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Emergence of Non-Fourier Hierarchies

Tamás FülöpDepartment of Energy Engineering, Faculty of Mechanical Engineering, BME, 1521 Budapest, HungaryRóbert KovácsDepartment of Energy Engineering, Faculty of Mechanical Engineering, BME, 1521 Budapest, HungaryÁdám LovasDepartment of Energy Engineering, Faculty of Mechanical Engineering, BME, 1521 Budapest, HungaryÁgnes RiethDepartment of Energy Engineering, Faculty of Mechanical Engineering, BME, 1521 Budapest, HungaryTamás FodorDepartment of Energy Engineering, Faculty of Mechanical Engineering, BME, 1521 Budapest, HungaryMátyás SzücsDepartment of Energy Engineering, Faculty of Mechanical Engineering, BME, 1521 Budapest, HungaryP. VánDepartment of Energy Engineering, Faculty of Mechanical Engineering, BME, 1521 Budapest, HungaryGyula GrófDepartment of Energy Engineering, Faculty of Mechanical Engineering, BME, 1521 Budapest, Hungary
2018en
ABI

Аннотация

The non-Fourier heat conduction phenomenon on room temperature is analyzed from various aspects. The first one shows its experimental side, in what form it occurs, and how we treated it. It is demonstrated that the Guyer-Krumhansl equation can be the next appropriate extension of Fourier's law for room-temperature phenomena in modeling of heterogeneous materials. The second approach provides an interpretation of generalized heat conduction equations using a simple thermo-mechanical background. Here, Fourier heat conduction is coupled to elasticity via thermal expansion, resulting in a particular generalized heat equation for the temperature field. Both aforementioned approaches show the size dependency of non-Fourier heat conduction. Finally, a third approach is presented, called pseudo-temperature modeling. It is shown that non-Fourier temperature history can be produced by mixing different solutions of Fourier's law. That kind of explanation indicates the interpretation of underlying heat conduction mechanics behind non-Fourier phenomena.

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