Insulated house

By setting up drainage tanks and backwater tables in the water intake area of the insulation room, safety hazards caused by splashing or overflow of water purification are solved, and the safety and convenience of the water intake process are achieved.

CN223119267UActive Publication Date: 2025-07-18ZHONGSHUI JINGTONG TECH DEV (CHENGDU) CO LTD
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Patent Information

Application Number
CN202422383201.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-29
Publication Date
2025-07-18
Estimated Expiration
2034-09-29

AI Technical Summary

Technical Problem

In high-altitude agricultural and animal husbandry areas, farmers and herdsmen are prone to splashing or overflowing water when taking water through containers, resulting in slippery floors of the insulation houses, posing safety hazards.

Method used

A drain tank is set up in the water intake area of the insulation room to collect the water dropping in the water intake pipe and container and guide it outside the water intake area. Combined with the design of the backwater table and the drain tank, it prevents water from accumulating for a long time in the water intake area.

Benefits of technology

It effectively avoids the accumulation of water in the water intake area, reduces the risk of slipping and fall, and improves the safety and convenience of water intake.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a heat preservation house, and relates to the technical field of heat preservation houses. The utility model provides a heat preservation house which comprises a house body, a heat preservation cavity and a water taking area. At least part of the water taking pipe is arranged in the heat preservation cavity, and the water outlet end of the water taking pipe is located in the water taking area; wherein the water taking area is provided with a drainage groove, and the drainage groove is configured to be used for at least collecting water falling from the water outlet end of the water taking pipe and guiding the water out of the water taking area.
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Description

Technical Field

[0001] This application relates to the technical field of insulation houses, and particularly to an insulation house. Background Art

[0002] In alpine and high-altitude pastoral and farming areas, the population is sparse. Generally, the drinking water of rural and pastoral families comes from well groundwater. The outdoor temperature in winter can reach minus twenty or thirty degrees Celsius. Therefore, various drinking water pipes, faucets, water tanks and other equipment connected to well water pumping are extremely easy to freeze and even be damaged, resulting in the inability of farmers and herdsmen to draw water normally. To solve the above problems, an insulation house can usually be installed outdoors, and the water intake equipment is set in the insulation house. The temperature in the insulation house is controlled within a certain range to play a role in keeping the water intake equipment warm and reducing the situation of the water intake equipment freezing. However, in the prior art, when farmers and herdsmen use containers to purify and draw water at the water intake equipment, the purified water is likely to splash or overflow, resulting in the wet and slippery ground of the insulation house and prone to safety hazards. Utility Model Content

[0003] The main purpose of this application is to provide an insulation house, aiming to solve the technical problem that when farmers and herdsmen use containers to purify and draw water at the water intake equipment, the purified water is likely to splash or overflow, resulting in the wet and slippery ground of the insulation house and prone to safety hazards.

[0004] To achieve the above object, this application provides an insulation house, including:

[0005] A house body having an insulation cavity, and the house body has a water intake area;

[0006] A water intake pipe at least partially disposed in the insulation cavity, and the water outlet end of the water intake pipe is located in the water intake area;

[0007] Wherein, a drainage groove is arranged in the water intake area, and the drainage groove is configured to at least collect the water dropped from the water outlet end of the water intake pipe and guide it outside the water intake area. The drainage groove can also be used to collect the waste water generated by water treatment, as well as the drainage during equipment maintenance and cleaning of the water tank.

[0008] Optionally, a water-receiving platform is arranged in the water intake area, the water-receiving platform has a placement surface, and the height of the placement surface is higher than the height of the drainage groove.

[0009] Optionally, the water-receiving platform is arranged side by side with the drainage groove, and both ends of the whole formed by the water-receiving platform and the drainage groove are respectively abutted against the two inner side walls opposite to the water intake area.

[0010] Optionally, the water-receiving platform is arranged at the upper end of the drainage groove, the water-receiving platform has a cavity communicated with the drainage groove, and the placement surface has a drainage hole communicated with the cavity.

[0011] Optionally, a drain pipe is provided at the end of the drainage trough, and the water outlet end of the drain pipe is located outside the water intake area.

