Multiphysics Modeling to Assist Microwave Cavity Design for Food Processing

A. Salvador, J. Teleken, X. L. Travassos, S. L. Avila, B. Carciofi
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Abstract

Microwave technology has many current applications. It is very useful for food processing, including domestic cooking and warming-up and industrial heating and drying. It heats faster than conventional applications; however, in most cases result in non-uniform temperature distribution. Adequate cavity and equipment designs can reduce the impact of these heterogeneities and using multiples magnetrons is a possibility to mitigate hot and cold spots. Yet, the literature lacks methods to evaluate and compare multiple magnetrons designs. This study aimed to develop a procedure to evaluate the number and position of magnetrons connected to an application cavity using multiphysics modelling and simulation of the microwave distribution and heating of a food model. It was based on evaluating the electric field distribution into a selected working volume filled with air or a mixture of air-potato and the consequent effective power absorbed and temperature distribution into the air-potato medium. The assisted methodology with process simulation offers an insight into food temperature distribution, which would be very difficult to obtain experimentally or in any equipment design methodology. In this case study, it was found that up to 6 magnetrons are good enough when active in approximately 0.16 m3 cavity with a load that fills 10% of its volume.
多物理场建模辅助食品加工微波腔体设计
微波技术目前有许多应用。它对食品加工非常有用,包括家庭烹饪和加热以及工业加热和干燥。它的加热速度比传统应用快;然而,在大多数情况下,导致温度分布不均匀。适当的腔体和设备设计可以减少这些非均质性的影响,并且使用多个磁控管可以减轻热点和冷点。然而,文献缺乏评估和比较多个磁控管设计的方法。本研究旨在开发一种程序,利用多物理场建模和模拟食品模型的微波分布和加热,来评估连接到应用腔的磁控管的数量和位置。它的基础是评估电场在充满空气或空气-马铃薯混合物的选定工作体积中的分布,以及由此产生的有效吸收功率和空气-马铃薯介质中的温度分布。辅助方法与过程模拟提供了一个洞察食物温度分布,这将是非常难以获得实验或在任何设备设计方法。在本案例研究中,发现在大约0.16 m3的空腔中,当负载填充其体积的10%时,多达6个磁控管就足够好了。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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