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An experimental and theoretical investigation of a fuel system tuner for the suppression of combustion driven oscillations.

机译:抑制燃烧驱动振荡的燃油系统调谐器的实验和理论研究。

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摘要

Manufacturers of commercial, power-generating, gas turbine engines continue to develop combustors that produce lower emissions of nitrogen oxides (NO x) in order to meet the environmental standards of governments around the world. Lean, premixed combustion technology is one technique used to reduce NOx emissions in many current power and energy generating systems. However, lean, premixed combustors are susceptible to thermo-acoustic oscillations, which are pressure and heat-release fluctuations that occur because of a coupling between the combustion process and the natural acoustic modes of the system. These pressure oscillations lead to premature failure of system components, resulting in very costly maintenance and downtime. Therefore, a great deal of work has gone into developing methods to prevent or eliminate these combustion instabilities.;This dissertation presents the results of a theoretical and experimental investigation of a novel Fuel System Tuner (FST) used to damp detrimental combustion oscillations in a gas turbine combustor by changing the fuel supply system impedance, which controls the amplitude and phase of the fuel flowrate. When the FST is properly tuned, the heat release oscillations resulting from the fuel-air ratio oscillations damp, rather than drive, the combustor acoustic pressure oscillations.;A feasibility study was conducted to prove the validity of the basic idea and to develop some basic guidelines for designing the FST. Acoustic models for the subcomponents of the FST were developed, and these models were experimentally verified using a two-microphone impedance tube. Models useful for designing, analyzing, and predicting the performance of the FST were developed and used to demonstrate the effectiveness of the FST. Experimental tests showed that the FST reduced the acoustic pressure amplitude of an unstable, model, gas-turbine combustor over a wide range of operating conditions and combustor configurations. Finally, combustor acoustic pressure amplitude measurements made in using the model combustor were used in conjunction with model predicted fuel system impedances to verify the developed design rules.;The FST concept and design methodology presented in this dissertation can be used to design fuel system tuners for new and existing gas turbine combustors to reduce, or eliminate altogether, thermo-acoustic oscillations.
机译:商业,发电,燃气涡轮发动机的制造商继续开发燃烧器,以产生较低的氮氧化物(NOx)排放量,以满足世界各国政府的环境标准。稀薄的预混燃烧技术是一种用于减少许多当前电力和能源发电系统中NOx排放的技术。但是,稀薄的预混燃烧器易受热声振荡的影响,这是由于燃烧过程与系统的自然声模之间的耦合而产生的压力和放热波动。这些压力波动会导致系统组件过早失效,从而导致非常昂贵的维护和停机时间。因此,为防止或消除这些燃烧不稳定性而开发的方法已经投入了大量的工作。;本文提出了一种新型的燃料系统调谐器(FST)的理论和实验研究结果,该调谐器用于抑制气体中有害的燃烧振荡涡轮燃烧器通过改变燃料供应系统的阻抗来控制燃料流量的幅度和相位。当FST正确调整后,由燃料-空气比振荡引起的放热振荡将衰减而不是驱动燃烧室声压振荡。;进行了可行性研究,以证明基本原理的有效性并开发一些基本原理。 FST设计指南。开发了FST子组件的声学模型,并使用两麦克风阻抗管对这些模型进行了实验验证。开发了用于设计,分析和预测FST性能的模型,并将其用于证明FST的有效性。实验测试表明,FST在较大范围的运行条件和燃烧器配置下降低了不稳定的,模型化的燃气轮机燃烧器的声压幅度。最后,将使用模型燃烧器进行的燃烧器声压幅值测量与模型预测的燃料系统阻抗结合使用,以验证所开发的设计规则。本文所介绍的FST概念和设计方法可用于设计燃料燃烧系统调谐器。新型和现有的燃气轮机燃烧室,以减少或完全消除热声振荡。

著录项

  • 作者

    Scarborough, David E.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Aerospace.;Engineering Mechanical.;Physics Acoustics.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 368 p.
  • 总页数 368
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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