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dc.contributor.authorMücklich, F.de
dc.contributor.authorWoll, K.en
dc.contributor.authorGunduz, I. E.en
dc.contributor.authorPauly, C.en
dc.contributor.authorDoumanidis, C. C.en
dc.contributor.authorSon, S. F.en
dc.contributor.authorRebholz, Clausen
dc.creatorMücklich, F.de
dc.creatorWoll, K.en
dc.creatorGunduz, I. E.en
dc.creatorPauly, C.en
dc.creatorDoumanidis, C. C.en
dc.creatorSon, S. F.en
dc.creatorRebholz, Clausen
dc.date.accessioned2019-05-06T12:24:49Z
dc.date.available2019-05-06T12:24:49Z
dc.date.issued2015
dc.identifier.urihttp://gnosis.library.ucy.ac.cy/handle/7/48935
dc.description.abstractThe Ru/Al system integrates high energy density and high product ductility and serves as an alternative for utilization as nanoscale reactive multilayer. We present a modeling study that relates the Ru-Al phase transformations occurring during self-propagating reactions with macroscopic reaction parameters such as net front velocity and reaction temperature. We coupled equations for mass and thermal transport and used a numerical scheme to solve the differential equations. We calculated the temporal evolution of the temperature distribution in the reaction front as a function of the multilayer bilayer thickness. The calculated net velocities were between 4.2 m/s and 10.8 m/s, and maximal reaction temperatures were up to 2171 K, in good agreement with measured data. Interfacial premixing, estimated to be around 4 nm, had a large influence on reaction velocities and temperature at smaller bilayer thicknesses. Finally, the theoretical results of the present study help to explain the experimental findings and guide tailoring of reactive properties of Ru/Al multilayers for applications. ABSTRACT FROM AUTHOR]en
dc.description.abstractCopyright of Applied Physics Letters is the property of American Institute of Physics and its content may not be copied or emailed to multiple sites or posted to a listserv without the copyright holder's express written permission. However, users may print, download, or email articles for individual use. This abstract may be abridged. No warranty is given about the accuracy of the copy. Users should refer to the original published version of the material for the full abstract. (Copyright applies to all Abstracts.)en
dc.sourceApplied Physics Lettersen
dc.subjectHeat transferen
dc.subjectMass transferen
dc.subjectChemical reactionsen
dc.subjectEnergy densityen
dc.subjectTemperature distributionen
dc.titleNumerical modeling of self-propagating reactions in Ru/Al nanoscale multilayer foilsen
dc.typeinfo:eu-repo/semantics/article
dc.identifier.doi10.1063/1.4928665
dc.description.volume107
dc.description.startingpage73103
dc.description.endingpage073101;
dc.author.facultyΠολυτεχνική Σχολή / Faculty of Engineering
dc.author.departmentΤμήμα Μηχανικών Μηχανολογίας και Κατασκευαστικής / Department of Mechanical and Manufacturing Engineering
dc.type.uhtypeArticleen
dc.description.totalnumpages073103-073101; 073103-5


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