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Modeling and nonlinear predictive control of a fixed-bed water-gas shift reactor.

机译:固定床水煤气变换反应器的建模和非线性预测控制。

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摘要

Successful control of a severely nonlinear system depends upon knowledge of the process dynamics. Therefore, nonlinear dynamic models, formulated empirically or based upon first-principles, are necessary for the development and implementation of high-performance control strategies.;In this study, an advanced nonlinear control strategy was developed and experimentally applied to a laboratory fixed-bed water-gas shift (WGS) reactor. This was achieved by designing and constructing the reactor with computer facilities capable of acquiring data and implementing control. A network of three dedicated computers employed in an open-architecture, distributed control system (DCS) with multi-drop data acquisition hardware was used.;A control-relevant, first-principles model for the WGS reactor, consisting of three partial differential equations, was developed. The model was discretized spatially using weighted residual techniques on finite elements, and a predictor-corrector method was used to integrate the discretized system in time. Model parameters were determined using information-rich, dynamic experimental data. Model predictions compared well with experimental results.;Two on-line parameter estimation schemes capable of both efficiently and robustly estimating nonlinear model parameters were developed. Both estimators were designed to exploit the WGS model structure and the large number of available measurements. The first required the solution of a relatively large nonlinear programming problem. The second resulted in a normalized MIT-type estimation rule. For the WGS system, the two methods produced similar results.;Good control of the WGS reactor was achieved experimentally over a broad operating region when Nonlinear Model-Predictive Control (NMPC) was implemented. NMPC, a feedback strategy for constrained nonlinear processes, requires optimization of a performance objective over a time horizon at each sampling interval. It was implemented using a sequential optimization and solution technique. Closed-loop behavior was superior to that obtained using PID or adaptive linear control. Simulation experiments were used to demonstrate that controller performance was enhanced by nonlinear parameter adaptation and strategies for feed-forward implementation. NMPC feedback properties for systems experiencing gain sign changes were also investigated.
机译:严重非线性系统的成功控制取决于过程动力学的知识。因此,以经验为基础或基于第一性原理制定的非线性动力学模型对于高性能控制策略的开发和实施是必要的。;本研究开发了一种先进的非线性控制策略,并在实验上应用于实验室固定床水煤气变换(WGS)反应器。这是通过设计和建造具有计算机设施的反应堆来实现的,该计算机设施能够获取数据并实施控制。使用具有开放式分布式控制系统(DCS)和多点数据采集硬件的三台专用计算机网络; WGS反应堆的与控制有关的第一性原理模型,由三个偏微分方程组成, 已开发。使用加权残差技术对有限元进行空间离散化模型,并使用预测器-校正器方法及时集成离散化系统。使用丰富的信息,动态实验数据确定模型参数。模型预测与实验结果比较吻合。;开发了两种能够有效和鲁棒地估计非线性模型参数的在线参数估计方案。两种估计器均旨在利用WGS模型结构和大量可用的度量。第一个要求解决一个相对较大的非线性规划问题。第二个结果是归一化的MIT类型估计规则。对于WGS系统,这两种方法产生了相似的结果。当实施非线性模型预测控制(NMPC)时,通过实验在较宽的工作区域内实现了对WGS反应堆的良好控制。 NMPC是用于约束非线性过程的一种反馈策略,它需要在每个采样间隔的时间范围内优化性能目标。它是使用顺序优化和解决方案技术实现的。闭环行为优于使用PID或自适应线性控制获得的行为。仿真实验用于证明控制器性能通过非线性参数自适应和前馈实现策略得到了增强。还研究了经历增益符号变化的系统的NMPC反馈特性。

著录项

  • 作者

    Wright, Glenn Tracy.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 1992
  • 页码 192 p.
  • 总页数 192
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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