Numerical simulations of cellular detonation diffraction in a stable gaseous mixture

In this paper, the diffraction phenomenon of gaseous cellular detonations emerging from a confined tube into a sudden open space is simulated using the reactive Euler equations with a two-step Arrhenius chemistry model. Both two-dimensional and axisymmetric configurations are used for modeling cylin...

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Main Authors: Jian Li, Jianguo Ning, Charles B. Kiyanda, Hoi Dick Ng
Format: Article
Language:English
Published: Elsevier 2016-09-01
Series:Propulsion and Power Research
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2212540X16300232
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spelling doaj-1665042a17e649b2809e6317483766f52020-11-24T20:59:04ZengElsevierPropulsion and Power Research2212-540X2016-09-015317718310.1016/j.jppr.2016.07.004Numerical simulations of cellular detonation diffraction in a stable gaseous mixtureJian Li0Jianguo Ning1Charles B. Kiyanda2Hoi Dick Ng3State Key Laboratory of Explosion Science & Technology, Beijing Institute of Technology, Beijing 100081, ChinaState Key Laboratory of Explosion Science & Technology, Beijing Institute of Technology, Beijing 100081, ChinaDepartment of Mechanical and Industrial Engineering, Concordia University, Montréal, QC, H3G 1M8, CanadaDepartment of Mechanical and Industrial Engineering, Concordia University, Montréal, QC, H3G 1M8, CanadaIn this paper, the diffraction phenomenon of gaseous cellular detonations emerging from a confined tube into a sudden open space is simulated using the reactive Euler equations with a two-step Arrhenius chemistry model. Both two-dimensional and axisymmetric configurations are used for modeling cylindrical and spherical expansions, respectively. The chemical parameters are chosen for a stable gaseous explosive mixture in which the cellular detonation structure is highly regular. Adaptive mesh refinement (AMR) is used to resolve the detonation wave structure and its evolution during the transmission. The numerical results show that the critical channel width and critical diameter over the detonation cell size are about 13±1 and 25±1, respectively. These numerical findings are comparable with the experimental observation and confirm again that the critical channel width and critical diameter differ essentially by a factor close to 2, equal to the geometrical scaling based on front curvature theory. Unlike unstable mixtures where instabilities manifested in the detonation front structure play a significant role during the transmission, the present numerical results and the observed geometrical scaling provide again evidence that the failure of detonation diffraction in stable mixtures with a regular detonation cellular pattern is dominantly caused by the global curvature due to the wave divergence resulting in the global decoupling of the reaction zone with the expanding shock front.http://www.sciencedirect.com/science/article/pii/S2212540X16300232DetonationsDiffractionPulse detonation engineStable mixtureAdaptive mesh refinement (AMR)
collection DOAJ
language English
format Article
sources DOAJ
author Jian Li
Jianguo Ning
Charles B. Kiyanda
Hoi Dick Ng
spellingShingle Jian Li
Jianguo Ning
Charles B. Kiyanda
Hoi Dick Ng
Numerical simulations of cellular detonation diffraction in a stable gaseous mixture
Propulsion and Power Research
Detonations
Diffraction
Pulse detonation engine
Stable mixture
Adaptive mesh refinement (AMR)
author_facet Jian Li
Jianguo Ning
Charles B. Kiyanda
Hoi Dick Ng
author_sort Jian Li
title Numerical simulations of cellular detonation diffraction in a stable gaseous mixture
title_short Numerical simulations of cellular detonation diffraction in a stable gaseous mixture
title_full Numerical simulations of cellular detonation diffraction in a stable gaseous mixture
title_fullStr Numerical simulations of cellular detonation diffraction in a stable gaseous mixture
title_full_unstemmed Numerical simulations of cellular detonation diffraction in a stable gaseous mixture
title_sort numerical simulations of cellular detonation diffraction in a stable gaseous mixture
publisher Elsevier
series Propulsion and Power Research
issn 2212-540X
publishDate 2016-09-01
description In this paper, the diffraction phenomenon of gaseous cellular detonations emerging from a confined tube into a sudden open space is simulated using the reactive Euler equations with a two-step Arrhenius chemistry model. Both two-dimensional and axisymmetric configurations are used for modeling cylindrical and spherical expansions, respectively. The chemical parameters are chosen for a stable gaseous explosive mixture in which the cellular detonation structure is highly regular. Adaptive mesh refinement (AMR) is used to resolve the detonation wave structure and its evolution during the transmission. The numerical results show that the critical channel width and critical diameter over the detonation cell size are about 13±1 and 25±1, respectively. These numerical findings are comparable with the experimental observation and confirm again that the critical channel width and critical diameter differ essentially by a factor close to 2, equal to the geometrical scaling based on front curvature theory. Unlike unstable mixtures where instabilities manifested in the detonation front structure play a significant role during the transmission, the present numerical results and the observed geometrical scaling provide again evidence that the failure of detonation diffraction in stable mixtures with a regular detonation cellular pattern is dominantly caused by the global curvature due to the wave divergence resulting in the global decoupling of the reaction zone with the expanding shock front.
topic Detonations
Diffraction
Pulse detonation engine
Stable mixture
Adaptive mesh refinement (AMR)
url http://www.sciencedirect.com/science/article/pii/S2212540X16300232
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