scholarly journals Experimental validation of a phase-field model to predict coarsening dynamics of lipid domains in multicomponent membranes

2021 ◽  
Vol 1863 (1) ◽  
pp. 183446
Author(s):  
A. Zhiliakov ◽  
Y. Wang ◽  
A. Quaini ◽  
M. Olshanskii ◽  
S. Majd
Author(s):  
T. Philippe ◽  
H. Henry ◽  
M. Plapp

At equilibrium, the shape of a strongly anisotropic crystal exhibits corners when for some orientations the surface stiffness is negative. In the sharp-interface problem, the surface free energy is traditionally augmented with a curvature-dependent term in order to round the corners and regularize the dynamic equations that describe the motion of such interfaces. In this paper, we adopt a diffuse interface description and present a phase-field model for strongly anisotropic crystals that is regularized using an approximation of the Willmore energy. The Allen–Cahn equation is employed to model kinetically controlled crystal growth. Using the method of matched asymptotic expansions, it is shown that the model converges to the sharp-interface theory proposed by Herring. Then, the stress tensor is used to derive the force acting on the diffuse interface and to examine the properties of a corner at equilibrium. Finally, the coarsening dynamics of the faceting instability during growth is investigated. Phase-field simulations reveal the existence of a parabolic regime, with the mean facet length evolving in t , with t the time, as predicted by the sharp-interface theory. A specific coarsening mechanism is observed: a hill disappears as the two neighbouring valleys merge.


2017 ◽  
Vol 205 (1) ◽  
pp. 83-101 ◽  
Author(s):  
K. H. Pham ◽  
K. Ravi-Chandar ◽  
C. M. Landis

2012 ◽  
Vol 35 (6) ◽  
Author(s):  
F. Campelo ◽  
A. Cruz ◽  
J. Pérez-Gil ◽  
L. Vázquez ◽  
A. Hernández-Machado

2021 ◽  
Vol 120 (3) ◽  
pp. 225a
Author(s):  
Yifei Wang ◽  
Alexander Zhiliakov ◽  
Annalisa Quaini ◽  
Maxim Olshanskii ◽  
Sheereen Majd

2016 ◽  
Author(s):  
Larry Kenneth Aagesen ◽  
Daniel Schwen

2021 ◽  
Vol 7 (1) ◽  
Author(s):  
Min Yang ◽  
Lu Wang ◽  
Wentao Yan

AbstractA three-dimensional phase-field model is developed to simulate grain evolutions during powder-bed-fusion (PBF) additive manufacturing, while the physically-informed temperature profile is implemented from a thermal-fluid flow model. The phase-field model incorporates a nucleation model based on classical nucleation theory, as well as the initial grain structures of powder particles and substrate. The grain evolutions during the three-layer three-track PBF process are comprehensively reproduced, including grain nucleation and growth in molten pools, epitaxial growth from powder particles, substrate and previous tracks, grain re-melting and re-growth in overlapping zones, and grain coarsening in heat-affected zones. A validation experiment has been carried out, showing that the simulation results are consistent with the experimental results in the molten pool and grain morphologies. Furthermore, the grain refinement by adding nanoparticles is preliminarily reproduced and compared against the experimental result in literature.


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