| Application of CE/SE method to gas-particle two-phase detonations under an Eulerian-Lagrangian framework |
| Zhang ZJ(张子健); Wen CY; Liu YF(刘云峰); Zhang DL(张德良) ; Jiang ZL(姜宗林)
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Source Publication | JOURNAL OF COMPUTATIONAL PHYSICS
(IF:2.845[JCR-2018],3.321[5-Year]) |
| 2019-10-01
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Volume | 394Pages:18-40 |
ISSN | 0021-9991
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Abstract | This study aims to extend the original Eulerian space-time conservation element and solution element (CE/SE) method to the Eulerian-Lagrangian framework to solve the gas-particle two-phase detonation problems. The gas-aluminum particle two-phase detonations are numerically investigated by the developed Eulerian-Lagrangian code, in which the gas-phase compressible Euler equations are solved by our in-house CE/SE scheme based on quadrilateral meshes. Additionally, the particle-phase Lagrangian equations, together with the stiff source terms of interphase interactions and chemical reactions, are explicitly integrated via the operator-splitting technique. A dynamic data structure is introduced to store particle information to overcome the tremendous communication costs when applying message passing interface parallel to the Eulerian-Lagrangian framework. The code is shown to be of better parallel efficiency in moderate-scale computations than that uses static arrays. Comparisons with previous one-dimensional and two-dimensional simulation results and experimental observations are conducted to demonstrate the accuracy and reliability of the developed Eulerian-Lagrangian CE/SE code in gas-particle two-phase detonation simulations. Moreover, the code is also applied to simulate polydisperse gas-particle detonations which is close to a realistic scenario, and significant differences in detonation characteristics are found when compared with the monodisperse counterparts. The great demands of using the Eulerian-Lagrangian method to obtain more physics-consistent gas-particle detonation results are addressed, which the traditional Eulerian-Eulerian simulations fail to observe. (C) 2019 Elsevier Inc. All rights reserved. |
Keyword | Two-phase detonation
CE/SE
Eulerian-Lagrangian
MPI
Aluminum-air detonation
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DOI | 10.1016/j.jcp.2019.05.025
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Indexed By | SCI
; EI
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Language | 英语
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WOS ID | WOS:000478572700002
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WOS Keyword | TIME CONSERVATION ELEMENT
; ALUMINUM PARTICLES
; NUMERICAL-SIMULATION
; HETEROGENEOUS DETONATION
; AIR DETONATION
; NONEQUILIBRIUM
; COMBUSTION
; SCHEME
; MIXTURES
; FLOWS
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WOS Research Area | Computer Science
; Physics
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WOS Subject | Computer Science, Interdisciplinary Applications
; Physics, Mathematical
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Funding Project | National Natural Science Foundation of China[11672312]
; National Natural Science Foundation of China[11772284]
; National Natural Science Foundation of China[11532014]
; Research Grants Council, University Grants Committee, Hong Kong[152151/16E]
; Department of Mechanical Engineering, The Hong Kong Polytechnic University[G-YBYJ]
; State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology[KFJJ18-12M]
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Funding Organization | National Natural Science Foundation of China
; Research Grants Council, University Grants Committee, Hong Kong
; Department of Mechanical Engineering, The Hong Kong Polytechnic University
; State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology
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Classification | 一类/力学重要期刊
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Ranking | 1
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Contributor | Liu, Yunfeng
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Citation statistics |
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Document Type | 期刊论文
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Identifier | http://dspace.imech.ac.cn/handle/311007/79458
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Collection | 高温气体动力学国家重点实验室
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Recommended Citation GB/T 7714 |
Zhang ZJ,Wen CY,Liu YF,et al. Application of CE/SE method to gas-particle two-phase detonations under an Eulerian-Lagrangian framework[J]. JOURNAL OF COMPUTATIONAL PHYSICS,2019,394:18-40.Rp_Au:Liu, Yunfeng
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APA |
Zhang ZJ,Wen CY,Liu YF,Zhang DL,&Jiang ZL.(2019).Application of CE/SE method to gas-particle two-phase detonations under an Eulerian-Lagrangian framework.JOURNAL OF COMPUTATIONAL PHYSICS,394,18-40.
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MLA |
Zhang ZJ,et al."Application of CE/SE method to gas-particle two-phase detonations under an Eulerian-Lagrangian framework".JOURNAL OF COMPUTATIONAL PHYSICS 394(2019):18-40.
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