Chicken breeding water-break alarm water fountain

By introducing float balls and hydraulic sensors into the chicken drinking water device to monitor hydraulic changes, the water has not been drunk automatically drained, and the deflection drive parts and rubber scrapers are used to prevent water overflow, the problems of drinking water tank pollution and overflow are solved, and automated water resource management and chicken house hygiene guarantee are achieved.

CN120283693AInactive Publication Date: 2025-07-11SHANDONG FENGQIYUAN AGRI & ANIMAL HUSBANDRY TECH CO LTD
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Patent Information

Application Number
CN202510486714.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-18
Publication Date
2025-07-11
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the existing poultry drinking water device, the drinking tank is easily contaminated and the water easily overflows to the ground, causing the humidity in the chicken house to increase and breed bacteria.

Method used

A chicken breeding water break alarm drinking water device is designed to separate the water storage chamber and the wastewater chamber through partitions, and use float balls and hydraulic sensors to monitor hydraulic changes, automatically drain the water without drinking, and prevent water overflow through deflection drive parts and rubber scrapers, and combine with buzzer alarm to prevent water breakage.

Benefits of technology

Automatically emptying of undrinking water is achieved to prevent water from being contaminated and overflowing, reduce waste of water resources, reduce humidity in the chicken house, and prevent bacteria from growing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of poultry farming, and discloses a chicken farming water-break alarm waterer, which comprises water storage barrels and a water supply pipe, the bottom of the water supply pipe is connected with a plurality of water storage barrels along the length direction, the inner walls of the water storage barrels are fixedly provided with partition plates, and the side surfaces of the bottoms of the water storage barrels are fixedly provided with support frames in an array manner; a temporary storage box is arranged in the supporting frame, the top of the supporting frame is rotationally connected with a water drinking trough, and a water injection assembly is connected between the water drinking trough and the temporary storage box. The top of the drinking trough is lower than the top of the drainage trough, so that when the hollow rotating shaft injects water into the drinking trough, if the water in the drinking trough is too much, the water can overflow into the drainage trough; after the chickens drink water, the water trough is deflected to the state that the opening faces downwards, residual water in the water trough is poured into the drainage trough, and dirt such as feed in the water trough is poured into the drainage trough together, so that water and dirt are prevented from being accumulated in the water trough, and the situation that the next chicken drinks polluted water is avoided.
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Description

Technical Field

[0001] The invention relates to the technical field of poultry breeding, in particular to a water drinking device with water cut-off alarm for chicken breeding. Background Art

[0002] The Chinese patent with application date: 2020-12-16 and announcement number: CN112586401B discloses an outdoor drinking water device for poultry. The technical problem to be solved is to provide an outdoor drinking water device for poultry that is easy to move, adjustable in height and automatically adds water. The technical solution of the present invention is an outdoor drinking water device for poultry, comprising: a base; a water storage bucket, the water storage bucket is arranged in the middle of the base; a drinking trough, the drinking trough is arranged around the middle of the water storage bucket, and there are four drinking troughs; a bucket cover, the bucket cover is arranged on the top of the water storage bucket; a water outlet mechanism, the water outlet mechanism is arranged on the middle side of the inside of the water storage bucket; a water inlet mechanism, the water inlet mechanism is arranged on one side of the inside of the water storage bucket. The beneficial effect of the present invention is that under the action of the pedal device, when the poultry stands on the pedal, the water outlet pipe can flow water into the drinking trough, so that the poultry can drink water, while ensuring the water feeding efficiency, it also reduces the waste of part of the water resources.

[0003] In this technical solution, the poultry steps on the pedal to move the plunger upward, so that the water in the water storage pipe flows into the drinking trough; after the poultry steps on the pedal, if the chicken did not drink up the water in the drinking trough at a certain time, the water will be stored in the drinking trough, and the feed and other debris on the beak of the previous chicken will enter the drinking trough during the drinking process, so that the water in the drinking trough will be polluted. When the next chicken steps on the same pedal to drink water, the water in the water storage pipe will flow to the drinking trough again, so that the newly flowing water will also be polluted, and the chicken will easily get sick after drinking it; in addition, if the previous chicken did not drink up the water in the drinking trough, and the next chicken steps on the pedal again, when water enters the drinking trough again, the water in the drinking trough is likely to overflow, wetting the chicken house. When the humidity in the chicken house is too high, bacteria are likely to grow. Summary of the invention

[0004] 1. Technical issues to be solved

[0005] In view of the deficiencies in the prior art, the present invention provides a water dispenser with water outage alarm for chicken farming, which has the advantages of automatically emptying unfinished water, preventing water from being polluted, and preventing water from overflowing from the drinking trough to the ground. It solves the problem that contaminated water in the drinking trough cannot be automatically discharged and the water in the drinking trough is easy to overflow to the ground.

[0006] (II) Technical solution

[0007] To achieve the above object of automatically draining the undrunk water, preventing water pollution, and preventing water from overflowing from the drinking trough to the ground, the present invention provides the following technical solution: a chicken breeding water cut-off alarm drinking fountain, including a water storage cylinder and a water supply pipe. A plurality of water storage cylinders are connected to the bottom of the water supply pipe along its length direction. A partition is fixedly installed on the inner wall of the water storage cylinder, and the water storage cylinder is divided into an upper and lower distributed water storage cavity and a waste water cavity by the partition; a plurality of support frames are fixedly arranged on the side surface of the bottom of the water storage cylinder, a temporary storage box is arranged inside the support frame, the temporary storage box is communicated with the water storage cavity through a pipeline, a drinking trough is rotatably connected to the top of the support frame, and a water injection component is connected between the drinking trough and the temporary storage box; a stepping driving member is arranged on one side of the support frame away from the water storage cylinder, and a deflection driving member is arranged between the output end of the stepping driving member and the drinking trough.

