Power supply system based on artificial intelligence
By introducing intelligent sensors and load prediction modules into the power supply system, the power outage maintenance problem is solved in the event of circuit failure, the stability and safety of power supply are achieved, and the risk of power outage is reduced.
Patent Information
- Application Number
- CN202510321639.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2025-07-01
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional power supply systems need to be powered off and repaired when circuit failures, which affects the power supply and use of the equipment.
The power supply system based on artificial intelligence is adopted, including power generation, transmission, substation, distribution and power transmission links, combined with intelligent sensors, load prediction modules and circuit regulation, real-time data acquisition, analysis and alarm, timely handling line capacity abnormalities, and ensuring stable operation of the circuit.
It improves the efficiency of power supply, reduces the risk of power outages, reduces the occurrence of circuit damage and safety accidents, and ensures the stability and safety of the circuit.
Smart Images

Figure CN120237798A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of power supply of artificial intelligence, and in particular to a power supply system based on artificial intelligence. Background Art
[0002] The circuit supply system, also often referred to as the power supply system or power supply and distribution system, is an important part of the power system responsible for transmitting electric energy from the power plant to the user end. The circuit supply system is mainly composed of four links: power generation, transmission, distribution and power consumption. These four links work together to form a complete circuit supply system.
[0003] With the rapid economic development, electricity load has increased rapidly. The power grid facilities in many areas are gradually aging and the line capacity cannot meet the demand. Especially during peak hours in cities and industrial parks, the power shortage is particularly prominent. Therefore, the supply of electricity has magnified the shortage of line capacity.
[0004] When applying for the present invention, the applicant found through search that a Chinese patent disclosed an "intelligent management system for power production based on artificial intelligence", and its application number is "202410556868.3". This patent mainly judges the received prediction data and real-time data through the result judgment unit in the power prediction module, so as to judge the prediction accuracy of the result prediction unit. The data output unit simultaneously outputs the prediction data, real-time data, standard data and judgment results. The staff can judge whether data adjustment is needed according to the accuracy of the prediction results. The continuous learning and adjustment of the learning unit can realize continuous adjustment of the prediction data, so that the prediction results are closer to the accurate data, which can improve the accuracy of the prediction results. However, for the line capacity in the power supply system, it also plays a key circuit transmission role. The traditional method needs to be powered off for maintenance when a circuit fails, thereby affecting the power supply and use of the equipment. Therefore, according to the invention of the applicant, an artificial intelligence-based power supply system is invented, which solves the problem that the traditional method needs to be powered off for maintenance when a circuit fails, thereby affecting the power supply and use of the equipment. Summary of the invention
[0005] 1. Technical issues to be resolved
[0006] In view of the deficiencies in the prior art, the present invention provides an artificial intelligence-based power supply system, which solves the problem that in the traditional way, when a circuit fails, a power outage is required for maintenance, thereby affecting the power supply use of the equipment.
[0007] (II) Technical solution
[0008] To achieve the above objectives, the present invention is implemented through the following technical solutions: an artificial intelligence-based power supply system, comprising: a power generation link, a power transmission link, a power transformation link, a power distribution link and a power transmission link, the output end of the power generation link is electrically connected to the power transmission link, the output end of the power transmission link is electrically connected to an intelligent sensor, the output end of the intelligent sensor is electrically connected to a line capacity, the output end of the line capacity is electrically connected to a load prediction module, the output end of the load prediction module is electrically connected to a circuit control, the output end of the circuit control is electrically connected to a power transformation link, the output end of the power transformation link is electrically connected to a power distribution link, and the output end of the power distribution link is electrically connected to a power transmission link;
[0009] The intelligent sensor includes real-time data acquisition, intelligent chip processing, data analysis, feedback and alarm. The output end of the real-time data acquisition is electrically connected to the intelligent chip processing, the output end of the intelligent chip processing is electrically connected to the data analysis, the output end of the data analysis is electrically connected to the feedback and alarm, the output end of the feedback and alarm is electrically connected to the controller, and the output ends of the controller are electrically connected to the data display and fault alarm respectively.
[0010] Preferably, the power generation link includes coal, hydropower, and wind power generation systems, and the substation link is in a substation, where electric energy is converted from high voltage to medium voltage or low voltage suitable for power distribution. The substation is responsible for voltage conversion and electric energy distribution.
[0011] Preferably, the transmission link transmits the electric energy generated by the power plant to substations in various places through high-voltage transmission lines. The transmission lines are usually high-voltage lines of 220kV and above. The distribution link distributes the electric energy to various users or equipment. The distribution lines are usually lines of 110kV and below, including high-voltage, medium-voltage and low-voltage distribution lines.
[0012] Preferably, a high-precision capacitance measurement module is integrated inside the smart sensor, which can capture capacitance changes in the circuit.
[0013] Preferably, the real-time data acquisition continuously collects capacitance data in the circuit to ensure the timeliness and accuracy of the data.
