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SIMULATION OF FLUIDELASTIC VIBRATIONS OF HEAT EXCHANGER TUBES WITH LOOSE SUPPORTS

机译:带有松动支撑的换热器管的弹塑性振动模拟

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Fluidelastic instability is regarded as the most complex and destructive flow excitation mechanism in heat exchanger tube arrays subjected to cross fluid flow. Several attempts have been made for modelling fluidelastic instability in tube arrays in order to predict the stability threshold. However, fretting wear prediction requires a nonlinear computation of the tube dynamics in which proper modelling of the fluid forcing function is essential. In this paper, a time domain simulation of fluidelastic instability is presented for a single flexible tube in an otherwise rigid array subjected to cross fluid flow. The model is based on the unsteady flow theory proposed by Lever and Weaver and Yetisir and Weaver. The developed model has been implemented in INDAP (Incremental Nonlinear Dynamic Analysis Program), an in-house finite element code. Numerical investigations were performed for two linear tube-array geometries and compared with published experimental data. A reasonable agreement between the numerical simulation and the experimental results was obtained. The fluidelastic force model was also coupled with a tube/support interaction model. The developed numerical model was utilized to study a loosely-supported cantilever tube subjected to air flow. Tube-to-support clearance, random excitation level, and flow velocity were then varied. The results indicated that the loose support has a stabilizing effect on the tube response. Both rms impact force and normal work rate increased as a result of increasing the flow velocity or the support radial clearance. Contact ratio exhibited a sharp increase at a flow velocity higher than the instability threshold of the first unsupported mode. In addition, an interesting behaviour has been observed, namely the change of tube's equilibrium position due to fluid forces. This causes a single-sided impact. At a higher turbulence level, double-sided impact conditions were dominant. The influence of these dynamic regimes on the tube/support parameters was also addressed.
机译:流体弹性不稳定性被认为是承受交叉流体流动的热交换器管阵列中最复杂,破坏性最大的流动激励机制。为了预测稳定性阈值,已经进行了几种尝试来模拟管阵列中的流体弹性不稳定性。但是,微动磨损预测需要对管动力学进行非线性计算,其中必须对流体强迫函数进行正确建模。在本文中,提出了时域模拟的流体弹性不稳定性,该单个挠性管在其他刚性阵列中承受横向流体流动。该模型基于Lever和Weaver以及Yetisir和Weaver提出的非定常流动理论。开发的模型已在内部有限元代码INDAP(增量非线性动态分析程序)中实现。对两个线性管阵列几何形状进行了数值研究,并与已发布的实验数据进行了比较。数值模拟与实验结果之间取得了合理的一致性。流体弹力模型也与管/支撑相互作用模型耦合。利用开发的数值模型来研究受到气流影响的悬臂式悬臂管。然后改变管到支撑的间隙,随机激发水平和流速。结果表明,松散的支撑物对管响应具有稳定作用。均方根冲击力和正常工作速率均由于流速或支撑径向间隙的增加而增加。在高于第一非支撑模式的不稳定性阈值的流速下,接触比显示出急剧的增加。另外,已经观察到有趣的行为,即由于流体力引起的管的平衡位置的变化。这会造成单方面的影响。在较高的湍流水平下,双面冲击条件占主导。这些动态方案对管/支撑参数的影响也得到了解决。

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