[0012] Optionally, the housing is provided with a partition, and the housing is divided into a heat preservation cavity and the water intake area by the partition. The water intake area is an open structure, and a protective door is provided at the open structure.

[0013] Optionally, the protective door includes a first door body and a second door body arranged side by side. The outer ends of the first door body and the second door body are hinged to the housing. The first door body and the second door body can rotate respectively around their hinge points, so that the protective door can be switched between a closed state and an open state. The housing is provided with a step surface located in the water intake area. The first door body and the second door body can abut against the step surface to form a limiting structure to prevent the first door body and the second door body from rotating into the water intake area.

[0014] Optionally, a lock groove is provided on one of the first door body and the second door body, and a lock tongue capable of selectively entering the lock groove to form a limiting structure is provided on the other door body.

[0015] Optionally, at least one set of photovoltaic modules is provided on the outer wall of the housing. A heat storage or heating device is provided in the heat preservation cavity. A heating element is provided in the heat storage or heating device. The at least one set of photovoltaic modules is configured to supply power to the heating element.

[0016] Optionally, a water storage tank is provided in the heat preservation cavity. The water storage tank is used to store groundwater, and the water storage tank is communicated with the water intake pipe.

[0017] The beneficial effects that the present application can achieve:

[0018] A heat preservation house provided by an embodiment of the present application. By providing a water intake area in the heat preservation house, the heat preservation cavity can be maintained within a certain temperature range. At least a part of the water intake pipe is located in the heat preservation cavity, so that the heat in the heat preservation cavity can be transmitted to the water intake pipe, reducing the situation that the water intake pipe cannot normally draw water due to freezing caused by too low external environmental temperature; a drainage trough is provided in the water intake area. The drainage trough can collect the water dropped from the water intake pipe or the water overflowing from the water intake containers of farmers and herdsmen. The drainage trough can timely collect the above-mentioned water and guide it outside the water intake area, avoiding long-term accumulation of water in the water intake area, reducing the occurrence of icing, and reducing the potential safety hazard of slipping when farmers and herdsmen draw water. Description of the Drawings

[0019] Figure 1 It is a three-dimensional structure schematic diagram of the heat preservation house according to the embodiment of the present application;

[0020] Figure 2 is Figure 1 the enlarged structural schematic diagram of place A in

[0021] Figure 3 the internal top view structural schematic diagram of the heat preservation room of the embodiment of the present application;

[0022] Figure 4 the side view structural schematic diagram of the heat preservation room of the embodiment of the present application;

[0023] Figure 5 the structural schematic diagram of the water tank structure of the embodiment of the present application;

[0024] Figure 6 the schematic diagram of the water treatment system and the power distribution area of the embodiment of the present application;

[0025] Figure 7 the schematic diagram when the housing body of the embodiment of the present application is a small housing body.

[0026] Reference numerals in the figure:

[0027] 10 - housing body, 11 - photovoltaic module, 20 - partition board, 21 - water intake area, 22 - heat preservation cavity, 30 - water intake pipe, 31 - water storage tank, 40 - drainage trough, 41 - drainage pipe, 50 - water - backing platform, 51 - placement surface, 52 - drainage hole, 60 - heat storage or heating device, 61 - heating element, 70 - protective door, 71 - first door body, 72 - second door body, 73 - lock tongue, 74 - lock groove.

[0028] The realization of the purpose, functional features and advantages of the present application will be further described with reference to the embodiments and the accompanying drawings. Specific embodiments

[0029] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0030] It should be noted that all the directional indications (such as up, down, left, right, front, back...) in the embodiments of the present utility model are only used to explain the relative positional relationship and movement conditions between components in a specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indications will also change accordingly.

[0031] In the present utility model, unless otherwise clearly defined and limited, terms such as "connection" and "fixation" shall be understood in a broad sense. For example, "fixation" can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components or the interaction relationship between two components, unless otherwise clearly defined. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.

[0032] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present utility model, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one of such features. In addition, the meaning of "and / or" appearing throughout the text includes three parallel solutions. Taking "A and / or B" as an example, it includes solution A, solution B, or the solution where A and B are satisfied simultaneously. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the ability of those of ordinary skill in the art to implement. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the protection scope required by the present utility model.

