Investigation on the Effects of Field Emission Plasma on the Performance of a Micro-Combustor

M. D. Giorgi, Giacomo Cinieri, D. Fontanarosa, A. Ficarella
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Abstract

This work provides a numerical investigation of the effects of micro field emission dielectric barrier discharge (FE-DBD) plasma actuation on the performance of a micro-combustion system composed of two straights perpendicular microchannels for propellant injection followed by a rectangular micro-combustion chamber in a T-shaped planar configuration. Concerning the modeling, a novel two-step approach has been developed. The first step consisted in solving the chemistry of a sinusoidal plasma discharge in a zero-dimensional modeling. To this purpose, the collisional processes involved in the plasma discharge have been solved using a Boltzmann-equation approach, which permits to predict the electron impact reactions based on a two-temperature model. Furthermore, the zero-dimensional hypothesis used for computations assumed uniform plasma during the overall discharge duration. Concerning the plasma chemistry, excitation and de-excitation processes, electron-ion recombination reactions, attachment and detachment for electrons and neutral species have been considered in order to improve the prediction accuracy. This step allowed to quantify the body force, the heat source and the propellant composition modification induced by sinusoidal plasma actuation operating at 10 MHz of repetition rate, atmospheric pressure and 300 K temperature. Therefore, the predicted cycle averaged plasma effects have been used in 2D steady-state simulations of the laminar, compressible, reactive micro flow, based on a continuum Navier-Stokes approach. SIMPLE pressure-velocity coupling scheme was chosen with a second order pressure spatial discretization. A second-order upwind scheme was applied. The hydrogen-oxygen combustion has been modeled using the Connaire mechanism. The comparison between the results of the reference case without plasma actuation, and those retrieved in presence of plasma actuation at different supplied voltages, highlighted the performance enhancement due to plasma discharge.
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场发射等离子体对微燃烧室性能影响的研究
本文研究了微场发射介质阻挡放电(FE-DBD)等离子体驱动对微燃烧系统性能的影响,该微燃烧系统由两个垂直的微通道组成,用于推进剂喷射,然后是一个矩形的t形平面微燃烧室。在建模方面,提出了一种新的两步法。第一步是在零维模型中求解正弦等离子体放电的化学性质。为此,采用玻尔兹曼方程方法求解了等离子体放电中的碰撞过程,该方法允许基于双温度模型预测电子碰撞反应。此外,用于计算的零维假设假设在整个放电时间内等离子体均匀。在等离子体化学中,为了提高预测精度,考虑了激发和去激发过程、电子-离子复合反应、电子和中性物质的附着和分离。这一步可以量化在10 MHz重复频率、大气压和300 K温度下正弦等离子体驱动引起的体力、热源和推进剂成分的改变。因此,基于连续Navier-Stokes方法,预测的周期平均等离子体效应已被用于层流、可压缩、反应性微流的二维稳态模拟。采用简单的压力-速度耦合方案,进行二阶压力空间离散。采用二阶迎风方案。氢-氧燃烧用康纳尔机理进行了模拟。在没有等离子体驱动的参考情况下,与在不同电源电压下存在等离子体驱动的情况下获得的结果进行了比较,突出了等离子体放电导致的性能增强。
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