High-quality house

By adopting advanced materials and intelligent systems in the residence, including natural lighting devices, temperature regulation devices and water resource utilization systems, the shortcomings of traditional residences in structural safety, energy efficiency, intelligence and water resource utilization are solved, and the comprehensive improvement and sustainable development of high-quality residences have been achieved.

CN119933415APending Publication Date: 2025-05-06KEJIAN CONSTRUCTION (JINAN) GROUP CO LTD
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Patent Information

Application Number
CN202510061227.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-15
Publication Date
2025-05-06

AI Technical Summary

Technical Problem

Traditional residential buildings have many shortcomings in structural safety, energy efficiency, intelligence degree and water resource utilization, resulting in safety hazards, energy waste, intelligence deficiency and water resource waste.

Method used

By adopting advanced materials, optimized design and intelligent systems, a high-quality residential building, including natural daylighting devices and temperature regulation devices, achieve uniform daylighting and indoor temperature regulation, and combine rainwater collection and sewage treatment systems to optimize water resource utilization.

Benefits of technology

It has achieved a comprehensive improvement of the residential structure, reduced energy consumption and carbon emissions, improved the comfort of the indoor environment, improved the living experience, and promoted the conservation and sustainable use of water resources.

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Abstract

The invention provides a high-quality house which comprises a wall structure and a top layer structure, the top layer structure is provided with a natural lighting device, and the natural lighting device is used for adjusting indoor natural lighting; the wall structure is provided with a temperature adjusting device, and the temperature adjusting device is used for adjusting and controlling the indoor temperature. According to the technical scheme, uniform lighting is achieved, and light concentration or insufficiency is avoided; meanwhile, the working state is automatically adjusted, the optimal lighting effect is achieved, energy is saved, energy consumption and carbon emission of a building are greatly reduced, the design concept of a green building is met, the comfort degree of the indoor environment is effectively improved, and the working and living experience of people is improved; dependence on a traditional air conditioner and heating system is reduced, and building energy consumption is remarkably reduced.
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Description

Background Art

[0002] With the development of social economy and the improvement of people's living standards, residents have higher and higher requirements for housing quality and living environment. Traditional houses have many shortcomings in terms of structural safety, energy efficiency, intelligence and water resource utilization, including:

[0003] 1. Insufficient structural safety:

[0004] Some traditional houses are built a long time ago and have low design standards, making them difficult to withstand natural disasters such as earthquakes and floods.

[0005] The aging of structural materials has resulted in a decrease in load-bearing capacity, posing a safety hazard.

[0006] 2. Inefficient Energy:

[0007] Traditional houses are improperly designed in terms of insulation, heat insulation, ventilation, etc., resulting in high energy consumption.

[0008] The lack of efficient energy management systems, such as intelligent temperature control systems and solar energy utilization, leads to serious energy waste.

[0009] 3. Low degree of intelligence:

[0010] Traditional homes usually lack smart home systems and are unable to achieve functions such as remote control and automated management.

[0011] The imperfect security system, such as the lack of smart door locks and surveillance cameras, reduces residential safety.

[0012] 4. Low efficiency of water resource utilization:

[0013] Traditional houses lack water-saving measures such as rainwater collection and wastewater recycling, resulting in waste of water resources.

[0014] Improper design of the water supply and drainage system leads to problems such as insufficient water pressure and water leakage. Summary of the invention

[0015] The present application provides a high-quality residence that achieves a comprehensive improvement in residential structure by adopting advanced materials, optimized design and intelligent systems.

[0016] The present application provides a high-quality residence, comprising: a wall structure and a top structure, wherein:

[0017] The top structure is provided with a natural lighting device, and the natural lighting device is used to adjust the indoor natural lighting;

[0018] The wall structure is provided with a temperature regulating device, and the temperature regulating device is used to regulate the indoor temperature.

