Light and feed control assembly based on broiler livestock breeding house
By using adjustable color temperature LED lights and dynamic feed control components in broiler breeding equipment, the problem of uneven light and feed distribution is solved, efficient automation of broiler breeding equipment is achieved, feed waste and residue are reduced, and growth uniformity and feeding efficiency are improved.
Patent Information
- Application Number
- CN202510833971.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-20
- Publication Date
- 2025-09-05
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing broiler breeding equipment has problems such as low efficiency, serious waste, and poor growth uniformity in terms of light regulation, uniform feed distribution, and abnormal particle processing. In addition, manual cleaning of residual materials is labor-intensive and has low feeding efficiency.
Adjustable color temperature LED lights are used for lighting control. Combined with dynamic feed control components and auxiliary unloading components, quantitative feeding, crushing and automatic unloading of feed are achieved. Broilers are separated by dynamic feed receiving components and concave gear frames to ensure uniform feed distribution and reduce residue.
It improves the efficiency of broiler breeding, reduces feed waste, ensures the normal growth and growth uniformity of broilers, and reduces labor intensity and costs.
Smart Images

Figure CN120584784A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of animal husbandry components, in particular to a light and material control component based on a broiler animal husbandry house. Background Art
[0002] In the large-scale breeding of broiler chickens, lighting and feeding management are key factors affecting production performance. To ensure the normal growth of broiler chickens, the stability and adequacy of feed supply must be guaranteed. For example, patent number CN219373481U discloses an adjustable feed trough for broiler breeding, which adjusts the feed amount by controlling the opening and closing angle of the feeding device, and uses tools to move the feed to achieve cleaning of the feed trough.
[0003] However, the above patent content only realizes the effect of controlling feeding quantity, and does not fully consider the pecking behavior characteristics of broilers (they like to eat powdered feed and are picky about pellets), resulting in a high rate of grain leftovers and uneven feeding. Secondly, during the feeding process, abnormal particles (such as lumped feed and residue) cannot be effectively handled, resulting in excessive residues or the risk of digestive diseases caused by broilers accidentally eating them. Manual cleaning of the residues is labor-intensive and has low feeding efficiency.
[0004] Therefore, it is necessary to collaboratively set up an integrated breeding equipment during broiler feeding. Summary of the Invention
[0005] The purpose of the present invention is to realize breeding equipment that integrates light control, uniform feed distribution, abnormal particle crushing and automatic unloading functions, and by dynamically adjusting the feed feeding method, solve the problems of low light and feed control efficiency, serious feed waste, poor growth uniformity, etc. in traditional broiler breeding, and effectively improve the breeding efficiency of broiler farms.
[0006] The object of the present invention can be achieved by the following technical solution: a light and material control assembly based on a broiler livestock breeding house, comprising a positioning tray and a column, wherein the column is fixedly mounted at the top center of the positioning tray, and a long frame with a concave structure is provided at the top of the column, a conical top cover is provided at the top center of the long frame, and a plurality of groups of adjustable color temperature LED lights are provided on the bottom surface of the conical top cover;
[0007] A dynamic material control component is provided on one side of the interior of the long frame, and an auxiliary unloading component is provided at the bottom position of the other end thereof; a rotating drum is movably connected to the outside of the column and located on the top surface of the positioning tray, and a waste collection frame is provided on the top surface of the positioning tray and located at the center of one side of the rotating drum; a plurality of groups of dynamic material bearing components are provided on the inner wall of the rotating drum at equal distances outside the corresponding areas of the dynamic material control component and the auxiliary unloading component, and a concave gear frame is provided on the outer wall of the rotating drum corresponding to each group of dynamic material bearing components.
[0008] Furthermore, the dynamic material control component includes a metering silo fixedly installed at one end of the top of the long frame, and discharge pipes are respectively provided at the front and rear ends and both sides of the bottom of the metering silo, and a material guide column is fixedly installed at the center of the bottom of the metering silo.
[0009] Furthermore, the dynamic material control assembly further includes a material guide cylinder that is wider at the top and narrower at the bottom, the material guide cylinder being rotatably connected to one end of the inner wall of the bottom of the long frame, and a driven gear ring being fixedly mounted on the top end of the outer portion of the material guide cylinder;
[0010] The driven gear ring is engaged with a main gear disc on one side, and the top shaft of the main gear disc extends to the inner wall of the top of the long frame and is provided with a motor 1. The guide column extends into the inside of the guide barrel, and the outer diameter of the guide column is less than 2 cm of the inner diameter of the bottom barrel mouth of the guide barrel.
