7. Takata Y, Hidaka S, Cao JM, Nakamura T, Yamamoto H, Masuda M, Ito T (2005) Effect
of surface wettability on boiling and evaporation. Energy 30:209–220
8. Takamasa T, Hazuku T, Okamoto K, Mishima K, Furuya M (2005) Radiation-induced surface
activation on Leidenfrost and quenching phenomena. Exp Therm Fluid Sci 29:267–274
9. Suzuki K et al (2005) Enhancement of heat transfer in subcooled flow boiling with
microbubble emission. Exp Therm Fluid Sci 29:827–832
10. Fujishima A, Honda K (1972) Electrochemical photolysis of water at a semiconductor
electrode. Nature (Lond) 238:37–38
11. Masahashi N, Semboshi S, Ohtsu N, Oku M (2008) Microstructure and superhydrophilicity of
anodic TiO 2 films on pure titanium. Thin Solid Films 516:7488–7496
12. Kutateladze SS (1952) Heat transfer in condensation and boiling, 2nd edn. AEC-trans-3770.
U.S. Atomic Energy Commission, Technical Information Service, Washington
13. Jens WH, Lottes PA (1962) Analysis of heat transfer, burnout, pressure drop and density data
for high pressure water. USAEC Report ANL-4627
14. Thom JRS, Walker WM, Fallon TA, Reising GFS (1966) Boiling in subcooled water during
flow up heated tubes or annuli. Proc Inst Mech Eng 180:226–246, Part 3C
15. Kutateladze SS (1953) Heat transfer in condensation and boiling, 2nd edn. AEC-trans-3405,
U. S. AEC Technical Information Service,
16. Ivey HJ, Morris DJ (1962) On the relevance of the vapor-liquid exchange mechanism for
subcooled boiling heat transfer at high pressure. AEEW Report 137, UKAEA
17. Haramura Y, Katto Y (1983) A new hydrodynamic model of critical heat flux, applicable
widely to both pool and forced convection boiling on submerged bodies in saturated liquids.
Int J Heat Mass Transfer 26-3:389–399
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