Intelligent nursing liquid feeding system
Through the intelligent conservation liquid feeding system, the mixer, delivery pump and micro pump are used to realize automatic milk mixing and replenishment, solving the problems of low efficiency and residual milk residue in the existing technology, ensuring the health of the piglets.
Patent Information
- Application Number
- CN202421909272.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-08-08
AI Technical Summary
The existing milk replenishment method is inefficient and requires high labor costs, and the milk remains in the pipeline, affecting the health of the piglets.
An intelligent conservation liquid feeding system is designed, including a mixer, a conveying pump, a micro pump, an acidic and alkaline solution tank, etc., and the milk is blown out through the air pump, the acidic solution is cleaned, and the alkaline solution is neutralized to achieve automated milk mixing and replenishment.
Automatic milk replenishment is achieved, reducing the cost of manual mixing, avoiding the milk from deteriorating in the pipeline, and ensuring the health of the piglets.
Smart Images

Figure CN222852911U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of breeding and feeding devices, in particular to an intelligent nursery liquid feeding system. Background Art
[0002] Piglets in the delivery room need to be supplemented with milk in the trough in time. The existing method of supplementing milk is to manually dissolve milk powder and add it to the piglets' trough, which is inefficient and requires high labor costs.
[0003] The existing feeding system delivers milk through pipes, but the milk will remain in the pipe wall, and flushing with water alone cannot effectively remove the milk residue. The milk residue in the pipe will deteriorate and produce harmful substances, which will be output to the trough along with the new milk, affecting the health of the piglets after they eat it. Utility Model Content
[0004] The utility model aims to solve the above problems and provides an intelligent nursery liquid feeding system to solve the above problems.
[0005] An intelligent nursery liquid feeding system comprises: a frame, a blender, a delivery pump, a first micro pump, a water outlet pipe, an acid solution tank and a water inlet pipe, wherein the blender, the delivery pump, the first micro pump and the acid solution tank are respectively fixedly connected to the frame, the inlet of the delivery pump is fixedly connected and communicated with the water outlet pipe, the water outlet pipe and the water inlet pipe are respectively fixedly connected and communicated with the blender, the inlet of the first micro pump is communicated with the acid solution tank, and the outlet of the first micro pump is communicated with the blender.
[0006] Furthermore, it also includes a milk powder tank and a discharge valve, the milk powder tank is fixedly connected to the frame, the bottom of the milk powder tank is fixedly connected and communicated with the discharge valve, and the discharge valve is communicated with the inside of the mixer.
[0007] Furthermore, it also includes a flow meter, which is installed on the water inlet pipe.
[0008] Furthermore, it also includes an instant water heater, which is fixedly connected to the frame and fixedly connected to and communicated with the water inlet pipe.
[0009] Furthermore, it also includes a first valve and an air pipe of an air pump, the air pump is fixedly connected to the frame, both ends of the air pipe are fixedly connected and communicated with the air pump and the first valve respectively, the first valve is fixedly connected and communicated with the water outlet pipe, the first valve is connected to the inlet of the delivery pump through a pipeline, and the first valve is used to connect the water outlet pipe and the air pipe to the inlet separately.
[0010] Furthermore, it also includes a temperature sensor, which extends into the interior of the mixer; and a liquid level sensor, which is installed inside the mixer.
[0011] Furthermore, it also includes a first delivery pipe, a second delivery pipe and a second valve, the outlet of the delivery pump is connected to the first delivery pipe, and the first delivery pipe is connected to multiple second delivery pipes through the second valve.
[0012] Furthermore, it also includes a third valve and a feed pipe, the second conveying pipe is fixedly connected and communicated with multiple third valves, the feed pipe is fixedly connected and communicated with the third valves, and the feed pipe is located above the trough; the second valve and the third valve are two-position three-way valves.
[0013] Furthermore, a fourth valve is included, and one end of the second delivery pipe away from the second valve is fixedly connected to and communicated with the fourth valve.
