Experimental Development of On-Line Flame Transfer Function Measurements for Fielded Gas Turbines

A. Matthews, Anna Cobb, S. Adhikari, David Wu, T. Lieuwen, J. Blust, B. Emerson
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Abstract

Understanding thermoacoustic instabilities is essential for the reliable operation of gas turbine engines. To complicate this understanding, the extreme sensitivity of gas turbine combustors can lead to instability characteristics that differ across a fleet. The capability to monitor flame transfer functions in fielded engines would provide valuable data to improve this understanding and aid in gas turbine operability from R&D to field tuning. This paper presents a new experimental facility used to analyze performance of full-scale gas turbine fuel injector hardware at elevated pressure and temperature. It features a liquid cooled, fiber-coupled probe that provides direct optical access to the heat release zone for high-speed chemiluminescence measurements. The probe was designed with fielded applications in mind. In addition, the combustion chamber includes an acoustic sensor array and a large objective window for verification of the probe using high-speed chemiluminescence imaging. This work experimentally demonstrates the new setup under scaled engine conditions, with a focus on operational zones that yield interesting acoustic tones. Results include a demonstration of the probe, preliminary analysis of acoustic and high speed chemiluminescence data, and high speed chemiluminescence imaging. The novelty of this paper is the deployment of a new test platform that incorporates full-scale engine hardware and provides the ability to directly compare acoustic and heat release response in a high-temperature, high-pressure environment to determine the flame transfer functions. This work is a stepping-stone towards the development of an on-line flame transfer function measurement technique for production engines in the field.
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现场燃气轮机火焰传递函数在线测量的实验研究
了解热声不稳定性对燃气涡轮发动机的可靠运行至关重要。使这种理解复杂化的是,燃气轮机燃烧器的极端敏感性可能导致不同机群的不稳定特性不同。在现场发动机中监测火焰传递函数的能力将提供有价值的数据,以提高对这种理解,并帮助燃气轮机从研发到现场调试的可操作性。本文介绍了一种新的实验装置,用于分析全尺寸燃气轮机喷油器硬件在高压和高温下的性能。它的特点是液体冷却,光纤耦合探头,为高速化学发光测量的热释放区提供直接的光学通道。该探头的设计考虑到了现场应用。此外,燃烧室还包括一个声学传感器阵列和一个大的客观窗口,用于使用高速化学发光成像验证探针。这项工作通过实验证明了在发动机条件下的新设置,重点是产生有趣的声学音调的操作区域。结果包括探针的演示,声学和高速化学发光数据的初步分析,以及高速化学发光成像。本文的新颖之处在于部署了一个新的测试平台,该平台集成了全尺寸发动机硬件,并提供了在高温高压环境下直接比较声学和热释放响应的能力,以确定火焰传递函数。这项工作为开发用于生产发动机的在线火焰传递函数测量技术奠定了基础。
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