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首页> 外文期刊>Journal of Fluids and Structures >Vortex shedding and fluidelastic instability in a normal square tube array excited by two-phase cross-flow
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Vortex shedding and fluidelastic instability in a normal square tube array excited by two-phase cross-flow

机译:两相错流激发的正方管阵列中的涡旋脱落和流体弹性不稳定性

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Laboratory experiments were conducted to determine the flow-induced vibration (FIV) response and fluidelastic stability threshold of a model heat exchanger tube bundle subjected to a cross-flow of refrigerant II. The tube bundle consisted of a normal square array of 12 tubes with outer tube diameters of 7.11 mm and a pitch over diameter ratio of 1.485. The experiments were conducted in a flow-loop that was capable of generating single- and two-phase cross-flows over a variety of mass fluxes and void fractions. The primary intent of the research was to improve our understanding of the FIVs of heat exchanger tube arrays subjected to two-phase cross-flow. Of particular concern was the effect of array pattern geometry on fluidelastic instability. The experimental results are analysed and compared with existing data from the literature using various methods of parameter definition. Comparison of tube vibration response in liquid flow with previous results shows a similar occurrence of symmetric vortex shedding that validates the scale model approach in single-phase flow. It was found that the introduction of a small amount of bubbles in the flow disrupted the vortex shedding and thereby caused a significant reduction in streamwise vibration amplitude. The fluidelastic stability thresholds for the present array agree well with results from previous studies. Furthermore, a good collapse of the stability data from various investigations is obtained when the fluid density is defined using the slip model of Feenstra et al. and when an effective two-phase flow velocity is defined using the interfacial velocity model of Nakamura et al.
机译:进行了实验室实验,以确定经受制冷剂II交叉流动的模型热交换器管束的流致振动(FIV)响应和流体弹性稳定性阈值。管束由12个管的标准正方形阵列组成,管的外径为7.11毫米,螺距直径比为1.485。实验在流循环中进行,该流循环能够在各种质量通量和空隙率上产生单相和两相错流。该研究的主要目的是增进我们对经受两相错流的热交换器管阵列的FIV的理解。特别令人关注的是阵列图案几何形状对流体弹性不稳定性的影响。使用各种参数定义方法对实验结果进行分析,并与文献中的现有数据进行比较。将液体流动中的管振动响应与先前的结果进行比较,可以发现类似的对称涡旋脱落现象,从而验证了单相流动中的比例模型方法。已经发现,在流中引入少量气泡破坏了涡旋脱落,从而导致沿流振动幅度的显着降低。本阵列的流体弹性稳定性阈值与先前研究的结果非常吻合。此外,当使用Feenstra等人的滑动模型定义流体密度时,可以通过各种研究获得稳定性数据的良好崩溃。当使用Nakamura等人的界面速度模型定义有效的两相流速时。

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