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Multi-Scenario Probabilistic Load Flow Calculation Considering Wind Speed Correlation
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作者 Xueqian Wang Hongsheng Su 《Energy Engineering》 2025年第2期667-680,共14页
As the proportion of newenergy increases,the traditional cumulant method(CM)produces significant errorswhen performing probabilistic load flow(PLF)calculations with large-scale wind power integrated.Considering the wi... As the proportion of newenergy increases,the traditional cumulant method(CM)produces significant errorswhen performing probabilistic load flow(PLF)calculations with large-scale wind power integrated.Considering the wind speed correlation,a multi-scenario PLF calculation method that combines random sampling and segmented discrete wind farm power was proposed.Firstly,based on constructing discrete scenes of wind farms,the Nataf transform is used to handle the correlation between wind speeds.Then,the random sampling method determines the output probability of discrete wind power scenarios when wind speed exhibits correlation.Finally,the PLF calculation results of each scenario areweighted and superimposed following the total probability formula to obtain the final power flow calculation result.Verified in the IEEE standard node system,the absolute percent error(APE)for the mean and standard deviation(SD)of the node voltages and branch active power are all within 1%,and the average root mean square(AMSR)values of the probability curves are all less than 1%. 展开更多
关键词 Wind speed correlation probabilistic load flow multi-scenario PIECEWISE cumulant method
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Probabilistic Load Flow Considering Correlation between Generation, Loads and Wind Power 被引量:3
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作者 Daniel Villanueva Andrés Feijóo José Luis Pazos 《Smart Grid and Renewable Energy》 2011年第1期12-20,共9页
In this paper a procedure is established for solving the Probabilistic Load Flow in an electrical power network, considering correlation between power generated by power plants, loads demanded on each bus and power in... In this paper a procedure is established for solving the Probabilistic Load Flow in an electrical power network, considering correlation between power generated by power plants, loads demanded on each bus and power injected by wind farms. The method proposed is based on the generation of correlated series of power values, which can be used in a MonteCarlo simulation, to obtain the probability density function of the power through branches of an electrical network. 展开更多
关键词 CORRELATION MONTE Carlo Simulation probabilistic load flow WIND Power WIND FARM
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Efficient Probabilistic Load Flow Calculation Considering Vine Copula⁃Based Dependence Structure of Renewable Energy Generation 被引量:3
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作者 MA Hongyan WANG Han +2 位作者 XU Xiaoyuan YAN Zheng MAO Guijiang 《Journal of Donghua University(English Edition)》 CAS 2021年第5期465-470,共6页
Correlations among random variables make significant impacts on probabilistic load flow(PLF)calculation results.In the existing studies,correlation coefficients or Gaussian copula are usually used to model the correla... Correlations among random variables make significant impacts on probabilistic load flow(PLF)calculation results.In the existing studies,correlation coefficients or Gaussian copula are usually used to model the correlations,while vine copula,which describes the complex dependence structure(DS)of random variables,is seldom discussed since it brings in much heavier computational burdens.To overcome this problem,this paper proposes an efficient PLF method considering input random variables with complex DS.Specifically,the Rosenblatt transformation(RT)is used to transform vine copula⁃based correlated variables into independent ones;and then the sparse polynomial chaos expansion(SPCE)evaluates output random variables of PLF calculation.The effectiveness of the proposed method is verified using the IEEE 123⁃bus system. 展开更多
