基于TS模糊多模型方法的太阳能电站诊断

Z. Taif, M. M. Lafifi, B. Boulebtateche
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引用次数: 3

摘要

在电力生产的背景下,太阳能是适当的和无穷无尽的。目前,太阳能聚光技术是最有可能用于商业用途的技术之一。因此,不仅有必要设计能量转换过程,而且通过故障检测和隔离(FDI)系统的概念确保这些设备的可用性也很重要。为了改善太阳能发电厂的性能,我们采用基于微分代数方程的模型来描述太阳辐射、环境温度、流体流速和温度的变化。这些现象是高度非线性的。此外,T-S模糊模型可以很好地逼近一类非线性系统。诊断方案基于模糊观测器来估计故障和故障系统状态;采用比例(P)观测器估计其中的恒定故障。利用描述子冗余性,给出了线性矩阵不等式的求解方法。以某太阳能电站模型为例,通过数值计算表明了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diagnosis of a solar power plant using TS fuzzy-based multimodel approach
In the context of the electricity production, the solar energy is appropriate and endless. At present the technologies of solar concentration are the one which present most possibilities for commercial use. Thus, it is necessary not only to design processes of conversion of energy, but it is also important to assure an availability of these equipment by the conception of fault detection and isolation (FDI) systems. To improve the behavior of the solar power plant, we use a model based on differential algebraic equations to describe variations of the solar radiation, ambient temperature, flow rate and temperature of fluid. These phenomena are highly nonlinear. Moreover, a large class of nonlinear systems can be well approximated by T-S fuzzy models. The diagnosis scheme is based on a fuzzy observer to estimate faults and faulty system states; a proportional (P) observer to estimate constant faults in then adopted. Using descriptor redundancy property, a solution is proposed in terms of linear matrix inequalities (LMI). The performance of the proposed approach is pointed out by focusing on a model of solar power plant through numerical results.
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