[0014] Furthermore, it also includes a second micro pump and an alkaline solution tank, wherein the inlet of the second micro pump is connected to the alkaline solution tank, and the outlet of the second micro pump is connected to the stirrer.
[0015] The utility model has the following advantages: an air flow is output to the pipe network through an air pump to blow out the milk involved, thereby preventing the milk from deteriorating in the pipe network and thus affecting the health of the piglets; the first micro pump injects an acidic solution, and dilutes an acidic solution of a set concentration in a blender. The acidic solution cleans the pipe to dissolve the milk powder residue and sterilize it, thereby preventing the milk powder residue from deteriorating in the pipe and affecting the health of the piglets; the second micro pump injects an alkaline solution, and dilutes an alkaline solution of a set concentration in the blender. The alkaline solution can neutralize the acidic residual substances in the pipe after acid washing, thereby preventing the acidic substances from flowing into the trough during the next feeding and preventing the stomach and intestine health of the piglets from being affected; the discharge valve is used to output milk powder, the hot water pipe is used to output hot water, the blender is used to mix the two into milk, and the delivery pump outputs the milk to the trough, thereby automatically adding milk to the piglets, thereby reducing the workload of manual mixing and adding milk. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings required for use in the embodiments or the prior art descriptions are briefly introduced below. Obviously, the drawings described below are only one embodiment of the utility model. For ordinary technicians in this field, other implementation drawings can be derived from the provided drawings without creative work.
[0017] Figure 1 : A schematic diagram of the main structure of the utility model;
[0018] Figure 2: A side structural schematic diagram of the utility model;
[0019] Figure 3 : A schematic diagram of the top view of the structure of the utility model;
[0020] Figure 4 : Figure 3 Schematic diagram of the cross-sectional structure at AA in the middle;
[0021] Figure 5 : A schematic diagram of the three-dimensional structure of the utility model;
[0022] Figure 6 : Schematic diagram of the top view of the first delivery pipe and the second delivery pipe. DETAILED DESCRIPTION
[0023] The utility model is further described below with reference to the accompanying drawings and examples:
[0024] The embodiments of the present invention are described in detail below, and examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and cannot be understood as limiting the present invention.
[0025] In the description of the present invention, it should be noted that, unless otherwise clearly specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected or indirectly connected through an intermediate medium. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0026] In the description of the present invention, it should be understood that the terms "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present invention.
[0027] like Figures 1 to 6As shown, an intelligent nursery liquid feeding system includes: a frame 1, a blender 5, a delivery pump 6, a first micro pump 7, a water outlet pipe 56, an acid solution tank 74 and a water inlet pipe 111, wherein the blender 5, the delivery pump 6, the first micro pump 7 and the acid solution tank 74 are respectively fixedly connected to the frame 1, the inlet 61 of the delivery pump 6 is fixedly connected and communicated with the water outlet pipe 56, the water outlet pipe 56 and the water inlet pipe 111 are respectively fixedly connected and communicated with the blender 5, the inlet of the first micro pump 7 is communicated with the acid solution tank 74, and the outlet of the first micro pump 7 is communicated with the blender 5.
[0028] When in use, milk powder is added into the mixer 5, and water is injected into the mixer 5 through the water inlet pipe 111. Afterwards, the mixer 5 works to dissolve the milk powder in water to form milk, and the milk leaves the mixer 5 from the water outlet pipe 56 under the drive of the delivery pump 6.
[0029] During cleaning, the first micro pump 7 injects an acidic solution into the mixer 5, and water enters the water inlet pipe 111 to dilute the acidic solution. The diluted acidic solution is pumped out by the delivery pump 6 to clean the pipeline through which the milk flows.
[0030] Preferably, the first micro pump 7 delivers the acidic solution to the interior of the mixer 5 through the first hose 71 .
[0031] The stirrer 5 is a stirrer of the prior art, including a cup body 51 , a motor 52 and a stirring blade 53 . The stirring blade 53 is located in the cup body 51 , and the motor 52 drives the stirring blade 53 to rotate.
