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Linearization threshold condition and stability analysis of a stochastic dynamic model of one-machine infinite-bus (OMIB) power systems

机译:单机无限总线(OMIB)电力系统随机动态模型的线性化阈值条件及稳定性分析

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With the increase in the proportion of multiple renewable energy sources, power electronics equipment and new loads, power systems are gradually evolving towards the integration of multi-energy, multi-network and multi-subject affected by more stochastic excitation with greater intensity. There is a problem of establishing an effective stochastic dynamic model and algorithm under different stochastic excitation intensities. A Milstein-Euler predictor-corrector method for a nonlinear and linearized stochastic dynamic model of a power system is constructed to numerically discretize the models. The optimal threshold model of stochastic excitation intensity for linearizing the nonlinear stochastic dynamic model is proposed to obtain the corresponding linearization threshold condition. The simulation results of one-machine infinite-bus (OMIB) systems show the correctness and rationality of the predictor-corrector method and the linearization threshold condition for the power system stochastic dynamic model. This study provides a reference for stochastic modelling and efficient simulation of power systems with multiple stochastic excitations and has important application value for stability judgment and security evaluation.
机译:随着多种可再生能源的比例的增加,电力电子设备和新负载,电力系统逐渐发展地朝多能量,多网络和多次受到更多随机激发的多孔激励的集成,具有更大的强度。在不同随机励磁强度下建立有效随机动态模型和算法存在问题。一种用于非线性和线性化随机动态模型的Milstein-Euler预测器方法,构建了功率系统的线性化的动态模型,以便在数值上离散模型。提出了用于线性化的随机激励强度的最佳阈值模型,用于线性化的非线性随机动态动态模型获得相应的线性化阈值条件。单机无限总线(OMIB)系统的仿真结果显示了预测校正器方法的正确性和合理性和电力系统随机动态模型的线性化阈值条件。本研究为具有多种随机激励的电力系统的随机建模和高效模拟提供了参考,对稳定性判断和安全评估具有重要的应用价值。

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