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dc.contributor.authorVadon, Mathieu
dc.contributor.authorSortland, Øyvind Sunde
dc.contributor.authorNuta, Ioana
dc.contributor.authorChatillon, Christian
dc.contributor.authorTangstad, Merete
dc.contributor.authorChichignoud, Guy
dc.contributor.authorDelannoy, Yves
dc.date.accessioned2018-09-20T08:28:18Z
dc.date.available2018-09-20T08:28:18Z
dc.date.created2018-09-12T09:44:25Z
dc.date.issued2018
dc.identifier.citationMetallurgical and materials transactions. B, process metallurgy and materials processing science. 2018, 49 (3), 1288-1301.nb_NO
dc.identifier.issn1073-5615
dc.identifier.urihttp://hdl.handle.net/11250/2563563
dc.description.abstractThe present study focuses on a specific step of the metallurgical path of purification to provide solar-grade silicon: the removal of boron through the injection of H2O(g)-H2(g)-Ar(g) (cold gas process) or of Ar-H2-O2 plasma (plasma process) on stirred liquid silicon. We propose a way to predict silicon and boron flows from the liquid silicon surface by using a CFD model (©Ansys Fluent) combined with some results on one-dimensional diffusive-reactive models to consider the formation of silica aerosols in a layer above the liquid silicon. The comparison of the model with experimental results on cold gas processes provided satisfying results for cases with low and high concentrations of oxidants. This confirms that the choices of thermodynamic data of HBO(g) and the activity coefficient of boron in liquid silicon are suitable and that the hypotheses regarding similar diffusion mechanisms at the surface for HBO(g) and SiO(g) are appropriate. The reasons for similar diffusion mechanisms need further enquiry. We also studied the effect of pressure and geometric variations in the cold gas process. For some cases with high injection flows, the model slightly overestimates the boron extraction rate, and the overestimation increases with increasing injection flow. A single plasma experiment from SIMaP (France) was modeled, and the model results fit the experimental data on purification if we suppose that aerosols form, but it is not enough to draw conclusions about the formation of aerosols for plasma experiments.nb_NO
dc.language.isoengnb_NO
dc.publisherSpringer Verlagnb_NO
dc.titleCFD Modeling of boron removal from liquid silicon with cold gases and plasmanb_NO
dc.typeJournal articlenb_NO
dc.typePeer reviewednb_NO
dc.description.versionacceptedVersionnb_NO
dc.source.pagenumber1288-1301nb_NO
dc.source.volume49nb_NO
dc.source.journalMetallurgical and materials transactions. B, process metallurgy and materials processing sciencenb_NO
dc.source.issue3nb_NO
dc.identifier.doi10.1007/s11663-018-1228-5
dc.identifier.cristin1608751
dc.description.localcodeThis is a post-peer-review, pre-copyedit version of an article published in [Metallurgical and Materials Transactions B] Locked until 16.3.2019 due to copyright restrictions. The final authenticated version is available online at: https://doi.org/10.1007/s11663-018-1228-5nb_NO
cristin.unitcode194,66,35,0
cristin.unitnameInstitutt for materialteknologi
cristin.ispublishedtrue
cristin.fulltextpostprint
cristin.qualitycode2


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