Boosting the NOx production in microwave air plasma: A synergy of chemistry and vibrational kinetics

Fuente: arXiv
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Main Authors: Shen, Qinghao, Pikalev, Aleksandr, Gans, Jonas, Kuijpers, Lex, Hughes, Ashley, Guerra, Vasco, van de Sanden, M. C. M
Format: Preprint
Published: 2025
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author Shen, Qinghao
Pikalev, Aleksandr
Gans, Jonas
Kuijpers, Lex
Hughes, Ashley
Guerra, Vasco
van de Sanden, M. C. M
author_facet Shen, Qinghao
Pikalev, Aleksandr
Gans, Jonas
Kuijpers, Lex
Hughes, Ashley
Guerra, Vasco
van de Sanden, M. C. M
contents This study employs a quasi-1.5D multi-temperature model to investigate the mechanisms governing NOx production and energy costs in microwave plasma reactors operating at 80 mbar, focusing on the interplay of vibrational, chemical and electron kinetics, thermodynamics, and transport processes across the discharge and afterglow. In the plasma discharge zone, non-thermal processes enhance NOx production as electrons transfer energy effectively to the vibrational mode of N2. However, the non-thermal enhancement is found to diminish rapidly within the central-afterglow region. The simulation results show good agreement with experimental data for both the temperature profile and energy cost. Turbulent effects facilitate radial NO diffusion into cooler regions while simultaneously enhancing cooling of the axial region. These findings highlight the potential to improve NOx synthesis efficiency by optimizing turbulence and maintaining non-thermal conditions, offering new opportunities for the advancement of plasma-based chemical processes.
format Preprint
id arxiv_https___arxiv_org_abs_2507_02795
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Boosting the NOx production in microwave air plasma: A synergy of chemistry and vibrational kinetics
Shen, Qinghao
Pikalev, Aleksandr
Gans, Jonas
Kuijpers, Lex
Hughes, Ashley
Guerra, Vasco
van de Sanden, M. C. M
Plasma Physics
This study employs a quasi-1.5D multi-temperature model to investigate the mechanisms governing NOx production and energy costs in microwave plasma reactors operating at 80 mbar, focusing on the interplay of vibrational, chemical and electron kinetics, thermodynamics, and transport processes across the discharge and afterglow. In the plasma discharge zone, non-thermal processes enhance NOx production as electrons transfer energy effectively to the vibrational mode of N2. However, the non-thermal enhancement is found to diminish rapidly within the central-afterglow region. The simulation results show good agreement with experimental data for both the temperature profile and energy cost. Turbulent effects facilitate radial NO diffusion into cooler regions while simultaneously enhancing cooling of the axial region. These findings highlight the potential to improve NOx synthesis efficiency by optimizing turbulence and maintaining non-thermal conditions, offering new opportunities for the advancement of plasma-based chemical processes.
title Boosting the NOx production in microwave air plasma: A synergy of chemistry and vibrational kinetics
topic Plasma Physics
url https://arxiv.org/abs/2507.02795