Feed mixing machine for breeding cubs by animal husbandry and veterinary medicine

By designing a feed mixer for animal husbandry and veterinary cubs that include swinging units and processing units, the problems of low mixing efficiency and uneven feed in the prior art are solved, uniform stirring and mixing of feed are achieved, and mixing efficiency and uniformity of feed ingredients are improved.

CN119926248AInactive Publication Date: 2025-05-06岚县畜牧兽医服务中心
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Patent Information

Application Number
CN202510432644.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-08
Publication Date
2025-05-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing feed mixer is inefficient when mixing feed and drugs and cannot effectively deal with the ratio of different feed raw materials, resulting in uneven mixing and moisture and moldy feed.

Method used

A feed mixer for animal husbandry and veterinary cubs that include swinging units and processing units is designed. The processing unit includes a processing cylinder, a driving mechanism and an auxiliary mechanism. By driving the rotation of the vertical shaft, an extension rod and a connecting block, combined with the multi-structure rotation of the auxiliary mechanism and the airbag structure, uniform stirring and mixing of the feed is achieved.

Benefits of technology

The feed is uniformly stirred and mixed, and the residues on the cavity wall of the cylinder can be scraped off, the mixing efficiency and uniformity of feed ingredients are improved, and the feed is avoided from being wet and moldy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a feed blending machine for breeding cubs by animal husbandry veterinarians, and belongs to the technical field of feed processing. Comprising a swinging unit and a processing unit, when dry feed needs to be simply stirred and dispersed, an auxiliary mechanism keeps an initial working state, the outer end wall of a pushing block is attached to the inner cavity wall of a barrel to rotate, and the dry feed is driven to be rotationally stirred through rotation of multiple structures of a driving mechanism and the auxiliary mechanism; when a water and feed mixture needs to be stirred and mixed, the auxiliary mechanism can slowly expand outwards in direct proportion to the rotating speed, so that processed feed is pushed outwards through the pushing block, after the auxiliary mechanism is softly and mechanically expanded to an initial state, clean water is added inwards, and the liquid level of the clean water overflows the upper surface of the pushing block; the pushing block floats upwards under the influence of buoyancy, so that the outer end surface of the pushing block is in contact with the sunken part of the outer end wall of the bottom block again, and at the moment, feed for mixing is poured into the inner cavity of the barrel body, and the feed and liquid can be better fused at the moment.
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Description

Technical Field

[0001] The invention relates to the technical field of feed processing, in particular to a feed mixer for animal husbandry and veterinary medicine to cultivate cubs. Background Art

[0002] Because the nutritional needs of animal cubs are different from those of adult animals, the feed formula needs to be adjusted according to the special needs of cubs. Different types of animal cubs require different nutrients and different feed raw materials. Feed mixers are one of the indispensable equipment in the process of feed processing.

[0003] Publication No. CN112871012A discloses a veterinary medicine feed mixer, comprising a base, a driving mechanism is provided on the base, the base is fixedly connected to a fixing rod, the end of the fixing rod away from the base is fixedly connected to a first barrel, a mixing mechanism is provided in the first barrel, a second discharge pipe is fixedly connected to the outer wall of the first barrel, a switch valve is provided on the second discharge pipe, the end of the second discharge pipe away from the first barrel is fixedly connected to the second barrel, a feeding mechanism is provided in the second barrel, an air inlet is provided on the second barrel, a wind tube is fixedly connected to the outer wall of the base, the inner wall of the wind tube is rotatably connected to a third rotating shaft, a fifth pulley and a first fan blade are fixedly connected to the third rotating shaft, a medicine delivery mechanism is provided on the base, and a heat dissipation mechanism that cooperates with the driving mechanism is provided in the base.

[0004] The above patent solves the problems of uneven mixing of feed and medicine by existing mixing machines, low mixing efficiency, and inability to dry the mixed feed. Long-term storage will cause the feed to become damp and moldy, thereby losing nutrition; but it is unable to process feed with different feed raw material ratios. Summary of the invention

[0005] The purpose of the present invention is to solve the shortcomings in the prior art and to propose a feed mixer for raising cubs by animal husbandry and veterinary medicine.

