Winter construction heat preservation system and method
By constructing a collaborative system consisting of a heat source module, a heat energy circulation module, a safety isolation module, and a central control module, the problem of the inability to adjust concrete insulation measures in a timely manner during winter construction was solved. This enabled dynamic control of temperature and safety in the construction area, improving energy utilization efficiency and construction quality.
Patent Information
- Application Number
- CN202511060920.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-30
- Publication Date
- 2025-11-28
AI Technical Summary
Existing concrete insulation measures cannot be adjusted in a timely manner according to the actual construction environment during winter construction, and are prone to failure, especially in the event of sudden extreme weather, resulting in poor environmental adaptability and safety hazards.
The system employs a collaborative approach involving a heat source module, a heat energy circulation module, a safety isolation module, and a central control module. By controlling the heat source output, heat energy circulation, and isolation status through real-time environmental data, dynamic linkage control is achieved to ensure the temperature and safety of the construction area.
It significantly improves energy efficiency, reduces fuel consumption and carbon emissions, ensures stable concrete curing temperature, prevents the risk of poisoning, eliminates the hidden danger of concrete cracking caused by local temperature differences, and provides a highly reliable insulation solution throughout the entire process.
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Figure CN121024358A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application belongs to the technical field of building winter construction equipment, and particularly relates to a winter construction heat preservation system and method. BACKGROUND
[0002] Concrete is a common composite material, which is generally made of cementitious materials (cement), aggregates (sand, stone), water and admixtures mixed according to a specific proportion and hardened. In modern building construction, concrete has become an indispensable basic composite material in building engineering due to its excellent strength, plasticity and durability.
[0003] In the winter construction of buildings such as residential buildings and tunnel engineering, low temperature can significantly reduce the hydration rate of concrete, resulting in slow strength development and even freezing damage, which seriously affects the engineering quality and structural safety. Therefore, it is crucial to maintain a suitable environmental temperature (usually above 5℃) during the construction process, especially during the concrete pouring and curing stage.
[0004] In actual construction process, workers often use fireplaces, electric heating and other heat sources in combination with thermal insulation layers to achieve concrete heat preservation. However, in actual use, due to the inconvenience of controlling fireplaces, electric heating and other heat sources, they cannot be adjusted in time according to the actual situation of the construction environment, especially when extreme weather occurs, which often leads to failure and even safety hazards, and there is a poor environmental adaptability problem. SUMMARY
[0005] To solve the problem of poor environmental adaptability of the existing concrete heat preservation measures in the background art, which cannot be adjusted in time according to the actual situation of the construction environment, especially when extreme weather occurs, which often leads to failure and even safety hazards, the present application provides a winter construction heat preservation system.
[0006] To achieve the above purpose, the present application adopts the following technical scheme:
[0007] In a first aspect, the present application provides a winter construction heat preservation system, which comprises: a heat source module, which is located in a construction area and is used to generate heat energy;
[0008] a heat energy circulation module, which is arranged in the construction area and is connected to the heat source module, and is used to output the heat energy generated by the heat source module to the construction area;
[0009] a safety isolation module, which is arranged around the construction area and encloses the construction area;
[0010] The central control module is electrically connected to the heat source module, the thermal energy circulation module, and the safety isolation module. The central control module is used to acquire environmental data of the construction area in real time, and based on the environmental data, to control the heat source module, the thermal energy circulation module, and the safety isolation module in real time, so that the environmental data is within a preset range.
[0011] Optionally, the safety isolation module includes multiple lifting plate devices, which are interconnected to enclose the construction area;
[0012] The lifting plate device includes: a base, a heat insulation plate, and a lifting drive component;
[0013] One end of the heat insulation plate is movably connected to the base;
[0014] The lifting drive component is fixedly installed on the base and movably connected to the heat insulation plate. The lifting drive component is electrically connected to the central control module and is used to adjust the tilt angle between the heat insulation plate and the base under the control of the central control module.
[0015] Optionally, the central control module includes: an environmental sensor group and a data processing unit;
[0016] The environmental sensor group is installed in the construction area and is electrically connected to the data processing unit. It is used to acquire the environmental data in the construction area in real time and output the environmental data to the data processing unit in real time.
[0017] The data processing unit is electrically connected to the lifting drive component, the heat source module, and the heat energy circulation module;
[0018] The data processing unit is used to acquire the environmental data in real time, and based on the environmental data, to control the heat source module, the thermal energy circulation module and the lifting drive component in real time, so that the environmental data is within a preset range.
