An ultralong pipe feeding system
Patent Information
- Application Number
- CN202521898158.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-04
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-09-04
AI Technical Summary
[0004]在大规模养殖场内,饲料投喂依靠人工定点投喂,由于养殖鹅数量多则需要安排多个饲料投放点位,需要进行多点定点投喂,这使得人工投喂费时费力
[0016] 1. This utility model uses a second auger conveyor to transport feed to various feeding points, making feed feeding time-saving and labor-saving. After the pressure value at the bottom of the valve assembly reaches the set value, the electrical signal is transmitted to the microcontroller. The microcontroller then controls the valve assembly to disconnect the second auger conveyor from the discharge pipe, completing quantitative feeding and realizing timed, fixed-point, and quantitative feeding.
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Figure CN224761055U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of pipeline material supply technology, specifically to an ultra-long pipeline material supply system. Background Technology
[0002] Goose farming is an agricultural project that is both economically viable and feasible. It has a relatively short breeding cycle, strong adaptability, and stable market demand for products such as goose meat, goose eggs, and goose down.
[0003] The feeding of geese requires adjustments to feed formulation, feeding methods, and management details based on the physiological characteristics of different growth stages to ensure their healthy growth and improve breeding efficiency.
[0004] In large-scale farms, feed is delivered manually at fixed points. Due to the large number of geese, multiple feed delivery points need to be arranged, requiring multi-point feeding, which makes manual feeding time-consuming and labor-intensive. Utility Model Content
[0005] The purpose of this invention is to provide an ultra-long pipeline material supply system to address the aforementioned shortcomings in the prior art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: It includes a second auger conveyor, on which multiple discharge pipes are arranged at equal intervals. A valve assembly for isolating the second auger conveyor from the discharge pipes is slidably installed in the vertical direction within each discharge pipe. When the valve assembly connects the second auger conveyor to the discharge pipes, a pressure sensor is fixedly connected to the bottom of the valve assembly. When the pressure sensor detects a pressure value greater than an initial set value, it feeds back an electrical signal to a microcontroller. The microcontroller then controls the valve assembly to isolate the second auger conveyor from the discharge pipes.
[0007] Furthermore, it also includes a feeding hopper, which is connected to an inclined first auger conveyor. A distribution hopper is provided below the discharge end of the first auger conveyor. The feeding end of the second auger conveyor is connected to the discharge end of the distribution hopper. A cleaning pipe is connected to the bottom of the end of the second auger conveyor away from the distribution hopper.
[0008] Furthermore, the valve assembly includes a plunger, a baffle is fixedly connected inside the discharge pipe, the baffle has a discharge port, and the plunger is slidably disposed between the inner wall of the discharge pipe and the baffle.
[0009] Furthermore, a rack is fixedly connected to the bottom of the plunger, the rack is driven by a drive assembly, and a probe tube is fixedly connected to the bottom of the rack.
[0010] Furthermore, the drive assembly includes a mounting housing, within which a worm gear is rotatably disposed, the worm gear meshing with a worm wheel, the worm wheel being fixedly sleeved on the outside of a rotating shaft, and a gear being fixedly sleeved on the outside of the rotating shaft, the gear meshing with a rack.
[0011] Furthermore, a first protective pipe is provided on the outside of the discharge pipe and fixedly connected to the top of the second auger conveyor. A second protective pipe is detachably connected to the bottom of the first protective pipe, and the mounting shell is fixedly connected to the inner wall of the second protective pipe.
[0012] Furthermore, the bottom side of the partition is close to the side of the mounting housing.
[0013] Furthermore, a microcontroller and a servo motor whose output end is fixedly connected to the worm gear are installed on the outer surface of the second protective tube.
[0014] Furthermore, a feeding bowl is arranged directly below the second protective tube, and a small vibration motor is arranged at the center of the bottom of the feeding bowl.
[0015] The beneficial effects of the ultra-long pipeline material supply system provided by this utility model in the above technical solution are as follows:
[0016] 1. This utility model uses a second auger conveyor to transport feed to various feeding points, making feed feeding time-saving and labor-saving. After the pressure value at the bottom of the valve assembly reaches the set value, the electrical signal is transmitted to the microcontroller. The microcontroller then controls the valve assembly to disconnect the second auger conveyor from the discharge pipe, completing quantitative feeding and realizing timed, fixed-point, and quantitative feeding.
