4.7 Article

Modeling of Advanced Silicon Nanomaterial Synthesis Approach: From Reactive Thermal Plasma Jet to Nanosized Particles

期刊

NANOMATERIALS
卷 12, 期 10, 页码 -

出版社

MDPI
DOI: 10.3390/nano12101763

关键词

modelling; thermal plasma; fluid dynamic; turbulence; silicon; nanopowder; process control

资金

  1. Princess Nourah bint Abdulrahman University Researchers Supporting Project, Princess Nourah bint Abdulrahman University, Riyadh, Saudi Arabia [PNURSP2022R223]

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A three-dimensional numerical model was developed to simulate a time-dependent, turbulent thermal plasma jet for synthesizing silicon nanopowder. The simulation results demonstrate that the plasma jet significantly affects the dispersion of nanoparticles, and increasing the carrier gas injection velocity leads to a decrease in particle velocity and temperature distribution. Additionally, the behavior of nanoparticles is significantly influenced by the upstream flame.
A three-dimensional numerical modelling of a time-dependent, turbulent thermal plasma jet was developed to synthetize silicon nanopowder. Computational fluid dynamics and particle models were employed via COMSOL Multiphysics (R) v. 5.4 (COMSOL AB, Stockholm, Sweden) to simulate fluid and particle motion in the plasma jet, as well as the heat dependency. Plasma flow and particle interactions were exemplified in terms of momentum, energy, and turbulence flow. The transport of nanoparticles through convection, diffusion, and thermophoresis were also considered. The trajectories and heat transfer of both plasma jet fields, and particles are represented. The swirling flow controls the plasma jet and highly affects the dispersion of the nanoparticles. We demonstrate a decrease in both particles' velocity and temperature distribution at a higher carrier gas injection velocity. The increase in the particle size and number affects the momentum transfer, turbulence modulation, and energy of particles, and also reduces plasma jet parameters. On the other hand, the upstream flame significantly impacts the particle's behavior under velocity and heat transfer variation. Our findings open the door for examining thermal plasma impact in nanoparticle synthesis, where it plays a major role in optimizing the growth parameters, ensuring high quality with a low-cost technique.

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