[0019] Optionally, the thermal energy circulation module includes: a heat pipe and multiple heat exchangers;
[0020] One end of the heat pipe is connected to the heat source module, and the heat pipe is evenly distributed in the construction area, while the other end of the heat pipe extends out of the construction area.
[0021] Multiple heat exchangers are evenly arranged within the construction area, and the heat exchangers are connected to the heat pipes.
[0022] Optionally, the environmental sensor group includes multiple sensor components, which are evenly arranged within the construction area, and each sensor component is electrically connected to the data processing unit.
[0023] Among the various sensor components are a carbon monoxide sensor and a temperature sensor.
[0024] Optionally, the winter construction insulation system also includes an audible and visual alarm, which is electrically connected to the central control module.
[0025] Secondly, the present invention provides a method for winter construction insulation, used in the aforementioned winter construction insulation system, comprising:
[0026] During concrete construction, heat energy is supplied to the construction area through heat source modules and heat energy circulation modules, and the construction area is enclosed by the interconnection of lifting plate devices.
[0027] The sensor components collect environmental data in the construction area in real time and transmit the environmental data to the data processing unit.
[0028] The data processing unit analyzes and judges whether the environmental data is within a preset range based on the environmental data acquired in real time. When the environmental data is not within the preset range, the data processing unit adjusts the lifting drive, heat source module and heat energy circulation module based on the environmental data to bring the environmental data within the preset range.
[0029] Optionally, the environmental data includes the temperature and carbon monoxide concentration of the construction area.
[0030] Optionally, when the temperature of the construction area is -5°C to 5°C and the carbon monoxide concentration is ≤30ppm, the data processing unit controls the heat source module to operate at 75% to 85% of its rated power.
[0031] When the temperature of the construction area is between -15°C and -5°C and the carbon monoxide concentration is ≤15ppm, the data processing unit controls the heat source module to operate at more than 85% of its rated power.
[0032] When the carbon monoxide concentration in the construction area is 30ppm to 40ppm, the heat source module is kept below 40% of its rated power, regardless of the temperature in the construction area.
[0033] When the carbon monoxide concentration in the construction area is above 40 ppm, the heat source module is cut off regardless of the temperature in the construction area.
[0034] Optionally, when the temperature of the construction area is 5°C to 20°C and the carbon monoxide concentration is <30ppm, the data processing unit controls the lifting drive to make the inclination angle between the heat insulation plate and the base between 80°C and 90°C.
[0035] When the temperature of the construction area is 20°C to 30°C and the carbon monoxide concentration is 35ppm to 50ppm, the data processing unit controls the lifting drive to keep the inclination angle between the heat insulation board and the base between 55°C and 65°C.
[0036] When the temperature of the construction area is 30°C to 50°C and the carbon monoxide concentration is 50ppm to 100ppm, the data processing unit controls the lifting drive to keep the inclination angle between the heat insulation plate and the base between 25°C and 35°C.
[0037] When the temperature of the construction area is above 50°C and the carbon monoxide concentration is above 100ppm, the data processing unit controls the lifting drive to keep the inclination angle between the heat insulation plate and the base at 0 degrees.
[0038] The beneficial effects of this invention are:
[0039] This invention provides a winter construction insulation system. By constructing a collaborative system of four modules—heat source supply, heat energy circulation, regional isolation, and central control—it achieves dynamic and interconnected control of heat energy production, transmission, and environmental enclosure during winter construction. The systematic integrated design significantly improves energy utilization efficiency, simultaneously addressing the issues of insulation and harmful gas emissions in the construction area. The central control module automatically adjusts the heat source output power and the opening / closing status of the isolation module based on real-time environmental data, ensuring stable concrete curing temperatures while proactively preventing the risk of poisoning. The heat energy circulation module evenly distributes the energy generated by the concentrated heat source to all corners of the construction area, eliminating the risk of concrete cracking caused by localized temperature differences. The safety isolation module reduces heat loss and blocks the intrusion of external cold air through physical enclosure, creating a continuous constant temperature environment and significantly reducing the risk of concrete strength degradation caused by temperature fluctuations. The entire system replaces manual experience-based operation with intelligent closed-loop control, not only ensuring that construction quality meets specifications in low-temperature environments but also significantly reducing fuel consumption and carbon emissions, providing a comprehensive and highly reliable insulation solution for projects in frigid regions. Attached Figure Description
[0040] Figure 1 This is a top view of the winter construction insulation system in this invention;
[0041] Figure 2 This is an overall schematic diagram of the winter construction insulation system in this invention;
[0042] Figure 3This is an overall schematic diagram of the lifting plate device in this invention;
[0043] Figure 4 This is a schematic diagram of the thermal energy circulation module in this invention.
