Investigation On Gas-Liquid Two-Phase Flow-Induced Vibrations Of A Horizontal Elastic Pipe

IF 1 4区 工程技术 Q4 ENGINEERING, MECHANICAL Journal of Pressure Vessel Technology-Transactions of the Asme Pub Date : 2023-08-24 DOI:10.1115/1.4063241
H. Su, Y. Qu, Z. Peng
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Abstract

This paper is concerned with experimental analyses on the vibration behaviors of a horizontal pipe containing gas-liquid two-phase flow with different flow patterns. The effects of flow patterns and superficial velocities on pressure fluctuations and structural responses are evaluated in detail. Numerical simulations on the fluid-structure interactions within the pipe are carried out using the volume of fluid method and the finite element method. A strongly partitioned coupling method is adopted to ensure the compatibility and equilibrium interface conditions between the fluid and the elastic pipe. The accuracy of the numerical solutions is confirmed by comparing with experimental results. It is found that the fluctuation frequency of the pressure fluctuations of the two-phase flow ranges from 0Hz to 5Hz. The standard deviation value of the pressure fluctuation of the two-phase flow increases with an increase in the superficial liquid velocity, and the maximum magnitude appears in slug flows. The vibration responses of the pipe exhibit strong dependence on the momentum flux of the two-phase flow, which mainly excites the fundamental flexural vibration mode of the pipe. The magnitude of vertical vibration response of the pipe is equal to that of the lateral vibration response, and the vibration response measured at the middle of the pipe does not contain the second-order operating mode. Moreover, the STD value of the structural responses of the pipe increases proportionally with an increase in the gas flow rate, while the predominant vibration frequency of the pipe slightly increases.
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水平弹性管道气液两相流诱发振动的研究
本文对含不同流型的气液两相流水平管道的振动特性进行了实验分析。详细分析了流型和表面速度对压力波动和结构响应的影响。采用流体体积法和有限元法对管道内流固耦合进行了数值模拟。采用强分区耦合方法,保证了流体与弹性管道的相容性和平衡界面条件。通过与实验结果的比较,验证了数值解的准确性。研究发现,两相流压力波动的波动频率范围为0Hz ~ 5Hz。两相流压力波动的标准差值随液表流速的增加而增大,且在段塞流中出现最大值。管道的振动响应强烈依赖于两相流的动量通量,动量通量主要激发管道的基本弯曲振动模式。管道的竖向振动响应大小与横向振动响应大小相等,管道中部测得的振动响应不包含二阶运行模式。随着气体流量的增加,管道结构响应的STD值呈比例增大,而管道的主导振动频率略有增大。
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来源期刊
CiteScore
2.10
自引率
10.00%
发文量
77
审稿时长
4.2 months
期刊介绍: The Journal of Pressure Vessel Technology is the premier publication for the highest-quality research and interpretive reports on the design, analysis, materials, fabrication, construction, inspection, operation, and failure prevention of pressure vessels, piping, pipelines, power and heating boilers, heat exchangers, reaction vessels, pumps, valves, and other pressure and temperature-bearing components, as well as the nondestructive evaluation of critical components in mechanical engineering applications. Not only does the Journal cover all topics dealing with the design and analysis of pressure vessels, piping, and components, but it also contains discussions of their related codes and standards. Applicable pressure technology areas of interest include: Dynamic and seismic analysis; Equipment qualification; Fabrication; Welding processes and integrity; Operation of vessels and piping; Fatigue and fracture prediction; Finite and boundary element methods; Fluid-structure interaction; High pressure engineering; Elevated temperature analysis and design; Inelastic analysis; Life extension; Lifeline earthquake engineering; PVP materials and their property databases; NDE; safety and reliability; Verification and qualification of software.
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