Temperature and humidity adjusting device for power station room and power station room
By using a multi-sensor array and controller components to drive the temperature and humidity control device indoors, the problem of uneven temperature and humidity distribution indoors was solved, achieving precise control of temperature and humidity indoors and improving the stability and lifespan of the equipment.
Patent Information
- Application Number
- CN202520569205.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-28
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2035-03-28
AI Technical Summary
In existing technologies, the uneven distribution of temperature and humidity in power plant rooms leads to untimely and inaccurate control, and easily results in problems such as excessively high local temperatures or humidity.
Multiple temperature and humidity sensor arrays are used to accurately monitor the indoor space of the power station. Combined with airflow sensors and controller components, the temperature and humidity control components such as air conditioners, fans and windows are driven to perform point-to-point control. Power is supplied by photovoltaic power generation equipment and storage batteries to achieve precise adjustment of overall temperature and humidity.
It enables timely and precise adjustment of indoor temperature and humidity in power plants, avoiding excessively high local temperatures or humidity, and improving the stability and lifespan of equipment operation.
Smart Images

Figure CN223828006U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of temperature and humidity control equipment, and specifically relates to a temperature and humidity regulating device for a power station room and the power station room itself. Background Technology
[0002] Controlling humidity and temperature inside a power plant is crucial for the normal operation of equipment and for extending its lifespan. Excessively high or low temperatures and humidity can adversely affect electrical equipment. For example, excessively high temperatures can lead to internal heat buildup, potentially causing a fire; excessively high humidity can cause corrosion of metal components, increasing equipment maintenance costs.
[0003] To address this shortcoming, the common approach is to install temperature and humidity control devices inside the power plant. These devices primarily consist of air conditioners and humidifiers. By referencing the parameters of a thermometer and hygrometer, the air conditioner and humidifier are manually adjusted to maintain constant temperature and humidity inside the power plant. However, due to the large internal space of the power plant and the often uneven distribution of temperature and humidity, relying solely on manual adjustment of the air conditioner and humidifier to maintain the temperature and humidity inside the power plant suffers from problems of untimely and inaccurate control, leading to localized excessively high temperatures or humidity levels. Utility Model Content
[0004] To address the aforementioned problems, this utility model proposes a temperature and humidity control device for a power station room, comprising: a power supply equipment assembly and a controller assembly, a temperature sensor, a humidity sensor, and a temperature and humidity control assembly electrically connected to the power supply equipment assembly;
[0005] Multiple temperature sensor arrays are arranged in the power plant room, dividing the interior space of the power plant room into multiple monitoring spaces. Multiple temperature sensors are used to monitor the temperature of multiple monitoring spaces and generate multiple temperature level signals. Multiple humidity sensors are arranged in corresponding arrays in multiple monitoring spaces to monitor humidity and generate multiple humidity level signals accordingly.
[0006] The controller component connects to a temperature sensor, a humidity sensor, and a temperature and humidity control component, and is used to regulate the temperature and humidity control component based on multiple temperature level signals and multiple humidity level signals.
[0007] Furthermore, the temperature and humidity control components include: air conditioning, a deflector fan, and an exterior window assembly;
[0008] Air conditioners, fans, and window assemblies are installed in multiple monitoring spaces, and all of these air conditioners, fans, and window assemblies are connected to the controller assembly.
[0009] Furthermore, the exterior window assembly includes: an exterior window opener and an exterior window;
[0010] The exterior windows are located on the side wall of the power station room and are used to connect the interior and exterior environments of the power station room. The exterior window switch is connected to the exterior window to drive the exterior window to be closed or open.
[0011] Furthermore, it also includes airflow sensors, with multiple airflow sensors installed one-to-one in multiple monitoring spaces to monitor airflow and generate multiple airflow level signals. All multiple airflow sensors are connected to the power supply equipment components and the controller components.
[0012] Furthermore, the controller component is also used to regulate temperature and humidity control components based on multiple airflow level signals.
[0013] Furthermore, the power supply equipment components include: photovoltaic power generation equipment and energy storage batteries;
[0014] The photovoltaic power generation equipment is installed on the outdoor wall of the power station. The output end of the photovoltaic power generation equipment is connected to the input end of the storage battery. The output end of the storage battery is connected to the controller assembly, temperature sensor, humidity sensor, temperature and humidity control assembly, and airflow sensor.
