Operation control system of cogeneration photovoltaic power generation system
By real-time monitoring and calculation of the heat dissipation and thermal energy conversion of photovoltaic cells, dynamic adjustment of heat dissipation equipment and introduction of phase change energy storage technology, the problems of insufficient heat dissipation and incomplete thermal energy conversion in the cogeneration photovoltaic power generation system are solved, and the system efficiency and equipment life are improved.
Patent Information
- Application Number
- CN202510771732.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2024-11-27
- Filing Date
- 2025-06-11
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2045-06-11
AI Technical Summary
Insufficient heat dissipation and incomplete heat energy conversion in existing cogeneration photovoltaic power generation systems affect equipment performance and lifespan, and increase the difficulty and cost of operation and maintenance.
Photovoltaic monitoring module, data acquisition module, data analysis module and data management module are used to monitor and calculate the heat dissipation and thermal energy conversion of photovoltaic cells in real time, dynamically adjust the heat dissipation equipment and introduce phase change energy storage technology to optimize the heat dissipation method.
It improves heat dissipation efficiency, reduces heat energy waste, extends the service life of photovoltaic panels, and reduces operation and maintenance costs.
Smart Images

Figure CN120639016A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of power system control and automation, and in particular to an operation control system of a cogeneration photovoltaic power generation system. Background Art
[0002] In a cogeneration photovoltaic power generation system, since the components are centrally installed in the photovoltaic base station, a large amount of heat is generated during high-intensity operation. Existing heat dissipation methods and heat energy conversion have many shortcomings, such as insufficient heat dissipation, susceptibility to weather influences (such as water vapor intrusion on rainy days), and limited heat dissipation area. These problems not only affect the performance and lifespan of the equipment, but also increase the difficulty and cost of operation and maintenance. In addition, in the process of converting solar energy into electrical energy, photovoltaic cells lose some energy in the form of heat energy, and this heat energy is not effectively utilized. In order to improve the overall efficiency of photovoltaic systems, it is necessary to explore new heat recovery and utilization technologies. Therefore, research and development of efficient heat dissipation technology has become an important issue in improving the performance of photovoltaic power generation systems. Summary of the Invention
[0003] (1) Technical problems solved
[0004] In response to the deficiencies of the prior art, the present invention provides an operation control system for a cogeneration photovoltaic power generation system, which has the advantages of sufficient heat dissipation and complete thermal energy conversion, solving the problems of insufficient heat dissipation and incomplete thermal energy conversion in the prior art.
[0005] (2) Technical solution
[0006] To achieve the above-mentioned object, the present invention provides the following technical solutions: an operation control system for a cogeneration photovoltaic power generation system, comprising a photovoltaic monitoring module, a photovoltaic data acquisition module, a photovoltaic data analysis module and a photovoltaic data management module;
[0007] The photovoltaic monitoring module uses online instruments, monitoring equipment and sensors to monitor the working status of the photovoltaic power generation system in real time. The photovoltaic monitoring module is connected to the photovoltaic data acquisition module through the network;
[0008] The photovoltaic data acquisition module includes a photovoltaic cell assembly unit, an operating environment data unit and a photovoltaic operation data unit. The photovoltaic cell assembly unit monitors and collects photovoltaic cell data through sensors. The operating environment data unit collects operating environment data through an online temperature and humidity instrument. The photovoltaic operation data unit collects photovoltaic operation data through online monitoring instruments, vulnerabilities and port scanning. After the photovoltaic cell assembly unit, the operating environment data unit and the photovoltaic operation data unit collect internal data statistics, they are connected to the photovoltaic data analysis module through the network.
[0009] The photovoltaic data analysis module includes an operating temperature heat dissipation unit, an environmental factor heat dissipation adjustment unit and a heat conversion unit. The operating temperature heat dissipation unit calculates the real-time photovoltaic cell heat dissipation Qj and the minimum photovoltaic cell heat dissipation Qj according to the photovoltaic cell data. min The environmental factor heat dissipation adjustment unit is based on the minimum photovoltaic cell heat dissipation Qj min The safe heat dissipation adjustment requirement Wil is calculated based on the operating environment data. The heat conversion unit calculates the optimized heat dissipation Qz based on the photovoltaic operating data. The operating temperature heat dissipation unit, the environmental factor heat dissipation adjustment unit and the heat conversion unit are connected to the photovoltaic data management module through a network.
