Optimum Injector Parameters for Thermoacoustic Stability in a Multi-Nozzle Can Combustion System

V. Acharya
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Abstract

High-frequency transverse instabilities are an important concern in can combustor configurations. In these configurations which are typically operated with multiple injectors around a central injector, each injector is subjected to different parts of the acoustic mode shape and thus respond differently for the same instability mode. Recent work by the author has modeled the response of premixed flames to excitation by natural high-frequency transverse modes in a can combustor both in the center and outer nozzles. The stability of these acoustically non-compact flames was assessed using the Rayleigh criterion (Rayleigh Integral denoted as RI) and not the overall unsteady heat release as is the case for compact flames. Several key control parameters were studied, namely — flame angle, swirling strength, nozzle location. For non-axisymmetric modes such as the commonly occurring 1-T mode, both radial and azimuthal offsets of the nozzle location affected stability. The framework was applied to an optimization study to identify the optimal combination of parameters that minimizes RI for the different nozzles in the multi-nozzle system. In this study, a N-around-1 configuration was studied, and the results indicated that the different nozzles needed to be operated at different flame angles and swirl numbers to result in an overall minimum RI. However, the specific response of the different injectors was not considered. The helical mode distribution at each injector varies as we azimuthally go around the combustor’s injector distribution and thus the most amplified mode and the resulting flame response would be different. To minimize RI, it is important to determine the injector configurations that result in a hydrodynamic profile that minimizes the individual RI for each nozzle. The resulting relationship between the injector’s flow and local hydrodynamics can then be used in a hydrodynamics study of an individual injector so that the most optimal injector is chosen depending on its location in the combustor dump plane.
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多喷嘴罐燃烧系统热声稳定性的最佳喷油器参数
高频横向不稳定性是燃烧室结构中的一个重要问题。在这些配置中,通常在中心喷油器周围有多个喷油器,每个喷油器受到不同部分的声学模态形状的影响,因此对相同的不稳定模态的响应不同。作者在最近的工作中模拟了在燃烧室中心和外喷嘴中预混火焰对自然高频横向模态激励的响应。这些声学非致密火焰的稳定性是使用瑞利准则(瑞利积分表示为RI)来评估的,而不是像致密火焰那样使用总体不稳定热释放来评估。研究了火焰角、旋流强度、喷嘴位置等关键控制参数。对于非轴对称模式,如常见的1-T模式,喷嘴位置的径向和方位角偏移都会影响稳定性。将该框架应用于优化研究,以确定多喷嘴系统中不同喷嘴的最佳参数组合,以最小化RI。在本研究中,研究了N-around-1的配置,结果表明,不同的喷嘴需要在不同的火焰角度和旋涡数下运行,才能使总体RI最小。然而,没有考虑不同喷射器的具体响应。当沿燃烧室喷射器的方向旋转时,每个喷射器的螺旋模态分布是不同的,因此放大最大的模态和火焰响应是不同的。为了最小化RI,重要的是要确定喷油器配置,从而使每个喷嘴的单个RI最小化。由此得出的喷射器流量与局部流体力学之间的关系可用于单个喷射器的流体力学研究,从而根据喷射器在燃烧室倾卸平面上的位置选择最优的喷射器。
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