Bridging large and small scales of water models using hybrid Molecular Dynamics/Fluctuating Hydrodynamics framework

This thesis presents a two-dimensional water model investigation and development of a multiscale method for the modelling of large systems, such as virus in water or peptide immersed in the solvent. We have implemented a two-dimensional ‘Mercedes Benz’ (MB) or BN2D water model using Molecular Dynami...

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Main Author: Scukins, Arturs
Published: Aston University 2014
Subjects:
532
Online Access:http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.633138
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spelling ndltd-bl.uk-oai-ethos.bl.uk-6331382017-04-20T03:28:36ZBridging large and small scales of water models using hybrid Molecular Dynamics/Fluctuating Hydrodynamics frameworkScukins, Arturs2014This thesis presents a two-dimensional water model investigation and development of a multiscale method for the modelling of large systems, such as virus in water or peptide immersed in the solvent. We have implemented a two-dimensional ‘Mercedes Benz’ (MB) or BN2D water model using Molecular Dynamics. We have studied its dynamical and structural properties dependence on the model’s parameters. For the first time we derived formulas to calculate thermodynamic properties of the MB model in the microcanonical (NVE) ensemble. We also derived equations of motion in the isothermal–isobaric (NPT) ensemble. We have analysed the rotational degree of freedom of the model in both ensembles. We have developed and implemented a self-consistent multiscale method, which is able to communicate micro- and macro- scales. This multiscale method assumes, that matter consists of the two phases. One phase is related to micro- and the other to macroscale. We simulate the macro scale using Landau Lifshitz-Fluctuating Hydrodynamics, while we describe the microscale using Molecular Dynamics. We have demonstrated that the communication between the disparate scales is possible without introduction of fictitious interface or approximations which reduce the accuracy of the information exchange between the scales. We have investigated control parameters, which were introduced to control the contribution of each phases to the matter behaviour. We have shown, that microscales inherit dynamical properties of the macroscales and vice versa, depending on the concentration of each phase. We have shown, that Radial Distribution Function is not altered and velocity autocorrelation functions are gradually transformed, from Molecular Dynamics to Fluctuating Hydrodynamics description, when phase balance is changed. In this work we test our multiscale method for the liquid argon, BN2D and SPC/E water models. For the SPC/E water model we investigate microscale fluctuations which are computed using advanced mapping technique of the small scales to the large scales, which was developed by Voulgarakisand et. al.532Aston Universityhttp://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.633138http://publications.aston.ac.uk/24546/Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 532
spellingShingle 532
Scukins, Arturs
Bridging large and small scales of water models using hybrid Molecular Dynamics/Fluctuating Hydrodynamics framework
description This thesis presents a two-dimensional water model investigation and development of a multiscale method for the modelling of large systems, such as virus in water or peptide immersed in the solvent. We have implemented a two-dimensional ‘Mercedes Benz’ (MB) or BN2D water model using Molecular Dynamics. We have studied its dynamical and structural properties dependence on the model’s parameters. For the first time we derived formulas to calculate thermodynamic properties of the MB model in the microcanonical (NVE) ensemble. We also derived equations of motion in the isothermal–isobaric (NPT) ensemble. We have analysed the rotational degree of freedom of the model in both ensembles. We have developed and implemented a self-consistent multiscale method, which is able to communicate micro- and macro- scales. This multiscale method assumes, that matter consists of the two phases. One phase is related to micro- and the other to macroscale. We simulate the macro scale using Landau Lifshitz-Fluctuating Hydrodynamics, while we describe the microscale using Molecular Dynamics. We have demonstrated that the communication between the disparate scales is possible without introduction of fictitious interface or approximations which reduce the accuracy of the information exchange between the scales. We have investigated control parameters, which were introduced to control the contribution of each phases to the matter behaviour. We have shown, that microscales inherit dynamical properties of the macroscales and vice versa, depending on the concentration of each phase. We have shown, that Radial Distribution Function is not altered and velocity autocorrelation functions are gradually transformed, from Molecular Dynamics to Fluctuating Hydrodynamics description, when phase balance is changed. In this work we test our multiscale method for the liquid argon, BN2D and SPC/E water models. For the SPC/E water model we investigate microscale fluctuations which are computed using advanced mapping technique of the small scales to the large scales, which was developed by Voulgarakisand et. al.
author Scukins, Arturs
author_facet Scukins, Arturs
author_sort Scukins, Arturs
title Bridging large and small scales of water models using hybrid Molecular Dynamics/Fluctuating Hydrodynamics framework
title_short Bridging large and small scales of water models using hybrid Molecular Dynamics/Fluctuating Hydrodynamics framework
title_full Bridging large and small scales of water models using hybrid Molecular Dynamics/Fluctuating Hydrodynamics framework
title_fullStr Bridging large and small scales of water models using hybrid Molecular Dynamics/Fluctuating Hydrodynamics framework
title_full_unstemmed Bridging large and small scales of water models using hybrid Molecular Dynamics/Fluctuating Hydrodynamics framework
title_sort bridging large and small scales of water models using hybrid molecular dynamics/fluctuating hydrodynamics framework
publisher Aston University
publishDate 2014
url http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.633138
work_keys_str_mv AT scukinsarturs bridginglargeandsmallscalesofwatermodelsusinghybridmoleculardynamicsfluctuatinghydrodynamicsframework
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