[0006] In order to achieve the above object, the present invention adopts the following technical solutions:

[0007] A feed mixer for animal husbandry and veterinary breeding of cubs, comprising a swing unit and a processing unit, wherein the swing unit clamps the processing unit in the middle, and the processing unit comprises a processing cylinder and a driving mechanism installed in the inner cavity of the processing cylinder, and the outer ring of the driving mechanism is sleeved with an auxiliary mechanism;

[0008] The driving mechanism comprises a driving vertical shaft and a bottom block installed at the bottom of the driving vertical shaft, the outer ring of the driving vertical shaft is sleeved with a reinforcing block, both ends of the driving vertical shaft are forked to form an outrigger rod, the other end of the outrigger rod is installed with a connecting block, the upper and lower groups of the connecting blocks are connected by a linkage rod, and the two horizontal groups of the connecting blocks are connected in series by a contact bent rod;

[0009] The processing cylinder comprises a top cover and a sleeved horizontal cylinder installed on the top of the top cover, the lower end surface of the top cover is provided, positioning ears are provided on both sides of the outer end surface of the cylinder body, an auxiliary housing is provided at the bottom of the cylinder body, and the bottom of the auxiliary housing is sleeved on the chassis. The operator manually moves the positioning ears to separate the top cover from the cylinder body, and places the feed to be processed into the inner cavity of the cylinder body, so that the auxiliary housing shell and the inner cavity of the cylinder body contain the processed feed, and the external drive motor is connected to the top of the vertical shaft, and the external drive motor drives the vertical shaft to rotate. In the process of driving the vertical shaft to rotate, the vertical shaft drives the outward rod and the connecting block to rotate in the same direction. In this state, the linkage frame rod can drive the feed in the inner cavity of the cylinder to be stirred during rotation, and because the outer end surface of the connecting block and the contact bent rod is in a fit state with the inner cavity wall of the cylinder body, the residue adsorbed on the inner cavity wall of the cylinder body can be scraped off during the mixing of the feed;

[0010] The bottom of the bottom block is fitted with the inner cavity wall of the auxiliary shell. During the rotation of the bottom block, the gap between the bottom and the auxiliary shell can rub the feed mixed with water during rotation. Since the outer surface of the bottom block is an array concave structure, when the auxiliary mechanism needs to be deformed, the outer end face of the pushing block can fit the outer end wall of the bottom block, thereby improving the stability of the processing state of the overall device.

[0011] Preferably, the auxiliary mechanism comprises a first splicing frame movably connected to the inner cavity of the reinforcing block, the first splicing frame is inserted into the inner cavity of the second splicing frame from top to bottom, a third splicing frame is arranged in the inner cavity of the second splicing frame, one end of the third splicing frame is connected to one end of the first splicing frame, the other end of the third splicing frame is movably connected to the fourth splicing frame, the bottom of the fourth splicing frame is vertically inserted into the upper end surface of the pushing block, when the dry feed needs to be simply stirred and dispersed, the auxiliary mechanism maintains the initial working state, so that the outer end wall of the pushing block is attached to the inner cavity wall of the cylinder and rotates together, and the dry feed is driven to rotate and stir by utilizing the rotation of the multi-structure of the driving mechanism and the auxiliary mechanism;

[0012] When it is necessary to stir and mix the water and feed mixture, the operator adjusts the auxiliary mechanism to put it in a retracted state. The push block in the retracted state is mechanically attached to the outer end wall of the bottom block through the adjustment soft mechanisms of the first splicing frame, the second splicing frame, the third splicing frame and the fourth splicing frame. At this time, the water and feed mixture is poured into the inner cavity of the cylinder. During the rotation of the driving mechanism, due to the influence of the rotating centrifugal force, the auxiliary mechanism will slowly expand outward in proportion to the rotation speed, thereby pushing the processed feed outward through the push block. When the auxiliary mechanism soft mechanism is mechanically expanded to the initial state, clean water is added inward to make the clean water level overflow the upper surface of the push block. The push block will float upward due to the influence of buoyancy, so that the outer end surface of the push block will contact the depression of the outer end wall of the bottom block again. At this time, the feed for mixing is poured into the inner cavity of the cylinder. At this time, the feed and liquid can be better dissolved. The external drive motor repeats the above steps to drive the driving mechanism and the auxiliary mechanism to rotate and stir in the inner cavity of the cylinder, thereby achieving the stirring processing of the solid-liquid mixed feed.

[0013] Preferably, the processing unit further comprises a matching cylinder installed at the bottom of the pushing block, two groups of the matching cylinders are connected via a stirring frame, and the stirring frame and the matching cylinders are connected and fixed via a connecting mechanism.

[0014] Preferably, the stirring frame includes an inner splicing block and a splicing frame body installed between the inner splicing blocks, and the lower end surface of the inner splicing block is installed with a combined splicing frame, and both ends of the splicing frame body are laterally inserted into the edge position of the matching cylinder. When it is necessary to stir the viscous feed, the stirring frame, the matching cylinder and the connecting mechanism are installed at the bottom position of the connecting block and the viscous feed of the device is poured into the device. The viscous feed will be pulled by the splicing frame body, the combined splicing frame and the interval between the matching bracket in a rotating state, so that the processing and stirring efficiency of the viscous feed is improved. At this time, the extension shell, the matching cylinder and the lower connecting block are combined into a sealed airbag structure. In the process of the viscous feed being rotated and squeezed, a negative pressure is formed in its inner cavity, so that the airflow therein is discharged into the inner cavity of the cylinder through the leakage hole, and the gas is mixed with the viscous feed to improve the mixing efficiency, make the ingredients in the feed more uniform, and improve the processing capacity and efficiency in the mixing process.

