Heatable constant-temperature drinking equipment for livestock
By introducing protective and separation mechanisms into the constant temperature drinking water equipment, the problems of debris contamination and insufficient protective design have been solved, achieving the effects of clean water quality and livestock drinking water at any time, thus improving the practicality and convenience of the equipment.
Patent Information
- Application Number
- CN202522000933.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-17
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2035-09-17
AI Technical Summary
Existing constant temperature drinking troughs have problems with debris contamination and insufficient protective design during use, resulting in water pollution and inconvenience for livestock drinking water.
A heated and constant-temperature drinking water device for livestock, including a protective mechanism and a separation mechanism, was designed. The drinking water inlet is sealed by a floating ball, and the separation and transportation of debris are achieved by using a spiral plate and a liquid pump system. Combined with a heating component, the water temperature is kept constant.
It effectively prevents mosquitoes from entering, removes debris in time, ensures clean water quality, meets the drinking water needs of livestock at any time, and improves the practicality and convenience of the equipment.
Smart Images

Figure CN223472826U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of livestock breeding equipment technology, specifically a heated and constant-temperature drinking water device for livestock. Background Technology
[0002] In livestock farming, drinking cold water during cold seasons can cause digestive stress and increased energy consumption in livestock, leading to reduced crop yields, diarrhea, and even various diseases. To address this issue, farms commonly use heated water troughs to provide water at a suitable temperature. However, existing heated water troughs still have significant drawbacks: livestock often bring grass clippings, feed residue, and other debris into the trough while drinking. If these fragments are not removed promptly, they accumulate in the trough, polluting the water and providing a breeding ground for bacteria. Furthermore, most of these devices lack effective protective designs; during non-drinking periods, the open trough openings allow insects, dust, and other contaminants to fall into the water, further polluting the water source and posing a potential threat to livestock health.
[0003] The existing authorization announcement number is CN220402722U, which discloses a constant-temperature drinking water device for cattle, which improves upon the issues of constant water temperature and partial protection. This device, through a built-in insulation chamber, heating components, and a temperature sensor, achieves automatic heating and constant temperature control of the water in the drinking trough, effectively ensuring a suitable drinking water temperature. Simultaneously, the device is equipped with a filter screen to intercept grass and feed debris dropped by livestock while drinking, reducing direct water contamination; and a water trough protection component is provided to cover the trough opening during non-drinking periods to prevent flies and mosquitoes from entering. However, this device still has shortcomings in practical application: Firstly, although the filter screen can intercept grass and feed debris, the intercepted debris remains inside the drinking trough for a long time, failing to be separated or discharged immediately. The continuous soaking and warm environment actually accelerates the decay of the debris and the reproduction of bacteria, forming a secondary source of pollution. Secondly, its protective components usually require manual operation to open or close, which not only increases the burden on staff, but more importantly, restricts the livestock's freedom to drink water at any time, fails to meet the livestock's natural habit of drinking water on demand, and reduces the practicality and convenience of the equipment.
[0004] Based on this, a heated and constant-temperature drinking water device for livestock is now provided, which can eliminate the drawbacks of existing devices. Utility Model Content
[0005] The purpose of this invention is to provide a heated and constant-temperature drinking water device for livestock, so as to solve the problems in the prior art of inconvenience in cleaning debris inside the drinking trough and protecting the drinking outlet.
[0006] To achieve the above objectives, this utility model provides the following technical solution:
[0007] A heated and constant-temperature drinking water device for livestock includes a drinking trough body with a trough cover installed at the upper end. A first partition is fixedly installed inside the drinking trough body, dividing the interior of the drinking trough body into several compartments. A drinking spout is provided at the upper end of the trough cover corresponding to the position of each compartment. Each compartment is equipped with a protective mechanism for sealing and protecting the drinking spout. A secondary box is fixedly installed on one side of the drinking trough body, and a second partition is fixedly installed inside the secondary box, dividing the interior of the secondary box into a filtration chamber, a liquid storage chamber, and an installation chamber. The liquid storage chamber is equipped with a heating component for constant-temperature heating of the liquid. A second liquid pump is installed inside the liquid storage chamber, with its input end connected to the interior of the liquid storage chamber and its other end connected to a diverter pipe. The diverter pipe is fixedly installed on one side of the first partition and is connected to each compartment. The filtration chamber is equipped with a separation mechanism for separating debris from the compartments.