[0017] 2. The residual feed in the second auger conveyor is discharged through the cleaning pipe, which prevents the feed from accumulating and deteriorating in the second auger conveyor and avoids feeding the animals with feed mixed with deteriorated feed, thus improving the quality of the feed.
[0018] It should be understood that the foregoing general description and the following detailed description are exemplary and illustrative only, and are not intended to limit this disclosure.
[0019] This application provides an overview of various implementations or examples of the technology described in this disclosure, and is not a full disclosure of the entire scope or all features of the disclosed technology. Attached Figure Description
[0020] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.
[0021] Figure 1 A structural schematic diagram provided for an embodiment of this utility model;
[0022] Figure 2 Provided for the embodiments of this utility model Figure 1 Enlarged view of point A in the middle;
[0023] Figure 3 A structural cross-sectional view provided for an embodiment of this utility model;
[0024] Figure 4 Partial structural cross-sectional view provided for embodiments of this utility model.
[0025] Explanation of reference numerals in the attached figures:
[0026] 1. Feed hopper; 2. First auger conveyor; 21. First support leg; 3. Dividing hopper; 4. Second auger conveyor; 41. Second support leg; 42. Cleaning pipe; 43. Discharge pipe; 44. Baffle plate; 45. Discharge port; 71. First protective pipe; 72. Second protective pipe; 81. Plunger; 82. Rack; 83. Probe pipe; 88. Pressure sensor; 91. Mounting housing; 92. Worm gear; 93. Worm wheel; 94. Gear; 95. Servo motor; 96. Rotating shaft; 99. Feeding bowl; 10. Microcontroller. Detailed Implementation
[0027] To make the objectives, technical solutions, and advantages of the embodiments of this disclosure clearer, the technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this disclosure. All other embodiments obtained by those skilled in the art based on the described embodiments of this disclosure without creative effort are within the scope of protection of this disclosure.
[0028] Please see Figures 1-4 The system includes a second auger conveyor 4, on which multiple discharge pipes 43 are arranged at equal intervals. A valve assembly for isolating the second auger conveyor 4 from the discharge pipe 43 is slidably installed in the vertical direction within each discharge pipe 43. When the valve assembly connects the second auger conveyor 4 to the discharge pipe 43, a pressure sensor 88 is fixedly connected to the bottom of the valve assembly. When the pressure sensor 88 detects a pressure value greater than an initial set value, it feeds an electrical signal back to the microcontroller 10. The microcontroller 10 controls the valve assembly to isolate the second auger conveyor 4 from the discharge pipe 43. The system also includes a feed hopper 1, connected to an inclined first auger conveyor 2. A distribution hopper 3 is located below the discharge end of the first auger conveyor 2. The feed end of the second auger conveyor 4 connects to the discharge end of the distribution hopper 3. A cleaning pipe 42 is connected to the bottom of the second auger conveyor 4 at the end furthest from the distribution hopper 3.
[0029] Specifically, the first auger conveyor 2 and the second auger conveyor 4 work together to transport feed to various feeding points, making feed feeding more time-saving and labor-saving. When the pressure value at the bottom of the valve assembly reaches the set value, it transmits an electrical signal to the microcontroller 10. The microcontroller 10 then controls the valve assembly to isolate the second auger conveyor 4 from the discharge pipe 43, completing quantitative feeding and realizing timed, fixed-point, and quantitative feeding. The residual feed in the second auger conveyor 4 is discharged through the cleaning pipe 42, preventing the feed from accumulating and deteriorating in the second auger conveyor 4, and preventing the feed from being mixed with deteriorated feed and fed to the farmed animals, thus improving the quality of the feed.
[0030] Furthermore, a feeding bowl (99) is arranged directly below the second protective tube (72), and a small vibration motor is arranged at the center of the bottom of the feeding bowl 99.