[0015] Preferably, the connection mechanism comprises a tray and a leak hole opened on the upper end surface of the tray, an extension shell is installed on the upper end surface of the tray, and the two groups of trays are connected by matching brackets.

[0016] Preferably, the matching bracket is hung on the upper end surface of the combined splicing frame, and the upper end surface of the extension shell is fitted to the bottom of the matching tube, so that the matching tube and the connection mechanism become a whole.

[0017] Preferably, the upper end of the driving vertical shaft is vertically installed at the middle position of the bottom of the top cover, the outer end surface of the pushing block is in contact with the inner wall of the cylinder, and the outer end surfaces of the connecting block and the contact bent rod are both in contact with the inner wall of the cylinder.

[0018] Preferably, the four sides of the bottom block are in contact with the bottom of the inner cavity wall of the auxiliary housing, so that the processing cylinder and the driving mechanism become a whole.

[0019] Preferably, the swing unit includes an assembly plate and an upper lifting block installed in the middle position of the upper end surface of the assembly plate, transverse support frames are vertically arranged on both sides of the edge of the upper end surface of the assembly plate, a pushing cross bar is horizontally installed on the inner end surface of the transverse support frame, and vertical vertical frames are vertically installed on the other two sides of the edge of the upper end surface of the assembly plate, and the top positions of the two groups of vertical vertical frames are horizontally connected by an interlaced horizontal axis.

[0020] Preferably, the upper lifting block is fitted to the bottom of the chassis from bottom to top, the inner end of the pushing cross bar is fitted to the outer end surface of the cylinder, and the interlaced cross shaft is inserted through the inner cavity of the sleeve cross cylinder, so that the swing unit and the processing unit become a whole. Because the upper lifting block lifts the bottom end surface of the chassis upward, there is a fulcrum between the upper lifting block and the bottom end surface of the chassis. The pushing cross bar is continuously pushed inward by an external pushing motor, so that the inner end surface of the pushing cross bar can continuously reciprocate and swing the processing cylinder as a whole. Because the interlaced cross shaft is inserted in the inner cavity of the sleeve cross cylinder, there is a lateral swing fulcrum at the top position of the swing unit and the processing unit, so that the swing unit and the processing unit can rotate and swing, thereby improving the stirring and processing efficiency of the processed feed in the overall device.

[0021] Compared with the prior art, the present invention has the following beneficial effects:

[0022] 1. Because the outer end faces of the connecting block and the contact bent rod are in contact with the inner wall of the cylinder, the residues adsorbed on the inner wall of the cylinder can be scraped off during the feed mixing process.

[0023] 2. When the dry feed needs to be simply stirred and dispersed, the auxiliary mechanism maintains the initial working state, so that the outer end wall of the push block fits against the inner wall of the cylinder and rotates together, and the multi-structure rotation of the driving mechanism and the auxiliary mechanism drives the dry feed to rotate and stir.

[0024] 3. When it is necessary to stir and mix the water and feed mixture, the auxiliary mechanism will slowly expand outward in direct proportion to the rotation speed, thereby pushing the processed feed outward through the pushing block. When the auxiliary mechanism soft mechanically expands to the initial state, clean water is added inward to make the clean water liquid level overflow the upper surface of the pushing block. The pushing block will float upward due to the buoyancy, so that the outer end surface of the pushing block will contact the outer end wall depression of the bottom block again. At this time, the feed for mixing is poured into the inner cavity of the cylinder. At this time, the feed and liquid can be better dissolved. The external drive motor repeats the above steps to drive the driving mechanism and the auxiliary mechanism to rotate and stir in the inner cavity of the cylinder, thereby achieving the stirring process of the solid-liquid mixed feed.

