Pig breeding feeding trough

By designing rotatable groove body and angle control components, the problem of difficult corners and gaps during feeding groove cleaning is solved, achieving a more efficient cleaning and a healthier pig house environment.

CN222852899UActive Publication Date: 2025-05-13于明鹤 +4
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Patent Information

Application Number
CN202421830264.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-31
Publication Date
2025-05-13
Estimated Expiration
2034-07-31

AI Technical Summary

Technical Problem

When cleaning the existing pig farming feed trough, it is difficult to reach the corners and gaps, resulting in difficult to thoroughly clean up feed residues and dirt, and prone to accumulation of bacteria and viruses, causing diseases.

Method used

A pig farming feeding tank is designed, including a rotatable groove body and an angle control assembly. The groove body can slide on an arcuate surface, and the angle adjustment is achieved through the rotating rod and the bidirectional worm. The fixing assembly and partition assembly are used to securely install and separate feed.

Benefits of technology

By adjusting the angle of the groove body, corners and gaps that are originally difficult to reach can be exposed, improving cleaning efficiency, reducing the risk of disease transmission, and providing a healthier and safer growth environment for pigs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of live pig breeding, and discloses a live pig breeding feeding trough which comprises a base, a supporting plate is fixedly connected to the upper end face of the base, a fixing assembly is arranged on the base, arc-shaped faces are arranged on the two opposite sides of the supporting plate, trough bodies are arranged on the two arc-shaped face sides, and the two arc-shaped faces are used for supporting the corresponding trough bodies. The two groove bodies slide on the corresponding arc-shaped faces respectively, separation assemblies are arranged on the groove bodies, a rocker arm is installed on a connecting block, a handle is rotated to drive the rocker arm to move, movement of the rocker arm drives a second spiral gear to rotate, rotation power of the second spiral gear drives a first spiral gear, and then a two-way worm is driven to rotate; when the two-way worm rotates, the two worm wheels connected with the two-way worm in a meshed mode are driven, rotation of the worm wheels drives the rotating rod to rotate through the transmission rod, rotation of the rotating rod finally drives the groove body to slide on the arc-shaped face of the supporting plate, and adjustment of the angle of the groove body is achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of pig breeding, and specifically to a pig breeding feeding trough. Background Art

[0002] As an important part of animal husbandry, pig farming occupies a pivotal position in my country's agricultural industry. With the growth of population and the improvement of living standards, people's demand for pork and its products is increasing, which has promoted the rapid development of the pig farming industry. In the process of pig farming, feed troughs are needed to hold feed to ensure that pigs get sufficient and balanced nutrition. At the same time, the sanitary condition of the feed trough also directly affects the health of pigs and the safety of the breeding environment.

[0003] The existing devices have some disadvantages during use, for example: the existing feeding troughs are fixedly installed in the pig house and cannot be easily moved or rotated. When cleaning the feeding trough, corners and gaps, which are difficult to reach, are prone to accumulate feed residues and dirt, making it difficult to clean thoroughly. Due to limited space, it can only be done manually or with small tools, which will lead to incomplete cleaning. Incomplete cleaning will lead to the accumulation of feed residues, feces, urine and other dirt in the pig house. These dirt are breeding grounds for bacteria, viruses and other pathogens. These pathogens can be transmitted to pigs through air, water, feed or direct contact, causing various diseases such as diarrhea, hemorrhagic enteritis, respiratory diseases, etc. Utility Model Content

[0004] The utility model aims to provide a feeding trough for pig breeding, which solves the problem that corners and gaps are difficult to clean when the feeding trough is cleaned.

[0005] The utility model provides the following technical solution: a feeding trough for pig breeding, comprising a base, an upper end surface of the base fixedly connected to a support plate, a fixing component arranged on the base, arc-shaped surfaces are provided on opposite sides of the support plate, trough bodies are arranged on two sides of the two arc-shaped surfaces, the two arc-shaped surfaces are used to support corresponding trough bodies, and the two trough bodies slide on the corresponding arc-shaped surfaces respectively, a partition component is arranged on the trough body, opposite outer walls of the base fixedly connected to fixing plates, opposite outer walls of the two trough bodies fixedly connected to rotating rods, one end of the two rotating rods in the same group away from the trough body passes through the corresponding support plate and is rotatably connected to the support plate, and an angle control component is arranged on the support plate.