关键词 probabilistic load flow(PLF) vine copula sparse polynomial chaos expansion(SPCE) Rosenblatt transformation(RT)
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Probabilistic Load Flow Calculation of Power System Integrated with Wind Farm Based on Kriging Model 被引量:1
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作者 Lu Li Yuzhen Fan +1 位作者 Xinglang Su Gefei Qiu 《Energy Engineering》 EI 2021年第3期565-580,共16页
Because of the randomness and uncertainty,integration of large-scale wind farms in a power system will exert significant influences on the distribution of power flow.This paper uses polynomial normal transformation me... Because of the randomness and uncertainty,integration of large-scale wind farms in a power system will exert significant influences on the distribution of power flow.This paper uses polynomial normal transformation method to deal with non-normal random variable correlation,and solves probabilistic load flow based on Kriging method.This method is a kind of smallest unbiased variance estimation method which estimates unknown information via employing a point within the confidence scope of weighted linear combination.Compared with traditional approaches which need a greater number of calculation times,long simulation time,and large memory space,Kriging method can rapidly estimate node state variables and branch current power distribution situation.As one of the generator nodes in the western Yunnan power grid,a certain wind farm is chosen for empirical analysis.Results are used to compare with those by Monte Carlo-based accurate solution,which proves the validity and veracity of the model in wind farm power modeling as output of the actual turbine through PSD-BPA. 展开更多
关键词 probabilistic load flow Kriging model wind turbine clusters polynomial normal transformation CORRELATION
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Probabilistic Load Flow Algorithm with the Power Performance of Double-Fed Induction Generators 被引量:1
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作者 CAO Ruilin XING Jie HOU Meiqian 《Journal of Donghua University(English Edition)》 CAS 2021年第3期206-213,共8页
Probabilistic load flow(PLF)algorithm has been regained attention,because the large-scale wind power integration into the grid has increased the uncertainty of the stable and safe operation of the power system.The PLF... Probabilistic load flow(PLF)algorithm has been regained attention,because the large-scale wind power integration into the grid has increased the uncertainty of the stable and safe operation of the power system.The PLF algorithm is improved with introducing the power performance of double-fed induction generators(DFIGs)for wind turbines(WTs)under the constant power factor control and the constant voltage control in this paper.Firstly,the conventional Jacobian matrix of the alternating current(AC)load flow model is modified,and the probability distributions of the active and reactive powers of the DFIGs are derived by combining the power performance of the DFIGs and the Weibull distribution of wind speed.Then,the cumulants of the state variables in power grid are obtained by improved PLF model and more accurate power probability distributions.In order to generate the probability density function(PDF)of the nodal voltage,Gram-Charlier,Edgeworth and Cornish-Fisher expansions based on the cumulants are applied.Finally,the effectiveness and accuracy of the improved PLF algorithm is demonstrated in the IEEE 14-RTS system with wind power integration,compared with the results of Monte Carlo(MC)simulation using deterministic load flow calculation. 展开更多