[0015] Furthermore, it also includes security equipment components, including foam generators and security cameras;
[0016] Security cameras are installed indoors at the power station for image monitoring. The security cameras are connected to a controller assembly, which in turn is connected to a foam generator.
[0017] Furthermore, the controller components include: a voltage converter and a central controller;
[0018] The input terminal of the voltage converter is connected to the power supply equipment components, and the output terminal of the voltage converter is connected to the central controller. The central controller is connected to the temperature sensor, humidity sensor, temperature and humidity control components, controller components, airflow sensor, and security equipment components.
[0019] This utility model also proposes a power station room, in which a temperature and humidity regulating device for the power station room, as described above, is installed.
[0020] Furthermore, it also includes a display connected to the controller assembly for displaying humidity level signals and temperature level signals received by the controller assembly.
[0021] Furthermore, it also includes an alarm device connected to the controller assembly for receiving instructions from the controller assembly to issue an alarm.
[0022] Compared with the prior art, the embodiments of this utility model have at least the following advantages:
[0023] This utility model discloses a temperature and humidity control device for a power station room. The device divides the entire power station room into multiple monitoring spaces using temperature and humidity sensors. By installing temperature and humidity sensors in each monitoring space, it achieves accurate monitoring of the overall temperature and humidity of the power station room. Simultaneously, based on the temperature and humidity monitoring data of each monitoring space, it drives the temperature and humidity control components to implement corresponding adjustments, achieving the technical effect of targeted control. This improves the efficiency of timely adjustment of the temperature and humidity in the power station room and avoids problems such as excessively high local temperatures or humidity.
[0024] Other features and advantages of this invention will be set forth in the description which follows, and will be apparent in part from the description, or may be learned by practicing the invention. The objectives and other advantages of this invention can be realized and obtained through the structures pointed out in the description and the accompanying drawings. Attached Figure Description
[0025] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0026] Figure 1 A schematic diagram of a temperature and humidity control device for a power station room is shown in an embodiment of this utility model;
[0027] Figure 2 The structural frame of the temperature and humidity control device for a power station room in an embodiment of this utility model is shown. Figure 1 ;
[0028] Figure 3 The structural frame of the temperature and humidity control device for a power station room in an embodiment of this utility model is shown. Figure 2 .
[0029] In the figure, the components are: controller assembly 101, voltage converter 1011, central controller 1012, temperature sensor 102, humidity sensor 103, temperature and humidity control assembly 104, air conditioner 1041, fan 1042, exterior window assembly 1043, exterior window switch 10431, exterior window 10432, security equipment assembly 105, foam generator 1051, security camera 1052, power supply equipment assembly 106, photovoltaic power generation equipment 1061, storage battery 1062, airflow sensor 107, display 108, and alarm device 109. Detailed Implementation
[0030] The following description provides many different embodiments or examples for implementing various features of the present invention. The elements and arrangements described in the specific examples below are only for concise expression of the present invention and are merely examples, not intended to limit the present invention.
[0031] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0032] This utility model provides a temperature and humidity control device for a power station room and a power station room itself. Figure 1 A schematic diagram of a temperature and humidity control device for a power station room according to an embodiment of the present invention is shown. Figure 1 The temperature and humidity control device used in the power station room includes:
[0033] The power supply equipment assembly 106, controller assembly 101, temperature sensor 102, humidity sensor 103, and temperature and humidity control assembly 104 are installed in the power station room. The controller assembly 101, temperature sensor 102, humidity sensor 103, and temperature and humidity control assembly 104 are all connected to the power supply equipment assembly 106, and the power supply equipment assembly 106 provides power to the entire temperature and humidity control device.
[0034] Correspondingly, multiple temperature sensors 102 arrays are arranged in the power station room, dividing the power station room interior space into multiple monitoring spaces. The multiple temperature sensors 102 are used to monitor the temperature of the multiple monitoring spaces and generate multiple temperature level signals. Multiple humidity sensors 103 are arranged in a one-to-one array in the multiple monitoring spaces to monitor humidity and generate multiple humidity level signals accordingly.
