Mathematical and Physical Description of Transport Phenomena in Heat Pipes Based on Nanofluids: A Review.

IF 4.4 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Nanomaterials Pub Date : 2025-05-18 DOI:10.3390/nano15100757
Marina S Astanina, Nikita S Gibanov, Igor V Miroshnichenko, Egor A Tarasov, Mikhail A Sheremet
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Abstract

Heat pipes are highly efficient heat transfer devices relying on phase-change mechanisms, with performance heavily influenced by working fluids and operational dynamics. This review article comprehensively examines hydrodynamics and heat transfer in heat pipes, contrasting conventional working fluids with nanofluid-enhanced systems. In the present work we discuss mathematical models governing fluid flow and heat transfer, emphasizing continuum and porous media approaches for wick structures. Functional dependencies of thermophysical properties (e.g., viscosity, surface tension, thermal conductivity) are reviewed, highlighting temperature-driven correlations and nanofluid modifications. Transport mechanisms within wicks are analyzed, addressing capillary-driven flow, permeability, and challenges posed by nanoparticle integration. Fourth, interfacial phase-change conditions-evaporation and condensation-are modeled, focusing on kinetic theory and empirical correlations. Also, numerical and experimental results are synthesized to quantify performance enhancements from nanofluids, including thermal resistance reduction and capillary limit extension, while addressing inconsistencies in stability and pressure drop trade-offs. Finally, applications spanning electronics cooling, aero-space, and renewable energy systems are evaluated, underscoring nanofluids' potential to expand heat pipe usability in extreme environments. The review identifies critical gaps, such as long-term nanoparticle stability and scalability of lab-scale models, while advocating for unified frameworks to optimize nanofluid selection and wick design. This work serves as a foundational reference for researchers and engineers aiming to advance heat pipe technology through nanofluid integration, balancing theoretical rigor with practical feasibility.

基于纳米流体的热管输运现象的数学和物理描述
热管是依靠相变机理的高效换热装置,其性能受工质和运行动力学的影响较大。这篇综述文章全面研究了热管中的流体力学和传热,对比了传统工作流体和纳米流体增强系统。在本工作中,我们讨论了控制流体流动和传热的数学模型,强调了连续介质和多孔介质方法的芯结构。回顾了热物理性质(如粘度、表面张力、导热系数)的功能依赖关系,重点介绍了温度驱动的相关性和纳米流体修饰。分析了芯内的输送机制,解决了毛细管驱动的流动、渗透率和纳米颗粒整合带来的挑战。第四,建立了界面相变条件-蒸发和冷凝-模型,重点关注动力学理论和经验关联。此外,本文还综合了数值和实验结果,以量化纳米流体的性能增强,包括热阻降低和毛细管极限扩展,同时解决稳定性和压降权衡方面的不一致。最后,对电子冷却、航空航天和可再生能源系统的应用进行了评估,强调了纳米流体在极端环境中扩大热管可用性的潜力。这篇综述指出了关键的差距,例如纳米颗粒的长期稳定性和实验室规模模型的可扩展性,同时提倡统一的框架来优化纳米流体的选择和芯设计。这项工作为旨在通过纳米流体集成推进热管技术的研究人员和工程师提供了基础参考,平衡了理论严谨性和实际可行性。
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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来源期刊
Nanomaterials
Nanomaterials NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
8.50
自引率
9.40%
发文量
3841
审稿时长
14.22 days
期刊介绍: Nanomaterials (ISSN 2076-4991) is an international and interdisciplinary scholarly open access journal. It publishes reviews, regular research papers, communications, and short notes that are relevant to any field of study that involves nanomaterials, with respect to their science and application. Thus, theoretical and experimental articles will be accepted, along with articles that deal with the synthesis and use of nanomaterials. Articles that synthesize information from multiple fields, and which place discoveries within a broader context, will be preferred. There is no restriction on the length of the papers. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible. Full experimental or methodical details, or both, must be provided for research articles. Computed data or files regarding the full details of the experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. Nanomaterials is dedicated to a high scientific standard. All manuscripts undergo a rigorous reviewing process and decisions are based on the recommendations of independent reviewers.
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