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Crack-Detection Experiments on Simulated Turbine Engine Disks in NASA Glenn Research Center's Rotordynamics Laboratory

机译:NASA Glenn研究中心的转子动力学实验室在模拟涡轮发动机盘上的裂纹检测实验

摘要

The development of new health-monitoring techniques requires the use of theoretical and experimental tools to allow new concepts to be demonstrated and validated prior to use on more complicated and expensive engine hardware. In order to meet this need, significant upgrades were made to NASA Glenn Research Center s Rotordynamics Laboratory and a series of tests were conducted on simulated turbine engine disks as a means of demonstrating potential crack-detection techniques. The Rotordynamics Laboratory consists of a high-precision spin rig that can rotate subscale engine disks at speeds up to 12,000 rpm. The crack-detection experiment involved introducing a notch on a subscale engine disk and measuring its vibration response using externally mounted blade-tip-clearance sensors as the disk was operated at speeds up to 12 000 rpm. Testing was accomplished on both a clean baseline disk and a disk with an artificial crack: a 50.8-mm- (2-in.-) long introduced notch. The disk s vibration responses were compared and evaluated against theoretical models to investigate how successful the technique was in detecting cracks. This paper presents the capabilities of the Rotordynamics Laboratory, the baseline theory and experimental setup for the crack-detection experiments, and the associated results from the latest test campaign.
机译:新的健康监控技术的发展需要使用理论和实验工具,以允许在更复杂,更昂贵的发动机硬件上使用新概念之前对其进行演示和验证。为了满足这一需求,美国宇航局格伦研究中心的转子动力学实验室进行了重大升级,并在模拟涡轮发动机盘上进行了一系列测试,以证明潜在的裂纹检测技术。转子动力学实验室由高精度旋转钻机组成,该旋转钻机能够以高达12,000 rpm的速度旋转子级发动机盘。裂纹检测实验包括在副尺寸发动机盘上引入一个缺口,并使用外部安装的叶片尖端间隙传感器测量其振动响应,因为该盘以最高12000 rpm的速度运行。测试是在干净的基准磁盘和具有人工裂缝的磁盘上完成的:50.8毫米(2英寸)长的引入槽口。将磁盘的振动响应进行了比较,并根据理论模型进行了评估,以研究该技术在检测裂纹方面的成功程度。本文介绍了转子动力学实验室的功能,用于裂纹检测实验的基线理论和实验设置,以及最新测试活动的相关结果。

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