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Passive control of combustion noise and thermo-acoustic instability with porous inert media.

机译:多孔惰性介质对燃烧噪声和热声不稳定性的被动控制。

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摘要

Combustion noise and thermo-acoustic instability present a major area of concern for many industrial combustion applications, especially those operating under lean-premixed (LPM) conditions. While LPM combustion reduces thermal NOx by allowing operation at reduced flame temperatures, LPM flames are particularly susceptible to combustion noise and instability. While combustion noise and thermo-acoustic instability are distinctly different phenomena; both originate from the same source---unsteady heat release in a turbulent flow field. Instabilities are self-excited and arise when energy from combustion is added to the system faster than energy is dissipated by heat transfer.;In a typical swirl-stabilized combustor, flame is stabilized downstream of the dump plane and is sustained by central and corner recirculation zones. The present study combines porous inert media (PIM) assisted combustion with swirl-stabilized combustion to alter the combustor flow field in an advantageous manner. A ring-shaped PIM insert is placed directly at the dump plane to eliminate zones of intense turbulent fluctuations, thereby mitigating combustion noise at the source. With PIM, a central flame is confined within the annular void of the insert while a small portion of reactants flow through the PIM and stabilize on the downstream surface. Additionally, the porous insert provides acoustic damping and passive attenuation of pressure waves. This study is a preliminary step towards implementing the technique at elevated operating pressures, and eventually, liquid fuel combustors. Atmospheric combustion tests are conducted for a variety operating conditions to determine effectiveness of PIM to reduce combustion noise and instability. Parameters varied include air preheat temperature, air flow rate, equivalence ratio, and swirler axial location. Experiments are conducted with a high swirl angle, as opposed to previous experiments which used a lower swirl angle. For most conditions, PIM is shown to reduce total sound pressure level (SPL) in cases where instability is not intense. For all cases where instability is the dominant component of total SPL, PIM is extremely effective in eliminating instability. In these cases, total SPL is reduced by as much as 30 dB with PIM combustion. Furthermore, experiments show that no significant pressure drop penalty is incurred with porous media.
机译:燃烧噪声和热声不稳定性是许多工业燃烧应用(尤其是在稀薄预混(LPM)条件下运行的应用)关注的主要领域。虽然LPM燃烧通过允许在降低的火焰温度下运行来减少热NOx,但LPM火焰特别容易受到燃烧噪声和不稳定的影响。燃烧噪声和热声不稳定性是截然不同的现象。两者都来自同一个来源-在湍流场中不稳定地释放热量。不稳定性是自激的,当燃烧产生的能量被添加到系统中的速度快于热传递所消耗的能量时,就会出现不稳定性。在典型的旋流稳定的燃烧器中,火焰在倾卸平面的下游稳定下来,并通过中央和拐角再循环得以维持区域。本研究将多孔惰性介质(PIM)辅助燃烧与旋流稳定燃烧相结合,以有利的方式改变了燃烧室的流场。环形PIM插件直接放置在倾卸平面处,以消除剧烈的湍流波动区域,从而减轻源头的燃烧噪声。使用PIM时,中心火焰被限制在插件的环形空隙内,而一小部分反应物流过PIM并稳定在下游表面上。另外,多孔插入物提供了声阻尼和压力波的被动衰减。这项研究是朝着在较高的工作压力下,最终是在液体燃料燃烧器上实施该技术迈出的第一步。在各种运行条件下进行了大气燃烧测试,以确定PIM降低燃烧噪声和不稳定性的有效性。变化的参数包括空气预热温度,空气流速,当量比和旋流器轴向位置。与先前使用较低涡旋角的实验相反,在较高涡旋角下进行实验。对于大多数情况,在不稳定程度不高的情况下,PIM可降低总声压级(SPL)。对于不稳定是总SPL的主要组成部分的所有情况,PIM在消除不稳定方面非常有效。在这些情况下,PIM燃烧可将总SPL降低多达30 dB。此外,实验表明,多孔介质不会引起明显的压降损失。

著录项

  • 作者

    Smith, Zachary A.;

  • 作者单位

    The University of Alabama.;

  • 授予单位 The University of Alabama.;
  • 学科 Engineering Mechanical.
  • 学位 M.S.
  • 年度 2011
  • 页码 244 p.
  • 总页数 244
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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