Pool Boiling Heat Transfer of N-Pentane and Acetone on Nanostructured Surfaces by Electrophoretic Deposition

Zan Wu, A. Pham, Z. Cao, Cathrine Albèr, P. Falkman, T. Ruzgas, B. Sundén
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引用次数: 1

Abstract

This work aims to investigate pool boiling heat transfer enhancement by using nanostructured surfaces. Two types of nanostructured surfaces were employed, gold nanoparticle-coated surfaces and alumina nanoparticle-coated surfaces. The nanostructured surfaces were fabricated by an electrophoretic deposition technique, depositing nanoparticles in a nanofluid onto smooth copper surfaces under an electric field. N-pentane and acetone were tested as working fluids. Compared to the smooth surface, the pool boiling heat transfer coefficient has been increased by 80% for n-pentane and acetone. Possible mechanisms for the enhancement in heat transfer are qualitatively provided. The increase in active nucleation site density due to multiple micro/nanopores on nanoparticle-coated surfaces is likely the main contributor. The critical heat flux on nanostructured surfaces are approximately the same as that on the smooth surface because both smooth and modified surfaces show similar wickability for the two working fluids.
正戊烷和丙酮在纳米结构表面的池沸传热电泳研究
本研究旨在研究纳米结构表面对池沸腾传热的增强作用。采用两种类型的纳米结构表面,金纳米颗粒包覆表面和氧化铝纳米颗粒包覆表面。纳米结构表面是通过电泳沉积技术,在电场作用下将纳米流体中的纳米颗粒沉积在光滑的铜表面。正戊烷和丙酮作为工质进行了试验。与光滑表面相比,正戊烷和丙酮的沸腾换热系数提高了80%。定性地提供了强化传热的可能机制。由于纳米颗粒表面上的多个微/纳米孔,活性成核位点密度的增加可能是主要原因。纳米结构表面上的临界热流密度与光滑表面上的临界热流密度大致相同,这是因为光滑表面和改性表面对两种工质的可塑性相似。
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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