The effects of ring-shaped porous inert media on equivalence ratio oscillations in a self-excited thermoacoustic instability

IF 1.4 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Cody Dowd, Joseph Meadows
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引用次数: 3

Abstract

Gas turbine operation increasingly relies on lean premixed (LPM) combustion to reduce harmful emissions, which is susceptible to thermoacoustic instabilities. Most combustion systems are technically premixed and exhibit a degree of equivalence ratio inhomogeneity. Thermoacoustic pressure oscillations can couple with the heat release oscillations through the generation of equivalence ratio fluctuations at fuel injection sites, which are then convected to the flame front. Previous experimental studies have shown that porous inert media (PIM) can passively mitigate these instabilities by adding acoustic damping and by reducing the thermoacoustic feedback mechanism. To understand the role of PIM on these equivalence ratio oscillations, spatially resolved, phased averaged equivalence ratio fluctuations are measured using the ratio of OH*/CH* chemiluminescence. Spatial imaging of OH* or CH* radicals produce integrated line of sight intensity values and an Abel transformation is used to obtain spatially resolved values. Phase averaged images are synced with dynamic pressure measurements, and an axisymmetric atmospheric burner is used to study the effects of ring-shaped PIM on the spatially resolved equivalence ratio field with self-excited thermoacoustic instabilities. The results show that PIM significantly reduces these fluctuations, and the effects on the stability of the system are discussed.
环状多孔惰性介质对自激热声不稳定中等效比振荡的影响
燃气轮机运行越来越依赖于稀预混(LPM)燃烧来减少有害排放,这容易受到热声不稳定性的影响。大多数燃烧系统在技术上是预混的,并表现出一定程度的当量比不均匀性。热声压振荡可以通过在燃油喷射部位产生等效比波动与放热振荡耦合,然后将其对流传导到火焰前缘。先前的实验研究表明,多孔惰性介质(PIM)可以通过增加声阻尼和减少热声反馈机制来被动地减轻这些不稳定性。为了了解PIM对这些等效比振荡的作用,利用OH*/CH*化学发光比测量了空间分辨的相相平均等效比波动。OH*或CH*自由基的空间成像产生集成的视线强度值,并使用Abel变换获得空间分辨值。将相位平均图像与动压测量同步,利用轴对称大气燃烧器研究了环形PIM对具有自激热声不稳定性的空间分辨等效比场的影响。结果表明,PIM显著降低了这些波动,并讨论了对系统稳定性的影响。
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来源期刊
International Journal of Spray and Combustion Dynamics
International Journal of Spray and Combustion Dynamics THERMODYNAMICS-ENGINEERING, MECHANICAL
CiteScore
2.20
自引率
12.50%
发文量
21
审稿时长
>12 weeks
期刊介绍: International Journal of Spray and Combustion Dynamics is a peer-reviewed open access journal on fundamental and applied research in combustion and spray dynamics. Fundamental topics include advances in understanding unsteady combustion, combustion instability and noise, flame-acoustic interaction and its active and passive control, duct acoustics...
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