Numerical and Experimental Study of Gas Phase Nanoparticle Synthesis Using NanoDOME

Author:

La Civita Giorgio1ORCID,Ugolini Edoardo1ORCID,Patelli Nicola2ORCID,Piccioni Alberto2ORCID,Migliori Andrea3,Pasquini Luca2ORCID,Ghedini Emanuele1ORCID

Affiliation:

1. Department of Industrial Engineering, University of Bologna, v. del Risorgimento 2, 40136 Bologna, Italy

2. Department of Physics and Astronomy, University of Bologna, v. Berti-Pichat 6/2, 40127 Bologna, Italy

3. Institute for Microelectronics and Microsystems, National Research Council, via Gobetti 101, 40129 Bologna, Italy

Abstract

Nowadays, with the rocketing of computational power, advanced numerical tools, and parallel computing, multi-scale simulations are becoming applied more and more to complex multi-physics industrial processes. One of the several challenging processes to be numerically modelled is gas phase nanoparticle synthesis. In an applied industrial scenario, the possibility to correctly estimate the geometric properties of the mesoscopic entities population (e.g., their size distribution) and to more precisely control the results is a crucial step to improve the quality and efficiency of the production. The “NanoDOME” project (2015–2018) aims to be an efficient and functional computational service to be applied in such processes. NanoDOME has also been refactored and upscaled during the H2020 Project “SimDOME”. To prove its reliability, we present here an integrated study between experimental data and NanoDOME’s predictions. The main goal is to finely investigate the effect of a reactor’s thermodynamic conditions on the thermophysical history of mesoscopic entities along the computational domain. To achieve this goal, the production of silver nanoparticles has been assessed for five cases with different experimental operative conditions of the reactor. The time evolution and final size distribution of nanoparticles have been simulated with NanoDOME by exploiting the method of moments and population balance model. The validation is performed by comparing NanoDOME’s calculations with the experimental data.

Funder

H2020 European Project SimDOME G.A.

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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