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A Phase-Shifting Method for Improving the Heating Uniformity of Microwave Processing Materials

机译:一种改善微波加工材料加热均匀性的相移方法

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Microwave processing of materials has been found to deliver enormous advantages over conventional processing methods in terms of mechanical and physical properties of the materials. However, the non-uniform temperature distribution is the key problem of microwave processing, which is related to the structure of the cavity, and the placement and physical parameters of the material. In this paper, a new microwave cavity structure with a sliding short based on phase-shifting heating is creatively proposed to improve the temperature uniformity. An electronic mathematical model based on the Finite Element Method (FEM) is built to predict the temperature distribution. Meanwhile, a new computational approach based on the theory of transformation optics is first provided to solve the problem of the moving boundary in the model simulation. At first, the experiment is carried out to validate the model, and heating results from the experiment show good agreement with the model’s prediction. Based on the verified model, materials selected among a wide range of dielectric constants are treated by stationary heating and phase-shifting heating. The coefficient of variation (COV) of the temperature and temperature difference has been compared in detail between stationary heating and phase-shifting heating. A significant improvement in heating uniformity can be seen from the temperature distribution for most of the materials. Furthermore, three other materials are also treated at high temperature and the heating uniformity is also improved. Briefly, the strategy of phase-shifting heating plays a significant role in solve the problem of non-uniform heating in microwave-based material processing. A 25%–58% increase in uniformity from adapting the phase-shifting method can be observed for the microwave-processed materials.
机译:已经发现,就材料的机械和物理特性而言,材料的微波处理相对于常规处理方法具有巨大的优势。然而,温度分布不均匀是微波加工的关键问题,它与腔体的结构,材料的放置和物理参数有关。本文提出了一种基于相移加热的具有滑动短路的新型微波腔结构,以提高温度均匀性。建立了基于有限元方法(FEM)的电子数学模型来预测温度分布。同时,首先提出了一种基于变换光学理论的新的计算方法,以解决模型仿真中的运动边界问题。首先,进行实验以验证模型,并且实验的加热结果表明与模型的预测吻合良好。基于已验证的模型,可以通过固定加热和相移加热来处理在介电常数范围内选择的材料。已经详细比较了固定加热和相移加热之间的温度和温度差的变化系数(COV)。从大多数材料的温度分布可以看出,加热均匀性有了显着改善。此外,还对三种其他材料进行了高温处理,并且加热均匀性也得到了改善。简而言之,相移加热策略在解决微波基材料加工中加热不均匀的问题中起着重要作用。对于微波处理的材料,通过采用相移方法,可以发现均匀性提高了25%– 58%。

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