[0006] In the above scheme, the arc surface opened on the support plate provides a stable supporting foundation for the trough body, and allows the trough body to slide on the arc surface, ensuring the stability of the trough body during the angle adjustment process. The partition component arranged on the trough body can separate the feed into different areas, which is convenient for pigs to feed separately, reducing feed waste and mutual competition. The angle control component drives the trough body to slide on the arc surface by driving the rotating rod, thereby realizing precise control of the trough body angle. The fixing component provides a stable fixing foundation for the entire system.

[0007] As a preferred embodiment of the above technical solution, the fixing assembly includes a plurality of installation grooves opened on both sides of the upper end surface of the base, the bottom walls of the plurality of installation grooves are each provided with a through hole, and the inner sides of the plurality of through holes are each provided with bolts.

[0008] In the above scheme, the mounting grooves and bolts allow the feed trough to be flexibly installed according to different breeding environments and site conditions. The stable fixing method helps to reduce damage to the feed trough caused by shaking or displacement, thereby extending its service life and reducing replacement frequency and cost.

[0009] As a preferred embodiment of the above technical solution, the partition assembly includes feeding troughs respectively opened at the top ends of two trough bodies, and multiple partition plates are fixedly connected to the inner sides of the two feeding troughs, and the multiple partition plates are arranged in an array.

[0010] In the above scheme, the partition divides the feeding trough into multiple relatively independent spaces, which can avoid waste caused by pigs fighting for feed when eating, and ensure that each pig can get enough feed.

[0011] As a preferred embodiment of the above technical solution, the angle control assembly includes two mounting blocks fixedly connected to the outer wall of one side of one of the fixed plates, the two mounting blocks are symmetrically arranged, a bidirectional worm is laterally arranged between the two mounting blocks, both ends of the bidirectional worm respectively pass through the corresponding mounting blocks and are rotatably connected to the corresponding mounting blocks, and one end of the two rotating rods on the same side close to the bidirectional worm are fixedly connected to a transmission rod, and worm wheels adapted to the bidirectional worm are fixedly sleeved on the outer sides of the two transmission rods, and the two worm wheels are meshingly connected to the bidirectional worm.

[0012] In the above scheme, when the bidirectional worm rotates, it drives the two worm wheels meshing with it. The rotation of the worm wheels drives the rotating rod to rotate through the transmission rod, thereby converting the rotational motion of the bidirectional worm into adjustment of the slot angle.

[0013] As a preferred embodiment of the above technical solution, a first helical gear is fixedly sleeved on the outer side of the bidirectional worm, a mounting rod is provided on one side of the first helical gear, the side of the mounting rod close to the fixed plate is fixedly connected to the fixed plate, and a second helical gear adapted to the first helical gear is rotatably sleeved on the outer side of the mounting rod, and the second helical gear is meshingly connected to the first helical gear.

[0014] In the above scheme, when the second helical gear rotates by rotating the handle to drive the rocker arm to move, the rotational power of the second helical gear can be accurately transmitted to the first helical gear, thereby driving the bidirectional worm to rotate. This meshing transmission method has the characteristics of high transmission efficiency and accurate transmission ratio, ensuring the accuracy and reliability of the slot angle adjustment.

[0015] As a preferred embodiment of the above technical solution, a connecting block is fixedly connected to the side of the second helical gear away from the fixed plate, a rocker arm is provided on the side of the connecting block away from the second helical gear, a plurality of slots are provided on the outer wall of the connecting block close to the rocker arm, a plurality of blocks adapted to the sizes of the plurality of slots are fixedly connected to the outer wall of the rocker arm close to the connecting block, the rocker arm is detachably connected to the connecting block via the blocks, and a handle is rotatably connected to the outer wall of the rocker arm away from the connecting block.