[0031] Specifically, the small vibration motor is a Putian DC brushless micro vibration motor, model PUTA30DCB24-Z03. This motor is installed at the center of the bottom of the feeding bowl 99 and is electrically connected to the microcontroller 10.
[0032] Furthermore, the valve assembly includes a plunger 81, a baffle 44 fixedly connected inside the discharge pipe 43, a discharge port 45 on the baffle 44, the plunger 81 slidably disposed between the inner wall of the discharge pipe 43 and the baffle 44, a rack 82 fixedly connected to the bottom of the plunger 81, the rack 82 being driven by a drive assembly, a probe pipe 83 fixedly connected to the bottom of the rack 82, a pressure sensor 88 mounted on the side of the probe pipe 83 away from the discharge, and the drive assembly includes a mounting housing 91, within which a worm gear 92 is rotatably disposed, the worm gear 92 meshing with a worm wheel. 93. The worm gear 93 is fixedly sleeved on the outside of the rotating shaft 96. A gear 94 is fixedly sleeved on the outside of the rotating shaft 96. The gear 94 meshes with the rack 82. A first protective pipe 71 is provided on the outside of the discharge pipe 43 and fixedly connected to the top of the second auger conveyor 4. A second protective pipe 72 is detachably connected to the bottom of the first protective pipe 71. The mounting shell 91 is fixedly connected to the inner wall of the second protective pipe 72. The bottom side of the partition 44 is close to the side of the mounting shell 91. The partition 44 serves to isolate the feed and prevent the feed from affecting the drive components.
[0033] Specifically, the top of the plunger 81 is provided with a curved groove that matches the inner side of the second auger conveyor 4, so that the top surface of the plunger 81 is as close as possible to the inner side of the second auger conveyor 4, which facilitates the transport of feed by the second auger conveyor 4. The second auger conveyor 4 includes a housing, a rotating shaft, and auger blades welded to the rotating shaft. A motor with an output shaft fixedly connected to the rotating shaft is installed outside the housing for driving. First, the main power supply of the equipment is turned on, and the microcontroller 10 drives the valve assembly to move down, so that the second auger conveyor 4 is connected to the discharge pipe 43, that is, the plunger 81 no longer blocks the discharge port 45. After feed is put into the feed hopper 1, the first auger conveyor 2 transports the feed to the distribution hopper 3. The feed in the distribution hopper 3 is transported by the auger blades in the second auger conveyor 4. Feed in the auger conveyor 4 flows from the discharge pipe 43 to the feeding basin 99, and the vibration motor at the bottom of the feeding basin 99 starts to work, vibrating the feed in the feeding basin 99 to make it evenly distributed. When the feed submerges the pressure sensor 88 and the pressure sensor 88 detects that the pressure value is greater than the initial set value, the microcontroller 10 drives the valve assembly to move upward, thereby isolating the second auger conveyor 4 from the discharge pipe 43, realizing the quantitative feeding of the first feeding basin 99. As the second auger conveyor 4 continues to transfer feed, multiple feeding basins 99 are quantitatively fed. After the feeding task is completed, the residual feed in the first auger conveyor 2 and the second auger conveyor 4 is transported to the cleaning pipe 42 for discharge and collection through the continued operation of the first auger conveyor 2 and the second auger conveyor 4.
[0034] In this invention, in order to reduce the output power of the second auger conveyor 4, the length of the second auger conveyor 4 can be reduced. By arranging multiple sets of the second auger conveyor 4 in sequence, long-distance fixed-point and quantitative feeding can be achieved, thereby adapting to larger farms.
[0035] Furthermore, a microcontroller 10 and a servo motor 95 whose output end is fixedly connected to the worm gear 92 are installed on the outer surface of the second protective tube 72. The servo motor 95, the small vibration motor, and the microcontroller 10 are electrically connected to form a separate control unit, which is electrically connected to the first auger conveyor 2 and the second auger conveyor 4, and then connected to the main power line.
