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(Reference retrieved automatically from Web of Science through information on FAPESP grant and its corresponding number as mentioned in the publication by the authors.)

Modelling polydisperse nanoparticle size distributions as produced via flame spray pyrolysis

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Author(s):
Neto, Pedro Bianchi [1, 2] ; Meierhofer, Florian [3] ; Meier, Henry Franca [1, 4] ; Fritsching, Udo [3, 5] ; Noriler, Dirceu [2]
Total Authors: 5
Affiliation:
[1] Univ Blumenau, Dept Chem Engn DEQ, Blumenau - Brazil
[2] Univ Estadual Campinas, Dept Proc Engn DEPro, Campinas - Brazil
[3] Leibniz Inst Mat Engn IWT, Bremen - Germany
[4] Noriler, Dirceu, Univ Estadual Campinas, Dept Proc Engn DEPro, Campinas, Brazil.Neto, Pedro Bianchi, Univ Blumenau, Dept Chem Engn DEQ, Blumenau - Brazil
[5] Univ Bremen, Dept Particles & Proc Engn, Bremen - Germany
Total Affiliations: 5
Document type: Journal article
Source: Powder Technology; v. 370, p. 116-128, JUN 15 2020.
Web of Science Citations: 0
Abstract

The correct description of the particulates produced via the flame spray pyrolysis (FSP) process is essential for scale-up studies and newreactor design. With the combination of computational fluid dynamics (CFD) and population balance models (PBM) it is possible to predict the formation and evolution of nanoparticles in such reactors, and estimate final product characteristics. The solution of such PBM, however, can be very costly, given the fact that the phenomena involved in the process require for a bivariate approach. In this work, the direct quadrature method of moments (DQMoM) is employed in order to obtain a polydisperse solution of the PBM, due to its relatively straight forward adaptation from uni- to bivariate cases. Furthermore, the reacting turbulent multi-phase flow of the burning spray is described by an Eulerian-Lagrangian framework and solved with the use of CFD. The production of zirconium dioxide nanoparticles from a solution of zirconium n-propoxide in ethanol and propanol is investigated, and experimental data obtained through transmission electron microscopy (TEM) is used for model validation. Accuracy of about 90% is obtained for the first two moments of the distribution and the number of primary particles per agglomerate show good agreement with experiments. (C) 2020 Elsevier B.V. All rights reserved. (AU)

FAPESP's process: 17/04045-0 - Modeling and Simulation of Nanoparticle production by Flame Spray Pyrolysis Using CFD coupled to Multivariate Population Balance Equation
Grantee:Dirceu Noriler
Support Opportunities: Regular Research Grants