Nonclassical Heat Transfer and Recent Progress.

0 ENGINEERING, MECHANICAL
ASME journal of heat and mass transfer Pub Date : 2025-03-01 Epub Date: 2024-12-16 DOI:10.1115/1.4066973
Chuanjin Su, Huan Wu, Lingyun Dai, Zhihan Zhang, Suixuan Li, Yongjie Hu
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引用次数: 0

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 non-classical 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 non-classical 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.

非经典传热及其最新进展。
固体中的传热传统上是用傅立叶定律来描述的,它假设局部平衡和扩散传输状态。然而,纳米技术的进步和新材料的发展已经揭示了超越这一传统框架的非经典传热现象。这些现象可以大致分为动力学理论和动力学理论之外的现象,包括弹道输运、声子流体动力学、相干声子输运、安德森局域化和玻璃样传热。最近的理论和实验研究集中在利用玻尔兹曼输运方程、分子动力学和先进的光谱技术等方法来表征这些非经典行为。特别是,声子的双重性质,既表现出粒子状特征,又表现出波状特征,是理解这些现象的基础。这篇综述总结了该领域的最新研究成果,强调了整合粒子和波模型以充分捕捉现代材料中传热复杂性的重要性。新的研究领域的出现,如手性和拓扑声子,进一步强调了推进声子工程的潜力。这些发展为设计具有定制热性能和新器件机制的材料开辟了令人兴奋的机会,可能导致热管理,能源技术和量子科学的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
4.20
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0.00%
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