应用于新型微波混合加热工艺的热建模与模拟

Tarunpreet Singh, Shankar Sehgal
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引用次数: 0

摘要

由于微波混合加热(主要是容积加热)具有独特的令人鼓舞的特性,以及可重复、快速、经济和绿色等其他潜力,它已被用于各种加工技术中。在 2.45 GHz 和 900 W 的多模应用器中,通过微波混合加热对低碳钢管进行高效连接,工作时间为 480 秒。本研究论文对该工艺进行了建模和仿真,因为工作环境的数值分析对于评估一项技术的各个方面至关重要,可以缩短工艺设计周期,而且比实验试验更经济。除了综合参数分析之外,数值分析还考虑了电磁场分布、电磁场与材料的相互作用、热量产生和传递,以及实验装配的热分析,从而提供了深入的见解。为了模拟现实生活中的加热环境,通过求解电磁和传热方程,开发了组装装置的数值模型,并提供了分析预测结果,与实验结果相比,精确度达到 3.75%。分析建模和模拟从战略上分为三个阶段,即前处理、处理和后处理阶段,并进行了广泛阐释,为分析模型提供了系统的工作方法。这项研究将进一步用于优化微波混合加热工艺,使其在工业环境中的应用既省时又便宜。
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Thermal modeling and simulation applied to novel microwave hybrid heating process
Owing to the unique encouraging characteristics of microwave hybrid heating, primarily volumetric heating, and additional potentials such as being repeatable, quick, economical, and green; it has been utilized in various processing techniques. The efficient joining of mild steel pipes through microwave hybrid heating in a multimode applicator at 2.45 GHz and 900 W for an operational time of 480s has already been performed. The modeling and simulation of the process have been performed in this research paper as the numerical analysis of the working environment is crucial for evaluating various aspects of a technique, decreases process-design cycle time, and found to be more economical than experimental trials. The numerical analysis provides in-depth insight-taking into consideration of the electromagnetic field distribution, its interaction with the materials, heat generation and transfer, along with the thermal analysis of the experimental assembly, in addition to the comprehensive parametric analysis. The numerical model of the assembled set-up was developed in order to simulate a real-life heating environment by solving electromagnetic and heat transfer equations and providing analytically predicted results with an accuracy of 3.75% against the experimental results. The analytical modeling and simulation have been strategically fragmented into three phases which are pre-processing, processing, and post-processing phase and elucidated extensively, providing a systematic working of the analytical model. This research will be utilized further in optimizing the microwave hybrid heating process in order to make it time-efficient and inexpensive for its applications to industrial environments.
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