[0014] Preferably, the smart chip processing and data analysis includes transmitting the collected capacitance data to a microprocessor or smart chip built into the smart sensor for rapid analysis and processing. The smart chip determines whether the capacitance in the circuit is within a normal range based on a preset algorithm and threshold.
[0015] Preferably, once the feedback and alarm detects abnormal capacitance in the circuit, the controller will immediately send the alarm information to the monitoring system through the communication module for data display and fault alarm, so as to achieve timely prefabrication and processing.
[0016] (III) Beneficial effects
[0017] The present invention provides an artificial intelligence-based power supply system, which has the following beneficial effects:
[0018] 1. The present invention is provided with: intelligent sensors, load prediction modules and circuit control. The intelligent sensors can collect data, process and analyze the data. When the line capacity in the transmission link is abnormal, the alarm processing and circuit control can be completed in time. The circuit control improves the supply efficiency and reduces the risk of power outages.
[0019] 2. The present invention is provided with: line capacity and load prediction modules. When the line capacity is large enough, electric energy can be transmitted smoothly, voltage fluctuations and current shocks can be reduced, and stable operation of the circuit can be ensured. At the same time, the line capacity is limited. When the current or power in the circuit exceeds the line capacity, overload or short circuit will occur, which may cause circuit damage or fire and other safety accidents. Therefore, the load prediction module monitors the voltage prediction in real time to improve the safety of use and reduce the occurrence of circuit damage and danger. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a schematic diagram of the power supply system flow of the present invention;
[0021] Figure 2 It is a schematic diagram of the intelligent sensor process of the present invention. DETAILED DESCRIPTION
[0022] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. 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 creative work are within the scope of protection of the present invention.
[0023] Embodiment 1:
[0024] like Figure 1-2As shown, an embodiment of the present invention provides an artificial intelligence-based power supply system, including: a power generation link, a power transmission link, a power transformation link, a power distribution link and a power transmission link. The output end of the power generation link is electrically connected to the power transmission link. The output end of the power transmission link is electrically connected to an intelligent sensor. The intelligent sensor can collect data, process and analyze the data. When the line capacity in the power transmission link is abnormal, the alarm processing and circuit regulation can be completed in time. The circuit regulation improves the supply efficiency and reduces the risk of power outages. The output end of the intelligent sensor is electrically connected to the line capacity. When the line capacity is large enough, the electric energy can be transmitted smoothly, the voltage fluctuation and current impact can be reduced, and the stable operation of the circuit can be ensured. At the same time, the line capacity is limited. When the current or power in the circuit exceeds the line capacity, an overload or short circuit will occur, which may cause circuit damage or fire and other safety accidents. The output end of the line capacity is electrically connected to a load prediction module. The load prediction module monitors the voltage prediction in real time to improve the use Safety, reduce the occurrence of circuit damage and danger. The output end of the load prediction module is electrically connected to the circuit control, which can be remotely switched through remote control signals or network commands. The timed switching is automatically switched according to the set time plan, which is often used for the switching of backup power supplies. The output end of the circuit control is electrically connected to the substation link, and the output end of the substation link is electrically connected to the distribution link. The output end of the distribution link is electrically connected to the transmission link. The power generation link includes coal, hydropower, and wind power generation systems. The substation link is in the substation. Electric energy is converted from high voltage to medium voltage or low voltage suitable for distribution. The substation is responsible for voltage conversion and distribution of electric energy. The transmission link transmits the electric energy generated by the power plant to substations in various places through high-voltage transmission lines. The transmission lines are usually high-voltage lines of 220kV and above. The distribution link distributes electric energy to various users or equipment. The distribution lines are usually lines of 110kV and below, including high-voltage, medium-voltage and low-voltage distribution lines.
[0025] The intelligent sensor includes real-time data acquisition, intelligent chip processing, data analysis, feedback and alarm. The output end of the real-time data acquisition is electrically connected to the intelligent chip processing. The intelligent chip processing realizes intelligent data processing of the data collected information. The intelligent chip processing and data analysis include the collected capacitance data being transmitted to the microprocessor or intelligent chip built into the intelligent sensor for rapid analysis and processing. The intelligent chip will judge whether the capacitance in the line is within the normal range according to the preset algorithm and threshold. The output end of the intelligent chip processing is electrically connected to the data analysis. Through data analysis, data faults and conventional data can be analyzed and compared. The output end of the data analysis is electrically connected to the feedback and alarm. The output end of the feedback and alarm is electrically connected to the controller. The output ends of the controller are electrically connected to the data display and fault alarm respectively. Once the feedback and alarm detect the abnormal capacitance in the line, the controller will immediately send the alarm information to the monitoring system through the communication module for data display and fault alarm, so as to realize timely prefabrication and processing. The intelligent sensor integrates a high-precision capacitance measurement module, which can capture the capacitance change in the line. The real-time data acquisition continuously collects the capacitance data in the line to ensure the immediacy and accuracy of the data.
