Energy-saving and low-carbon temporarily-built fabricated house

By integrating cadmium telluride power generation components, inverters, grid-connected metering boxes, intelligent distribution cabinets, and remote controllers into prefabricated temporary buildings, the problems of remote monitoring and power management of solar power generation devices have been solved, achieving low-carbon operation and improved environmental performance.

CN223577629UActive Publication Date: 2025-11-21CHINA RAILWAY NO 1 BUREAU GRP MATERIALS IND TRADE CO LTD +1
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Patent Information

Application Number
CN202422945121.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-11-21
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

The existing temporary prefabricated houses cannot be remotely monitored and tested when solar power generation devices are added to the top, lack fault diagnosis and intelligent power distribution functions, and have high construction costs and insufficient environmental performance.

Method used

The system combines cadmium telluride power generation components, inverters, grid-connected metering boxes, intelligent distribution cabinets, and remote controllers to achieve remote monitoring and management of solar power generation. Combined with lithium battery packs and anti-reverse current devices, it ensures safe power distribution and fault alarm functions.

Benefits of technology

It enables optimized management of solar power generation, provides fault diagnosis and intelligent power allocation, reduces construction costs, improves environmental performance, and meets the requirements for low-carbon operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an energy-saving and low-carbon temporarily-built fabricated house, which belongs to the technical field of temporarily-built houses and comprises a house body, a slope framework, a cadmium telluride power generation component, an inverter, a grid-connected metering box, an intelligent power distribution cabinet and a remote controller, the slope framework is mounted on the house body, the cadmium telluride power generation component is mounted on the slope framework, and the grid-connected metering box is mounted on the intelligent power distribution cabinet. The inverter and the grid-connected metering box are installed on the side wall of the house body, the intelligent power distribution cabinet and the remote controller are installed on the inner side wall of the house body, the cadmium telluride power generation assembly and the inverter are electrically connected with the grid-connected metering box, the grid-connected metering box is electrically connected with the power interface, and the power interface is electrically connected with the intelligent power distribution cabinet. And the inverter, the grid-connected metering box and the intelligent power distribution cabinet are electrically connected with the remote controller. According to the utility model, the inverter, the grid-connected metering box and the intelligent power distribution cabinet are monitored and detected through remote control, power generation is automatically adjusted and optimized, data acquisition is facilitated, management of management personnel is assisted, and the system has auxiliary functions of fault judgment, alarm and the like.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the technical field of temporary building, especially relates to a temporary assembled house of energy -conserving low carbon. BACKGROUND

[0002] At present, the temporary building in the project is basically two categories of color steel house and assembled house. The color steel house is a kind of house with light steel as the framework and sandwich panel as the enclosure material, and the construction period of the color steel house is much higher than that of the assembled house, and after completion, it still needs to be poured twice to form the indoor floor, which greatly increases the construction cost, causes more construction waste, pollutes the environment, does not soundproof, has high noise, is troublesome to disassemble and assemble, and has very low turnover rate, which does not meet the requirements of standardization, greenization and environmental protection of the current project temporary building. At the same time, with the development of intelligentization and technologization of project facilities and equipment, the demand for daily power consumption is increasing, and power overload often occurs. The assembled house is a kind of energy-saving and environment-friendly product compared with the color steel house, and has the characteristics of safety, stability, quick installation and the like, but the existing technology cannot remotely monitor and detect the solar power generation condition by increasing the solar power generation device at the top of the assembled house, and does not have the functions of fault judgment and alarm, intelligent power distribution and safe power consumption. CONTENT OF THE UTILITY MODEL

[0003] Therefore, the utility model provides a temporary assembled house of energy -conserving low carbon for solving the above problems.

[0004] In order to achieve the above purpose, the utility model adopts the following technical scheme:

[0005] A temporary assembled house of energy -conserving low carbon, comprising: a house body, a slope framework, a cadmium telluride power generation assembly, an inverter, a grid-connected metering box, an intelligent power distribution cabinet and a remote controller, the slope framework is installed at the top of the house body, a plurality of cadmium telluride power generation assemblies are installed on the slope framework, the inverter and the grid-connected metering box are installed on the side wall of the house body, the intelligent power distribution cabinet and the remote controller are installed on the inner side wall of the house body, the cadmium telluride power generation assembly, the inverter and the grid-connected metering box are sequentially electrically connected, a power supply interface is arranged on the side wall of the house body, the grid-connected metering box is electrically connected with the power supply interface, the power supply interface is electrically connected with the intelligent power distribution cabinet, the intelligent power distribution cabinet is electrically connected with the electrical equipment in the house body, and the inverter, the grid-connected metering box and the intelligent power distribution cabinet are electrically connected with the remote controller.

[0006] Further, it further includes lithium battery pack, the lithium battery pack is arranged in the house body, the lithium battery pack is electrically connected with the power supply interface, and the remote controller is electrically connected with the lithium battery pack.

