Show simple item record

contributor authorReza Seyf, Hamid
contributor authorZhang, Yuwen
date accessioned2017-05-09T01:00:09Z
date available2017-05-09T01:00:09Z
date issued2013
identifier issn0022-1481
identifier otherht_135_12_121503.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/152275
description abstractMolecular Dynamics (MD) simulation is carried out to investigate the normal and explosive boiling of thin film adsorbed on a metal substrate whose surface is structured by an array of nanoscale spherical particles. The molecular system is comprised of the liquid and vapor argon as well as a copper wall. The nanostructures have spherical shape with uniform diameters while the thickness of liquid film is constant. The effects of transvers and longitudinal distances as well as the diameter of nanoparticles are analyzed. The simulation is started from an initial configuration for three phases (liquid argon, vapor argon and solid wall); after equilibrating the system at 90 K, the wall is heated suddenly to a higher temperature that is well beyond the critical temperature of argon. Two different superheat degrees are selected: a moderately high temperature of 170 K for normal evaporation and much higher temperature 290 K for explosive boiling. By monitoring the space and time dependences of temperature and density as well as net evaporation rate, the normal and explosive boiling process on a flat surface with and without nanostructures are investigated. The results show that the nanostructure has significant effect on evaporation/boiling of thin film. The degrees of superheat and size of nanoparticles have significant effects on the trajectories of particles and net evaporation rate. For the cases with nanostructure, liquid responds very quickly and the number of evaporation molecules increases with increasing the size of particles from 1 to 2 nm while it decreases for d = 3 nm.
publisherThe American Society of Mechanical Engineers (ASME)
titleMolecular Dynamics Simulation of Normal and Explosive Boiling on Nanostructured Surface
typeJournal Paper
journal volume135
journal issue12
journal titleJournal of Heat Transfer
identifier doi10.1115/1.4024668
journal fristpage121503
journal lastpage121503
identifier eissn1528-8943
treeJournal of Heat Transfer:;2013:;volume( 135 ):;issue: 012
contenttypeFulltext


Files in this item

Thumbnail

This item appears in the following Collection(s)

Show simple item record