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DEVELOPMENT OF A COMBINED EDDY CURRENT AND PRESSURE SENSOR FOR GAS TURBINE BLADE HEALTH MONITORING

机译:燃气轮机叶片健康监测的涡流压力传感器组合开发

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Gas turbine engine health monitoring systems play an active role to ensure timely maintenance and prevention of failures. Tip-timing and tip clearance measurements form a major part of gas turbine health monitoring systems. They are used to assess turbomachinery blade vibrations using non-contact systems such as optical, capacitive, Hall effect, eddy current etc. Most of these sensors are prone to contamination, non-linearity and cannot measure both tip-timing and tip-clearance together. Eddy current sensors are found to be robust and can measure both tip-timing and tip-clearance simultaneously. They are already being used in gas turbine health monitoring systems to assess compressor and turbine blade vibrations. Apart from assessing blade vibrations, it will be quite beneficial to predict and prevent surge and stall of compressors in an engine. Surge and stall can be disastrous for an aircraft during flight as it can cause severe damage to the engine. Pressure sensors are generally used to study the variations in the inlet flow for surge and stall protection in an engine and play an important role in health monitoring. A new combined sensor that can measure tip-timing, tip-clearance and dynamic pressure was developed at the University of Oxford for use in gas turbine engine health monitoring. The combined sensor uses a pressure sensor in the centre and is enclosed by an eddy current sensor forming a compact single package. The pressure sensor used here is a fast response optical based sensor that is known to work at high temperatures and is less noisy compared to piezo based pressure sensors. The pressure sensor can also measure the steady state temperature of the casing. The combined sensor is found to be quite robust and is able to operate in harsh environments without any loss in accuracy. Due to the combined package, the space occupied is much less compared to that required by two separate sensors. The sensor has many applications that include measuring vibrations, active flow control, stall/surge of compressors etc. The paper presents the design and development of this combined sensor along with experimental results on tip timing and unsteady pressures from gas turbine engine fan blades. The engine tests included looking at the effects of squeezing the inlet casing and to study the effect of distorting the inlet flow on blade vibrations by placing varying number of bars in the inlet duct of the engine.
机译:燃气轮机健康监测系统在确保及时维护和预防故障方面发挥着积极作用。尖端定时和尖端间隙测量是燃气轮机健康监测系统的重要组成部分。它们用于通过非接触式系统(例如光学,电容,霍尔效应,涡流​​等)评估涡轮机械叶片的振动。这些传感器中的大多数易于污染,非线性并且无法同时测量叶尖定时和叶尖间隙。发现涡流传感器坚固耐用,可以同时测量尖端定时和尖端间隙。它们已经用于燃气轮机健康监测系统中,以评估压缩机和涡轮叶片的振动。除了评估叶片振动之外,预测和防止发动机中压缩机的喘振和失速将非常有益。喘振和失速对飞机在飞行过程中可能是灾难性的,因为它可能会严重损坏发动机。压力传感器通常用于研究进气流量的变化,以保护发动机的喘振和失速,并在健康监测中发挥重要作用。牛津大学开发了一种新的组合传感器,可以测量叶尖正时,叶尖间隙和动态压力,用于燃气轮机健康监测。组合式传感器在中央使用压力传感器,并被涡流传感器包围,从而形成了紧凑的单个包装。此处使用的压力传感器是一种基于快速响应光学的传感器,已知可以在高温下工作,并且与基于压电的压力传感器相比,噪声较小。压力传感器还可以测量壳体的稳态温度。组合传感器非常坚固,能够在恶劣的环境下工作而不会损失任何精度。由于采用了组合式包装,与两个独立传感器所需的空间相比,其占用的空间要少得多。该传感器具有许多应用,包括测量振动,主动流量控制,压缩机失速/喘振等。本文介绍了该组合传感器的设计和开发,以及有关叶尖正时和来自燃气轮机风扇叶片的非恒定压力的实验结果。发动机测试包括查看压紧进口壳体的效果,以及通过在发动机的进口导管中放置不同数量的杆来研究扭曲进气流对叶片振动的影响。

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