级联型混合直流系统受端的模块化多电平换流器高压直流系统(modular multilevel converter high voltage direct current,MMC-HVDC)和电网换相换流器高压直流系统(line commutated converter high voltage direct current,LCC-HVDC)会...级联型混合直流系统受端的模块化多电平换流器高压直流系统(modular multilevel converter high voltage direct current,MMC-HVDC)和电网换相换流器高压直流系统(line commutated converter high voltage direct current,LCC-HVDC)会因馈入点电气距离较近而存在强相互作用关系。为明确级联型混合直流馈入系统中MMC-HVDC对LCC-HVDC系统强度的影响,提出考虑幅值和相位的MMC等效电流源的简化等效方法,基于所提MMC等效原理将级联型混合直流馈入系统等效成单馈入LCC-HVDC系统,分析等效单馈入系统的参数计算方法,并提出等效单馈入短路比评估指标。最后通过该指标分析归纳了不同控制方式、不同电气距离下等效单馈入系统的系统强度变化情况,即为MMC-HVDC对LCC-HVDC系统强度的影响规律。机理分析和基于PSCDAD/EMTDC、MATLAB的仿真结果表明,所提等效方法具有有效性且所提指标能很好地反应MMC-HVDC对LCC-HVDC系统强度的影响。展开更多
大规模新能源并网后电力系统的电压安全稳定问题突出,亟需一种兼具准确性和实用性的方法来评估系统的电压支撑强度。为此,该文提出一种基于贝叶斯深度学习的新能源多场站短路比(multiple renewable energy station short circuit ratio,...大规模新能源并网后电力系统的电压安全稳定问题突出,亟需一种兼具准确性和实用性的方法来评估系统的电压支撑强度。为此,该文提出一种基于贝叶斯深度学习的新能源多场站短路比(multiple renewable energy station short circuit ratio,MRSCR)智能增强方法。首先,聚焦于MRSCR缺乏准确的临界短路比(critical short circuit ratio,CSCR)问题,提出CSCR样本集的构建流程,并据此开发样本的批量仿真程序。然后,利用多门控混合专家网络对各新能源接入点的CSCR进行同步预测,并结合贝叶斯深度学习提升预测精度,量化预测不确定性。最后,考虑到点估计的弊端,提出一种基于动态阈值的不等式方法来给出兼具可靠性和清晰性的区间估计,为不同的决策需求提供多种属性的预测值。在CEPRI-FS-102节点系统上的测试结果表明,所提方法可有效提高电压支撑强度的评估精度和速度,其预测信息可为决策过程提供重要的指导意义。展开更多
Generalized short circuit ratio(g SCR)for grid strength assessment of multi-infeed high-voltage direct current(MIDC)systems is a rigorous theoretical extension of the traditional SCR,which enables SCR to be extended t...Generalized short circuit ratio(g SCR)for grid strength assessment of multi-infeed high-voltage direct current(MIDC)systems is a rigorous theoretical extension of the traditional SCR,which enables SCR to be extended to MIDC systems.However,g SCR is originally based on the assumption of homogeneous MIDC systems,in which all high-voltage direct current(HVDC)converters have an identical control configuration,thus presenting challenges to applications of g SCR to inhomogeneous MIDC systems.To weaken this assumption,this paper applies matrix perturbation theory to explore the possibility of utilization of g SCR into inhomogeneous MIDC systems.Results of numerical experiments show that in inhomogeneous MIDC systems,the previously proposed g SCR can still be used without modification.However,critical g SCR(Cg SCR)must be redefined by considering the characteristics of control configurations of HVDC converter.Accordingly,the difference between g SCR and redefined Cg SCR can effectively quantify the pertinent AC grid strength in terms of the static-voltage stability margin.The performance of the proposed method is demonstrated in a triple-infeed inhomogeneous line commutated converter based high-voltage direct current(LCC-HVDC)system.展开更多
文摘级联型混合直流系统受端的模块化多电平换流器高压直流系统(modular multilevel converter high voltage direct current,MMC-HVDC)和电网换相换流器高压直流系统(line commutated converter high voltage direct current,LCC-HVDC)会因馈入点电气距离较近而存在强相互作用关系。为明确级联型混合直流馈入系统中MMC-HVDC对LCC-HVDC系统强度的影响,提出考虑幅值和相位的MMC等效电流源的简化等效方法,基于所提MMC等效原理将级联型混合直流馈入系统等效成单馈入LCC-HVDC系统,分析等效单馈入系统的参数计算方法,并提出等效单馈入短路比评估指标。最后通过该指标分析归纳了不同控制方式、不同电气距离下等效单馈入系统的系统强度变化情况,即为MMC-HVDC对LCC-HVDC系统强度的影响规律。机理分析和基于PSCDAD/EMTDC、MATLAB的仿真结果表明,所提等效方法具有有效性且所提指标能很好地反应MMC-HVDC对LCC-HVDC系统强度的影响。
文摘大规模新能源并网后电力系统的电压安全稳定问题突出,亟需一种兼具准确性和实用性的方法来评估系统的电压支撑强度。为此,该文提出一种基于贝叶斯深度学习的新能源多场站短路比(multiple renewable energy station short circuit ratio,MRSCR)智能增强方法。首先,聚焦于MRSCR缺乏准确的临界短路比(critical short circuit ratio,CSCR)问题,提出CSCR样本集的构建流程,并据此开发样本的批量仿真程序。然后,利用多门控混合专家网络对各新能源接入点的CSCR进行同步预测,并结合贝叶斯深度学习提升预测精度,量化预测不确定性。最后,考虑到点估计的弊端,提出一种基于动态阈值的不等式方法来给出兼具可靠性和清晰性的区间估计,为不同的决策需求提供多种属性的预测值。在CEPRI-FS-102节点系统上的测试结果表明,所提方法可有效提高电压支撑强度的评估精度和速度,其预测信息可为决策过程提供重要的指导意义。
基金jointly supported by the National Natural Science Foundation of China(No.52007163)China Postdoctoral Science Foundation(No.2020M671718)。
文摘Generalized short circuit ratio(g SCR)for grid strength assessment of multi-infeed high-voltage direct current(MIDC)systems is a rigorous theoretical extension of the traditional SCR,which enables SCR to be extended to MIDC systems.However,g SCR is originally based on the assumption of homogeneous MIDC systems,in which all high-voltage direct current(HVDC)converters have an identical control configuration,thus presenting challenges to applications of g SCR to inhomogeneous MIDC systems.To weaken this assumption,this paper applies matrix perturbation theory to explore the possibility of utilization of g SCR into inhomogeneous MIDC systems.Results of numerical experiments show that in inhomogeneous MIDC systems,the previously proposed g SCR can still be used without modification.However,critical g SCR(Cg SCR)must be redefined by considering the characteristics of control configurations of HVDC converter.Accordingly,the difference between g SCR and redefined Cg SCR can effectively quantify the pertinent AC grid strength in terms of the static-voltage stability margin.The performance of the proposed method is demonstrated in a triple-infeed inhomogeneous line commutated converter based high-voltage direct current(LCC-HVDC)system.