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Fizika Goreniya i Vzryva, 2021 Volume 57, Issue 4, Pages 48–56 (Mi fgv776)

Effect of computational constraints on zero-dimensional computations for the nanosecond-order ignition process of the $\mathrm{CH}_4$/air mixture

M. Suzukiab, Y. Moriia, H. Nakamuraa, K. Marutaa

a Institute of Fluid Science, Tohoku University, 980-8577, Sendai, Japan
b Graduate School of Engineering, Tohoku University, 980-8579, Sendai, Japan

Abstract: Zero-dimensional computations of nanosecond-order ignition using a nanosecond discharge are performed with two constraints. The effects of these constraints are assessed to study the experimental rapid pressure change properly at the initial stages. The computations are carried out with the following constraints: constant internal energy and volume (U&V) and constant enthalpy and pressure (H&P), revealing differences between the two solutions. As the pressure remains constant under the H&P constraint, the total number density of all species decreases during ignition. In this case, $\mathrm{O}$ radicals are less generated and consumed. The progression of all reactions and temperatures increases under the H&P constraint less intensely than under the U&V constraint. Significant differences are found between the results calculated under the U&V and H&P constraints. Therefore, large discrepancies with real phenomena can be caused if the loss due to pressure reduction is not treated well.

Keywords: nanosecond discharge, non-thermal plasma, non-equilibrium plasma, NRP discharge, plasma-assisted combustion, reactive compressive flow.

UDC: 544.45

Received: 10.06.2020
Revised: 11.09.2020
Accepted: 28.10.2020

DOI: 10.15372/FGV20210405


 English version:
Combustion, Explosion and Shock Waves, 2021, 57:4, 424–432

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