Mixing structure applied to antibiotic-free environment-friendly piglet feed

The piglet feed is softened through high-temperature water roasting module and steam recovery module, combined with the transport vehicle module to reduce spilling, which solves the problems of feed hardening and dust pollution, and improves digestion efficiency and production safety.

CN223159196UActive Publication Date: 2025-07-29ZHEJIANG HUATENG ANIMAL HUSBANDRY LIMITED
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202421862075.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-02
Publication Date
2025-07-29
Estimated Expiration
2034-08-02

AI Technical Summary

Technical Problem

The existing environmentally friendly piglet feed mixing device is not equipped with a water roasting device, which causes the feed to harden and affect digestion, and it is easy to pour out when discharged, causing dust pollution and increasing worker work intensity.

Method used

High-temperature water baking module and steam recovery module are adopted to soften feed and recover waste heat through high-temperature steam, combined with the transport vehicle module to reduce pouring, and realize automatic discharge.

Benefits of technology

The feed is fully softened, digestion efficiency is improved, dust pollution and work intensity are reduced, and production efficiency and environmental protection are improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223159196U_ABST
    Figure CN223159196U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of non-antibiotic environment-friendly piglet feed mixing, and discloses a non-antibiotic environment-friendly piglet feed mixing structure which comprises a machine box body and a working table, and the working table is fixedly connected to the bottom of the machine box body. The device is reasonable in structure, high-temperature steam is processed through a high-temperature steam engine of the high-temperature water baking module, the high-temperature steam is released into mixed piglet feed through a steam releaser, sufficient water baking is carried out, and after water baking is finished, a steam recycling machine in the steam recycling module is started, so that the piglet feed is fully baked. Residual water vapor in the machine is sucked into the steam recycling machine through the steam inhaler, so that piglet feed in the machine can be cooled, the piglet feed can be softened in the process, and after piglets eat the piglet feed, the piglet feed is softened, is more convenient to digest and can be better absorbed by the piglets; the nutrition of the piglet feed can be exerted to the greatest extent.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of antibiotic-free and environment-friendly piglet feed mixing, and specifically relates to a mixing structure applied to antibiotic-free and environment-friendly piglet feed. Background Technique

[0002] The antibiotic-free and environment-friendly piglet feed mixing device is a mechanical device for producing antibiotic-free and environment-friendly pig feed. Such devices usually include multiple components, such as crushers, mixers, granulators, dryers, and coolants. The antibiotic-free and environment-friendly piglet feed mixing device is characterized by focusing on environmental protection and health. Through reasonable process design and equipment configuration, it ensures the safety and nutritional value of the feed while reducing the impact on the environment.

[0003] A pig feed mixing device disclosed in the Chinese utility model patent application publication specification CN210875171U includes a machine body. A base is provided at the lower end of the machine body. A first chamber, a second chamber and a third chamber are arranged inside the machine body. A left mixing bin, a right mixing bin and an intermediate bin are arranged inside the first chamber. The left mixing bin is located at the left end inside the first chamber. The right mixing bin is located at the right end inside the first chamber. The intermediate bin is located between the left mixing bin and the right mixing bin. Feed inlet tubes are provided at the upper ends of the left mixing bin and the right mixing bin. Mixing devices are arranged inside the left mixing bin and the right mixing bin. Pipelines are provided at the lower ends of the left mixing bin and the right mixing bin. The lower ends of the pipelines extend into the third chamber. A switching valve is arranged on the pipeline. A mixing device is arranged inside the second chamber. A cap is provided at the lower end of the third chamber; by arranging the mixing devices inside the left mixing bin and the right mixing bin, different feeds can be first stirred and crushed, and then mixed together, so that different feeds can be mixed more thoroughly and the efficiency can be improved. Although the above device can first stir and crush different feeds by arranging the mixing devices inside the left mixing bin and the right mixing bin, and then mix them together, different feeds can be mixed more thoroughly and the efficiency can be improved; by arranging a driving device, the first motor can drive the two mixing devices to move simultaneously, saving costs; by arranging a rotating rod, the rotating rod can rotate 360 degrees in the horizontal direction to evenly mix different feeds inside the third chamber; by arranging protrusions, the protrusions can cause a mixed flow to form inside the left mixing bin and the right mixing bin, making the feeds inside the left mixing bin and the right mixing bin be stirred and crushed more thoroughly. However, there are still certain deficiencies in the above device: First, the above device only makes a detailed description of how to better break and mix the feed itself, but ignores that after the feed is mixed, it still needs to be baked with water to disinfect and soften the mixed feed. The feed without being baked with water may cause indigestion in piglets after consumption because the mixed feed is too hard, and the nutrition in the pig feed cannot be effectively absorbed. This makes the piglets grow slowly and also wastes the nutrition brought by the excellent pig feed ratio. Second, the above device only stirs the crushed pig feed and then takes it away from the outlet. However, during the material receiving process, it is inevitable that there will be spills. The pig feed spilled on the ground needs to be manually cleaned, and there are multiple mixings and discharges every day, which undoubtedly increases the working intensity of the cleaning workers. At the same time, the pig feed spilled on the ground may also be blown up by the wind and form a certain amount of dust pollution. Summary of the Utility Model