[0019] In the above technical solution, the top structure is provided with a natural lighting device, which is used to adjust the indoor natural lighting; the wall structure is provided with a temperature regulating device, which is used to regulate the indoor temperature; by setting the natural lighting device, uniform lighting is achieved and concentrated or insufficient light is avoided; at the same time, the working state is automatically adjusted to achieve the best lighting effect, save energy, greatly reduce the energy consumption and carbon emissions of the building, comply with the design concept of green buildings, effectively improve the comfort of the indoor environment, and improve people's work and life experience; by setting the temperature regulating device, the dependence on traditional air-conditioning and heating systems is reduced, and the energy consumption of the building is significantly reduced.

[0020] In a specific implementation scheme, the natural lighting device includes a sunlight collector, a conductive pipe, a reflective distributor and a lighting control system, wherein:

[0021] The sunlight collector is arranged outside the wall structure and is used to collect natural sunlight;

[0022] The conduction pipe is connected to the sunlight collector and is used to conduct the collected sunlight to different areas indoors;

[0023] The reflective distributor is arranged at the end or branch point of the conductive pipe, and is used to evenly distribute the conductive sunlight to various lighting areas indoors;

[0024] The lighting control system is electrically connected to the sunlight collector and the reflective distributor, respectively, and includes a visible light sensor and a light controller, which are used to monitor the indoor light intensity and regulate the sunlight collector and the reflective distributor.

[0025] In a specific embodiment, the sunlight collector includes an automatic tracking mechanism, and the automatic tracking mechanism is electrically connected to the lighting controller;

[0026] The outer surface of the sunlight collector is provided with a high reflective material layer.

[0027] In a specific embodiment, the conductive pipe is made of a highly reflective material.

[0028] In a specific embodiment, the reflective distributor includes a plurality of reflectors for adjusting the reflection angle and light distribution.

[0029] In a specific embodiment, the temperature regulating device comprises:

[0030] Temperature sensors are installed on both sides of the wall to monitor indoor and outdoor temperatures in real time;

[0031] A temperature regulating material layer, used to regulate the indoor temperature;

[0032] A temperature control controller is used to control the operating state of the temperature control material layer according to the temperature data received from the temperature sensor.

[0033] In a specific embodiment, the temperature adjustment material layer includes a phase change material layer and an electrochromic material layer, wherein:

[0034] The phase change material layer is used to change its physical state at different temperatures and absorb or release heat;

[0035] The electrochromic material layer is used to adjust its light transmittance and reflectivity according to temperature changes.

[0036] In a specific embodiment, the temperature regulating device comprises a ventilation unit, wherein:

[0037] The ventilation unit is used to assist in temperature control.

[0038] In a specific embodiment, it also includes a water resource utilization device, wherein:

[0039] The water resource utilization device comprises: a rainwater collection and purification unit and a sewage treatment unit, which are used to manage and utilize water resources.

[0040] In a specific implementation scheme, a smart home control system, wherein:

[0041] The smart home control system is electrically connected to the natural lighting device, the temperature regulating device and the water resource utilization device respectively. BRIEF DESCRIPTION OF THE DRAWINGS

[0042] Figure 1 A schematic diagram of the structure of a high-quality residence provided in an embodiment of the present application;

[0043] Figure 2 A schematic structural diagram of another high-quality residence provided in an embodiment of the present application.

[0044] Among them, 1-wall structure, 2-top structure, 3-sunlight collector, 4-conduction pipe, 5-reflection distributor, 6-temperature regulating material layer, 7-rainwater collection and purification unit, 8-water storage bag. DETAILED DESCRIPTION

[0045] The present application is further described in detail below through the accompanying drawings and embodiments. Through these descriptions, the characteristics and advantages of the present application will become clearer and more specific.

[0046] The word "exemplary" is used exclusively herein to mean "serving as an example, embodiment, or illustration." Any embodiment described herein as "exemplary" is not necessarily to be construed as preferred or advantageous over other embodiments. Although various aspects of the embodiments are shown in the drawings, the drawings are not necessarily drawn to scale unless otherwise noted.