[0008] Based on the above technical solutions, this utility model also provides the following optional technical solutions:
[0009] In one alternative embodiment: the heating assembly includes a second partition, a plurality of second partitions are fixedly disposed inside the liquid storage chamber, the plurality of second partitions are arranged alternately, the plurality of second partitions are combined to form a flow channel, a heating element is disposed between two second partitions, a temperature sensor is fixedly disposed inside the liquid storage chamber at a position corresponding to the position below the second liquid pump, the heating element and the temperature sensor are electrically connected to a control element, and the control element is fixedly disposed inside the mounting chamber.
[0010] In one alternative: the protective mechanism includes a first floating ball, and a limiting cylinder is fixedly provided at the bottom end of the trough cover and at the position corresponding to the drinking water outlet, and the first floating ball is provided inside the limiting cylinder.
[0011] In one alternative embodiment: the separation mechanism includes a first conveying pipe and a filter ring. The first conveying pipe is fixedly disposed at the bottom of the interior of the drinking tank body. Connecting pipes are provided at corresponding positions on the first conveying pipe and the partition. One end of each connecting pipe communicates with the interior of the partition. A first mounting shaft is fitted inside the first conveying pipe, and a first spiral plate is fixedly mounted on the first mounting shaft. One end of the first conveying pipe extends into the interior of the filter chamber, and one end of the first mounting shaft extends into the interior of the mounting chamber. One end of the first mounting shaft is fixedly connected to the output end of a first motor. The first motor is fixedly disposed inside the mounting chamber and electrically connected to a control component. One end of the first conveying pipe is provided with… The filter ring has a slag outlet and a filter ring fitted thereon. Both ends of the filter ring are rotatably supported by support frames, which are fixedly mounted at the bottom of the filter chamber. Several first partitions are arranged in an array inside the filter ring. One end of each first partition is tightly attached to the outside of a first sealing plate. The first sealing plate is fixedly mounted on a first conveying pipe. An internal toothed ring is fixedly mounted on one end of the filter ring. A gear is meshed on the inner side of the internal toothed ring. The gear is fixedly mounted on a first mounting shaft. A first liquid pump is installed inside the liquid storage chamber. The input end of the first liquid pump is connected to the inside of the filter chamber, and the output end of the first liquid pump is connected to the inside of the liquid storage chamber. The filter ring has a conveying component inside for conveying debris to the outside of the auxiliary box.
[0012] In one alternative embodiment: the conveying assembly includes a hopper, which is located at the highest point inside the first sealing plate. The discharge end of the hopper is connected to a second conveying pipe, which is fixedly installed in an installation hole inside the installation chamber. One end of the second conveying pipe is connected to a slag discharge pipe. A second mounting shaft is rotatably installed inside the second conveying pipe. A second spiral plate is fixedly installed on the second mounting shaft. The second mounting shaft is fixedly connected to the output end of a second motor. The second motor is fixedly installed at one end of the second conveying pipe and is electrically connected to a control component. A sealing cover is installed on the upper end of the auxiliary box.
[0013] In one alternative: a second sealing plate is slidably disposed inside the first conveying pipe, the second sealing plate is slidably disposed on the first mounting shaft, and a return spring is provided between one side of the second sealing plate and one end inside the first conveying pipe.
[0014] In one alternative: the bottom of each partition groove is inclined.