[0007] Further, an anti-backflow device is installed on the side wall of the house body, and the anti-backflow device is electrically connected with the grid-connected metering box and the power grid respectively.

[0008] Further, the slope framework is a double-slope structure, and the plurality of cadmium telluride power generation assemblies are installed on two slope surfaces of the slope framework.

[0009] The cadmium telluride power generation assembly of the utility model has the advantages of the following:

[0010] The cadmium telluride power generation assembly of the utility model generates solar energy in the house body, monitors the inverter, the grid-connected metering box and the intelligent power distribution cabinet through the remote controller, automatically adjusts the optimal power generation according to the operation condition, realizes the collection and monitoring of the parameters such as daily power generation, annual power generation, total power generation, income, equivalent tree planting, carbon dioxide emission reduction and standard coal saving, and assists the management personnel in management; and the remote controller can monitor and detect the inverter, the grid-connected metering box and the intelligent power distribution cabinet, realizes the auxiliary functions such as fault judgment, fault alarm, intelligent power distribution and safe power utilization. BRIEF DESCRIPTION OF DRAWINGS

[0011] In order to more clearly illustrate the technical scheme in the embodiments of the utility model or the prior art, the following will briefly introduce the drawings needed to be used in the embodiment or the prior art description, and obviously, the drawings in the following description are only the embodiments of the utility model, and for the ordinary skilled in the art, other drawings can be obtained according to the provided drawings without creative labor.

[0012] Fig. 1 It is a front structure schematic diagram of an energy-saving and low-carbon temporary building assembly type house.

[0013] Fig. 2 It is a back structure schematic diagram of an energy-saving and low-carbon temporary building assembly type house.

[0014] Fig. 3 It is an internal structure schematic diagram of an energy-saving and low-carbon temporary building assembly type house.

[0015] In the drawings, the following:

[0016] 1-house body, 2-slope framework, 3-cadmium telluride power generation assembly, 4-inverter, 5-grid-connected metering box, 6-intelligent power distribution cabinet, 7-remote controller, 8-lithium battery pack, 9-anti-backflow device, 10-power interface. DETAILED DESCRIPTION

[0017] Clearly and completely describe the technical scheme in the embodiments of the utility model with reference to the drawings in the embodiments of the utility model, obviously, the described embodiments only are a part of embodiments of the utility model, and not all embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the ordinary skill in the art without making creative labor belong to the range of protection of the utility model.

[0018] Referring to the drawings Figs. 1-3 The utility model provides a kind of energy-saving low-carbon temporary building fabricated house, it include: house body 1, slope framework 2, cadmium telluride power generation component 3, inverter 4, grid-connected metering box 5, intelligent power distribution cabinet 6 and remote controller 7, slope framework 2 is installed at the top of house body 1, multiple cadmium telluride power generation component 3 is installed on slope framework 2, inverter 4 and grid-connected metering box 5 are installed on the side wall of house body 1, intelligent power distribution cabinet 6 and remote controller 7 are installed in the inside wall of house body 1, cadmium telluride power generation component 3, inverter 4 and grid-connected metering box 5 are sequentially electrically connected, power interface 10 is provided on the side wall of house body 1, grid-connected metering box 5 is electrically connected with power interface 10, power interface 10 is electrically connected with intelligent power distribution cabinet 6, intelligent power distribution cabinet 6 is electrically connected with electrical equipment in house body 1, the electrical energy generated by solar irradiation of cadmium telluride power generation component 3 is converted into alternating current by inverter 4, grid-connected metering box 5 carries out metering, collection, transmission and control to the electrical energy generated by solar power generation, and intelligent power distribution cabinet 6 carries out power distribution and management to electrical equipment in house body 1;Inverter 4, grid-connected metering box 5 and intelligent power distribution cabinet 6 are electrically connected with remote controller 7, and remote controller 7 is provided with remote control system, and the application program on computer or mobile phone can be monitored and managed to inverter 4, grid-connected metering box 5 and intelligent power distribution cabinet 6 by remote control system.Cadmium telluride power generation component 3 carries out solar power generation in house body 1, and inverter 4, grid-connected metering box 5 and intelligent power distribution cabinet 6 are monitored by remote controller 7, and optimal power generation is automatically adjusted according to operating condition, and system realizes daily power generation, annual power generation, total power generation, income, equivalent tree planting, carbon dioxide emission reduction, saving standard coal and other parameter collection, monitoring, auxiliary management personnel management;And remote controller 7 can monitor and detect inverter 4, grid-connected metering box 5 and intelligent power distribution cabinet 6, realize fault judgment, fault alarm, electrical intelligent distribution and safe power utilization and other auxiliary functions. Through remote control system, power generation parameters and related data can be checked anytime and anywhere, form "do not go out of the house" type control, while realizing the low-carbon operation of project site, save management operation cost.

