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Dynamic characteristics and stability of pipe-in-pipe system conveying two- phase flow in thermal environment

机译:热环境中输送两相流管道系统的动态特性及稳定性

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Pipe-in-pipe (PIP) systems are utilized widely in modern petroleum industry owing to their good insulation effect. In present work, a novel mathematical model for the free vibration of the fluid-conveying cantilevered PIP system considering thermal effect and two-phase flow is proposed. The insulation layer connecting two concentric pipes is simplified as the distributed springs and dampers here. The governing equation of the pipe system is then derived using Hamilton's principle based on Euler-Bernoulli beam theory. Then the Galerkin method is applied to the free vibration analysis. In the numerical section, parametric analysis is performed to elucidate the effects of different physical factors, such as environment temperature, equivalent stiffness and damper of the insulation layer, structural damping, two-phase flow, and axial load on the dynamic characteristic and stability of the PIP system through the forms of Argand diagram, stability map, and time history diagram. The results show that the PIP system has an advantage over a single fluid-conveying pipe in terms of stability considering thermal effect, axial load, and structural damping. Besides, different from single pipe, two different frequencies are found for each vibration mode, and two-pipe coupled flutter instability occurs to the PIP system as the fluid velocity exceeds the critical fluid velocity. The theoretical work is helpful to improve the analysis and design of the PIP system with consideration of internal two-phase flow and environmental temperature.
机译:由于它们的绝缘效果良好,管道管(PIP)系统在现代石油工业中广泛使用。在目前的工作中,提出了一种考虑热效应和两相流的流体输送悬臂式PIP系统的自由振动的新颖数学模型。连接两个同心管的绝缘层被简化为分布式弹簧和阻尼器。然后使用汉密尔顿基于Euler-Bernoulli光束理论来源管道系统的控制方程。然后将Galerkin方法应用于自由振动分析。在数值部分中,进行参数分析以阐明不同物理因素的影响,例如环境温度,相同的刚度和阻尼器的绝缘层,结构阻尼,两相流和轴向载荷对动态特性和稳定性PIP系统通过Argand图,稳定性图和时间历史图的形式。结果表明,考虑热效应,轴向荷载和结构阻尼,PIP系统在单个流体输送管上具有优势。此外,与单管不同的不同,每个振动模式发现两种不同的频率,并且由于流体速度超过临界流体速度,PIP系统发生两管耦合颤动不稳定。理论上的工作有助于通过考虑内部两相流和环境温度来改善PIP系统的分析和设计。

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