[0011] Furthermore, an inclined ring frame is provided at the middle section of the outer wall of the guide barrel, and both ends of the ring frame are fixedly connected to vertical rods by sliding and clamping in the concave clamping frame. The two groups of vertical rods are staggered in the upper and lower parts, and their bottom ends extend to the bottom end of the long frame respectively.
[0012] Furthermore, the top frame of the rotating drum is set in an oblique surface, and an annular gear frame is fixedly installed at the center of the inner part of the rotating drum. Several groups of auxiliary rotating gears are equidistantly engaged on the inner wall of the annular gear frame. The top center of each group of auxiliary rotating gears is rotatably connected to the bottom surface of the long frame through a fixedly installed rotating rod, and a second motor is commonly arranged between the top end of one group of rotating rods and the bottom surface of the long frame.
[0013] Furthermore, the auxiliary unloading assembly includes a convex machine frame that is narrow at the top and wide at the bottom. The machine frame is fixedly installed at one end of the bottom surface of the long frame, and a transmission gear roller 1 is movably provided at the bottom end inside the machine frame. The rear end shaft of the transmission gear roller 1 extends to the outside of the machine frame and is provided with a motor 3.
[0014] Furthermore, a second transmission gear roller is movably provided at the top inside the machine frame, and the outer diameter of the second transmission gear roller is 3 cm smaller than the outer diameter of the first transmission gear roller. Transmission wheels are fixedly installed on the front end shafts of the second transmission gear roller and the first transmission gear roller, and a transmission belt is connected between the upper and lower groups of transmission wheels.
[0015] Furthermore, a T-shaped material-repelling tooth plate is provided horizontally through the bottom of the second transmission gear roller inside the machine frame, and the bottom surface of the material-repelling tooth plate is engaged with the second transmission gear roller. One end of the material-repelling tooth plate extends to the outside of the machine frame and is inserted into the inside of the column, and the bottom surface of the plate body at the other end of the material-repelling tooth plate is flush with the top surface of the hollow material receiving cylinder.
[0016] Furthermore, the dynamic material-bearing assembly includes a hollow material-bearing cylinder fixedly mounted on the inner wall of the rotating cylinder, and a convex material-stacked column is provided through the bottom end of the hollow material-bearing cylinder, the top surface of the convex material-stacked column is provided with an oblique section, and a spiral push cylinder is fixedly mounted at the bottom end of the convex material-stacked column.
[0017] Furthermore, one side of the transmission gear roller extends to the outside of the machine frame and engages with the side wall of the spiral push cylinder. A T-shaped vertical cylinder is provided inside the spiral push cylinder. The bottom end of the T-shaped vertical cylinder is fixedly connected to the inner wall of the bottom of the rotating cylinder, and a reset spring coil is wound around the outside of the T-shaped vertical cylinder and located inside the spiral push cylinder body.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] 1. The present invention is to provide an adjustable color temperature LED lamp, which can adjust the light intensity and color temperature according to the different growth stages of broiler chickens, provide a suitable growth environment for broiler chickens, and separate the broiler chickens with a concave gear frame to achieve a one-frame-one-chicken configuration to reduce the situation of chickens competing for food.
[0020] 2. The present invention realizes quantitative feeding of feed by setting a dynamic material control component and several groups of dynamic material receiving components, and through the cooperation of the metering silo and the discharge pipe, the feed is quantitatively put into the corresponding hollow material receiving cylinder. At the same time, the relative rotation of the guide cylinder and the guide column is used to crush abnormal granular feed, ensure the uniformity of the volume of the falling feed, and reduce the impact on the growth of broilers caused by accidentally eating feed of abnormal volume.