[0015] In one alternative: a first fixing tube is fixedly installed at the upper end of the inner cavity of the first fixing tube, a compression sensor is fixedly installed at the upper end of the inner cavity of the first fixing tube, a first limiting groove is symmetrically provided on the first fixing tube, a first sliding frame is slidably provided in the first limiting groove, the two ends of the first sliding frame are fixedly connected to the inner side of the floating ring, a top rod is fixedly provided at the upper end of the first sliding frame, and the compression sensor is electrically connected to the control component.
[0016] In one alternative: the liquid storage chamber is connected to a liquid filling pipe, one end of which is connected to a second fixed pipe, the second fixed pipe is symmetrically provided with a second limiting groove, a second sliding frame is slidably provided in the second limiting groove, a second float is fixedly provided at both ends of the second sliding frame, and a plug is fixedly provided at the middle of the upper end of the second sliding frame.
[0017] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0018] This invention, through the inclusion of a protective mechanism, allows the first floating ball to seal the drinking inlet under buoyancy when livestock are not drinking, thus preventing insects from entering the trough while ensuring livestock can drink at all times. The filtration mechanism facilitates the separation of debris inside the trough and transports it to the outside of the auxiliary chamber. Furthermore, the first conveying pipe and the first spiral plate can draw liquid from inside the trough into the filtration chamber, and the first liquid pump draws the liquid from the filtration chamber into the storage chamber, allowing the liquid inside the trough to circulate. A heating component inside the storage chamber helps maintain a constant temperature for the liquid inside the trough, thereby increasing the practicality of the heated, constant-temperature drinking water device for livestock. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the structure of this utility model.
[0020] Figure 2 This is a schematic diagram of the internal structure of the main body and auxiliary tank of the water trough of this utility model.
[0021] Figure 3 This is a schematic diagram of the installation of the diversion pipe and the first delivery pipe of this utility model.
[0022] Figure 4 This is a schematic diagram of the first partition structure of this utility model.
[0023] Figure 5 This is a schematic diagram of the installation of the extrusion sensor of this utility model.
[0024] Figure 6 This is a schematic diagram of the installation of the second sealing plate of this utility model.
[0025] Figure 7 This is a schematic diagram of the first sealing plate structure of this utility model.
[0026] Figure reference numerals: 11 Water tank body, 12 Tank cover, 13 Drinking outlet, 14 First float ball, 15 Limiting cylinder, 16 First partition, 17 Diverter pipe, 18 First delivery pipe, 19 First spiral plate, 20 Auxiliary box, 21 Sealing cover, 22 Second partition, 23 Filter chamber, 24 Liquid storage chamber, 25 Installation chamber, 26 First motor, 27 Filter ring, 28 Partition, 29 First sealing plate, 30 Internal gear ring, 31 Gear, 32 Second sealing plate, 33 Return spring, 34 Second delivery pipe, 35 Second spiral plate, 36 Second motor, 37 First liquid pump, 38 Partition, 39 Heating component, 40 Second liquid pump, 41 Squeeze sensor, 42 Float ring, 43 Control component, 44 Liquid filling pipe, 45 Plug, 46 Second float ball, 47 Temperature sensor. Detailed Implementation
[0027] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments.
