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[电气工程与系统科学] 通用飞机的概率可用投送能力评估 可再生能源配电网 [推广有奖]

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kedemingshi 在职认证  发表于 2022-3-4 12:06:30 来自手机 |AI写论文

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摘要翻译:
可再生能源和电动汽车在公用配电馈线中的迅速增加带来了越来越多的不确定性。为了研究这些不确定性如何影响配电网的可用送货能力(ADC),必须采用概率分析框架。本文提出了一种考虑可再生发电机和负荷变化的概率ADC公式;将稀疏多项式混沌展开(PCE)与延拓法相结合,提出了一种计算效率较高的概率ADC求解方法。给出了IEEE13节点试验馈线的数值算例,验证了该方法的准确性和有效性。
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英文标题:
《Probabilistic Available Delivery Capability Assessment of General
  Distribution Network with Renewables》
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作者:
Hao Sheng and Xiaozhe Wang
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最新提交年份:
2017
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分类信息:

一级分类:Electrical Engineering and Systems Science        电气工程与系统科学
二级分类:Signal Processing        信号处理
分类描述:Theory, algorithms, performance analysis and applications of signal and data analysis, including physical modeling, processing, detection and parameter estimation, learning, mining, retrieval, and information extraction. The term "signal" includes speech, audio, sonar, radar, geophysical, physiological, (bio-) medical, image, video, and multimodal natural and man-made signals, including communication signals and data. Topics of interest include: statistical signal processing, spectral estimation and system identification; filter design, adaptive filtering / stochastic learning; (compressive) sampling, sensing, and transform-domain methods including fast algorithms; signal processing for machine learning and machine learning for signal processing applications; in-network and graph signal processing; convex and nonconvex optimization methods for signal processing applications; radar, sonar, and sensor array beamforming and direction finding; communications signal processing; low power, multi-core and system-on-chip signal processing; sensing, communication, analysis and optimization for cyber-physical systems such as power grids and the Internet of Things.
信号和数据分析的理论、算法、性能分析和应用,包括物理建模、处理、检测和参数估计、学习、挖掘、检索和信息提取。“信号”一词包括语音、音频、声纳、雷达、地球物理、生理、(生物)医学、图像、视频和多模态自然和人为信号,包括通信信号和数据。感兴趣的主题包括:统计信号处理、谱估计和系统辨识;滤波器设计;自适应滤波/随机学习;(压缩)采样、传感和变换域方法,包括快速算法;用于机器学习的信号处理和用于信号处理应用的机器学习;网络与图形信号处理;信号处理中的凸和非凸优化方法;雷达、声纳和传感器阵列波束形成和测向;通信信号处理;低功耗、多核、片上系统信号处理;信息物理系统的传感、通信、分析和优化,如电网和物联网。
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英文摘要:
  Rapid increase of renewable energy sources and electric vehicles in utility distribution feeders introduces more and more uncertainties. To investigate how such uncertainties may affect the available delivery capability (ADC) of the distribution network, it is imperative to employ a probabilistic analysis framework. In this paper, a formulation for probabilistic ADC incorporating renewable generators and load variations is proposed; a computationally efficient method to solve the probabilistic ADC is presented, which combines the up-to-date sparse polynomial chaos expansion (PCE) and the continuation method. A numerical example in the IEEE 13 node test feeder is given to demonstrate the accuracy and efficiency of the proposed method.
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PDF链接:
https://arxiv.org/pdf/1710.09915
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关键词:可再生能源 再生能源 可再生 Applications distribution 再生能源 投送 提出 Available 可用

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