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INFLUENCE OF FLAME AND BURNER TRANSFER MATRIX ON THERMOACOUSTIC COMBUSTION INSTABILITY MODES AND FREQUENCIES

机译:火焰和燃烧器传递矩阵对热声燃烧不稳定性模式和频率的影响

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The main origin of combustion instability in modern gas turbines is considered to be related to the interaction between acoustic waves and flame perturbations. An important role is played by the characteristics of combustion chamber and burners, because they influence the operating conditions at which the instability may occur.Experimental tests carried out on single burner arrangements fail to give adequate indications for the design of a full scale combustion chamber, due to the interaction of the local flame fluctuations with the propagation of the pressure waves, that have a wavelength of the same order of magnitude of the main dimensions of the chamber. Therefore there is a large interest on developing techniques able to make use of the data gathered from tests carried out on a single burner for predicting the thermoacoustic behavior of the combustion chamber at full scale with its actual geometry.A three dimensional finite element code has been developed for predicting acoustically driven combustion instabilities in combustion systems with complex geometries. The code allows one to identify the frequencies at which thermoacoustic instabilities are expected and the growth rate of the pressure oscillations, at the onset of instability, under the hypothesis of linear behaviour of the acoustic waves. The code permits to represent heat release fluctuations through an n — z Flame Transfer Function (FTF) model and to adopt the transfer matrix method for modelling the burners. The FTF and the burner transfer matrix (BTM), as well as the temperature field and the flame location,'Address all correspondence to this author.needed for the simulation, can be obtained from experimental tests. Moreover, the code is able to make use of the local distribution ofn and X that can be evaluated from computational fluid dynamic studies on the single burner.The paper shows the importance of the flame characteristics, such as dimensions and shape of the heat release zone and its location within the combustor, underlying their influence on the instability of the modes and so the potential of the proposed method as a design tool for defining the burner characteristics and the acoustic impedance at the boundaries of the combustion chamber.
机译:现代燃气轮机中的燃烧不稳定的主要起源被认为与声波和火焰扰动之间的相互作用有关。通过燃烧室和燃烧器的特性发挥了重要作用,因为它们影响可能发生不稳定性的操作条件。 由于局部火焰波动与压力波的传播的相互作用,单燃烧器布置对单燃烧器布置的设计进行了适当的适当指示,其具有与压力波的传播的相互作用,其具有相同数量级的波长腔室的主要尺寸。因此,对开发技术存在很大的兴趣,该技术能够利用从单个燃烧器上进行的测试收集的数据,以预测燃烧室的热声行为,其实际几何形状。 已经开发了三维有限元代码,用于预测具有复杂几何形状的燃烧系统中的声学驱动的燃烧不稳定性。该代码允许人们在声波的线性行为的假设下识别预期热声稳定性的频率和压力振荡的生长速率,并且在不稳定的情况下,在声波的线性行为的假设下。代码允许通过N-Z火焰传递函数(FTF)模型表示热释放波动,并采用用于建模燃烧器的传递矩阵方法。 FTF和燃烧器转移矩阵(BTM)以及温度场和火焰位置, '解决这个作者的所有通信。 模拟所需的,可以从实验测试中获得。此外,代码能够利用OFN和X的局部分布,该X可以从单个燃烧器上的计算流体动态研究评估。 本文显示了火焰特性的重要性,例如热释放区的尺寸和形状及其在燃烧器内的位置,其对模式的不稳定性的影响以及所提出的方法作为用于定义的设计工具的潜力燃烧室边界处的燃烧器特性和声阻抗。

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