4.7 Article

Enhanced pool-boiling heat transfer and critical heat flux on femtosecond laser processed stainless steel surfaces

期刊

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijheatmasstransfer.2014.11.023

关键词

Pool boiling; Critical heat flux; Femtosecond laser surface processing; Heat transfer coefficients; Metallic enhanced heat transfer surfaces

资金

  1. Nebraska Center for Energy Sciences Research (NCESR)
  2. Nebraska Public Power District (NPPD) [4200000844]
  3. NASA EPSCoR [-NNX13AB17A]
  4. Department of Mechanical and Materials Engineering
  5. College of Engineering at UNL
  6. NASA [NNX13AB17A, 476675] Funding Source: Federal RePORTER

向作者/读者索取更多资源

In this paper, we present an experimental investigation of pool boiling heat transfer on multiscale (micro/nano) functionalized metallic surfaces. Heat transfer enhancement in metallic surfaces is very important for large scale high heat flux applications like in the nuclear power industry. The multiscale structures were fabricated via a femtosecond laser surface process (FLSP) technique, which forms self-organized mound-like microstructures covered by layers of nanoparticles. Using a pool boiling experimental setup with deionized water as the working fluid, both the heat transfer coefficients and critical heat flux were investigated. A polished reference sample was found to have a critical heat flux of 91 W/cm(2) at 40 degrees C of superheat and a maximum heat transfer coefficient of 23,000 W/m(2) K. The processed samples were found to have a maximum critical heat flux of 142 W/cm(2) at 29 degrees C and a maximum heat transfer coefficient of 67,400 W/m(2) K. It was found that the enhancement of the critical heat flux was directly related to the wetting and wicking ability of the surface which acts to replenish the evaporating liquid and delay critical heat flux. The heat transfer coefficients were also found to increase when the surface area ratio was increased as well as the microstructure peak-to-valley height. Enhanced nucleate boiling is the main heat transfer mechanism, and is attributed to an increase in surface area and nucleation site density. (C) 2014 Elsevier Ltd. All rights reserved.

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