[0028] In one embodiment, such as Figures 1-7 As shown, a heated and constant-temperature drinking water device for livestock includes a drinking trough body 11. A trough cover 12 is installed on the upper end of the drinking trough body 11. A first partition 16 is fixedly installed inside the drinking trough body 11, dividing the interior of the drinking trough body 11 into several compartments. A drinking port 13 is provided at the upper end of the trough cover 12 corresponding to the position of each compartment. A protective mechanism for sealing and protecting the drinking port 13 is provided in each compartment. A secondary box 20 is fixedly installed on one side of the drinking trough body 11. A second partition 22 is fixedly installed inside the secondary box 20, dividing the interior of the secondary box 20 into a filter chamber 23 and a liquid storage chamber. 24 and installation chamber 25, the liquid storage chamber 24 is equipped with a heating component for constant temperature heating of liquid, the liquid storage chamber 24 is equipped with a second liquid pump 40, the input end of the second liquid pump 40 is connected to the inside of the liquid storage chamber 24, the other end of the second liquid pump 40 is connected to a diversion pipe 17, the diversion pipe 17 is fixed on one side of the first partition 16, the diversion pipe 17 is connected to the partition groove, the filter chamber 23 is equipped with a separation mechanism for separating debris inside the partition groove, the protective mechanism facilitates the sealing of the drinking port 13 to prevent mosquitoes from entering the partition groove, and the separation mechanism facilitates the separation of debris inside the partition groove;
[0029] The heating assembly includes a second partition 38, and several second partitions 38 are fixedly installed inside the liquid storage chamber 24. The several second partitions 38 are arranged alternately and combined to form a flow channel. A heating element 39 is provided between two second partitions 38. A temperature sensor 47 is fixedly installed inside the liquid storage chamber 24 at a position corresponding to the position below the second liquid pump 40. The heating element 39 and the temperature sensor 47 are electrically connected to the control element 43. The control element 43 is fixedly installed inside the installation chamber 25. In use, when it is necessary to store the liquid inside the liquid storage chamber 24 at a constant temperature, the control element 43 controls the heating element 39 to start. The heating element 39 heats the liquid according to the required higher temperature, and at the same time, the temperature sensor 47 detects the liquid temperature to ensure that the liquid is in a constant temperature state.
[0030] The protective mechanism includes a first floating ball 14. A limiting cylinder 15 is fixedly provided at the bottom end of the trough cover 12 and at the position corresponding to the drinking port 13. The first floating ball 14 is provided inside the limiting cylinder 15. When the trough is filled with liquid, the first floating ball 14 can seal the drinking port 13 under the action of buoyancy. When the livestock drink, the livestock presses the first floating ball 14 with its mouth, causing the liquid to rise and then drink through the drinking port 13. The trough cover 12 and the drinking trough body 11 are fixedly connected by screws.
[0031] The separation mechanism includes a first conveying pipe 18 and a filter ring 27. The first conveying pipe 18 is fixedly installed at the bottom of the inside of the drinking tank body 11. Connecting pipes are provided at corresponding positions of the first conveying pipe 18 and the partition, with one end of each connecting pipe communicating with the inside of the partition. A first mounting shaft is fitted inside the first conveying pipe 18, and a first spiral plate 19 is fixedly mounted on the first mounting shaft. One end of the first conveying pipe 18 extends into the filter chamber 23, and one end of the first mounting shaft extends into the installation chamber 25. One end of the first mounting shaft is fixedly connected to the output end of a first motor 26, which is fixedly installed inside the installation chamber 25. The first motor 26 is electrically connected to a control component 43. A slag outlet is provided at one end of the first conveying pipe 18. A filter ring 27 is provided, with rotatable support frames at both ends of the filter ring 27. The support frames are fixedly installed at the bottom of the filter chamber 23. Several first partitions 28 are arranged in an array inside the filter ring 27. One end of each first partition 28 is tightly attached to the outside of a first sealing plate 29. The first sealing plate 29 is fixedly installed on a first conveying pipe 18. An internal gear ring 30 is fixedly installed at one end of the filter ring 27. A gear 31 is meshed on the inner side of the internal gear ring 30. The gear 31 is fixedly installed on a first mounting shaft. A first liquid pump 37 is provided inside the liquid storage chamber 24. The input end of the first liquid pump 37 is connected to the inside of the filter chamber 23, and the output end of the first liquid pump 37 is connected to the inside of the liquid storage chamber 24. A conveying component for conveying debris to the outside of the auxiliary box 20 is provided inside the filter ring 27.