[0008] Preferably, a vertical pipe is fixedly penetrated through the top of the water storage cylinder, the top end of the vertical pipe is connected to the bottom of the water supply pipe, two guide rods are fixedly installed on the top of the water storage cylinder, a sealing plug is slidably connected to the guide rods, and the sealing plug is used to seal the bottom end of the vertical pipe; a sleeve is fixedly installed at the bottom of the sealing plug, a push plate is slidably connected inside the sleeve, the inner diameter of the bottom end of the sleeve is smaller than the diameter of the push plate, a connecting column is fixedly installed at the bottom of the push plate, a floating ball is fixedly installed at the bottom of the connecting column, the floating ball is slidably connected to the guide rods, and a sewage discharge pipe is connected to the side surface of the bottom end of the water storage cylinder, and the sewage discharge pipe is communicated with the waste water cavity.

[0009] Preferably, a hydraulic sensor is arranged on the vertical pipe, a buzzer is fixedly installed on the water storage cylinder, and the hydraulic sensor and the buzzer are electrically connected to a controller.

[0010] Preferably, a water inlet pipe is connected to the temporary storage box, the water inlet pipe penetrates through the water storage cylinder and is fixedly installed at the bottom of the partition, a one-way valve I is arranged on the water inlet pipe, a piston rod I is slidably penetrated through one side of the temporary storage box away from the water storage cylinder, a piston plate I is fixedly installed at one end of the piston rod I located inside the temporary storage box, the piston plate I is slidably connected inside the temporary storage box, a fixed frame is fixedly installed at one end of the piston rod I located outside the temporary storage box, a buffer spring is fixedly installed on the inner wall of the fixed frame close to the piston rod I, and guide grooves are respectively penetrated through both sides of the fixed frame, and the guide grooves are arranged along the length direction of the fixed frame.

[0011] Preferably, the support frame includes a support bottom shell fixedly installed on the side surface of the bottom of the water storage cylinder, a drainage groove is fixedly installed on the top of the support bottom shell, arched plates are fixedly installed on the tops of both sides of the drainage groove, a fixing plate is fixedly installed on one side of the arched plate away from the drainage groove, a covering cover is fixedly installed on one side of the fixing plate away from the arched plate, a downcomer is connected to the bottom of the drainage groove, the downcomer penetrates through the support bottom shell and the water storage cylinder and is communicated with the waste water cavity; an accommodation interlayer is formed between the drainage groove and the fixing plate, and a protection cavity is surrounded by the fixing plate and the covering cover.

[0012] Preferably, the drinking trough is arranged inside the drainage trough, and the axis of the drinking trough coincides with the axis of the drainage trough. The top of the drinking trough is lower than the top of the drainage trough. Hollow rotating shafts are fixedly installed at the tops of the front and rear sides of the drinking trough. The hollow rotating shafts penetrate and are rotatably connected to the fixing plate and the covering cover. A rubber scraping blade is fixedly installed at the top of the left side of the drinking trough. The rubber scraping blade is attached to the inner wall of the drainage trough.

[0013] Preferably, the water injection assembly includes two water injection pipes connected to the temporary storage tank. One-way valve II is arranged on the water injection pipes. One end of the water injection pipe far away from the temporary storage tank is connected with an installation cover, and the water injection pipe is connected to the exact right side of the center of the installation cover. The installation cover is fixedly installed on the covering cover. A hollow disc is rotatably connected inside the installation cover. An arc-shaped groove is penetrated and opened at an eccentric position on the side of the hollow disc close to the water injection pipe. The hollow disc is communicated with the water injection pipe through the arc-shaped groove. The hollow rotating shaft is connected to the center of the hollow disc.

[0014] Preferably, the stepping driving member includes a hydraulic cylinder fixedly installed on the side of the support bottom shell far away from the water storage cylinder. A pedal is slidably connected to the top of the hydraulic cylinder. A return spring is fixedly installed between the bottom of the pedal and the bottom wall of the hydraulic cylinder. The hydraulic cylinder is filled with hydraulic oil. The hydraulic cylinder is connected with a transverse cylinder on the side close to the support bottom shell. The transverse cylinder is located inside the support bottom shell. A piston plate II is slidably connected inside the transverse cylinder. A piston rod II is fixedly installed on the side of the piston plate II far away from the hydraulic cylinder. A pressing plate is fixedly installed at one end of the piston rod II far away from the piston plate II. Convex platforms are fixedly installed at both ends of the pressing plate. The pressing plate is located inside the fixed frame. The convex platforms are slidably connected in the guiding grooves. The piston rod II penetrates and is slidably connected to the fixed frame.

