Heat preservation structure for livestock drinking water

By using a multi-layer composite insulation structure and an automatic water supply system, the problems of poor insulation and contaminant intrusion in existing livestock drinking water equipment have been solved, achieving efficient heat insulation, automatic water supply and pollution prevention, and is suitable for environments with extreme temperature differences.

CN224192688UActive Publication Date: 2026-05-05INNER MONGOLIA WISDOM XINGMU IOT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
INNER MONGOLIA WISDOM XINGMU IOT TECH CO LTD
Filing Date
2025-06-03
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

Existing livestock drinking water equipment generally has poor heat retention and is easily contaminated by dust and impurities, leading to drinking water safety issues, especially in cold regions.

Method used

It adopts a multi-layer composite insulation structure, including a layered design for the box body and the top cover, combined with extruded board and stainless steel materials to form a fully sealed barrier. Combined with biological monitoring and siphon structure, it has automatic water supply and recycling functions to ensure temperature stability and prevent the intrusion of contaminants.

Benefits of technology

It achieves efficient heat insulation, maintains stable internal temperature, blocks dust and impurities, provides automatic water supply, is suitable for extreme temperature difference environments, reduces energy consumption, and improves the safety and reliability of drinking water equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a heat preservation structure for livestock drinking water, and relates to the technical field of livestock drinking water equipment. The device comprises a box body structure, an upper cover structure, a biological monitoring structure, a siphon structure and a water injection structure, the box body structure comprises a box body shell, a first heat preservation reinforcing layer and a box body inner container which are sequentially connected from outside to inside, and the upper cover structure is connected with the box body structure; the upper cover structure comprises an upper cover shell, a second heat preservation reinforcing layer and an upper cover inner container which are sequentially connected from outside to inside, the biological monitoring structure is connected to the box body structure, and the siphon structure is arranged on the upper cover structure and communicates with the interior of the box body structure. And the water injection structure is arranged in the box body structure and is communicated with the water flow passing hole in the siphon structure. The box body structure and the upper cover structure achieve efficient heat insulation and sealing through layered design, contact between a water source in the box body structure and the external environment is reduced, and the livestock drinking water heat preservation structure can maintain the internal temperature stability in a certain temperature environment and is suitable for liquid constant-temperature storage under the extreme temperature difference.
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Description

Technical Field

[0001] This utility model relates to the technical field of livestock drinking water equipment, and in particular to a heat preservation structure for livestock drinking water. Background Technology

[0002] In livestock production facilities, providing drinking water for livestock is a crucial matter. This requires the timely provision of clean water sources. In colder northern regions, especially during the harsh winter, drinking water can easily freeze, preventing livestock from accessing water and causing difficulties for livestock production.

[0003] Although some existing livestock drinking water equipment has a certain heat preservation function, its heat preservation effect is generally poor and its structure is relatively simple, which makes it easy for dust, impurities and other pollutants to enter, causing drinking water safety problems. Utility Model Content

[0004] The purpose of this utility model is to provide a heat-insulating structure for livestock drinking water, thereby solving the technical problems existing in the prior art. The various technical effects of the preferred technical solutions provided by this utility model are detailed below.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A heat-insulating structure for livestock drinking water includes a box structure, a top cover structure, a biological monitoring structure, a siphon structure, and a water injection structure. The box structure includes a box outer shell, a first heat-insulating reinforcement layer, and a box inner liner connected sequentially from the outside to the inside. The top cover structure is connected to the box structure and includes a top cover outer shell, a second heat-insulating reinforcement layer, and a top cover inner liner connected sequentially from the outside to the inside. The biological monitoring structure is connected to the box structure. The siphon structure is disposed on the top cover structure and communicates with the interior of the box structure. The water injection structure is disposed inside the box structure and communicates with the water flow through holes on the siphon structure.

[0007] Preferably, the first thermal insulation reinforcement layer is extruded polystyrene board.

[0008] Preferably, the second thermal insulation reinforcement layer is an extruded polystyrene board.