[0032] The conveying assembly includes a hopper, which is located at the highest point inside the first sealing plate 29. A second conveying pipe 34 is connected to the discharge end of the hopper. The second conveying pipe 34 is fixedly installed in a mounting hole inside the mounting chamber 25. One end of the second conveying pipe 34 is connected to a slag discharge pipe. A second mounting shaft is rotatably mounted inside the second conveying pipe 34. A second spiral plate 35 is fixedly mounted on the second mounting shaft. The second mounting shaft is fixedly connected to the output end of a second motor 36. The second motor 36 is fixedly mounted at one end of the second conveying pipe 34 and is electrically connected to a control component 43. A sealing cover 21 is installed on the upper end of the auxiliary box 20. In use, when it is necessary to separate debris inside the trough, the control component 43 controls the first motor 26, the second motor 36, and... The first liquid pump 37 starts, and the first motor 26 drives the first mounting shaft to rotate. The first mounting shaft drives the first spiral plate 19 to rotate, thereby drawing liquid from the diaphragm. At the same time, debris mixed in the liquid enters the first spiral plate 19. Subsequently, the liquid carries the debris into the filter ring 27, where the filter ring 27 separates the debris. Simultaneously, the first liquid pump 37 draws liquid from the filter chamber 23 into the storage chamber 24. At the same time, the first mounting shaft meshes with the internal gear ring 30 through the gear 31, driving the filter ring 27 to rotate. The first partition plate 28 rotates along with the filter ring 27, moving the debris. When the first partition plate 28 rotates to the collection hopper, the debris falls into the collection hopper under the action of gravity. At the same time, the second motor 36 drives the second spiral plate 35 to rotate, thereby conveying the debris to the outside of the auxiliary box 20.
[0033] A second sealing plate 32 is slidably disposed inside the first conveying pipe 18. The second sealing plate 32 is slidably disposed on the first mounting shaft. A return spring 33 is provided between one side of the second sealing plate 32 and one end inside the first conveying pipe 18. In use, when the first spiral plate 19 is not working, the second sealing plate 32 seals one end of the first conveying pipe 18 under the action of the return spring 33 to prevent the liquid inside the trough from flowing. When the first spiral plate 19 is working, the second sealing plate 32 is pushed to slide under the action of water pressure, so that the liquid inside the first conveying pipe 18 enters the filter chamber 23.
[0034] The bottom of each partition groove is inclined, which makes it easy for debris to concentrate on one side of the bottom of the partition groove during use.
[0035] A first fixed tube is fixedly installed at the upper end of the inner cavity of the first fixed tube. A compression sensor 41 is fixedly installed at the upper end of the inner cavity of the first fixed tube. A first limiting groove is symmetrically provided on the first fixed tube. A first sliding frame is slidably provided in the first limiting groove. The two ends of the first sliding frame are fixedly connected to the inner side of the float ring 42. A top rod is fixedly provided at the upper end of the first sliding frame. The compression sensor 41 is electrically connected to the control component 43. In use, when the liquid level inside the cavity reaches the highest point, the float ring 42 drives the top rod to rise under the action of buoyancy. The top rod squeezes the compression sensor 41, causing the control component 43 to control the second liquid pump 40 to stop working.
[0036] The liquid storage chamber 24 is internally connected to a liquid filling pipe 44. One end of the liquid filling pipe 44 is connected to a second fixed pipe. The second fixed pipe is symmetrically provided with a second limiting groove. A second sliding frame is slidably provided in the second limiting groove. A second float ball 46 is fixed at both ends of the second sliding frame. A stopper block 45 is fixed at the middle of the upper end of the second sliding frame. In use, one end of the liquid filling pipe 44 is connected to an external liquid supply component, so that the external liquid supply component delivers liquid into the liquid storage chamber 24. When the liquid in the liquid storage chamber 24 reaches a set height, the second float ball 46 drives the second sliding frame to slide, so that the stopper block 45 seals the other end of the liquid filling pipe 44, thereby stopping the delivery of liquid into the liquid storage chamber 24.
