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Microwave thawing of cylinders

机译:汽缸的微波解冻

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Microwave thawing of a cylinder is examined. The electromagnetic field is governed by Maxwell's equations, where the electrical conductivity and the thermal absorptivity are both assumed to depend on temperature. The forced heat equation governs the absorption and diffusion of heat where convective heating occurs at the surface of the cylinder, while the Stefan condition governs the position of the moving phase boundary. A semi-analytical model, which consists of ordinary differential equations, is developed using the Galerkin method. Semi-analytical solutions are found for the temperature, the electric-field amplitude in the cylinder and the position of the moving boundary. Two examples, consisting of the no heat-loss (insulated) and large heat-loss (fixed temperature) limits, are considered, and a good comparison is obtained with the numerical solution of the governing equations. The semi-analytical model is coupled with a feedback control process in order to minimise thawing times. A strategy is developed which greatly shortens the thawing time whilst avoiding thermal runaway, hence improving the efficiency of the thawing process.
机译:检查圆柱体的微波解冻。电磁场由麦克斯韦方程组控制,其中电导率和热吸收率均假设与温度有关。强制热方程控制汽缸表面发生对流加热的热量的吸收和扩散,而斯特凡条件则控制运动相边界的位置。使用Galerkin方法开发了一个由常微分方程组成的半分析模型。对温度,圆柱体中的电场幅度和移动边界的位置找到了半解析解。考虑了两个例子,包括无热损耗(绝缘)和大热损耗(固定温度)限制,并与控制方程的数值解进行了很好的比较。半分析模型与反馈控制过程结合在一起,以最小化解冻时间。开发了一种策略,该策略可大大缩短解冻时间,同时避免热失控,从而提高解冻过程的效率。

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