[0016] In the above scheme, the rocker arm is driven to move by rotating the handle, thereby driving the second helical gear and the entire angle control mechanism to work. The rocker arm and the connecting block are detachably connected, so that in the non-operating state, the rocker arm can be removed from the connecting block, effectively preventing accidental operation and avoiding sudden changes in the slot angle caused by improper operation.

[0017] As a preferred embodiment of the above technical solution, a positioning plate is fixedly sleeved on the outer side of one end of the mounting rod close to the fixed plate, a plurality of first positioning holes are arranged in an array on the positioning plate, a plurality of second positioning holes are arranged in an array on the outer wall of one side of the fixed plate close to the positioning plate corresponding to the positions of the plurality of first positioning holes, the plurality of positioning holes and the plurality of second positioning holes correspond one to one, and a positioning pin is arranged on the inner side of one of the first positioning holes and one of the second positioning holes in the same group.

[0018] In the above scheme, when the trough body rotates to the specified angle, the positioning pin is inserted into the first positioning hole and the second positioning hole, and the rotation of the trough body is prevented by a physical locking mechanism, thereby ensuring that the trough body can stay stably at a predetermined angle. The physical locking mechanism ensures that the trough body will not rotate suddenly during the cleaning process, thereby preventing the trough body from causing harm to the operator due to accidental rotation.

[0019] Compared with the prior art, the beneficial effects of the utility model are:

[0020] In the utility model, by adjusting the angle of the trough body, corners and gaps that were originally difficult to reach can be exposed, making them easier to be reached by cleaning tools. This flexibility reduces cleaning dead corners and improves cleaning efficiency, allowing farmers to complete cleaning work faster and more thoroughly. The angle adjustment mechanism enables the feeding trough to be adjusted according to different cleaning needs. For example, after the trough body is tilted at a certain angle, feed residues and dirt will slide to a position that is easier to clean due to gravity, thereby reducing the difficulty and labor intensity of cleaning. This thorough cleaning helps to maintain the sanitary condition of the feeding trough, reduce the risk of disease transmission, and provide a healthier and safer growth environment for pigs. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 This is a schematic diagram of the overall structure of the feeding trough for pig farming;

[0022] Figure 2 This is a schematic diagram of the partition component structure of a pig breeding feeding trough;

[0023] Figure 3 This is a schematic diagram of the fixed component structure of the pig breeding feeding trough;

[0024] Figure 4 This is a schematic diagram of the angle control component structure of a pig breeding feeding trough;

[0025] Figure 5 This is a schematic diagram of the explosion structure of a pig breeding feeding trough;

[0026] Figure 6 This is a schematic diagram of the rocker arm structure in a pig breeding feeding trough;

[0027] Figure 7 for Figure 2 Enlarged structural diagram at A in the middle.

[0028] In the figure: 10, base; 11, support plate; 12, arc surface; 13, trough body; 14, fixing plate; 15, rotating rod; 20, mounting groove; 21, through hole; 22, bolt; 30, feeding trough; 31, partition plate; 40, mounting block; 41, bidirectional worm; 42, transmission rod; 43, worm wheel; 50, first helical gear; 51, mounting rod; 52, second helical gear; 60, connecting block; 61, rocker arm; 62, slot; 63, block; 64, handle; 70, positioning plate; 71, first positioning hole; 72, second positioning hole; 73, positioning pin. DETAILED DESCRIPTION

[0029] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the accompanying drawings in the embodiments of the present invention.