[0037] The above embodiment discloses a heated constant-temperature drinking water device for livestock. In this device, the control component 43 controls the heating component 39 to start, and the heating component 39 heats the liquid according to the required temperature. At the same time, the temperature sensor 47 detects the liquid temperature. The second liquid pump 40 draws liquid from the storage chamber 24 and delivers it to the diversion pipe 17. The diversion pipe 17 delivers the liquid to several compartments. As the liquid rises, the first floating ball 14 can close the drinking port 13 under the action of buoyancy. When the livestock drinks, the livestock presses the first floating ball 14 with its mouth, causing the liquid to rise and then drink through the drinking port 13. When the liquid level in the compartment reaches the highest point, the float ring 42 drives the top rod to rise under the action of buoyancy. The top rod squeezes the compression sensor 41, causing the control component 43 to control the second liquid pump 40 to stop working.
[0038] Simultaneously, the control unit 43 starts the first motor 26, the second motor 36, and the first liquid pump 37. The first motor 26 drives the first mounting shaft to rotate, which in turn drives the first spiral plate 19 to rotate, thus drawing liquid from the diaphragm. At the same time, debris mixed in the liquid enters the first spiral plate 19. Subsequently, the liquid carries the debris into the filter ring 27, which separates the debris. Meanwhile, the first mounting shaft meshes with the internal gear ring 30 through the gear 31, causing the filter ring 27 to rotate. The first partition 28 rotates along with the filter ring 27, moving the debris. When the first partition 28 rotates to the collection hopper, the debris falls into the collection hopper under the action of gravity. At the same time, the second motor 36 drives the second spiral plate 35 to rotate, thereby conveying the debris to the outside of the auxiliary box 20. Simultaneously, the first liquid pump 37 draws liquid from the filter chamber 23 into the storage chamber 24. The liquid is reheated in the flow channel, thus ensuring that the liquid maintains a constant temperature.
[0039] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
Claims
1. A heated and constant-temperature drinking water device for livestock, comprising a drinking trough body (11), a trough cover (12) installed on the upper end of the drinking trough body (11), a first partition (16) fixedly installed inside the drinking trough body (11), the first partition (16) dividing the interior of the drinking trough body (11) into several compartments, and a drinking port (13) is provided at the upper end of the trough cover (12) corresponding to the position of the compartment, characterized in that, Each of the partitions is equipped with a protective mechanism for sealing and protecting the drinking water inlet (13). A secondary box (20) is fixedly provided on one side of the main body (11) of the drinking water tank. A second partition (22) is fixedly provided inside the secondary box (20). The second partition (22) divides the interior of the secondary box (20) into a filter chamber (23), a liquid storage chamber (24), and an installation chamber (25). A heating component for constant temperature heating of the liquid is provided inside the liquid storage chamber (24). A second liquid pump (40) is installed inside the liquid storage chamber (24). The input end of the second liquid pump (40) is connected to the interior of the liquid storage chamber (24). The other end of the second liquid pump (40) is connected to a diversion pipe (17). The diversion pipe (17) is fixedly provided on one side of the first partition (16). The diversion pipe (17) is connected to the partition. A separation mechanism for separating debris inside the partition is provided inside the filter chamber (23).
2. The livestock heated constant-temperature drinking water device according to claim 1, characterized in that, The heating component includes a second partition (38), and several second partitions (38) are fixedly installed inside the liquid storage chamber (24). The several second partitions (38) are arranged alternately and combined to form a flow channel. A heating component (39) is provided between two second partitions (38). A temperature sensor (47) is fixedly installed inside the liquid storage chamber (24) at a position corresponding to the position below the second liquid pump (40). The heating component (39) and the temperature sensor (47) are electrically connected to the control component (43). The control component (43) is fixedly installed inside the installation chamber (25).
3. The livestock heated constant-temperature drinking water device according to claim 1, characterized in that, The protective mechanism includes a first floating ball (14), and a limiting cylinder (15) is fixedly provided at the bottom end of the trough cover (12) and at the position corresponding to the drinking water inlet (13). The first floating ball (14) is provided inside the limiting cylinder (15).