关键词 probabilistic load flow(PLF) cumulant method double-fed induction generator(DFIG) power performance series expansion
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Day-Ahead Probabilistic Load Flow Analysis Considering Wind Power Forecast Error Correlation
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作者 Qiang Ding Chuancheng Zhang +4 位作者 Jingyang Zhou Sai Dai Dan Xu Zhiqiang Luo Chengwei Zhai 《Energy and Power Engineering》 2017年第4期292-299,共8页
Short-term power flow analysis has a significant influence on day-ahead generation schedule. This paper proposes a time series model and prediction error distribution model of wind power output. With the consideration... Short-term power flow analysis has a significant influence on day-ahead generation schedule. This paper proposes a time series model and prediction error distribution model of wind power output. With the consideration of wind speed and wind power output forecast error’s correlation, the probabilistic distributions of transmission line flows during tomorrow’s 96 time intervals are obtained using cumulants combined Gram-Charlier expansion method. The probability density function and cumulative distribution function of transmission lines on each time interval could provide scheduling planners with more accurate and comprehensive information. Simulation in IEEE 39-bus system demonstrates effectiveness of the proposed model and algorithm. 展开更多
关键词 Wind Power Time Series Model FORECAST ERROR Distribution FORECAST ERROR CORRELATION probabilistic load flow Gram-Charlier Expansion
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Space Transformation-Based Interdependency Modelling for Probabilistic Load Flow Analysis of Power Systems
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作者 李雪 陈豪杰 +1 位作者 路攀 杜大军 《Journal of Donghua University(English Edition)》 EI CAS 2016年第5期734-739,共6页
Dependence among random input variables affects importantly the results of probabilistic load flow(PLF),system economic operation,and system security.To solve this problem,the main objectiveness of the paper is to ana... Dependence among random input variables affects importantly the results of probabilistic load flow(PLF),system economic operation,and system security.To solve this problem,the main objectiveness of the paper is to analyze the performance of several schemes for simulating correlated variables combined with the point estimate method(PEM).Unlike the existing works that considering one single scheme combined with Monte Carlo simulation(MCS) or PEM,by neglecting the correlation among random input variables,four schemes were presented for disposing the dependence of correlated random variables,including Nataf transformation /polynomial normal transformation(PINT) combined with orthogonal transformation(OT) / elementary transformation(ET).Combining with the 2m+1 approach of PEM,a space transformation-based formulation was proposed and adopted for solving the PLF.The proposed approach is applied in the modified IEEE 30-bus system while considering correlated wind generations and load demands.Numerical results show the effectiveness of the proposed approach compared with those obtained from the MCS.Results also show that the scheme of combining Nataf transformation and ET with PEM provides the best performance. 展开更多
关键词 Transformation probabilistic considering polynomial elementary transformed formulation applying instance simulating