[0004] (I) Technical Problems to be Solved

[0005] Aiming at the deficiencies of the existing technology, the utility model provides a mixing structure for antibiotic-free environmental protection piglet feed, which solves the problems that the lack of a water baking device makes the piglet feed soft, which may cause indigestion after the piglets eat it, and the feed outlet does not have effective closed feeding measures, so that the feed may be spilled on the ground. The feed on the ground is easily blown up by the wind to form dust pollution, and the cleaning of the pig feed on the ground also requires a certain amount of manpower, increasing the working intensity of the workers.

[0006] (2) Technical solution

[0007] To achieve the above objectives, the utility model is realized through the following technical solutions: A mixing structure for antibiotic-free environmental protection piglet feed, including a machine box body, the bottom of the machine box body is fixedly connected with a workbench, the top of the machine box body is provided with a first hole, the inner wall of the first hole is inserted with a mixing module, the two sides of the machine box body are provided with second holes, the inner wall of the second hole is inserted with a hydraulic flat push module, the front of the machine box body is provided with a third hole, the inner wall of the third hole is inserted with a high-temperature water baking module, the right side of the machine box body is provided with a fourth hole, the inner wall of the fourth hole is inserted with a steam recovery module, the front of the workbench is provided with a parking compartment, the inner wall of the parking compartment is installed with a transport vehicle module, the top of the workbench is fixedly connected with a first limiter, and the inner wall of the first limiter is installed with a mixing barrel.

[0008] Optionally, the mixing module includes a first hydraulic motor, both sides of the first hydraulic motor are fixedly connected with first threaded hole bases, the inner wall of the first threaded hole base is inserted with a first bolt, the first threaded hole base is threadedly connected with the machine box body through the first bolt, the bottom of the first hydraulic motor is fixedly connected with a first hydraulic leg, one end of the first hydraulic leg is provided with a rotating shaft hole, the inner wall of the rotating shaft hole is installed with a rotating shaft, the inner wall of the rotating shaft is installed with a mixing rod, the top of the first hydraulic motor is provided with a fifth hole, the inner wall of the fifth hole is inserted with a rotating rod motor, the inner wall of the rotating rod motor is inserted with a mixing rod, the surface of the rotating rod motor is fixedly connected with a second threaded hole base, the inner wall of the second threaded hole base is threadedly connected with a second bolt, and the second threaded hole base is threadedly connected with the first hydraulic motor through the second bolt.

[0009] Optionally, the hydraulic flat push module includes a second hydraulic motor, the front of the second hydraulic motor is fixedly connected with a second hydraulic leg, one end of the second hydraulic leg is threadedly connected with a pusher, both sides of the second hydraulic motor are fixedly connected with third threaded hole bases, the inner wall of the third threaded hole base is threadedly connected with a third bolt, and the third threaded hole base is threadedly connected with the machine box body through the third bolt.

[0010] Optionally, the high-temperature water baking module includes a high-temperature steam engine. A machine box body is fixedly connected to the bottom of the high-temperature steam engine. A clamping groove is formed in the top of the high-temperature steam engine. A water tank is clamped to the inner wall of the clamping groove. A water injection port is fixedly connected to the top of the water tank. A plug is inserted into the inner wall of the water injection port. A first socket joint is fixedly connected to the side of the high-temperature steam engine. A water pipe is inserted into the inner wall of the first socket joint. The first socket joint is inserted with a water pipe into a second socket joint. One end of the second socket joint is fixedly connected to a water tank. A third socket joint is fixedly connected to the front of the high-temperature steam engine. A steam delivery pipe is inserted into the inner wall of the third socket joint. The third socket joint is inserted with a steam delivery pipe into a fourth socket joint. One end of the fourth socket joint is fixedly connected to a steam release device. The third hole and the steam delivery pipe are mutually adapted.

[0011] Optionally, the steam recovery module includes a steam recovery machine. A machine box body is fixedly connected to the bottom of the steam recovery machine. A fifth socket joint is fixedly connected to the right side of the steam recovery machine. A steam recovery pipe is inserted into the inner wall of the fifth socket joint. The fifth socket joint is inserted with a steam recovery pipe into a sixth socket joint. One end of the sixth socket joint is fixedly connected to a steam inhaler. The fourth hole and the steam recovery pipe are mutually adapted.