4. The livestock heated constant-temperature drinking water device according to claim 1, characterized in that, The separation mechanism includes a first conveying pipe (18) and a filter ring (27). The first conveying pipe (18) is fixedly installed at the bottom of the inside of the drinking tank body (11). A connecting pipe is provided at the corresponding position of the first conveying pipe (18) and the partition. One end of the connecting pipe is connected to the inside of the partition. A first mounting shaft is provided inside the first conveying pipe (18). A first spiral plate (19) is fixedly installed on the first mounting shaft. One end of the first conveying pipe (18) extends into the filter chamber (23). One end of the first mounting shaft extends into the installation chamber (25). One end of the first mounting shaft is fixedly connected to the output end of a first motor (26). The first motor (26) is fixedly installed inside the installation chamber (25). The first motor (26) is electrically connected to the control component (43). A slag outlet is provided at one end of the first conveying pipe (18). A filter ring is provided at the slag outlet. The filter ring (27) has a support frame at both ends, which is fixed at the bottom of the filter chamber (23). The filter ring (27) has several first partitions (28) arranged in an array inside. One end of each first partition (28) is in close contact with the outside of the first sealing plate (29). The first sealing plate (29) is fixed on the first conveying pipe (18). One end of the filter ring (27) is fixed with an internal gear ring (30). The internal gear ring (30) is meshed with a gear (31) on its inner side. The gear (31) is fixed on the first mounting shaft. The liquid storage chamber (24) has a first liquid pump (37) inside. The input end of the first liquid pump (37) is connected to the inside of the filter chamber (23). The output end of the first liquid pump (37) is connected to the inside of the liquid storage chamber (24). The filter ring (27) has a conveying component inside for conveying debris to the outside of the auxiliary box (20).
5. A livestock-heated constant-temperature drinking water device according to claim 4, characterized in that, The conveying assembly includes a hopper, which is located at the highest point inside the first sealing plate (29). The discharge end of the hopper is connected to a second conveying pipe (34). The second conveying pipe (34) is fixedly installed in the mounting hole inside the mounting chamber (25). One end of the second conveying pipe (34) is connected to a slag discharge pipe. A second mounting shaft is rotatably installed inside the second conveying pipe (34). A second spiral plate (35) is fixedly installed on the second mounting shaft. The second mounting shaft is fixedly connected to the output end of a second motor (36). The second motor (36) is fixedly installed at one end of the second conveying pipe (34). The second motor (36) is electrically connected to the control component (43). A sealing cover (21) is installed on the upper end of the auxiliary box (20).
6. A livestock-heated constant-temperature drinking water device according to claim 5, characterized in that, The first conveying pipe (18) is slidably provided with a second sealing plate (32), which is slidably provided on the first mounting shaft. A reset spring (33) is provided between one side of the second sealing plate (32) and one end inside the first conveying pipe (18).
7. A livestock-heated constant-temperature drinking water device according to claim 1, characterized in that, The bottom of each partition groove is inclined.
8. A livestock heating and constant temperature drinking water device according to claim 1, characterized in that, A first fixed tube is fixedly provided at the upper end of the inner cavity of the first fixed tube, and a compression sensor (41) is fixedly provided at the upper end of the inner cavity of the first fixed tube. A first limiting slide groove is symmetrically provided on the first fixed tube. A first sliding frame is slidably provided in the first limiting slide groove. The two ends of the first sliding frame are fixedly connected to the inner side of the floating ring (42). A top rod is fixedly provided at the upper end of the first sliding frame. The compression sensor (41) is electrically connected to the control component (43).
9. A livestock-grade heated constant-temperature drinking water device according to claim 1, characterized in that, The liquid storage chamber (24) is connected to a liquid filling pipe (44). One end of the liquid filling pipe (44) is connected to a second fixed pipe. The second fixed pipe is symmetrically provided with a second limiting groove. A second sliding frame is slidably provided in the second limiting groove. A second float ball (46) is fixed at both ends of the second sliding frame. A plug block (45) is fixed at the middle of the upper end of the second sliding frame.
Citation Information
Patent Citations
Constant-temperature water drinking device for cattle breeding
CN220402722U