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首页> 外文期刊>International journal of nonlinear sciences and numerical simulation >Irreversibility of Heat Conduction in Complex Multiphase Systems and Its Application to the Effective Thermal Conductivity of Porous Media
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Irreversibility of Heat Conduction in Complex Multiphase Systems and Its Application to the Effective Thermal Conductivity of Porous Media

机译:复杂多相系统中导热的不可逆性及其在多孔介质有效导热率中的应用

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摘要

The irreversibility of heat conduction in porous media, its relation to effective thermal conductivities (ETCs), and the optimization of thermal conduction process are investigated in this work based on the concept of entransy dissipation. Two more new concepts of reference entransy dissipation and nondimensional entransy dissipation are first introduced. Then it is showed that the nondimensional entransy dissipation rate (NER) can be employed as an objective function to evaluate the efficiency of a thermal transfer process in a porous material. By using this criterion and a newly developed structure growth algorithms, different porous structures were generated and the corresponding values of both ETC and NER were derived to illustrate the usefulness and power of using NER to assess the thermal performance of the materials. The results show that the effective thermal conductivity not only influences the heat transfer ability of porous media, but also reflects the irreversibility of heat conduction in porous media, which is a dissipation coefficient for heat transfer. Meanwhile, decreasing the structural particle size will increase the contact points, i.e. more heat bridges, decrease the temperature gradient nearby the contact points, and hence significantly increase the effective thermal coefficient of porous media. Essentially, decreasing the particle size will result in a more uniform distribution of both temperature gradient and local entransy dissipation rate along the heat flow direction, and consequently lead to a larger effective thermal conductivity.
机译:在此过程中,基于传递耗散的概念,研究了多孔介质中导热的不可逆性,与有效导热率(ETC)的关系以及导热过程的优化。首先介绍了参考熵耗散和无量纲熵耗散的两个新概念。然后表明,可以将无量纲传输耗散率(NER)用作评估多孔材料中传热过程效率的目标函数。通过使用该标准和新开发的结构生长算法,生成了不同的多孔结构,并得出了ETC和NER的相应值,以说明使用NER评估材料的热性能的有用性和功效。结果表明,有效导热系数不仅影响多孔介质的传热能力,而且反映了多孔介质中导热的不可逆性,是导热的耗散系数。同时,减小结构粒度将增加接触点,即更多的热桥,降低接触点附近的温度梯度,并因此显着增加多孔介质的有效热系数。本质上,减小粒径将导致沿热流方向的温度梯度和局部熵耗散率的分布更加均匀,从而导致较大的有效导热率。

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