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Numerical simulation of hot-spot effects in microwave heating due to the existence of strong microwave-absorbing media

机译:微波加热热点效应的数值模拟由于强微波吸收介质存在

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摘要

Hot spots can occur in microwave heating when the heated materials have different microwave absorbing properties, resulting in non-uniform temperature distribution. Understanding the features and extent of hot-spot effects can be essential in microwave-assisted processes, but little has been reported quantitatively due to the difficulty in direct determination. The issues are measured experimentally and numerically simulated using silicon carbide (SiC) particles dispersed in paraffin oil as a representative case here. Hot spots are definitively shown to exist and may trigger temperature gaps between surrounding substances at the magnitude of several hundred degrees Celsius or even higher in certain cases. The temperature gaps are enhanced for larger sized SiC particles, with a higher heat generation rate and increasing heating time. The extent of hot-spot effects substantially depends on how much and how quickly heat generated by the strong microwave absorbing media can be transferred to the weak ones. The findings have great practical value. By choosing materials with strong microwave absorption, or where discharges occur due to microwave-metal interactions, prominent hot spots can be intentionally forged and the temperature gradient may be tailored to enhance chemical reactions and catalytic processes for specific scientific and engineering applications.
机译:当加热材料具有不同的微波吸收性能时,在微波加热中可能发生热点,导致不均匀的温度分布。理解热点效应的特征和程度可能是微波辅助过程中必需的,但由于直接决定的困难,已经数量地报道了很少。这些问题在实验上测量,并使用分散在石蜡油中的碳化硅(SiC)颗粒作为在此的代表性案例中进行数值模拟。当明确显示热点存在,并且可能在某些情况下触发周围物质之间的周围物质之间的温度间隙,或者在某些情况下甚至更高。对于更大的尺寸SiC颗粒,温度间隙增强,具有较高的发热速率和增加的加热时间。热点效应的程度基本上取决于强大的微波吸收介质产生的热量和多么迅速,可以转移到弱者中。调查结果具有很大的实用价值。通过选择具有强微波吸收的材料,或者由于微波 - 金属相互作用而发生放电,可以有意锻造着突出的热点,并且可以定制温度梯度以增强特定科学和工程应用的化学反应和催化过程。

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  • 来源
    《RSC Advances》 |2016年第58期|共8页
  • 作者单位

    Shandong Univ Shandong Prov Key Lab Energy Carbon Reduct &

    Reso Natl Engn Lab Coal Fired Pollutants Emiss Reduct Jinan 250061 Peoples R China;

    Shandong Univ Shandong Prov Key Lab Energy Carbon Reduct &

    Reso Natl Engn Lab Coal Fired Pollutants Emiss Reduct Jinan 250061 Peoples R China;

    Shandong Univ Shandong Prov Key Lab Energy Carbon Reduct &

    Reso Natl Engn Lab Coal Fired Pollutants Emiss Reduct Jinan 250061 Peoples R China;

    Shandong Univ Shandong Prov Key Lab Energy Carbon Reduct &

    Reso Natl Engn Lab Coal Fired Pollutants Emiss Reduct Jinan 250061 Peoples R China;

    Shandong Univ Shandong Prov Key Lab Energy Carbon Reduct &

    Reso Natl Engn Lab Coal Fired Pollutants Emiss Reduct Jinan 250061 Peoples R China;

    Shandong Univ Shandong Prov Key Lab Energy Carbon Reduct &

    Reso Natl Engn Lab Coal Fired Pollutants Emiss Reduct Jinan 250061 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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