Efficient time-stepping techniques for simulating turbulent reactive flows with stiff chemistry
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Publication:2696495
DOI10.1016/j.cpc.2019.04.016OpenAlexW2945641266WikidataQ109322579 ScholiaQ109322579MaRDI QIDQ2696495
Publication date: 14 April 2023
Published in: Computer Physics Communications (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.cpc.2019.04.016
Related Items (3)
HTR solver: an open-source exascale-oriented task-based multi-GPU high-order code for hypersonic aerothermodynamics ⋮ Highly-scalable GPU-accelerated compressible reacting flow solver for modeling high-speed flows ⋮ SOMAFOAM: an OpenFOAM based solver for continuum simulations of low-temperature plasmas
Uses Software
Cites Work
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- Handbook of numerical methods for hyperbolic problems. Basic and fundamental issues
- Dynamic adaptive chemistry with operator splitting schemes for reactive flow simulations
- A computationally-efficient, semi-implicit, iterative method for the time-integration of reacting flows with stiff chemistry
- Numerical experiments on the accuracy of ENO and modified ENO schemes
- Computationally efficient implementation of combustion chemistry in parallel PDF calculations
- Generalized Runge-Kutta methods of order four with stepsize control for stiff ordinary differential equations
- An approximation algorithm for the generalized assignment problem
- ROWMAP -- a ROW-code with Krylov techniques for large stiff ODEs
- Jacobian-free Newton-Krylov methods: a survey of approaches and applications.
- Semi-implicit iterative methods for low Mach number turbulent reacting flows: operator splitting versus approximate factorization
- A semi-implicit numerical scheme for reacting flow. II: Stiff, operator-split formulation
- Matrix-free \(W\)-methods using a multiple Arnoldi iteration
- Efficient implementation of weighted ENO schemes
- Stability criteria for hybrid difference methods
- Strong Stability-Preserving High-Order Time Discretization Methods
- Rosenbrock--Krylov Methods for Large Systems of Differential Equations
- The MATLAB ODE Suite
- An Attempt to Avoid Exact Jacobian and Nonlinear Equations in the Numerical Solution of Stiff Differential Equations
- Diagonally Implicit Runge–Kutta Methods for Stiff O.D.E.’s
- Control theoretic techniques for stepsize selection in explicit Runge-Kutta methods
- Assessment of the constant non-unity Lewis number assumption in chemically-reacting flows
- Analysis of Operator Splitting in the Nonasymptotic Regime for Nonlinear Reaction-Diffusion Equations. Application to the Dynamics of Premixed Flames
- Balanced Splitting and Rebalanced Splitting
- Geometric Numerical Integration
- The load rebalancing problem
- Some application of splitting-up methods to the solution of mathematical physics problems
- On the Construction and Comparison of Difference Schemes
- The automatic integration of ordinary differential equations
- Operator-splitting with ISAT to model reacting flow with detailed chemistry
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