[0009] Preferably, the biological monitoring structure includes a through-beam infrared sensor, the receiver and transmitter of which are respectively connected to both ends of the housing structure, and a monitoring area is formed between the receiver and the transmitter, which is located above the upper cover structure.

[0010] Preferably, the water injection structure includes a water pump and a water pipe. The water pump is disposed inside the housing structure, and both ends of the water pipe are connected to the water pump and the water flow passage hole on the siphon structure, respectively.

[0011] Preferably, it also includes a main unit housing, which is connected to one end of the housing structure. The main unit housing contains a control host, which is communicatively connected to both the biological monitoring structure and the water injection structure.

[0012] Preferably, it further includes a base connection structure, which is connected to the bottom of the housing structure and connected to the external structure.

[0013] Preferably, the upper cover shell includes a bottom surface and four inclined surfaces connected to the bottom surface. Drainage holes are provided at the top of the two inclined surfaces located at both ends of the length direction of the bottom surface, and the siphon structure is connected to the bottom surface.

[0014] Preferably, one end of the upper cover structure in the width direction is rotatably connected to the box structure, and the other end of the upper cover structure in the width direction is detachably connected to the box structure.

[0015] Preferably, the main unit chassis is provided with a chassis door.

[0016] The beneficial effects of this utility model are as follows: The box structure includes a box shell, a first heat insulation reinforcement layer and a box inner liner connected sequentially from the outside to the inside. While the box inner liner has a heat insulation effect, the heat insulation effect can be further improved by additionally setting the first heat insulation reinforcement layer. The layered design achieves efficient heat insulation and sealing, effectively blocking heat transfer and reducing energy consumption.

[0017] The top cover structure includes an outer shell, a second insulation reinforcement layer, and an inner liner connected sequentially from the outside to the inside. While the inner liner provides insulation, the additional second insulation reinforcement layer further enhances the insulation effect. The layered design achieves efficient heat insulation and sealing, effectively blocking heat transfer and reducing energy consumption.

[0018] By setting the top cover structure and the box structure independently, a fully sealed multi-layer composite insulation structure is formed. The top cover structure can form an independent water supply structure, which reduces the contact between the water source inside the box structure and the external environment through physical isolation, and prevents the intrusion of pollutants such as dust and impurities.

[0019] The insulation structure for livestock drinking water can form a multi-layered sealed barrier, which can maintain internal temperature stability under certain temperature environments and is suitable for the constant temperature storage needs of liquids under extreme temperature differences. Attached Figure Description

[0020] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0021] Figure 1 This is a structural diagram of the present invention;

[0022] Figure 2 The internal structure diagram of the upper cover structure and the siphon structure of this utility model is hidden;

[0023] Figure 3 This is a detailed structural diagram of the drainage hole of this utility model;

[0024] Figure 4 This is a layered structural diagram of the box structure of this utility model;

[0025] Figure 5 This is a layered structural diagram of the upper cover structure of this utility model;

[0026] In the diagram: 1. Box structure; 11. Box outer shell; 12. First insulation reinforcement layer; 13. Inner liner of the box;

[0027] 2. Top cover structure; 21. Top cover outer shell; 211. Bottom surface; 212. Sloping surface; 2121. Drainage hole; 22. Second thermal insulation reinforcement layer; 23. Top cover inner liner;

[0028] 3. Biomonitoring Structure;

[0029] 4. Siphon structure; 41. Water flows through the hole;

[0030] 5. Water injection structure;

[0031] 6. Main unit chassis; 61. Chassis door;

[0032] 7. Base connection structure. Detailed Implementation

[0033] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be described in detail below. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other implementation methods obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0034] In the description of this utility model, it should be understood that the terms "center," "side," "length," "width," "height," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," and "side," etc., indicate the orientation or positional relationship based on the appendix. Figure 1 The orientations or positional relationships shown are for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0035] In the description of this utility model, it should also be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0036] Reference Figures 1 to 5 This utility model provides a heat preservation structure for livestock drinking water, including a box structure 1, a top cover structure 2, a biological monitoring structure 3, a siphon structure 4, and a water injection structure 5.

