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Fault diagnosis of gas-turbine power units with the derivative-free nonlinear Kalman Filter

机译:无衍生非线性Kalman滤波器的燃气轮机电源单元的故障诊断

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摘要

A method is developed for diagnosing faults and cyberattacks in electric power generation units that consist of a gas-turbine and of a synchronous generator. By proving that such a power generation unit is differentially flat its transformation into an input-output linearized form becomes possible. Moreover, by applying the Derivative free nonlinear Kalman Filter, state estimation for the power unit is performed. The latter filtering method, consists of the Kalman Filter's recursion on the linearized equivalent model of the power unit, as well as of an inverse transformation providing estimates of the initial nonlinear system. By subtracting the estimated outputs of the Kalman Filter from the measured outputs of the power unit the residuals' sequence is generated. The residuals undergo statistical processing. It is shown that the sum of the squares of the residuals' vectors, weighted by the associated covariance matrix, forms a stochastic variable that follows the chi(2) distribution. By exploiting the statistical properties of this distribution, confidence intervals are defined, which allow for detecting the power unit's malfunctioning. As long the aforementioned stochastic variable remains within the previous confidence intervals the normal functioning of the power unit is inferred. Otherwise, a fault or cyber-attack is detected. It is also shown that by applying the statistical method into subspaces of the system's state-space model, fault or cyber-attack isolation can be also performed.
机译:开发了一种用于诊断由燃气涡轮机和同步发电机组成的发电单元中的故障和网络角质的方法。通过证明这种发电单元与输入输出线性化形式差别平坦地平坦地将其变平。此外,通过应用衍生自由非线性卡尔曼滤波器,执行功率单元的状态估计。后一种滤波方法,包括在电力单元的线性化等效模型上的卡尔曼滤波器的递归,以及提供初始非线性系统的逆变换。通过从功率单元的测量输出中减去卡尔曼滤波器的估计输出,生成残差序列。残留物经历统计处理。结果表明,由相关的协方差矩阵加权的残差载体的平方和形成遵循CHI(2)分布的随机变量。通过利用该分布的统计特性,定义了置信区间,其允许检测电力单元的故障。只要上述随机变量保持在先前的置信区间内,可以推断出电源单元的正常功能。否则,检测到故障或网络攻击。还显示,通过将统计方法应用于系统的状态空间模型的子空间,还可以执行故障或网络攻击隔离。

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