[0021] 3. The present invention is to set up an auxiliary unloading component and a dynamic material receiving component. After feeding, the dynamic material receiving component passes through the auxiliary unloading component in turn, and the transmission gear roller engages with the side wall of the spiral push cylinder, forcing the spiral push cylinder to gradually move upward along its axial direction outside the T-shaped vertical cylinder, and push the convex stacking column and the remaining feed in the hollow material receiving cylinder to move upward until the top inclined surface of the convex stacking column exceeds the top of the hollow material receiving cylinder, and the remaining feed on its surface and in the hollow material receiving cylinder is completely discharged, thereby avoiding the situation where feed residues and deterioration occur, greatly reducing feed waste, and further reducing breeding costs. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] To facilitate understanding by those skilled in the art, the present invention is further described below with reference to the accompanying drawings.
[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 A three-dimensional schematic diagram of a positioning tray of the present invention;
[0025] Figure 3 It is a top sectional view of the overall structure of the present invention;
[0026] Figure 4 It is a three-dimensional schematic diagram of the combination of the long frame, the dynamic material control component and the auxiliary unloading component of the present invention;
[0027] Figure 5 This is a three-dimensional schematic diagram of the dynamic material control component of the present invention;
[0028] Figure 6 It is a partial cross-sectional view of the combination of the auxiliary unloading assembly, the rotating drum and the dynamic material-bearing assembly of the present invention;
[0029] Figure 7 It is an exploded view of the dynamic material-bearing assembly of the present invention.
[0030] In the figure: 1. Positioning tray; 2. Column; 3. Long frame; 4. Conical top cover; 5. Dynamic material control assembly; 51. Measuring silo; 52. Guide column; 53. Guide cylinder; 54. Driven gear ring; 55. Main gear disc; 56. Motor 1; 57. Ring frame; 58. Vertical pole; 6. Auxiliary unloading assembly; 61. Machine frame; 62. Transmission gear roller 1; 63. Motor 3; 64. Transmission gear roller 2; 65. Transmission wheel; 66. Material resisting gear plate; 7. Rotating cylinder; 701. Annular gear frame; 702. Auxiliary rotating gear; 703. Motor 2; 8. Dynamic material bearing assembly; 81. Hollow material bearing cylinder; 82. Convex stacking column; 83. Screw push cylinder; 84. T-shaped vertical cylinder; 85. Reset spring ring; 9. Concave gear frame. DETAILED DESCRIPTION
[0031] The technical solutions of the present invention will be clearly and completely described below with reference to the embodiments. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.
[0032] Example 1: Please refer to Figure 1-Figure 7 As shown, the light and material control assembly based on the broiler livestock breeding house includes a positioning tray 1 and a column 2. The column 2 is fixedly installed at the top center of the positioning tray 1, and a long frame 3 with a concave structure is provided on the top of the column 2. A conical top cover 4 is provided at the top center of the long frame 3, and a plurality of groups of adjustable color temperature LED lights are provided on the bottom surface of the conical top cover 4;
[0033] A dynamic material control assembly 5 is provided on one side of the interior of the long frame 3, and an auxiliary unloading assembly 6 is provided on the bottom surface of the other end thereof. A rotating drum 7 is movably connected to the outside of the column 2 and located on the top surface of the positioning tray 1, and an annular gear frame 701 is fixedly installed at the center of the interior of the rotating drum 7. Several groups of auxiliary rotating gears 702 are equidistantly engaged with the inner wall of the annular gear frame 701. The top center of each group of auxiliary rotating gears 702 is rotatably connected to the bottom surface of the long frame 3 through a fixedly installed rotating rod. A second motor 703 is commonly provided between the top end of one group of rotating rods and the bottom surface of the long frame 3.
[0034] Several groups of dynamic material receiving components 8 are arranged at equal distances on the inner wall of the rotating drum 7 and outside the corresponding areas of the dynamic material control component 5 and the auxiliary unloading component 6, and a concave shift frame 9 is provided on the outer wall of the rotating drum 7 and corresponding to each group of dynamic material receiving components 8. The dynamic material receiving component 8 includes a hollow material receiving cylinder 81 fixedly mounted on the inner wall of the rotating drum 7, and a convex material stacking column 82 is provided through the bottom end of the hollow material receiving cylinder 81.