[0047] In addition, the technical features involved in different embodiments of the present application described below can be combined with each other as long as they do not conflict with each other.

[0048] To facilitate understanding of the high-quality housing provided by the embodiment of the present application, its application scenario is first explained. The high-quality housing provided by the embodiment of the present application is used to achieve a comprehensive improvement of the residential structure by adopting advanced materials, optimized design and intelligent systems. With the development of social economy and the improvement of people's living standards, residents have higher and higher requirements for housing quality and living environment. Traditional housing has many deficiencies in structural safety, energy efficiency, degree of intelligence and water resource utilization, including: 1. Insufficient structural safety: Some traditional houses are difficult to resist natural disasters such as earthquakes and floods due to their long construction age and low design standards. The aging of structural materials leads to a decrease in load-bearing capacity and potential safety hazards. 2. Low energy efficiency: Traditional houses are improperly designed in terms of insulation, heat insulation, ventilation, etc., resulting in high energy consumption. The lack of efficient energy management systems, such as intelligent temperature control systems, solar energy utilization, etc., leads to serious energy waste. 3. Low degree of intelligence: Traditional houses usually lack smart home systems and cannot realize functions such as remote control and automated management. The imperfect security system, such as the lack of smart door locks, surveillance cameras, etc., reduces residential safety. 4. Low efficiency of water resource utilization: Traditional houses lack water-saving measures such as rainwater collection and wastewater recycling, resulting in water resource waste. The unreasonable design of the water supply and drainage system leads to problems such as insufficient water pressure and water leakage. To this end, the embodiment of the present application provides a high-quality house, which achieves a comprehensive improvement of the residential structure by adopting advanced materials, optimized design and intelligent systems. The following is a detailed description of the embodiment in conjunction with specific drawings.

[0049] refer to Figure 1 and Figure 2 , Figure 1 A schematic diagram of the structure of a high-quality residence provided in an embodiment of the present application; Figure 2 A schematic structural diagram of another high-quality residence provided in an embodiment of the present application.

[0050] exist Figure 1 and Figure 2 In the embodiment of the present application, a high-quality residence is provided, comprising: a wall structure 1 and a top structure 2, wherein:

[0051] The top structure is provided with a natural lighting device, and the natural lighting device is used to adjust the indoor natural lighting;

[0052] The wall structure is provided with a temperature regulating device, and the temperature regulating device is used to regulate the indoor temperature.

[0053] In the above technical solution, the top structure is provided with a natural lighting device, which is used to adjust the indoor natural lighting; the wall structure is provided with a temperature regulating device, which is used to regulate the indoor temperature; by setting the natural lighting device, uniform lighting is achieved and concentrated or insufficient light is avoided; at the same time, the working state is automatically adjusted to achieve the best lighting effect, save energy, greatly reduce the energy consumption and carbon emissions of the building, comply with the design concept of green buildings, effectively improve the comfort of the indoor environment, and improve people's work and life experience; by setting the temperature regulating device, the dependence on traditional air-conditioning and heating systems is reduced, and the energy consumption of the building is significantly reduced.

[0054] In a specific implementation scheme, the natural lighting device includes a sunlight collector 3, a conductive pipe 4, a reflective distributor 5 and a lighting control system, wherein:

[0055] The sunlight collector is arranged outside the wall structure and is used to collect natural sunlight;

[0056] The conduction pipe is connected to the sunlight collector and is used to conduct the collected sunlight to different areas indoors;

[0057] The reflective distributor is arranged at the end or branch point of the conductive pipe, and is used to evenly distribute the conductive sunlight to various lighting areas indoors;

[0058] The lighting control system is electrically connected to the sunlight collector and the reflective distributor, respectively, and includes a visible light sensor and a light controller, which are used to monitor the indoor light intensity and regulate the sunlight collector and the reflective distributor.