[0032] Furthermore, it also includes a milk powder tank 2 and a discharge valve 21, wherein the milk powder tank 2 is fixedly connected to the frame 1, and the lower part of the milk powder tank 2 is fixedly connected and communicated with the discharge valve 21, and the discharge valve 21 is communicated with the inside of the mixer 5. The discharge valve 21 can output milk powder quantitatively. Preferably, the discharge valve 21 can adopt a star-shaped discharge valve.
[0033] Furthermore, a flow meter 112 is included, and the flow meter 112 is installed on the water inlet pipe 111. The flow meter 112 measures the volume of water flowing out of the water inlet pipe 111 into the mixer 5. After reaching a predetermined water injection volume, the water inlet pipe 111 stops continuing to deliver water.
[0034] Furthermore, it also includes an instantaneous water heater 11, which is fixedly connected to the frame 1 and is fixedly connected and communicated with a water inlet pipe 111. The water inlet of the instantaneous water heater 11 is communicated with a tap water network, and water is supplied by the pressure of the tap water network, so that a water pump is not required.
[0035] Furthermore, it also includes a first valve 10 and an air pipe 121 of an air pump 12, the air pump 12 is fixedly connected to the frame 1, and both ends of the air pipe 121 are fixedly connected and communicated with the air pump 12 and the first valve 10 respectively, the first valve 10 is fixedly connected and communicated with the water outlet pipe 56, the first valve 10 is connected to the inlet 61 of the delivery pump 6 through a pipeline, and the first valve 10 is used to connect the water outlet pipe 56 and the air pipe 121 to the inlet 61 separately.
[0036] Preferably, the first valve 10 is a T-type ball valve.
[0037] Furthermore, it also includes a temperature sensor 55, which extends into the mixer 5; and a liquid level sensor, which is installed inside the mixer 5. The temperature sensor 55 detects whether the temperature of the milk is suitable for output. If the temperature is too high, the instant water heater 11 does not work, and the water inlet pipe 111 outputs a certain amount of normal temperature water for cooling. It also includes a liquid level sensor, which is installed inside the mixer 5 (not shown in the figure). The liquid level sensor detects the water level and then determines the volume of the liquid to avoid adding too much or too little water.
[0038] Furthermore, it also includes a first delivery pipe 8 , a second delivery pipe 9 and a second valve 81 . The outlet 62 of the delivery pump 6 is connected to the first delivery pipe 8 , and the first delivery pipe 8 is connected to multiple second delivery pipes 9 through the second valve 81 .
[0039] Furthermore, it also includes a third valve 91 and a feed pipe 92, the second delivery pipe 9 is fixedly connected and communicated with a plurality of third valves 91, the feed pipe 92 is fixedly connected and communicated with the third valve 91, and the feed pipe 92 is located above the food trough 93; the second valve 81 and the third valve 91 are two-position three-way valves. Preferably, the second valve 81 and the third valve 91 are T-type ball valves.
[0040] Furthermore, a fourth valve 94 is included, and one end of the second delivery pipe 9 away from the second valve 81 is fixedly connected and communicated with the fourth valve 94. Preferably, the fourth valve 94 is a stop valve.
[0041] Furthermore, it also includes a second micro pump 72 and an alkaline solution tank 75, wherein the inlet of the second micro pump 72 is connected to the alkaline solution tank 75, and the outlet of the second micro pump 72 is connected to the stirrer 5. After the acidic solution cleans the pipeline, the second micro pump 72 injects a fixed amount of alkaline solution into the stirrer 5, and the water inlet pipe 111 injects a fixed amount of water into the stirrer 5 for dilution. Afterwards, the diluted alkaline solution is pumped into the pipeline under the drive of the delivery pump 6, thereby neutralizing the residual acidic solution in the pipeline.
[0042] Furthermore, it also includes a transfer box 4, which is fixedly connected to the frame 1, and is communicated with the discharge valves 21 of multiple milk powder cans 2, and the transfer box 4 is communicated with the inside of the mixer 5. When multiple milk powder cans 2 need to be docked, due to the limited area of the opening above the cup body 51, multiple discharge valves 21 cannot be docked, which will cause milk powder to spill out of the opening above the cup body 51. Adding a transfer box 4 with a larger opening area is conducive to receiving the milk powder output by multiple discharge valves 21, avoiding milk powder spilling out, and reducing waste.
