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Numerical Analysis of Heat Transfer Characteristics in Microwave Heating of Magnetic Dielectrics

机译:电磁介质微波加热中传热特性的数值分析

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A numerical simulation of heat transfer during the microwave heating process of magnetite, which is a two-dimensional (2-D) magnetic dielectric, subjected to heat conduction, convection, and radiation was performed. The heat transfer process was modeled using an explicit finite-difference approach, and the temperature profiles for different heating parameters were generated through developing a code in Mathematica 7.0 (Wolfram Research, Inc., Champaign, IL). The temperature in the sample increases rapidly in 1 minute and nonuniform temperature distribution inside the object is observed. An obvious temperature hot spot is formed in the corner of the predicted temperature profile initially, which shifts to the center of the object as heating power increases. Microwave heating at 915 MHz exhibits better heating uniformity than 2450 MHz mainly because of the larger microwave penetration depth. It is also observed that the heating homogeneity in the object can be improved by reducing the dimension of object. The effects of heating time, microwave power, microwave frequency, and object dimension need to be considered to obtain high heating performance and avoid/minimize thermal runaway resulting from temperature nonuniformity in large-scale microwave heating.
机译:对磁铁矿的微波加热过程中的传热进行了数值模拟,磁铁矿是一种二维(2-D)磁性电介质,受到热传导,对流和辐射作用。使用显式有限差分方法对传热过程进行建模,并通过在Mathematica 7.0(Wolfram Research,Inc.,Champaign,IL)中开发代码来生成不同加热参数的温度曲线。样品中的温度在1分钟内迅速升高,并且观察到对象内部的温度分布不均匀。最初在预测温度曲线的拐角处会形成一个明显的温度热点,随着加热功率的增加,该热点会移至对象的中心。 915 MHz的微波加热表现出比2450 MHz更好的加热均匀性,这主要是因为微波穿透深度更大。还观察到,可以通过减小物体的尺寸来改善物体中的加热均匀性。需要获得加热时间,微波功率,微波频率和物体尺寸的影响,以获得较高的加热性能,并避免/最小化大规模微波加热中由于温度不均匀而导致的热失控。

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