[0030] Example 1

[0031] like Figure 1 and Figure 2 As shown, the utility model provides a technical solution: a pig breeding feeding trough includes a base 10, a support plate 11 is fixedly connected to the upper end surface of the base 10, a fixing component is arranged on the base 10, arc-shaped surfaces 12 are provided on opposite sides of the support plate 11, trough bodies 13 are arranged on the two sides of the two arc-shaped surfaces 12, the two arc-shaped surfaces 12 are used to support the corresponding trough bodies 13, and the two trough bodies 13 slide on the corresponding arc-shaped surfaces 12 respectively, a partitioning component is arranged on the trough body 13, the outer walls on the opposite sides of the base 10 are fixedly connected to the fixing plates 14, the outer walls on the opposite sides of the two trough bodies 13 are fixedly connected to the rotating rods 15, and the ends of the two rotating rods 15 of the same group away from the trough bodies 13 are penetrated by the corresponding support The support plate 11 is rotatably connected to the support plate 11, and an angle control component is arranged on the support plate 11. During specific use, the arc surface 12 provided on the support plate 11 provides a stable supporting foundation for the trough body 13, and allows the trough body 13 to slide on the arc surface 12, thereby ensuring the stability of the trough body 13 during the angle adjustment process. The partition component arranged on the trough body 13 can separate the feed into different areas, which is convenient for pigs to feed separately, and reduces feed waste and mutual competition. The angle control component drives the trough body 13 to slide on the arc surface 12 by driving the rotating rod 15, thereby realizing precise control of the angle of the trough body 13, and the fixing component provides a stable fixing foundation for the entire system.

[0032] As an implementation method in this embodiment, Figure 3 As shown, the fixing assembly includes a plurality of mounting grooves 20 opened on both sides of the upper end surface of the base 10, the inner bottom walls of the plurality of mounting grooves 20 are each provided with a through hole 21, and the inner sides of the plurality of through holes 21 are each provided with a bolt 22. During specific use, the mounting grooves 20 and the bolts 22 allow the feeding trough to be flexibly installed according to different breeding environments and site conditions, and the stable fixing method helps to reduce damage to the feeding trough caused by shaking or displacement, thereby extending its service life and reducing the replacement frequency and cost.

[0033] As an implementation method in this embodiment, Figure 2 As shown, the partition assembly includes feeding troughs 30 respectively opened at the top of two trough bodies 13, and multiple partition plates 31 are fixedly connected to the inner sides of the two feeding troughs 30. The multiple partition plates 31 are arranged in an array. During specific use, the partition plates 31 divide the feeding troughs 30 into multiple relatively independent spaces, which can avoid waste caused by pigs competing for feed when eating, and ensure that each pig can get sufficient feed.

[0034] As an implementation method in this embodiment, Figure 1 and Figure 4As shown, the angle control component includes two mounting blocks 40 fixedly connected to the outer wall of one side of one of the fixed plates 14, the two mounting blocks 40 are symmetrically arranged, and a bidirectional worm 41 is horizontally arranged between the two mounting blocks 40, and the two ends of the bidirectional worm 41 respectively penetrate the corresponding mounting blocks 40 and are rotatably connected with the corresponding mounting blocks 40, and the ends of the two rotating rods 15 on the same side close to the bidirectional worm 41 are fixedly connected with a transmission rod 42, and the outer sides of the two transmission rods 42 are fixedly sleeved with worm wheels 43 adapted to the bidirectional worm 41, and the two worm wheels 43 are meshed with the bidirectional worm 41. During specific use, when the bidirectional worm 41 rotates, it drives the two worm wheels 43 meshed with it, and the rotation of the worm wheel 43 drives the rotating rod 15 to rotate through the transmission rod 42, thereby realizing the conversion of the rotational motion of the bidirectional worm 41 into the adjustment of the angle of the slot body 13.

[0035] As an implementation method in this embodiment, Figure 4 As shown, a first helical gear 50 is fixedly sleeved on the outer side of the bidirectional worm 41, and a mounting rod 51 is provided on one side of the first helical gear 50. The side of the mounting rod 51 close to the fixing plate 14 is fixedly connected to the fixing plate 14, and a second helical gear 52 adapted to the first helical gear 50 is rotatably sleeved on the outer side of the mounting rod 51. The second helical gear 52 is meshingly connected with the first helical gear 50. During specific use, when the second helical gear 52 is rotated by rotating the handle 64 to drive the rocker arm 61 to move, the rotational power of the second helical gear 52 can be accurately transmitted to the first helical gear 50, thereby driving the bidirectional worm 41 to rotate. This meshing transmission method has the characteristics of high transmission efficiency and accurate transmission ratio, thereby ensuring the accuracy and reliability of the angle adjustment of the slot body 13.