[0019] Optionally, one embodiment of the energy-saving and low-carbon prefabricated house further comprises a lithium battery pack 8, the lithium battery pack 8 is arranged in the house body 1, the lithium battery pack 8 is electrically connected with the power supply interface 10, and the remote controller 7 is electrically connected with the lithium battery pack 8. The lithium battery pack 8 serves as an energy storage device. When the power generation of the cadmium telluride power generation assembly 3 is relatively high, the excess power is distributed into the lithium battery pack 8 for storage through remote control of the intelligent power distribution cabinet 6 by the remote control system in the remote controller 7 through the application program on the computer or the mobile phone.

[0020] Optionally, one embodiment of the energy-saving and low-carbon prefabricated house further comprises an anti-backflow device 9, the anti-backflow device 9 is installed on the side wall of the house body 1, and the anti-backflow device 9 is electrically connected with the grid-connected metering box 5 and the power grid. The access mode of the energy-saving and low-carbon prefabricated house is “self-generation and self-use, and power generation without grid connection”, that is, the power generated by the energy-saving and low-carbon prefabricated house is completely consumed by the project site, and no power is transmitted to the power grid. When the power grid is powered off or the project site cannot completely consume the power generated by the photovoltaic power station, the photovoltaic power station is automatically disconnected from the power grid, and an obvious disconnection point is arranged on the line through the anti-backflow device 9 to protect the power grid from being affected.

[0021] Optionally, one embodiment of the energy-saving and low-carbon prefabricated house further comprises an anti-backflow device 9, the anti-backflow device 9 is installed on the side wall of the house body 1, and the anti-backflow device 9 is electrically connected with the grid-connected metering box 5 and the power grid. The access mode of the energy-saving and low-carbon prefabricated house is “self-generation and self-use, and power generation without grid connection”, that is, the power generated by the energy-saving and low-carbon prefabricated house is completely consumed by the project site, and no power is transmitted to the power grid. When the power grid is powered off or the project site cannot completely consume the power generated by the photovoltaic power station, the photovoltaic power station is automatically disconnected from the power grid, and an obvious disconnection point is arranged on the line through the anti-backflow device 9 to protect the power grid from being affected.

[0022] Embodiment

[0023] Since February 2024, the energy-saving and low-carbon prefabricated house has been put into use in the three sections of Sichuan-Tibet (Bogexi Township), and power supply has been started since April 15. The area of the power station is 1650 square meters, the installed capacity is 275 KWP, and since the completion, about 4 months have passed, 109,000 degrees of power have been generated, the cumulative income is 108,500 yuan, equivalent to 108.18 tons of carbon dioxide emission reduction, 43.84 tons of standard coal saving, about 8,500 degrees of electricity is used for office and accommodation in the project site, and the remaining electricity is used for production in the mixing station.

[0024] The various embodiments in the specification are described in a progressive manner, and each embodiment focuses on the difference from other embodiments. The same and similar parts between the various embodiments can be referred to each other.

[0025] The above description of disclosed embodiments enables one of ordinary skill in the art to make or use the application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein can be applied to other embodiments without departing from the spirit or scope of the application. Thus, the present application is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. An energy-saving and low-carbon prefabricated house, characterized in that, The utility model relates to a kind of solar energy power generation system, including: house body (1), slope skeleton (2), cadmium telluride power generation component (3), inverter (4), grid-connected metering box (5), intelligent power distribution cabinet (6) and remote controller (7), the slope skeleton (2) is installed in the top of the house body (1), multiple cadmium telluride power generation component (3) is installed on the slope skeleton (2), the inverter (4) and the grid-connected metering box (5) are installed on the side wall of the house body (1), the intelligent power distribution cabinet (6) and the remote controller (7) are installed in the inner side wall of the house body (1), the cadmium telluride power generation component (3), the inverter (4) and the grid-connected metering box (5) are sequentially electrically connected, the side wall of the house body (1) is provided with power interface (10), the grid-connected metering box (5) is electrically connected with the power interface (10), the power interface (10) is electrically connected with the intelligent power distribution cabinet (6), the intelligent power distribution cabinet (6) is electrically connected with the electrical equipment in the house body (1), the inverter (4), the grid-connected metering box (5) and the intelligent power distribution cabinet (6) are electrically connected with the remote controller (7). Further comprising lithium battery pack (8), the lithium battery pack (8) is arranged in the house body (1), the lithium battery pack (8) is electrically connected with the power interface (10), and the remote controller (7) is electrically connected with the lithium battery pack (8).

2. The energy-saving and low-carbon prefabricated house according to claim 1, characterized in that, Further comprising anti-reflux device (9), the anti-reflux device (9) is installed on the side wall of the house body (1), and the anti-reflux device (9) is respectively electrically connected with the grid-connected metering box (5) and power grid.

3. The energy-saving and low-carbon prefabricated house according to claim 1, characterized in that, The slope skeleton (2) is double-slope structure, and multiple cadmium telluride power generation component (3) is installed on the two slope surfaces of the slope skeleton (2).

4. The energy-saving and low-carbon prefabricated house according to claim 1, characterized in that, ​