[0012] Optionally, the transport vehicle module includes a transport vehicle body. Wheels are threadedly connected to the bottom of the transport vehicle body. A threaded hole is formed in the inner bottom of the transport vehicle body. A fourth bolt is threadedly connected to the inner wall of the threaded hole. The transport vehicle body is threadedly connected to a third hydraulic motor through the fourth bolt. A third hydraulic leg is fixedly connected to the top of the third hydraulic motor. A tray is inserted into the surface of the third hydraulic leg. A second limiter is fixedly connected to the top of the tray. A trolley handle is fixedly connected to the front of the transport vehicle body. A tray hole is formed in the top of the workbench. The tray and the tray hole are mutually adapted.

[0013] Optionally, a machine box body is fixedly connected to the front of the steam release device.

[0014] Optionally, a machine box body is fixedly connected to the side of the steam inhaler.

[0015] In summary, the technical effects and advantages of the present utility model are as follows:

[0016] 1. The structure of this utility model is reasonable. The device is equipped with a high-temperature water baking module and a steam recovery module. The high-temperature steam engine in the high-temperature water baking module pumps the water in the water tank into the machine and processes it into high-temperature steam. Then, the high-temperature steam is transported to the steam release device through the steam delivery pipe. Subsequently, the high-temperature steam is released into the mixed piglet feed by the steam release device for sufficient water baking. After the water baking is completed, the steam recovery machine in the steam recovery module is started, and the remaining water steam in the machine is sucked into the steam recovery machine by the steam inhaler, enabling the piglet feed in the machine to cool down rapidly. This water baking process can fully soften the piglet feed, making it more convenient for piglets to digest and better absorbed after they eat the piglet feed, thus maximizing the nutritional value of the piglet feed.

[0017] 2. In this utility model, the device is equipped with a transport vehicle module. The transport vehicle body and wheels of the transport vehicle module are assembled to form a movable transport vehicle. Meanwhile, a parking compartment is provided on the front of the workbench to park the assembled transport vehicle. Then, through the assembly of the third hydraulic motor, the third hydraulic leg, and the pallet, and after the assembly is completed, the third hydraulic motor is started to raise the pallet to the pallet hole on the workbench. Then, the hydraulic push module is started to push the mixing barrel onto the pallet until it reaches the inner wall of the second limiter on the pallet. Then, the third hydraulic motor is started again to lower the pallet so that the mixing barrel steadily falls into the transport vehicle and is then pulled away. The advantage of this is that it can minimize the spilling of powder during discharging, eliminating the need for manual cleaning of the feed dust spilled on the ground, reducing the workload of workers to a certain extent. At the same time, since the feed is directly mixed in the mixing barrel and directly enters the transport vehicle through the pallet and is then towed away, it also greatly reduces the possibility of the feed dust spilled on the ground during discharging being blown up to cause dust pollution, effectively protecting the environment. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is a schematic structural diagram of this utility model;

[0019] Figure 2 is a partial schematic structural diagram of this utility model;

[0020] Figure 3 is an assembly schematic diagram of the mixing module of this utility model;

[0021] Figure 4 is an assembly schematic diagram of the hydraulic push module of this utility model;

[0022] Figure 5 is an assembly schematic diagram of the high-temperature water baking module of this utility model;

[0023] Figure 6 This is a schematic diagram of the assembly of the steam recovery module of the present utility model;

[0024] Figure 7 This is a schematic diagram of the assembly of the transport vehicle module of the present utility model.

[0025] In the figure: 1, machine box body; 2, workbench; 3, mixing module; 301, first hydraulic motor; 302, first hydraulic leg; 303, mixing rotating rod; 304, rotating rod motor; 4, hydraulic flat push module; 401, second hydraulic motor; 402, second hydraulic leg; 403, pusher; 5, high-temperature water baking module; 501, high-temperature steam engine; 502, water tank; 503, plug; 504, first socket; 505, water pipe; 506, second socket; 507, third socket; 508, steam delivery pipe; 509, fourth socket; 510, steam release device; 6, steam recovery module; 601, steam recovery machine; 602, fifth socket; 603, steam recovery pipe; 604, sixth socket; 605, steam inhaler; 7, transport vehicle module; 701, transport vehicle body; 702, wheels; 703, third hydraulic motor; 704, third hydraulic leg; 705, pallet; 706, second limiter; 707, trolley handle; 8, first limiter; 9, mixing barrel. Specific implementation manners

[0026] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present utility model.

