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Reconstruction and Analysis of the Acoustic Transfer Matrix of a Reheat Flame From Large-Eddy Simulations

机译:大涡模拟对再热火焰声传递矩阵的重构与分析

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摘要

Lean premix technology is widely spread in gas turbine combustion systems, allowing modern power plants to fulfill very stringent emission targets. These systems are, however, also prone to thermoacoustic instabilities, which can limit the engine operating window. The thermoacoustic analysis of a combustor is thus a key element in its development process. An important ingredient of this analysis is the characterization of the flame response to acoustic fluctuations, which is straightforward for lean-premixed flames that are propagation stabilized, since it can be measured atmospherically. Ansaldo Energia's GT26 and GT36 reheat combustion systems feature a unique technology where fuel is injected into a hot gas stream from a first combustor, which is propagation stabilized, and auto-ignites in a sequential combustion chamber. The present study deals with the flame response of mainly auto-ignition stabilized flames to acoustic and temperature fluctuations for which a computational fluid dynamics system identification (SI) approach is chosen. The current paper builds on recent works, which detail and validate a methodology to analyze the dynamic response of an auto-ignition flame to extract the flame transfer function (FTF) using unsteady large-Eddy simulations (LES). In these studies, the flame is assumed to behave as a single-input single-output (SISO) or a multi-input single-output (MISO) system. The analysis conducted in GT2015-42622 qualitatively highlights the important role of temperature and equivalence ratio fluctuations, but these effects are not separated from velocity fluctuations. Hence, this topic is addressed in GT2016-57699, where the flame is treated as a multiparameter system and compressible LES are conducted to extract the frequency-dependent FTF to describe the effects of axial velocity, temperature, equivalence ratio, and pressure fluctuations on the flame response. For lean-premixed flames, a common approach followed in the literature assumes that the acoustic pressure is constant across the flame and that the flame dynamics are governed by the response to velocity perturbations only, i.e., the FTF. However, this is not necessarily the case for reheat flames that are mainly auto-ignition stabilized. Therefore, in this paper, we present the full 2 x 2 transfer matrix of a predominantly auto-ignition stabilized flame, and hence, describe the flame as a multi-input multi-output (MIMO) system. In addition to this, it is highlighted that in the presence of temperature fluctuations, the 2 x 2 matrix can be extended to a 3 x 3 matrix relating the primitive acoustic variables as well as the temperature fluctuations across the flame. It is shown that only taking the FTF is insufficient to fully describe the dynamic behavior of reheat flames.
机译:精益预混技术广泛应用于燃气轮机燃烧系统,使现代发电厂可以实现非常严格的排放目标。但是,这些系统也容易出现热声不稳定性,这会限制发动机的工作范围。因此,燃烧器的热声分析是其开发过程中的关键要素。该分析的重要组成部分是火焰对声音波动的响应的表征,这对于传播稳定的稀薄预混火焰是直接的,因为可以在大气中进行测量。 Ansaldo Energia的GT26和GT36再热燃烧系统采用独特的技术,可将燃料从第一个燃烧器喷入热气流中,该燃烧器稳定传播,并在顺序燃烧室中自动点火。本研究处理主要是自动点火稳定火焰对声学和温度波动的火焰响应,为此选择了一种计算流体动力学系统识别(SI)方法。本论文以最近的工作为基础,详细研究并验证了一种方法,该方法可使用非平稳大涡模拟(LES)分析自燃火焰的动态响应,以提取火焰传递函数(FTF)。在这些研究中,假定火焰表现为单输入单输出(SISO)或多输入单输出(MISO)系统。 GT2015-42622中进行的分析定性地强调了温度和当量比波动的重要作用,但这些影响并未与速度波动分开。因此,该主题在GT2016-57699中得到了解决,其中将火焰视为多参数系统,并进行了可压缩的LES提取频率相关的FTF,以描述轴向速度,温度,当量比和压力波动对管道的影响。火焰响应。对于稀薄预混合的火焰,文献中遵循的一种通用方法假设整个火焰的声压是恒定的,并且火焰动力学仅受对速度摄动的响应(即FTF)的控制。但是,对于主要是自燃稳定的再加热火焰,情况并非一定如此。因此,在本文中,我们提出了主要是自动点火稳定火焰的完整2 x 2传递矩阵,因此将火焰描述为多输入多输出(MIMO)系统。除此之外,要强调的是,在存在温度波动的情况下,可以将2 x 2矩阵扩展为与原始声学变量以及整个火焰的温度波动相关的3 x 3矩阵。结果表明,仅采用FTF不足以充分描述再热火焰的动态行为。

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