[0044] The components include: 1. Heat source module; 2. Construction area; 3. Thermal energy circulation module; 31. Heat pipe; 32. Heat exchanger; 4. Safety isolation module; 41. Lifting plate device; 411. Base; 412. Heat insulation plate; 413. Lifting drive component; 5. Central control module; 51. Environmental sensor group; 52. Data processing unit. Detailed Implementation
[0045] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the present invention or its application or use. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0046] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the scope of exemplary embodiments according to the invention. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.
[0047] Unless otherwise specifically stated, the relative arrangement, numerical expressions, and values of the components and steps set forth in these embodiments do not limit the scope of the invention. It should also be understood that, for ease of description, the dimensions of the various parts shown in the drawings are not drawn to actual scale. Techniques, methods, and devices known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and devices should be considered part of the specification. In all examples shown and discussed herein, any specific values should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values. It should be noted that similar reference numerals and letters in the following drawings denote similar items; therefore, once an item is defined in one drawing, it need not be further discussed in subsequent drawings.
[0048] In the description of this invention, it should be understood that the orientation or positional relationship indicated by directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" is generally based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing this invention and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this invention. The directional terms "inner" and "outer" refer to the inner and outer contours relative to the outline of each component itself.
[0049] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.
[0050] Furthermore, it should be noted that the use of terms such as "first" and "second" to define components is merely for the purpose of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore should not be construed as limiting the scope of protection of this invention.
[0051] It should be noted that, unless otherwise specified, the embodiments and features described in the present invention can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0052] Example 1
[0053] Firstly, see [the following] Figure 1The diagram illustrates a winter construction insulation system according to the present invention. The system includes: a heat source module 1 located within the construction area 2 for generating heat energy; a heat energy circulation module 3 located within the construction area 2 and connected to the heat source module 1 for distributing the heat energy from the heat source module 1 to the construction area 2; a safety isolation module 4 located around the perimeter of the construction area 2 and enclosing it; and a central control module 5 electrically connected to the heat source module 1, the heat energy circulation module 3, and the safety isolation module 4. The central control module 5 acquires real-time environmental data of the construction area 2 and, based on this data, controls the heat source module 1, the heat energy circulation module 3, and the safety isolation module 4 in real-time to keep the environmental data within a preset range.
[0054] In this embodiment, a collaborative system comprising four modules—heat source supply, heat energy circulation, regional isolation, and central control—is constructed to achieve dynamic and interconnected control of heat energy production, transmission, and enclosed environment during winter construction. This systematic integrated design significantly improves energy efficiency and simultaneously addresses the issues of insulation and harmful gas emissions in construction area 2. The central control module 5 automatically adjusts the heat source output power and the opening / closing status of the isolation module based on real-time environmental data, ensuring stable concrete curing temperature while proactively preventing the risk of poisoning. The heat energy circulation module 3 evenly distributes the energy generated by the concentrated heat source to all corners of construction area 2, eliminating the risk of concrete cracking caused by localized temperature differences. The safety isolation module 4 reduces heat loss and blocks the intrusion of external cold air through physical enclosure, creating a continuous constant temperature environment and significantly reducing the risk of concrete strength degradation caused by temperature fluctuations. The entire system replaces manual experience-based operation with intelligent closed-loop control, ensuring that construction quality meets specifications in low-temperature environments and significantly reducing fuel consumption and carbon emissions, providing a comprehensive and highly reliable insulation solution for projects in frigid regions.
[0055] Optionally, refer to Figure 2 and Figure 3 The safety isolation module 4 of this invention includes multiple lifting plate devices 41, which are interconnected to enclose the construction area 2. Each lifting plate device 41 includes a base 411, a heat insulation plate 412, and a lifting drive component 413. One end of the heat insulation plate 412 is movably connected to the base 411. The lifting drive component 413 is fixedly installed on the base 411 and movably connected to the heat insulation plate 412. The lifting drive component 413 is electrically connected to the central control module 5 and is used to adjust the tilt angle between the heat insulation plate 412 and the base 411 under the control of the central control module 5.
[0056] In this embodiment, an adjustable tilting plate device 41 is used to replace the traditional fixed isolation barrier. The ventilation efficiency of the construction area 2 is precisely controlled by dynamically adjusting the angle of the heat insulation plate 412. This structural design takes into account both physical isolation strength and emergency ventilation needs. It can minimize heat loss during the heat preservation stage and quickly establish an air circulation channel in dangerous situations, achieving the dual goals of safety protection and energy consumption optimization.