[0027] Embodiment: Refer to Figures 1-7 As shown in the figure, an antibiotic-free and environmentally friendly piglet feed mixing structure includes a machine box body 1. A workbench 2 is fixedly connected to the bottom of the machine box body 1. A first hole is opened at the top of the machine box body 1, and a mixing module 3 is inserted into the inner wall of the first hole. Second holes are opened on both sides of the machine box body 1, and a hydraulic flat push module 4 is inserted into the inner wall of the second holes. A third hole is opened on the front surface of the machine box body 1, and a high-temperature water baking module 5 is inserted into the inner wall of the third hole. A fourth hole is opened on the right side of the machine box body 1, and a steam recovery module 6 is inserted into the inner wall of the fourth hole. A parking compartment is opened on the front surface of the workbench 2, and a transport vehicle module 7 is installed on the inner wall of the parking compartment. A first limiter 8 is fixedly connected to the top of the workbench 2, and a mixing barrel 9 is installed on the inner wall of the first limiter 8.

[0028] The workbench 2 is welded to the bottom of the machine housing 1 by welding. The mixing module 3 is installed on the machine housing 1 through the first hole. The hydraulic horizontal pushing module 4 is installed on the machine housing 1 through the second hole. The high-temperature water baking module 5 is installed on the machine housing 1 through the third hole. The steam recovery module 6 is installed on the machine housing 1 through the fourth hole. The transport vehicle module 7 is parked in the parking compartment of the workbench 2. The first limiter 8 is welded to the top of the workbench 2 by welding. The mixing barrel 9 is placed on the inner wall of the first limiter 8.

[0029] First, put the mixed feed into the mixing barrel 9, then place the mixing barrel 9 on the transport vehicle module 7, push the transport vehicle module 7 into the parking compartment, then raise the mixing barrel 9 to the workbench through the transport vehicle module 7, and push the mixing barrel 9 to the position of the first limiter 8 through the hydraulic horizontal pushing module 4. Then lower the mixing module 3 into the mixing barrel 9 and carry out mixing and stirring. After completion, push the mixing barrel 9 onto the transport vehicle module 7 again through the hydraulic horizontal pushing module 4. Then start the relevant devices of the high-temperature water baking module 5 to make a large amount of high-temperature steam spray into the machine to carry out water baking processing on the mixed feed. After completion, turn off the relevant devices of the high-temperature water baking module 5, open the relevant devices of the steam recovery module 6, and extract the excess steam in the machine to promote the feed to achieve a rapid cooling effect. Then, after cooling, lower the mixing barrel 9 through the operation of the relevant devices of the transport vehicle module 7 and steadily place it in the transport vehicle module 7 and tow it out to complete the overall process operation.

[0030] As a preferred implementation manner in this embodiment, as Figure 3 shown, the mixing module 3 includes a first hydraulic motor 301. Both sides of the first hydraulic motor 301 are fixedly connected with a first threaded hole base. The inner wall of the first threaded hole base is inserted with a first bolt. The first threaded hole base is threadedly connected with the machine housing 1 through the first bolt. The bottom of the first hydraulic motor 301 is fixedly connected with a first hydraulic leg 302. One end of the first hydraulic leg 302 is provided with a rotating shaft hole. The inner wall of the rotating shaft hole is provided with a rotating shaft. The inner wall of the rotating shaft is provided with a mixing rotating rod 303. The top of the first hydraulic motor 301 is provided with a fifth hole. The inner wall of the fifth hole is inserted with a rotating rod motor 304. The inner wall of the rotating rod motor 304 is inserted with a mixing rotating rod 303. The surface of the rotating rod motor 304 is fixedly connected with a second threaded hole base. The inner wall of the second threaded hole base is threadedly connected with a second bolt. The second threaded hole base is threadedly connected with the first hydraulic motor 301 through the second bolt.

[0031] Insert the rotating rod motor 304 into the fifth hole on the first hydraulic motor 301, then screw the second bolt into the second threaded hole base and continue to rotate until it is screwed into the first hydraulic motor 301. The second threaded hole base is welded to the surface of the rotating rod motor 304 by welding, and the first hydraulic leg 302 is integrally formed with the first hydraulic motor 301. Insert the first hydraulic motor 301 into the first hole on the machine box 1, then screw the first bolt into the first threaded hole base and continue to rotate until it is screwed into the machine box 1. The first threaded hole base is welded to both sides of the first hydraulic motor 301 by welding. Then install the rotating shaft into the first hydraulic leg 302, and then insert the mixing rotating rod 303 into the rotating shaft and continue to insert it upward until it is inserted into the rotating rod motor 304, thus completing the assembly of the mixing module 3.

[0032] When using the mixing module 3, first start the first hydraulic motor 301 to make the first hydraulic leg 302 slowly drop to an appropriate height, then pause the machine, and then start the rotating rod motor 304 to make the mixing rotating rod 303 rotate to fully stir and mix the feed. After mixing, turn off the rotating rod motor 304 and then restart the first hydraulic motor 301 to slowly lift the first hydraulic leg 302 to make the mixing rotating rod 303 leave the feed, completing the operation.

