首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >COMBUSTION INSTABILITIES DAMPING SYSTEM DEVELOPMENT FOR DRY LOW NOX EMISSIONS OPERABILITY ENHANCEMENT OF A HEAVY-DUTY GAS TURBINE
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COMBUSTION INSTABILITIES DAMPING SYSTEM DEVELOPMENT FOR DRY LOW NOX EMISSIONS OPERABILITY ENHANCEMENT OF A HEAVY-DUTY GAS TURBINE

机译:干燥低Nox排放可操作性增强重型燃气轮机的燃烧不含燃烧系统开发

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This paper describes the development phases of a damping system for combustion instability reduction in an annular type combustor for heavy-duty gas turbine applications. As reported by the authors in a previous paper, the full scale annular test rig allowed for an extensive characterization of the combustor with realistic acoustic boundaries at engine-relevant conditions. Emissions and operability assessment over a wide range of load conditions was performed, allowing the evaluation of the response of the system near the thermo-acoustic instability onset. The instability is quantified by its acoustic growth rate. This quantity is a crucial input in the design process of dampers. A methodology has been used to extract these growth rates form measured pulsation data. Experimentally determined growth rates have been evaluated for different fuel flow rate split between the main and the pilot injections, providing input to dampers preliminary design. Given current combustor architecture constraints, a first attempt configuration has been proposed and performances evaluated in the full annular rig. Dampers have been equipped with dynamic sensors and thermocouples with the purpose of measuring the growth rate abatement and the consequent NOx emissions reduction. A dedicated numerical toolbox, in-house developed by GE Power, has been used for both dampers preliminary design and growth rate reduction evaluation. Fine tuning of dampers elements as well as design assumptions adjustments required additional experimental evaluations and design iterations. Encouraged by the successful test in the concept phase, an optimized design for engine implementation was defined, that featured a significant increased damper volume, involving combustor parts re-design. The optimized configuration was finally tested in full annular rig and results demonstrated an important enhancement of operability while maintaining NOx emissions below the target levels.
机译:本文介绍了用于重型燃气轮机应用的环形燃烧器中燃烧不稳定降低的阻尼系统的显影阶段。如前论文所报告的,全尺度环形试验台允许在发动机相关条件下具有现实声学边界的燃烧器的广泛表征。在各种负载条件下进行排放和可操作性评估,允许评估系统附近热声不稳定发作附近的系统。不稳定通过其声生长速率量化。该数量是阻尼器设计过程中的重要输入。方法已经用于提取这些生长速率的测量脉动数据。通过在主要和试验喷射之间分配不同的燃料流速进行了实验确定的生长速率,为阻尼器初步设计提供了输入。给定电流燃烧器架构约束,已经提出了第一次尝试配置,并且在全环形钻台中评估的性能。阻尼器已经配备了动态传感器和热电偶,目的是测量增长速度减少和随后的NOx排放减少。专用数值工具箱,由GE电源开发的内部,已用于阻尼器初步设计和增长率降低评估。调整阻尼器元件以及设计假设调整需要额外的实验评估和设计迭代。通过在概念阶段成功测试的鼓励,定义了一种用于发动机实施的优化设计,其特点增加了阻尼容积,涉及燃烧器部件重新设计。最终在全环形钻机中测试了优化的配置,结果表明了可操作性的重要增强,同时保持目标水平以下的NOx排放。

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