[0025] 4. When the viscous feed needs to be stirred, the stirring frame, the matching cylinder and the connecting mechanism are installed at the bottom of the connecting block, and the viscous feed of the device is poured in. The viscous feed will be pulled by the splicing frame, the combined splicing frame and the interval between the matching bracket in the rotating state, so that the processing and stirring efficiency of the viscous feed is improved. At this time, the extension shell, the matching cylinder and the lower connecting block are combined into a sealed air bag structure. In the process of the viscous feed being rotated and squeezed, a negative pressure is formed in its inner cavity, so that the air flow therein is discharged into the inner cavity of the cylinder through the leakage hole, and the gas is mixed with the viscous feed for processing, which improves the mixing efficiency, makes the ingredients in the feed more uniform, and improves the processing capacity and efficiency in the mixing process. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 This is a three-dimensional structural schematic diagram of a feed mixer for raising cubs in animal husbandry and veterinary medicine proposed by the present invention;

[0027] Figure 2 This is a schematic diagram of the structure of a swing unit of a feed mixer for raising cubs in animal husbandry and veterinary medicine proposed by the present invention;

[0028] Figure 3 This is a schematic diagram of the processing barrel structure of a feed mixer for raising cubs in animal husbandry and veterinary medicine proposed by the present invention;

[0029] Figure 4 This is a schematic diagram of the combined structure of the driving mechanism and the auxiliary mechanism of a feed mixer for raising cubs in animal husbandry and veterinary medicine proposed by the present invention;

[0030] Figure 5 This is a schematic diagram of the driving mechanism structure of a feed mixer for raising cubs in animal husbandry and veterinary medicine proposed by the present invention;

[0031] Figure 6 This is a schematic diagram of the auxiliary mechanism structure of a feed mixer for raising cubs in animal husbandry and veterinary medicine proposed by the present invention;

[0032] Figure 7This is a schematic diagram of the combined structure of a stirring frame, a matching cylinder and a connection mechanism of a feed mixer for raising cubs in animal husbandry and veterinary medicine proposed by the present invention;

[0033] Figure 8 This is a schematic diagram of the structure of a stirring frame of a feed mixer for raising cubs in animal husbandry and veterinary medicine proposed by the present invention;

[0034] Fig. 9 The present invention is a schematic diagram of the structure of a connection mechanism of a feed mixer for raising cubs in animal husbandry and veterinary medicine.

[0035] In the figure: 1, swing unit; 11, assembly plate; 12, upper lifting block; 13, horizontal support frame; 14, push cross bar; 15, vertical vertical frame; 16, interlaced horizontal axis; 2, processing unit; 21, processing cylinder; 211, top cover; 212, sleeve horizontal cylinder; 213, cylinder body; 214, positioning ear piece; 215, auxiliary shell; 216, bottom plate; 22, driving mechanism; 221, driving vertical axis; 222, bottom block; 223, reinforcement block; 224, extension rod; 22 5. Connecting block; 226. Linking frame rod; 227. Contact bending rod; 23. Auxiliary mechanism; 231. First splicing frame; 232. Second splicing frame; 233. Third splicing frame; 234. Fourth splicing frame; 235. Pushing block; 24. Stirring frame; 241. Inner splicing block; 242. Splicing frame body; 243. Combined splicing frame; 25. Matching cylinder; 26. Connecting mechanism; 261. Tray; 262. Leak hole; 263. Extension shell; 264. Matching bracket. DETAILED DESCRIPTION

[0036] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0037] Reference Figure 1-Figure 9 Embodiment 1, a feed mixer for animal husbandry and veterinary breeding cubs, comprising a swing unit 1 and a processing unit 2, the swing unit 1 clamps the processing unit 2 in the middle, the processing unit 2 comprises a processing cylinder 21 and a driving mechanism 22 installed in the inner cavity of the processing cylinder 21, the outer ring of the driving mechanism 22 is sleeved with an auxiliary mechanism 23;

[0038] The driving mechanism 22 includes a driving vertical shaft 221 and a bottom block 222 installed at the bottom of the driving vertical shaft 221. The outer ring of the driving vertical shaft 221 is sleeved with a reinforcing block 223. Both ends of the driving vertical shaft 221 are forked to form an extension rod 224. The other end of the extension rod 224 is installed with a connecting block 225. The upper and lower groups of connecting blocks 225 are connected by a linkage rod 226. The two lateral groups of connecting blocks 225 are connected in series by a contact bent rod 227.

[0039] The processing cylinder 21 includes a top cover 211 and a sleeve-connected horizontal cylinder 212 installed on the top of the top cover 211. The lower end surface of the top cover 211 is provided with a cylinder body 213. Positioning ear pieces 214 are provided on both sides of the outer end surface of the cylinder body 213. An auxiliary container 215 is provided at the bottom of the cylinder body 213. The bottom of the auxiliary container 215 is sleeved with a bottom plate 216. The operator manually moves the positioning ear piece 214 to separate the top cover 211 from the cylinder body 213, and places the feed to be processed into the inner cavity of the cylinder body 213, so that the auxiliary container 215 and the inner cavity of the cylinder body 213 can hold the processed feed. The external drive motor is connected to the top of the vertical shaft 221, and the external drive motor drives the vertical shaft 221 to rotate. In the process of driving the vertical shaft 221 to rotate, the vertical shaft 221 drives the extension rod 224 and the connecting block 225 to rotate in the same direction. In this state, the linkage rod 226 can drive the feed in the inner cavity of the cylinder 213 to stir during rotation, and because the outer end surface of the connecting block 225 and the contact bent rod 227 are in a state of contact with the inner cavity wall of the cylinder 213, the residue adsorbed on the inner cavity wall of the cylinder 213 can be scraped off during the process of stirring the feed;