[0033] As Figure 4 As shown, in this embodiment, the hydraulic flat push module 4 includes a second hydraulic motor 401. The front of the second hydraulic motor 401 is fixedly connected to a second hydraulic leg 402. One end of the second hydraulic leg 402 is threadedly connected to a pusher 403. Both sides of the second hydraulic motor 401 are fixedly connected to a third threaded hole base. The inner wall of the third threaded hole base is threadedly connected to a third bolt. The third threaded hole base is threadedly connected to the machine box 1 through the third bolt.

[0034] The second hydraulic leg 402 is integrally formed with the second hydraulic motor 401. Screw the pusher 403 onto the second hydraulic leg 402 and tighten it. Screw the third bolt into the third threaded hole base and continue to rotate until it is screwed into the machine box 1. The third threaded hole base is welded to both sides of the second hydraulic motor 401 by welding, thus completing the assembly of the hydraulic flat push module 4.

[0035] When the hydraulic flat push module 4 needs to be operated, first turn on the second hydraulic motor 401 to make the second hydraulic leg 402 drive the pusher 403 to slowly push the mixing barrel 9 horizontally to a specified position, and then turn off the second hydraulic motor 401 to make the second hydraulic leg 402 drive the pusher 403 to retract, completing the operation.

[0036] As Figures 5-6As shown in the figure, in this embodiment, the high-temperature water baking module 5 includes a high-temperature steam engine 501. A machine box 1 is fixedly connected to the bottom of the high-temperature steam engine 501. A card slot is provided at the top of the high-temperature steam engine 501. A water tank 502 is clamped to the inner wall of the card slot. A water injection port is fixedly connected to the top of the water tank 502. A plug 503 is inserted into the inner wall of the water injection port. A first plug connector 504 is fixedly connected to the side of the high-temperature steam engine 501. A water pipe 505 is inserted into the inner wall of the first plug connector 504. The first plug connector 504 is connected to a second plug connector 506 through the water pipe 505. One end of the second plug connector 506 is fixedly connected to the water tank 502. A third plug connector 507 is fixedly connected to the front of the high-temperature steam engine 501. A steam delivery pipe 508 is inserted into the inner wall of the third plug connector 507. The third plug connector 507 is connected to a fourth plug connector 509 through the steam delivery pipe 508. One end of the fourth plug connector 509 is fixedly connected to a steam release device 510. The third hole and the steam delivery pipe 508 are adapted to each other. The front of the steam release device 510 is fixedly connected to the machine box 1.

[0037] The water injection port is integrally formed with the water tank 502. The plug 503 is inserted into the water injection port, and then the water tank 502 is clamped to the high-temperature steam engine 501 through the card slot. The high-temperature steam engine 501 is welded to the top of the machine box 1. The first plug connector 504 is integrally formed with the high-temperature steam engine 501. The second plug connector 506 is integrally formed with the water tank 502. The two ends of the water pipe 505 are respectively inserted into the first plug connector 504 and the second plug connector 506 to complete the assembly of the water tank 502 and the high-temperature steam engine 501. The steam release device 510 is welded to the inner wall of the machine box 1. The third plug connector 507 is integrally formed with the high-temperature steam engine 501. The fourth plug connector 509 is integrally formed with the steam release device 510. The steam delivery pipe 508 is passed through the third hole, and the two ends are respectively inserted into the third plug connector 507 and the fourth plug connector 509 to complete the assembly of the steam release device 510 and the high-temperature steam engine 501, thereby completing the assembly of the high-temperature water baking module 5.

[0038] When the high-temperature water baking module 5 needs to be used, first turn on the high-temperature steam engine 501, pump the water in the water tank 502 into the high-temperature steam engine 501 through the water pipe 505 and heat it at a high temperature. Then, the formed high-temperature steam is transported to the steam release device 510 through the steam delivery pipe 508 and released into the machine to perform water baking treatment on the feed. After the treatment, turn off the high-temperature steam engine 501 to complete the process operation.

[0039] The steam recovery module 6 includes a steam recovery machine 601. A machine box body 1 is fixedly connected to the bottom of the steam recovery machine 601. A fifth socket 602 is fixedly connected to the right side of the steam recovery machine 601. A steam recovery pipe 603 is inserted into the inner wall of the fifth socket 602. The fifth socket 602 is inserted with a sixth socket 604 through the steam recovery pipe 603. One end of the sixth socket 604 is fixedly connected to a steam inhaler 605. The fourth hole and the steam recovery pipe 603 are adapted to each other. The steam inhaler 605 is fixedly connected to the side of the machine box body 1.

[0040] The steam recovery machine 601 is welded to the machine box body 1. The fifth socket 602 is integrally formed with the steam recovery machine 601. The sixth socket 604 is integrally formed with the steam inhaler 605. The steam inhaler 605 is welded to the inner wall of the machine box body 1. The steam recovery pipe 603 is passed through the fourth hole in the machine box body 1 and inserted into the fifth socket 602 and the sixth socket 604 respectively to complete the assembly of the steam recovery module 6.

