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- W4237166519 abstract "AIChE JournalVolume 66, Issue 2 e16639 ISSUE INFORMATIONFree Access Issue Information First published: 06 January 2020 https://doi.org/10.1002/aic.16639AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinkedInRedditWechat Graphical Abstract Cover illustration. Flame spray pyrolysis (FSP) allows the direct conversion of organometallic precursor materials into crystalline metal oxide nanoparticle products by relying on consecutive spray formation, precursor evaporation, oxidation, nucleation, and subsequent nanoparticle growth mechanisms based on coagulation, sintering/coalescence, and agglomeration. Gas-to-particle process design for FSP is demonstrated by using computational fluid dynamics simulation in combination with population balance models (CFD-PBM) and by providing thorough validation with experimental multiphase flow and particle diagnostics along the high-temperature flame trajectory. Understanding the evolution of primary and agglomerate nanoparticle diameters with increasing height above burner (HAB) is key to enable products with tailored size and the development of new flame reactor concepts with laboratory or industrial production rate. Image courtesy: Florian Meierhofer, Leibniz Institute for Materials Engineering IWT, Bremen, Germany; Faculty of Production Engineering, University of Bremen, Bremen, Germany. DOI: 10.1002/aic.16885 Volume66, Issue2February 2020e16639 RelatedInformation" @default.
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