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One-dimensional Numerical Model of Transient Discharges in Air of a Spatial Plasma Ignition Device.

机译:空间等离子点火装置在空气中的瞬时放电一维数值模型。

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摘要

This thesis examines the modes of discharge of a plasma ignition device. Oscilloscope data of the discharge voltage and current are analyzed for various pressures in air at ambient temperature. It is determined that the discharge operates in 2 modes: a glow discharge and a postulated streamer discharge. Subsequently, a 1-dimensional fluid simulation of plasma using the finite volume method (FVM) is developed to gain insight into the particle kinetics. Transient results of the simulation agree with theories of electric discharges; however, quasi-steady state results were not reached due to high diffusion time of ions in air.;The research is motivated by Spatial Plasma Discharge Ignition (SPDI), an innovative ignition system postulated to increase combustion efficiency in automobile engines for up to 9%. The research thus far can only hypothesize SPDI's benefits on combustion, based on the literature review and the modes of discharge.;Next, an ordinary differential equation (ODE) is derived to understand the discharge transition. Simulated results were used to estimate the voltage waveform, which describes the ODE's forcing function; additional simulated results were used to estimate the discharge current and the ODE's non-linearity. It is found that the ODE's non-linearity increases exponentially for capacitive discharges. It is postulated that the non-linearity defines the mode transition observed experimentally.
机译:本文研究了等离子点火装置的放电方式。针对环境温度下空气中的各种压力,分析了放电电压和电流的示波器数据。确定放电以两种模式操作:辉光放电和假定的拖缆放电。随后,开发了使用有限体积方法(FVM)进行的一维等离子体等离子体流体模拟,以深入了解粒子动力学。模拟的瞬态结果与放电理论一致。然而,由于离子在空气中的扩散时间过长,未达到准稳态结果。该研究是由空间等离子放电点火(SPDI)推动的,该创新点火系统被认为可以提高汽车发动机的燃烧效率,最高可达9 %。到目前为止,该研究只能基于文献综述和排放方式来推测SPDI在燃烧方面的益处。其次,推导一个常微分方程(ODE)来理解排放过渡。仿真结果用于估计电压波形,该波形描述了ODE的强制功能。其他模拟结果用于估算放电电流和ODE的非线性。发现对于电容性放电,ODE的非线性度呈指数增长。假定非线性定义了实验观察到的模式转变。

著录项

  • 作者

    Saceleanu, Florin N.;

  • 作者单位

    Carleton University (Canada).;

  • 授予单位 Carleton University (Canada).;
  • 学科 Physics Fluid and Plasma.;Engineering Mechanical.;Energy.
  • 学位 M.A.Sc.
  • 年度 2013
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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