[0015] Preferably, the deflection driving member includes a gear. The gear is fixedly installed on the outer wall of the hollow rotating shaft located inside the protection cavity. A rack plate is engaged with the bottom of the gear. A sliding seat is fixedly installed on the side of the rack plate close to the fixing plate. A sliding groove is opened on the fixing plate. The sliding seat is slidably connected to the sliding groove. A micro sprocket I and a micro sprocket II are rotatably connected to the fixing plate. The micro sprocket I and the micro sprocket II are distributed left and right. The micro sprocket I and the micro sprocket II are connected by a micro chain. An expansion link is fixedly installed at one end of the sliding seat close to the water storage cylinder. The bottom end of the expansion link is hinged to the micro chain. A steel wire pulling member is arranged between the micro sprocket I and the convex platform.

[0016] Preferably, the steel wire pulling member includes a runner disposed in the accommodation interlayer. The runner is coaxially fixed with the micro sprocket. A collar is fixedly installed on one side of the runner close to the drain groove. A disc spring is fixedly installed between the inner wall of the collar and the drain groove. A steel wire rope is wound around the runner. A coating tube is sleeved outside the steel wire rope. The coating tube is fixedly installed on the inner wall of the support bottom shell. A fixed pulley is rotatably connected to the bottom wall of the support bottom shell. The steel wire rope is attached to the right side of the fixed pulley. One end of the steel wire rope away from the runner is fixedly installed with a connecting plate, and the connecting plate is fixedly installed on the convex platform.

[0017] (III) Beneficial effects

[0018] Compared with the prior art, the present invention provides a water cut-off alarm waterer for chicken breeding, which has the following

[0019] Beneficial effects:

[0020] 1. For this water cut-off alarm waterer for chicken breeding, since the top of the drinking trough is lower than the top of the drain trough, when the hollow rotating shaft injects water into the drinking trough, if there is too much water in the drinking trough, the water can overflow into the drain trough; after the chicken drinks water, the drinking trough deflects to a state with the opening facing downwards, and the remaining water in the drinking trough is poured into the drain trough, and the feed and other dirt in the drinking trough are also poured into the drain trough together, thereby preventing water and dirt from accumulating in the drinking trough and avoiding the next chicken drinking polluted water;

[0021] 2. For this water cut-off alarm waterer for chicken breeding, when the chicken steps on the pedal, the reset spring is compressed, so that the pedal descends to the lowest point, and the hydraulic oil inside the pedal is pushed into the transverse cylinder, driving the piston plate II, the piston rod II, the pressing plate and the convex platform to move leftward, driving the connecting plate to move leftward synchronously, the connecting plate pulls the steel wire rope, driving the runner to rotate counterclockwise, and the disc spring accumulates elastic potential energy; thereby driving the micro sprocket I to rotate counterclockwise, making the micro chain move counterclockwise, and with the connection of the telescopic rod, driving the sliding seat and the rack plate to move leftward to the leftmost side first, and then move a certain distance to the right; with the meshing of the rack plate and the gear, driving the hollow rotating shaft to rotate clockwise first, and the rotation angle is greater than a certain degree, and then rotate counterclockwise by a certain angle, so that the top of the hollow rotating shaft is close to the horizontal state; and during this process, the rubber scraping blade sweeps across the inner wall of the drain trough, sweeping out the dirt accumulated in the drain trough.

[0022] 3. For this water cut-off alarm waterer for chicken breeding, the hydraulic sensor monitors the hydraulic pressure in the vertical pipe in real time. When the water cut-off occurs, the water pressure in the vertical pipe drops suddenly, and the hydraulic sensor sends a signal to the controller, and the controller issues an alarm through the buzzer. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 is a three-dimensional structural schematic diagram of a water cut-off alarm waterer for chicken breeding proposed by the present invention;

[0024] Figure 2 This is a schematic diagram of the three-dimensional cross-section structure of a water drinking fountain with water shortage alarm for chicken farming proposed by the present invention;

[0025] Figure 3 This is a schematic diagram of the three-dimensional structure of a water drinking fountain with water shortage alarm for chicken farming proposed by the present invention, with the water storage cylinder and water supply pipe removed;

[0026] Figure 4 This is a schematic diagram of the structure of a water drinking fountain with water shortage alarm for chicken farming proposed by the present invention after removing the water storage cylinder, water supply pipe and supporting bottom shell;

[0027] Figure 5 This is a schematic diagram of the three-dimensional structure of a water injection assembly and a water trough of a water-break alarm waterer for chicken farming proposed by the present invention;

[0028] Figure 6 A schematic diagram of the three-dimensional structure of a temporary storage box and a pedal drive member of a water dispenser with water cut-off alarm for chicken farming proposed by the present invention;

[0029] Figure 7 A schematic diagram of the three-dimensional structure of a pedal driving member of a chicken farming water-break alarm drinking fountain proposed by the present invention;

[0030] Figure 8 A schematic diagram of the three-dimensional structure of a deflection drive component of a water dispenser for water shortage alarm in chicken farming proposed by the present invention;

[0031] Figure 9 A schematic diagram of a three-dimensional explosion structure of a deflection drive component of a chicken farming water shortage alarm drinking fountain proposed by the present invention;

[0032] Figure 10 This is a schematic diagram of the three-dimensional structure of a drinking trough, a drainage trough and a steel wire pulling piece of a water shortage alarm drinking fountain for chicken farming proposed by the present invention.

