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Power prediction method for photovoltaic devices

A power forecasting and photovoltaic technology, applied in forecasting, instrumentation, data processing applications, etc., can solve problems such as power waste, hidden dangers of power grid safety and security, deviation from actual values, etc.

Inactive Publication Date: 2014-12-10
STATE GRID CORP OF CHINA +2
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Problems solved by technology

[0004] However, the current neural network model can only control the prediction error to about 20%, and there is still a lot of power waste in power grid dispatching based on the prediction results
And within a forecast period, several outliers will inevitably appear when forecasting through the neural network model, which greatly deviates from the actual value, which brings security risks to the grid security

Method used

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  • Power prediction method for photovoltaic devices
  • Power prediction method for photovoltaic devices
  • Power prediction method for photovoltaic devices

Examples

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Embodiment 1

[0095] Such as figure 1 As shown, in this embodiment, the photovoltaic power is first predicted by physical methods, and various factors affecting the photovoltaic power generation power are determined by analyzing the physical structure and power generation principle of photovoltaic cells, including weather conditions, temperature, light intensity, and pollution indexes (such as PM2. 5 concentration), analyze the influence of these factors on the power of photovoltaic power generation, determine the mathematical formula for calculating the power generation power of photovoltaic cells through the corresponding mathematical relationship, and convert the mathematical model into a simulation model. After the parameters of the solar cell are determined, a certain section The change curve of weather conditions, temperature, light intensity, and pollution index (such as PM2.5 concentration) over time is used as input, and the simulation model is run to obtain the power change curve p...

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Abstract

The invention relates to an output power prediction method for photovoltaic generating devices; the method comprises: predicting by using a physical model prediction, and a neural network prediction of environmental factors and a rolling a neural network prediction; setting the physical model prediction as P0, the neural network prediction of the environmental factors as P1, the rolling a neural network prediction as P2, and final power prediction output value as p; if P1 is more than P0 and P2 is more than P0, P is equal to P0; if the P1 is more than P0 that is more than P2, P is equal to P2; if the P2 is more than P0 that is more than P1, P is equal to P1; if P1 is less than P0 and P2 is less than P0, P is equal to (P1+P2) / 2. According to the output power prediction method for photovoltaic generating devices provided by the invention, relatively complex mathematic relation is changed to be simple and reasonable mathematic relation, thus being beneficial to applying to actual engineering, improving predicting speed, reducing predicting difficulty, and being capable of significantly improving accuracy of prediction value of photovoltaic module output power, controlling error range and eliminating outlier.

Description

technical field [0001] The invention relates to a method for predicting output power of photovoltaic power generation equipment. Background technique [0002] As an important distributed power source, solar photovoltaic power generation is gradually being used by people from an independent system to a large-scale grid connection. However, since photovoltaic power generation is affected by solar radiation intensity, battery components, temperature, weather clouds and some random factors, the system operation process is an unbalanced random process, and its power generation and output power are highly random, fluctuate greatly and are not easy to control , especially when the weather changes abruptly. After this power generation method is connected to the grid, it will inevitably bring a series of problems to the security and management of the grid. Therefore, it is particularly important to predict the power generation efficiency of the photovoltaic system more accurately i...

Claims

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Application Information

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IPC IPC(8): G06Q10/04G06Q50/06
Inventor 高志强褚华宇孙中记孟良景皓梁宾杨潇
Owner STATE GRID CORP OF CHINA
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