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The effect of convection and shear on the damping and propagation of pressure waves.

机译:对流和剪切对压力波的阻尼和传播的影响。

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摘要

Combustion instability is the positive feedback between heat release and pressure in a combustion system. Combustion instability occurs in the both air breathing and rocket propulsion devices, frequently resulting in high amplitude spinning waves. If unchecked, the resultant pressure fluctuations can cause significant damage. Models for the prediction of combustion instability typically include models for the heat release, the wave propagation and damping. Many wave propagation models for propulsion systems assume negligible flow, resulting in the wave equation.;In this research the effect of flow on wave propagation was studied both numerically and experimentally. Two experiential rigs were constructed, one with axial flow to study the longitudinal waves, the other with swirling flow to study circumferential waves. The rigs were excited with speakers and the resultant pressure was measured simultaneously at many locations. Models of the rig were also developed. Equations for wave propagation were derived from the Euler Equations. The resultant resembled the wave equation with three additional terms, two for the effect of the convection and a one for the effect of shear of the mean flow on wave propagation.;From the experimental and numerical data several conclusions were made. First, convection and shear both act as damping on the wave propagation, reducing the magnitude of the Frequency Response Function and the resonant frequency of the modes. Second, the energy extracted from the mean flow as a result of turbulent shear for a given condition is frequency dependent, decreasing with increasing frequency. The damping of the modes, measured for the same shear flow, also decreased with frequency. Finally, the two convective terms cause the anti-nodes of the modes to no longer be stationary. For both the longitudinal and circumferential waves, the anti-nodes move through the domain even for mean flow Mach numbers less than 0.10. It was concluded that convection causes the spinning waves documented in inlets and exhausts of gas turbine engines, rocket combustion chambers, and afterburner chambers. As a result, the effects of shear must be included when modeling wave propagation, even for mean flows less than < Mach 0.10.
机译:燃烧不稳定性是燃烧系统中热量释放和压力之间的正反馈。在空气呼吸装置和火箭推进装置中都发生燃烧不稳定性,经常导致高振幅旋转波。如果不加以检查,则产生的压力波动可能会造成严重损坏。预测燃烧不稳定性的模型通常包括热量释放,波传播和阻尼的模型。推进系统的许多波传播模型都假定流量可以忽略不计,从而产生了波动方程。建造了两个实验性钻机,一个具有轴向流动来研究纵波,另一个具有旋转流动来研究周波。钻机使扬声器兴奋起来,并且在许多位置同时测量了合成压力。钻机的模型也已开发。波的传播方程是从欧拉方程推导出来的。所得结果类似于波动方程,带有三个附加项,两个代表对流效应,另一个代表平均流切变对波浪传播的影响。;从实验和数值数据得出了几个结论。首先,对流和剪切都对波传播起阻尼作用,从而减小了频率响应函数的幅度和模式的共振频率。其次,在给定条件下,由于湍流剪切而从平均流量中提取的能量与频率有关,并且随着频率的增加而降低。对于相同的剪切流测得的模态阻尼也随频率降低。最后,两个对流项使模的波腹不再固定。对于纵向波和圆周波,即使平均流马赫数小于0.10,波腹也会移动通过畴。结论是,对流引起了燃气轮机,火箭燃烧室和加力室进气口和排气口记录的旋转波。结果,在对波传播进行建模时,即使平均流量小于<0.1马赫,也必须包括剪切的影响。

著录项

  • 作者

    Kiel, Barry Vincent.;

  • 作者单位

    University of Dayton.;

  • 授予单位 University of Dayton.;
  • 学科 Engineering Mechanical.;Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 人类学;
  • 关键词

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