[0040] In Example 2, the bottom of the bottom block 222 is fitted to the inner wall of the auxiliary housing 215. During the rotation of the bottom block 222, the gap between the bottom of the bottom block 222 and the auxiliary housing 215 can rub the feed mixed with water during rotation. Moreover, since the outer surface of the bottom block 222 is an array concave structure, when the auxiliary mechanism 23 needs to be deformed, the outer end face of the push block 235 can fit the outer end wall of the bottom block 222, thereby improving the stability of the processing state of the overall device.

[0041] Embodiment 3, the auxiliary mechanism 23 includes a first splicing frame 231 movably connected to the inner cavity of the reinforcing block 223, the first splicing frame 231 is inserted into the inner cavity of the second splicing frame 232 from top to bottom, the inner cavity of the second splicing frame 232 is provided with a third splicing frame 233, one end of the third splicing frame 233 is connected to one end of the first splicing frame 231, the other end of the third splicing frame 233 is movably connected to the fourth splicing frame 234, the bottom of the fourth splicing frame 234 is vertically inserted into the upper end surface of the pushing block 235, when it is necessary to simply stir and disperse the dry feed, at this time, the auxiliary mechanism 23 maintains the initial working state, so that the outer end wall of the pushing block 235 is attached to the inner cavity wall of the cylinder 213 and rotates together, and the multi-structure rotation of the driving mechanism 22 and the auxiliary mechanism 23 is utilized to drive the dry feed to rotate and stir.

[0042] Embodiment 4, when it is necessary to stir and mix the water and feed mixture, the operator adjusts the auxiliary mechanism 23 to be in a retracted state, and the push block 235 in the retracted state is mechanically attached to the outer end wall of the bottom block 222 through the adjustment of the first splicing frame 231, the second splicing frame 232, the third splicing frame 233 and the fourth splicing frame 234. At this time, the water and feed mixture is poured into the inner cavity of the cylinder 213. In the process of driving the mechanism 22 to rotate, due to the influence of the rotating centrifugal force, the auxiliary mechanism 23 will slowly expand outward in direct proportion to the rotation speed, thereby pushing the auxiliary mechanism 235 outward. For the processed feed, after the auxiliary mechanism 23 is softly mechanically unfolded to the initial state, clean water is added thereinto so that the clean water level overflows the upper surface of the push block 235. The push block 235 floats upward due to the buoyancy, so that the outer end surface of the push block 235 contacts the outer end wall depression of the bottom block 222 again. At this time, the feed for mixing is poured into the inner cavity of the cylinder 213. At this time, the feed and the liquid can be better dissolved. The external drive motor repeats the above steps to drive the driving mechanism 22 and the auxiliary mechanism 23 to rotate and stir in the inner cavity of the cylinder 213, thereby achieving the mixing processing of the solid-liquid mixed feed.

[0043] In Embodiment 5, the processing unit 2 further comprises a matching cylinder 25 installed at the bottom of the push block 235, two sets of matching cylinders 25 are connected by a stirring frame 24, and the stirring frame 24 and the matching cylinders 25 are connected and fixed by a connecting mechanism 26;

[0044] The stirring frame 24 includes an inner splicing block 241 and a splicing frame body 242 installed between the inner splicing blocks 241. The lower end surface of the inner splicing block 241 is installed with a combined splicing frame 243. Both ends of the splicing frame body 242 are transversely inserted into the edge position of the matching cylinder 25. When the viscous feed needs to be stirred, the stirring frame 24, the matching cylinder 25 and the connecting mechanism 26 are installed at the bottom position of the connecting block 225, and the viscous feed of the device is poured in. The viscous feed will be affected by the splicing frame body 242 and the combined splicing frame in the rotating state. The pulling at the interval between 243 and the matching bracket 264 improves the processing and mixing efficiency of the viscous feed. At this time, the extension shell 263, the matching cylinder 25 and the lower connecting block 225 are combined into a sealed air bag structure. During the process of the viscous feed being rotated and squeezed, a negative pressure is formed in its inner cavity, so that the air flow therein is discharged into the inner cavity of the cylinder 213 through the leakage hole 262, and the gas is mixed with the viscous feed for processing, thereby improving the mixing efficiency, making the ingredients in the feed more uniform, and improving the processing capacity and efficiency during the mixing process.

