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A continuous time Markov chain based sequential analytical approach for composite power system reliability assessment

机译:基于连续时间马尔可夫链的顺序分析方法用于复合电力系统可靠性评估

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Summary form only given. This paper proposes a continuous time Markov chain (CTMC) based sequential analytical approach for composite generation and transmission systems reliability assessment. The basic idea is to construct a CTMC model for the composite system. Based on this model, sequential analyses are performed. Various kinds of reliability indices can be obtained, including expectation, variance, frequency, duration and probability distribution. In order to reduce the dimension of the state space, traditional CTMC modeling approach is modified by merging all high order contingencies into a single state, which can be calculated by Monte Carlo simulation (MCS). Then a state mergence technique is developed to integrate all normal states to further reduce the dimension of the CTMC model. Moreover, a time discretization method is presented for the CTMC model calculation. Case studies are performed on the RBTS and a modified IEEE 300 bus test system. The results indicate that sequential reliability assessment can be performed by the proposed approach. Comparing with the traditional sequential Monte Carlo simulation method, the proposed method is more efficient, especially in small scale or very reliable power systems.
机译:仅提供摘要表格。本文提出了一种基于连续时间马尔可夫链(CTMC)的顺序分析方法,用于复合发电和输电系统的可靠性评估。基本思想是为复合系统构建CTMC模型。基于此模型,进行顺序分析。可以获得各种可靠性指标,包括预期,方差,频率,持续时间和概率分布。为了减小状态空间的维数,对传统的CTMC建模方法进行了修改,将所有高阶偶发事件合并为一个状态,这可以通过蒙特卡洛模拟(MCS)进行计算。然后,开发了一种状态合并技术来整合所有正常状态,以进一步减小CTMC模型的维数。此外,提出了一种用于CTMC模型计算的时间离散方法。案例研究是在RBTS和改进的IEEE 300总线测试系统上进行的。结果表明,可以通过提出的方法进行顺序可靠性评估。与传统的顺序蒙特卡洛模拟方法相比,该方法效率更高,尤其是在小规模或非常可靠的电力系统中。

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