Influence of Aluminum Passivation on the Reaction Mechanism: Flame Propagation Studies
dc.contributor.author | Dikici, Birce | |
dc.contributor.author | Dean, Steven | |
dc.contributor.author | Pantoya, Michelle | |
dc.contributor.author | Levitas, Valery | |
dc.contributor.author | Jouet, R. | |
dc.contributor.department | Department of Aerospace Engineering | |
dc.date | 2018-02-16T15:11:05.000 | |
dc.date.accessioned | 2020-06-29T22:46:01Z | |
dc.date.available | 2020-06-29T22:46:01Z | |
dc.date.copyright | Thu Jan 01 00:00:00 UTC 2009 | |
dc.date.issued | 2009-01-01 | |
dc.description.abstract | <p>Currently, two main known mechanisms of aluminum (Al) nanoparticle reaction are discussed in the literature, namely those based on diffusion through an oxide shell and melt-dispersion. The two mechanisms lead to opposite predictions in nanoparticle design. The diffusion mechanism suggests that the reduction or complete elimination of the oxide shell will increase Al reactivity, whereas the meltdispersion mechanism suggests an increase in initial oxide thickness up to an optimal value. The goal of this study is to perform critical experiments in a confined flame tube apparatus to compare these two predictions. Specifically, the flame propagation rates of perfluoroalkyl carboxylic acid (C 13F27COOH)-treated Al nanoparticles with and without an alumina shell were measured. Results show that when there is no alumina passivation shell encasing the Al core, the flame rate decreases by a factor of 22-95 and peak pressure deceases by 3 orders of magnitude, in comparison with the Al particles with an oxide shell. These results imply that the melt-dispersion reaction mechanism is responsible for high flame propagation rates observed in these confined tube experiments.</p> | |
dc.description.comments | <p>Reprinted (adapted) with permission from <em>Energy and Fuels</em> 23 (2009): 4231, doi: <a href="http://dx.doi.org/10.1021/ef801116x" target="_blank">10.1021/ef801116x</a>. Copyright 2009 American Chemical Society.</p> | |
dc.format.mimetype | application/pdf | |
dc.identifier | archive/lib.dr.iastate.edu/aere_pubs/49/ | |
dc.identifier.articleid | 1050 | |
dc.identifier.contextkey | 7245546 | |
dc.identifier.s3bucket | isulib-bepress-aws-west | |
dc.identifier.submissionpath | aere_pubs/49 | |
dc.identifier.uri | https://dr.lib.iastate.edu/handle/20.500.12876/2049 | |
dc.language.iso | en | |
dc.source.bitstream | archive/lib.dr.iastate.edu/aere_pubs/49/0-2009_LevitasVI_InfluenceAluminumPassivation.html|||Sat Jan 15 00:29:19 UTC 2022 | |
dc.source.bitstream | archive/lib.dr.iastate.edu/aere_pubs/49/2009_LevitasVI_InfluenceAluminumPassivation.pdf|||Sat Jan 15 00:29:20 UTC 2022 | |
dc.source.uri | 10.1021/ef801116x | |
dc.subject.disciplines | Aerospace Engineering | |
dc.subject.disciplines | Materials Science and Engineering | |
dc.subject.disciplines | Mechanical Engineering | |
dc.subject.keywords | Al-nanoparticles | |
dc.subject.keywords | critical experiment | |
dc.subject.keywords | diffusion mechanisms | |
dc.subject.keywords | flame propagation | |
dc.subject.keywords | flame propagation rate | |
dc.subject.keywords | flame tube | |
dc.subject.keywords | optimal values | |
dc.subject.keywords | oxide shell | |
dc.subject.keywords | oxide thickness | |
dc.subject.keywords | peak pressure | |
dc.subject.keywords | mechanical engineering | |
dc.subject.keywords | material science and engineering | |
dc.title | Influence of Aluminum Passivation on the Reaction Mechanism: Flame Propagation Studies | |
dc.type | article | |
dc.type.genre | article | |
dspace.entity.type | Publication | |
relation.isAuthorOfPublication | 850871e3-115a-428e-82cc-cbfafef5cf66 | |
relation.isOrgUnitOfPublication | 047b23ca-7bd7-4194-b084-c4181d33d95d |
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