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SIMULATING EDDY CURRENT SENSORS IN BLADE TIP TIMING APPLICATION: MODELING AND EXPERIMENTAL VALIDATION

机译:叶片尖端定时中的电涡流传感器仿真:建模和实验验证

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In gas turbines, the blade vibration caused by aerodynamic excitation or by self-excited vibration and flutter leads to high cycle fatigue that represents the main cause of damage in turbomachinery. Turbine operators have resorted to assess the blade vibrations using non-contact systems. One of the well-known non-contact methods is Blade Tip Timing (BTT). BTT is based on monitoring the time history of the passing of each blade tip by stationary sensors mounted in a casing around the blades. The BTT method evaluates the blade time of arrival (ToA) in order to estimate the vibration. To perform the BTT technique, optical sensors were widely used by industry due to their high accuracy and performance under high temperatures, but the main drawback of these systems is their low tolerance to the presence of contaminants. To mitigate this downside, Eddy Current Sensors (ECS) are a good alternative for health monitoring application in gas turbines due to their immunity to contaminants and debris. This type of sensor was used by many researches, predominantly on the experimental side. The focus was to extract response frequencies and therefore the accuracy of the timing measurement was ignored due to the lack of modeling. This paper fills the gap between experiments and modeling by simulating a BTT application where detailed finite element modeling of active and passive ECS outputs was performed. A test rig composed of a bladed disk with 12 blades clamped to a rotating shaft was designed and manufactured in order to validate the proposed models with experimental measurements. Finally, a comparison between these different types of sensor output is presented to show the effect of the blade tip clearance and rotational speed on the accuracy of the BTT measurement.
机译:在燃气轮机中,由气动激励或自激振动和颤动引起的叶片振动会导致高周疲劳,这是造成涡轮机械损坏的主要原因。涡轮机操作员已使用非接触式系统评估叶片的振动。刀片尖端计时(BTT)是一种著名的非接触式方法。 BTT基于安装在刀片周围的机壳中的固定传感器监视每个刀片尖端通过的时间历史。 BTT方法评估叶片的到达时间(ToA),以估计振动。为了执行BTT技术,光学传感器由于其在高温下的高精度和高性能而被工业界广泛使用,但是这些系统的主要缺点是对污染物存在的耐受性低。为了减轻这种不利影响,涡电流传感器(ECS)由于对污染物和碎屑具有免疫力,因此是燃气轮机健康监测应用的不错选择。这种类型的传感器已被许多研究使用,主要是在实验方面。重点是提取响应频率,因此由于缺乏建模,因此忽略了时序测量的准确性。本文通过模拟BTT应用程序填补了实验和建模之间的空白,在BTT应用程序中对主动和被动ECS输出执行了详细的有限元建模。设计和制造了一个试验台,该试验台由一个带刀片的圆盘组成,其中的12个刀片固定在旋转轴上,以便通过实验测量来验证所提出的模型。最后,对这些不同类型的传感器输出之间的比较进行了比较,以显示叶片尖端间隙和转速对BTT测量精度的影响。

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