[0037] The box structure 1 is used to store water for livestock drinking, and is equivalent to a water tank. The box structure 1 can be supplied with water through an external water supply pipeline.

[0038] The enclosure structure 1 includes an outer shell 11, a first thermal insulation reinforcement layer 12, and an inner liner 13 connected sequentially from the outside to the inside. While the inner liner 13 provides thermal insulation, the additional first thermal insulation reinforcement layer 12 further enhances the thermal insulation effect. The layered design achieves efficient heat insulation and sealing, effectively blocking heat transfer and reducing energy consumption. Preferably, an outer shell is provided on the outside of the outer shell 11, the first thermal insulation reinforcement layer 12, and the inner liner 13. The entire structure is wrapped with a high-strength stainless steel outer shell, which provides both impact resistance and corrosion resistance.

[0039] The top cover structure 2 is connected to the box structure 1. Preferably, one end of the top cover structure 2 in the width direction is rotatably connected to the box structure 1, and the other end of the top cover structure 2 in the width direction is detachably connected to the box structure 1. With this configuration, the top cover structure 2 can have a good sealing effect when connected to the box structure 1. When necessary, the connection between the top cover structure 2 and the box structure 1 can be disconnected, and the top cover structure 2 can be lifted up to facilitate cleaning and maintenance of the inside of the box structure 1.

[0040] The upper cover structure 2 includes an upper cover shell 21, a second heat insulation reinforcement layer 22, and an upper cover inner liner 23 connected sequentially from the outside to the inside. While the upper cover inner liner 23 provides heat insulation, the additional second heat insulation reinforcement layer 22 can further enhance the heat insulation effect. The layered design achieves efficient heat insulation and sealing, effectively blocking heat transfer and reducing energy consumption. Furthermore, it is preferable that an outer box layer is provided on the outside of the upper cover shell 21, the second heat insulation reinforcement layer 22, and the upper cover inner liner 23. The entire structure is wrapped with a high-strength stainless steel outer box layer, which provides both impact resistance and corrosion resistance.

[0041] The outer shell 21 of the upper cover structure 2 can form a water trough for livestock to drink water.

[0042] By setting the top cover structure 2 and the box structure 1 independently, a fully sealed multi-layer composite insulation structure is formed. The top cover structure 2 can form an independent drinking water structure, reducing the contact between the water source inside the box structure 1 and the external environment through physical isolation, and blocking the intrusion of pollutants such as dust and impurities.

[0043] The biological monitoring structure 3 is connected to the box structure 1. The biological monitoring structure 3 can monitor livestock near the heating structure for livestock drinking water. When the organism approaches or moves away from the heating structure for livestock drinking water, the biological monitoring structure 3 can be triggered.

[0044] The siphon structure 4 is installed on the upper cover structure 2 and is connected to the inside of the box structure 1. The siphon structure 4 can drain water by its own siphon principle and quickly recover the water in the drinking tank into the inside of the box structure 1.

[0045] The water injection structure 5 is located inside the housing structure 1 and is connected to the water flow through hole 41 on the siphon structure 4. The water injection structure 5 can inject water into the drinking trough of the upper cover structure 2 through the water flow through hole 41.

[0046] When livestock approach the warming structure for drinking water, the biological monitoring structure 3 detects that the livestock are approaching, which is equivalent to detecting that the livestock have a need for drinking water. At this time, the water injection structure 5 is activated to inject water into the drinking trough for the livestock to drink.

[0047] When livestock leave the vicinity of the insulated structure for drinking water, the biological monitoring structure 3 detects that the livestock have moved away, which is equivalent to detecting that the livestock no longer have a need for drinking water. At this time, the water injection structure 5 stops and no longer injects water into the drinking trough. The siphon structure 4 starts and quickly recovers the water in the drinking trough into the box structure 1.

[0048] The various components of the livestock drinking water insulation structure are preferably seamlessly connected by rivets to form a multi-layered sealing barrier, which can maintain internal temperature stability in a certain temperature environment and is suitable for the liquid constant temperature storage needs under extreme temperature differences.