[0057] Optionally, refer to Figure 2 The central control module 5 of this invention includes: an environmental sensor group 51 and a data processing unit 52; the environmental sensor group 51 is installed in the construction area 2 and is electrically connected to the data processing unit 52, for real-time acquisition of environmental data in the construction area 2 and real-time output of the environmental data to the data processing unit 52; the data processing unit 52 is electrically connected to the lifting drive component 413, the heat source module 1, and the thermal energy circulation module 3; the data processing unit 52 is used to acquire environmental data in real-time and, based on the environmental data, control the heat source module 1, the thermal energy circulation module 3, and the lifting drive component 413 in real-time so that the environmental data is within a preset range.
[0058] In this embodiment, the central control module 5 captures environmental changes in the construction area 2 in real time through the environmental sensor group 51, and adjusts the heat source output and isolation status synchronously based on the data-driven strategy. This closed-loop control mechanism effectively eliminates the delay of manual monitoring, significantly improves the temperature control accuracy and safety response speed, ensures that the concrete strength development is always in the optimal temperature and humidity range, and controls the concentration of harmful gases below the safety threshold.
[0059] Optionally, refer to Figure 4 The thermal energy circulation module 3 of the present invention includes: a heat pipe 31 and a plurality of heat exchangers 32; one end of the heat pipe 31 is connected to the heat source module 1, and the heat pipe 31 is evenly distributed in the construction area 2, and the other end of the heat pipe 31 extends out of the construction area 2; the plurality of heat exchangers 32 are evenly arranged in the construction area 2, and the heat exchangers 32 are connected to the heat pipe 31.
[0060] In this embodiment, the modular heat-conducting pipe network and the distributed heat exchanger 32 are combined to achieve efficient and uniform heat diffusion from the centralized production end to the two sides of the construction area, overcoming the temperature gradient problem caused by point heat sources and avoiding the risk of cracking of concrete structures due to excessive local temperature differences. At the same time, the waste heat recovery device converts the flue gas heat energy into combustion-supporting fresh air, systematically reducing the overall energy consumption.
[0061] Specifically, the heat pipes 31 can be uniformly distributed in a spiral shape within the construction area.
[0062] Optionally, the environmental sensor group 51 of the present invention includes multiple sensor components, which are evenly arranged in the construction area 2, and each sensor component is electrically connected to the data processing unit 52; among the multiple sensor components, there are carbon monoxide sensors and temperature sensors.
[0063] In this embodiment, a multi-point sensor network is deployed based on the geometric features of construction area 2 to accurately construct a three-dimensional environmental monitoring field. The spatial acquisition of carbon monoxide and temperature data can identify hidden blind spot risks, providing full-domain data support for control decisions and eliminating control failures caused by monitoring blind spots from the source.
[0064] Optionally, the winter construction insulation system of the present invention also includes an audible and visual alarm, which is electrically connected to the central control module 5.
[0065] In this embodiment, the deep linkage between the audible and visual alarm device and the central control module 5 establishes a human-machine collaborative safety protection mechanism. When the system automatically performs safety operations such as power reduction and ventilation increase, real-time audible and visual warnings simultaneously remind personnel to evacuate, forming a dual protection system of "proactive equipment handling + emergency personnel response".
[0066] Example 2
[0067] Secondly, the present invention also provides a method for winter construction insulation, used in the winter construction insulation system of Embodiment 1, comprising:
[0068] During concrete construction, heat energy is supplied to the construction area 2 through heat source module 1 and heat energy circulation module 3, and the construction area 2 is enclosed by the lifting plate device 41.
[0069] The sensor components collect environmental data in the construction area 2 in real time and transmit the environmental data to the data processing unit 52.
[0070] The data processing unit 52 analyzes and judges whether the environmental data is within a preset range based on the environmental data acquired in real time. When the environmental data is not within the preset range, the data processing unit 52 adjusts the lifting drive component 413, the heat source module 1 and the heat energy circulation module 3 based on the environmental data so that the environmental data is within the preset range.
[0071] Optionally, the environmental data in this invention includes the temperature and carbon monoxide concentration of the construction area 2.
[0072] Optionally, when the temperature of the construction area 2 is -5°C to 5°C and the carbon monoxide concentration is ≤30ppm, the data processing unit 52 controls the heat source module 1 to operate at 75% to 85% of its rated power.
