Experimental Investigation of Fuel Staging Effect on Modal Dynamics of Thermoacoustic Azimuthal Instabilities in a Multi-Nozzle Can Combustor

J. Kim, W. Gillman, T. John, S. Adhikari, D. Wu, B. Emerson, V. Acharya, T. Lieuwen, M. Isono, T. Saitoh
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引用次数: 2

Abstract

This paper analyzes the dynamics of unstable azimuthal thermoacoustic modes in a lean premixed combustor. Azimuthal modes can be decomposed into two counter rotating waves where they can either compete and potentially suppress one of them (spinning) or coexist (standing), depending on the operating conditions. This paper describes experimental results of the dynamical behaviors of these two waves. The experimental data were taken at different mass flow rates as well as different azimuthal fuel staging in a multi-nozzle can combustor. It is shown that at a low flow rate with uniform fuel distribution, the two waves have similar amplitudes, giving rise to a standing wave. However, the two amplitudes are slowly oscillating out of phase to each other, and the phase difference between the two waves also shows oscillatory behavior. For an intermediate flow rate, the dynamics show intermittency between standing and spinning waves, indicating that the system is bistable. In addition, the phase difference dramatically shifts when the mode switches between standing and spinning waves. For a high flow rate, the system stabilizes at a spinning wave most of the time. These experimental observations demonstrate that not only the amplitudes of two waves but also the phase difference plays an important role in the dynamics of azimuthal mode. For non-uniform azimuthal fuel staging, the modal dynamics exhibit only an oscillatory standing wave behavior regardless of the mass flow rate. Compared to the uniform fuel staging, however, the pressure magnitude is considerably reduced, which provides a potential strategy to mitigate and/or suppress the instabilities.
燃料分级对多喷嘴燃烧室热声方位不稳定性模态动力学影响的实验研究
本文分析了稀薄预混燃烧室中不稳定方位热声模态的动力学特性。方位模式可以分解为两个反向旋转波,根据操作条件,它们可以相互竞争并潜在地抑制其中一个(旋转)或共存(站立)。本文描述了这两种波的动力学行为的实验结果。实验数据是在多喷嘴燃烧室中不同质量流量和不同方位燃料分级条件下进行的。结果表明,在燃料均匀分布的小流量条件下,两波振幅相近,形成驻波。然而,两个振幅缓慢地相互反相振荡,并且两波之间的相位差也表现出振荡行为。在中等流量下,系统动力学表现为驻波和自旋波之间的间歇性,表明系统是双稳态的。此外,当模式在驻波和自旋波之间切换时,相位差会发生显著变化。对于大流量,系统大部分时间稳定在自旋波。这些实验结果表明,不仅两波的振幅,而且相位差对方位角模式的动力学也起着重要的作用。对于非均匀方位燃料分级,无论质量流量如何,模态动力学仅表现为振荡驻波行为。然而,与均匀燃料分级相比,压力量级大大降低,这提供了一种潜在的策略来减轻和/或抑制不稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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