[0010] The photovoltaic data management module adjusts the heat dissipation mode according to the real-time photovoltaic cell heat dissipation Qj, the safety heat dissipation adjustment requirement Wil and the optimized heat dissipation Qz.
[0011] Preferably, the photovoltaic cell assembly unit performs data statistics on the panel temperature and coolant temperature measured within a period of time according to the photovoltaic cell data characteristics, and the panel temperature statistics measured within the period of time are T1, T2, T3, ... T n The coolant temperature statistics measured during the period are S1, S2, S3, ... S n .
[0012] Preferably, the operating environment data unit performs data statistics on the real-time temperature and humidity of the operating environment according to the operating environment data characteristics, and the real-time temperature and humidity of the operating environment are respectively counted as T r 、W r .
[0013] Preferably, the photovoltaic operation data unit performs data statistics on the photovoltaic total voltage, photovoltaic total current, actual output voltage, actual output current, theoretical output voltage, theoretical output current, heat transfer rate, heat dissipation area and cooling water temperature difference according to the photovoltaic operation data characteristics, and the photovoltaic total voltage, photovoltaic total current, actual output voltage, actual output current, theoretical output voltage, theoretical output current, heat transfer rate, heat dissipation area and cooling water temperature difference are respectively counted as V z 、A z 、V x 、A x 、V g 、A g , L, D, Δt.
[0014] Preferably, the operating temperature heat dissipation unit calculates the real-time photovoltaic cell heat dissipation Qj and the minimum photovoltaic cell heat dissipation Qj according to the photovoltaic cell data. min , and its calculation formula is:
[0015]
[0016] In the formula, Qj represents the real-time heat dissipation of photovoltaic cells, T1, T2, T3, ...T n Indicates the temperature of the solar panel measured over a period of time, S1, S2, S3, ... S n Indicates the coolant temperature measured over a period of time, It represents the difference between the average temperature of the solar panel and the average temperature of the coolant, n represents the number of solar panels counted, K represents the thermal resistance of the photovoltaic power generation system, Qj min Indicates the minimum heat dissipation of photovoltaic cells, T min Indicates the lowest temperature of the solar panel, S min Indicates the minimum coolant temperature.
[0017] Preferably, the photovoltaic data management module adjusts the number of groups of self-heating photovoltaic components according to the real-time heat dissipation Qj of the photovoltaic cells.
[0018] Preferably, the environmental factor heat dissipation adjustment unit is based on the minimum photovoltaic cell heat dissipation Qj min Calculate the safe heat dissipation adjustment requirement Wil based on the operating environment data. The calculation formula is:
[0019] Wil=Qj min *(1+b*T r +c*W r )
[0020] In the formula, Wil represents the safety heat dissipation adjustment requirement, Qj min Indicates the minimum heat dissipation of photovoltaic cells, T r 、W r They represent the real-time temperature and humidity of the operating environment respectively, and b and c represent the weights corresponding to the real-time temperature and humidity of the operating environment respectively.
[0021] Preferably, the photovoltaic data management module adds active cooling technology according to the safety heat dissipation adjustment requirement Wil.
[0022] Preferably, the heat conversion unit calculates the optimized heat dissipation Qz based on the photovoltaic operation data, and the calculation formula is:
[0023]
[0024] In the formula, Qz represents the heat dissipation after optimization, V z 、A z 、V x 、A x 、V g 、A g, L, D, and Δt represent the total voltage of photovoltaic, the total current of photovoltaic, the actual output voltage, the actual output current, the theoretical output voltage, the theoretical output current, the heat transfer rate, the heat dissipation area, and the cooling water temperature difference, respectively. z *A z Indicates the total power of the photovoltaic system, V x *A x Indicates the actual output power, V g *A g Indicates the theoretical maximum output power, Indicates the current heat dissipation efficiency. Indicates the heat dissipation coefficient.
