工业冷凝过程中压力振荡抑制的有效建模和控制设计

C. Lohninger, B. Voglauer, Klaus Matheis-Weiss, M. Kozek
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引用次数: 1

摘要

本文提出了一种简单而通用的工业多级冷凝系统正弦压力振荡建模方法和不同的抑制控制方案。所研究的冷凝系统嵌入在广泛的萃取系统中,用于从气体混合物中分离有害物质。主要问题是由未知和未测量的过程干扰引起的,这些干扰可能最终导致压力峰值超过环境压力。当发生超压时,有害物质可能会逸出,并触发安全关闭。一个替代模型,基于观察和物理动机,气体流动包含动能和势能,发展。该模型基于动量和理想气体方程。验证结果与时域和频域测量结果吻合良好。为了抑制系统的振荡和保证系统的欠压,比较了线性输出反馈控制器、自适应正弦干扰抑制算法和控制误差积分的lqr控制器。仿真结果表明,易于实现的线性输出反馈控制方案充分抑制了系统的振荡,使系统压力保持在欠压范围内。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient modelling and control design for suppression of pressure oscillations in an industrial condensation process
In this paper, a simple yet versatile modelling approach for sinusoidal pressure oscillations in an industrial multi-stage condensation system and different control schemes for suppression are presented. The investigated condensation system is embedded in an extensive extraction system and is used to separate a hazardous substance out of a gas mixture. The main problem is posed by unknown and unmeasured process disturbances which may ultimately lead to pressure peaks exceeding the ambient pressure. When an over-pressure occurs, the hazardous substance may escape, and a safety shut-down is triggered. A surrogate model, based on observations and the physical motivation that a gas flow contains kinetic and potential energy, is developed. The model is then based on the momentum and the ideal gas equation. The validation shows a good agreement with measurements in the time and frequency domain. To suppress the oscillations and guarantee an under-pressure in the system a linear output feedback controller, an adaptive algorithm for rejection of sinusoidal disturbances and an LQR-Controller with integration of the control error are compared. The simulation shows that the readily implementable linear output feedback control scheme sufficiently suppresses the oscillations and safely keeps the pressure in the under-pressure range.
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