[0045] In the sixth embodiment, the connection mechanism 26 comprises a tray 261 and a leak hole 262 provided on the upper end surface of the tray 261 . An extension shell 263 is installed on the upper end surface of the tray 261 . The two groups of trays 261 are connected by a matching bracket 264 .

[0046] The matching bracket 264 is hung on the upper end surface of the combined splicing frame 243, and the upper end surface of the extension shell 263 is attached to the bottom of the matching tube 25, so that the matching tube 25 and the connection mechanism 26 become a whole.

[0047] The upper end of the driving vertical shaft 221 is vertically installed at the middle position of the bottom of the top cover 211, the outer end surface of the pushing block 235 is in contact with the inner wall of the cylinder 213, and the outer end surfaces of the connecting block 225 and the contact bent rod 227 are both in contact with the inner wall of the cylinder 213.

[0048] The four sides of the bottom block 222 are in contact with the bottom of the inner wall of the auxiliary housing 215, so that the processing cylinder 21 and the driving mechanism 22 become a whole.

[0049] The swing unit 1 includes an assembly plate 11 and an upper lifting block 12 installed in the middle position of the upper end surface of the assembly plate 11, horizontal supports 13 are vertically arranged on both sides of the upper end surface edge of the assembly plate 11, and a pushing cross bar 14 is horizontally installed on the inner end surface of the horizontal support 13. Vertical vertical frames 15 are vertically installed on the other two sides of the upper end surface edge of the assembly plate 11, and the top positions of the two groups of vertical vertical frames 15 are horizontally connected by an interlaced horizontal axis 16.

[0050] The upper lifting block 12 fits the bottom of the chassis 216 from bottom to top, pushing the inner end of the cross bar 14 to fit the outer end surface of the cylinder 213, and the inserted horizontal axis 16 penetrates and is inserted into the inner cavity of the sleeve horizontal cylinder 212, so that the swing unit 1 and the processing unit 2 become a whole. Because the upper lifting block 12 lifts the bottom end surface of the chassis 216 upward, there is a fulcrum between the upper lifting block 12 and the bottom end surface of the chassis 216. The external driving motor continuously pushes the cross bar 14 inward, so that the inner end surface of the pushing cross bar 14 reciprocates and swings the processing cylinder 21 as a whole uninterruptedly. Because the inserted horizontal axis 16 is inserted in the inner cavity of the sleeve horizontal cylinder 212, there is a lateral swing fulcrum at the top position of the swing unit 1 and the processing unit 2, so that the swing unit 1 and the processing unit 2 rotate and swing, thereby improving the stirring processing efficiency of the processed feed in the overall device.

[0051] In summary, a feed mixer for raising young animals by livestock and veterinary medicine comprises a swing unit 1 and a processing unit 2. The swing unit 1 clamps the processing unit 2 in the middle. The processing unit 2 comprises a processing cylinder 21 and a driving mechanism 22 installed in the inner cavity of the processing cylinder 21. The outer ring of the driving mechanism 22 is sleeved with an auxiliary mechanism 23. The operator manually moves the positioning ear piece 214 to separate the top cover 211 from the cylinder 213, places the feed to be processed into the inner cavity of the cylinder 213, and makes the auxiliary housing 215 and the inner cavity of the cylinder 213 hold the processed feed. The drive motor is connected to the top of the vertical shaft 221, and the external drive motor drives the vertical shaft 221 to rotate. In the process of driving the vertical shaft 221 to rotate, the vertical shaft 221 drives the extension rod 224 and the connecting block 225 to rotate in the same direction. In this state, the linkage frame rod 226 can drive the feed in the inner cavity of the cylinder 213 to stir during rotation, and because the outer end surface of the connecting block 225 and the contact bent rod 227 are in a state of contact with the inner cavity wall of the cylinder 213, the residue adsorbed on the inner cavity wall of the cylinder 213 can be scraped off during the process of stirring the feed;

[0052] The bottom of the bottom block 222 is fitted to the inner wall of the auxiliary housing 215. During the rotation of the bottom block 222, the gap between the bottom and the auxiliary housing 215 can rub the feed mixed with water during rotation. Since the outer surface of the bottom block 222 is an array concave structure, when the auxiliary mechanism 23 needs to be deformed, the outer end surface of the push block 235 can fit the outer end wall of the bottom block 222, so that the processing state of the overall device is improved in stability.

