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ON-LINE ESTIMATION OF UNMEASURED INPUTS FOR ANAEROBIC PROCESS DESCRIBED BY INTERPOLATED L.T.I. MODELS

机译:内插L.I.I的厌氧过程对未测量输入的在线估计。楷模

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摘要

A method for unknown input estimation in nonlinear stochastic system is presented. A key problem in bioprocess systems is the absence, in some cases, of reliable on line measurements for real time monitoring applications. In this paper, a software sensor for an anaerobic digester is presented. Unmeasured components of the influent are estimated from available on line measurements. Based on a multiple model scheme, a bank of unknown input Kalman filters are discussed to estimate a probabilistic weighting state and unknown input of the process. The performances of the method are tested in simulation using a validated model of an anaerobic fixed bed pilot plant.
机译:介绍了非线性随机系统中未知输入估计的方法。在某些情况下,生物过程系统中的一个关键问题是在某些情况下对实时监测应用的线路测量值可靠。本文提出了一种用于厌氧蒸煮器的软件传感器。在线测量中可用流动率的未测量组分。基于多模型方案,讨论了一组未知的输入卡尔曼滤波器以估计该过程的概率加权状态和未知输入。使用Anaerobic固定床先导厂的验证模型测试该方法的性能。

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