Dynamic analysis of liquid-filled clamp-pipe systems based on the spectral element method

IF 2.2 3区 工程技术 Q2 MECHANICS Archive of Applied Mechanics Pub Date : 2024-12-10 DOI:10.1007/s00419-024-02723-1
Zhonghan Sun, Ruyu Yu, Xin Wang, Xufang Zhang
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Abstract

This paper presents an effective approach for dynamic analysis of liquid-filled clamp pipe (LFCP) systems based on the spectral element method (SEM). In this regard, six stiffness components are used to represent the elastic supporting effect of a clamp on the pipe structure, and analytical parameters are derived to realize the Rayleigh damping model in the SEM. This determines an SEM-based approach for dynamic analysis of the LFCP system. Numerical verification of the SEM is implemented for natural frequency analysis of the LFCP in conjunction with the straight, the L-shape, and parallel pipe systems. Compared to the finite-element or the transfer-matrix method in the literature, simulation results have confirmed the high accuracy and efficiency of utilizing the SEM for numerical modelling of the LFCP system. Various realizations of the pipe diameter, the fluid density and pressure, and the clamp coefficients are also considered to investigate their combined effects on structural characteristics. It has confirmed that the SEM based approach provides an effective routine for dynamic analysis of the LFCP system.

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基于谱元法的充液钳管系统动态分析
本文提出了一种基于谱元法(SEM)的充液夹管系统动态分析方法。为此,采用6个刚度分量来表示夹紧器对管道结构的弹性支撑作用,并推导出解析参数,实现了扫描电镜中的瑞利阻尼模型。这决定了一种基于sem的LFCP系统动态分析方法。在直、l型和平行管道系统中,对LFCP的固有频率进行了SEM的数值验证。与文献中的有限元法或传递矩阵法相比,仿真结果证实了利用扫描电镜对LFCP系统进行数值模拟的准确性和效率。还考虑了管径、流体密度和压力以及夹紧系数的各种实现,以研究它们对结构特性的综合影响。结果表明,基于扫描电镜的方法为LFCP系统的动态分析提供了一种有效的方法。
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来源期刊
CiteScore
4.40
自引率
10.70%
发文量
234
审稿时长
4-8 weeks
期刊介绍: Archive of Applied Mechanics serves as a platform to communicate original research of scholarly value in all branches of theoretical and applied mechanics, i.e., in solid and fluid mechanics, dynamics and vibrations. It focuses on continuum mechanics in general, structural mechanics, biomechanics, micro- and nano-mechanics as well as hydrodynamics. In particular, the following topics are emphasised: thermodynamics of materials, material modeling, multi-physics, mechanical properties of materials, homogenisation, phase transitions, fracture and damage mechanics, vibration, wave propagation experimental mechanics as well as machine learning techniques in the context of applied mechanics.
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