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Turbulent Flames in Enclosed Combustion Chambers: Characteristics and Visualization-A Review

机译:封闭燃烧室中的湍流火焰:特征和可视化 - 评论

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摘要

Remarkable progress has been achieved in measuring the flame propagation rate accurately under laminar conditions, which can be used to predict turbulent flame propagation rates using some correlations fitted to experimental data. However, such propagation rates, unlike the laminar case, cannot be unambiguously determined. Nevertheless, the advancement of laser imaging techniques has led to several definitions of turbulent burning rates (Roshan et al., 2010, "Simulation of Global Warming Effect on Outdoor Thermal Comfort Conditions," Int. J. Environ. Sci. Technol, 7(3), pp. 571-580). Recently, a unified scaling factor has been successfully demonstrated using data gathered from several fan-stirred bombs. Such results are promising in compiling a comprehensive database of turbulent propagation rates for potential and common fuels of interest to internal combustion engines (ICEs) and gas turbines alike. The strict worldwide legislation to reduce emissions has forced many industries to look into alternative fuels with less emissions. One such alternative fuel that has gained much interest recently is the gas-to-liquid (GTL) fuel, which is being used in blended forms in several combustion applications. However, detailed combustion characteristic investigations are required before using this new alternative fuel widely in engines (Business, 2018, "Qatar's Exporters Directory 2018"). In this study, the significant issues associated with the use of fan-stirred bombs are investigated. First, the effect of varying fan speed and geometry is reviewed, and then, the measurement techniques that are commonly used to track flame propagation are discussed. This is followed by the study of the effect of using different types of fuels on combustion characteristics. Furthermore, the use of diesel and gasoline optical engine setups as advanced flame visualization tools have been reviewed extensively.
机译:在层状条件下测量火焰传播速率时,已经实现了显着进展,这可以使用适用于实验数据的一些相关性来预测湍流火焰传播速率。然而,与层状壳体不同,这种传播速率不能明确地确定。尽管如此,激光成像技术的进步导致了湍流燃烧速率的几种定义(Roshan等,2010,“模拟了对户外热舒适条件的全球变暖效果的模拟,”int。j.环境。SCI。Technol,7( 3),pp。571-580)。最近,使用从几个风扇搅拌的炸弹收集的数据成功地证明了统一的缩放因子。这些结果在编制了内燃机(ICES)和燃气轮机的潜在和共同燃料的局部和共同燃料的局面和共同燃料的综合数据库。减少排放的严格全球立法已迫使许多行业调查较少排放的替代燃料。最近已经获得了很多利息的这种替代燃料是燃气 - 液体(GTL)燃料,其在几种燃烧应用中以混合形式使用。然而,在引擎中广泛使用这种新的替代燃料之前需要详细的燃烧特征调查(2018年,“卡塔尔的出口商目录2018”)。在这项研究中,研究了与使用风扇搅拌的炸弹相关的重要问题。首先,讨论了不同风扇速度和几何形状的效果,然后讨论了通常用于跟踪火焰传播的测量技术。其次是研究使用不同类型燃料对燃烧特性的影响。此外,广泛审查了柴油和汽油光学引擎设置作为先进的火焰可视化工具的使用。

著录项

  • 来源
    《Journal of Energy Resources Technology》 |2020年第8期|080801.1-080801.17|共17页
  • 作者单位

    Thermofluids Group Department of Mechanical and Industrial Engineering College of Engineering Qatar University P.O. Box 2713 Doha Qatar;

    Thermofluids Group Department of Mechanical and Industrial Engineering College of Engineering Qatar University P.O. Box 2713 Doha Qatar;

    Thermofluids Group Mechanical and Industrial Engineering Department College of Engineering Qatar University P.O. Box 2713 Doha Qatar;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    air emissions from fossil fuel combustion; fuel combustion; natural gas technology;

    机译:化石燃料燃烧的空气排放;燃料燃烧;天然气技术;
  • 入库时间 2022-08-18 21:17:42

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