[0035] In the process of dividing multiple monitoring spaces, it is necessary to obtain the monitoring range of the temperature sensor 102 and ensure that the volume of multiple monitoring spaces remains consistent based on the arrangement of the temperature sensor 102 array.
[0036] The controller component 101 is connected to the temperature sensor 102, the humidity sensor 103, and the temperature and humidity control component 104, and is used to control the temperature and humidity control component 104 based on multiple temperature level signals and multiple humidity level signals.
[0037] Multiple temperature sensors 102 monitor the temperature of multiple monitoring spaces one by one, thereby generating multiple temperature level signals; multiple humidity sensors 103 monitor the humidity of multiple monitoring spaces one by one, thereby generating multiple humidity level signals.
[0038] The controller component 101 receives and processes multiple temperature level signals, extracts multiple corresponding temperature level values, and receives multiple humidity level signals, extracts multiple corresponding humidity level values. The controller component 101 controls the activation and deactivation of the temperature and humidity regulating component 104 based on the difference between a preset temperature threshold and a temperature level value, and the difference between a preset humidity threshold and a humidity level value.
[0039] This invention divides the entire power station room into multiple monitoring spaces using temperature sensor 102 and humidity sensor 103. By installing temperature sensor 102 and humidity sensor 103 in each monitoring space, accurate monitoring of the overall temperature and humidity of the power station room is achieved. At the same time, based on the temperature and humidity monitoring data of each monitoring space, the temperature and humidity adjustment component 104 is driven to make corresponding adjustments, achieving the technical effect of fixed-point control, improving the efficiency of timely adjustment of temperature and humidity in the power station room, and avoiding the problem of excessively high local temperature or humidity.
[0040] refer to Figure 3 The temperature and humidity control component 104 includes: an air conditioner 1041, a fan 1042, and an exterior window component 1043;
[0041] Each of the multiple monitoring spaces is equipped with an air conditioner 1041, a guide fan 1042, and an exterior window assembly 1043. All of these components are connected to a controller assembly 101. The controller assembly 101 controls the activation of the air conditioners 1041, guide fans 1042, and exterior window assemblies 1043 based on multiple temperature and humidity level signals. Specifically, the air conditioner 1041 regulates the temperature of the indoor monitoring space in the power station, and the guide fan 1042 accelerates airflow, thereby controlling the temperature and humidity within the space.
[0042] Correspondingly, the exterior window assembly 1043 includes: an exterior window switch 10431 and an exterior window 10432;
[0043] The exterior window 10432 is located on the side wall of the power station room and is used to connect the interior and exterior environments of the power station room. The exterior window switch 10431 is connected to the exterior window 10432 to drive the exterior window 10432 to be in a closed or open state.
[0044] refer to Figure 3The device of this utility model also includes: an airflow sensor 107, multiple airflow sensors 107 are installed one-to-one in multiple monitoring spaces for airflow monitoring and generating multiple airflow level signals, and multiple airflow sensors 107 are connected to the power supply equipment component 106 and the controller component 101.
[0045] It should be further noted that in large-scale power plants, airflow can accelerate the exchange of air temperature and humidity, altering the indoor temperature and humidity distribution, which further affects the temperature and humidity distribution of the monitoring space. Monitoring spaces with weak airflow accumulate more heat or moisture compared to those with strong airflow, thus affecting the overall temperature and humidity balance within the power plant.
[0046] In this invention, the airflow sensor 107 is used to measure the airflow speed and direction indoors and generate multiple airflow level signals accordingly.
[0047] Correspondingly, the controller component 101 is also used to generate airflow level values based on multiple airflow level signals, and to regulate the temperature and humidity control component 104 according to the difference between the multiple airflow level values and a predetermined airflow threshold.
[0048] By combining real-time data on airflow, temperature, and humidity, the controller component 101 performs fusion analysis to predict the changing trends of temperature and humidity based on airflow, and adjusts the relevant equipment and temperature and humidity control components 104 in the power station room in advance. This not only ensures that the temperature and humidity are always kept within the ideal range, but also effectively prevents equipment damage caused by excessively high or low temperatures and humidity.
