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摘要:
The increasing penetration of highly intermittent wind generation could seriously jeopardize the operation reliability of power systems and increase the risk of electricity outages. To this end, this paper proposes a novel data-driven method for operation risk assessment of wind-integrated power systems. Firstly, a new approach is presented to model the uncertainty of wind power in lead time. The proposed approach employs k-means clustering and mixture models(MMs) to construct time-dependent probability distributions of wind power.The proposed approach can also capture the complicated statistical features of wind power such as multimodality. Then, a nonsequential Monte Carlo simulation(NSMCS) technique is adopted to evaluate the operation risk indices. To improve the computation performance of NSMCS, a cross-entropy based importance sampling(CE-IS) technique is applied. The CE-IS technique is modified to include the proposed model of wind power.The method is validated on a modified IEEE 24-bus reliability test system(RTS) and a modified IEEE 3-area RTS while employing the historical data of wind generation. The simulation results verify the importance of accurate modeling of shortterm uncertainty of wind power for operation risk assessment.Further case studies have been performed to analyze the impact of transmission systems on operation risk indices. The computational performance of the framework is also examined.
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篇名 Data-driven Operation Risk Assessment of Wind-integrated Power Systems via Mixture Models and Importance Sampling
来源期刊 现代电力系统与清洁能源学报(英文) 学科 工学
关键词 Cross entropy mixture model Monte Carlo simulation operation risk power system reliability
年,卷(期) 2020,(3) 所属期刊栏目
研究方向 页码范围 437-445
页数 9页 分类号 TP3
字数 语种
DOI
五维指标
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Cross
entropy
mixture
model
Monte
Carlo
simulation
operation
risk
power
system
reliability
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研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
现代电力系统与清洁能源学报(英文)
双月刊
2196-5625
32-1884/TK
No. 19 Chengxin Aven
出版文献量(篇)
386
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0
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0
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