[0041] When using the steam recovery module 6, the steam recovery machine 601 is turned on, so that the steam inhaler 605 quickly draws the steam in the machine box body 1 into the steam recovery machine 601 through the steam recovery pipe 603, completing the operation of quickly pumping steam and achieving the effect of temperature reduction assistance.

[0042] This device is equipped with a high-temperature water baking module 5 and a steam recovery module 6. The high-temperature steam engine 501 of the high-temperature water baking module 5 pumps the water in the water tank 502 into the machine and processes it into high-temperature steam. Then, the high-temperature steam is transported to the steam release device 510 through the steam delivery pipe 508. Then, the high-temperature steam is released into the mixed piglet feed through the steam release device 510 for sufficient water baking. After the water baking is completed, the steam recovery machine 601 in the steam recovery module 6 is started, and the remaining steam in the machine is sucked into the steam recovery machine 601 through the steam inhaler 605, enabling the piglet feed in the machine to be quickly cooled. This water baking process can fully soften the piglet feed, making it more convenient for the piglets to digest and better absorbed after eating the piglet feed, maximizing the nutrition of the piglet feed.

[0043] Such as Figure 7As shown in the figure, in this embodiment, the transport vehicle module 7 includes a transport vehicle body 701. Wheels 702 are threadedly connected to the bottom of the transport vehicle body 701. Threaded holes are formed in the bottom inner wall of the transport vehicle body 701. A fourth bolt is threadedly connected to the inner wall of the threaded hole. The transport vehicle body 701 is threadedly connected to a third hydraulic motor 703 through the fourth bolt. A third hydraulic leg 704 is fixedly connected to the top of the third hydraulic motor 703. A pallet 705 is inserted on the surface of the third hydraulic leg 704. A second limiter 706 is fixedly connected to the top of the pallet 705. A push cart handle 707 is fixedly connected to the front of the transport vehicle body 701. A pallet hole is formed in the top of the workbench 2. The pallet 705 and the pallet hole are adapted to each other.

[0044] Screw the wheels 702 to the bottom of the transport vehicle body 701, and then install the pallet 705 on the third hydraulic leg 704. The third hydraulic leg 704 is integrally formed with the third hydraulic motor 703. Then place the third hydraulic motor 703 on the bottom inner wall of the transport vehicle body 701. Pass the fourth bolt through the third hydraulic motor 703 and screw it into the threaded hole on the transport vehicle body 701 to complete the assembly of the transport vehicle body 701 and the third hydraulic motor 703. The second limiter 706 is welded to the pallet 705, and the push cart handle 707 is welded to the transport vehicle body 701, thus completing the assembly of the transport vehicle module 7.

[0045] When using the transport vehicle module 7, put the feed that needs to be mixed together into the mixing barrel 9 and place it on the pallet 705. Then push the assembled transport vehicle into the parking cabin. Start the third hydraulic motor 703 to drive the third hydraulic leg 704 to slowly lift the pallet 705. After mixing, push the mixed mixing barrel 9 to the inner wall of the second limiter 706. Then start the third hydraulic motor 703 again to drive the third hydraulic leg 704 to slowly lower the pallet 705 until the mixing barrel 9 steadily falls into the transport vehicle, and then pull it out to complete the operation.

[0046] The device is equipped with a transport vehicle module 7. The transport vehicle body 701 and the wheels 702 of the transport vehicle module 7 are assembled to form a movable transport vehicle. At the same time, a parking compartment is provided on the front of the workbench 2 to park the assembled transport vehicle. Then, the third hydraulic motor 703, the third hydraulic leg 704, and the pallet 705 are assembled. After assembly, the third hydraulic motor 703 is started to raise the pallet 705 into the pallet hole on the workbench 2. Then, the hydraulic push module 4 is started to push the mixing barrel 9 onto the pallet 705 until it reaches the inner wall of the second stopper 706 on the pallet 705. Then, the third hydraulic motor 703 is started again to lower the pallet 705 so that the mixing barrel 9 steadily falls into the transport vehicle and is then pulled away. The advantage of this is that it can minimize the spillage of powder during discharging, so there is no need for manual cleaning of the feed dust spilled on the ground, which can reduce the work intensity of workers to a certain extent. At the same time, since the feed is directly mixed in the mixing barrel 9 and directly enters the transport vehicle through the pallet 705 and is directly towed away, it also greatly eliminates the possibility of the feed dust spilled on the ground during discharging being blown up to cause dust pollution, effectively protecting the environment.