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Maximum entropy based probabilistic load flow calculation for power system integrated with wind power generation 被引量:8
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作者 Bingyan SUI Kai HOU +2 位作者 Hongjie JIA Yunfei MU Xiaodan YU 《Journal of Modern Power Systems and Clean Energy》 SCIE EI 2018年第5期1042-1054,共13页
Distributed generation including wind turbine(WT) and photovoltaic panel increases very fast in recent years around the world, challenging the conventional way of probabilistic load flow(PLF) calculation. Reliable and... Distributed generation including wind turbine(WT) and photovoltaic panel increases very fast in recent years around the world, challenging the conventional way of probabilistic load flow(PLF) calculation. Reliable and efficient PLF method is required to take this chage into account.This paper studies the maximum entropy probabilistic density function reconstruction method based on cumulant arithmetic of linearized load flow formulation,and then develops a maximum entropy based PLF(MEPLF) calculation algorithm for power system integrated with wind power generation(WPG). Compared with traditional Gram–Charlier expansion based PLF(GC-PLF)calculation method, the proposed ME-PLF calculation algorithm can obtain more reliable and accurate probabilistic density functions(PDFs) of bus voltages and branch flows in various WT parameter scenarios. It can solve thelimitation of GC-PLF calculation method that mistakenly gains negative values in tail regions of PDFs. Linear dependence between active and reactive power injections of WPG can also be effectively considered by the modified cumulant calculation framework. Accuracy and efficiency of the proposed approach are validated with some test systems. Uncertainties yielded by the wind speed variations, WT locations, power factor fluctuations are considered. 展开更多
关键词 MAXIMUM ENTROPY probabilistic load flow PROBABILITY density function Wind power generation MONTE Carlo simulation
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Probabilistic load flow method considering large-scale wind power integration 被引量:3
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作者 Xiaoyang DENG Pei ZHANG +3 位作者 Kangmeng JIN Jinghan HE Xiaojun WANG Yuwei WANG 《Journal of Modern Power Systems and Clean Energy》 SCIE EI CSCD 2019年第4期813-825,共13页
The increasing penetration of wind power brings great uncertainties into power systems,which poses challenges to system planning and operation.This paper proposes a novel probabilistic load flow(PLF)method based on cl... The increasing penetration of wind power brings great uncertainties into power systems,which poses challenges to system planning and operation.This paper proposes a novel probabilistic load flow(PLF)method based on clustering technique to handle large fluctuations from large-scale wind power integration.The traditional cumulant method(CM)for PLF is based on the linearization of load flow equations around the operation point,therefore resulting in significant errors when input random variables have large fluctuations.In the proposed method,the samples of wind power and loads are first generated by the inverse Nataf transformation and then clustered using an improved K-means algorithm to obtain input variable samples with small variances in each cluster.With such pre-processing,the cumulant method can be applied within each cluster to calculate cumulants of output random variables with improved accuracy.The results obtained in each cluster are combined according to the law of total probability to calculate the final cumulants of output random variables for the whole samples.The proposed method is validated on modified IEEE 9-bus and 118-bus test achieve a better performance with the consideration of both traditional CM,2 m+1 point estimate method(PEM),Monte Carlo simulation(MCS)and Latin hypercube sampling(LHS)based MCS,the proposed method can achieve a better performance with the consideration of bothcomputational efficiency and accuracy. 展开更多
