Optimal Organization of Chemical-Technological Systems with Multiple Levels of Aggregation

IF 0.6 4区 工程技术 Q4 ENGINEERING, CHEMICAL Theoretical Foundations of Chemical Engineering Pub Date : 2025-03-23 DOI:10.1134/S0040579525600962
V. A. Naletov, M. B. Glebov, L. V. Ravichev, A. Yu. Naletov
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Abstract

This paper presents an algorithm for improving the organization of chemical-technological systems (CTSs) with several levels of aggregation based on information approach. The algorithm assumes the sequential solution of optimization problems according to the top-down principle, starting from the upper to the lower macroscopic levels, and then to the optimization problem at the microlevel. When solving optimization problems at all macrolevels, the optimization criterion is macroentropy, whose maximization in accordance with the zeroth law of thermodynamics is responsible for the optimal distribution of energy between elements and subsystems. The implementation of the algorithm is illustrated using the example of a system with a double-chamber heating furnace consisting of convection and radiation chambers combined into a single thermal unit. The determination of the tendencies of optimal organization of the CTS with the furnace as a single thermal unit and the furnace as a subsystem with a discrete element structure was made on the basis of the equivalent temperature distribution diagram determining the weight coefficients of the processes comprising the macroentropy criterion.

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多级聚合化工工艺系统的最优组织
提出了一种基于信息方法的多级聚合化工工艺系统组织改进算法。该算法按照自顶向下的原则,假设优化问题的顺序求解,从宏观层面由上到下,再到微观层面的优化问题。在求解各个宏观层面的优化问题时,优化准则是宏观熵,根据热力学第零定律,宏观熵的最大化负责元素和子系统之间能量的最优分配。以双室加热炉系统为例,说明了该算法的实现。双室加热炉由对流室和辐射室组合成一个单一的热单元。根据等效温度分布图确定了包含宏观熵准则的各过程的权重系数,确定了炉为单热单元和炉为离散元结构的分系统的优化组织趋势。
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来源期刊
CiteScore
1.20
自引率
25.00%
发文量
70
审稿时长
24 months
期刊介绍: Theoretical Foundations of Chemical Engineering is a comprehensive journal covering all aspects of theoretical and applied research in chemical engineering, including transport phenomena; surface phenomena; processes of mixture separation; theory and methods of chemical reactor design; combined processes and multifunctional reactors; hydromechanic, thermal, diffusion, and chemical processes and apparatus, membrane processes and reactors; biotechnology; dispersed systems; nanotechnologies; process intensification; information modeling and analysis; energy- and resource-saving processes; environmentally clean processes and technologies.
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