[0047] The working principle of this utility model:

[0048] The workbench 2 is welded to the bottom of the machine housing 1 by welding. The mixing module 3 is installed on the machine housing 1 through the first hole. The hydraulic flat-pushing module 4 is installed on the machine housing 1 through the second hole. The high-temperature water baking module 5 is installed on the machine housing 1 through the third hole. The steam recovery module 6 is installed on the machine housing 1 through the fourth hole. The transport vehicle module 7 is parked in the parking compartment of the workbench 2. The first limiter 8 is welded to the top of the workbench 2 by welding. The mixing barrel 9 is placed on the inner wall of the first limiter 8. Insert the rotating rod motor 304 into the fifth hole on the first hydraulic motor 301, and then screw the second bolt into the second threaded hole base and continue to rotate until it is screwed into the first hydraulic motor 301. The second threaded hole base is welded to the surface of the rotating rod motor 304 by welding. The first hydraulic leg 302 is integrally formed with the first hydraulic motor 301. Insert the first hydraulic motor 301 into the first hole on the machine housing 1, and then screw the first bolt into the first threaded hole base and continue to rotate until it is screwed into the machine housing 1. The first threaded hole base is welded to both sides of the first hydraulic motor 301 by welding. Then install the rotating shaft into the first hydraulic leg 302, and then insert the mixing rotating rod 303 into the rotating shaft and continue to insert upward until it is inserted into the rotating rod motor 304, thus completing the assembly of the mixing module 3. The second hydraulic leg 402 is integrally formed with the second hydraulic motor 401. Screw the pusher 403 onto the second hydraulic leg 402 and tighten it. Screw the third bolt into the third threaded hole base and continue to rotate until it is screwed into the machine housing 1. The third threaded hole base is welded to both sides of the second hydraulic motor 401 by welding, thus completing the assembly of the hydraulic flat-pushing module 4. The water injection port is integrally formed with the water tank 502. Plug the plug 503 into the water injection port, and then clamp the water tank 502 onto the high-temperature steam engine 501 through the card slot. The high-temperature steam engine 501 is welded to the top of the machine housing 1. The first plug joint 504 is integrally formed with the high-temperature steam engine 501. The second plug joint 506 is integrally formed with the water tank 502. Insert the two ends of the water pipe 505 into the first plug joint 504 and the second plug joint 506 respectively to complete the assembly of the water tank 502 and the high-temperature steam engine 501. The steam release device 510 is welded to the inner wall of the machine housing 1. The third plug joint 507 is integrally formed with the high-temperature steam engine 501. The fourth plug joint 509 is integrally formed with the steam release device 510. Pass the steam transmission pipe 508 through the third hole and insert the two ends into the third plug joint 507 and the fourth plug joint 509 respectively to complete the assembly of the steam release device 510 and the high-temperature steam engine 501, thus completing the assembly of the high-temperature water baking module 5. The steam recovery machine 601 is welded to the machine housing 1. The fifth plug joint 602 is integrally formed with the steam recovery machine 601. The sixth plug joint 604 is integrally formed with the steam inhaler 605.The steam inhaler 605 is welded to the inner wall of the machine box body 1. The steam recovery pipe 603 passes through the fourth hole in the machine box body 1 and is inserted into the fifth socket 602 and the sixth socket 604 respectively, completing the assembly of the steam recovery module 6. The wheels 702 are screwed onto the bottom of the transport vehicle body 701, and then the pallet 705 is installed on the third hydraulic leg 704. The third hydraulic leg 704 is integrally formed with the third hydraulic motor 703. Then, the third hydraulic motor 703 is placed on the bottom of the inner wall of the transport vehicle body 701. The fourth bolt passes through the third hydraulic motor 703 and is screwed into the threaded hole in the transport vehicle body 701, completing the assembly of the transport vehicle body 701 and the third hydraulic motor 703. The second limiter 706 is welded to the pallet 705, and the trolley handle 707 is welded to the transport vehicle body 701, thus completing the assembly of the transport vehicle module 7.

[0049] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described 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 within the protection scope of the present invention.

Claims

1. A mixing structure for antibiotic-free and environmentally friendly piglet feed, comprising a machine box (1), characterized in that: The bottom of the machine box body (1) is fixedly connected to a workbench (2). A first hole is opened at the top of the machine box body (1), and a mixing module (3) is inserted into the inner wall of the first hole. Second holes are opened on both sides of the machine box body (1), and a hydraulic flat-pushing module (4) is inserted into the inner wall of the second holes. A third hole is opened on the front of the machine box body (1), and a high-temperature water roasting module (5) is inserted into the inner wall of the third hole. A fourth hole is opened on the right side of the machine box body (1), and a steam recovery module (6) is inserted into the inner wall of the fourth hole. A parking compartment is opened on the front of the workbench (2), and a transport vehicle module (7) is installed on the inner wall of the parking compartment. A first limiter (8) is fixedly connected to the top of the workbench (2), and a mixing barrel (9) is installed on the inner wall of the first limiter (8).