[0025] Preferably, the photovoltaic data management module introduces phase change energy storage technology according to the optimized heat dissipation Qz.
[0026] Compared with the prior art, the present invention provides an operation control system for a cogeneration photovoltaic power generation system, which has the following beneficial effects:
[0027] 1. The present invention calculates the real-time heat dissipation Qj of photovoltaic cells. The calculation formula integrates the difference between the average temperature of the solar panel and the average temperature of the coolant, as well as the thermal resistance of the system, to calculate the real-time heat dissipation and minimum heat dissipation required by the photovoltaic power generation system. This helps to avoid excessive or insufficient heat dissipation of the photovoltaic power generation system, thereby improving heat dissipation efficiency. According to the calculated real-time heat dissipation and minimum heat dissipation, the system can dynamically adjust the operating status of the heat dissipation equipment (fan speed, coolant flow) to ensure that the solar panel always remains within the optimal operating temperature range. By setting the minimum heat dissipation, the system can take measures in advance when the solar panel temperature approaches the minimum safe temperature to prevent the solar panel from being damaged due to excessively low temperature. The above effective heat dissipation management method can reduce the thermal stress of the solar panel, extend its service life, and reduce performance degradation caused by overheating.
[0028] 2. By calculating the optimized heat dissipation Qz, the present invention can dynamically adjust the operating status of the heat dissipation equipment or introduce phase change energy storage technology to ensure that the heat dissipation and energy storage functions of the photovoltaic panel are always maintained in the best working state. This dynamic adjustment helps to improve the heat dissipation efficiency. While reducing the waste of photovoltaic thermal energy conversion, the optimized heat dissipation also helps to reduce the thermal stress of the panel and extend its service life. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 It is a structural schematic diagram of the present invention. DETAILED DESCRIPTION
[0030] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0031] See also Figure 1 , an operation control system of a cogeneration photovoltaic power generation system, comprising a photovoltaic monitoring module, a photovoltaic data acquisition module, a photovoltaic data analysis module and a photovoltaic data management module;
[0032] The photovoltaic monitoring module uses online instruments, monitoring equipment and sensors to monitor the working status of the photovoltaic power generation system in real time. The photovoltaic monitoring module is connected to the photovoltaic data acquisition module through the network;
[0033] The photovoltaic data acquisition module includes a photovoltaic cell assembly unit, an operating environment data unit, and a photovoltaic operation data unit. The photovoltaic cell assembly unit collects photovoltaic cell data through sensor monitoring. The operating environment data unit collects operating environment data through an online temperature and humidity instrument. The photovoltaic operation data unit collects photovoltaic operation data through online monitoring instruments, vulnerability and port scanning. The photovoltaic cell assembly unit, the operating environment data unit, and the photovoltaic operation data unit collect internal data statistics and connect to the photovoltaic data analysis module through the network.
[0034] The photovoltaic data analysis module includes an operating temperature heat dissipation unit, an environmental factor heat dissipation adjustment unit, and a heat conversion unit. The operating temperature heat dissipation unit calculates the real-time photovoltaic cell heat dissipation Qj and the minimum photovoltaic cell heat dissipation Qj based on the photovoltaic cell data. min , the environmental factor heat dissipation adjustment unit is based on the minimum photovoltaic cell heat dissipation Qj min The safe heat dissipation adjustment requirement Wil is calculated based on the operating environment data. The heat conversion unit calculates the optimized heat dissipation Qz based on the photovoltaic operating data. The operating temperature heat dissipation unit, the environmental factor heat dissipation adjustment unit and the heat conversion unit are connected to the photovoltaic data management module through the network.
[0035] The photovoltaic data management module adjusts the heat dissipation mode according to the real-time photovoltaic cell heat dissipation Qj, the safe heat dissipation adjustment requirement Wil and the optimized heat dissipation Qz.
