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High Reynolds number channel flow with polymer additives. First high-Reynolds number simulation of polymer drag reduction. Based on bulk),. Based on viscous scales). These simulations enable us and our collaborators to further the understanding of the mechanisms of polymer drag reductions toward the derivation of predictive theory and models. Contours of fluctuations of pressure in a 2D natural convection flow with polymer additive. Elastic instabilities in 2D natural convection flow. Using molecular dyn...

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Multiscale Mechanics and Computational Engineering | Home | m2ce.org Reviews
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High Reynolds number channel flow with polymer additives. First high-Reynolds number simulation of polymer drag reduction. Based on bulk),. Based on viscous scales). These simulations enable us and our collaborators to further the understanding of the mechanisms of polymer drag reductions toward the derivation of predictive theory and models. Contours of fluctuations of pressure in a 2D natural convection flow with polymer additive. Elastic instabilities in 2D natural convection flow. Using molecular dyn...
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1 research activities
2 turbulence research
3 biophysical fluids
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5 methods
6 publications
7 people
8 news
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10 fundamental turbulence research
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Multiscale Mechanics and Computational Engineering | Home | m2ce.org Reviews

https://m2ce.org

High Reynolds number channel flow with polymer additives. First high-Reynolds number simulation of polymer drag reduction. Based on bulk),. Based on viscous scales). These simulations enable us and our collaborators to further the understanding of the mechanisms of polymer drag reductions toward the derivation of predictive theory and models. Contours of fluctuations of pressure in a 2D natural convection flow with polymer additive. Elastic instabilities in 2D natural convection flow. Using molecular dyn...

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Multiscale Mechanics and Computational Engineering | People

http://www.m2ce.org/home/people

Yves Dubief Associate professor of the School of Engineering at the University of Vermont. Ryan Crocker (PhD, graduation expected: December 2011). Laura Haynes (PhD, biochemistry). Bruce Beynnon (UVM, Orthopedics). Olivier Desjardins (Cornell University). Ken Mann (UVM, Biochemistry). James Slauterbeck (UVM, Orthopedics). Vincent Terrapon (University of Liege). Ana Maria Trunfio-Sfarghui (INSA Lyon, France). Christopher White (University of New Hampshire). Bertrand Rollin (PhD, 2008).

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Multiscale Mechanics and Computational Engineering | Open positions

http://www.m2ce.org/open-positions

There are currently no position available. We welcome applications from undergraduate in mechanical engineering, mathematics and computer science. Undergraduate projects use our large database of simulations, new simulations with the assistance of graduate students or faculty in the areas of interest or our group. Typical projects satisfy the requirement of the honors college. If interested in summer internships, stipend may be available, please inquire. Inquiries about open positions:.

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Multiscale Mechanics and Computational Engineering | Turbulence Research

http://www.m2ce.org/home/turbulence-control

The overarching objective of our research is to develop predictive models of complex turbulent flow systems based on in-depth knowledge of the fundamental principles of the physics at play. Our approach relies on the study of the dynamics of coherent structures, complementary experimental/numerical investigations and numerical experiments. Turbulence, mixing and energy. 2) Increase drag. For moving bodies, the friction of the fluid on solid surfaces may be tenfold larger in turbulent regime than in l...

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Multiscale Mechanics and Computational Engineering | Methods

http://www.m2ce.org/methods

Our research is based on massively parallel algorithms that enable the study of complex problems in time and space. Our group uses high-end workstations for code development, post-processing and visualizations, the Vermont Advanced Computing Center. And the Teragrid for computing. Our nanoscale studies rely on the wealth of open source software developed by the community of molecular dynamics, namely:. Atomistic and coarse grained molecular dynamics simulations of lipid bilayers.

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Early turbulence in transitional polymeric channel flow | Multiscale Mechanics and Computational Engineering

http://www.m2ce.org/2012/uncategorized/early-turbulence-in-transitional-polymeric-channel-flow

Early turbulence in transitional polymeric channel flow. November 8, 2012 Multiscale projects. Contours of polymer extension and positive and negative Q (lines) in the stream wise/wall normal plane of a channel flow at Re=1000. Some of the outcomes of our work at the 2012 Center for Turbulence Research. Summer Program are summarized in a movie submitted to the 2012 American Physical Society. The movie can be found here. In HD and LD. Yves Dubief University of Vermont School of Engineering top ↑.

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Computational and Modeling Research Group. A&M Dept.,. Prof Vincent E. Terrapon. Multiphysics and Turbulent Flow Computation Research Group (MTFC). Aeroelasticity and Experimental Aerodynamics Lab (AEA). Prof Gaëtan Kerschen. Space Structures and Systems Laboratory (S3L). Multiphysics and Turbulent Flow Computation Research Group (MTFC). A&M Dept. and VKI. Aeroelasticity and Experimental Aerodynamics Lab (AEA). Multiphysics and Turbulent Flow Computation Research Group (MTFC). Stanford University, USA.

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Multiscale Mechanics and Computational Engineering | Home

High Reynolds number channel flow with polymer additives. First high-Reynolds number simulation of polymer drag reduction. Based on bulk),. Based on viscous scales). These simulations enable us and our collaborators to further the understanding of the mechanisms of polymer drag reductions toward the derivation of predictive theory and models. Contours of fluctuations of pressure in a 2D natural convection flow with polymer additive. Elastic instabilities in 2D natural convection flow. Using molecular dyn...

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