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首页> 外文期刊>Journal of Fluid Mechanics >Solution of the quasi-one-dimensional linearized Euler equations using flow invariants and the Magnus expansion
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Solution of the quasi-one-dimensional linearized Euler equations using flow invariants and the Magnus expansion

机译:利用流量不变量和马格努斯展开法求解一维线性欧拉方程

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摘要

The acoustic and entropy transfer functions of quasi-one-dimensional nozzles are studied analytically for both subsonic and choked flows with and without shock waves. The present analytical study extends both the compact nozzle solution obtained by Marble & Candel (J. Sound Vib., vol. 55, 1977, pp. 225-243) and the effective nozzle length proposed by Stow, Dowling & Hynes (J. Fluid Mech., vol. 467, 2002, pp. 215-239) and by Goh & Morgans (J. Sound Vib., vol. 330, 2011, pp. 5184-5198) to non-zero frequencies for both modulus and phase through an asymptotic expansion of the linearized Euler equations. It also extends the piecewise-linear approximation of the velocity profile in the nozzle proposed by Moase, Brear & Manzie (J. Fluid Mech., vol. 585, 2007, pp. 281-304) to any arbitrary profile or equivalently any nozzle geometry. The equations are written as a function of three variables, namely the dimensionless mass, total temperature and entropy fluctuations, yielding a first-order linear system of differential equations with varying coefficients, which is solved using the Magnus expansion. The solution shows that both the modulus and the phase of the transfer functions of the nozzle have a strong dependence on the frequency. This holds for both choked flows and subsonic converging-diverging nozzles. The method is used to compare two different nozzle geometries with the same inlet and outlet Mach numbers, showing that, even if the compact solution predicts no differences between the transfer functions of the two nozzles, significant differences are found at non-zero frequencies. A parametric study is finally performed to calculate the indirect to direct noise ratio for a model combustor, showing that this ratio decreases at higher frequencies.
机译:分析了在有声波和无声波的情况下,亚音速和阻流的准一维喷嘴的声学和熵传递函数。本分析研究扩展了Marble&Candel(J. Sound Vib。,vol。55,1977,pp。225-243)所获得的紧凑喷嘴解决方案以及Stow,Dowling&Hynes(J. Fluid)提出的有效喷嘴长度。 Mech。,第467卷,2002年,第215-239页)和Goh&Morgans(J。Sound Vib。,第330卷,2011年,第5184-5198页)的模和相通频率均为非零频率线性化Euler方程的渐近展开。它也将Moase,Brear和Manzie(J. Fluid Mech。,vol.585,2007,pp.281-304)提出的喷嘴中速度分布的分段线性近似扩展到任何任意分布或等效的任何喷嘴几何形状。方程是根据三个变量(无量纲质量,总温度和熵涨落)的函数编写的,从而产生了具有变化系数的微分方程的一阶线性系统,可使用马格努斯展开法求解。该解决方案表明,喷嘴的传递函数的模数和相位都与频率密切相关。这对于节流和亚音速收敛-发散喷嘴都适用。该方法用于比较具有相同入口和出口马赫数的两个不同喷嘴几何形状,这表明,即使紧凑型解决方案预测两个喷嘴的传递函数之间没有差异,在非零频率下也会发现显着差异。最终进行了参数研究,以计算模型燃烧器的间接噪声比与直接噪声比,结果表明该比率在较高频率下会降低。

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