[0049] The power supply equipment component 106 includes a photovoltaic power generation device 1061 and a storage battery 1062. For example, the photovoltaic power generation device 1061 and the storage battery 1062 are respectively installed on the top outer wall of the power station.
[0050] The output terminal of the photovoltaic power generation device 1061 is connected to the input terminal of the storage battery 1062. The output terminal of the storage battery 1062 is connected to the controller assembly 101, temperature sensor 102, humidity sensor 103, temperature and humidity control assembly 104, and airflow sensor 107. Based on the storage battery 1062 as the energy supply device, the addition of the photovoltaic power generation device 1061 converts external solar energy to charge the storage battery 1062, improving the overall practicality of the device.
[0051] refer to Figure 2 This utility model also includes a security equipment component 105, in Figure 3 In the example shown, security device component 105 includes: foam generator 1051 and security camera 1052;
[0052] Security camera 1052 is installed indoors in the power station for image monitoring. Security camera 1052 is connected to controller assembly 101, and controller assembly 101 is connected to foam generator 1051. When foam generator 1051 receives the start command from controller assembly 101, foam generator 1051 generates and sprays air foam to extinguish fires indoors in the power station.
[0053] The controller component 101 includes a voltage converter 1011 and a central controller 1012.
[0054] The input terminal of the voltage converter 1011 is connected to the power supply equipment component 106, and the output terminal of the voltage converter 1011 is connected to the central controller 1012. It is used to adjust the output voltage of the power supply equipment component 106 to ensure the stability of the overall voltage of the device. The central controller 1012 is connected to the temperature sensor 102, humidity sensor 103, temperature and humidity regulation component 104, controller component 101, airflow sensor 107, and security equipment component 105. It is used to process and analyze the temperature level signal, humidity level signal, and airflow level signal, as well as control whether the temperature and humidity regulation component 104 and security equipment component 105 are activated.
[0055] In this embodiment, the central controller 1012 is a single-chip microcomputer or a microprocessor. For example, the central controller 1012 is a single-chip microcomputer with a timer. After a preset time interval, the central controller 1012 controls the set device to receive each signal data in sequence, thereby avoiding high-frequency operation of the central controller 1012.
[0056] This utility model also discloses a power station room, in which the above-mentioned temperature and humidity control device for power station rooms is installed.
[0057] In addition, a display 108 is installed in the power station room. The display 108 is connected to the controller assembly 101 and is used to display the humidity level signal, temperature level signal, airflow level signal, and image signal received and displayed by the controller assembly 101, thereby displaying temperature, humidity, airflow, and images.
[0058] Correspondingly, an alarm device 109 is also installed in the power station room. The alarm device 109 is connected to the controller assembly 101 and is used to receive instructions from the controller assembly 101 to issue an alarm when the temperature or humidity is above the upper limit threshold or below the lower limit threshold for a long time.
[0059] It should be noted that in actual use, considering the fluctuations in temperature and humidity, the values of both temperature threshold and humidity threshold are expressed as range values; therefore, the temperature threshold includes the lower limit and upper limit of the temperature level, and the humidity threshold includes the lower limit and upper limit of the humidity level.
[0060] To further illustrate with temperature as an example, the normal temperature threshold (e.g., 20℃-25℃) is set as the normal level. Levels outside this range are all high, and levels below this range are all low. 20℃ represents the lower limit of the temperature level, and 25℃ represents the upper limit of the temperature level.
[0061] When the temperature level of any monitored space is higher than the lower limit of the temperature level but lower than the upper limit of the temperature level, it is considered to be at a normal level, and there is no need to control the air conditioner 1041 and the external window 10432, that is, the central controller 1012 does not generate a control signal.
[0062] When the temperature level of the monitored space is lower than the lower limit of the temperature level, it is a low temperature level. The central controller 1012 generates a low temperature control signal and sends it synchronously to the corresponding air conditioner 1041 to control the air conditioner 1041 to heat. It also generates a window closing signal and sends it to the external window switch 10431 to control the operation of the external window switch 10431, thereby closing the external window 10432.
[0063] When the temperature level of the monitored space is higher than the upper limit of the temperature level, the central controller 1012 generates a high temperature control signal and sends it synchronously to the corresponding air conditioner 1041 to control the air conditioner 1041 to cool.
