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Dynamic modal analysis during reduced scale model tests of hydraulic turbines for hydro-acoustic characterization of cavitation flows

机译:水轮机缩水模型试验中的动态模态分析,用于空化流的水声表征

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Francis turbines operating at off-design conditions experience the development of unfavourable cavitation flows in the draft tube at the runner outlet, which induce pressure pulsations and hydro-acoustic resonances in the worst cases. The assessment of hydropower plant units at off-design conditions is possible by means of one-dimensional numerical simulation, which however requires a proper modelling of the draft tube cavitation flow. The corresponding hydro-acoustic parameters can be identified for a wide number of operating points on the reduced scale model of the machine by modal analysis of the hydraulic test rig. This identification approach is efficient but can however be time-consuming for an industrial project. The paper aims at proposing and validating a faster procedure to identify the eigenfrequencies and the corresponding eigenmodes of a hydraulic test rig featuring a reduced scale model of a Francis turbine operating in off-design conditions. The test rig is excited by injecting a periodical discharge with a rotating valve whose frequency linearly increases from 0 to 7 Hz. Based on the response of the test rig, measured by pressure sensors placed along the pipes, the eigenfrequencies and the corresponding eigenmodes are identified for several operating conditions. The hydro-acoustic parameters are then identified by using a one-dimensional numerical model of the test rig. The results are in very good agreement with those obtained with the standard procedure, i.e. with a stepwise increase of the excitation frequency. This new approach represents an important gain of time and might be applied to assess hydropower plant stability in an industrial context. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在非设计工况下运行的混流式涡轮机在流道出口处的引流管中会出现不利的气穴流,这会在最坏的情况下引起压力脉动和水声共振。通过一维数值模拟可以对非设计条件下的水力发电厂机组进行评估,但是,这需要对引水管空化流进行适当的建模。通过对液压试验台进行模态分析,可以在机器的缩小比例模型上为多个工作点识别相应的水声参数。这种识别方法是有效的,但是对于工业项目可能会很费时。本文旨在提出和验证一种更快的程序,以识别液压试验机的本征频率和相应的本征模式,该试验机具有在非设计条件下运行的混流式水轮机的缩小比例模型。通过用频率从0到7 Hz线性增加的旋转阀注入定期放电来激发测试设备。根据测试设备的响应,该响应是由沿着管道放置的压力传感器测得的,可以确定几种工作条件下的本征频率和相应的本征模式。然后,通过使用测试装置的一维数值模型来识别水声参数。结果与标准方法获得的结果非常吻合,即逐步增加激励频率。这种新方法代表了重要的时间节省,可用于在工业环境下评估水力发电厂的稳定性。 (C)2018 Elsevier Ltd.保留所有权利。

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