Nanoparticles Synthesis in Wet-Operating Stirred Media: Investigation on the Grinding Efficiency
The use of nanomaterials, thanks to their peculiar properties and versatility, is becoming central in an increasing number of scientific and engineering applications. At the same time, the growing concern towards environmental issues drives the seeking of alternative strategies for a safer and more...
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doaj-de30b537edcd4f4493f9cc6927447f142020-11-25T02:42:02ZengMDPI AGMaterials1996-19442020-09-01134281428110.3390/ma13194281Nanoparticles Synthesis in Wet-Operating Stirred Media: Investigation on the Grinding EfficiencyMarco Trofa0Gaetano D’Avino1Bruno Fabiano2Marco Vocciante3Dipartimento di Ingegneria Chimica, dei Materiali e della Produzione Industriale, Università di Napoli Federico II, Piazza Giorgio Ascarelli 80, 80125 Napoli, ItalyDipartimento di Ingegneria Chimica, dei Materiali e della Produzione Industriale, Università di Napoli Federico II, Piazza Giorgio Ascarelli 80, 80125 Napoli, ItalyDepartment of Chemical, Civil and Environmental Engineering, University of Genova, Via Opera Pia 15, 16145 Genova, ItalyDepartment of Chemistry and Industrial Chemistry, University of Genova, Via Dodecaneso 31, 16146 Genova, ItalyThe use of nanomaterials, thanks to their peculiar properties and versatility, is becoming central in an increasing number of scientific and engineering applications. At the same time, the growing concern towards environmental issues drives the seeking of alternative strategies for a safer and more sustainable production of nanoparticles. Here we focus on a low-energy, magnetically-driven wet milling technique for the synthesis of metal nanoparticles starting from a bulky solid. The proposed approach is simple, economical, sustainable, and provides numerous advantages, including the minimization of the nanoparticles air dispersion and a greater control over the final product. This process is investigated by experiments and discrete element method simulations to reproduce the movement of the grinding beads and study the collision dynamics. The effect of several parameters is analyzed, including the stirring bar velocity, its inclination, and the grinding bead size, to quantify the actual frequency, energy, and angle of collisions. Experiments reveal a non-monotonous effect of the stirring velocity on the abrasion efficiency, whereas numerical simulations highlight the prevalent tangential nature of collisions, which is only weakly affected by the stirring velocity. On the other hand, the stirring velocity affects the collision frequency and relative kinetic energy, suggesting the existence of an optimal parameters combination. Although a small variation of the stirring bar length does not significantly affect the collision dynamics, the use of grinding beads of different dimensions offers several tuning opportunities.https://www.mdpi.com/1996-1944/13/19/4281numerical simulationscomputational fluid dynamicsnanoparticle synthesisbead millingtop-down methodmagnetic stirring |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Marco Trofa Gaetano D’Avino Bruno Fabiano Marco Vocciante |
spellingShingle |
Marco Trofa Gaetano D’Avino Bruno Fabiano Marco Vocciante Nanoparticles Synthesis in Wet-Operating Stirred Media: Investigation on the Grinding Efficiency Materials numerical simulations computational fluid dynamics nanoparticle synthesis bead milling top-down method magnetic stirring |
author_facet |
Marco Trofa Gaetano D’Avino Bruno Fabiano Marco Vocciante |
author_sort |
Marco Trofa |
title |
Nanoparticles Synthesis in Wet-Operating Stirred Media: Investigation on the Grinding Efficiency |
title_short |
Nanoparticles Synthesis in Wet-Operating Stirred Media: Investigation on the Grinding Efficiency |
title_full |
Nanoparticles Synthesis in Wet-Operating Stirred Media: Investigation on the Grinding Efficiency |
title_fullStr |
Nanoparticles Synthesis in Wet-Operating Stirred Media: Investigation on the Grinding Efficiency |
title_full_unstemmed |
Nanoparticles Synthesis in Wet-Operating Stirred Media: Investigation on the Grinding Efficiency |
title_sort |
nanoparticles synthesis in wet-operating stirred media: investigation on the grinding efficiency |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2020-09-01 |
description |
The use of nanomaterials, thanks to their peculiar properties and versatility, is becoming central in an increasing number of scientific and engineering applications. At the same time, the growing concern towards environmental issues drives the seeking of alternative strategies for a safer and more sustainable production of nanoparticles. Here we focus on a low-energy, magnetically-driven wet milling technique for the synthesis of metal nanoparticles starting from a bulky solid. The proposed approach is simple, economical, sustainable, and provides numerous advantages, including the minimization of the nanoparticles air dispersion and a greater control over the final product. This process is investigated by experiments and discrete element method simulations to reproduce the movement of the grinding beads and study the collision dynamics. The effect of several parameters is analyzed, including the stirring bar velocity, its inclination, and the grinding bead size, to quantify the actual frequency, energy, and angle of collisions. Experiments reveal a non-monotonous effect of the stirring velocity on the abrasion efficiency, whereas numerical simulations highlight the prevalent tangential nature of collisions, which is only weakly affected by the stirring velocity. On the other hand, the stirring velocity affects the collision frequency and relative kinetic energy, suggesting the existence of an optimal parameters combination. Although a small variation of the stirring bar length does not significantly affect the collision dynamics, the use of grinding beads of different dimensions offers several tuning opportunities. |
topic |
numerical simulations computational fluid dynamics nanoparticle synthesis bead milling top-down method magnetic stirring |
url |
https://www.mdpi.com/1996-1944/13/19/4281 |
work_keys_str_mv |
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