[0073] When the temperature of the construction area 2 is between -15°C and -5°C and the carbon monoxide concentration is ≤15ppm, the data processing unit 52 controls the heat source module 1 to operate at more than 85% of its rated power.
[0074] When the carbon monoxide concentration in the construction area 2 is 30ppm to 40ppm, regardless of the temperature in the construction area 2, the heat source module 1 is kept below 40% of its rated power.
[0075] When the carbon monoxide concentration in the construction area 2 is above 40 ppm, the heat source module 1 is cut off regardless of the temperature in the construction area 2.
[0076] Furthermore, in this embodiment, the heat exchange power of the heat exchanger 32 in the thermal energy circulation module 3 is also adjusted by the central control module 5. For example, when the temperature in the construction area is higher than 20°C, the heat exchange power of the heat exchanger 32 is reduced to below 80% of its rated power. Furthermore, the heat exchange power of the heat exchanger 32 can be manually adjusted by on-site construction personnel to keep the construction area at the required temperature.
[0077] Optionally, when the temperature of the construction area 2 is 5°C to 20°C and the carbon monoxide concentration is <30ppm, the data processing unit 52 controls the lifting drive 413 to make the inclination angle between the heat insulation plate 412 and the base 411 between 80°C and 90°C.
[0078] When the temperature of the construction area 2 is 20°C to 30°C and the carbon monoxide concentration is 35ppm to 50ppm, the data processing unit 52 controls the lifting drive component 413 to make the inclination angle between the heat insulation plate 412 and the base 411 between 55 degrees and 65 degrees.
[0079] When the temperature of the construction area 2 is 30°C to 50°C and the carbon monoxide concentration is 50ppm to 100ppm, the data processing unit 52 controls the lifting drive 413 to make the inclination angle between the heat insulation plate 412 and the base 411 between 25°C and 35°C.
[0080] When the temperature of the construction area 2 is above 50°C and the carbon monoxide concentration is above 100ppm, the data processing unit 52 controls the lifting drive component 413 to keep the inclination angle between the heat insulation plate 412 and the base 411 at 0 degrees.
[0081] In this embodiment, a dynamic mapping model of environmental data and equipment control is constructed. Using the real-time collected temperature and carbon monoxide concentration of construction area 2 as core parameters, the adaptive and coordinated control of heat source power output, heat energy circulation path, and the opening and closing state of safety isolation module 4 is driven. This method breaks through the response lag and accuracy limitations of traditional manual experience operation. Based on temperature and carbon dioxide concentration levels, a progressive control logic is established: on the basis of ensuring the optimal curing temperature range of concrete, the continuous heating demand and sudden safety risks are balanced by the step adjustment of heat source power. Simultaneously, the ventilation efficiency is finely adjusted by the change of isolation tilt angle, forming a dynamic ratio optimization of thermal insulation performance and safety protection. This not only eliminates the concrete strength dispersion defect caused by local high or low temperature, but also constructs a full-process defense chain of "risk warning - power adjustment - ventilation enhancement - alarm response". Under the premise of maintaining construction continuity, it actively blocks the hidden danger of carbon monoxide accumulation. The systematic closed-loop control achieves a double leap in the controllability of winter construction quality and personnel safety.
[0082] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0083] Although embodiments of the invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A winter construction insulation system, characterized in that, The winter construction insulation system includes: Heat source module (1), which is located in the construction area (2) and is used to generate heat energy; A heat energy circulation module (3) is installed in the construction area (2) and connected to the heat source module (1) to output the heat energy output by the heat source module (1) to the construction area (2). Safety isolation module (4), the safety isolation module (4) is arranged around the construction area (2) and encloses the construction area (2); The central control module (5) is electrically connected to the heat source module (1), the thermal energy circulation module (3) and the safety isolation module (4); the central control module (5) is used to acquire environmental data of the construction area (2) in real time, and based on the environmental data, control the heat source module (1), the thermal energy circulation module (3) and the safety isolation module (4) in real time so that the environmental data is within a preset range.
2. The winter construction insulation system according to claim 1, characterized in that, The safety isolation module (4) includes multiple lifting plate devices (41), which are interconnected to enclose the construction area (2); The lifting plate device (41) includes: a base (411), a heat insulation plate (412), and a lifting drive component (413); One end of the heat insulation plate (412) is movably connected to the base (411); The lifting drive component (413) is fixedly installed on the base (411) and movably connected to the heat insulation plate (412). The lifting drive component (413) is electrically connected to the central control module (5) and is used to adjust the tilt angle between the heat insulation plate (412) and the base (411) under the control of the central control module (5).