[0036] The photovoltaic cell module unit performs data statistics on the panel temperature and coolant temperature measured over a period of time according to the photovoltaic cell data characteristics. The panel temperature statistics measured over a period of time are T1, T2, T3, ...T n The coolant temperature statistics measured over a period of time are S1, S2, S3, ... S n .
[0037] The operating environment data unit performs data statistics on the real-time temperature and humidity of the operating environment according to the operating environment data characteristics. The real-time temperature and humidity of the operating environment are respectively counted as T r 、W r .
[0038] The photovoltaic operation data unit performs data statistics on the total photovoltaic voltage, total photovoltaic current, actual output voltage, actual output current, theoretical output voltage, theoretical output current, heat transfer rate, heat dissipation area and cooling water temperature difference according to the photovoltaic operation data characteristics. The total photovoltaic voltage, total photovoltaic current, actual output voltage, actual output current, theoretical output voltage, theoretical output current, heat transfer rate, heat dissipation area and cooling water temperature difference are respectively counted as V z 、A z 、V x 、A x 、V g 、A g , L, D, Δt.
[0039] The operating temperature heat dissipation unit calculates the real-time photovoltaic cell heat dissipation Qj and the minimum photovoltaic cell heat dissipation Qj based on the photovoltaic cell data min , and its calculation formula is:
[0040]
[0041] In the formula, Qj represents the real-time heat dissipation of photovoltaic cells, T1, T2, T3, ...T n Indicates the temperature of the solar panel measured over a period of time, S1, S2, S3, ... S n Indicates the coolant temperature measured over a period of time, It represents the difference between the average temperature of the solar panel and the average temperature of the coolant, n represents the number of solar panels counted, K represents the thermal resistance of the photovoltaic power generation system, Qj min Indicates the minimum heat dissipation of photovoltaic cells, T min Indicates the lowest temperature of the solar panel, S min Indicates the minimum coolant temperature.
[0042] The advantages are: by calculating the real-time heat dissipation Qj of the photovoltaic cells, the calculation formula comprehensively considers the difference between the average temperature of the solar panel and the average temperature of the coolant, as well as the thermal resistance of the system, to calculate the real-time heat dissipation and minimum heat dissipation required by the photovoltaic power generation system, which helps to avoid excessive or insufficient heat dissipation of the photovoltaic power generation system, thereby improving the heat dissipation efficiency. According to the calculated real-time heat dissipation and minimum heat dissipation, the system can dynamically adjust the operating status of the heat dissipation equipment (fan speed, coolant flow) to ensure that the solar panel always remains within the optimal operating temperature range. By setting the minimum heat dissipation, the system can take measures in advance when the solar panel temperature approaches the minimum safe temperature to prevent the solar panel from being damaged due to excessively low temperature. The above effective heat dissipation management method can reduce the thermal stress of the solar panel, extend its service life, and reduce performance degradation caused by overheating.
[0043] The photovoltaic data management module adjusts the number of self-heating photovoltaic modules according to the real-time heat dissipation Qj of the photovoltaic cells.
[0044] Environmental factor heat dissipation adjustment unit is based on the minimum photovoltaic cell heat dissipation Qj min Calculate the safe heat dissipation adjustment requirement Wil based on the operating environment data. The calculation formula is:
[0045] Wil=Qj min *(1+b*T r +c*W r )
[0046] In the formula, Wil represents the safety heat dissipation adjustment requirement, Qj min Indicates the minimum heat dissipation of photovoltaic cells, T r 、W r They represent the real-time temperature and humidity of the operating environment respectively, and b and c represent the weights corresponding to the real-time temperature and humidity of the operating environment respectively.
[0047] The advantages are: by calculating the safe heat dissipation adjustment demand Wil, the formula includes the real-time temperature and humidity of the operating environment, which helps the photovoltaic heat dissipation system to dynamically adjust the heat dissipation strategy according to changes in the current environmental conditions. When in a high temperature and high humidity environment, the heat dissipation demand of photovoltaic power generation will increase, and the system will increase the heat dissipation accordingly to ensure that the photovoltaic cells will not overheat and cause damage. In addition, this calculation formula can be applied to different environmental conditions. Whether it is a high temperature and high humidity environment or a low temperature and low humidity environment, the safe heat dissipation adjustment demand Wil can be used to adjust system parameters to meet the heat dissipation demand.
