The influence of the liquid layer height on the velocity field and evaporation during local heating
暂无分享,去创建一个
[1] V. Morozov,et al. The behavior of heat transfer and entropy in a thin layer of liquid under laser heating , 2023, International Journal of Thermal Sciences.
[2] M. Piskunov,et al. Dynamic and Kinematic Characteristics of Unsteady Motion of a Water-in-Oil Emulsion Droplet in Collision with a Solid Heated Wall Under Conditions of Convective Heat Transfer , 2022, SSRN Electronic Journal.
[3] V. Morozov,et al. Evaporation of a water layer under local non-isothermal heating , 2022, Applied Thermal Engineering.
[4] M. Piskunov,et al. UNSTEADY CONVECTIVE FLOW OF A PREHEATED WATER-IN-OIL EMULSION DROPLET IMPINGING ON A HEATED WALL , 2022, Physics of Fluids.
[5] Hsiu-Yang Tseng,et al. Utilizing subsonic vibration in cryogenic quenching for heat flux enhancement , 2022, Experimental Heat Transfer.
[6] V. G. Makotchenko,et al. Wetting properties of graphene and multilayer graphene deposited on copper: the influence of copper topography , 2022, Thin Solid Films.
[7] V. Morozov,et al. Molecular dynamic simulation and experimental data on graphene wettability on heated structured surfaces , 2022, Experimental Heat Transfer.
[8] Ravi Kumar,et al. Pool boiling heat transfer enhancement of R134a, R32, and R600a using reentrant cavity surfaces , 2022, Experimental Heat Transfer.
[9] Bo Zhang,et al. Effect of unidirectional surface roughness on heat transfer performance of spray cooling , 2022, Experimental Heat Transfer.
[10] H. Saffari,et al. Experimental study of electrospray deposition method parameters on TiO_2 coating structure in pool boiling performance enhancement , 2022, Experimental Heat Transfer.
[11] V. Morozov,et al. Water evaporation on structured surfaces with different wettability , 2022, International Journal of Heat and Mass Transfer.
[12] Xianfu Huang,et al. Effect of substrate elasticity on evaporation kinetics and evaporative deposition of aqueous polystyrene nanoparticles droplets , 2020, Science China Physics, Mechanics & Astronomy.
[13] Quanzi Yuan,et al. Formation of deposition patterns induced by the evaporation of the restricted liquid. , 2020, Langmuir : the ACS journal of surfaces and colloids.
[14] S. Misyura. Dependence of wettability of microtextured wall on the heat and mass transfer: Simple estimates for convection and heat transfer , 2020 .
[15] V. Morozov,et al. Droplet evaporation on a structured surface: The role of near wall vortexes in heat and mass transfer , 2020 .
[16] K. Sefiane,et al. On the effect of substrate viscoelasticity on the evaporation kinetics and deposition patterns of nano-suspension drops. , 2019, Langmuir : the ACS journal of surfaces and colloids.
[17] Ying-Song Yu,et al. Evaporative deposition of mono- and bi-dispersed colloids on a polydimethylsiloxane (PDMS) surface , 2019, Chemical Engineering Science.
[18] Xiaoming Zhou,et al. Heat transfer and entropy generation analysis of nanofluids thermocapillary convection around a bubble in a cavity , 2019, International Communications in Heat and Mass Transfer.
[19] Lin Feng,et al. Bénard-Marangoni instability in sessile droplet evaporating at constant contact angle mode on heated substrate , 2019, International Journal of Heat and Mass Transfer.
[20] Z. Zeng,et al. Effect of the Prandtl number on the instabilities of the thermocapillary flow in an annular pool , 2019, Physics of Fluids.
[21] S. Misyura. The influence of convection on heat transfer in a water layer on a heated structured wall , 2019, International Communications in Heat and Mass Transfer.
[22] V. Morozov,et al. The role of convection in gas and liquid phases at droplet evaporation , 2018, International Journal of Thermal Sciences.
[23] V. Morozov,et al. The influence of key factors on the heat and mass transfer of a sessile droplet , 2018, Experimental Thermal and Fluid Science.
[24] R. Volkov,et al. Interaction of two drops at different temperatures: The role of thermocapillary convection and surfactant , 2018, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[25] S. Misyura. The influence of characteristic scales of convection on non-isothermal evaporation of a thin liquid layer , 2018, Scientific Reports.
[26] K. Sefiane,et al. Influence of Local Heating on Marangoni Flows and Evaporation Kinetics of Pure Water Drops. , 2017, Langmuir : the ACS journal of surfaces and colloids.
[27] M. Medale,et al. Contribution of convective transport to evaporation of sessile droplets: Empirical model , 2016 .
[28] A. Galbis,et al. Vector Analysis Versus Vector Calculus , 2012 .
[29] C. L. Niliot,et al. Infrared visualization of thermal motion inside a sessile drop deposited onto a heated surface , 2011 .
[30] Alex Liberzon,et al. Real-time image processing for particle tracking velocimetry , 2010 .
[31] Peter Stephan,et al. Marangoni convection and heat transfer in thin liquid films on heated walls with topography: Experiments and numerical study , 2005 .
[32] Eberhard Bodenschatz,et al. Recent Developments in Rayleigh-Bénard Convection , 2000 .
[33] J. Westerweel. Fundamentals of digital particle image velocimetry , 1997 .
[34] F. Busse,et al. Non-linear properties of thermal convection , 1978 .
[35] William A. Sirignano,et al. A Critical Discussion of Theories of Flame Spread across Solid and Liquid Fuels , 1972 .
[36] J. Adler. Fluid Mechanics of a Shallow Fuel Layer Near a Burning Wick , 1970 .
[37] L. Scriven,et al. The Marangoni Effects , 1960, Nature.