[0059] In a specific embodiment, the sunlight collector includes an automatic tracking mechanism, and the automatic tracking mechanism is electrically connected to the lighting controller;

[0060] The outer surface of the sunlight collector is provided with a high reflective material layer.

[0061] In a specific embodiment, the conductive pipe is made of a highly reflective material. The conductive pipe can be flexibly arranged according to the building structure, including straight pipes, curved pipes, bifurcated pipes and other forms.

[0062] In a specific embodiment, the reflective distributor includes a plurality of reflectors for adjusting the reflection angle and light distribution.

[0063] Specifically, the working process of the natural lighting device is as follows: the sunlight collector efficiently collects natural sunlight and guides it into the conductive pipe through a high-reflectivity surface and an automatic tracking device; the highly reflective material on the inner wall of the conductive pipe ensures that the light is transmitted to the room with minimal attenuation in the pipe; the reflective distributor evenly distributes the conducted sunlight to the designated area according to the instructions of the lighting control system to achieve uniform indoor lighting. The control system automatically adjusts the working status of each component according to changes in ambient light and indoor needs to ensure that the system is always in the best working state.

[0064] In a specific implementation scheme, the surface of the sunlight collector is made of silver-plated high-reflectivity material and is equipped with a dual-axis solar tracking system. The collected sunlight is transmitted through a conductive pipe with a diameter of 30 cm. The inner wall of the conductive pipe is made of high-reflectivity aluminum foil material with a reflectivity of more than 95%. A reflective distributor is set at the end of the pipe, and the distributor has built-in multi-faceted adjustable reflectors to evenly distribute sunlight to various working areas according to the indoor lighting needs. The control system includes a light sensor and an automatic control device to monitor the indoor and outdoor light intensity in real time and automatically adjust the working status of the sunlight collector and the reflective distributor.

[0065] In a specific embodiment, the sunlight collector is made of high-reflectivity chrome-plated material and equipped with a single-axis sun tracking system. The inner wall of the conduction pipe is made of high-reflectivity stainless steel material to ensure the efficiency of light transmission. The reflective distributor is set on the ceiling of each room, and the sunlight is evenly distributed to every corner of the room through an adjustable reflector.

[0066] The above technical solution has the following advantages:

[0067] 1. Efficiently collect and conduct sunlight: Through high-reflectivity materials and automatic tracking devices, maximize the collection of natural sunlight, and transmit it to the room through efficient conduction pipes to reduce light attenuation.

[0068] 2. Uniform lighting: The reflective distributor can evenly distribute the transmitted sunlight to various areas of the room, achieving uniform lighting and avoiding concentrated or insufficient light.

[0069] 3. Intelligent control: The control system automatically adjusts the working status of each component according to changes in ambient light and indoor lighting requirements to achieve optimal lighting effects and save energy.

[0070] 4. Flexible arrangement: The conductive pipes and reflective distributors can be flexibly arranged according to the building structure, which is suitable for buildings of different types and layouts and has broad application prospects.

[0071] 5. Environmental protection and energy saving: By efficiently collecting and transmitting natural sunlight, it reduces dependence on artificial lighting, greatly reduces the energy consumption and carbon emissions of buildings, and conforms to the design concept of green buildings.

[0072] 6. Improve comfort: Natural light is softer and more natural than artificial light, which can effectively improve the comfort of the indoor environment and improve people's work and life experience.

[0073] 7. Reduce operating costs: By reducing the use of artificial lighting, electricity costs are significantly reduced.

[0074] In a specific embodiment, the temperature regulating device comprises:

[0075] Temperature sensors are installed on both sides of the wall to monitor indoor and outdoor temperatures in real time;

[0076] Thermostatic material layer 6 is used to adjust the indoor temperature;

[0077] A temperature control controller is used to control the operating state of the temperature control material layer according to the temperature data received from the temperature sensor.