[0036] As an implementation method in this embodiment, Figure 5 and Figure 6 As shown, a connecting block 60 is fixedly connected to a side of the second helical gear 52 away from the fixed plate 14, a rocker arm 61 is provided on a side of the connecting block 60 away from the second helical gear 52, a plurality of slots 62 are provided on an outer wall of the connecting block 60 close to the rocker arm 61, a plurality of blocks 63 adapted to the size of the plurality of slots 62 are fixedly connected to an outer wall of the rocker arm 61 close to the connecting block 60, the rocker arm 61 is detachably connected to the connecting block 60 through the blocks 63, a handle 64 is rotatably connected to an outer wall of the rocker arm 61 away from the connecting block 60, during specific use, the rocker arm 61 is driven to move by rotating the handle 64, thereby driving the second helical gear 52 and the entire angle control mechanism to work, the rocker arm 61 and the connecting block 60 are detachably connected, so that in a non-operating state, the rocker arm 61 can be removed from the connecting block 60, thereby effectively preventing accidental operation and avoiding sudden changes in the angle of the slot body 13 caused by improper operation.

[0037] As an implementation method in this embodiment, Figure 1 , Figure 2 , Figure 4 , Figure 5 and Figure 7 As shown, a positioning plate 70 is fixedly sleeved on the outer side of one end of the mounting rod 51 close to the fixing plate 14, and a plurality of first positioning holes 71 are arranged in an array on the positioning plate 70, and a plurality of second positioning holes 72 are arranged in an array corresponding to the positions of the plurality of first positioning holes 71 on the outer wall of one side of the fixing plate 14 close to the positioning plate 70, and the plurality of positioning holes and the plurality of second positioning holes 72 correspond one to one, and a positioning pin 73 is arranged on the inner side of a first positioning hole 71 and a second positioning hole 72 in the same group. During specific use, when the slot body 13 is rotated to a specified angle, the positioning pin 73 is inserted into the first positioning hole 71 and the second positioning hole 72, and the rotation of the slot body 13 is prevented by a physical locking mechanism, thereby ensuring that the slot body 13 can stably stay at a predetermined angle, and the physical locking mechanism ensures that the slot body 13 does not rotate suddenly during the cleaning process, thereby preventing the slot body 13 from causing harm to the operator due to accidental rotation.

[0038] Working principle: The bolt 22 can firmly fix the entire device through the installation groove 20 and the through hole 21. When it is necessary to adjust the angle of the slot body 13 to clean the slot body 13, the rocker arm 61 is installed on the connecting block 60, and the rocker arm 61 is driven to move by rotating the handle 64. The movement of the rocker arm 61 will drive the second helical gear 52 to rotate. The rotating power of the second helical gear 52 drives the first helical gear 50, and then drives the two-way worm 41 to rotate. When the two-way worm 41 rotates, it drives the two worm wheels 43 meshing with it. The rotation of the worm wheel 43 drives the rotating rod 15 to rotate through the transmission rod 42. The rotation of the rotating rod 15 finally drives the slot body 13 to slide on the arc surface 12 of the support plate 11 to adjust the angle of the slot body 13. When the slot body 13 is rotated to the specified angle, the positioning pin 7 3 is inserted into the first positioning hole 71 and the second positioning hole 72, and the rotation of the trough body 13 is prevented by a physical locking mechanism to prevent the trough body 13 from accidentally rotating during the cleaning process. When the positioning pin 73 is firmly inserted into the first positioning hole 71 and the second positioning hole 72, the trough body 13 is cleaned to ensure that every corner of the trough body 13, the feeding trough 30 and the partition plate 31 is thoroughly cleaned. After the cleaning is completed, the positioning pin 73 is pulled out of the first positioning hole 71 and the second positioning hole 72, and the trough body 13 is adjusted back to the original working angle. When the trough body 13 is adjusted back to the original working angle, the positioning pin 73 is inserted into the first positioning hole 71 and the second positioning hole 72 again to prevent the trough body 13 from accidentally rotating during the feeding process. In order to prevent accidental operation, the rocker arm 61 is removed from the connecting block 60.

[0039] The above embodiments are only used to illustrate the technical solution of the present invention, but not to limit it.

