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VIBRATION BEHAVIOR OF A CHANNEL SUBJECTED TO AN INTERNAL TWO-PHASE FLOW

机译:内部两相流通道的振动特性

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Vibrations of a channel wall subjected to an external two-phase flow have been widely investigated in the past. However, there is very little information on the effect of internal two-phase flows on the vibrations. To this end, this paper presents results of an experimental investigation of changes to wall vibrations in a vertical square channel, which are caused by introducing a uniform bubble cloud into the flow. The effects of void fraction, characteristic bubble size and flow velocity on wall vibrations are measured. Results show that wall vibrations are greatly enhanced, by up to 25 dB, compared with the same flow without bubbles. The enhancement and spectra of the vibration are mainly dependent on the bubble void fraction. To understand the physics behind the results, evolution of the spectra along the streamwise direction are examined. The primary mechanisms for increased vibrations are: the lateral fundamental acoustic mode excitation of a bubble cloud whose frequency decreases due to change in sonic speed and normal modes of the bubble cloud. The fundamental mode of a bubble cloud persists along the entire channel and its harmonics enhance the vibrations over a broad frequency range. The cloud normal modes are generated due to the process of bubble formation, and they decay with increasing distance from the source.
机译:过去,已经广泛研究了经受外部两相流的通道壁的振动。但是,关于内部两相流对振动的影响的信息很少。为此,本文介绍了对垂直方形通道中壁振动变化进行实验研究的结果,这些变化是由于将均匀的气泡云引入流中引起的。测量了空隙率,特征气泡尺寸和流速对壁振动的影响。结果表明,与不带气泡的相同流动相比,壁振动大大提高了25 dB。振动的增强和频谱主要取决于气泡空隙率。为了理解结果背后的物理原理,研究了沿流向的光谱演化。增加振动的主要机制是:气泡云的横向基本声学模式激发,其频率由于声速的变化和气泡云的正常模式而降低。气泡云的基本模式会在整个通道中持续存在,其谐波会在较宽的频率范围内增强振动。云正常模式是由于气泡形成过程而产生的,并且随着距源的距离增加而衰减。

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