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A METHOD FOR EXTRACTING THE TIME DELAY FROM THE UNSTEADY AND QUASI-STEADY FLUIDELASTIC FORCES IN TWO-PHASE FLOW

机译:从两相流中的非定常和准定常的弹塑性力中提取时间延迟的方法

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The time delay is a key parameter for modeling fluidelastic instability, especially the damping controlled mechanism. It can be determined experimentally by measuring directly the time lag between the tube motion and the induced fluid forces. The fluid forces may be obtained by integrating the pressure field around the moving tube. However, this method faces certain difficulties in two-phase flow since the high turbulence and the non-uniformity of the flow may increase the randomness of the measured force. To overcome this difficulty, an innovative method for extracting the time delay inherent to the quasi-steady model for fluidelastic instability is proposed in this study. Firstly, experimental measurements of unsteady and quasi-static fluid forces (in the lift direction) acting on a tube subject to two-phase flow were conducted. The unsteady fluid forces were measured by exciting the tube using a linear motor. These forces were measured for a wide range of void fraction, flow velocities and excitation frequencies. The experimental results showed that the unsteady fluid forces could be represented as single valued function of the reduced velocity (flow velocity reduced by the excitation frequency and the tube diameter). The time delay was determined by equating the unsteady fluid forces with the quasi-static forces. The results given by this innovative method of measuring the time delay in two-phase flow were consistent with theoretical expectations. The time delay could be expressed as a linear function of the convection time and the time delay parameter was determined for void fractions ranging from 60% to 90%. Fluidelastic instability calculations were also performed using the quasi-steady model with the newly measured time delay parameter. Previously conducted stability tests provided the experimental data necessary to validate the theoretical results of the quasi-steady model. The validity of the quasi-steady model for two-phase flow was confirmed by the good agreement between its results and the experimental data. The newly measured time delay parameter has improved significantly the theoretical results, especially for high void fractions (90%). However, the model could not be verified for void fractions lower or equal to 50% due to the limitation of the current experimental setup. Further studies are consequently required to clarify this point. Nevertheless, this model can be used to simulate the flow induced vibrations in steam generators' tube bundles as their most critical parts operate at high void fractions (≥ 60%).
机译:时延是建模流体弹性不稳定性(尤其是阻尼控制机制)的关键参数。可以通过直接测量管运动与感应流体力之间的时间差来实验确定。可以通过对移动管周围的压力场进行积分来获得流体力。然而,该方法在两相流中面临某些困难,因为高湍流和流的不均匀性可能会增加被测力的随机性。为了克服这个困难,本研究提出了一种新颖的方法来提取流体弹性不稳定性的准稳态模型固有的时延。首先,对作用于两相流的管上的非稳态和准静态流体力(沿升力方向)进行了实验测量。通过使用线性电动机激励管来测量非稳态流体力。在很大范围的空隙率,流速和激发频率下测量了这些力。实验结果表明,非稳态流体力可以表示为速度降低的单值函数(流速因激励频率和管径而降低)。通过将不稳定流体力与准静态力相等来确定时间延迟。这种创新的测量两相流时延的方法给出的结果与理论预期相符。可以将时间延迟表示为对流时间的线性函数,并确定60%至90%的空隙率的时间延迟参数。还使用具有新测得的时延参数的准稳态模型进行了流体弹性不稳定性计算。先前进行的稳定性测试提供了必要的实验数据,以验证准稳态模型的理论结果。结果与实验数据吻合良好,证实了准稳态两相流模型的有效性。新测量的时延参数已大大改善了理论结果,尤其是对于高空隙率(90%)而言。但是,由于当前实验设置的限制,无法验证模型的空隙率是否低于或等于50%。因此,需要进一步的研究来阐明这一点。尽管如此,该模型仍可用于模拟蒸汽发生器管束中的流动引起的振动,因为其最关键的部分在高空隙率(≥60%)下工作。

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