[0033] Embodiment 1

[0034] Referring to Figures 1 - 7 , Figure 6 In the left side of [], there is a placement area for the water treatment system, and on the right side, there is an area for setting power distribution equipment to separate the water treatment system from the power distribution equipment. Figure 7 For the relatively Figure 1 When the housing is a small housing, the structural schematic diagram is shown. The first embodiment of the present application provides a heat-insulating housing, including:

[0035] A housing 10, which has a heat-insulating cavity 22, and the housing 10 has a water intake area 21;

[0036] A water intake pipe 30 disposed at least partially in the heat-insulating cavity 22, and the water outlet end of the water intake pipe 30 is located in the water intake area 21;

[0037] Wherein, a drain trough 40 is provided in the water intake area 21, and the drain trough 40 is configured to collect at least the water dropping from the water outlet end of the water intake pipe 30 and guide it outside the water intake area 21.

[0038] In this embodiment, the water intake area 21 can be an area formed by the inward depression of the housing 10; it can also be an area formed by the outward protrusion of the housing 10; or it can be just a spatial area where the water intake pipe 30 protrudes from the outer wall of the housing 10. The meaning that at least part of the water intake pipe 30 is located in the heat preservation cavity 22 is that the heat in the heat preservation cavity 22 can be transferred to the water intake pipe 30, reducing the situation that the water intake pipe 30 is frozen outdoors at low temperature and cannot discharge water normally. When part of the water intake pipe 30 is located in the heat preservation cavity 22, the water outlet of the water intake pipe 30 is located outside the heat preservation cavity 22, and the user takes water outside the heat preservation cavity 22; when the water intake pipe 30 is entirely located in the heat preservation cavity 22, that is, the water outlet of the water intake pipe 30 is located in the heat preservation cavity 22, the user needs to enter the heat preservation cavity 22 to take water, enabling the user to be in a warm environment when taking water and improving the user's water-taking experience.

[0039] The outer shape structure of the drainage trough 40 can be a box structure with an open upper end. The upper end of the drainage trough 40 is an open structure, which can cover a large range, receive the water dropped by the water intake pipe 30, or the water splashed when farmers and herdsmen take water, or the water overflowing from the water-taking containers of farmers and herdsmen. The drainage trough 40 can be directly connected to the environment outside the water intake area 21 to drain the water in the drainage trough 40 in time.

[0040] Embodiment 2

[0041] As an alternative implementation, referring to Figure 1 and Figure 5 , this embodiment provides a specific structure of a water-carrying platform 50, including: a water-carrying platform 50 is arranged in the water intake area 21, and the water-carrying platform 50 has a placement surface 51, and the height of the placement surface 51 is higher than the height of the drainage trough 40.

[0042] In this embodiment, usually after farmers and herdsmen take water with a container, they still need to transfer the container to another destination for using or storing the water. In order to facilitate the carrying of the container, they usually carry the container on their backs. In order to make it easier and more labor-saving for farmers and herdsmen to carry on their backs, by setting the water-carrying platform 50, the container is first transferred to the placement surface 51 of the water-carrying platform 50, and then the farmer or herdsman picks up the container. The height of the drainage trough 40 is lower than that of the placement platform, so that when farmers and herdsmen take water with containers of different heights, the pipe orifice of the water intake pipe 30 has a sufficient height, and farmers and herdsmen can place the container at the pipe orifice of the water intake pipe 30 to take water.

[0043] Embodiment 3

[0044] As an alternative implementation, referring to Figure 1 , Figure 3 and Figure 5, this embodiment provides an installation structure for two water-retaining platforms 50 and a drainage trough 40, including: the water-retaining platforms 50 and the drainage trough 40 are arranged side by side ( Figure 1 and Figure 3 as shown), and both ends of the whole formed by the water-retaining platforms 50 and the drainage trough 40 are respectively abutted against the two inner side walls opposite to the water intake area 21.

