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纳米流体的热特性。

Thermal properties of nanofluids.

机构信息

SMARTS, Metallurgy and Materials Group, Indira Gandhi Centre for Atomic Research, Kalpakkam-603102, India.

出版信息

Adv Colloid Interface Sci. 2012 Nov 15;183-184:30-45. doi: 10.1016/j.cis.2012.08.001. Epub 2012 Aug 7.

Abstract

Colloidal suspensions of fine nanomaterials in the size range of 1-100 nm in carrier fluids are known as nanofluids. For the last one decade, nanofluids have been a topic of intense research due to their enhanced thermal properties and possible heat transfer applications. Miniaturization and increased operating speeds of gadgets warranted the need for new and innovative cooling concepts for better performance. The low thermal conductivity of conventional heat transfer fluid has been a serious impediment for improving the performance and compactness of engineering equipments. Initial studies on thermal conductivity of suspensions with micrometer-sized particles encountered problems of rapid settling of particles, clogging of flow channels and increased pressure drop in the fluid. These problems are resolved by using dispersions of fine nanometer-sized particles. Despite numerous experimental and theoretical studies, it is still unclear whether the thermal conductivity enhancement in nanofluids is anomalous or within the predictions of effective medium theory. Further, many reports on thermal conductivity of nanofluids are conflicting due to the complex issues associated with the surface chemistry of nanofluids. This review provides an overview of recent advances in the field of nanofluids, especially the important material properties that affect the thermal properties of nanofluids and novel approaches to achieve extremely high thermal conductivities. The background information is also provided for beginners to better understand the subject.

摘要

在载体流体中尺寸为 1-100nm 的精细纳米材料的胶体悬浮液被称为纳米流体。在过去的十年中,由于纳米流体具有增强的热性能和可能的传热应用,因此成为了研究的热点。小工具的小型化和运行速度的提高保证了需要新的和创新的冷却概念,以实现更好的性能。传统传热流体的低导热系数严重阻碍了工程设备性能和紧凑性的提高。最初对具有微米级颗粒的悬浮液的导热系数的研究遇到了颗粒快速沉降、流道堵塞和流体压降增加的问题。通过使用精细纳米级颗粒的分散体可以解决这些问题。尽管进行了大量的实验和理论研究,但纳米流体的导热系数增强是异常的还是在有效介质理论的预测范围内仍不清楚。此外,由于与纳米流体的表面化学有关的复杂问题,许多关于纳米流体导热系数的报告存在冲突。这篇综述提供了纳米流体领域的最新进展概述,特别是影响纳米流体热性能的重要材料特性以及实现极高导热系数的新方法。还为初学者提供了背景信息,以便更好地理解主题。

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