2011Australian Control ConferenceRequires access

Dissipativity-based analysis for plantwide chemical process systems

Denny Hioe, Jie Bao

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Abstract

Most modern chemical plants are complex system with multiple interconnected nonlinear process units, often with recycle and by-pass streams and energy integration. Interactions between process units often lead to plant-wide operability problems. In this work, a plantwide chemical process is viewed as a network of process units. These process units, namely process systems, possess some special nonlinearity properties. In this paper, a plantwide operability analysis is developed based on the concept of dissipativity. Using thermodynamics and geometric properties of process systems, a new construction of a storage function is proposed. Based on the above results, plantwide stability and stabilizability conditions are derived.

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What this paper is about

Most modern chemical plants are complex system with multiple interconnected nonlinear process units, often with recycle and by-pass streams and energy integration. Interactions between process units often lead to plant-wide operability problems. In this work, a plantwide chemical process is viewed as a network of process units. These process units, namely process systems, possess some special nonlinearity properties. In this paper, a plantwide operability analysis is developed based on the concept of dissipativity. Using thermodynamics and geometric properties of process systems, a new construction of a storage function is proposed. Based on the above results, plantwide stability and stabilizability conditions are derived.

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Available abstract

Most modern chemical plants are complex system with multiple interconnected nonlinear process units, often with recycle and by-pass streams and energy integration. Interactions between process units often lead to plant-wide operability problems. In this work, a plantwide chemical process is viewed as a network of process units. These process units, namely process systems, possess some special nonlinearity properties. In this paper, a plantwide operability analysis is developed based on the concept of dissipativity. Using thermodynamics and geometric properties of process systems, a new construction of a storage function is proposed. Based on the above results, plantwide stability and stabilizability conditions are derived.

Key concepts: Operability, Process (computing), Chemical process, Nonlinear system, Work in process, Computer science, Process systems, Work (physics)

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