[0035] During specific operation, the adjustable color temperature LED lamp adjusts the light intensity in the breeding house to adapt to the needs of different stages of broiler growth. Motor 2 703 is started and the auxiliary gear 702, the annular gear frame 701 and the rotating drum 7 are driven by the rotating rod to rotate synchronously. The rotating drum 7 drives several groups of dynamic material-bearing components 8 to move, and passes through the dynamic material control components 5 in turn to achieve uniform distribution of feed into each group of hollow material-bearing barrels 81. At the same time, the broilers are separated by the concave gear frame 9 to achieve a configuration of one frame, one chicken and one barrel, so as to reduce the situation where chickens scramble for food and pecking each other, resulting in uneven feeding and feed leakage.
[0036] The dynamic material control component 5 includes a metering silo 51 fixedly mounted on the top of the long frame 3 at one end, and discharge pipes are respectively provided at the front and rear ends and both sides of the bottom of the metering silo 51, and a material guide column 52 is fixedly mounted at the center of the bottom of the metering silo 51;
[0037] The dynamic material control assembly 5 also includes a material guide barrel 53 that is wide at the top and narrow at the bottom. The material guide barrel 53 is rotatably connected to one end of the bottom inner wall of the long frame 3, and a driven gear ring 54 is fixedly installed at the top end of the outer surface of the material guide barrel 53. A main gear disc 55 is engaged with one side of the driven gear ring 54. The top shaft of the main gear disc 55 extends to the top inner wall of the long frame 3 and is provided with a motor 56. The material guide column 52 extends into the interior of the material guide barrel 53, and the outer diameter of the material guide column 52 is less than 2 cm of the inner diameter of the bottom barrel opening of the material guide barrel 53.
[0038] The specific feeding process includes: using the feed in the metering silo 51 to quantitatively feed the inside of the guide barrel 53 through multiple sets of discharge pipes, feed with normal particle size falls into the hollow receiving barrel 81 through the gap between the guide column 52 and the guide barrel 53, and feed particles with abnormal particle size are retained in the guide barrel 53. At this time, the motor 1 56 is started, and the driven gear ring 54 and the guide barrel 53 are driven to rotate through the meshing action of the main gear plate 55. Due to the design of the guide barrel 53 that is wide at the top and narrow at the bottom, the abnormal feed particles are gradually squeezed and broken in the guide barrel 53, and fall evenly into the hollow receiving barrel 81, thereby achieving a uniform volume of the falling feed, reducing the risk of broilers accidentally eating feed with abnormal volume and affecting their growth.
[0039] It should be noted that an inclined ring frame 57 is provided in the middle section of the outer wall of the guide cylinder 53, and both ends of the ring frame 57 are fixedly connected to vertical rods 58 by sliding and clamping in the concave clamping frame. The two sets of vertical rods 58 are staggered in the upper and lower positions, and their bottom ends extend to the bottom end of the long frame 3 respectively.
[0040] Therefore, when the guide cylinder 53 rotates, the inclined ring frame 57 is driven to rotate synchronously, and the two groups of concave clamping frames move relative to each other along the surface of the ring frame 57. With the help of the inclination difference of the surface of the ring frame 57, the concave clamping frames are forced to drive the corresponding vertical rods 58 to move up and down alternately. The two groups of vertical rods 58 alternately hammer the top surface of the hollow material receiving cylinder 81 in the feeding state. The hollow material receiving cylinder 81 is forced to vibrate due to the shock and fall more evenly, avoiding the feed from being blocked at the tube mouth of the hollow material receiving cylinder 81, thereby ensuring uniform distribution of the feed and helping to reduce the situation where the feed remains on the inner wall of the hollow material receiving cylinder 81.
[0041] In summary, by providing structural components such as the dynamic feed control component 5 and the dynamic material receiving component 8, not only can the feed be evenly distributed, and the uneven feeding and feed spillage caused by broiler chickens fighting for food can be reduced, but the broiler chickens can also be guaranteed to eat feed of uniform volume normally, avoiding the growth affected by accidentally eating feed of abnormal volume, thereby greatly improving the growth rate and quality of broiler chickens.
[0042] Example 2: Please refer to Figure 4 and Figure 6 As shown, the auxiliary unloading assembly 6 includes a convex machine frame 61 that is narrow at the top and wide at the bottom. The machine frame 61 is fixedly installed at one end of the bottom surface of the long frame 3, and a transmission gear roller 1 62 is movably provided at the bottom end of the machine frame 61. The rear end shaft of the transmission gear roller 1 62 extends to the outside of the machine frame 61 and is provided with a motor 3 63.
