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Signal analysis of an actively generated cavitation bubble in pressurized pipes for detection of wall stiffness drops

机译:压力管道中主动产生的空化气泡的信号分析,用于检测壁的刚度下降

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Due to the increasing production of volatile new renewable energies as solar and wind, storage hydropower plants have to operate under harsh operation conditions in order to stabilize the electricity grid. As a result, highly transient water pressures occur in pressure tunnels and shafts more frequently. Non-intrusive monitoring techniques are therefore of special interest for these critical infrastructures. The propagation of a pressure wave generated actively by a cavitation bubble was experimentally investigated in a steel test pipe divided in several reaches. A local wall stiffness drop was simulated by replacing steel pipe reaches with less stiff materials as aluminum and PVC. Through the analysis of the pressure wave reflections due to the cavitation bubble explosion, recorded by two hydrophones placed at the extremities of the test pipe, the location of the weak reaches could be detected. An underwater spark generator was developed to produce cavitation bubbles in the pipe resulting in very steep shock waves. This allowed identifying very precisely the wave front and correspondingly the wave speed and the weak reach location. Compared to the wave analysis from water-hammer signals, the active cavitation bubble generation in the pipe is an innovative method that significantly increased the effectiveness of the detection of wall stiffness drops. (C) 2016 Elsevier Ltd. All rights reserved.
机译:由于不断增加的挥发性新可再生能源(例如太阳能和风能)的产生,蓄水电站必须在恶劣的运行条件下运行才能稳定电网。结果,在压力通道和竖井中更频繁地出现高瞬态水压。因此,对于这些关键基础架构而言,非侵入式监视技术尤为重要。在分成几段的钢制试管中,对空化气泡主动产生的压力波的传播进行了实验研究。通过用较不坚硬的材料(例如铝和PVC)代替钢管,来模拟局部壁的刚度下降。通过分析由气穴气泡爆炸引起的压力波反射(由放置在试管末端的两个水听器记录),可以检测到薄弱部位的位置。开发了水下火花发生器,以在管道中产生气穴气泡,从而产生非常陡峭的冲击波。这允许非常精确地识别波前,并相应地识别波速和弱到达位置。与根据水锤信号进行波分析相比,管道中的主动空化气泡生成是一种创新方法,可显着提高检测壁刚度下降的有效性。 (C)2016 Elsevier Ltd.保留所有权利。

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