Numerical study on three-dimensional CJ detonation waves interacting with isotropic turbulence
The three-dimensional structures of a cellular detonation wave interacting with different turbulent flows were investigated using a one-step irreversible Arrhenius kinetics model. High-resolution bandwidth-optimized WENO scheme of spatial discretization and total variation diminishing temporal integ...
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Veröffentlicht in: | Science bulletin (Beijing) 2016-11, Vol.61 (22), p.1756-1765 |
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description | The three-dimensional structures of a cellular detonation wave interacting with different turbulent flows were investigated using a one-step irreversible Arrhenius kinetics model. High-resolution bandwidth-optimized WENO scheme of spatial discretization and total variation diminishing temporal integration are used to solve the three dimensional chemically reactive Navier-Stokes equations. The turbulent vertical and entropic forcing effects on the three dimensional detonation wave structures and dynam- ics are analyzed, as well as the detonation effects on tur- bulent vortex structures. It has been found that the turbulence field imposed has created small scale wrinkles embedded in the detonation front, apart from the large scale features of detonation without turbulence. The deto- nation propagating velocity over the leading shock front varies from 0.8 to 1.6 times of CJ velocity and its proba- bility density function (pdf) skews towards sub-CJ velocity and peaks at about 0.9. The recorded detonation velocity always preferentially decays with time, with very rapid accelerations through triple point interactions. Its pdf also skews to sub-CJ velocity, while its overall shape agrees well with W3. The reaction zone is greatly influenced by the vortex, much more irregular and elongated for the turbulent cases. Distributed burning pockets are more likely to be found there. The turbulent kinetic energy is amplified across the detonation, and periodically oscillates downstream the detonation. The off-diagonal components of Reynolds stress also show a rapid rise across the deto- nation and present to be non-zero downstream of detona- tion. Vortex structures are compound results of the convected vortex and the generated vortex by the collision of triple points. The convection term and baroclinic gen- eration term in the transport equation of enstrophy are compared in detail. |
doi_str_mv | 10.1007/s11434-016-1196-6 |
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High-resolution bandwidth-optimized WENO scheme of spatial discretization and total variation diminishing temporal integration are used to solve the three dimensional chemically reactive Navier-Stokes equations. The turbulent vertical and entropic forcing effects on the three dimensional detonation wave structures and dynam- ics are analyzed, as well as the detonation effects on tur- bulent vortex structures. It has been found that the turbulence field imposed has created small scale wrinkles embedded in the detonation front, apart from the large scale features of detonation without turbulence. The deto- nation propagating velocity over the leading shock front varies from 0.8 to 1.6 times of CJ velocity and its proba- bility density function (pdf) skews towards sub-CJ velocity and peaks at about 0.9. The recorded detonation velocity always preferentially decays with time, with very rapid accelerations through triple point interactions. Its pdf also skews to sub-CJ velocity, while its overall shape agrees well with W3. The reaction zone is greatly influenced by the vortex, much more irregular and elongated for the turbulent cases. Distributed burning pockets are more likely to be found there. The turbulent kinetic energy is amplified across the detonation, and periodically oscillates downstream the detonation. The off-diagonal components of Reynolds stress also show a rapid rise across the deto- nation and present to be non-zero downstream of detona- tion. Vortex structures are compound results of the convected vortex and the generated vortex by the collision of triple points. The convection term and baroclinic gen- eration term in the transport equation of enstrophy are compared in detail.