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首页> 外文期刊>International Review of Chemical Engineering >Evolutionary Optimization of Power Plant Control System Using Immunity-Inspired Algorithms
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Evolutionary Optimization of Power Plant Control System Using Immunity-Inspired Algorithms

机译:免疫启动算法电厂控制系统的进化优化

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This paper presents the development of an interactive computational environment for the optimization of power plant control system using evolutionary techniques mimicking the biological immune system. The optimization algorithms are implemented in Matlab~R, while the power plant is modeled in Dynsim~R. The computational interface between these main components is described and implemented. The evolutionary optimization relies on several algorithms inspired by mechanisms of the immune system of superior organism such as cloning, affinity-based selection, seeding, and vaccination. These algorithms are expected to enhance the computational effectiveness, improve convergence, be more efficient in handling multiple local extrema, and achieve adequate balance between exploration and exploitation. The optimization environment can handle two categories of problems: optimization of constant control system parameters and optimization of variable setpoints. The functionality of the proposed optimization methodology is illustrated for the regulatory control of an acid gas removal unit as part of an integrated gasification combined cycle power plant.
机译:本文介绍了利用模拟生物免疫系统模拟的进化技术优化电厂控制系统的交互式计算环境的发展。优化算法在Matlab〜R中实现,而电厂在Dynsim〜R中建模。描述和实现这些主要组件之间的计算接口。进化优化依赖于诸如克隆,亲和基础的选择,播种和疫苗的免疫系统的机制启发的几种算法。这些算法预计将提高计算效率,提高收敛,在处理多个局部极值方面更有效,并在勘探和剥削之间实现足够的平衡。优化环境可以处理两类问题:优化恒定控制系统参数和变量设定点的优化。所提出的优化方法的功能示于作为酸性气体去除单元的调节控制作为集成气化联合循环发电厂的一部分。

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