[0064] refer to Figure 1 The system contains four temperature sensors 102. Figures ①, ②, ③, and ④ represent the distribution positions of these four sensors, thus dividing the power station's indoor space into four monitoring spaces. Similarly, humidity sensors 103 and airflow sensors 107 are installed in each of the four monitoring spaces. However, this invention is not limited to this; various quantities of temperature sensors 102, humidity sensors 103, and airflow sensors 107 can be used. Those skilled in the art can comprehensively consider the connection principle and practical application of this invention, as long as the principle of this invention can be achieved.
[0065] Additionally, when the air conditioner 1041 and the window switch 10431 in any monitoring space within the power plant remain operational, the central controller 1012 continuously receives temperature level signals from the temperature sensor 102 regarding that monitoring space and extracts the temperature level value. The receiving time can be set to 10 seconds, 1 minute, or 10 minutes, depending on the timer setting. If the processed temperature level value is within the same range as the previous temperature level value, the current operating state continues. If the temperature level value is in a different range from the previous temperature level value, the corresponding control signal is updated and sent to the corresponding device.
[0066] The detailed explanation is as follows: Taking the monitoring space where the air conditioner 1041 is in the cold air state and the external window 10432 is in the closed state as an example, the temperature level value is higher than the upper limit of the temperature level value.
[0067] If the newly extracted temperature level value is basically the same as the previous temperature level value, then keep the air conditioner 1041 and the outer window 10432 in their current state;
[0068] If the newly extracted temperature level value is higher than the lower limit of the temperature level but lower than the upper limit of the temperature level, that is, the temperature returns to normal, the central controller 1012 sends a new temperature control signal to control the air conditioner 1041 to turn off.
[0069] If the newly extracted temperature level value is lower than the lower limit of the temperature level, that is, the temperature inside the power station is lower than the normal state, a new low temperature control signal is issued to control the air conditioner to switch to heating operation.
[0070] It should be noted that if the newly extracted temperature level value is lower than the lower limit of the temperature level for too long, or higher than the upper limit of the temperature level for too long (e.g., 30 minutes), a signal to open the guide fan 10433 and the outer window 10432 will be sent to control the guide fan 10433 to work, control the outer window 10432 to open through the outer window switch 10431, and control the alarm device 109 to issue an alarm.
[0071] If multiple temperature levels from temperature sensors in various monitoring spaces within the power plant exceed their upper temperature limits, the central controller 1012 sends a first control signal to the air conditioners 1041 in each monitoring space, causing all air conditioners 1041 to activate cooling, thus achieving a uniform decrease in the overall temperature of the power plant's indoor space. Conversely, if the temperature exceeds the upper limit, a second control signal is sent to the air conditioners 1041 in each monitoring space, causing all air conditioners 1041 to activate heating, thus achieving a uniform increase in the overall temperature of the indoor space, thereby realizing a dynamic temperature balance within the power plant.
[0072] To further illustrate, let's take humidity as an example;
[0073] The central controller 1012 receives the humidity level signal generated by the humidity sensor 103 in the same monitoring space inside the power station and calculates the humidity level value. If the humidity level value is higher than the upper limit of humidity level for a certain period of time (e.g., 1 minute), the corresponding humidity control signal is sent to the guide fan 10433 in the monitoring space to control the guide fan 10433 to turn on for ventilation and reduce the humidity in the monitoring space.
[0074] If the humidity level value generated by the humidity sensor 103 is still higher than the upper limit of the humidity level after the duct fan 10433 has been turned on for a certain period of time (e.g., 10 minutes), the central controller 1012 sends a corresponding humidity control signal to the window switch 10431 to control the window 10432 to open, so as to achieve the effect of rapid ventilation.
[0075] The central controller 1012 receives humidity level signals from humidity sensors 103 in each monitoring space. If the humidity level signals received from all monitoring spaces are lower than the lower limit of humidity level, the corresponding humidity control signal is issued to control all the exhaust fans 10433 and control all the external window switches 10431 to close the corresponding external window 10432.
[0076] In the description of this utility model, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the stated features. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0077] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection, an electrical connection, or a connection that allows for mutual communication; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of multiple components or the interaction between multiple components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0078] In the description of this utility model, it should be understood that all terms used to indicate orientation or positional relationship are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to 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 should not be construed as a limitation of this utility model.
