人工神经网络在化工分离过程中的应用

Mengyu Wang, Zhu Zhu
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引用次数: 0

摘要

化学分离过程是获得合格纯度产品的必要单元操作。分离装置的设计和运行控制是非常重要的。由于影响分离效率和产品纯度的参数众多,用传统方法进行优化非常困难。人工神经网络具有自学习、自组织、自适应和较强的非线性函数逼近能力,具有较强的容错性。人工神经网络可以用来映射因变量和自变量之间复杂的非线性关系,并可用于化工分离装置的设计和控制。综述了人工神经网络的特点和几种重要的人工神经网络模型,讨论了人工神经网络在不同化工分离过程中的应用。
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Application of Artificial Neural Network in Chemical Separation Process
The chemical separation process is a necessary unit operation to obtain qualified purity products. The design and operation control of the separation device are very important. Due to the numerous parameters that affect the separation efficiency and product purity, it is very difficult to optimize by traditional methods. Artificial neural network (ANN) has strong fault tolerance because of its self-learning, self-organization, self-adaptive and strong nonlinear function approximation ability. ANN can be used to map the complex nonlinear relationship between dependent variables and independent variables, and can be used for the design and control of chemical separation devices. This paper summarizes the characteristics of artificial neural network and several important artificial neural network models, and discusses the application of artificial neural network in different chemical separation processes.
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