2. The mixing structure for antibiotic-free and environmentally friendly piglet feed according to claim 1, characterized in that: The mixing module (3) includes a first hydraulic motor (301). First threaded hole bases are fixedly connected to both sides of the first hydraulic motor (301). A first bolt is inserted into the inner wall of the first threaded hole base. The first threaded hole base is threadedly connected to the machine box body (1) through the first bolt. A first hydraulic leg (302) is fixedly connected to the bottom of the first hydraulic motor (301). A rotating shaft hole is opened at one end of the first hydraulic leg (302), and a rotating shaft is installed on the inner wall of the rotating shaft hole. A mixing rotating rod (303) is installed on the inner wall of the rotating shaft. A fifth hole is opened at the top of the first hydraulic motor (301), and a rotating rod motor (304) is inserted into the inner wall of the fifth hole. The mixing rotating rod (303) is inserted into the inner wall of the rotating rod motor (304). A second threaded hole base is fixedly connected to the surface of the rotating rod motor (304). A second bolt is threadedly connected to the inner wall of the second threaded hole base. The second threaded hole base is threadedly connected to the first hydraulic motor (301) through the second bolt.

3. The mixing structure of a drug-free and environmentally friendly piglet feed according to claim 1, characterized in that: The hydraulic flat-pushing module (4) includes a second hydraulic motor (401). A second hydraulic leg (402) is fixedly connected to the front of the second hydraulic motor (401). A pusher (403) is threadedly connected to one end of the second hydraulic leg (402). Third threaded hole bases are fixedly connected to both sides of the second hydraulic motor (401). A third bolt is threadedly connected to the inner wall of the third threaded hole base. The third threaded hole base is threadedly connected to the machine box body (1) through the third bolt.

4. The mixing structure of an antibiotic-free and environmentally friendly piglet feed according to claim 1, wherein: The high-temperature water baking module (5) includes a high-temperature steam engine (501). The bottom of the high-temperature steam engine (501) is fixedly connected to a machine box body (1). A clamping groove is formed at the top of the high-temperature steam engine (501). The inner wall of the clamping groove is clamped with a water tank (502). The top of the water tank (502) is fixedly connected to a water injection port. A plug (503) is inserted into the inner wall of the water injection port. A first plug connector (504) is fixedly connected to the side of the high-temperature steam engine (501). A water pipe (505) is inserted into the inner wall of the first plug connector (504). The first plug connector (504) is inserted with a second plug connector (506) through the water pipe (505). One end of the second plug connector (506) is fixedly connected to the water tank (502). A third plug connector (507) is fixedly connected to the front of the high-temperature steam engine (501). A steam delivery pipe (508) is inserted into the inner wall of the third plug connector (507). The third plug connector (507) is inserted with a fourth plug connector (509) through the steam delivery pipe (508). One end of the fourth plug connector (509) is fixedly connected to a steam release device (510). The third hole and the steam delivery pipe (508) are mutually adapted.

5. The mixing structure of an antibiotic-free and environmentally friendly piglet feed according to claim 1, characterized in that: The steam recovery module (6) includes a steam recovery machine (601). The bottom of the steam recovery machine (601) is fixedly connected to a machine box body (1). A fifth plug connector (602) is fixedly connected to the right side of the steam recovery machine (601). A steam recovery pipe (603) is inserted into the inner wall of the fifth plug connector (602). The fifth plug connector (602) is inserted with a sixth plug connector (604) through the steam recovery pipe (603). One end of the sixth plug connector (604) is fixedly connected to a steam inhaler (605). The fourth hole and the steam recovery pipe (603) are mutually adapted.

6. The mixing structure for antibiotic-free and environmentally friendly piglet feed according to claim 1, characterized in that: The transport vehicle module (7) includes a transport vehicle body (701). Wheels (702) are threadedly connected to the bottom of the transport vehicle body (701). A threaded hole is formed in the inner bottom of the transport vehicle body (701). A fourth bolt is threadedly connected to the inner wall of the threaded hole. The transport vehicle body (701) is threadedly connected to a third hydraulic motor (703) through the fourth bolt. A third hydraulic leg (704) is fixedly connected to the top of the third hydraulic motor (703). A support plate (705) is inserted into the surface of the third hydraulic leg (704). A second limiter (706) is fixedly connected to the top of the support plate (705). A push cart handle (707) is fixedly connected to the front of the transport vehicle body (701). A support plate hole is formed in the top of the workbench (2). The support plate (705) and the support plate hole are mutually adapted.

7. An antibiotic-free and environmentally friendly piglet feed mixing structure according to claim 4, characterized in that: The front of the steam release device (510) is fixedly connected to a machine box body (1).

8. An anti - antibiotic environmental protection piglet feed mixing structure according to claim 5, characterized in that: The side of the steam inhaler (605) is fixedly connected to a machine box body (1).

Citation Information

Patent Citations

  • Pig feed mixing device

    CN210875171U