[0048] The photovoltaic data management module will increase the application of active cooling technology according to the requirements of safe heat dissipation adjustment.
[0049] The heat conversion unit calculates the optimized heat dissipation Qz based on the photovoltaic operation data. The calculation formula is:
[0050]
[0051] In the formula, Qz represents the heat dissipation after optimization, V z 、A z 、V x 、A x 、V g 、A g , L, D, and Δt represent the total voltage of photovoltaic, the total current of photovoltaic, the actual output voltage, the actual output current, the theoretical output voltage, the theoretical output current, the heat transfer rate, the heat dissipation area, and the cooling water temperature difference, respectively. z *A z Indicates the total power of the photovoltaic system, V x *A x Indicates the actual output power, V g *A g Indicates the theoretical maximum output power, Indicates the current heat dissipation efficiency. Indicates the heat dissipation coefficient.
[0052] The advantage is that by calculating the optimized heat dissipation Qz, the system can dynamically adjust the operating status of the heat dissipation equipment or introduce phase change energy storage technology to ensure that the heat dissipation and energy storage functions of the photovoltaic panels are always kept in the best working state. This dynamic adjustment helps to improve the heat dissipation efficiency. While reducing the waste of photovoltaic thermal energy conversion, the optimized heat dissipation also helps to reduce the thermal stress of the panels and extend their service life.
[0053] The photovoltaic data management module introduces phase change energy storage technology based on the optimized heat dissipation Qz.
[0054] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. An operation control system for a cogeneration photovoltaic power generation system, characterized in that: Including photovoltaic monitoring module, photovoltaic data acquisition module, photovoltaic data analysis module and photovoltaic data management module; The photovoltaic monitoring module uses online instruments, monitoring equipment and sensors to monitor the working status of the photovoltaic power generation system in real time. The photovoltaic monitoring module is connected to the photovoltaic data acquisition module through the network; The photovoltaic data acquisition module includes a photovoltaic cell assembly unit, an operating environment data unit and a photovoltaic operation data unit. The photovoltaic cell assembly unit monitors and collects photovoltaic cell data through sensors. The operating environment data unit collects operating environment data through an online temperature and humidity instrument. The photovoltaic operation data unit collects photovoltaic operation data through online monitoring instruments, vulnerabilities and port scanning. After the photovoltaic cell assembly unit, the operating environment data unit and the photovoltaic operation data unit collect internal data statistics, they are connected to the photovoltaic data analysis module through the network. The photovoltaic data analysis module includes an operating temperature heat dissipation unit, an environmental factor heat dissipation adjustment unit and a heat conversion unit. The operating temperature heat dissipation unit calculates the real-time photovoltaic cell heat dissipation Qj and the minimum photovoltaic cell heat dissipation Qj according to the photovoltaic cell data. min The environmental factor heat dissipation adjustment unit is based on the minimum photovoltaic cell heat dissipation Qj min The safe heat dissipation adjustment requirement Wil is calculated based on the operating environment data. The heat conversion unit calculates the optimized heat dissipation Qz based on the photovoltaic operating data. The operating temperature heat dissipation unit, the environmental factor heat dissipation adjustment unit and the heat conversion unit are connected to the photovoltaic data management module through a network. The photovoltaic data management module adjusts the heat dissipation mode according to the real-time photovoltaic cell heat dissipation Qj, the safety heat dissipation adjustment requirement Wil and the optimized heat dissipation Qz.
2. The operation control system of a cogeneration photovoltaic power generation system according to claim 1, characterized in that: The photovoltaic cell assembly unit performs data statistics on the cell panel temperature and coolant temperature measured within a period of time according to the photovoltaic cell data characteristics. The cell panel temperature statistics measured within the period of time are T1, T2, T3, ..., T n The coolant temperature statistics measured during the period are S1, S2, S3, ... S n .