[0033] In the figure: 100, water storage cylinder; 200, water supply pipe; 300, partition; 400, temporary storage box; 500, water injection assembly; 600, drinking trough; 700, support frame; 800, pedal drive member; 900, deflection drive member;

[0034] 101, vertical pipe; 102, guide rod; 103, sealing plug; 104, sleeve; 105, push piece; 106, connecting column; 107, float; 108, hydraulic sensor; 109, buzzer; 110, sewage pipe;

[0035] 401, water inlet pipe; 402, one-way valve; 403, piston rod; 404, piston plate; 405, fixing frame; 406, buffer spring; 407, guide groove;

[0036] 501, Water injection pipe; 502, Check valve two; 503, Installation cover; 504, Hollow disc; 505, Arc groove;

[0037] 601, Hollow rotating shaft; 602, Rubber scraping blade;

[0038] 701, Support bottom shell; 702, Drainage groove; 703, Arch plate; 704, Fixed plate; 705, Coating cover; 706, Downspout;

[0039] 801, Hydraulic cylinder; 802, Pedal; 803, Return spring; 804, Horizontal cylinder; 805, Piston plate two; 806, Piston rod two; 807, Pressure plate; 808, Boss;

[0040] 901, Gear; 902, Rack plate; 903, Slide seat; 904, Slide groove; 905, Miniature sprocket one; 906, Miniature sprocket two; 907, Miniature chain; 908, Telescopic rod; 909, Runner; 910, Collar; 911, Disc spring; 912, Steel wire rope; 913, Coating pipe; 914, Fixed pulley; 915, Connecting plate. Detailed implementation manners

[0041] In the description of the present application, it should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present application.

[0042] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0043] Please refer to Figures 1-4, A chicken farming water cut-off alarm waterer, comprising a water storage cylinder 100 and a water supply pipe 200. A plurality of water storage cylinders 100 are connected to the bottom of the water supply pipe 200 along its length direction. A partition 300 is fixedly installed on the inner wall of the water storage cylinder 100, and the water storage cylinder 100 is separated into a water storage cavity and a waste water cavity which are distributed up and down by the partition 300. Support frames 700 are fixedly arrayed on the side surface of the bottom of the water storage cylinder 100. A temporary storage box 400 is arranged inside the support frames 700, and the temporary storage box 400 is communicated with the water storage cavity through a pipeline. A drinking trough 600 is rotatably connected to the top of the support frames 700, and a water injection assembly 500 is connected between the drinking trough 600 and the temporary storage box 400. A stepping driving member 800 is arranged on one side of the support frames 700 away from the water storage cylinder 100, and a deflection driving member 900 is arranged between the output end of the stepping driving member 800 and the drinking trough 600.

[0044] Please refer to Figures 1-2 , A vertical pipe 101 is fixedly penetrated through the top of the water storage cylinder 100, and the top end of the vertical pipe 101 is connected to the bottom of the water supply pipe 200. A hydraulic sensor 108 is arranged on the vertical pipe 101, and a buzzer 109 is fixedly installed on the water storage cylinder 100. The hydraulic sensor 108 and the buzzer 109 are electrically connected to a controller. The hydraulic pressure inside the vertical pipe 101 is monitored in real time through the hydraulic sensor 108. When a water cut-off occurs, the water pressure inside the vertical pipe 101 drops suddenly, and the hydraulic sensor 108 sends a signal to the controller, and the controller issues an alarm through the buzzer 109.

[0045] Two guide rods 102 are fixedly installed on the top of the water storage cylinder 100. A sealing plug 103 is slidably connected to the guide rods 102, and the sealing plug 103 is used to seal the bottom end of the vertical pipe 101. A sleeve 104 is fixedly installed at the bottom of the sealing plug 103. A push plate 105 is slidably connected inside the sleeve 104. The inner diameter of the bottom end of the sleeve 104 is smaller than the diameter of the push plate 105. A connecting column 106 is fixedly installed at the bottom of the push plate 105, and a floating ball 107 is fixedly installed at the bottom of the connecting column 106. The floating ball 107 is slidably connected to the guide rods 102. The floating ball 107 rises and falls with the hydraulic pressure inside the water storage cavity. The water inside the water supply pipe 200 enters the inside of the water storage cavity through the vertical pipe 101. The floating ball 107 rises along the guide rods 102, and the push plate 105 fits against the top wall of the sleeve 104 and pushes the sealing plug 103 to move upward, so that the sealing plug 103 seals the bottom end of the vertical pipe 101, and the water inside the water supply pipe 200 stops being delivered to the inside of the water storage cavity;

[0046] When the water inside the water storage cavity enters the drinking trough 600 and the liquid level drops, the floating ball 107 moves downward. The push plate 105 first fits against the bottom wall of the sleeve 104, and then pulls the sleeve 104 and the sealing plug 103 downward, so that the sealing plug 103 is separated from the vertical pipe 101, and the water inside the water supply pipe 200 can enter the water storage cavity again. A sewage pipe 110 is connected to the side surface of the bottom end of the water storage cylinder 100. The sewage pipe 110 is communicated with the waste water cavity, and the sewage pipe 110 is used to discharge the waste water inside the waste water cavity.

