首页> 外文期刊>International Journal of Heat and Mass Transfer >Analysis of resonances during microwave thawing of slabs
【24h】

Analysis of resonances during microwave thawing of slabs

机译:平板微波解冻过程中的共振分析

获取原文
获取原文并翻译 | 示例
       

摘要

Resonances or maxima in power absorption due to microwaves incidence within a slab are analyzed via transmitted and reflected waves. A generalized mathematical formulation for uniform plane waves has been established to analyze traveling waves, stationary waves and microwave power absorption within a multiphase sample. Preliminary studies based on the generalized mathematical analysis in ice and water slabs illustrate that greater amplitudes of traveling and stationary waves occur within ice samples, whereas, greater intensity of spatial resonances in microwave power occurs for water samples due to a greater dielectric loss of water. Microwave thawing is studied for specific sample thicknesses which are selected based on greater power distribution within water samples. The enthalpy method is employed for modeling of thawing of ice samples where a superficial mushy region is assumed around the melting point. Depending on the sample thickness, thawing may occur from the unexposed face as well as both the faces when the sample is exposed to microwaves at one face only, whereas thawing may originate from both the center as well as the faces when the sample is exposed to microwaves at both faces. Our analysis based on the generalized mathematical formulation validates the local maxima in spatial power distribution during intermediate thawing stages obtained with the finite element based enthalpy formulation. The generalized mathematical analysis on multiple thawed regimes further illustrates the role of traveling waves on resonances in microwave power. The influence of resonance is attributed by a non-monotonic variation of thawing time with sample thicknesses either for one side incidence or both side incidence due to microwaves. Optimal thawing strategies are recommended based on greater power savings.
机译:通过透射波和反射波分析由于平板中微波入射而导致的功率吸收的共振或最大值。建立了统一平面波的通用数学公式,以分析多相样本中的行波,驻波和微波功率吸收。在冰块和水板中基于广义数学分析进行的初步研究表明,在冰样品中会出现更大的行波和驻波振幅,而由于水的介电损耗更大,水样本中微波功率的空间共振强度也会更大。研究了微波解冻的特定样品厚度,这些厚度是基于水样品中更大的功率分布而选择的。焓法用于模拟冰样的融化,其中假定在熔点附近有一个糊状的区域。根据样品的厚度,当样品仅暴露于一个面的微波下时,未暴露的面以及两个面都可能发生融化,而当样品暴露于样品中时,融化可能既来自中心面也来自表面两面都放有微波炉。我们基于广义数学公式的分析验证了基于有限元焓公式获得的中间解冻阶段在空间功率分布中的局部最大值。对多种解冻状态的广义数学分析进一步说明了行波对微波功率共振的作用。共振的影响归因于融解时间的非单调变化,这是由于微波导致一侧入射或两侧入射的样品厚度不同。建议基于更大的功率节省来选择最佳解冻策略。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号