Applied thermal engineering2022,Vol.20016.DOI:10.1016/j.applthermaleng.2021.117638

The wall heat flux partitioning during the pool boiling of water on thin metallic foils

Zupancic, Matevz Gregorcic, Peter Bucci, Mattia Wang, Chi Aguiar, Gustavo Matana Bucci, Matteo
Applied thermal engineering2022,Vol.20016.DOI:10.1016/j.applthermaleng.2021.117638

The wall heat flux partitioning during the pool boiling of water on thin metallic foils

Zupancic, Matevz 1Gregorcic, Peter 1Bucci, Mattia 1Wang, Chi 2Aguiar, Gustavo Matana 2Bucci, Matteo2
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作者信息

  • 1. Univ Ljubljana, Fac Mech Engn, Askerceva 6, SI-1000 Ljubljana, Slovenia
  • 2. MIT, Dept Nucl Sci & Engn, Cambridge, MA 02139 USA
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Abstract

In this work, we studied the wall heat flux partitioning during the pool boiling of water on thin metallic surfaces. We conducted boiling experiments on surfaces where we engineered nucleation sites by nanosecond-fiber-laser texturing. These nucleation sites form triangular lattice patterns with different pitches. We measured the time-dependent temperature and heat flux distributions on the boiling surface using an infrared camera. We devel-oped post-processing algorithms to measure, based on these distributions, all the fundamental boiling parameters used in heat flux partitioning models (e.g., nucleation site density, bubble wait and growth time, and bubble footprint radius) and the actual partitioning of the heat flux, i.e., how much heat is transferred by evaporation of the microlayer, rewetting of the surface, and convective effects. This work reveals that the mechanisms of heat transfer on substrates of small thermal capacity are very different compared to substrates of large thermal capacity. With water, the bubble microlayer typically does not dry out and the surface temperature at rewetting is practically the same as the rewetting fluid temperature. These effects limit the efficiency of microlayer evaporation and rewetting heat transfer. Instead, convective effects generated by the bubble growth process remove most of the energy from the heated surface. This behavior is captured by a heat flux partitioning model that we re-derived from first principles to describe the heat transfer mechanisms on substrate of small thermal capacity.

Key words

Nucleate boiling/Thin metallic foils/Surface laser micro-engineering/Infrared thermometry/Heat flux partitioning

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出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量23
参考文献量44
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