[0047] Please refer to Figures 5-6 , a water inlet pipe 401 is connected to the temporary storage tank 400. The water inlet pipe 401 penetrates through the water storage cylinder 100 and is fixedly installed at the bottom of the partition plate 300. A one-way valve 402 is arranged on the water inlet pipe 401 to prevent the water inside the temporary storage tank 400 from flowing back into the water storage cavity. One end of the piston rod 403 away from the water storage cylinder 100 penetrates through and is slidably connected to the temporary storage tank 400. A piston plate 404 is fixedly installed at one end of the piston rod 403 located inside the temporary storage tank 400. The piston plate 404 is slidably connected inside the temporary storage tank 400. When the piston plate 404 slides to the right, the water inside the water storage cavity passes through the water inlet pipe 401 and enters the inside of the temporary storage tank 400. When the piston plate 404 slides to the left, the water inside the temporary storage tank 400 is discharged through the water injection assembly 500.

[0048] A fixing frame 405 is fixedly installed at one end of the piston rod 403 located outside the temporary storage tank 400. A buffer spring 406 is fixedly installed on the inner wall of the fixing frame 405 close to one side of the piston rod 403. Guide grooves 407 are respectively formed through both sides of the fixing frame 405. The guide grooves 407 are arranged along the length direction of the fixing frame 405.

[0049] Please refer to Figures 3-4 , the support frame 700 includes a support bottom shell 701 fixedly installed on the side of the bottom of the water storage cylinder 100. A drainage groove 702 is fixedly installed on the top of the support bottom shell 701. The drainage groove 702 is in a semi-cylindrical shape. Arch-shaped plates 703 are fixedly installed on both top sides of the drainage groove 702. A fixing plate 704 is fixedly installed on one side of the arch-shaped plate 703 away from the drainage groove 702. An accommodation interlayer is formed between the drainage groove 702 and the fixing plate 704. A covering cover 705 is fixedly installed on one side of the fixing plate 704 away from the arch-shaped plate 703. A protection cavity is surrounded by the fixing plate 704 and the covering cover 705. A downspout 706 is connected to the bottom of the drainage groove 702. The downspout 706 penetrates through the support bottom shell 701 and the water storage cylinder 100 and is communicated with the waste water cavity.

[0050] The drinking trough 600 is arranged inside the drainage groove 702, and the axis of the drinking trough 600 coincides with the axis of the drainage groove 702. The top of the drinking trough 600 is lower than the top of the drainage groove 702. Thus, when adding water to the inside of the drinking trough 600, the water exceeding the top of the drinking trough 600 overflows into the inside of the drainage groove 702, and the water inside the drainage groove 702 can be discharged through the downspout 706.

[0051] Please refer to Figures 4-5, hollow rotating shafts 601 are fixedly installed at the tops of the front and rear sides of the drinking trough 600. The hollow rotating shafts 601 penetrate and are rotatably connected to the fixing plate 704 and the covering cover 705. After the chickens finish drinking water, the drinking trough 600 rotates half a turn, making the opening of the drinking trough 600 face downward, so that the water inside the drinking trough 600 is poured into the drain trough 702, preventing water from accumulating in the drinking trough 600. A rubber scraping blade 602 is fixedly installed at the top left of the drinking trough 600, and the rubber scraping blade 602 is attached to the inner wall of the drain trough 702. When the drinking trough 600 rotates, the rubber scraping blade 602 sweeps on the inner wall of the drain trough 702. If feed and other dirt fall into the drinking trough 600 when the chickens drink water, during the process of the drinking trough 600 pouring water, the feed and other dirt fall into the drain trough 702 together. Then, through the sweeping action of the rubber scraping blade 602, the feed and other dirt in the drain trough 702 are swept out, preventing the drain pipe 706 from being blocked. In addition, when the drinking trough 600 rotates from the opening facing upward to the opening facing downward, it rotates counterclockwise. This can prevent the drinking trough 600 from rotating clockwise, causing the situation where the drinking trough 600 and the drain trough 702 clamp the chicken's head.

[0052] Please refer to Figures 4-5 , the water injection assembly 500 includes two water injection pipes 501 connected to the temporary storage tank 400. A check valve II 502 is provided on the water injection pipe 501. One end of the water injection pipe 501 far from the temporary storage tank 400 is connected to an installation cover 503, and the water injection pipe 501 is connected to the center right side of the installation cover 503. The installation cover 503 is fixedly installed on the covering cover 705. A hollow disc 504 is rotatably connected inside the installation cover 503. An arc-shaped groove 505 is penetrated and opened at an eccentric position on the side of the hollow disc 504 close to the water injection pipe 501. The hollow disc 504 is communicated with the water injection pipe 501 through the arc-shaped groove 505. The hollow rotating shaft 601 is connected to the center of the hollow disc 504. When the hollow rotating shaft 601 rotates to the opening facing upward and the hollow rotating shaft 601 is close to horizontal, the arc-shaped groove 505 is opposite to the water injection pipe 501. Thus, the water inside the temporary storage tank 400 can enter the inside of the hollow disc 504 through the water injection pipe 501, the check valve II 502, and the arc-shaped groove 505. Then, the water inside the hollow disc 504 enters the inside of the drinking trough 600 through the hollow rotating shaft 601.

