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Characterization of nonlinear heat release-acoustic interactions in gas turbine combustors.

机译:燃气轮机燃烧室中非线性放热-声相互作用的特征。

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This thesis describes an experimental investigation of the flame transfer function between flow disturbances and heat release oscillations in lean, premixed combustors. This research effort was motivated by the fact that modern gas turbines, operating fuel lean to minimize exhaust emissions, are susceptible to self-excited combustion oscillations. These instabilities generally occur when the unsteady combustion process couples with the acoustic modes of the combustion chamber. The resultant flow and structural vibrations can substantially reduce hot section part life. As such, avoiding operating regimes where high dynamics occur often requires operating at lower power outputs and/or higher pollutant emissions than the turbine is otherwise capable.; This work demonstrated nonlinearities in the chemiluminescence response at large amplitude velocity oscillations in a turbulent, swirling flame. It is observed that the nonlinear flame response can exhibit a variety of behaviors, both in the shape of the response curve and the forcing amplitude at which nonlinearity is first observed depending on the operating conditions of the combustor. The phase between the flow oscillations and heat release is also seen to have substantial amplitude dependence. In addition, the interactions between the fundamental frequency and the higher and subharmonics of the measured signals can significantly influence the flame as well as the frequency response of the system.; The nonlinear flame dynamics are governed by different mechanisms in different frequency and flowrate regimes. Three mechanisms, vortex rollup, unsteady flame liftoff, and parametric instability, are identified to influence the nonlinear flame response in these combustors. Analysis of the results shows that the mechanisms responsible for nonlinearity m the flame response are influenced by the Strouhal number, the mean velocity at the combustor dump plane, and the ratio of the oscillating velocity amplitude to the laminar flame speed.
机译:本文描述了在稀薄的预混燃烧器中,在流动扰动和放热振荡之间的火焰传递函数的实验研究。这项研究工作是受以下事实激励的:现代燃气涡轮机以稀薄的燃料运行以最大程度地减少废气排放,容易受到自激燃烧振荡的影响。当不稳定燃烧过程与燃烧室的声学模式耦合时,通常会发生这些不稳定性。由此产生的流动和结构振动会大大缩短热段零件的寿命。因此,要避免出现高动力的运行状态,通常需要以比涡轮机所能提供的更低的功率输出和/或更高的污染物排放来运行。这项工作证明了在湍流,旋转火焰中大振幅速度振荡时化学发光响应的非线性。观察到,非线性火焰响应在响应曲线的形状和强制振幅上均表现出多种行为,取决于燃烧器的工作条件,在该强制振幅上首先观察到非线性。还可以看出,流动振荡和放热之间的相位具有很大的幅度依赖性。另外,基频与被测信号的高次谐波之间的相互作用会显着影响火焰以及系统的频率响应。非线性火焰动力学由不同的机制在不同的频率和流量范围内控制。确定了三种机制,即涡旋累积,不稳定的火焰抬升和参数不稳定性,以影响这些燃烧器的非线性火焰响应。结果分析表明,造成火焰响应非线性的机理受Strouhal数,燃烧室倾卸平面平均速度以及振荡速度振幅与层流火焰速度之比的影响。

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