[0045] Optionally, the water-retaining platform 50 is arranged at the upper end of the drainage trough 40 ( Figure 5 as shown), the water-retaining platform 50 has a cavity communicating with the drainage trough 40, and the placing surface 51 has drainage holes 52 communicating with the cavity. A drain pipe 41 is arranged at the end of the drainage trough 40, and the water outlet end of the drain pipe 41 is located outside the water intake area 21.

[0046] In this embodiment, there are two installation methods for the water-retaining platform 50. One method is that the water-retaining platform 50 is arranged at the upper end of the drainage trough 40, and the other method is that the water-retaining platform 50 and the drainage trough 40 are arranged side by side.

[0047] When the water-retaining platform 50 and the drainage trough 40 are arranged side by side, the ends of the water-retaining platform 50 and the drainage trough 40 that are close to each other are tightly abutted. The other end of the water-retaining platform 50 is abutted against one inner side wall of the water intake area 21, and the other end of the drainage trough 40 is abutted against the other inner side wall of the water intake area 21. At this time, by controlling the lengths of the drainage trough 40 and the water-retaining platform 50, the water-retaining platform 50 and the drainage trough 40 can be clamped between the two opposite inner walls of the water intake area 21. Without additionally setting an installation structure for the water-retaining platform 50 and the drainage trough 40, the water-retaining platform 50 and the drainage trough 40 can be prevented from moving randomly. Structures such as a drainage groove can be arranged on the water-retaining platform 50 to guide the water overflowing during water retention into the drainage trough 40.

[0048] When the water-retaining platform 50 is arranged at the upper end of the drainage trough 40, the height requirement of the water-retaining platform 50 itself can be reduced. Compared with the case where the water-retaining platform 50 and the drainage trough 40 are arranged side by side, the height requirement for the water-retaining platform 50 when it is arranged on the drainage trough 40 is lower. By arranging drainage holes 52 on the placing surface 51 of the water-retaining platform 50, when the water in the container overflows onto the placing surface 51, the water can be timely guided into the drainage trough 40 through the drainage holes 52 and the cavity. The accumulation of water on the placing surface 51 for a long time is reduced, and the water on the placing surface 51 does not wet the clothes when farmers and herdsmen carry the container. Further, the upper end of the drainage trough 40 can be a circular working surface, and serrated grooves can be arranged on the working surface. Serrated protrusions adapted to the serrated grooves are arranged at the lower end of the water-retaining platform 50, so that the installation can be completed by placing the water-retaining platform 50 on the upper end of the drainage trough 40. The water-retaining platform 50 will not move randomly on the drainage trough 40, and the water-retaining platform 50 can be placed at any position of the drainage trough 40 according to actual usage requirements.

[0049] Embodiment 4

[0050] As an alternative embodiment, referring to Figure 1 、 Figure 2 and Figure 4 , this embodiment provides a specific structure of a protective door 70, including: a partition 20 is provided in the housing 10, and the housing 10 is separated into a heat preservation cavity 22 and a water intake area 21 by the partition 20. The water intake area 21 is an open structure, and a protective door 70 is provided at the open structure.

[0051] Optionally, the protective door 70 includes a first door body 71 and a second door body 72 arranged side by side. The outer ends of the first door body 71 and the second door body 72 are hinged to the housing 10. The first door body 71 and the second door body 72 can respectively rotate around their hinge points, so that the protective door 70 can be switched between a closed state and an open state. The housing 10 is provided with a step surface in the water intake area 21. The first door body 71 and the second door body 72 can abut against the step surface to form a limiting structure to prevent the first door body 71 and the second door body 72 from rotating into the water intake area 21.

[0052] Optionally, a lock groove 74 is provided on one of the first door body 71 and the second door body 72, and a lock tongue 73 that can selectively enter the lock groove 74 to form a limiting structure is provided on the other door body.