[0026] Embodiment 2:
[0027] The differences between this embodiment and Embodiment 1 are as follows: An artificial-intelligence-based power supply system includes: a power generation link, a power transmission link, a power transformation link, a power distribution link, and a power supply link. The output end of the power generation link is electrically connected to the power transmission link. The output end of the power transmission link is electrically connected to an intelligent sensor. Through the intelligent sensor, data can be collected, processed, and analyzed. When the line capacity in the power transmission link is abnormal, alarm processing and circuit regulation can be completed in a timely manner. The circuit regulation improves the supply efficiency and reduces the power outage risk. The output end of the intelligent sensor is electrically connected to the line capacity. When the line capacity is large enough, electrical energy can be transmitted smoothly, reducing voltage fluctuations and current surges, and ensuring the stable operation of the circuit. At the same time, the line capacity is limited. When the current or power in the circuit exceeds the line capacity, overload or short circuit may occur, which may lead to safety accidents such as circuit damage or fire. The output end of the line capacity is electrically connected to a load prediction module. The load prediction module monitors the voltage prediction in real time to improve the use safety and reduce the occurrence of circuit damage and danger. The output end of the load prediction module is electrically connected to the circuit regulation. The circuit regulation can be remotely switched by a remote control signal or a network instruction; the timed switching is automatically switched according to the set time plan and is often used for the switching of backup power supplies. The output end of the circuit regulation is electrically connected to the power transformation link. The output end of the power transformation link is electrically connected to the power distribution link. The output end of the power distribution link is electrically connected to the power supply link. The power generation link includes coal, hydropower, and wind power generation systems. In the power transformation link, in the substation, electrical energy is converted from high voltage to medium voltage or low voltage suitable for power distribution. The substation is responsible for voltage transformation and power distribution. The power transmission link transmits the electrical energy generated by the power plant to the substations in various places through high-voltage transmission lines. The transmission lines are usually high-voltage lines of 220 kV and above. The power distribution link distributes electrical energy to each user or device. The distribution lines are usually lines of 110 kV and below, including high-voltage, medium-voltage, and low-voltage distribution lines.
[0028] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An artificial intelligence-based power supply system, comprising: The power generation link, the power transmission link, the power transformation link, the power distribution link and the power transmission link are characterized in that: the output end of the power generation link is electrically connected to the power transmission link, the output end of the power transmission link is electrically connected to the intelligent sensor, the output end of the intelligent sensor is electrically connected to the line capacity, the output end of the line capacity is electrically connected to the load prediction module, the output end of the load prediction module is electrically connected to the circuit control, the output end of the circuit control is electrically connected to the power transformation link, the output end of the power transformation link is electrically connected to the power distribution link, and the output end of the power distribution link is electrically connected to the power transmission link; The intelligent sensor includes real-time data acquisition, intelligent chip processing, data analysis, feedback and alarm. The output end of the real-time data acquisition is electrically connected to the intelligent chip processing, the output end of the intelligent chip processing is electrically connected to the data analysis, the output end of the data analysis is electrically connected to the feedback and alarm, the output end of the feedback and alarm is electrically connected to the controller, and the output ends of the controller are electrically connected to the data display and fault alarm respectively.
2. The power supply system based on artificial intelligence according to claim 1, characterized in that: The power generation link includes coal, hydropower, and wind power generation systems. The substation link converts high voltage electricity into medium voltage or low voltage electricity suitable for power distribution. The substation is responsible for voltage conversion and power distribution.
3. The power supply system based on artificial intelligence according to claim 1, characterized in that: The transmission link transmits the electric energy generated by the power plant to substations in various places through high-voltage transmission lines. The transmission lines are usually high-voltage lines of 220kV and above. The distribution link distributes the electric energy to various users or equipment. The distribution lines are usually lines of 110kV and below, including high-voltage, medium-voltage and low-voltage distribution lines.
4. The power supply system based on artificial intelligence according to claim 1, characterized in that: The intelligent sensor integrates a high-precision capacitance measurement module and can capture capacitance changes in the circuit.
5. The power supply system based on artificial intelligence according to claim 1, characterized in that: The real-time data acquisition continuously collects capacitance data in the circuit to ensure the timeliness and accuracy of the data.
6. The power supply system based on artificial intelligence according to claim 1, characterized in that: The smart chip processing and data analysis includes transmitting the collected capacitance data to the microprocessor or smart chip built into the smart sensor for rapid analysis and processing. The smart chip will determine whether the capacitance in the circuit is within a normal range based on a preset algorithm and threshold.
7. The power supply system based on artificial intelligence according to claim 1, characterized in that: Once the feedback and alarm detects abnormal capacitance in the line, the controller will immediately send the alarm information to the monitoring system through the communication module for data display and fault alarm, so as to achieve timely prefabrication and processing.
Citation Information
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