3. The operation control system of a cogeneration photovoltaic power generation system according to claim 1, characterized in that: The operating environment data unit performs data statistics on the real-time temperature and humidity of the operating environment according to the operating environment data characteristics. The real-time temperature and humidity of the operating environment are respectively counted as T r 、W r .
4. The operation control system of a cogeneration photovoltaic power generation system according to claim 1, characterized in that: The photovoltaic operation data unit performs data statistics on the total photovoltaic voltage, the total photovoltaic current, the actual output voltage, the actual output current, the theoretical output voltage, the theoretical output current, the heat transfer rate, the heat dissipation area and the cooling water temperature difference according to the photovoltaic operation data characteristics, and the total photovoltaic voltage, the total photovoltaic current, the actual output voltage, the actual output current, the theoretical output voltage, the theoretical output current, the heat transfer rate, the heat dissipation area and the cooling water temperature difference are respectively counted as V z 、A z 、V x 、A x 、V g 、A g , L, D, Δt.
5. The operation control system of a cogeneration photovoltaic power generation system according to claim 2, characterized in that: The operating temperature heat dissipation unit calculates the real-time photovoltaic cell heat dissipation Qj and the minimum photovoltaic cell heat dissipation Qj according to the photovoltaic cell data. min , and its calculation formula is: In the formula, Qj represents the real-time heat dissipation of photovoltaic cells, T1, T2, T3, ...T n Indicates the temperature of the solar panel measured over a period of time, S1, S2, S3, ... S n Indicates the coolant temperature measured over a period of time, It represents the difference between the average temperature of the solar panel and the average temperature of the coolant, n represents the number of solar panels counted, K represents the thermal resistance of the photovoltaic power generation system, Qj min Indicates the minimum heat dissipation of photovoltaic cells, T min Indicates the lowest temperature of the solar panel, S min Indicates the minimum coolant temperature.
6. The operation control system of a cogeneration photovoltaic power generation system according to claim 5, characterized in that: The photovoltaic data management module adjusts the number of groups of self-heating photovoltaic components according to the real-time heat dissipation Qj of the photovoltaic cells.
7. The operation control system of a cogeneration photovoltaic power generation system according to claim 5, characterized in that: The environmental factor heat dissipation adjustment unit is based on the minimum photovoltaic cell heat dissipation Qj min Calculate the safe heat dissipation adjustment requirement Wil based on the operating environment data. The calculation formula is: Wil=Qj min *(1+b*T r +c*W r ) In the formula, Wil represents the safety heat dissipation adjustment requirement, Qj min Indicates the minimum heat dissipation of photovoltaic cells, T r 、W r They represent the real-time temperature and humidity of the operating environment respectively, and b and c represent the weights corresponding to the real-time temperature and humidity of the operating environment respectively.
8. The operation control system of a cogeneration photovoltaic power generation system according to claim 7, characterized in that: The photovoltaic data management module increases the application of active cooling technology according to the safety heat dissipation adjustment requirements.
9. The operation control system of a combined heat and power photovoltaic power generation system according to claim 4, characterized in that: The heat conversion unit calculates the optimized heat dissipation Qz based on the photovoltaic operation data, and the calculation formula is: In the formula, Qz represents the heat dissipation after optimization, V z 、A z 、V x 、A x 、V g 、A g , L, D, and Δt represent the total voltage of photovoltaic, the total current of photovoltaic, the actual output voltage, the actual output current, the theoretical output voltage, the theoretical output current, the heat transfer rate, the heat dissipation area, and the cooling water temperature difference, respectively. z *A z Indicates the total power of the photovoltaic system, V x *A x Indicates the actual output power, V g *A g Indicates the theoretical maximum output power, Indicates the current heat dissipation efficiency. Indicates the heat dissipation coefficient.
10. The operation control system of a cogeneration photovoltaic power generation system according to claim 9, characterized in that: The photovoltaic data management module introduces phase change energy storage technology according to the optimized heat dissipation Qz.
Citation Information
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