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Thermal characterization of granular materials using a thermal-wave resonant cavity under the dual-phase lag model of heat conduction

机译:导热双相滞后模型下利用热波谐振腔对颗粒材料进行热表征

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摘要

The process of heat transport in granular materials has generated a great deal of controversy. It has been claimed that the process is affected not only by the thermal conductivity, diffusivity and heat capacity, but also additional parameters in the form of time-phase lags must be considered. These quantities permit to take into account the thermal inertia and the micro-structural interactions of the media in such a way that they establish the non-simultaneity between the temperature and the heat flux. A highly successful model that takes into account these effects is known as the dual-phase lag model of heat conduction. It constitutes an approach that generalizes and overcomes the limitations of the classical Fourier law of heat transport. One of the most sensitive techniques for measuring thermal properties is the thermal-wave resonant cavity, which is formed by three layers. The one in the middle is semi solid, liquid or gas, whose thickness can be changed moving one of the external layers. In order to study the material in the middle, a modulated heat source is applied to one of the external layers, and the changes of temperature are registered at the surface of any of the external layers. This methodology has provided high accuracy results for the thermal properties of liquids, gases and nanofluids in the context of Fourier heat diffusion equation. However results for granular materials using this methodology are scarce and the role of the phase lags in heat transport has not been fully explored. In this work, the theoretical basis for the development of a thermal-wave resonant cavity based on dual-phase lag model is studied. It is shown that this system could be used to measure not only the thermal diffusivity but also the time-phase lags of granular materials, by performing a suitable thick-rnness scan of the cavity. It is shown that the results obtained can be a highly useful in the development of experimental methodologies revealing the possibility of non-Fourier heat transport and how the thermal characterization of granular materials can be performed.
机译:颗粒材料中的热传递过程引起了很大争议。已经声称,该过程不仅受热导率,扩散率和热容量的影响,而且还必须考虑时相滞后形式的附加参数。这些量允许考虑介质的热惯性和微结构相互作用,以使它们在温度和热通量之间建立非同时性。考虑到这些影响的非常成功的模型称为热传导的双相滞后模型。它构成了一种方法,可以推广并克服经典的傅里叶热传递定律的局限性。测量热性能的最敏感技术之一是热波谐振腔,该腔由三层形成。中间的是半固体,液体或气体,其厚度可以通过移动外层之一来改变。为了研究中间的材料,将调制热源应用于外层之一,并且温度变化记录在任何外层的表面。在傅立叶热扩散方程中,该方法为液体,气体和纳米流体的热性能提供了高精度结果。但是,使用这种方法得到的粒状材料的结果很少,并且尚未充分研究相滞在传热中的作用。本文研究了基于双相滞后模型开发热波谐振腔的理论基础。结果表明,通过对腔体进行适当的厚度扫描,该系统不仅可以用于测量热扩散率,而且可以用于测量颗粒材料的时相滞后。结果表明,所获得的结果对于开发揭示非傅立叶热传递的可能性以及如何进行粒状材料的热表征的实验方法的开发非常有用。

著录项

  • 来源
    《Granular matter》 |2010年第6期|p.569-577|共9页
  • 作者单位

    Departamento de Fisica Aplicada, Centro de Investigation y de Estudios Avanzados del I.P.N-Unidad Merida, Carretera Antigua a Progreso km. 6, A.P. 73 Cordemex, 97310 Merida, Yucatan, Mexico;

    rnDepartamento de Fisica Aplicada, Centro de Investigation y de Estudios Avanzados del I.P.N-Unidad Merida, Carretera Antigua a Progreso km. 6, A.P. 73 Cordemex, 97310 Merida, Yucatan, Mexico;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    thermal-wave resonant cavity; dual-phase lag model; time delays; three-layer system; heat conduction;

    机译:热波谐振腔;双相滞后模型时间延迟;三层系统;热传导;

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