[0079] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A temperature and humidity control device for a power station room, for installation inside a power station room, characterized in that, include: The power supply equipment assembly (106) and the controller assembly (101), temperature sensor (102), humidity sensor (103), and temperature and humidity control assembly (104) electrically connected to the power supply equipment assembly (106); Multiple temperature sensors (102) are arranged in an array in the power station room, dividing the interior space of the power station room into multiple monitoring spaces. Multiple temperature sensors (102) are used to monitor the temperature of multiple monitoring spaces and generate multiple temperature level signals. Multiple humidity sensors (103) are arranged in an array in the multiple monitoring spaces to monitor humidity and generate multiple humidity level signals accordingly. The controller assembly (101) is connected to the temperature sensor (102), the humidity sensor (103), and the temperature and humidity control assembly (104), and is used to control the temperature and humidity control assembly (104) based on multiple temperature level signals and multiple humidity level signals.
2. The temperature and humidity control device for a power station room according to claim 1, characterized in that, The temperature and humidity control component (104) includes: an air conditioner (1041), a fan (1042), and an exterior window component (1043); Each of the multiple monitoring spaces is equipped with an air conditioner (1041), a guide fan (1042), and an exterior window assembly (1043), and all of the multiple air conditioners (1041), multiple guide fans (1042), and multiple exterior window assemblies (1043) are connected to the controller assembly (101).
3. The temperature and humidity control device for a power station room according to claim 2, characterized in that, The exterior window assembly (1043) includes: an exterior window switch (10431) and an exterior window (10432); The outer window (10432) is located on the side wall of the power station room and is used to connect the interior and exterior environments of the power station room. The outer window switch (10431) is connected to the outer window (10432) to drive the outer window (10432) to be in a closed or open state.
4. The temperature and humidity control device for a power station room according to claim 3, characterized in that, It also includes airflow sensors (107), and multiple airflow sensors (107) are installed in multiple monitoring spaces respectively to monitor airflow and generate multiple airflow level signals. The multiple airflow sensors (107) are connected to the power supply equipment assembly (106) and the controller assembly (101).
5. The temperature and humidity control device for a power station room according to claim 4, characterized in that, The controller component (101) is also used to regulate the temperature and humidity control component (104) based on multiple airflow level signals.
6. The temperature and humidity control device for a power station room according to claim 4, characterized in that, The power supply equipment component (106) includes: a photovoltaic power generation device (1061) and a storage battery (1062); The photovoltaic power generation device (1061) is installed on the outdoor wall of the power station. The output end of the photovoltaic power generation device (1061) is connected to the input end of the storage battery (1062). The output end of the storage battery (1062) is connected to the controller assembly (101), temperature sensor (102), humidity sensor (103), temperature and humidity control assembly (104), and airflow sensor (107).
7. The temperature and humidity control device for a power station room according to claim 4, characterized in that, It also includes a security equipment component (105), which includes a foam generator (1051) and a security camera (1052); The security camera (1052) is installed indoors in the power station for image monitoring. The security camera (1052) is connected to the controller assembly (101), and the controller assembly (101) is connected to the foam generator (1051).
8. The temperature and humidity control device for a power station room according to claim 7, characterized in that, The controller assembly (101) includes: a voltage converter (1011) and a central controller (1012); The input terminal of the voltage converter (1011) is connected to the power supply equipment assembly (106), and the output terminal of the voltage converter (1011) is connected to the central controller (1012). The central controller (1012) is connected to the temperature sensor (102), the humidity sensor (103), the temperature and humidity adjustment assembly (104), the controller assembly (101), the airflow sensor (107), and the security equipment assembly (105).
9. A power station chamber, characterized in that, The power station room is equipped with a temperature and humidity control device for the power station room as described in any one of claims 1 to 8.
10. The power station room according to claim 9, characterized in that, It also includes a display (108) connected to the controller assembly (101) for displaying humidity level signals and temperature level signals received by the controller assembly (101).
11. The power station room according to claim 9, characterized in that, It also includes an alarm device (109) connected to the controller assembly (101) for receiving instructions from the controller assembly (101) to issue an alarm.