Nanofluids for Advanced Applications: A Comprehensive Review on Preparation Methods, Properties, and Environmental Impact

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Izzat Razzaq, Wang Xinhua*, Ghulam Rasool*, Tao Sun, Abdulsalam Saeed Shflot, Muhammad Yousaf Malik, Kamil Abbas, Shabir Ali and Amjad Ali, 
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Abstract

Nanofluids, an advanced class of heat transfer fluids, have gained significant attention due to their superior thermophysical properties, making them highly effective for various engineering applications. This review explores the impact of nanoparticle integration on the thermal conductivity, viscosity, and overall heat transfer performance of base fluids, highlighting improvements in systems, such as heat exchangers, electronics cooling, PV/T systems, CSP technologies, and geothermal heat recovery. Key mechanisms such as nanolayer formation, Brownian motion, and nanoparticle aggregation are discussed, with a focus on hybrid nanofluids that show enhanced thermal conductivity. The increase in viscosity poses a trade-off, necessitating careful control of the nanoparticle properties to optimize heat transfer while reducing energy consumption. Empirical data show up to a 123% increase in the convective heat transfer coefficients, demonstrating the tangible benefits of nanofluids in energy efficiency and system miniaturization. The review also considers the environmental impacts of nanofluid use, such as potential toxicity and the challenges of sustainable production and disposal. Future research directions include developing hybrid nanofluids with specific properties, integrating nanofluids with phase change materials, and exploring new nanomaterials such as metal chalcogenides to enhance the efficiency and sustainability of thermal management systems.

纳米流体的先进应用:制备方法、性质和环境影响的综合综述
纳米流体作为一种先进的传热流体,由于其优越的热物理性质,在各种工程应用中具有很高的效率,受到了广泛的关注。本文探讨了纳米颗粒集成对基础流体导热性、粘度和整体传热性能的影响,重点介绍了热交换器、电子冷却、PV/T系统、CSP技术和地热回收等系统的改进。讨论了纳米层形成、布朗运动和纳米颗粒聚集等关键机制,重点讨论了具有增强导热性的混合纳米流体。粘度的增加带来了一种权衡,需要仔细控制纳米颗粒的性质,以优化传热,同时减少能量消耗。经验数据显示,对流换热系数提高了123%,证明了纳米流体在能源效率和系统小型化方面的切实优势。该综述还考虑了纳米流体使用的环境影响,例如潜在毒性以及可持续生产和处置的挑战。未来的研究方向包括开发具有特定性能的混合纳米流体,将纳米流体与相变材料相结合,以及探索新型纳米材料,如金属硫族化合物,以提高热管理系统的效率和可持续性。
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
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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