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Fluid-structure interaction study of gas turbine blade vibrations

机译:燃气轮机叶片振动的流固耦合研究

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A recent research program has identified the possibility of using the analysis of casing wall pressures in the direct measurement of gas turbine rotor blade vibration amplitudes. Currently the dominant method of non-contact measurement of gas turbine blade vibrations employs the use of a number of proximity probes located around the engine periphery measuring the blade tip (arrival) time. Despite the increasing ability of this method there still exist some limitations, ie. the requirement of a large number of sensors for each engine stage, sensitivity to sensor location, difficulties in dealing with multiple excitation frequencies and sensors being located in the gas path. Analytical modelling of the casing wall pressures and reconstruction of rotor blade vibration amplitudes from the analysis of these simulated pressure signals has shown significant improvement over current non-contact rotor blade vibration measurement limitations by requiring only a limited number of sensors and providing robust rotor blade vibration amplitude estimates in the presence of simulated measurement noise. However, this modelling was conducted with some fundamental assumptions about the casing wall pressures being made. One of these assumptions presumed that during blade motion the pressure profile around the rotor blades follows the blade's motion while it oscillates around its equilibrium position. This assumption is investigated in this paper through the numerical modelling of the fully coupled two-way rotor blade motion and fluid pressure interaction.
机译:最近的研究程序已经确定了在直接测量燃气轮机转子叶片振动幅度时使用套管壁压力分析的可能性。当前,燃气轮机叶片振动的非接触测量的主要方法是使用位于发动机周围的许多接近探针来测量叶片尖端(到达)时间。尽管此方法的功能不断增强,但仍然存在一些局限性。每个发动机级都需要大量传感器,对传感器位置的敏感性,在处理多个激励频率时遇到的困难以及传感器位于气路中。通过对这些模拟压力信号的分析,对套管壁压力的分析建模和转子叶片振动幅度的重构已显示出,通过仅需要有限数量的传感器并提供可靠的转子叶片振动,已大大改善了当前非接触式转子叶片振动测量的局限性在存在模拟测量噪声的情况下进行幅度估计。但是,该建模是基于有关套管壁压力的一些基本假设进行的。这些假设之一假设在叶片运动期间,围绕转子叶片的压力分布跟随叶片的运动,同时叶片围绕其平衡位置振荡。本文通过对完全耦合的双向转子叶片运动和流体压力相互作用的数值模型进行了研究。

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