[0043] Furthermore, it also includes a first conveyor 3 and a second conveyor 41, the discharge valve 21 is connected to the first conveyor 3, the first conveyor 3 is connected to the transfer box 4, and the second conveyor 41 is respectively connected to the transfer box 4 and the inside of the mixer 5. The use of the conveyor can reduce the milk powder remaining in the transfer box 4; at the same time, it can delay the distance between the transfer box 4 and the milk powder tank 2, which is convenient for arranging the transfer box 4 and the milk powder tank 2. Preferably, the first conveyor 3 and the second conveyor 41 are auger conveyors.
[0044] When working, the discharge valve 21 discharges the milk powder in a designated milk powder tank 2, and the milk powder enters the first conveyor 3. The first conveyor 3 conveys the milk powder inside, and the milk powder falls into the transfer box 4. The second conveyor 41 conveys the milk powder inside, and the milk powder falls into the cup body 51.
[0045] The hot water heated by the instant water heater 11 is delivered to the cup body 51 from the water inlet pipe 111, and the motor 52 drives the stirring blade 53 to rotate, dissolving the milk powder in the hot water to form milk. At this time, the first valve 10 connects the water outlet pipe 56 and the inlet 61 and isolates the inlet 61 from the air delivery pipe 121, and the delivery pump 6 works to pump the milk from the water outlet pipe 56 into the first delivery pipe 8.
[0046] At this time, the second valve 81 corresponding to the second delivery pipe 9 that needs to deliver milk connects the second delivery pipe 9 with the first delivery pipe 8, and the other two valves 81 corresponding to the second delivery pipe 9 that does not need milk isolate the second delivery pipe 9 from the first delivery pipe 8.
[0047] The milk enters the second delivery pipe 9. At this time, the third valve 91 corresponding to the feeding pipe 92 that needs to deliver milk connects the third valve 91 with the second delivery pipe 9, and the third valve 91 corresponding to the feeding pipe 92 that does not need milk isolates the third valve 91 from the second delivery pipe 9.
[0048] The milk flows out from the feeding pipe 92 into the feeding trough 93 for the animals to eat. At this time, the fourth valve 94 is closed.
[0049] After the milk is delivered, the first valve 10 connects the air delivery pipe 121 with the inlet 61 and isolates the inlet 61 from the water outlet pipe 56. The air pump 12 delivers air to blow out the milk remaining in the delivery pump 6, the first delivery pipe 8, the second valve 81, the second delivery pipe 9, the third valve 91 and the discharge pipe 92, so as to prevent the milk from remaining in the pipeline and deteriorating and contaminating the next milk.
[0050] Then, the third valve 91 is disconnected from the feed pipe 92, and the fourth valve 94 is opened. The first micro pump 7 quantitatively injects the acid solution into the mixer 5, and the water inlet pipe 111 quantitatively inlets water to dilute the acid solution. The diluted acid solution is pumped out by the delivery pump 6, and the diluted acid solution flows through the first delivery pipe 8 and the second delivery pipe 9, further cleaning the milk attached to the inner wall of the first delivery pipe 8, the second delivery pipe 9 and the connected valves and disinfecting and sterilizing. After cleaning, the acid solution flows out of the second delivery pipe 9 from the fourth valve 94 and enters the wastewater ditch 95.
[0051] After the acid wash is completed, in order to avoid the acid solution remaining in the pipeline, an alkali wash is required. The second micro pump 72 injects a quantitative alkaline solution into the mixer 5 through the second hose 73, and the water inlet pipe 111 injects a quantitative water dilution into the mixer 5. Afterwards, the diluted alkaline solution is pumped into the pipeline under the drive of the delivery pump 6, thereby neutralizing the residual acid solution in the pipeline. Finally, the neutralized alkaline solution is also discharged from the second delivery pipe 9 to the wastewater ditch 95.