关键词 CUMULANT method(CM) Improved K-MEANS algorithm LARGE-SCALE wind power integration probabilistic load flow(PLF)
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Combined Cumulant and Gaussian Mixture Approximation for Correlated Probabilistic Load Flow Studies:A New Approach 被引量:4
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作者 B Rajanarayan Prusty Debashisha Jena 《CSEE Journal of Power and Energy Systems》 SCIE 2016年第2期71-78,共8页
In this paper,a probabilistic load flow analysis technique that combines the cumulant method and Gaussian mixture approximation method is proposed.This technique overcomes the incapability of the existing series expan... In this paper,a probabilistic load flow analysis technique that combines the cumulant method and Gaussian mixture approximation method is proposed.This technique overcomes the incapability of the existing series expansion methods to approximate multimodal probability distributions.A mix of Gaussian,non-Gaussian,and discrete type probability distributions for input bus powers is considered.Probability distributions of multimodal bus voltages and line power flows pertaining to these inputs are precisely obtained without using any series expansion method.At the same time,multiple input correlations are considered.Performance of the proposed method is demonstrated in IEEE 14 and 57 bus test systems.Results are compared with cumulant and Gram Charlier expansion,cumulant and Cornish Fisher expansion,dependent discrete convolution,and Monte Carlo simulation.Effects of different correlation cases on distribution of bus voltages and line power flows are also studied. 展开更多
关键词 CORRELATION CUMULANT Gaussian mixture approximation photovoltaic generation probabilistic load flow
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Cumulant-based correlated probabilistic load flowconsidering photovoltaic generation and electric vehiclecharging demand 被引量:1
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作者 Nitesh Ganesh BHAT B. Rajanarayan PRUSTY Debashisha JENA 《Frontiers in Energy》 SCIE CSCD 2017年第2期184-196,共13页
This paper applies a cumulant-based analytical method for probabilistic load flow (PLF) assessment in transmission and distribution systems. The uncertainties pertaining to photovoltaic generations and aggregate bus l... This paper applies a cumulant-based analytical method for probabilistic load flow (PLF) assessment in transmission and distribution systems. The uncertainties pertaining to photovoltaic generations and aggregate bus load powers are probabilistically modeled in the case of transmission systems. In the case of distribution systems, the uncertainties pertaining to plug-in hybrid electric vehicle and battery electric vehicle charging demands in residential community as well as charging stations are probabilistically modeled. The probability distributions of the result variables (bus voltages and branch power flows) pertaining to these inputs are accurately established. The multiple input correlation cases are incorporated. Simultaneously, the performance of the proposed method is demonstrated on a modified Ward-Hale 6-bus system and an IEEE 14-bus transmission system as well as on a modified IEEE 69-bus radial and an IEEE 33-bus mesh distribution system. The results of the proposed method are compared with that of Monte-Carlo simulation. 展开更多