[0053] When the dry feed needs to be simply stirred and dispersed, the auxiliary mechanism 23 maintains the initial working state, so that the outer end wall of the push block 235 is in contact with the inner wall of the cylinder 213 and rotates together, and the multi-structure rotation of the driving mechanism 22 and the auxiliary mechanism 23 drives the dry feed to rotate and stir;

[0054] When the water and feed mixture needs to be stirred and mixed, the operator adjusts the auxiliary mechanism 23 to be in a retracted state, and the push block 235 in the retracted state is mechanically attached to the outer end wall of the bottom block 222 through the adjustment of the first splicing frame 231, the second splicing frame 232, the third splicing frame 233 and the fourth splicing frame 234. At this time, the water and feed mixture is poured into the inner cavity of the cylinder 213. In the process of driving the mechanism 22 to rotate, due to the influence of the rotating centrifugal force, the auxiliary mechanism 23 will slowly expand outward in proportion to the rotation speed, thereby pushing the processed feed outward through the push block 235. Feed, when the auxiliary mechanism 23 is softly mechanically unfolded to the initial state, clean water is added therein, so that the clean water level overflows the upper surface of the push block 235, and the push block 235 floats upward under the influence of buoyancy, so that the outer end surface of the push block 235 contacts the outer end wall depression of the bottom block 222 again, and then the feed for mixing is poured into the inner cavity of the cylinder 213, and the feed and liquid can be better dissolved at this time, and the external drive motor repeats the above steps to drive the driving mechanism 22 and the auxiliary mechanism 23 to rotate and stir in the inner cavity of the cylinder 213, so as to achieve the mixing process of the solid-liquid mixed feed;

[0055] Because the upper lifting block 12 lifts the bottom end surface of the chassis 216 upward, there is a fulcrum between the upper lifting block 12 and the bottom end surface of the chassis 216, and the external driving motor continuously pushes the pushing cross bar 14 inward, so that the inner end surface of the pushing cross bar 14 continuously reciprocates and swings the processing cylinder 21 as a whole, and because the interlaced horizontal shaft 16 is inserted into the inner cavity of the sleeve horizontal cylinder 212, there is a lateral swing fulcrum at the top position of the swing unit 1 and the processing unit 2, so that the swing unit 1 and the processing unit 2 rotate and swing, thereby improving the stirring and processing efficiency of the processed feed in the overall device;

[0056] When the viscous feed needs to be stirred, the stirring frame 24, the matching cylinder 25 and the connecting mechanism 26 are installed at the bottom position of the connecting block 225, and the viscous feed of the device is poured in. The viscous feed will be pulled by the interval between the splicing frame 242, the combined splicing frame 243 and the matching bracket 264 in the rotating state, so that the processing and stirring efficiency of the viscous feed is improved. At this time, the extension shell 263, the matching cylinder 25 and the lower connecting block 225 are combined into a sealed air bag structure. In the process of the viscous feed being rotated and squeezed, a negative pressure is formed in its inner cavity, so that the air flow therein is discharged into the inner cavity of the cylinder 213 through the leakage hole 262, and the gas is mixed with the viscous feed to improve the mixing efficiency, make the ingredients in the feed more uniform, and improve the processing capacity and efficiency in the mixing process.

[0057] The above is the entire working principle of the present invention.

[0058] In the present invention, the installation method, connection method or setting method of all the components mentioned above are common mechanical methods, and the specific structures, models and coefficient indicators of all its components are its own technology. As long as it can achieve its beneficial effects, it can be implemented, so it will not be elaborated.

[0059] The above embodiments are preferred implementation modes of the present invention, but the implementation modes of the present invention are not limited to the above embodiments. Any other changes, modifications, substitutions, combinations, and simplifications that do not deviate from the spirit and principles of the present invention should be equivalent replacement methods and are included in the protection scope of the present invention.

[0060] In the present invention, unless otherwise specified, the directional words contained in the terms such as "up, down, left, right, front, back, inside, outside, vertical, horizontal" only represent the orientation of the term in normal use, or are common names understood by those skilled in the art, and should not be regarded as limitations on the term. At the same time, number series nouns such as "first", "second" and "third" do not represent specific quantities and orders, but are merely used to distinguish names. Moreover, the terms "include", "comprise" or any other variations thereof are intended to cover non-exclusive inclusion, so that a process, method, article or equipment that includes a series of elements includes not only those elements, but also includes other elements that are not explicitly listed, or also includes elements inherent to such process, method, article or equipment.