[0043] A transmission gear roller 2 64 is movably installed at the top of the frame 61. The outer diameter of the transmission gear roller 2 64 is 3 cm smaller than the outer diameter of the transmission gear roller 1 62. Transmission wheels 65 are fixedly installed on the front shafts of the transmission gear roller 2 64 and the transmission gear roller 1 62. A transmission belt is connected between the upper and lower sets of transmission wheels 65.
[0044] Inside the machine frame 61, a T-shaped material-receiving tooth plate 66 is provided transversely at the bottom of the second transmission gear roller 64, and the bottom surface of the material-receiving tooth plate 66 is engaged with the second transmission gear roller 64. One end of the material-receiving tooth plate 66 extends to the outside of the machine frame 61 and is inserted into the interior of the column 2, and the bottom surface of the other end of the material-receiving tooth plate 66 is flush with the top surface of the hollow material receiving cylinder 81.
[0045] The top surface of the convex stacking column 82 is arranged in an oblique section, and a spiral push cylinder 83 is fixedly installed at the bottom end of the convex stacking column 82, and one side of the transmission gear roller 62 extends to the outside of the machine frame 61 and engages with the side wall of the spiral push cylinder 83. A T-shaped vertical cylinder 84 is provided inside the spiral push cylinder 83, and the bottom end of the T-shaped vertical cylinder 84 is fixedly connected to the bottom inner wall of the rotating drum 7, and a reset spring coil 85 is wound around the outside of the T-shaped vertical cylinder 84 and located inside the cylinder body of the spiral push cylinder 83;
[0046] When the broilers have finished pecking or need to change the feed, the inside of each group of hollow receiving cylinders 81 is empty or a certain amount of feed is retained. The remaining feed is judged to be deteriorated based on the time of the last feed addition. If the feed has been retained for too long, the motor 2 703 is used again to drive the rotating drum 7 and several groups of dynamic receiving components 8 to move in a circular motion, and pass through the auxiliary unloading component 6 in sequence. At this time, the motor 3 63 is started to drive the transmission gear roller 1 62 and the corresponding transmission wheel 65 to rotate. Under the transmission action of the transmission belt, the transmission gear roller 2 64 is also driven to rotate synchronously;
[0047] Since the spiral push cylinder 83 moves with the rotating cylinder 7 to the side of the transmission gear roller 62, the transmission gear roller 62 rotates and engages with the side wall of the spiral push cylinder 83, forcing the spiral push cylinder 83 to gradually move upward along its axial direction outside the T-shaped vertical cylinder 84, and the return spring coil 85 is gradually in a compressed state, so that the spiral push cylinder 83 pushes the convex stacking column 82 and the remaining feed in the hollow receiving cylinder 81 to move upward until the top inclined surface of the convex stacking column 82 exceeds the top of the hollow receiving cylinder 81, and the remaining feed on its surface and in the hollow receiving cylinder 81 is completely discharged, thereby avoiding the situation where feed residues and deterioration occur, greatly reducing feed waste, and further reducing breeding costs;
[0048] At the same time, the material-blocking tooth plate 66 is gradually moved outward along the inside of the machine frame 61 by the action of the second transmission gear roller 64 and the transmission belt. As the convex material pile column 82 extending from one end of the bottom surface of the material-blocking tooth plate 66 impacts the side wall, the damp or deteriorated material adhering to the surface of the convex material pile column 82 is quickly removed.
[0049] After the unloading of the residual material inside the single group of hollow material receiving cylinders 81 is completed, the motor 2 703 is turned off, and the spiral push cylinder 83 is gradually reset along the outside of the T-shaped vertical cylinder 84 under the rebound action of the reset spring coil 85, and is gradually reset along the inside of the machine frame 61 under the reverse action of the material-receiving tooth plate 66, so as to be used again in the next unloading operation. In this way, each group of hollow material receiving cylinders 81 discharges the residual feed in turn through the auxiliary unloading component 6.
[0050] It is worth noting that a waste collection frame is provided on the top surface of the positioning tray 1 and at the center of one side of the rotating drum 7, and the top frame of the rotating drum 7 is provided with an oblique surface, which is convenient for the feed to slide into the waste collection frame along the inclined direction of the rotating drum 7, effectively collecting the remaining feed or damp and deteriorated materials after processing, and ensuring the cleanliness of the breeding environment.
