Simulation of Ion Current in Oxyfuel Flame Subject to an Electric Field

Kemu Xu, A. Untăroiu, Christopher R. Martin
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Abstract

This paper presents a computational model to study ion and electron transportation and current-voltage characteristics inside a methane-oxygen flame. A commercial software is used to develop the model by splitting the simulation into the combustion and electrochemical transportation parts. A laboratory experiment is used to compare the results from the model. The initial and boundary conditions represented in the model are similar to the experimental conditions in the laboratory experiment. In the combustion part, the general GRI3.0 mechanism plus three additional ionization reactions are applied and results are then used as input into the electrochemical transportation part. A particular inspection line is created to analyze the results of the electrochemical transportation part. Ion, electron number density, and current density are studied along the interval from −40V to 40V electric potential. The ions are heavier and more difficult to move than electrons. The results show that at both torch and work surfaces charged sheaths are formed and cause three different regions of current-voltage relations.
电场作用下含氧火焰中离子电流的模拟
本文提出了一个研究甲烷-氧火焰中离子和电子输运及电流-电压特性的计算模型。利用商业软件将模拟分为燃烧和电化学输送两部分来开发模型。用室内实验对模型的结果进行了比较。模型中表示的初始条件和边界条件与室内实验中的实验条件相似。在燃烧部分,采用一般的GRI3.0机理加上三个附加的电离反应,然后将结果作为输入输入到电化学输运部分。建立了一条特殊的检测线来分析电化学输送部分的结果。研究了−40V至40V电势区间内的离子、电子数密度和电流密度。离子比电子更重,更难以移动。结果表明,在焊炬和工件表面均形成带电鞘层,并造成三个不同区域的电流-电压关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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