Claims

1. A feed mixer for raising cubs in animal husbandry and veterinary medicine, comprising a swing unit (1) and a processing unit (2), wherein the swing unit (1) clamps the processing unit (2) in the middle, characterized in that: The processing unit (2) comprises a processing cylinder (21) and a driving mechanism (22) installed in the inner cavity of the processing cylinder (21), and the outer ring of the driving mechanism (22) is sleeved with an auxiliary mechanism (23); The driving mechanism (22) comprises a driving vertical shaft (221) and a bottom block (222) installed at the bottom of the driving vertical shaft (221); the outer ring of the driving vertical shaft (221) is sleeved with a reinforcing block (223); two ends of the driving vertical shaft (221) are forked to form an extension rod (224); a connecting block (225) is installed at the other end of the extension rod (224); the upper and lower groups of the connecting blocks (225) are connected by a linkage rod (226); and the two horizontal groups of the connecting blocks (225) are connected in series by a contact bent rod (227); The processing cylinder (21) comprises a top cover (211) and a sleeve-connected horizontal cylinder (212) mounted on the top of the top cover (211); a cylinder body (213) is arranged on the lower end surface of the top cover (211); positioning ear pieces (214) are arranged on both sides of the outer end surface of the cylinder body (213); an auxiliary container shell (215) is arranged at the bottom of the cylinder body (213); and the bottom of the auxiliary container shell (215) is sleeve-connected to a bottom plate (216).

2. A feed mixer for raising cubs in animal husbandry and veterinary medicine according to claim 1, characterized in that: The auxiliary mechanism (23) comprises a first splicing frame (231) movably connected to the inner cavity of the reinforcing block (223); the first splicing frame (231) is inserted into the inner cavity of the second splicing frame (232) from top to bottom; a third splicing frame (233) is arranged in the inner cavity of the second splicing frame (232); one end of the third splicing frame (233) is connected to one end of the first splicing frame (231); the other end of the third splicing frame (233) is movably connected to a fourth splicing frame (234); and the bottom of the fourth splicing frame (234) is vertically inserted into the upper end surface of the pushing block (235).

3. A feed mixer for raising cubs for livestock and veterinary medicine according to claim 1, characterized in that: The processing unit (2) further comprises a matching cylinder (25) mounted on the bottom of the pushing block (235); two groups of the matching cylinders (25) are connected via a stirring frame (24); and the stirring frame (24) and the matching cylinders (25) are connected and fixed via a connection mechanism (26).

4. A feed mixer for raising cubs for livestock and veterinary use according to claim 3, characterized in that: The stirring frame (24) comprises inner splicing blocks (241) and a splicing frame body (242) installed between the inner splicing blocks (241); a combined splicing frame (243) is installed on the lower end surface of the inner splicing blocks (241); and both ends of the splicing frame body (242) are transversely inserted into the edge position of the matching cylinder (25).

5. A feed mixer for raising cubs for livestock and veterinary use according to claim 3, characterized in that: The connection mechanism (26) comprises a tray (261) and a leak hole (262) provided on the upper end surface of the tray (261); an extension shell (263) is installed on the upper end surface of the tray (261); and two groups of trays (261) are connected via a matching bracket (264).

6. A feed mixer for raising cubs in animal husbandry and veterinary medicine according to claim 5, characterized in that: The matching bracket (264) is hung on the upper end surface of the combined splicing frame (243), and the upper end surface of the extension shell (263) is fitted to the bottom of the matching cylinder (25), so that the matching cylinder (25) and the connection mechanism (26) become a whole.

7. A feed mixer for raising cubs for animal husbandry and veterinary medicine according to claim 2, characterized in that: The upper end of the driving vertical shaft (221) is vertically mounted at the middle position of the bottom of the top cover (211), the outer end surface of the pushing block (235) is in contact with the inner wall of the cylinder (213), and the outer end surfaces of the connecting block (225) and the contact bent rod (227) are both in contact with the inner wall of the cylinder (213).

8. The feed mixer for raising cubs for animal husbandry and veterinary medicine according to claim 1, characterized in that: The four sides of the bottom block (222) are fitted to the bottom of the inner cavity wall of the auxiliary container (215), so that the processing cylinder (21) and the driving mechanism (22) become a whole.

9. A feed mixer for raising cubs in animal husbandry and veterinary medicine according to claim 1, characterized in that: The swing unit (1) comprises an assembly plate (11) and an upper lifting block (12) installed at the middle position of the upper end surface of the assembly plate (11); transverse supports (13) are vertically arranged on both sides of the edge of the upper end surface of the assembly plate (11); a pushing cross bar (14) is horizontally installed on the inner end surface of the transverse support (13); vertical vertical frames (15) are vertically installed on the other two sides of the edge of the upper end surface of the assembly plate (11); and the top positions of the two groups of vertical vertical frames (15) are horizontally connected by interlacing a horizontal axis (16).

10. A feed mixer for raising cubs in animal husbandry and veterinary medicine according to claim 9, characterized in that: The upper lifting block (12) fits the bottom of the chassis (216) from bottom to top, the inner end of the pushing cross bar (14) fits the outer end surface of the cylinder (213), and the inserted cross shaft (16) penetrates and is inserted into the inner cavity of the sleeve cross cylinder (212), so that the swing unit (1) and the processing unit (2) become a whole.

Citation Information

Patent Citations

  • Veterinary medicine feed mixing machine

    CN112871012A