An AMReX-based Compressible Reacting Flow Solver for High-speed Reacting Flows relevant to Hypersonic Propulsion

Fuente: arXiv
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Hauptverfasser: Sharma, Shivank, Bielawski, Ral, Gibson, Oliver, Zhang, Shuzhi, Sharma, Vansh, Rauch, Andreas H., Singh, Jagmohan, Abisleiman, Sebastian, Ullman, Michael, Barwey, Shivam, Raman, Venkat
Format: Preprint
Veröffentlicht: 2024
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author Sharma, Shivank
Bielawski, Ral
Gibson, Oliver
Zhang, Shuzhi
Sharma, Vansh
Rauch, Andreas H.
Singh, Jagmohan
Abisleiman, Sebastian
Ullman, Michael
Barwey, Shivam
Raman, Venkat
author_facet Sharma, Shivank
Bielawski, Ral
Gibson, Oliver
Zhang, Shuzhi
Sharma, Vansh
Rauch, Andreas H.
Singh, Jagmohan
Abisleiman, Sebastian
Ullman, Michael
Barwey, Shivam
Raman, Venkat
contents This work presents a comprehensive framework for the efficient implementation of finite-volume-based reacting flow solvers, specifically tailored for high speed propulsion applications. Using the exascale computing project (ECP) based AMReX framework, a compressible flow solver for handling high-speed reacting flows is developed. This work is complementary to the existing PeleC solver, emphasizing specific applications that include confined shock-containing flows, stationary and moving shocks and detonations. The framework begins with a detailed exposition of the numerical methods employed, emphasizing their application to complex geometries and their effectiveness in ensuring accurate and stable numerical simulations. Subsequently, an in-depth analysis evaluates the solver's performance across canonical and practical geometries, with particular focus on computational cost and efficiency. The solver's scalability and robustness are demonstrated through practical test cases, including flow path simulations of scramjet engines and detailed analysis of various detonation phenomena.
format Preprint
id arxiv_https___arxiv_org_abs_2412_00900
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle An AMReX-based Compressible Reacting Flow Solver for High-speed Reacting Flows relevant to Hypersonic Propulsion
Sharma, Shivank
Bielawski, Ral
Gibson, Oliver
Zhang, Shuzhi
Sharma, Vansh
Rauch, Andreas H.
Singh, Jagmohan
Abisleiman, Sebastian
Ullman, Michael
Barwey, Shivam
Raman, Venkat
Fluid Dynamics
This work presents a comprehensive framework for the efficient implementation of finite-volume-based reacting flow solvers, specifically tailored for high speed propulsion applications. Using the exascale computing project (ECP) based AMReX framework, a compressible flow solver for handling high-speed reacting flows is developed. This work is complementary to the existing PeleC solver, emphasizing specific applications that include confined shock-containing flows, stationary and moving shocks and detonations. The framework begins with a detailed exposition of the numerical methods employed, emphasizing their application to complex geometries and their effectiveness in ensuring accurate and stable numerical simulations. Subsequently, an in-depth analysis evaluates the solver's performance across canonical and practical geometries, with particular focus on computational cost and efficiency. The solver's scalability and robustness are demonstrated through practical test cases, including flow path simulations of scramjet engines and detailed analysis of various detonation phenomena.
title An AMReX-based Compressible Reacting Flow Solver for High-speed Reacting Flows relevant to Hypersonic Propulsion
topic Fluid Dynamics
url https://arxiv.org/abs/2412.00900