at equal intervals are provided on the edge of the top surface of the carrying plate.

3. The automatic feed mixing device that is easy to clean according to claim 2, characterized in that: The first rotating disk and the second rotating disk are provided with a first locking member, and the first locking member can control the first rotating disk and the second rotating disk to enter a connected state and a separated state together; A cutting assembly is provided on the outside of the mixing cylinder, and the cutting assembly includes: A retaining ring, sleeved on the assembly ring and capable of sliding along the outer side wall of the assembly ring; A second driver is fixedly provided on the top surface of the assembly ring, wherein an output end of the second driver is connected to the retaining ring and is used to drive the retaining ring to move in a vertical direction; an annular blade, sleeved on the mixing barrel, the outer wall of the mixing barrel and the outer wall of the retaining ring are aligned, and the annular blade can slide along the outer wall of the retaining ring and the outer wall of the assembly ring; a third driver, disposed below the annular blade and fixedly connected to the outer side wall of the mixing barrel, wherein an output end of the third driver is connected to the annular blade and is used to drive the annular blade to move in a vertical direction; The material receiving hopper is sleeved on the mixing barrel and is located below the third driver. The material receiving hopper is fixedly connected to the mixing barrel.

4. The automatic feed mixing device that is easy to clean according to claim 2, characterized in that: Also included is a feed assembly, the feed assembly comprising: A feed hopper is fixedly arranged on the top surface of the second rotating disk, a feed port is provided at the center of the top surface of the second rotating disk, and the interior of the feed hopper and the interior of the mixing cylinder are both connected to the feed port; The blocking disk is arranged in the feed port and can slide along the inner side wall of the feed port. The blocking disk is detachably connected to the second rotating disk.

5. The automatic feed mixing device that is easy to clean according to claim 4, characterized in that: The feed assembly further comprises: an assembly rack, disposed at the inner bottom of the feed hopper and fixedly connected to the feed hopper, the assembly rack being in a C-shaped structure, with the open end of the assembly rack facing the second rotating disk, and an assembly cavity being provided inside the assembly rack; A fourth driver is provided in the assembly cavity, wherein an output end of the fourth driver is connected to the sealing disk and is used for driving the sealing disk to move in a vertical direction.

6. The easy-to-clean automatic feed mixing device according to claim 5, characterized in that: The fourth driver includes: a transmission plate, horizontally disposed at one end of the assembly cavity and capable of sliding along the inner wall of the assembly cavity; a spring, disposed below the transmission plate, with both ends of the spring fixedly connected to the transmission plate and the inner wall of the assembly cavity, respectively; a transmission rod vertically disposed above the transmission plate, wherein a first end of the transmission rod is fixedly connected to a top surface of the transmission plate, and a second end of the transmission rod passes through a top surface of the assembly frame and extends to an outer side of the assembly frame; A direction-changing column is horizontally arranged at the other end of the assembly cavity, and both ends of the direction-changing column are fixedly connected to the inner wall of the assembly cavity; A pull rope, a rope outlet is provided on the middle bottom surface of the assembly cavity, the first end of the pull rope is fixedly connected to the top surface of the transmission plate, the second end of the pull rope passes around the bottom of the changing column and extends to the outside of the assembly frame through the rope outlet, and the second end of the pull rope is fixedly connected to the center of the top surface of the sealing disk.

7. The automatic feed mixing device that is easy to clean according to claim 6, characterized in that: The top surface of the occluding disc is a conical structure, and the middle bottom surface of the assembly frame is provided with two first fitting surfaces with mirror-symmetrical structures; The feed assembly further includes an adsorption assembly, which includes: an annular metal plate, sleeved on the sealing disk and fixedly connected to the outer wall of the sealing disk; a first electromagnet, fixedly disposed on the inner side wall of the feed port; The second electromagnet is fixedly arranged on the outer side wall of the assembly frame facing the annular metal plate.

8. The automatic feed mixing device that is easy to clean according to claim 7, characterized in that: The top radius of the feed hopper is greater than the bottom radius, and the length of the top radius of the feed hopper is less than the distance between the center of the second rotating disk and one end of the second scraping groove close to the feed hopper; The feeding assembly further includes a holding assembly, which includes: a fixed block, fixedly disposed on the second end portion of the transmission rod; A force plate, wherein the feed hopper is provided with an avoidance notch at one end near the transmission rod, the force plate is arranged in the avoidance notch and is located above the fixed block, the length extension direction of the force plate is coplanar with the central axis of the second rotating disk, the bottom surface of the force plate is provided with a slide, the length extension direction of the slide is the same as the length extension direction of the force plate, the fixed block is arranged in the slide and can slide along the slide; The pressure rod is fixedly arranged on the top surface of the force applying plate.

9. The automatic feed mixing device that is easy to clean according to claim 8, characterized in that: The feed assembly further comprises: a second locking member, the second locking member being provided between the top of the feed hopper and the gripping assembly, and being capable of controlling the feed hopper and the gripping assembly to enter a connected state and a separated state together; An isolation plate is arranged inside the feed hopper, with both ends of the isolation plate fixedly connected to the inner side wall of the feed hopper, and one end of the force plate away from the avoidance gap abuts against the side wall of the isolation plate.

10. The easy-to-clean automatic feed mixing device according to claim 9, characterized in that: The top position of the isolation plate is higher than the top of the feed hopper, and an assembly groove is provided at the bottom of the isolation plate. The middle part of the top surface of the assembly frame is provided in the assembly groove and is fixedly connected to the isolation plate. A second fitting surface is provided on each side of the assembly groove, and the two second fitting surfaces are aligned with the first fitting surface close to the side of the avoidance gap.

Citation Information

Patent Citations

  • A raw material crushing and mixing device for feed processing

    CN118403552B