关键词 battery electric vehicle extended cumulant method photovoltaic generation plug-in hybrid electric vehicle probabilistic load flow
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An improved probabilistic load flow in distribution networks based on clustering and Point estimate methods 被引量:1
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作者 Morsal Salehi Mohammad Mahdi Rezaei 《Energy and AI》 2023年第4期253-261,共9页
Clustering approaches are one of the probabilistic load flow(PLF)methods in distribution networks that can be used to obtain output random variables,with much less computation burden and time than the Monte Carlo simu... Clustering approaches are one of the probabilistic load flow(PLF)methods in distribution networks that can be used to obtain output random variables,with much less computation burden and time than the Monte Carlo simulation(MCS)method.However,a challenge of the clustering methods is that the statistical characteristics of the output random variables are obtained with low accuracy.This paper presents a hybrid approach based on clustering and Point estimate methods.In the proposed approach,first,the sample points are clustered based on the𝑙-means method and the optimal agent of each cluster is determined.Then,for each member of the population of agents,the deterministic load flow calculations are performed,and the output variables are calculated.Afterward,a Point estimate-based PLF is performed and the mean and the standard deviation of the output variables are obtained.Finally,the statistical data of each output random variable are modified using the Point estimate method.The use of the proposed method makes it possible to obtain the statistical properties of output random variables such as mean,standard deviation and probabilistic functions,with high accuracy and without significantly increasing the burden of calculations.In order to confirm the consistency and efficiency of the proposed method,the 10-,33-,69-,85-,and 118-bus standard distribution networks have been simulated using coding in Python®programming language.In simulation studies,the results of the proposed method have been compared with the results obtained from the clustering method as well as the MCS method,as a criterion. 展开更多
关键词 probabilistic load flow(PLF) Distribution network(DN) Monte Carlo simulation(MCS) k-means clustering(KMC) Point estimate method(PEM)
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基于三点估计法的有源配电网合环电流安全性评估模型
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作者 许智光 李岩松 +3 位作者 陈东旭 亓富军 刘君 康世佳 《华北电力大学学报(自然科学版)》 北大核心 2025年第6期22-30,I0001,共10页
分布式电源出力的随机性使得有源配电网合环电流难以准确计算,导致配电网合环操作存在安全隐患。为科学有效评估有源配电网合环操作的安全性,提出考虑分布式电源等值的有源配电网合环电路等值模型,由此推导出有源配电网合环电流方程。... 分布式电源出力的随机性使得有源配电网合环电流难以准确计算,导致配电网合环操作存在安全隐患。为科学有效评估有源配电网合环操作的安全性,提出考虑分布式电源等值的有源配电网合环电路等值模型,由此推导出有源配电网合环电流方程。针对现有概率潮流处理合环电流准确度及效率问题,提出了基于三点估计法的合环电流概率分布求解方法。在此基础上,根据合环安全性原则制定合环成功率及合环越限率等安全指标,进行合环电流安全性评估。基于PSCAD和MATLAB平台进行仿真计算,结果表明基于三点估计法的合环电流计算方法在合环安全性评估方面具有更高的准确度,且满足合环操作时效性要求。 展开更多
关键词 配电网合环 分布式电源 概率潮流 三点估计法 安全性评估
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计及光伏波动性的主配网协同优化方法 被引量:1
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作者 杜嘉诚 史明明 +2 位作者 李斌 姜锋 倪俊贤 《电工电气》 2025年第6期14-18,共5页
为了实现含高渗透率光伏的配网与主网协同无功优化运行,针对光伏出力的波动性,提出了一种新型的主配网协同优化方法。建立负荷和光伏出力的概率模型,使用半不变量法和Gram-Charlier级数结合的概率潮流算法实现对节点电压的快速统计;将... 为了实现含高渗透率光伏的配网与主网协同无功优化运行,针对光伏出力的波动性,提出了一种新型的主配网协同优化方法。建立负荷和光伏出力的概率模型,使用半不变量法和Gram-Charlier级数结合的概率潮流算法实现对节点电压的快速统计;将主配网分解并考虑互相支撑作用,对粒子群算法进行改进,并将概率潮流计算嵌入算法中进行电压优化。构建主配网算例进行仿真,结果表明,计及光伏波动性的主配网协同优化方法能够更有效实现含高渗透率光伏的主配网的优化运行。 展开更多
关键词 主配网协同 无功优化 概率潮流 半不变量法 Gram-Charlier级数 粒子群算法
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基于信息物理融合的有源配电网概率潮流计算