[0052] Finally, the water inlet pipe 111 injects clean water into the mixer 5, and the clean water is used to flush the pipeline under the pumping of the delivery pump 6 and is discharged from the fourth valve 94, thereby reducing residual substances.
[0053] The present invention is described above by way of examples, but the present invention is not limited to the above specific embodiments, and any changes or modifications based on the present invention belong to the scope of protection required by the present invention.
Claims
1. An intelligent liquid feeding system, characterized in that: include: A frame (1), a stirrer (5), a delivery pump (6), a first micro pump (7), a water outlet pipe (56), an acid solution tank (74) and a water inlet pipe (111); the stirrer (5), the delivery pump (6), the first micro pump (7) and the acid solution tank (74) are respectively fixedly connected to the frame (1); an inlet (61) of the delivery pump (6) is fixedly connected to and communicated with the water outlet pipe (56); the water outlet pipe (56) and the water inlet pipe (111) are respectively fixedly connected to and communicated with the stirrer (5); an inlet of the first micro pump (7) is communicated with the acid solution tank (74); and an outlet of the first micro pump (7) is communicated with the stirrer (5).
2. The intelligent liquid feeding system according to claim 1, characterized in that: It also comprises a milk powder tank (2) and a discharge valve (21), wherein the milk powder tank (2) is fixedly connected to the frame (1), the lower part of the milk powder tank (2) is fixedly connected to and communicates with the discharge valve (21), and the discharge valve (21) is communicated with the inside of the mixer (5).
3. The intelligent liquid feeding system according to claim 1, characterized in that: It also includes a flow meter (112), wherein the flow meter (112) is installed on the water inlet pipe (111).
4. The intelligent liquid feeding system according to claim 1, characterized in that: It also comprises an instantaneous water heater (11), wherein the instantaneous water heater (11) is fixedly connected to the frame (1), and the instantaneous water heater (11) is fixedly connected to and communicates with a water inlet pipe (111).
5. The intelligent liquid feeding system according to claim 1, characterized in that: It also comprises a first valve (10) and an air delivery pipe (121) of an air pump (12); the air pump (12) is fixedly connected to the frame (1); two ends of the air delivery pipe (121) are respectively fixedly connected to and communicated with the air pump (12) and the first valve (10); the first valve (10) is fixedly connected to and communicated with a water outlet pipe (56); the first valve (10) is connected to an inlet (61) of a delivery pump (6) through a pipeline; the first valve (10) is used to separately connect the water outlet pipe (56) and the air delivery pipe (121) to the inlet (61).
6. The intelligent liquid feeding system according to claim 1, characterized in that: It also includes a temperature sensor (55), which extends into the interior of the mixer (5); and a liquid level sensor, which is installed inside the mixer (5).
7. The intelligent liquid feeding system according to claim 1, characterized in that: It also comprises a first delivery pipe (8), a second delivery pipe (9) and a second valve (81); the outlet (62) of the delivery pump (6) is connected to the first delivery pipe (8); and the first delivery pipe (8) is connected to a plurality of second delivery pipes (9) via the second valve (81).
8. The intelligent liquid feeding system according to claim 7, characterized in that: It also includes a third valve (91) and a feed pipe (92); the second conveying pipe (9) is fixedly connected and communicated with a plurality of third valves (91); the feed pipe (92) is fixedly connected and communicated with the third valves (91); the feed pipe (92) is located above the trough (93); the second valve (81) and the third valve (91) are two-position three-way valves.
9. The intelligent liquid feeding system according to claim 7, characterized in that: It also comprises a fourth valve (94), and one end of the second delivery pipe (9) away from the second valve (81) is fixedly connected to and communicates with the fourth valve (94).
10. The intelligent liquid feeding system according to claim 5, characterized in that: It also includes a second micro pump (72) and an alkaline solution tank (75), wherein the inlet of the second micro pump (72) is connected to the alkaline solution tank (75), and the outlet of the second micro pump (72) is connected to the stirrer (5).