Dissipativity-based analysis for plantwide chemical process systems
Denny Hioe, Jie Bao
Abstract
Denny Hioe, Jie Bao
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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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)