[0078] In a specific embodiment, the temperature adjustment material layer includes a phase change material layer and an electrochromic material layer, wherein:

[0079] The phase change material layer is used to change its physical state at different temperatures and absorb or release heat;

[0080] The electrochromic material layer is used to adjust its light transmittance and reflectivity according to temperature changes.

[0081] In a specific embodiment, the temperature regulating device comprises a ventilation unit, wherein:

[0082] The ventilation unit is used to assist in temperature control.

[0083] Specifically, the working process of the temperature control device is as follows: the temperature sensor monitors the indoor and outdoor temperatures in real time and transmits the data to the temperature control controller. The temperature control controller analyzes and processes the temperature data to determine whether the current indoor temperature needs to be adjusted; if the indoor temperature is too high, the temperature control controller activates the phase change material to absorb excess heat, while the electrochromic material reduces the reflectivity and increases the heat absorption; if the indoor temperature is too low, the temperature control controller activates the phase change material to release the stored heat, while the electrochromic material increases the reflectivity and reduces the heat absorption; the ventilation system is started when necessary to introduce fresh air or exhaust indoor hot air to assist in temperature control.

[0084] In a specific embodiment, the phase change material is a salt hydrate with high heat storage capacity, and the electrochromic material is a tungsten oxide film.

[0085] In a specific embodiment, the phase change material is a fatty acid ester with high heat storage capacity, and the electrochromic material is a nickel oxide film.

[0086] The above technical solution has the following advantages: 1. Significant energy-saving effect: Through the comprehensive regulation of the intelligent material layer and the ventilation system, the dependence on traditional air conditioning and heating systems is reduced, and the building energy consumption is significantly reduced. 2. Improved living comfort: Automatically adjust the indoor temperature according to the changes in indoor and outdoor temperature and humidity.

[0087] In a specific implementation scheme, for different areas of the wall, the phase change material layer is respectively provided with a low melting point salt hydrate layer and a high melting point paraffin compound layer; correspondingly, for different areas of the wall, the electrochromic material layer is respectively provided with a tungsten oxide layer and a nickel oxide layer. The temperature control controller adopts an algorithm based on big data analysis and machine learning large model prediction for temperature control, specifically including:

[0088] Phase change material intelligent selection module: According to the geographical location, climate conditions and specific needs of the building, the historical meteorological data is analyzed by big data to intelligently recommend and apply the most suitable phase change material, such as low melting point salt hydrates in cold areas and high melting point paraffin compounds in hot areas to achieve efficient thermal energy storage and release; where the phase change material PCM is Phase Change Material. In this embodiment, different phase change material layers are selected.

[0089] Electrochromic material adaptive adjustment module: Combined with the building orientation, seasonal changes and real-time solar radiation intensity data, the working state of electrochromic materials (such as tungsten oxide and nickel oxide) is selected and dynamically adjusted through a big data algorithm to optimize the light transmittance and reflectivity of the window, thereby effectively controlling the indoor light intensity and temperature fluctuations. In this embodiment, different electrochromic materials are selected.

[0090] Big data-driven predictive control module: Integrate a large machine learning model to conduct in-depth learning of multi-dimensional data such as historical temperature and humidity, outdoor meteorological conditions, and personnel activity patterns, predict future trends in indoor temperature and humidity, adjust the temperature in advance, and improve control accuracy and response speed. In this embodiment, the large machine learning model uses a deep learning neural network.

[0091] Remote intelligent monitoring platform: Using the Internet of Things technology to build a remote control and monitoring system, users can view indoor environmental parameters in real time through mobile phone APP or computer terminals, and manually or automatically adjust system settings based on the prediction results to achieve a personalized comfort experience.

[0092] Intelligent air quality management module: Integrate high-efficiency air filters and purification devices into the ventilation system, use big data to analyze indoor and outdoor air quality data, and intelligently adjust ventilation strategies to ensure that indoor air quality meets standards.

