首页> 外文期刊>Applied Sciences >Transmission of High Frequency Vibrations in Rotating Systems. Application to Cavitation Detection in Hydraulic Turbines
【24h】

Transmission of High Frequency Vibrations in Rotating Systems. Application to Cavitation Detection in Hydraulic Turbines

机译:旋转系统中高频振动的传递。在水轮机汽蚀检测中的应用

获取原文
       

摘要

One of the main causes of damage in hydraulic turbines is cavitation. While not all cavitation appearing in a turbine is of a destructive type, erosive cavitation can severely affect the structure, thus increasing maintenance costs and reducing the remaining useful life of the machine. Of all types of cavitation, the maximum erosion occurs when clouds of bubbles collapse on the runner surface (cloud cavitation). When this occurs it is associated with a substantial increase in noise, and vibrations that are propagated everywhere throughout the machine. The generation of these cavitation clouds may occur naturally or it may be the response to a periodic pressure fluctuation, like the rotor/stator interaction in a hydraulic turbine. Erosive bubble cavitation generates high-frequency vibrations that are modulated by the shedding frequency. Therefore, the methods for the detection of erosive cavitation in hydraulic turbines are based on the measurement and demodulation of high-frequency vibrations. In this paper, the feasibility of detecting erosive cavitation in hydraulic turbines is investigated experimentally in a rotating disk system, which represents a simplified hydraulic turbine structure. The test rig used consists of a rotating disk submerged in a tank of water and confined with nearby axial and radial rigid surfaces. The excitation patterns produced by cloud cavitation are reproduced with a PZT (piezoelectric patch) located on the disk. These patterns include pseudo-random excitations of different frequency bands modulated by one low carrier frequency, which model the erosive cavitation characteristics. Different types of sensors have been placed in the stationary and in the rotating parts (accelerometers, acoustic emission (AE), and a microphone) in order to detect the excitation pattern. The results obtained for all the sensors tested have been compared in detail for the different excitation patterns applied to the disk. With this information, the best location and type of sensor to detect the different excitations have been identified. This study permits improving the actual technique of detecting erosive cavitation in hydraulic turbines and, therefore, to avoid operation under these circumstances.
机译:水轮机损坏的主要原因之一是气蚀。尽管并非所有出现在涡轮机中的气蚀都是破坏性的,但侵蚀性的气蚀会严重影响结构,从而增加维护成本并减少机器的剩余使用寿命。在所有类型的空化中,当气泡云在流道表面上坍塌时会发生最大程度的腐蚀(云空化)。发生这种情况时,会导致噪音大幅增加,并且振动会传播到整个机器的各处。这些气蚀云的产生可能是自然发生的,也可能是对周期性压力波动的响应,例如水轮机中的转子/定子相互作用。腐蚀性气泡的气蚀会产生高频振动,该振动由脱落频率调制。因此,水轮机中侵蚀性气蚀的检测方法基于高频振动的测量和解调。在本文中,通过旋转盘系统实验研究了检测水轮机中侵蚀性气蚀的可行性,该系统代表了简化的水轮机结构。所使用的测试设备由浸没在水箱中的转盘组成,并限制在附近的轴向和径向刚性表面。由云气蚀产生的激励模式通过位于磁盘上的PZT(压电补丁)进行复制。这些模式包括由一个低载频调制的不同频带的伪随机激励,它们模拟了侵蚀性的空化特性。为了检测激励模式,已在固定部件和旋转部件(加速度计,声发射(AE)和麦克风)中放置了不同类型的传感器。对于应用到磁盘的不同激励模式,已对所有测试的传感器获得的结果进行了详细比较。有了这些信息,就可以确定检测不同激励的传感器的最佳位置和类型。这项研究可以改进检测水轮机中侵蚀性气蚀的实际技术,因此可以避免在这种情况下运行。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号