[0053] In this embodiment, by providing the partition 20, the housing 10 is separated into a heat preservation cavity 22 and a water intake area 21. The internal space of the heat preservation cavity 22 is relatively sealed, and one side of the water intake area 21 is an open structure, that is, the housing 10 has an opening structure, and the opening structure is provided with a protective door 70. The housing 10 has a limiting protrusion. By providing the limiting protrusion, when the first door body 71 and the second door body 72 rotate inward, a limiting structure will be formed with the limiting protrusion to prevent the first door body 71 and the second door body 72 from continuing to rotate inward; by providing the first door body 71 and the second door body 72, animals can be effectively prevented from entering the water intake area 21, reducing the risk of animals damaging the water intake pipe 30, and avoiding animals excreting in the water intake area 21, which affects the user's experience of taking water in the water intake area 21. When the user needs to take water, the first door body 71 and the second door body 72 can be pulled outwards. Further, a torsion spring can be provided at the hinge of the first door body 71 and the second door body 72, and the torsion spring applies an inward rotation thrust to the first door body 71 and the second door body 72, so that the first door body 71 and the second door body 72 are in a closed state in the natural state, reducing the risk of accidentally opening the first door body 71 and the second door body 72.

[0054] The lock slot 74 and the lock tongue 73 are arranged on the sides of the first door body 71 and the second door body 72 away from the water intake area 21. One end of the lock tongue 73 is hinged to the first door body 71, and the other end of the lock tongue 73 is a free end. The free end of the lock tongue 73 can rotate around the hinged end. A lock slot 74 cooperating with the lock tongue 73 is arranged on the second door body 72. When the free end of the lock tongue 73 rotates clockwise, the lock tongue 73 can enter the lock slot 74 to complete locking. When unlocking is required, the lock tongue 73 rotates reversely. When the lock tongue 73 enters the lock slot 74, the first door body 71 and the second door body 72 are in a closed state.

[0055] Embodiment 5

[0056] As an alternative implementation manner, referring to Figure 1 and Figure 3 , this embodiment provides a specific structure for heat preservation of a heat preservation room, including: at least one group of photovoltaic modules 11 are arranged on the outer wall of the room body 10, a heat storage or heating device 60 is arranged in the heat preservation cavity 22, a heating element 61 is arranged in the heat storage or heating device 60, and at least one group of photovoltaic modules 11 are configured to supply power to the heating element 61. The heat storage or heating device 60 can also directly heat the air in the heat preservation cavity 20.

[0057] In this embodiment, the structure of the room body 10 of the heat preservation room is made of heat preservation materials. The heat storage or heating device 60 is made of heat-conducting materials, such as iron. Water is contained in the heat storage or heating device 60. The heating element 61 can be an electric heating wire. By supplying power to the electric heating wire, the electric heating wire heats the water in the heat storage or heating device 60, and then heats the air in the heat preservation cavity 22 through the shell of the heat storage or heating device 60, so as to keep the temperature in the heat preservation cavity 22 within a certain range. The heat storage or heating device 60 can also be an electric warm air device. The heat storage or heating device 60 can also be a fixed heat storage box. The heating medium is an electric heating wire, and the heat storage medium can be a solid heat storage brick, which is mainly made of magnesium oxide.

[0058] The working principle of the photovoltaic module 11 is based on the photovoltaic effect of semiconductor materials. When sunlight shines on the surface of the photovoltaic module 11, photons are absorbed by the semiconductor material and excite electrons to jump to a higher energy level, forming free electrons and holes. The free electrons and holes move and separate in the semiconductor to form an electric current. In the structure of the photovoltaic module 11, a P-type semiconductor and an N-type semiconductor form a PN junction. When electrons and holes move to this interface, charge separation will occur and a voltage will be generated. When an external circuit is connected to the photovoltaic module 11, electrons will flow through the circuit to form an output current.

[0059] Embodiment 6

[0060] As an alternative implementation manner, referring to Figure 3This embodiment provides a specific structure of a water intake pipe 30 , including: a water storage tank 31 is arranged in the heat preservation chamber 22 , the water storage tank 31 is used to store groundwater, and the water storage tank 31 is connected to the water intake pipe 30 .