[0093] Natural and mechanical ventilation collaborative optimization module: Combined with real-time meteorological information (such as wind direction and wind speed), the opening and closing status and size of the air inlet and exhaust port are dynamically adjusted through big data algorithms to maximize the use of natural ventilation potential and reduce mechanical ventilation energy consumption.

[0094] In this embodiment, the large model adopts the ARIMA model (autoregressive differential moving average model).

[0095] It should be noted that the ARIMA model includes:

[0096] Autoregression (AR): predicting future values ​​based on the past values ​​of the series itself.

[0097] Difference (I): The difference operation is used to eliminate the trend and seasonality in the time series and make the data into a stationary series. The difference order d indicates how many orders of difference are needed to make the data stationary.

[0098] Moving Average (MA): predicts future values ​​using forecast errors from past time periods. The moving average order q indicates the number of lags of the forecast errors used.

[0099] The ARIMA model is usually expressed as ARIMA(p,d,q), where:

[0100] p: autoregressive order, which indicates the number of lags of the time series data itself used in the forecasting model.

[0101] d: The difference order, which indicates how many orders of difference the time series data needs to undergo to become a stationary series.

[0102] q: Moving average order, which represents the number of lags of the forecast error used in the forecast model.

[0103] The modeling steps of the ARIMA model include:

[0104] Data acquisition and preprocessing: Acquire the time series data of the observed system and perform data cleaning and preprocessing.

[0105] Stationarity test: Determine the stationarity of the data by drawing a scatter plot of the time series, calculating the autocorrelation coefficient and partial autocorrelation coefficient, and performing a unit root test.

[0106] Difference processing: For non-stationary time series data, difference operations are performed to eliminate trends and seasonality and make the data into a stationary series.

[0107] Model parameter selection: According to the autocorrelation diagram and partial autocorrelation diagram of the stationary time series, select the best layer p and order q. At the same time, according to the difference order d, determine the parameters of the ARIMA model.

[0108] Model building and testing: Based on the selected parameters, the ARIMA model is established and the model is tested, including residual analysis, model diagnosis and other steps.

[0109] Forecasting and Evaluation: Use the established ARIMA model to predict future values ​​and evaluate the accuracy and reliability of the forecast results.

[0110] Advantages of the ARIMA model include:

[0111] Solid theoretical foundation: The ARIMA model is built on rigorous statistics and econometrics and has a solid theoretical foundation. This makes the model highly reliable in explaining and predicting time series data.

[0112] Strong applicability: The ARIMA model can handle various types of time series data, including stationary and non-stationary data. Through differential processing, the ARIMA model can transform non-stationary data into stationary data, thereby making accurate predictions. This makes the ARIMA model applicable in a wide range of fields, such as economics, finance, meteorology, and medicine.

[0113] High prediction accuracy: With proper parameter selection and model optimization, the ARIMA model can provide accurate prediction results. Especially for time series data with linear trends and seasonal characteristics, the prediction accuracy of the ARIMA model is usually high.

[0114] Good flexibility: The ARIMA model allows to adapt to different types of time series data by adjusting parameters such as autoregressive order (p), difference order (d) and moving average order (q). This makes the ARIMA model very flexible and adaptable, and can be customized according to the specific characteristics of the data.

[0115] Easy to understand and interpret: The parameters of the ARIMA model have clear statistical significance, making the model results easy to understand and interpret. This helps users better understand the inherent laws of time series data and forecast results.

[0116] The above technical solution has the following advantages:

[0117] 1. Significantly improve energy efficiency: Through accurate prediction and intelligent control, it can effectively avoid overheating or cooling and significantly reduce energy consumption.

[0118] 2. Improve indoor comfort: Automatically adjust indoor temperature and humidity according to actual needs to create a healthier and more comfortable living environment.

