Difference between revisions of "User:Yd"

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My main research interests deal with multi-scale coupled dynamics, numerical modeling and scientific computing (HPC).  
 
My main research interests deal with multi-scale coupled dynamics, numerical modeling and scientific computing (HPC).  
  
In the combustion field, applications used to deal with combustive flows & thermoelectric conversion at the small scale, flame/wall interaction, expanding wrinkled flames, flame-balls & ignition kernels analysis, flame/acoustics interaction, percolation modeling for front propagation, stratified combustion modeling in engines.  
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In the combustion field, applications used to deal with [http://www.coria-cfd.fr/index.php/User:Dangelo combustive flows] & thermoelectric conversion at the small scale, flame/wall interaction, expanding wrinkled flames, flame-balls & ignition kernels analysis, flame/acoustics interaction, percolation modeling for front propagation, stratified combustion modeling in engines.  
  
 
More recent applications concern buoyant thermal destabilization in wet granular media and non-Newtonian flows (with Institut de Physique de Nice), biological dynamic expanding networks (see the DENA project below), thermodynamics of metabolic energy conversion under muscle load, ecological economics (with AFD), and also very recently nano-thermoplasmonics with INRIA Nachos.
 
More recent applications concern buoyant thermal destabilization in wet granular media and non-Newtonian flows (with Institut de Physique de Nice), biological dynamic expanding networks (see the DENA project below), thermodynamics of metabolic energy conversion under muscle load, ecological economics (with AFD), and also very recently nano-thermoplasmonics with INRIA Nachos.

Revision as of 17:59, 15 April 2018

Yves D'Angelo



Since September 2016, I am Full Professor of Applied Mathematics & Mechanics at the Université de Nice Sophia Antipolis and Researcher at Laboratoire de Mathématiques & Interactions J.A. Dieudonné CNRS UMR 7351, in the Fluid Dynamics & Scientific Computing Group.

Of course, I am also actively involved in the DyCo Team - Laboratoire Interdisciplinaire des Energies de Demain (LIED) CNRS UMR 8236, in Paris.

From 2005 to 2016, I was Professor in the Energy & Propulsion Department, French Institute for Applied Sciences (INSA/CORIA), Rouen, France, and Researcher at CORIA Lab.

Research Interests

My main research interests deal with multi-scale coupled dynamics, numerical modeling and scientific computing (HPC).

In the combustion field, applications used to deal with combustive flows & thermoelectric conversion at the small scale, flame/wall interaction, expanding wrinkled flames, flame-balls & ignition kernels analysis, flame/acoustics interaction, percolation modeling for front propagation, stratified combustion modeling in engines.

More recent applications concern buoyant thermal destabilization in wet granular media and non-Newtonian flows (with Institut de Physique de Nice), biological dynamic expanding networks (see the DENA project below), thermodynamics of metabolic energy conversion under muscle load, ecological economics (with AFD), and also very recently nano-thermoplasmonics with INRIA Nachos.

At LIED and LJAD Labs , present applications deal with

Lab Address


Numerical Modeling & Fluid Dynamics Group
Laboratoire Mathématiques & Interactions J.A. Dieudonné
Université de Nice Sophia Antipolis CNRS UMR 7351
Parc Valrose 06108 NICE CEDEX, France
ydangelo@unice.fr

DyCo Team
LIED/Laboratoire Interdisciplinaire des Energies de Demain
UMR 8236, Université Paris Diderot, Bât. Lamarck B 35 rue Hélène Brion 75013 Paris FRANCE.
yves.dangelo@univ-paris-diderot.fr ; yd@dyco.fr

Solvers

My team and I are developping the following solvers:

  • DYCO, for simulating coupled potentials stock/flow approach network dynamics and application to thermo-electricity, biology, economics.
  • HALLEGRO for solving fully compressible subsonic reactive Navier-Stokes equations (HPC using MPI).
  • FLAMEX for solving asymptotics-based evolution equations, in particular propagating fronts through turbulent 2D and 3D flows (spectral/ETDRK methods for Sivashinsky-type non-linear non-local equations).

We now also make use of adapted versions of the OpenFOAM® software.

International & Industrial Collaborations

International Collaborations
Politecnico Milano, Italy; CUED Cambridge University Engineering Department, UK ; Chair of Fluid Mechanics, TU Berlin, Germany; LTH, Lund University of Technology, Sweden: Dept. of Aircraft Technology, Institute of Nanoscience and Nanotechnology, Greece; University of Valencia, Spain; Queensland University of Technology, Australia.

Industrial Collaborations
Renault, IFPEN, ONERA, HBOB Grenoble, ST MicroElectronics Tours, BioPolis Spain.

External Links

and also the