[0053] Please refer to Figures 6-7, the stepping drive member 800 includes a hydraulic cylinder 801 fixedly installed on the side of the support bottom shell 701 away from the water storage cylinder 100. A pedal 802 is slidably connected to the top of the hydraulic cylinder 801. A return spring 803 is fixedly installed between the bottom of the pedal 802 and the bottom wall of the hydraulic cylinder 801. The hydraulic cylinder 801 is filled with hydraulic oil. Due to the elasticity of the return spring 803, the pedal 802 has a tendency to move upward. Since the weight of the chicken is much greater than the elasticity of the return spring 803, when the chicken steps on the pedal 802, the pedal 802 can be smoothly lowered to the lowest point. A transverse cylinder 804 is connected to the side of the hydraulic cylinder 801 close to the support bottom shell 701. The transverse cylinder 804 is located inside the support bottom shell 701. A piston plate two 805 is slidably connected inside the transverse cylinder 804. When the chicken steps on the top of the pedal 802, the pedal 802 moves downward, the return spring 803 is compressed and contracted, and the hydraulic oil inside the hydraulic cylinder 801 is pushed into the transverse cylinder 804 to drive the piston plate two 805 to move leftward.

[0054] A piston rod two 806 is fixedly installed on the side of the piston plate two 805 away from the hydraulic cylinder 801. A pressing plate 807 is fixedly installed at one end of the piston rod two 806 away from the piston plate two 805. Convex platforms 808 are fixedly installed at both ends of the pressing plate 807. The pressing plate 807 is located inside the fixed frame 405. The convex platforms 808 are slidably connected in the guide grooves 407. The piston rod two 806 is slidably connected through the fixed frame 405. When the piston plate two 805 moves leftward, through the connection of the piston rod two 806, the pressing plate 807 is driven to slide inside the fixed frame 405, and the pressing plate 807 simultaneously squeezes the buffer spring 406.

[0055] Please refer to Figures 7-10 , the deflection drive member 900 includes a gear 901. The gear 901 is fixedly installed on the outer wall of the hollow rotating shaft 601 located inside the protection cavity. A rack plate 902 is engaged with the bottom of the gear 901. A sliding seat 903 is fixedly installed on the side of the rack plate 902 close to the fixed plate 704. A sliding groove 904 is formed on the fixed plate 704. The sliding seat 903 is slidably connected to the sliding groove 904. A micro sprocket one 905 and a micro sprocket two 906 are rotatably connected to the fixed plate 704. The micro sprocket one 905 and the micro sprocket two 906 are distributed left and right. The micro sprocket one 905 and the micro sprocket two 906 are connected by a micro chain 907. A telescopic rod 908 is fixedly installed at one end of the sliding seat 903 close to the water storage cylinder 100. The bottom end of the telescopic rod 908 is hinged to the micro chain 907. A wire pulling member is provided between the micro sprocket one 905 and the convex platform 808.

[0056] When a chicken steps on the pedal 802, the pressing plate 807 and the boss 808 move to the left, and drive the first micro sprocket 905 to rotate counterclockwise through the wire pulling member, thereby driving the micro chain 907 to move counterclockwise, driving the telescopic rod 908 to first move from right to left to the leftmost side of the micro chain 907, and then the telescopic rod 908 moves a short distance to the right. Thus, during this process, the sliding seat 903 and the rack plate 902 first move to the left and then move a short distance to the right; the gear 901 and the hollow rotating shaft 601 first rotate clockwise, so that the water trough 600 deflects from the state with the opening facing to the state with the opening facing upward, and the rotation angle of the water trough 600 is greater than 180 degrees, so that the rubber wiper 602 sweeps across the entire inner wall of the drainage trough 702 and separates from the left edge of the drainage trough 702. Then the water trough 600 rotates counterclockwise by a certain angle, so that the top of the water trough 600 deflects to a state close to the horizontal state.

[0057] Please refer to Figures 7-10 As shown in, the wire pulling member includes a runner 909 arranged in the accommodation interlayer. The runner 909 is coaxially fixed with the first micro sprocket 905. A collar 910 is fixedly installed on one side of the runner 909 close to the drainage trough 702. A disc spring 911 is fixedly installed between the inner wall of the collar 910 and the drainage trough 702. A steel wire rope 912 is wound around the runner 909. A coating tube 913 is sleeved outside the steel wire rope 912. The coating tube 913 is fixedly installed on the inner wall of the support bottom shell 701. A fixed pulley 914 is rotatably connected to the bottom wall of the support bottom shell 701. The steel wire rope 912 is attached to the right side of the fixed pulley 914. One end of the steel wire rope 912 far from the runner 909 is fixedly installed with a connecting plate 915. The connecting plate 915 is fixedly installed on the boss 808. When the pressing plate 807 and the boss 808 move to the left, the connecting plate 915 is driven to move to the left synchronously. The connecting plate 915 pulls the steel wire rope 912, driving the runner 909 to rotate counterclockwise, and the disc spring 911 accumulates elastic potential energy. Thus, the runner 909 drives the first micro sprocket 905 to rotate counterclockwise together.

[0058] During use, when a chicken steps on the pedal 802, the return spring 803 is squeezed, so that the pedal 802 descends to the lowest point, pushing the hydraulic oil inside the pedal 802 into the transverse cylinder 804, driving the second piston plate 805, the second piston rod 806, the pressing plate 807 and the boss 808 to move to the left. The pressing plate 807 squeezes the buffer spring 406, making the fixed frame 405 tend to move to the left; since the hollow rotating shaft 601 initially faces the opening and the arc-shaped groove 505 is not communicated with the water injection pipe 501, the water inside the temporary storage box 400 cannot be discharged, so that it is difficult for the fixed frame 405, the first piston rod 403 and the first piston plate 404 to move to the left;

