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Multi-objective optimisation of induction heating processes: methods of the problem solution and examples based on benchmark model

机译:感应加热过程的多目标优化:问题解决方法和基于基准模型的示例

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摘要

The main goal of the researches is the development of new approaches, algorithms and numerical techniques for multi-objective optimisation of design of industrial induction heating installations. A multi-objective optimisation problem is mathematically formulated in terms of the typical optimisation criteria, e.g., maximum heating accuracy and minimum energy consumption. Various mathematical methods and algorithms for multi-objective optimisation, such as Non-dominated Sorting Genetic Algorithm (NSGA-Ⅱ) and optimal control alternance method, have been implemented and integrated in a user-friendly automated optimal design package. Several optimisation procedures have been tested and investigated for a problem-oriented mathematical model in a number of comparative case studies. A general comparison of the design solutions based on NSGA-Ⅱ and alternance method leads to their good agreement in all investigated cases. The methodology developed is planned to be applied to more complex real-life problems of the optimal design and control of different induction heating systems.
机译:研究的主要目标是开发新的方法,算法和数值技术,以实现工业感应加热装置设计的多目标优化。根据典型的优化标准,例如最大加热精度和最小能耗,以数学方式提出了多目标优化问题。已经实现了多种用于多目标优化的数学方法和算法,例如非支配排序遗传算法(NSGA-Ⅱ)和最优控制交替方法,并将其集成在用户友好的自动化最优设计包中。在许多比较案例研究中,已经针对面向问题的数学模型测试和研究了几种优化程序。通过对基于NSGA-Ⅱ和交流法的设计方案的总体比较,可以使它们在所有调查案例中均具有良好的一致性。计划开发的方法将应用于更复杂的现实生活中的问题,即优化设计和控制不同的感应加热系统。

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