</description><identifier>ISSN: 2095-9273</identifier><identifier>EISSN: 2095-9281</identifier><identifier>DOI: 10.1007/s11434-016-1196-6</identifier><language>eng</language><publisher>Beijing: Elsevier B.V</publisher><subject>Air bags ; Burning ; Chemistry/Food Science ; CJ detonation ; Convection ; Detonation structure ; Direct numerical simulation ; Earth Sciences ; Engineering ; Humanities and Social Sciences ; Integration ; Kinetic energy ; Kinetics ; Life Sciences ; Mathematical models ; multidisciplinary ; Navier-Stokes equations ; Physics ; Science ; Science (multidisciplinary) ; Spatial distribution ; Turbulence ; Velocity ; Vortices</subject><ispartof>Science bulletin (Beijing), 2016-11, Vol.61 (22), p.1756-1765</ispartof><rights>2016 Science China Press</rights><rights>Science China Press and Springer-Verlag Berlin Heidelberg 2016</rights><rights>Copyright Springer Science & Business Media 2016</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c395t-cc815298ad1032e58387d126e2ee55d4437bdcdfb806b357402d3e212e0c9733</citedby><cites>FETCH-LOGICAL-c395t-cc815298ad1032e58387d126e2ee55d4437bdcdfb806b357402d3e212e0c9733</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Uhttp://image.cqvip.com/vip1000/qk/86894X/86894X.jpg</thumbnail><link.rule.ids>314,780,784,27923,27924</link.rule.ids></links><search><creatorcontrib>Jin, Tai</creatorcontrib><creatorcontrib>Luo, Kun</creatorcontrib><creatorcontrib>Dai, Qi</creatorcontrib><creatorcontrib>Fan, Jianren</creatorcontrib><title>Numerical study on three-dimensional CJ detonation waves interacting with isotropic turbulence</title><title>Science bulletin (Beijing)</title><addtitle>Sci. Bull</addtitle><addtitle>Chinese Science Bulletin</addtitle><description>The three-dimensional structures of a cellular detonation wave interacting with different turbulent flows were investigated using a one-step irreversible Arrhenius kinetics model. High-resolution bandwidth-optimized WENO scheme of spatial discretization and total variation diminishing temporal integration are used to solve the three dimensional chemically reactive Navier-Stokes equations. The turbulent vertical and entropic forcing effects on the three dimensional detonation wave structures and dynam- ics are analyzed, as well as the detonation effects on tur- bulent vortex structures. It has been found that the turbulence field imposed has created small scale wrinkles embedded in the detonation front, apart from the large scale features of detonation without turbulence. The deto- nation propagating velocity over the leading shock front varies from 0.8 to 1.6 times of CJ velocity and its proba- bility density function (pdf) skews towards sub-CJ velocity and peaks at about 0.9. The recorded detonation velocity always preferentially decays with time, with very rapid accelerations through triple point interactions. Its pdf also skews to sub-CJ velocity, while its overall shape agrees well with W3. The reaction zone is greatly influenced by the vortex, much more irregular and elongated for the turbulent cases. Distributed burning pockets are more likely to be found there. The turbulent kinetic energy is amplified across the detonation, and periodically oscillates downstream the detonation. The off-diagonal components of Reynolds stress also show a rapid rise across the deto- nation and present to be non-zero downstream of detona- tion. Vortex structures are compound results of the convected vortex and the generated vortex by the collision of triple points. The convection term and baroclinic gen- eration term in the transport equation of enstrophy are compared in detail.</description><subject>Air bags</subject><subject>Burning</subject><subject>Chemistry/Food Science</subject><subject>CJ detonation</subject><subject>Convection</subject><subject>Detonation structure</subject><subject>Direct numerical simulation</subject><subject>Earth Sciences</subject><subject>Engineering</subject><subject>Humanities and Social Sciences</subject><subject>Integration</subject><subject>Kinetic energy</subject><subject>Kinetics</subject><subject>Life Sciences</subject><subject>Mathematical models</subject><subject>multidisciplinary</subject><subject>Navier-Stokes equations</subject><subject>Physics</subject><subject>Science</subject><subject>Science (multidisciplinary)</subject><subject>Spatial distribution</subject><subject>Turbulence</subject><subject>Velocity</subject><subject>Vortices</subject><issn>2095-9273</issn><issn>2095-9281</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2016</creationdate><recordtype>article</recordtype><recordid>eNp9kE1PAyEQhjdGE03tD_BG9Lw6wO7CxpNp_IzRS8-SXZi2NO3SAtvGfy_NGuOpJ4bwPjPDk2VXFG4pgLgLlBa8yIFWOaV1lVcn2QWDusxrJunpXy34eTYOYQkAtKhZAeIi-_ro1-itblYkxN58E9eRuPCIubFr7IJ1XXqavBGDMZUx3cm-2WEgtovoGx1tNyd7GxfEBhe921hNYu_bfoWdxsvsbNasAo5_z1E2fXqcTl7y98_n18nDe655XcZca0lLVsvGUOAMS8mlMJRVyBDL0hQFF63RZtZKqFpeigKY4cgoQ9C14HyU3QxtN95tewxRLV3v0-ZBUSlBcs6ZTCk6pLR3IXicqY2368Z_KwrqIFINIlUSqQ4iVZUYNjAhZbs5-n-dj0D3A4TpyzuboKDtQYexHnVUxtmj9PXvmgvXzbdp6t-elQCRDAHwH4c4lNA</recordid><startdate>20161101</startdate><enddate>20161101</enddate><creator>Jin, Tai</creator><creator>Luo, Kun</creator><creator>Dai, Qi</creator><creator>Fan, Jianren</creator><general>Elsevier B.V</general><general>Science China Press</general><general>Springer Nature