[0059] When the pressing plate 807 and the boss 808 move leftward, they drive the connecting plate 915 to move leftward synchronously. The connecting plate 915 pulls the steel wire rope 912, driving the rotating wheel 909 to rotate counterclockwise, and the disc spring 911 accumulates elastic potential energy; thus driving the first micro sprocket 905 to rotate counterclockwise, making the micro chain 907 move counterclockwise. With the connection of the telescopic rod 908, it drives the sliding seat 903 and the rack plate 902 to move leftward to the leftmost side first, and then move rightward for a certain distance; with the meshing of the rack plate 902 and the gear 901, it drives the hollow rotating shaft 601 to rotate clockwise first, and the rotation angle is greater than 180 degrees, and then rotate counterclockwise by a certain angle, making the top of the hollow rotating shaft 601 close to the horizontal state;

[0060] When the opening of the hollow rotating shaft 601 faces upward and the arc-shaped groove 505 communicates with the water injection pipe 501, the water inside the temporary storage tank 400 can pass through the water injection pipe 501 and the check valve II 502 and be discharged. Thus, under the elastic action of the buffer spring 406, it drives the fixed frame 405, the first piston rod 403 and the first piston plate 404 to move leftward. The first piston plate 404 squeezes the water inside the temporary storage tank 400, making the water inside the temporary storage tank 400 enter the inside of the hollow disc 504 through the water injection pipe 501, the check valve II 502 and the arc-shaped groove 505, and the water then flows into the drinking trough 600 through the hollow rotating shaft 601;

[0061] When there is too much water in the drinking trough 600, it can overflow from the top of the drinking trough 600 into the drainage trough 702; the waste water then flows into the waste water chamber through the down pipe 706 and is finally discharged through the sewage pipe 110.

[0062] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirits of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A water cut-off alarm drinking fountain for chicken breeding, comprising a water storage cylinder (100) and a water supply pipe (200). The bottom of the water supply pipe (200) is connected with a plurality of water storage cylinders (100) along its length direction, and it is characterized in that: A partition plate (300) is fixedly installed on the inner wall of the water storage cylinder (100), and the water storage cylinder (100) is divided into a water storage chamber and a waste water chamber which are distributed up and down by the partition plate (300); Support frames (700) are fixedly arrayed on the side surface of the bottom of the water storage cylinder (100). A temporary storage box (400) is arranged inside the support frames (700). The temporary storage box (400) is communicated with the water storage chamber through a pipeline. A drinking trough (600) is rotatably connected to the top of the support frames (700). An injection assembly (500) is connected between the drinking trough (600) and the temporary storage box (400); A stepping driving member (800) is arranged on one side of the support frames (700) away from the water storage cylinder (100), and a deflection driving member (900) is arranged between the output end of the stepping driving member (800) and the drinking trough (600).

2. The chicken breeding water cut-off alarm drinking fountain according to claim 1, characterized in that: A vertical pipe (101) is fixedly penetrated through the top of the water storage cylinder (100). The top end of the vertical pipe (101) is connected to the bottom of a water supply pipe (200). Two guide rods (102) are fixedly installed on the top of the water storage cylinder (100). A sealing plug (103) is slidably connected to the guide rods (102), and the sealing plug (103) is used for sealing the bottom end of the vertical pipe (101); A sleeve (104) is fixedly installed at the bottom of the sealing plug (103). A push plate (105) is slidably connected inside the sleeve (104). The inner diameter of the bottom end of the sleeve (104) is smaller than the diameter of the push plate (105). A connecting column (106) is fixedly installed at the bottom of the push plate (105). A floating ball (107) is fixedly installed at the bottom of the connecting column (106). The floating ball (107) is slidably connected to the guide rods (102). A sewage discharge pipe (110) is connected to the side surface of the bottom end of the water storage cylinder (100), and the sewage discharge pipe (110) is communicated with the waste water chamber.

3. The chicken breeding water cut-off alarm drinking fountain according to claim 2, characterized in that: A hydraulic sensor (108) is arranged on the vertical pipe (101). A buzzer (109) is fixedly installed on the water storage cylinder (100). The hydraulic sensor (108) and the buzzer (109) are electrically connected to a controller.

4. The chicken breeding water cut-off alarm drinking fountain according to claim 1, characterized in that: An inlet pipe (401) is connected to the temporary storage box (400). The inlet pipe (401) penetrates through the water storage cylinder (100) and is fixedly installed at the bottom of the partition plate (300). A check valve I (402) is arranged on the inlet pipe (401). A piston rod I (403) is slidably connected through one side of the temporary storage box (400) away from the water storage cylinder (100). A piston plate I (404) is fixedly installed at one end of the piston rod I (403) located inside the temporary storage box (400). The piston plate I (404) is slidably connected inside the temporary storage box (400). A fixed frame (405) is fixedly installed at one end of the piston rod I (403) located outside the temporary storage box (400). A buffer spring (406) is fixedly installed on the inner wall of one side of the fixed frame (405) close to the piston rod I (403). Guide grooves (407) are respectively penetrated through both sides of the fixed frame (405), and the guide grooves (407) are arranged along the length direction of the fixed frame (405).

