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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Commissioning of a Combined Hot-Streak and Swirl Profile Generator in a Transonic Turbine Test Facility
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Commissioning of a Combined Hot-Streak and Swirl Profile Generator in a Transonic Turbine Test Facility

机译:在跨音速涡轮测试设施中调试组合的热条纹和涡流轮廓发生器

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By enhancing the premixing of fuel and air prior to combustion, recently developed lean-burn combustor systems have led to reduced NO_x and particulate emissions in gas turbines. Lean-burn combustor exit flows are typically characterized by nonuniformities in total temperature, or so-called hot-streaks, swirling velocity profiles, and high turbulence intensity. While these systems improve combustor performance, the exiting flow-field presents significant challenges to the aerothermal performance of the downstream turbine. This paper presents the commissioning of a new fully annular lean-burn combustor simulator for use in the Oxford Turbine Research Facility (OTRF), a transonic rotating facility capable of matching nondimensional engine conditions. The combustor simulator can deliver engine-representative turbine inlet conditions featuring swirl and hot-streaks either separately or simultaneously. To the best of our knowledge, this simulator is the first of its kind to be implemented in a rotating turbine test facility.The combustor simulator was experimentally commissioned in two stages. The first stage of commissioning experiments was conducted using a bespoke facility exhausting to atmospheric conditions (Hall and Povey, 2015, "Experimental Study of Non-Reacting Low NO_x Combustor Simulator for Scaled Turbine Experiments," ASME Paper No. GT2015-43530.) and included area surveys of the generated temperature and swirl profiles. The survey data confirmed that the simulator performed as designed, reproducing the key features of a lean-burn combustor. However, due to the hot and cold air mixing process occurring at lower Reynolds number in the facility, there was uncertainty concerning the degree to which the measured temperature profile represented that in OTRF. The second stage of commissioning experiments was conducted with the simulator installed in the OTRF. Measurements of the total temperature field at turbine inlet and of the high-pressure (HP) nozzle guide vane (NGV) loading distributions were obtained and compared to measurements with uniform inlet conditions. The experimental survey results were compared to unsteady numerical predictions of the simulator at both atmospheric and OTRF conditions. A high level of agreement was demonstrated, indicating that the Reynolds number effects associated with the change to OTRF conditions were small. Finally, data from the atmospheric test facility and the OTRF were combined with the numerical predictions to provide an inlet boundary condition for numerical simulation of the test turbine stage. The NGV loading measurements show good agreement with the numerical predictions, providing validation of the stage inlet boundary condition imposed. The successful commissioning of the simulator in the OTRF will enable future experimental studies of lean-burn combustor-turbine interaction.
机译:通过增强燃烧前燃料和空气的预混合,最近开发的稀薄燃烧器系统已导致燃气轮机的NO_x和颗粒物排放减少。稀薄燃烧器的出口流通常以总温度不均匀(即所谓的热条纹),旋流速度分布和高湍流强度为特征。虽然这些系统改善了燃烧器的性能,但现有的流场对下游涡轮的空气热力性能提出了重大挑战。本文介绍了一种用于牛津涡轮研究设施(OTRF)的新型全环形稀薄燃烧室燃烧器模拟器的调试,该设施是一种能够适应无量纲发动机工况的跨音速旋转设施。燃烧器模拟器可以分别或同时提供具有涡流和热条纹的发动机代表性涡轮进气状况。据我们所知,该模拟器是首款在旋转涡轮测试设备中实施的模拟器。燃烧室模拟器经过两个阶段的实验调试。调试实验的第一阶段是使用向大气排放的定制设备进行的(Hall和Povey,2015年,“非反应性低NO_x燃烧器模拟器的大规模涡轮实验研究”,ASME文件GT2015-43530。)包括对产生的温度和旋流剖面的面积调查。调查数据证实,模拟器的性能符合设计要求,再现了稀薄燃烧室的关键特征。但是,由于设备中的雷诺数较低时发生了冷热空气混合过程,因此所测温度曲线表示OTRF的程度存在不确定性。调试实验的第二阶段是使用安装在OTRF中的模拟器进行的。获得了涡轮进口处的总温度场的测量值以及高压(HP)喷嘴导向叶片(NGV)的载荷分布的测量值,并将其与具有均匀入口条件的测量值进行了比较。将实验调查结果与模拟器在大气和OTRF条件下的非稳态数值预测进行了比较。证明了高度的一致性,表明与OTRF条件变化相关的雷诺数影响很小。最后,将来自大气测试设施和OTRF的数据与数值预测相结合,以提供用于测试涡轮级数值模拟的入口边界条件。 NGV载荷测量结果与数值预测显示出良好的一致性,从而验证了所施加的级入口边界条件。 OTRF中模拟器的成功调试将使未来的稀薄燃烧室-涡轮相互作用实验研究成为可能。

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