B.V</general><scope>2RA</scope><scope>92L</scope><scope>CQIGP</scope><scope>~WA</scope><scope>AAYXX</scope><scope>CITATION</scope></search><sort><creationdate>20161101</creationdate><title>Numerical study on three-dimensional CJ detonation waves interacting with isotropic turbulence</title><author>Jin, Tai ; Luo, Kun ; Dai, Qi ; Fan, Jianren</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c395t-cc815298ad1032e58387d126e2ee55d4437bdcdfb806b357402d3e212e0c9733</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2016</creationdate><topic>Air bags</topic><topic>Burning</topic><topic>Chemistry/Food Science</topic><topic>CJ detonation</topic><topic>Convection</topic><topic>Detonation structure</topic><topic>Direct numerical simulation</topic><topic>Earth Sciences</topic><topic>Engineering</topic><topic>Humanities and Social Sciences</topic><topic>Integration</topic><topic>Kinetic energy</topic><topic>Kinetics</topic><topic>Life Sciences</topic><topic>Mathematical models</topic><topic>multidisciplinary</topic><topic>Navier-Stokes equations</topic><topic>Physics</topic><topic>Science</topic><topic>Science (multidisciplinary)</topic><topic>Spatial distribution</topic><topic>Turbulence</topic><topic>Velocity</topic><topic>Vortices</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Jin, Tai</creatorcontrib><creatorcontrib>Luo, Kun</creatorcontrib><creatorcontrib>Dai, Qi</creatorcontrib><creatorcontrib>Fan, Jianren</creatorcontrib><collection>中文科技期刊数据库</collection><collection>中文科技期刊数据库-CALIS站点</collection><collection>中文科技期刊数据库-7.0平台</collection><collection>中文科技期刊数据库- 镜像站点</collection><collection>CrossRef</collection><jtitle>Science bulletin (Beijing)</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Jin, Tai</au><au>Luo, Kun</au><au>Dai, Qi</au><au>Fan, Jianren</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Numerical study on three-dimensional CJ detonation waves interacting with isotropic turbulence</atitle><jtitle>Science bulletin (Beijing)</jtitle><stitle>Sci. Bull</stitle><addtitle>Chinese Science Bulletin</addtitle><date>2016-11-01</date><risdate>2016</risdate><volume>61</volume><issue>22</issue><spage>1756</spage><epage>1765</epage><pages>1756-1765</pages><issn>2095-9273</issn><eissn>2095-9281</eissn><abstract>The three-dimensional structures of a cellular detonation wave interacting with different turbulent flows were investigated using a one-step irreversible Arrhenius kinetics model. High-resolution bandwidth-optimized WENO scheme of spatial discretization and total variation diminishing temporal integration are used to solve the three dimensional chemically reactive Navier-Stokes equations. The turbulent vertical and entropic forcing effects on the three dimensional detonation wave structures and dynam- ics are analyzed, as well as the detonation effects on tur- bulent vortex structures. It has been found that the turbulence field imposed has created small scale wrinkles embedded in the detonation front, apart from the large scale features of detonation without turbulence. The deto- nation propagating velocity over the leading shock front varies from 0.8 to 1.6 times of CJ velocity and its proba- bility density function (pdf) skews towards sub-CJ velocity and peaks at about 0.9. The recorded detonation velocity always preferentially decays with time, with very rapid accelerations through triple point interactions. Its pdf also skews to sub-CJ velocity, while its overall shape agrees well with W3. The reaction zone is greatly influenced by the vortex, much more irregular and elongated for the turbulent cases. Distributed burning pockets are more likely to be found there. The turbulent kinetic energy is amplified across the detonation, and periodically oscillates downstream the detonation. The off-diagonal components of Reynolds stress also show a rapid rise across the deto- nation and present to be non-zero downstream of detona- tion. Vortex structures are compound results of the convected vortex and the generated vortex by the collision of triple points. The convection term and baroclinic gen- eration term in the transport equation of enstrophy are compared in detail.</abstract><cop>Beijing</cop><pub>Elsevier B.V</pub><doi>10.1007/s11434-016-1196-6</doi><tpages>10</tpages></addata></record> |
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subjects | Air bags Burning Chemistry/Food Science CJ detonation Convection Detonation structure Direct numerical simulation Earth Sciences Engineering Humanities and Social Sciences Integration Kinetic energy Kinetics Life Sciences Mathematical models multidisciplinary Navier-Stokes equations Physics Science Science (multidisciplinary) Spatial distribution Turbulence Velocity Vortices |
title | Numerical study on three-dimensional CJ detonation waves interacting with isotropic turbulence |
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