Coalescence‐Induced Jumping Bubbles during Pool Boiling

Author:

Park Hyunggon12ORCID,Ahmadi S. Farzad13ORCID,Foulkes Thomas P.4,Boreyko Jonathan B.5ORCID

Affiliation:

1. Department of Biomedical Engineering and Mechanics Virginia Tech Blacksburg VA 24061 U.S.A.

2. Department of Mechanical Engineering University of California Santa Barbara CA 93106 U.S.A.

3. Department of Physics and Engineering McDaniel College Westminster MD 21157 U.S.A.

4. AquaQuant Laboratories Inc. Terre Haute IN 47807 U.S.A.

5. Department of Mechanical Engineering Virginia Tech Blacksburg VA 24061 U.S.A.

Abstract

AbstractSurfaces with micro/nano‐structures significantly enhance the critical heat flux of nucleate boiling by increasing the wickability of the liquid phase to delay film boiling. An alternative strategy, of removing surface bubbles at smaller sizes, is largely ignored. Here, they fabricate a rationally designed micro‐structured surface that enables the coalescence‐induced departure of microscopic vapor bubbles during the pool boiling of water at diameters an order of magnitude smaller than single‐bubble buoyant departure. Arrays of micro‐cavities or micro‐grooves serve as tailored nucleation sites to nucleate close‐packed vapor bubbles, which coalesce at unusually small sizes compared to a homogeneous surface. Two different modes of coalescence‐induced bubble departure are observed and modeled: capillary‐inertial jumping for smaller micro‐bubbles and buoyant‐inertial liftoff for larger micro‐bubbles. Capillarity‐enhanced pool boiling on micro‐structured surfaces has the potential to dramatically enhance the heat transfer coefficient and critical heat flux of pool boiling.

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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