[0036] In this utility model, reference Figures 1 to 4Both the first auger conveyor 2 and the second auger conveyor 4 are driven by motors to rotate shafts, thereby enabling the auger blades to transfer feed. Within the drive assembly, a servo motor 95 rotates clockwise to drive a worm gear 92, which in turn drives a worm wheel 93 to rotate clockwise. This, in turn, causes the coaxially arranged gear 94 to rotate clockwise, which in turn drives the rack 82 to slide vertically downwards. This allows the plunger 81 to slide between the inner wall of the discharge pipe 43 and the partition plate 44, thus connecting the discharge port 45 to the second auger conveyor 4. The material enters the feeding basin 99 located below the discharge pipe 43. After the feed submerges the pressure sensor 88, when the pressure value it receives is greater than the initial set value, the electrical signal transmitted at the sensor is determined by the microcontroller 10. The microcontroller 10 controls the servo motor 95 to reverse, causing the servo motor 95 to drive the worm gear 92 to rotate. This causes the worm wheel 93 and gear 94 to rotate counterclockwise, causing the rack 82 to move upward. The plunger 81 blocks the discharge port 45, thereby preventing the second auger conveyor 4 from conveying feed into the feeding basin 99.
[0037] In this utility model, reference Figure 1 The first auger conveyor 2 is supported by a first support leg 21 below it, and the second auger conveyor 4 is supported by multiple equidistant second support legs 41 below it.
[0038] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. An ultra-long pipe feeding system comprising a second auger conveyor (4), characterized in that: The second auger conveyor (4) has multiple discharge pipes (43) arranged at equal intervals. The discharge pipes (43) have valve assemblies that are slidably installed in the vertical direction to isolate the second auger conveyor (4) from the discharge pipes (43). When the valve assembly connects the second auger conveyor (4) and the discharge pipes (43), a pressure sensor (88) is fixedly connected to the bottom of the valve assembly. When the pressure sensor (88) detects that the pressure value is greater than the initial set value, it feeds back an electrical signal to the microcontroller (10). The microcontroller (10) controls the valve assembly to isolate the second auger conveyor (4) from the discharge pipes (43).
2. An ultralong pipe feeding system according to claim 1, wherein It also includes a feeding hopper (1), which is connected to an inclined first auger conveyor (2). A distribution hopper (3) is provided below the discharge end of the first auger conveyor (2). The feeding end of the second auger conveyor (4) is connected to the discharge end of the distribution hopper (3). A cleaning pipe (42) is connected to the bottom of the end of the second auger conveyor (4) away from the distribution hopper (3).
3. An ultralong pipe feeding system according to claim 2, wherein The valve assembly includes a plunger (81), a partition (44) is fixedly connected inside the discharge pipe (43), and a discharge port (45) is provided on the partition (44). The plunger (81) is slidably disposed between the inner wall of the discharge pipe (43) and the partition (44).
4. An ultralong pipe feeding system according to claim 3, wherein The bottom of the plunger (81) is fixedly connected to a rack (82), which is driven by a drive assembly, and the bottom of the rack (82) is fixedly connected to a probe tube (83).
5. An ultralong pipe feeding system according to claim 4, wherein The drive assembly includes a mounting housing (91), in which a worm gear (92) is rotatably disposed, the worm gear (92) meshing with a worm wheel (93), the worm wheel (93) being fixedly sleeved on the outside of a rotating shaft (96), and a gear (94) being fixedly sleeved on the outside of the rotating shaft (96), the gear (94) meshing with a rack (82).
6. An ultralong pipe feeding system according to claim 5, wherein The discharge pipe (43) is provided with a first protective pipe (71) fixedly connected to the top of the second auger conveyor (4), and a second protective pipe (72) is detachably connected to the bottom of the first protective pipe (71). The mounting shell (91) is fixedly connected to the inner wall of the second protective pipe (72).
7. An ultralong pipe feeding system according to claim 5, wherein The bottom side of the partition (44) is close to the side of the mounting housing (91).
8. An ultralong pipe feeding system according to claim 6, wherein A microcontroller (10) and a servo motor (95) whose output end is fixedly connected to the worm gear (92) are installed on the outer surface of the second protective tube (72).
9. An ultralong pipe feeding system according to claim 6, wherein A feeding bowl (99) is arranged directly below the second protective tube (72), and a small vibration motor is arranged at the center of the bottom of the feeding bowl (99).