Uncertainty Quantification and Flow Dynamics in Rotating Detonation Engines

Fuente: arXiv
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Autori principali: Kumar, Vinay, Gou, Zheming, Ghanem, Roger
Natura: Preprint
Pubblicazione: 2025
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author Kumar, Vinay
Gou, Zheming
Ghanem, Roger
author_facet Kumar, Vinay
Gou, Zheming
Ghanem, Roger
contents Rotating detonation engines (RDEs) are a critical technology for advancing combustion engines, particularly in applications requiring high efficiency and performance. Understanding the supersonic detonation structure and how various parameters influence these phenomena is essential for optimizing RDE design. In this study, we perform detailed simulations of detonations in an RDE and analyze how the flow patterns are affected by key parameters associated with the droplet arrangement within the engine. To further explore the system's sensitivity, we apply polynomial chaos expansion to investigate the propagation of uncertainties from input parameters to quantities of interest (QOIs). Additionally, we develop a framework to accurately characterize the joint distributions of QOIs with a limited number of simulations. Our findings indicate that the strategic release of droplets may be crucial for sustaining continuous detonation waves in the engine, and accurate representations of the solution (e..g via high-order chaos expansions) are essential to accurately capture the dependence between QOIs and input uncertainties. These insights provide a quantitative foundation for further optimization of RDE designs.
format Preprint
id arxiv_https___arxiv_org_abs_2505_02378
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Uncertainty Quantification and Flow Dynamics in Rotating Detonation Engines
Kumar, Vinay
Gou, Zheming
Ghanem, Roger
Fluid Dynamics
Rotating detonation engines (RDEs) are a critical technology for advancing combustion engines, particularly in applications requiring high efficiency and performance. Understanding the supersonic detonation structure and how various parameters influence these phenomena is essential for optimizing RDE design. In this study, we perform detailed simulations of detonations in an RDE and analyze how the flow patterns are affected by key parameters associated with the droplet arrangement within the engine. To further explore the system's sensitivity, we apply polynomial chaos expansion to investigate the propagation of uncertainties from input parameters to quantities of interest (QOIs). Additionally, we develop a framework to accurately characterize the joint distributions of QOIs with a limited number of simulations. Our findings indicate that the strategic release of droplets may be crucial for sustaining continuous detonation waves in the engine, and accurate representations of the solution (e..g via high-order chaos expansions) are essential to accurately capture the dependence between QOIs and input uncertainties. These insights provide a quantitative foundation for further optimization of RDE designs.
title Uncertainty Quantification and Flow Dynamics in Rotating Detonation Engines
topic Fluid Dynamics
url https://arxiv.org/abs/2505.02378