3. The winter construction insulation system according to claim 2, characterized in that, The central control module (5) includes: an environmental sensor group (51) and a data processing unit (52); The environmental sensor group (51) is set in the construction area (2) and is electrically connected to the data processing unit (52) for real-time acquisition of the environmental data in the construction area (2) and real-time output of the environmental data to the data processing unit (52). The data processing unit (52) is electrically connected to the lifting drive (413), the heat source module (1), and the heat energy circulation module (3); The data processing unit (52) is used to acquire the environmental data in real time, and based on the environmental data, to control the heat source module (1), the thermal energy circulation module (3) and the lifting drive component (413) in real time, so that the environmental data is within a preset range.
4. The winter construction insulation system according to claim 3, characterized in that, The thermal energy circulation module (3) includes: a heat pipe (31) and multiple heat exchangers (32); One end of the heat pipe (31) is connected to the heat source module (1), and the heat pipe (31) is evenly distributed in the construction area (2), and the other end of the heat pipe (31) extends out of the construction area (2); Multiple heat exchangers (32) are evenly arranged in the construction area (2), and the heat exchangers (32) are connected to the heat pipe (31).
5. The winter construction insulation system according to claim 4, characterized in that, The environmental sensor group (51) includes multiple sensor components, which are evenly arranged in the construction area (2), and each sensor component is electrically connected to the data processing unit (52). Among the various sensor components are a carbon monoxide sensor and a temperature sensor.
6. The winter construction insulation system according to claim 5, characterized in that, The winter construction insulation system also includes an audible and visual alarm, which is electrically connected to the central control module (5).
7. A method for thermal insulation during winter construction, used in the winter construction thermal insulation system of claim 6, characterized in that, include: During concrete construction, heat energy is supplied to the construction area (2) through the heat source module (1) and the heat energy circulation module (3), and the construction area (2) is closed by connecting them through the lifting plate device (41). The environmental data within the construction area (2) is collected in real time by the sensor components and transmitted to the data processing unit (52). The data processing unit (52) analyzes and judges whether the environmental data is within the preset range based on the environmental data acquired in real time. When the environmental data is not within the preset range, the data processing unit (52) adjusts the lifting drive (413), heat source module (1) and heat energy circulation module (3) based on the environmental data so that the environmental data is within the preset range.
8. The method for thermal insulation during winter construction according to claim 7, characterized in that, The environmental data includes the temperature and carbon monoxide concentration of the construction area (2).
9. The method for thermal insulation during winter construction according to claim 8, characterized in that, When the temperature of the construction area (2) is -5℃ to 5℃ and the carbon monoxide concentration is ≤30ppm, the data processing unit (52) controls the heat source module (1) to make the heat source module (1) operate at 75% to 85% of its rated power. When the temperature of the construction area (2) is -15℃ to -5℃ and the carbon monoxide concentration is ≤15ppm, the data processing unit (52) controls the heat source module (1) to make the heat source module (1) operate at more than 85% of its rated power. When the carbon monoxide concentration in the construction area (2) is 30 ppm to 40 ppm, the heat source module (1) is kept below 40% of its rated power regardless of the temperature in the construction area (2). When the carbon monoxide concentration in the construction area (2) is above 40 ppm, the heat source module (1) is cut off regardless of the temperature in the construction area (2).
10. The method for thermal insulation during winter construction according to claim 8, characterized in that, When the temperature of the construction area (2) is 5°C to 20°C and the carbon monoxide concentration is <30ppm, the data processing unit (52) controls the lifting drive (413) to make the inclination angle between the heat insulation plate (412) and the base (411) between 80°C and 90°C. When the temperature of the construction area (2) is 20°C to 30°C and the carbon monoxide concentration is 35ppm to 50ppm, the data processing unit (52) controls the lifting drive (413) to make the inclination angle between the heat insulation plate (412) and the base (411) between 55°C and 65°C. When the temperature of the construction area (2) is 30°C to 50°C and the carbon monoxide concentration is 50ppm to 100ppm, the data processing unit (52) controls the lifting drive (413) to make the inclination angle between the heat insulation plate (412) and the base (411) between 25°C and 35°C. When the temperature of the construction area (2) is above 50°C and the carbon monoxide concentration is above 100ppm, the data processing unit (52) controls the lifting drive (413) to make the inclination angle between the heat insulation plate (412) and the base (411) 0 degrees.