5. The chicken breeding water cut-off alarm drinking fountain according to claim 1, characterized in that: The support frame (700) includes a support bottom shell (701) fixedly installed on the bottom side of the water storage cylinder (100). A drain trough (702) is fixedly installed on the top of the support bottom shell (701). Arch-shaped plates (703) are fixedly installed on the tops of both sides of the drain trough (702). A fixing plate (704) is fixedly installed on the side of the arch-shaped plate (703) away from the drain trough (702). A covering cover (705) is fixedly installed on the side of the fixing plate (704) away from the arch-shaped plate (703). A downspout (706) is connected to the bottom of the drain trough (702). The downspout (706) penetrates through the support bottom shell (701) and the water storage cylinder (100) and communicates with the waste water chamber; An accommodation interlayer is formed between the drain trough (702) and the fixing plate (704), and a protection chamber is surrounded by the fixing plate (704) and the covering cover (705).

6. The chicken breeding water cut-off alarm waterer according to claim 5, characterized in that: The drinking trough (600) is arranged inside the drain trough (702), and the axis of the drinking trough (600) coincides with the axis of the drain trough (702). The top of the drinking trough (600) is lower than the top of the drain trough (702). Hollow rotating shafts (601) are fixedly installed on the tops of the front and rear sides of the drinking trough (600). The hollow rotating shafts (601) penetrate and are rotatably connected to the fixing plate (704) and the covering cover (705). A rubber scraping blade (602) is fixedly installed on the top of the left side of the drinking trough (600). The rubber scraping blade (602) is attached to the inner wall of the drain trough (702).

7. The chicken breeding water cut-off alarm drinking fountain according to claim 1, characterized in that: The water injection assembly (500) includes two water injection pipes (501) connected to the temporary storage tank (400). A check valve II (502) is arranged on the water injection pipe (501). One end of the water injection pipe (501) away from the temporary storage tank (400) is connected to an installation cover (503), and the water injection pipe (501) is connected to the center right side of the installation cover (503). The installation cover (503) is fixedly installed on the covering cover (705). A hollow disc (504) is rotatably connected inside the installation cover (503). An arc-shaped groove (505) is penetrated and opened at an eccentric position on the side of the hollow disc (504) close to the water injection pipe (501). The hollow disc (504) communicates with the water injection pipe (501) through the arc-shaped groove (505). The hollow rotating shaft (601) is connected to the center of the hollow disc (504).

8. The chicken breeding water cut-off alarm waterer according to claim 1, characterized in that: The stepping driving member (800) includes a hydraulic cylinder (801) fixedly installed on the side of the support bottom shell (701) away from the water storage cylinder (100). A pedal (802) is slidably connected to the top of the hydraulic cylinder (801). A return spring (803) is fixedly installed between the bottom of the pedal (802) and the bottom wall of the hydraulic cylinder (801). The hydraulic cylinder (801) is filled with hydraulic oil; On one side of the hydraulic cylinder (801) close to the support bottom shell (701), a transverse cylinder (804) is connected. The transverse cylinder (804) is located inside the support bottom shell (701). A second piston plate (805) is slidably connected inside the transverse cylinder (804). On the side of the second piston plate (805) away from the hydraulic cylinder (801), a second piston rod (806) is fixedly installed. At one end of the second piston rod (806) away from the second piston plate (805), a pressing plate (807) is fixedly installed. At both ends of the pressing plate (807), bosses (808) are fixedly installed. The pressing plate (807) is located inside the fixed frame (405). The bosses (808) are slidably connected in the guide grooves (407). The second piston rod (806) is slidably connected through the fixed frame (405).

9. The chicken breeding water cut-off alarm drinking fountain according to claim 1, wherein: The deflection driving member (900) includes a gear (901). The gear (901) is fixedly installed on the outer wall of the hollow rotating shaft (601) located inside the protection cavity. A rack plate (902) is engaged with the bottom of the gear (901). On one side of the rack plate (902) close to the fixed plate (704), a sliding seat (903) is fixedly installed. A sliding groove (904) is formed on the fixed plate (704). The sliding seat (903) is slidably connected on the sliding groove (904). A first micro sprocket (905) and a second micro sprocket (906) are rotatably connected to the fixed plate (704). The first micro sprocket (905) and the second micro sprocket (906) are distributed left and right. The first micro sprocket (905) and the second micro sprocket (906) are connected by a micro chain (907). At one end of the sliding seat (903) close to the water storage cylinder (100), a telescopic rod (908) is fixedly installed. The bottom end of the telescopic rod (908) is hinged to the micro chain (907). A wire pulling member is arranged between the first micro sprocket (905) and the boss (808).

10. The chicken breeding water cut-off alarm drinking fountain according to claim 1, characterized in that: The wire pulling member includes a rotating wheel (909) arranged in the accommodation interlayer. The rotating wheel (909) is coaxially fixed with the first micro sprocket (905). On one side of the rotating wheel (909) close to the drain groove (702), a collar (910) is fixedly installed. A disc spring (911) is fixedly installed between the inner wall of the collar (910) and the drain groove (702). A steel wire rope (912) is wound around the rotating wheel (909). A coating tube (913) is sleeved outside the steel wire rope (912). The coating tube (913) is fixedly installed on the inner wall of the support bottom shell (701). A fixed pulley (914) is rotatably connected to the bottom wall of the support bottom shell (701). The steel wire rope (912) is attached to the right side of the fixed pulley (914). At one end of the steel wire rope (912) away from the rotating wheel (909), a connecting plate (915) is fixedly installed. The connecting plate (915) is fixedly installed on the boss (808).

Citation Information

Patent Citations

  • An outdoor drinking water device for poultry

    CN112586401B