[0049] In this embodiment, the siphon structure 4 is a purely physical structure that does not require electricity and achieves the siphon effect by relying on its own characteristics. It is a conventional existing technology and therefore will not be described in further detail.

[0050] As an optional implementation, the first insulation reinforcement layer 12 is an extruded polystyrene board. The extruded polystyrene board itself has good insulation effect, which can further improve the insulation performance of the box structure 1. At the same time, the extruded polystyrene board has good structural strength, which can improve the overall structural strength of the box structure 1 to a certain extent.

[0051] Both the outer shell 11 and the inner liner 13 of the box are preferably made of stainless steel.

[0052] As an optional implementation, the second insulation reinforcement layer 22 is an extruded polystyrene board. The extruded polystyrene board itself has good insulation effect, which can further improve the insulation performance of the upper cover structure 2. At the same time, the extruded polystyrene board has good structural strength, which can improve the overall structural strength of the upper cover structure 2 to a certain extent.

[0053] As an optional implementation, the biological monitoring structure 3 includes a through-beam infrared sensor, the receiver and transmitter of which are respectively connected to the two ends of the housing structure 1, forming a monitoring area between the receiver and transmitter, which is located above the upper cover structure 2.

[0054] When livestock reach the vicinity of the heated structure for drinking water, the receiver no longer receives the signal from the transmitter. This is equivalent to detecting that the livestock have a need for water. The water injection structure 5 is activated to inject water into the water trough for the livestock to drink.

[0055] When the livestock leave the vicinity of the insulated structure for drinking water, the receiver receives the signal from the transmitter again. This is equivalent to detecting that the livestock no longer has a need for drinking water. The water injection structure 5 stops, and no more water is injected into the water trough. The siphon structure 4 starts, quickly recovering the water in the water trough into the box structure 1.

[0056] As an optional implementation, the water injection structure 5 includes a water pump and a water pipe. The water pump is installed inside the housing structure 1, and the two ends of the water pipe are connected to the water pump and the water flow through hole 41 on the siphon structure 4, respectively.

[0057] Once the water pump is started, water can be injected through the water pipe, and the water in the water pipe can be injected into the drinking trough through the water flow through hole 41 for the livestock to drink.

[0058] It is worth noting that, in actual use, the warming structure for livestock drinking water is preferably set so that as long as the biological monitoring structure 3 can detect that the livestock is near the warming structure for livestock drinking water, the water injection structure 5 will continue to work until the livestock leaves the sensing area of ​​the warming structure for livestock drinking water, at which point the water injection structure 5 will stop working.

[0059] Therefore, as long as the water injection structure 5 continues to work, its water pressure can ensure that the water flows outward through the hole 41. The siphon structure 4 will not work during the time that the water injection structure 5 is working. When the water pump is not working, the water pipe no longer generates pressure. The siphon structure 4 drains water by its own siphon principle and quickly recovers the water in the drinking water tank into the box structure 1.

[0060] As an optional implementation, it also includes a main unit box 6, which is connected to one end of the box structure 1. The main unit box 6 is equipped with a control host, which is communicatively connected to the biological monitoring structure 3 and the water injection structure 5 respectively.

[0061] The through-beam infrared sensor of the biological monitoring structure 3 can detect when livestock arrive near the warming structure for drinking water and transmit a signal to the control host. The control host controls the water injection structure 5 to inject water into the drinking trough of the upper cover structure 2, so that the livestock can drink water through the drinking trough.

[0062] When the through-beam infrared sensor of the biological monitoring structure 3 senses that the livestock have left the vicinity of the warming structure for drinking water, it can transmit a signal to the control host. The control host controls the water injection structure 5 to stop injecting water into the drinking trough of the upper cover structure 2. Through pressure changes, the siphon structure 4 can quickly recover the remaining water in the drinking trough and return the remaining water to the inside of the box structure 1.

[0063] In this embodiment, it is preferable to provide a chassis door 61 on the main unit chassis 6. This arrangement facilitates the inspection and maintenance of the interior of the main unit chassis 6.

