| Literature DB >> 22559173 |
Hangjin Jo1, Seolha Kim, Hyungmo Kim, Joonwon Kim, Moo Hwan Kim.
Abstract
A study of nucleate boiling phenomena on nano/microstructures is a very basic and useful study with a view to the potential application of modified surfaces as heating surfaces in a number of fields. We present a detailed study of boiling experiments on fabricated nano/microstructured surfaces used as heating surfaces under atmospheric conditions, employing identical nanostructures with two different wettabilities (silicon-oxidized and Teflon-coated). Consequently, enhancements of both boiling heat transfer (BHT) and critical heat flux (CHF) are demonstrated in the nano/microstructures, independent of their wettability. However, the increment of BHT and CHF on each of the different wetting surfaces depended on the wetting characteristics of heating surfaces. The effect of water penetration in the surface structures by capillary phenomena is suggested as a plausible mechanism for the enhanced CHF on the nano/microstructures regardless of the wettability of the surfaces in atmospheric condition. This is supported by comparing bubble shapes generated in actual boiling experiments and dynamic contact angles under atmospheric conditions on Teflon-coated nano/microstructured surfaces.Entities:
Year: 2012 PMID: 22559173 PMCID: PMC3420310 DOI: 10.1186/1556-276X-7-242
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1SEM image and apparent static contact angle. SEM image of the fabricated structured surface and apparent static contact angle on oxidized silicon and Teflon-coated nano/microstructures.
Figure 2Comparison of boiling curve on each of the different heating surface conditions.
Figure 3Comparison between Kandlikar’s prediction [6] and experimental CHF and bubble dynamics in real boiling condition. (a) SiO2 nanostructured surface, (b) Teflon-coated nanostructured surface, (c) SiO2 bare surface, and (d) Teflon bare surface.
Figure 4Comparison of BHT coefficient on each of the different heating surface conditions.
Figure 5Bubble dynamics on each of the different heating surface conditions at different heat flux conditions.
Figure 6Comparison between Hsu’s prediction [29]and actual activated range in real boiling condition.