[0051] Working principle:
[0052] When the present invention is used, it first provides a suitable light environment for broilers through the adjustable color temperature LED lamp to meet the needs of different growth stages;
[0053] Next, the second motor 703 is started to drive the auxiliary gear 702 to rotate through the rotating rod, thereby driving the annular gear frame 701 and the entire rotating drum 7 to rotate synchronously. As the rotating drum 7 rotates, the multiple groups of dynamic material receiving components 8 inside it also move and pass through the dynamic material control component 5 in sequence. Under the action of the dynamic material control component 5, the feed is evenly distributed into each group of hollow material receiving cylinders 81. At the same time, the setting of the concave gear frame 9 effectively separates the broilers, preventing the chickens from fighting over food, ensuring the uniform distribution of feed, and reducing feed leakage.
[0054] After the feed is distributed into the hollow receiving barrel 81, as the broilers peck at it, the feed in the hollow receiving barrel 81 gradually decreases. When the broilers have finished pecking or the feed needs to be replaced, the motor 2 703 is started again to drive the rotating drum 7 and the several groups of dynamic receiving components 8 to continue to move in a circular motion, and pass through the auxiliary unloading components 6 in turn. Under the action of the auxiliary unloading components 6, the remaining feed in the hollow receiving barrel 81 is discharged to avoid feed residue and deterioration. The discharged feed slides into the waste container frame, which is convenient for the staff to clean and process it uniformly.
[0055] In addition, when the guide cylinder 53 in the dynamic material control component 5 rotates, the inclined ring frame 57 on its outside will drive the concave clamping frame and the corresponding vertical rod 58 to move back and forth alternately. This movement method helps to reduce the residual feed on the inner wall of the hollow material receiving cylinder 81 and ensure the uniform distribution of the feed. At the same time, the hammering action of the vertical rod 58 can also avoid the blockage of the feed at the mouth of the hollow material receiving cylinder 81, ensuring the smooth falling of the feed.
[0056] In summary, the light and feed control assembly of the present invention achieves uniform distribution of feed, reduces feed waste, and ensures normal growth of broilers through the coordination of components.
[0057] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to specific embodiments. Obviously, many modifications and variations are possible based on the contents of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. A light and material control assembly based on a broiler livestock breeding house, comprising a positioning tray (1) and a column (2), wherein the column (2) is fixedly mounted at the top center of the positioning tray (1), and a long frame (3) with a concave structure is provided at the top of the column (2), a conical top cover (4) is provided at the top center of the long frame (3), and a plurality of groups of adjustable color temperature LED lamps are provided at the bottom surface of the conical top cover (4), characterized in that: A dynamic material control assembly (5) is provided on one side of the interior of the long frame (3), and an auxiliary unloading assembly (6) is provided on the bottom of the other end thereof; a rotating drum (7) is movably connected to the outside of the column (2) and located on the top surface of the positioning tray (1); a waste collection frame is provided on the top surface of the positioning tray (1) and located at the center of one side of the rotating drum (7); a plurality of groups of dynamic material bearing assemblies (8) are provided on the inner wall of the rotating drum (7) and are located outside the corresponding areas of the dynamic material control assembly (5) and the auxiliary unloading assembly (6) at equal distances; and a concave shift frame (9) is provided on the outer wall of the rotating drum (7) and corresponding to each group of dynamic material bearing assemblies (8).
2. The light and material control assembly based on a broiler livestock breeding house according to claim 1, characterized in that: The dynamic material control component (5) comprises a metering silo (51) fixedly mounted on the top of the long frame (3) at one end, and a discharge pipe is respectively provided at the front and rear ends and both sides of the bottom of the metering silo (51), and a material guide column (52) is fixedly mounted at the center of the bottom of the metering silo (51).