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作者 梁铃 姬源 +6 位作者 黄育松 覃海 代江 张云菊 郭明 石启宏 陈飞 《太赫兹科学与电子信息学报》 2025年第7期699-710,719,共13页
随着城市电气化和可再生能源技术的发展,分布式电源在配电系统中发挥着重要作用,但其随机波动性和不确定性对系统的智能化调控和稳定性提出了挑战。为此,本文基于数智化能源互联网的信息物理系统(CPS)融合理念,提出一种新的概率潮流计... 随着城市电气化和可再生能源技术的发展,分布式电源在配电系统中发挥着重要作用,但其随机波动性和不确定性对系统的智能化调控和稳定性提出了挑战。为此,本文基于数智化能源互联网的信息物理系统(CPS)融合理念,提出一种新的概率潮流计算方法。该方法通过构建信息物理融合模型,利用传感与计算的协同机制全面感知系统动态运行,考虑分布式电源发电的随机波动性,构建了风力和光伏发电的出力概率模型,并运用Copula理论建立了风光电场出力相关性的联合模型。此外,提出了基于高斯混合模型的负荷概率特性分析方法,并在此基础上,采用概率密度演化方程,通过有限差分法实现高效求解,从而开发出一套面向数智化能源系统的概率潮流计算方法。该方法为分布式电源主导的配电系统提供了精准、高效的计算途径,助力数智化能源系统的安全、稳定和智能运行。 展开更多
关键词 分布式电源 信息物理 数智化 概率潮流计算 COPULA理论 概率密度演化方程
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基于随机降阶与随机响应面法的电网概率潮流计算
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作者 马玉涛 刘青 +1 位作者 李龙威 刘运锋 《分布式能源》 2025年第2期90-97,共8页
源荷不确定性是新型电力系统的典型特点之一,因此有必要对考虑源荷变化的电网概率潮流进行计算。针对随机响应面法(stochastic response surface method,SRSM)在构建多项式混沌展开式时通过随机抽样生成样本的盲目性,采用随机降阶法(sto... 源荷不确定性是新型电力系统的典型特点之一,因此有必要对考虑源荷变化的电网概率潮流进行计算。针对随机响应面法(stochastic response surface method,SRSM)在构建多项式混沌展开式时通过随机抽样生成样本的盲目性,采用随机降阶法(stochastic reduced order method,SROM)选取重要样本以提高计算结果的准确性。将光照强度、风速参数和负荷作为随机输入变量,建立源荷概率模型并对其进行相关性处理,采用SROM选取三维输入变量的重要样本生成概率潮流的多项式混沌展开式;提出基于SROM-SRSM的电力系统概率潮流计算方法并给出详细计算流程;以改进的IEEE33节点系统为算例,比较了不同多项式阶数下的模拟时间和精度,采用3阶多项式混沌展开式作为概率潮流计算的基础,比较了不同计算方法下的概率潮流计算结果,得到了潮流状态变量的概率分布。结果表明:相对于传统的蒙特卡罗方法,所提的SROM-SRSM方法减少了计算耗时,采用随机降阶法优选样本提高了概率潮流计算结果的准确性。 展开更多
关键词 概率潮流 源荷随机性 不确定性分析 随机响应面法(SRSM) 随机降阶法(SROM)
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基于稀疏多项式混沌展开的配电网概率潮流计算方法
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作者 阿斯楞 王鹏 +3 位作者 闫肖蒙 苗竹 侯金秀 赵嘉冬 《电气传动》 2025年第11期56-64,共9页
作为未来电力系统的重要特征,高比例可再生能源的接入显著增强了电力系统运行的不确定性,对系统潮流的影响日趋显著。概率潮流计算在确定性潮流计算的基础上,进一步考虑了不确定性因素的影响,有助于揭示系统在随机环境下的运行特征,为... 作为未来电力系统的重要特征,高比例可再生能源的接入显著增强了电力系统运行的不确定性,对系统潮流的影响日趋显著。概率潮流计算在确定性潮流计算的基础上,进一步考虑了不确定性因素的影响,有助于揭示系统在随机环境下的运行特征,为后续的经济运行、安全稳定分析和可靠性分析提供计算基础。考虑可再生能源出力以及负荷的波动性,并计及随机因素的相关性,提出了一种基于稀疏多项式混沌展开的方法,实现了对配电网中的随机变量进行建模及计算,并最终得到输出状态变量的概率分布。最后,对多个测试算例进行计算与分析,通过与蒙特卡洛方法与广义混沌多项式方法进行比较,并针对不同分布式电源渗透率场景对系统电压分布水平进行了分析,验证了所提方法的有效性、快速性与实用性。 展开更多
关键词 概率潮流计算 稀疏多项式混沌展开 可再生能源 相关性
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风电场的发电可靠性模型及其应用 被引量:233
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作者 陈树勇 戴慧珠 +1 位作者 白晓民 周孝信 《中国电机工程学报》 EI CSCD 北大核心 2000年第3期26-29,共4页
建立了风电场的发电可靠性模型 ,介绍了该模型在随机生产模拟和随机潮流分析等方面的应用。该模型考虑了风速的随机变化、不同风电场之间风速的相关性、风电机组的功率特性及其强迫停运率、风电机组的布置和尾流效应以及气温等因素对风... 建立了风电场的发电可靠性模型 ,介绍了该模型在随机生产模拟和随机潮流分析等方面的应用。该模型考虑了风速的随机变化、不同风电场之间风速的相关性、风电机组的功率特性及其强迫停运率、风电机组的布置和尾流效应以及气温等因素对风电场输出功率的影响 ,揭示了风电场输出功率的统计规律。 展开更多
关键词 风力发电 可靠性模型 随机生产模拟 风电场
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电力系统概率潮流算法综述 被引量:104
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作者 刘宇 高山 +1 位作者 杨胜春 姚建国 《电力系统自动化》 EI CSCD 北大核心 2014年第23期127-135,共9页
概率潮流是解决电力系统不确定因素的重要基础。随着间歇性能源的发展与电力系统随机性的提升,概率潮流在近些年来得到了广泛的研究。文中以算法的原理与优缺点为立足点,对电力系统概率潮流算法研究进行综述。首先,对概率潮流的研究问... 概率潮流是解决电力系统不确定因素的重要基础。随着间歇性能源的发展与电力系统随机性的提升,概率潮流在近些年来得到了广泛的研究。文中以算法的原理与优缺点为立足点,对电力系统概率潮流算法研究进行综述。首先,对概率潮流的研究问题进行阐述,简要介绍了概率潮流理论的发展、计算模型分类以及评价指标,并简述了概率潮流在电力系统中的应用情况。然后,按照算法的不同原理将概率潮流算法进行分类,基于不同类别的方法对实际应用的具体算法进行详细分析,分别介绍了不同算法的原理步骤以及优劣性和适用性,并针对各类方法进行了算法总体评价和发展趋势分析。最后,结合电力系统的最新发展要求对概率潮流算法的研究方向做出展望。 展开更多
关键词 不确定性 概率潮流 相关性 模拟采样 近似计算
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基于蒙特卡罗模拟的概率潮流计算 被引量:135
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作者 丁明 李生虎 黄凯 《电网技术》 EI CSCD 北大核心 2001年第11期10-14,22,共6页
针对目前概率潮流算法在处理节点功率间变化的相关性、网络拓扑随机变化及评价指标方面的不足 ,提出了一种基于蒙特卡罗模拟的概率潮流算法 ,采用 K均值聚类负荷模型 ,考虑了发电和输电元件的故障停运和检修停运 ,并在网络模型中计及继... 针对目前概率潮流算法在处理节点功率间变化的相关性、网络拓扑随机变化及评价指标方面的不足 ,提出了一种基于蒙特卡罗模拟的概率潮流算法 ,采用 K均值聚类负荷模型 ,考虑了发电和输电元件的故障停运和检修停运 ,并在网络模型中计及继电保护和重合闸等二次元件故障的影响 ,建立了较为完整的评估指标体系 。 展开更多
关键词 概率潮流 蒙特卡罗模拟 输电网络 负荷相关性 计算 电力系统
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