首页> 外文会议>ASME (American Society of Mechanical Engineers) Turbo Expo 2002: Turbomachinery >EXPERIMENTAL INVESTIGATION OF AN INNOVATIVE COOLING SYSTEM (ICS) FOR HIGH TEMPERATURE TRANSONIC TURBINE STAGES
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EXPERIMENTAL INVESTIGATION OF AN INNOVATIVE COOLING SYSTEM (ICS) FOR HIGH TEMPERATURE TRANSONIC TURBINE STAGES

机译:高温跨音速涡轮冷却阶段创新冷却系统(ICS)的实验研究

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Gas turbine design technology requires the development of transonic turbine stages capable of carrying high stage load and of handling hot gas temperatures at turbine inlet. A reliable cooling system is necessary to cope with the shock system in the main flow field especially in the leading edge region of the rotor blades. These requirements are fulfilled by the Innovative Cooling System (ICS) developed at the Institute for Thermal Turbomachinery and Machine Dynamics, Graz University of Technology. The ICS is also able to cover large areas of the blade surface with an effective cooling film and to reduce the metal temperature. In this paper the authors present results on the flow measurements giving the aerodynamic behavior of these cooling films and on the investigation of their cooling effectiveness. The measurements were done on an industrial turbine blade in a linear cascade arrangement. In addition to conventional measurement methods optical methods (Schlieren visualization, Laser Doppler Velocimetry) were employed to investigate and visualize the transonic flow through the linear blade cascade. An infrared (IR) camera system was used to determine the effectiveness of this newly designed cooling system by measuring the temperature distribution on the blade surface. Experimental results concerning aerodynamic flow behavior and cooling effectiveness are presented.
机译:燃气轮机设计技术要求开发跨音速涡轮机级,该级跨音速涡轮机级能够承受高级负载并能够处理涡轮机入口处的高温气体温度。为了在主流场中尤其是在转子叶片的前缘区域中应对冲击系统,必须有可靠的冷却系统。这些要求可以通过格拉茨工业大学热力涡轮机械和机械动力学研究所开发的创新冷却系统(ICS)来满足。 ICS还能够通过有效的冷却膜覆盖叶片表面的大部分区域,并降低金属温度。在本文中,作者提出了有关流量测量的结果,这些流量给出了这些冷却膜的空气动力学行为,并研究了其冷却效果。测量是在工业涡轮机叶片上以线性级联方式进行的。除了常规的测量方法外,还采用光学方法(Schlieren可视化,激光多普勒测速法)来研究和可视化通过线性叶片叶栅的跨音速流。通过测量叶片表面的温度分布,使用了红外(IR)摄像机系统来确定这种新设计的冷却系统的有效性。提出了关于空气动力流动行为和冷却效率的实验结果。

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