The TSTC project is a multi-university collaborative effort to develop a high-fidelity turbulent reacting flow simulation capability utilizing terascale, massively parallel computer technology. The main paradigm of our approach is direct numerical simulation (DNS) featuring highest temporal and spatial accuracy, allowing quantitative observations of the fine-scale physics found in turbulent reacting flows as well as providing a useful tool for development of sub-models needed in device-level simulations. The code named S3D, developed and shared with Chen and coworkers at Sandia National Laboratories, has been enhanced with new numerical algorithms and physical models to provide predictive capabilities for spray dynamics, combustion, and pol...
This paper provides an overview of recent progress in our development of highfidelity simulation of ...
The current thesis presents a numerical study of steady and unsteady turbulent reacting flows. The ...
Understanding turbulence is one of the most difficult topics in science and engineering. This is bec...
The TSTC project is a multi-university collaborative effort to develop a high-fidelity turbulent rea...
Computational science is paramount to the understanding of underlying processes in internal combusti...
This paper presents our recent progress in terascale three-dimensional simulations of turbulent nonp...
Direct numerical simulation (DNS) is a productive research tool in combustion science used to provid...
Understanding and modeling of turbulent combustion are key problems in the computation of numerous p...
With the increase in computational power in the last decade and the forthcoming Exascale supercomput...
Direct numerical simulation (DNS) is powerful for revealing turbulent combustion processes since it ...
The simulation of turbulent combustion systems is a vital tool in the design and development of new ...
To meet future climate goals, the efficiency of combustion devices has to be increased. This require...
Abstract: For high-fidelity numerical simulations of reacting flows supposed to solve compressible N...
The goal of the present doctoral thesis was to develop a turbulence-chemistry interaction model for ...
The main objective of this research was to develop an efficient three-dimensional computer code for ...
This paper provides an overview of recent progress in our development of highfidelity simulation of ...
The current thesis presents a numerical study of steady and unsteady turbulent reacting flows. The ...
Understanding turbulence is one of the most difficult topics in science and engineering. This is bec...
The TSTC project is a multi-university collaborative effort to develop a high-fidelity turbulent rea...
Computational science is paramount to the understanding of underlying processes in internal combusti...
This paper presents our recent progress in terascale three-dimensional simulations of turbulent nonp...
Direct numerical simulation (DNS) is a productive research tool in combustion science used to provid...
Understanding and modeling of turbulent combustion are key problems in the computation of numerous p...
With the increase in computational power in the last decade and the forthcoming Exascale supercomput...
Direct numerical simulation (DNS) is powerful for revealing turbulent combustion processes since it ...
The simulation of turbulent combustion systems is a vital tool in the design and development of new ...
To meet future climate goals, the efficiency of combustion devices has to be increased. This require...
Abstract: For high-fidelity numerical simulations of reacting flows supposed to solve compressible N...
The goal of the present doctoral thesis was to develop a turbulence-chemistry interaction model for ...
The main objective of this research was to develop an efficient three-dimensional computer code for ...
This paper provides an overview of recent progress in our development of highfidelity simulation of ...
The current thesis presents a numerical study of steady and unsteady turbulent reacting flows. The ...
Understanding turbulence is one of the most difficult topics in science and engineering. This is bec...