Literature DB >> 28035168

Computational Models for Nanoscale Fluid Dynamics and Transport Inspired by Nonequilibrium Thermodynamics.

Ravi Radhakrishnan1, Hsiu-Yu Yu2, David M Eckmann3, Portonovo S Ayyaswamy4.   

Abstract

Traditionally, the numerical computation of particle motion in a fluid is resolved through computational fluid dynamics (CFD). However, resolving the motion of nanoparticles poses additional challenges due to the coupling between the Brownian and hydrodynamic forces. Here, we focus on the Brownian motion of a nanoparticle coupled to adhesive interactions and confining-wall-mediated hydrodynamic interactions. We discuss several techniques that are founded on the basis of combining CFD methods with the theory of nonequilibrium statistical mechanics in order to simultaneously conserve thermal equipartition and to show correct hydrodynamic correlations. These include the fluctuating hydrodynamics (FHD) method, the generalized Langevin method, the hybrid method, and the deterministic method. Through the examples discussed, we also show a top-down multiscale progression of temporal dynamics from the colloidal scales to the molecular scales, and the associated fluctuations, hydrodynamic correlations. While the motivation and the examples discussed here pertain to nanoscale fluid dynamics and mass transport, the methodologies presented are rather general and can be easily adopted to applications in convective heat transfer.

Entities:  

Year:  2016        PMID: 28035168      PMCID: PMC5125320          DOI: 10.1115/1.4035006

Source DB:  PubMed          Journal:  J Heat Transfer        ISSN: 0022-1481            Impact factor:   2.021


  27 in total

1.  Generalized Langevin dynamics of a nanoparticle using a finite element approach: thermostating with correlated noise.

Authors:  B Uma; T N Swaminathan; P S Ayyaswamy; D M Eckmann; R Radhakrishnan
Journal:  J Chem Phys       Date:  2011-09-21       Impact factor: 3.488

2.  Effect of the wall on the velocity autocorrelation function and long-time tail of Brownian motion.

Authors:  B U Felderhof
Journal:  J Phys Chem B       Date:  2005-11-17       Impact factor: 2.991

3.  Bridging fluctuating hydrodynamics and molecular dynamics simulations of fluids.

Authors:  Nikolaos K Voulgarakis; Jhih-Wei Chu
Journal:  J Chem Phys       Date:  2009-04-07       Impact factor: 3.488

Review 4.  Nanocarrier Hydrodynamics and Binding in Targeted Drug Delivery: Challenges in Numerical Modeling and Experimental Validation.

Authors:  Portonovo S Ayyaswamy; Vladimir Muzykantov; David M Eckmann; Ravi Radhakrishnan
Journal:  J Nanotechnol Eng Med       Date:  2013-07-11

5.  Modeling the nanoscale viscoelasticity of fluids by bridging non-Markovian fluctuating hydrodynamics and molecular dynamics simulations.

Authors:  Nikolaos K Voulgarakis; Siddarth Satish; Jhih-Wei Chu
Journal:  J Chem Phys       Date:  2009-12-21       Impact factor: 3.488

Review 6.  Dynamic factors controlling carrier anchoring on vascular cells.

Authors:  Tirumani N Swaminathan; Jin Liu; Uma Balakrishnan; Portonovo S Ayyaswamy; Ravi Radhakrishnan; David M Eckmann
Journal:  IUBMB Life       Date:  2011-06-30       Impact factor: 3.885

Review 7.  Dynamic factors controlling targeting nanocarriers to vascular endothelium.

Authors:  Vladimir R Muzykantov; Ravi Radhakrishnan; David M Eckmann
Journal:  Curr Drug Metab       Date:  2012-01       Impact factor: 3.731

8.  Nanoparticle stochastic motion in the inertial regime and hydrodynamic interactions close to a cylindrical wall.

Authors:  Helena Vitoshkin; Hsiu-Yu Yu; David M Eckmann; Portonovo S Ayyaswamy; Ravi Radhakrishnan
Journal:  Phys Rev Fluids       Date:  2016-09-28       Impact factor: 2.537

9.  Computational model for nanocarrier binding to endothelium validated using in vivo, in vitro, and atomic force microscopy experiments.

Authors:  Jin Liu; Gregory E R Weller; Blaine Zern; Portonovo S Ayyaswamy; David M Eckmann; Vladimir R Muzykantov; Ravi Radhakrishnan
Journal:  Proc Natl Acad Sci U S A       Date:  2010-09-07       Impact factor: 11.205

10.  Biophysically inspired model for functionalized nanocarrier adhesion to cell surface: roles of protein expression and mechanical factors.

Authors:  N Ramakrishnan; Richard W Tourdot; David M Eckmann; Portonovo S Ayyaswamy; Vladimir R Muzykantov; Ravi Radhakrishnan
Journal:  R Soc Open Sci       Date:  2016-06-29       Impact factor: 2.963

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  6 in total

1.  Nanofluid Dynamics of Flexible Polymeric Nanoparticles Under Wall Confinement.

Authors:  Samaneh Farokhirad; N Ramakrishnan; David M Eckmann; Portonovo S Ayyaswamy; Ravi Radhakrishnan
Journal:  J Heat Transfer       Date:  2019-03-27       Impact factor: 2.021

2.  Motion of a nano-spheroid in a cylindrical vessel flow: Brownian and hydrodynamic interactions.

Authors:  N Ramakrishnan; Y Wang; D M Eckmann; P S Ayyaswamy; R Radhakrishnan
Journal:  J Fluid Mech       Date:  2017-05-18       Impact factor: 3.627

3.  Thermodynamic analysis of multivalent binding of functionalized nanoparticles to membrane surface reveals the importance of membrane entropy and nanoparticle entropy in adhesion of flexible nanoparticles.

Authors:  Samaneh Farokhirad; Ryan P Bradley; Ravi Radhakrishnan
Journal:  Soft Matter       Date:  2019-10-31       Impact factor: 3.679

4.  A survey of multiscale modeling: Foundations, historical milestones, current status, and future prospects.

Authors:  Ravi Radhakrishnan
Journal:  AIChE J       Date:  2020-09-18       Impact factor: 3.993

Review 5.  Computational models for studying physical instabilities in high concentration biotherapeutic formulations.

Authors:  Marco A Blanco
Journal:  MAbs       Date:  2022 Jan-Dec       Impact factor: 5.857

6.  Multiphysics pharmacokinetic model for targeted nanoparticles.

Authors:  Emma M Glass; Sahil Kulkarni; Christina Eng; Shurui Feng; Avishi Malaviya; Ravi Radhakrishnan
Journal:  Front Med Technol       Date:  2022-07-15
  6 in total

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