一个计算效率高的混合模型来研究超声波在有缺陷的长管道中的传播

IF 2.2 3区 工程技术 Q2 MECHANICS
Masoud Masoumi, Ryan K. Giles
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引用次数: 0

摘要

本文介绍了一种利用透传法模拟弹性波在损伤长管道中传播的混合仿真技术。这种混合模型提供了一种高效的计算框架,仅对管道的损坏部分使用有限元(FE)建模,并通过分析方法模拟其余部分。由于不需要对管道的完整部分进行空间离散,因此大大减少了此类模拟所需的时间和计算能力。采用解析法对管道完整长段的波散射进行了模拟,对管道裂纹段的波散射进行了有限元模拟。利用所建立的有限元模型研究了非轴对称缺陷在近距离测量中的影响,从而更好地理解了管道中的模式转换和散射。在实现混合模型之前,采用半混合仿真方法研究了缺陷非常接近激励点的管道。然后,研究了长管带裂纹的一般情况。一个特别的观察结果是,与远离激励点的裂缝相比,靠近激励点的裂缝对传播波的影响更大,并且造成更高的能量损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A computationally efficient hybrid model to study ultrasonic wave propagation in long pipes with defects

This paper introduces a hybrid simulation technique to model elastic waves propagation in long pipes with damages using through-transmission approach. This hybrid model provides an efficient computational framework that only uses finite element (FE) modeling for damaged section of the pipe and simulates the rest via an analytical approach. It remarkably reduces the time and computational power required for such simulations since no spatial discretization is required for intact section of the pipe. An analytical technique is used to model the wave scattering in intact and long section of the pipe while an FE approach is implemented for its cracked segment. The effects of non-axisymmetric defects are studied in short range distance measurements using the developed FE model to have a better understanding of mode conversion and scattering in the pipe. Prior to implementation of the hybrid model, a semi-hybrid simulation is employed to study the pipes with defects very close to the excitation point. Then, the general case of a long pipe with a crack is studied. One particular observation was that cracks that are closer to the excitation point have a greater influence on propagating waves and cause higher energy loss compared to the cracks far from excitation location.

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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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