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Investigation of Combustion Phenomena in a Single-Cylinder Spark-Ignited Natural Gas Engine with Optical Access.

机译:具有光学通道的单缸火花点火天然气发动机的燃烧现象研究。

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摘要

More demanding efficiency and emissions standards for internal combustion (IC) engines require novel combustion strategies, alternative fuels, and improved after-treatment systems. However, their development depends on improved understanding of in-cylinder processes. For example, the lower efficiency of conventional spark-ignited (SI) natural-gas (NG) engines reduces their utilization in the transportation sector. Single-cylinder optical-access research engines allow the use of non-intrusive visualization techniques that study in-cylinder flow, fuel-oxidizer mixing, and combustion and emissions phenomena under conditions representative of production engines. These visualization techniques can provide qualitative and quantitative answers to fundamental combustion-phenomena questions such as the effects of engine design, operating conditions, fuel composition, fuel delivery strategy, and ignition techniques.;The thesis is divided in two main parts. The first part focuses on the setup of a single-cylinder research engine with optical access including the design of its control system and the acquisition of in-cylinder pressure data and high-speed combustion images. The second part focuses on measurements of the turbulent flame speed using the high-speed combustion images. Crank-angle-resolved images of methane combustion were taken with a high-speed CMOS camera at a rate of 15,000 Hz. The optical engine was operated in a skip-firing mode (one fired cycle followed by 5 motored cycles) at 900 RPM and a load of 5.93 bar IMEP. The images show that flow turbulence and flame stretch resulted in flame velocities several order of magnitude higher compared to the laminar flame velocity. In addition, both in-cylinder pressure and optical data were used to determine the cycle-to cycle variability of the combustion phenomena.
机译:内燃机(IC)的更高的效率和排放标准要求新颖的燃烧策略,替代燃料和改进的后处理系统。但是,它们的发展取决于对缸内过程的更好理解。例如,传统的火花点火(SI)天然气(NG)发动机效率较低,从而降低了其在交通运输领域的利用率。单缸光学访问研究引擎允许使用非侵入式可视化技术,这些技术可在代表生产引擎的条件下研究缸内流,燃料-氧化剂混合以及燃烧和排放现象。这些可视化技术可以为基本的燃烧现象问题提供定性和定量的答案,例如发动机设计,运行条件​​,燃料成分,燃料输送策略和点火技术的影响。本文分为两个主要部分。第一部分着重介绍具有光学访问功能的单缸研究引擎的设置,包括其控制系统的设计以及缸内压力数据和高速燃烧图像的获取。第二部分着重于使用高速燃烧图像测量湍流火焰的速度。用高速CMOS相机以15,000 Hz的速率拍摄甲烷燃烧的曲轴转角图像。光学引擎在900 RPM和5.93 bar IMEP的负载下以跳火模式(一个点火周期,然后是5个机动周期)运行。图像显示,与层流火焰速度相比,流动湍流和火焰伸展导致火焰速度高出几个数量级。另外,缸内压力和光学数据均用于确定燃烧现象的循环间变化。

著录项

  • 作者

    Padmanaban, Vishnu.;

  • 作者单位

    West Virginia University.;

  • 授予单位 West Virginia University.;
  • 学科 Mechanical engineering.;Energy.;Automotive engineering.
  • 学位 M.S.
  • 年度 2016
  • 页码 91 p.
  • 总页数 91
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:43:09

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