Claims

1. A feeding trough for pig breeding, comprising a base (10), characterized in that: The upper end surface of the base (10) is fixedly connected with a support plate (11), and a fixing component is arranged on the base (10). The support plate (11) is provided with arcuate surfaces (12) on opposite sides, and grooves (13) are arranged on the sides of the two arcuate surfaces (12). The two arcuate surfaces (12) are used to support corresponding grooves (13), and the two grooves (13) slide on the corresponding arcuate surfaces (12) respectively. A partitioning component is arranged on the grooves (13). The outer walls on opposite sides of the base (10) are fixedly connected with fixing plates (14), and the outer walls on opposite sides of the two grooves (13) are fixedly connected with rotating rods (15). The ends of the two rotating rods (15) in the same group away from the grooves (13) penetrate the corresponding support plate (11) and are rotatably connected to the support plate (11). The support plate (11) is provided with an angle control component.

2. The pig breeding feeding trough according to claim 1, characterized in that: The fixing assembly comprises a plurality of mounting grooves (20) formed on both sides of the upper end surface of the base (10), the inner bottom walls of the plurality of mounting grooves (20) are each provided with a through hole (21), and the inner sides of the plurality of through holes (21) are each provided with a bolt (22).

3. The pig breeding feeding trough according to claim 1, characterized in that: The partition assembly comprises feeding troughs (30) respectively opened at the top ends of two trough bodies (13), and a plurality of partition plates (31) are fixedly connected to the inner sides of the two feeding troughs (30), and the plurality of partition plates (31) are arranged in an array.

4. The pig breeding feeding trough according to claim 3, characterized in that: The angle control assembly comprises two mounting blocks (40) fixedly connected to the outer wall of one side of one of the fixing plates (14), the two mounting blocks (40) being symmetrically arranged, a bidirectional worm (41) being transversely arranged between the two mounting blocks (40), two ends of the bidirectional worm (41) respectively passing through the corresponding mounting blocks (40) and being rotatably connected to the corresponding mounting blocks (40), one end of the two rotating rods (15) on the same side close to the bidirectional worm (41) being fixedly connected to a transmission rod (42), the outer sides of the two transmission rods (42) being fixedly sleeved with a worm wheel (43) adapted to the bidirectional worm (41), and the two worm wheels (43) being meshingly connected to the bidirectional worm (41).

5. The pig breeding feeding trough according to claim 4, characterized in that: A first helical gear (50) is fixedly sleeved on the outer side of the bidirectional worm gear (41); a mounting rod (51) is provided on one side of the first helical gear (50); a side of the mounting rod (51) close to the fixing plate (14) is fixedly connected to the fixing plate (14); a second helical gear (52) adapted to the first helical gear (50) is rotatably sleeved on the outer side of the mounting rod (51); the second helical gear (52) is meshingly connected to the first helical gear (50).

6. The pig breeding feeding trough according to claim 5, characterized in that: A connecting block (60) is fixedly connected to a side of the second helical gear (52) away from the fixing plate (14); a rocker arm (61) is provided on a side of the connecting block (60) away from the second helical gear (52); a plurality of slots (62) are provided on an outer wall of a side of the connecting block (60) close to the rocker arm (61); a plurality of clamping blocks (63) adapted to the size of the plurality of slots (62) are fixedly connected to an outer wall of a side of the rocker arm (61) close to the connecting block (60); the rocker arm (61) is detachably connected to the connecting block (60) via the clamping blocks (63); and a handle (64) is rotatably connected to an outer wall of a side of the rocker arm (61) away from the connecting block (60).

7. The pig breeding feeding trough according to claim 6, characterized in that: A positioning plate (70) is fixedly sleeved on the outer side of one end of the mounting rod (51) close to the fixing plate (14); a plurality of first positioning holes (71) are arranged in an array on the positioning plate (70); a plurality of second positioning holes (72) are arranged in an array at positions corresponding to the plurality of first positioning holes (71) on an outer wall of one side of the fixing plate (14) close to the positioning plate (70); the plurality of positioning holes and the plurality of second positioning holes (72) correspond one to one; and a positioning pin (73) is arranged inside one of the first positioning hole (71) and one of the second positioning holes (72) in the same group.