[0061] In this embodiment, the water tank 31 is connected to a water inlet pipe, which is equipped with a water pump. The water inlet pipe is immersed in groundwater, and the groundwater is guided to the water tank 31 by the water pump for storage. A water treatment system can also be set on the pipeline of the water intake pipe 30. The water treatment system can be a device for treating water, or it can only pump water. The water treatment system includes a pre-treatment tank and a post-treatment device connected in sequence to the water tank 31, and the post-treatment device is connected to the water intake pipe 30. In this embodiment, the pre-treatment tank mainly includes a variety of filters, and their main function is to remove large particles of impurities, suspended matter, organic matter, residual chlorine, etc. in the raw water to protect the subsequent precision treatment equipment such as reverse osmosis from damage, while improving the purification efficiency. Specific pre-treatment tank equipment may include: Multi-media filter: through filter layers of different particle sizes (such as quartz sand, manganese sand, etc.), large particles of suspended matter and impurities in the water are effectively removed to protect the subsequent treatment equipment. Activated carbon filter: using the adsorption properties of activated carbon, it effectively adsorbs organic matter, residual chlorine, color and odor in the water to improve the taste of water quality. Precision filter: Usually a filter element with a pore size of 5μm is used to further remove tiny particles and impurities and improve the water quality entering the desalination part. These pre-treatment tank equipment can be selected and combined according to the raw water quality and treatment requirements to achieve the best pre-treatment effect. The post-treatment device 22 can be a reverse osmosis membrane assembly. A water storage tank 31 is also provided at the rear end of the post-treatment device. The water storage tank 31 is used to store purified water for users to take water in time. The water intake pipe 30 is connected to the water storage tank 31. The water treatment system can be powered by the photovoltaic module 11, and batteries, reverse control integrated machines, etc. can also be provided in the insulation chamber 22.

[0062] The above are only preferred embodiments of the present application, and are not intended to limit the patent scope of the present application. Any equivalent structure or equivalent process transformation made using the contents of the present application specification and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present application.

Claims

1. A heat-insulated house, characterized in that, Comprising: A housing body having a heat-insulating cavity, and the housing body has a water intake area; A water intake pipe at least partially disposed in the heat-insulating cavity, and the water outlet end of the water intake pipe is located in the water intake area; Wherein, a drain trough is arranged in the water intake area, and the drain trough is configured to collect at least the water dropping from the water outlet end of the water intake pipe and guide it outside the water intake area.

2. The heat preservation room according to claim 1, characterized in that, A water-receiving platform is arranged in the water intake area, the water-receiving platform has a placement surface, and the height of the placement surface is higher than the height of the drain trough.

3. The heat-insulating house according to claim 2, wherein The water-receiving platform is arranged side by side with the drain trough.

4. The heat-insulating house according to claim 2, wherein The water-receiving platform is arranged at the upper end of the drain trough, the water-receiving platform has a cavity communicating with the drain trough, and the placement surface has a drain hole communicating with the cavity.

5. The heat preservation house according to claim 4, characterized in that, A drain pipe is arranged at the end of the drain trough, and the water outlet end of the drain pipe is located outside the water intake area.

6. The heat-insulating house according to claim 1, wherein The housing body is provided with a partition board, and the housing body is divided into a heat-insulating cavity and the water intake area by the partition board. The water intake area is an open structure, and a protective door is arranged at the open structure.

7. The heat preservation room according to claim 6, characterized in that, The protective door includes a first door body and a second door body arranged side by side. The outer ends of the first door body and the second door body are hinged to the housing body. The first door body and the second door body can respectively rotate around their hinge joints so that the protective door can be switched between a closed state and an open state. The housing body is provided with a step surface in the water intake area, and the first door body and the second door body can abut against the step surface to form a limiting structure to prevent the first door body and the second door body from rotating into the water intake area.

8. The heat preservation room according to claim 7, characterized in that, A lock groove is arranged on one of the first door body and the second door body, and a lock tongue capable of selectively entering the lock groove to form a limiting structure is arranged on the other door body.

9. The heat-insulating house according to claim 6, wherein, At least one group of photovoltaic modules is arranged on the outer wall of the housing body, and a heat storage or heating device is arranged in the heat-insulating cavity. The at least one group of photovoltaic modules is configured to supply power to the heat storage or heating device.

10. The heat-insulating house according to claim 6, characterized in that, A water storage tank is arranged in the heat-insulating cavity, and the water storage tank is communicated with the water intake pipe.