Nonclassical Heat Transfer and Recent ProgressSource: ASME Journal of Heat and Mass Transfer:;2024:;volume( 147 ):;issue: 003::page 32502-1DOI: 10.1115/1.4066973Publisher: The American Society of Mechanical Engineers (ASME)
Abstract: Heat transfer in solids has traditionally been described by Fourier's law, which assumes local equilibrium and a diffusive transport regime. However, advancements in nanotechnology and the development of novel materials have revealed nonclassical heat transfer phenomena that extend beyond this traditional framework. These phenomena, which can be broadly categorized into those governed by kinetic theory and those extending beyond it, include ballistic transport, phonon hydrodynamics, coherent phonon transport, Anderson localization, and glass-like heat transfer. Recent theoretical and experimental studies have focused on characterizing these nonclassical behaviors using methods such as the Boltzmann transport equation, molecular dynamics, and advanced spectroscopy techniques. In particular, the dual nature of phonons, exhibiting both particle-like and wave-like characteristics, is fundamental to understanding these phenomena. This review summarizes state-of-the-art findings in the field, highlighting the importance of integrating both particle and wave models to fully capture the complexities of heat transfer in modern materials. The emergence of new research areas, such as chiral and topological phonons, further underscores the potential for advancing phonon engineering. These developments open up exciting opportunities for designing materials with tailored thermal properties and new device mechanisms, potentially leading to applications in thermal management, energy technologies, and quantum science.
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contributor author | Su, Chuanjin | |
contributor author | Wu, Huan | |
contributor author | Dai, Lingyun | |
contributor author | Zhang, Zhihan | |
contributor author | Li, Suixuan | |
contributor author | Hu, Yongjie | |
date accessioned | 2025-04-21T09:58:16Z | |
date available | 2025-04-21T09:58:16Z | |
date copyright | 12/16/2024 12:00:00 AM | |
date issued | 2024 | |
identifier issn | 2832-8450 | |
identifier other | ht_147_03_032502.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4305219 | |
description abstract | Heat transfer in solids has traditionally been described by Fourier's law, which assumes local equilibrium and a diffusive transport regime. However, advancements in nanotechnology and the development of novel materials have revealed nonclassical heat transfer phenomena that extend beyond this traditional framework. These phenomena, which can be broadly categorized into those governed by kinetic theory and those extending beyond it, include ballistic transport, phonon hydrodynamics, coherent phonon transport, Anderson localization, and glass-like heat transfer. Recent theoretical and experimental studies have focused on characterizing these nonclassical behaviors using methods such as the Boltzmann transport equation, molecular dynamics, and advanced spectroscopy techniques. In particular, the dual nature of phonons, exhibiting both particle-like and wave-like characteristics, is fundamental to understanding these phenomena. This review summarizes state-of-the-art findings in the field, highlighting the importance of integrating both particle and wave models to fully capture the complexities of heat transfer in modern materials. The emergence of new research areas, such as chiral and topological phonons, further underscores the potential for advancing phonon engineering. These developments open up exciting opportunities for designing materials with tailored thermal properties and new device mechanisms, potentially leading to applications in thermal management, energy technologies, and quantum science. | |
publisher | The American Society of Mechanical Engineers (ASME) | |
title | Nonclassical Heat Transfer and Recent Progress | |
type | Journal Paper | |
journal volume | 147 | |
journal issue | 3 | |
journal title | ASME Journal of Heat and Mass Transfer | |
identifier doi | 10.1115/1.4066973 | |
journal fristpage | 32502-1 | |
journal lastpage | 32502-13 | |
page | 13 | |
tree | ASME Journal of Heat and Mass Transfer:;2024:;volume( 147 ):;issue: 003 | |
contenttype | Fulltext |