[0119] 3. Enhance user experience: Provide remote monitoring and personalized setting functions to enhance user participation and satisfaction.

[0120] 4. Promote environmental protection and sustainable development: reduce carbon emissions and promote the development of green buildings.

[0121] In a specific embodiment, it also includes a water resource utilization device, wherein:

[0122] The water resource utilization device includes: a rainwater collection and purification unit 7 and a sewage treatment unit, which are used to manage and utilize water resources. The rainwater collection and purification unit 7 is connected to a water storage bag 8 set in the wall, which is used to adjust the indoor temperature; it combines rainwater collection and purification technology with indoor temperature control, collects and purifies rainwater, and stores it in the water storage bag in the wall. The water storage bag is used as a heat exchange medium and is combined with the temperature controller to achieve effective regulation of the indoor temperature through the fusion of flow rate control and temperature control. Specifically including:

[0123] Rainwater collection and purification:

[0124] The rainwater collection unit is arranged on the wall structure of the building to collect rainwater.

[0125] The collected rainwater is processed through a purification system to remove impurities and pollutants to ensure that the water quality meets the usage standards.

[0126] The purified rainwater is transported to the water storage bag installed in the wall.

[0127] The water storage bag has good heat exchange performance and can absorb and release heat.

[0128] Based on the integration of flow rate control and temperature control, the thermostat can accurately adjust the indoor temperature.

[0129] When the indoor temperature is higher than the set value, the system speeds up the flow rate of water in the water storage bag and uses the heat exchange performance of water to absorb indoor heat, thereby lowering the indoor temperature; when the indoor temperature is lower than the set value, the system slows down the flow rate to allow the water storage bag to release heat, thereby raising the indoor temperature.

[0130] In the above technical solution, the advantages include:

[0131] 1. Energy saving and environmental protection: Using rainwater as a heat exchange medium reduces dependence on traditional energy, energy consumption and carbon emissions. Rainwater is a free natural resource, and using rainwater for temperature regulation has significant economic benefits.

[0132] 2. Improve indoor comfort: Through precise temperature control and flow rate regulation, the system can provide a more comfortable indoor environment. The setting of water storage bags helps to evenly distribute heat and avoid excessive indoor temperature fluctuations.

[0133] 3. Enhance building sustainability: The system helps improve the energy efficiency and sustainability of buildings, in line with the concept of green buildings and low-carbon living. By utilizing rainwater resources, the system helps alleviate the problem of water shortage in cities.

[0134] 4. Versatility: In addition to being used for indoor temperature regulation, the purified rainwater can also be used for other purposes, such as watering green plants, flushing toilets, etc. The setting of the water storage bag also helps to improve the sound insulation and thermal insulation performance of the building.

[0135] Specifically, the water resource utilization device includes: after preliminary filtration, rainwater is stored in a special water storage tank for non-drinking water purposes such as green plant irrigation and toilet flushing.

[0136] The sewage treatment system treats domestic sewage initially and then uses it for green irrigation or toilet flushing, further improving the utilization rate of water resources.

[0137] Equipped with smart water meters and water leakage alarm systems, it can monitor household water usage in real time and promptly alarm when a water leakage occurs, thus reducing water waste and household losses.

[0138] In a specific implementation scheme, a smart home control system, wherein:

[0139] The smart home control system is electrically connected to the natural lighting device, the temperature regulating device and the water resource utilization device respectively.

[0140] Those skilled in the art will appreciate that the present application may be implemented as a system, method or computer program product.

[0141] Therefore, the present disclosure may be specifically implemented in the following forms, namely: it may be completely hardware, it may be completely software (including firmware, resident software, microcode, etc.), or it may be a combination of hardware and software, generally referred to herein as a "circuit", "module" or "system". In addition, in some embodiments, the present application may also be implemented in the form of a computer program product in one or more computer-readable media, and the computer-readable medium may contain computer-readable program code.

