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Enhanced boiling heat transfer on surfaces patterned with mixed wettability

Shen, B. (author)
Yamada, M. (author)
Mine, T. (author)
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Hidaka, S. (author)
Shiomi, J. (author)
Amberg, Gustav (author)
KTH,Fysiokemisk strömningsmekanik
Kohno, M. (author)
Takahashi, K. (author)
Takata, Y. (author)
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 (creator_code:org_t)
Begell House Inc. 2018
2018
English.
In: International Heat Transfer Conference. - : Begell House Inc.. ; , s. 1379-1386
  • Conference paper (peer-reviewed)
Abstract Subject headings
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  • Amongst an extensive collection of surface characteristics that could affect boiling performance, surface wettability (as measured by the contact angle with water) proves to play a unique role in potentially manipulating bubble behavior to the advantage of higher heat transfer rates. In this study, we show experimentally that controlled bubble behavior be realized under the surface design incorporating these two characteristics (namely, by coating an array of hydrophobic spots on a hydrophilic substrate), which leads to a great enhancement in boiling heat transfer under various conditions. In reduced-pressure pool boiling, the strong pinning of the bubble contact line at the border between the hydrophilic and hydrophobic regions manages to prevent total deactivation of nucleation sites. As a result, the deleterious transition to intermittent boiling is effectively delayed, whereby no heat transfer deterioration occurs until a very low pressure of about 8 kPa is reached. Moreover, in subcooled boiling, bubble growth on a patterned surface is found to be facilitated by a pronounced presence of dissolved gas in defiance of exhaustive degassing efforts through continuous boiling, thanks to an unusually strong retention of gas contents by the hydrophobic surface. As experimental and numerical evidence show, only bubbles with sufficiently high concentrations of gas components (i.e., causing weakened condensation) are able to grow large enough on the hydrophobic surface such that periodic pinch-offs might take place, which is responsible for most of the initial heat transfer enhancement before large-scale bubble nucleation starts on the hydrophilic surface as well.

Subject headings

TEKNIK OCH TEKNOLOGIER  -- Maskinteknik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Mechanical Engineering (hsv//eng)

Keyword

Boiling and evaporation
Dissolved gas
Heat transfer enhancement
Numerical simulation and super-computing
Subatmospheric boiling
Surface wettability

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Shen, B.
Yamada, M.
Mine, T.
Hidaka, S.
Shiomi, J.
Amberg, Gustav
show more...
Kohno, M.
Takahashi, K.
Takata, Y.
show less...
About the subject
ENGINEERING AND TECHNOLOGY
ENGINEERING AND ...
and Mechanical Engin ...
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By the university
Royal Institute of Technology

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