[0064] As an optional implementation, a base connection structure 7 is also included. The base connection structure 7 is connected to the bottom of the box structure 1, and the livestock drinking water insulation structure is connected to the external structure through the base connection structure 7.

[0065] In this embodiment, the base connection structure 7 is preferably a connector, and there are several connectors. The several connectors are evenly connected to the bottom of the box structure 1. The attached figure preferably shows the structure when there are six connectors.

[0066] As an optional implementation, the drinking trough of the upper cover shell 21 includes a bottom surface 211 and four inclined surfaces 212 connected to the bottom surface 211. The siphon structure 4 is connected to the bottom surface 211. Drainage holes 2121 are provided at the top of the two inclined surfaces 212 located at both ends of the length direction of the bottom surface 211. When the water level in the drinking trough rises to the corresponding height of the drainage hole 2121, water can be drained through the drainage hole 2121, so that the water flows back into the box structure 1, preventing the water in the drinking trough from overflowing and preventing freezing in cold climate conditions.

[0067] The above are merely specific embodiments of this utility model, but the protection scope of this utility model 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 utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.

Claims

1. A heat-insulating structure for livestock drinking water, characterized in that, The system includes a box structure (1), a top cover structure (2), a biological monitoring structure (3), a siphon structure (4), and a water injection structure (5). The box structure (1) includes a box shell (11), a first heat insulation layer (12), and a box inner liner (13) connected sequentially from the outside to the inside. The top cover structure (2) is connected to the box structure (1). The top cover structure (2) includes a top cover shell (21), a second heat insulation layer (22), and a top cover inner liner (23) connected sequentially from the outside to the inside. The biological monitoring structure (3) is connected to the box structure (1). The siphon structure (4) is set on the top cover structure (2) and communicates with the inside of the box structure (1). The water injection structure (5) is set inside the box structure (1) and communicates with the water flow through hole (41) on the siphon structure (4).

2. The livestock drinking water insulation structure according to claim 1, characterized in that, The first thermal insulation reinforcement layer (12) is an extruded polystyrene board.

3. The livestock drinking water insulation structure according to claim 1, characterized in that, The second thermal insulation reinforcement layer (22) is an extruded polystyrene board.

4. The livestock drinking water insulation structure according to claim 1, characterized in that, The biological monitoring structure (3) includes a through-beam infrared sensor. The receiver and transmitter of the through-beam infrared sensor are respectively connected to both ends of the housing structure (1). A monitoring area is formed between the receiver and the transmitter. The monitoring area is located above the upper cover structure (2).

5. The heat-insulating structure for livestock drinking water according to claim 1, characterized in that, The water injection structure (5) includes a water pump and a water pipe. The water pump is located inside the box structure (1). The two ends of the water pipe are connected to the water pump and the water flow through hole (41) on the siphon structure (4), respectively.

6. The heat-insulating structure for livestock drinking water according to claim 1, characterized in that, It also includes a main unit box (6), which is connected to one end of the box structure (1). The main unit box (6) is equipped with a control host, which is communicatively connected to the biological monitoring structure (3) and the water injection structure (5).

7. The heat-insulating structure for livestock drinking water according to claim 1, characterized in that, It also includes a base connection structure (7), which is connected to the bottom of the box structure (1) and is connected to the external structure.

8. The heat-insulating structure for livestock drinking water according to claim 1, characterized in that, The upper cover shell (21) includes a bottom surface (211) and four inclined surfaces (212) connected to the bottom surface (211). Drainage holes (2121) are provided on the top of the two inclined surfaces (212) located at both ends of the length direction of the bottom surface (211). The siphon structure (4) is connected to the bottom surface (211).

9. The heat-insulating structure for livestock drinking water according to claim 1, characterized in that, One end of the upper cover structure (2) in the width direction is rotatably connected to the box structure (1), and the other end of the upper cover structure (2) in the width direction is detachably connected to the box structure (1).

10. The livestock drinking water insulation structure according to claim 6, characterized in that, The main unit (6) is provided with a chassis door (61).