[0142] Any combination of one or more computer-readable media can be used. Computer-readable media can be computer-readable signal media or computer-readable storage media. Computer-readable storage media can be, for example, but not limited to, electrical, magnetic, optical, electromagnetic, infrared, or semiconductor systems, devices or devices, or any combination of the above. More specific examples (non-exhaustive list) of computer-readable storage media include: electrical connections with one or more wires, portable computer disks, hard disks, random access memories (RAM), read-only memories (ROM), erasable programmable read-only memories (EPROM or flash memory), optical fibers, portable compact disk read-only memories (CD-ROM), optical storage devices, magnetic storage devices, or any suitable combination of the above. In this document, computer-readable storage media can be any tangible medium containing or storing a program, which can be used by an instruction execution system, device or device or used in combination with it.

[0143] Although the embodiments of the present application have been shown and described above, it is understood that the above embodiments are exemplary and cannot be understood as limiting the present application. A person of ordinary skill in the art can change, modify, replace and modify the above embodiments within the scope of the present application. On this basis, a variety of replacements and improvements can be made to the present application, all of which fall within the scope of protection of the present application.

Claims

1. A high-quality residence, characterized by: Including: wall structure and top structure, among which, The top structure is provided with a natural lighting device, and the natural lighting device is used to adjust the indoor natural lighting; The wall structure is provided with a temperature regulating device, and the temperature regulating device is used to regulate the indoor temperature.

2. The high-quality residence according to claim 1, characterized in that: The natural lighting device includes a sunlight collector, a conductive pipe, a reflective distributor and a lighting control system, wherein: The sunlight collector is arranged outside the wall structure and is used to collect natural sunlight; The conduction pipe is connected to the sunlight collector and is used to conduct the collected sunlight to different areas indoors; The reflective distributor is arranged at the end or branch point of the conductive pipe, and is used to evenly distribute the conductive sunlight to various lighting areas indoors; The lighting control system is electrically connected to the sunlight collector and the reflective distributor, respectively, and includes a visible light sensor and a light controller, which are used to monitor the indoor light intensity and regulate the sunlight collector and the reflective distributor.

3. The high-quality residence according to claim 2, characterized in that: The sunlight collector comprises an automatic tracking mechanism, and the automatic tracking mechanism is electrically connected to the illumination controller; The outer surface of the sunlight collector is provided with a high reflective material layer.

4. The high-quality residence according to claim 3, characterized in that: The conductive pipe is made of highly reflective material.

5. The high-quality residence according to claim 4, characterized in that: The reflective distributor includes a plurality of reflectors for adjusting the reflection angle and light distribution.

6. The high-quality residence according to claim 5, characterized in that: The temperature regulating device comprises: Temperature sensors are installed on both sides of the wall to monitor indoor and outdoor temperatures in real time; A temperature regulating material layer, used to regulate the indoor temperature; A temperature control controller is used to control the operating state of the temperature control material layer according to the temperature data received from the temperature sensor.

7. The high-quality residence according to claim 6, characterized in that: The temperature adjustment material layer includes a phase change material layer and an electrochromic material layer, wherein: The phase change material layer is used to change its physical state at different temperatures and absorb or release heat; The electrochromic material layer is used to adjust its light transmittance and reflectivity according to temperature changes.

8. The high-quality residence according to claim 7, characterized in that: The temperature regulating device comprises a ventilation unit, wherein: The ventilation unit is used to assist in temperature control.

9. The high-quality residence according to claim 8, characterized in that: It also includes a water resource utilization device, wherein: The water resource utilization device comprises: a rainwater collection and purification unit and a sewage treatment unit, which are used to manage and utilize water resources.

10. The high-quality residence according to claim 9, characterized in that: Also includes: Smart home control system, where The smart home control system is electrically connected to the natural lighting device, the temperature regulating device and the water resource utilization device respectively.