3. The light and material control assembly based on broiler livestock breeding house according to claim 2, characterized in that: The dynamic material control assembly (5) further comprises a material guide cylinder (53) which is wide at the top and narrow at the bottom. The material guide cylinder (53) is rotatably connected to one end of the inner wall of the bottom of the long frame (3), and a driven gear ring (54) is fixedly mounted on the top end of the outer portion of the material guide cylinder (53). A main gear disc (55) is engaged with one side of the driven gear ring (54), and a shaft at the top end of the main gear disc (55) extends to the inner wall of the top of the long frame (3) and is provided with a motor (56). The material guide column (52) extends into the interior of the material guide barrel (53), and the outer diameter of the material guide column (52) is 1-2 cm smaller than the inner diameter of the bottom barrel opening of the material guide barrel (53).
4. The light and material control assembly based on a broiler livestock breeding house according to claim 3, characterized in that: An inclined ring frame (57) is provided at the middle section of the outer wall of the guide cylinder (53), and both ends of the ring frame (57) are fixedly connected to vertical rods (58) by slidingly clamping on the concave clamping frame. The two groups of vertical rods (58) are arranged in an upper and lower staggered manner, and their bottom ends respectively extend to the bottom end of the long frame (3).
5. The light and material control assembly based on broiler livestock breeding house according to claim 1, characterized in that: The top frame of the rotating drum (7) is arranged in an oblique section, and an annular gear frame (701) is fixedly installed at the center of the inner portion of the rotating drum (7). A plurality of groups of auxiliary rotating gears (702) are meshed at equal distances on the inner wall of the annular gear frame (701). The top center of each group of auxiliary rotating gears (702) is rotatably connected to the bottom surface of the long frame (3) through a fixed rotating rod. A second motor (703) is commonly arranged between the top end of one group of rotating rods and the bottom surface of the long frame (3).
6. The light and material control assembly based on a broiler livestock breeding house according to claim 1, characterized in that: The auxiliary unloading assembly (6) includes a convex machine frame (61) that is narrow at the top and wide at the bottom. The machine frame (61) is fixedly installed at one end of the bottom surface of the long frame (3), and a transmission gear roller (62) is movably provided at the bottom end of the machine frame (61). The rear end shaft of the transmission gear roller (62) extends to the outside of the machine frame (61) and is provided with a motor (63).
7. The light and material control assembly based on a broiler livestock breeding house according to claim 6, characterized in that: A second transmission gear roller (64) is movably provided at the top end of the machine frame (61), and the outer diameter of the second transmission gear roller (64) is 2-3 cm smaller than the outer diameter of the first transmission gear roller (62). A transmission wheel (65) is fixedly installed at the front end shaft of the second transmission gear roller (64) and the first transmission gear roller (62), and a transmission belt is connected between the upper and lower groups of the transmission wheels (65).
8. The light and material control assembly based on a broiler livestock breeding house according to claim 7, characterized in that: A T-shaped material-repelling tooth plate (66) is provided in the interior of the machine frame (61) and is located at the bottom of the second transmission gear roller (64) and is horizontally penetrated, and the bottom surface of the material-repelling tooth plate (66) is engaged with the second transmission gear roller (64). One end of the material-repelling tooth plate (66) extends to the outside of the machine frame (61) and is inserted into the interior of the column (2), and the bottom surface of the plate body of the other end of the material-repelling tooth plate (66) is flush with the top surface of the hollow material receiving cylinder (81).
9. The light and material control assembly based on a broiler livestock breeding house according to claim 1, characterized in that: The dynamic material receiving assembly (8) comprises a hollow material receiving cylinder (81) fixedly mounted on the inner wall of the rotating cylinder (7), and a convex material stacking column (82) is provided through the bottom end of the hollow material receiving cylinder (81), the top surface of the convex material stacking column (82) is provided in an oblique section, and a spiral push cylinder (83) is fixedly mounted at the bottom end of the convex material stacking column (82).
10. The light and material control assembly based on a broiler livestock breeding house according to claim 9, characterized in that: One side of the transmission gear roller (62) extends to the outside of the machine frame (61) and engages with the side wall of the spiral push cylinder (83). A T-shaped vertical cylinder (84) is provided inside the spiral push cylinder (83). The bottom end of the T-shaped vertical cylinder (84) is fixedly connected to the bottom inner wall of the rotating cylinder (7). A reset spring coil (85) is wound around the outside of the T-shaped vertical cylinder (84) and located inside the cylinder body of the spiral push cylinder (83).
Citation Information
Patent Citations
Broiler chicken breeding adjustable trough
CN219373481U