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A numerically stable flexural dynamics model of complex multi-span fluid-conveying pipes with flexible components and its application to clamp stiffness identification
Wang, Ze Chao1,2; Gao, Pei Xin3; Zhou, Zu De4; Tijsseling, Arris S.5; Qu, Yong Zhi6; Yan, Wang Ji7; Yuen, Ka Veng7; Cheng, Shing Shin1,2,8
2024-02
Source PublicationThin-Walled Structures
ISSN0263-8231
Volume195Pages:111488
Abstract

Multi-span fluid-conveying pipelines (MFP) with multiple concentrated accessories, i.e., clamps, valves, flanges, vibration absorbers and flexible components, whose dynamic properties can be described by receptance, are widely used in many engineering fields. However, research on predicting the dynamics of such pipe structures has been rarely performed. In this study, we propose an improved transfer matrix method (TMM) to model the numerically stable dynamics of the MFP with multiple concentrated accessories and flexible components. An original receptance-based modeling method is developed to address boundary conditions induced by the presence of concentrated accessories and flexible components simultaneously. The method's advantage is that the flexible component is considered as an independent substructure before assembling, its receptance can be calculated or measured independently. Moreover, the numerical instability problem of the conventional transfer matrix method (CTMM) in the high-frequency range is resolved by utilizing a successive reduction process to reduce the length of the transfer path of the state vectors used to describe the overall dynamics of the pipe. One salient feature of the proposed method is that the size of the characteristic matrix will be specified as 4×4, which is inherited from CTMM. An optimization-based inverse method is proposed to identify the clamp stiffness with the developed numerically stable and efficient dynamics model. Also, a device is designed and developed to measure the approximate clamp stiffness values which are considered as the initial values during optimization. The experimental results indicate that the proposed method is effective and accurate; utilizing the approximate values of the clamp stiffness as the initial values can accelerate the stability of the iteration during the optimization.

KeywordClamp Stiffness Identification Flexible Component Improved Transfer Matrix Method Multi-span Fluid-conveying Pipe Numerically Stable Dynamics Model
DOI10.1016/j.tws.2023.111488
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaEngineering ; Mechanics
WOS SubjectEngineering, Civil ; Engineering, Mechanical ; Mechanics
WOS IDWOS:001165851100001
PublisherELSEVIER SCI LTDTHE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
Scopus ID2-s2.0-85181745088
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Citation statistics
Document TypeJournal article
CollectionTHE STATE KEY LABORATORY OF INTERNET OF THINGS FOR SMART CITY (UNIVERSITY OF MACAU)
Faculty of Science and Technology
DEPARTMENT OF CIVIL AND ENVIRONMENTAL ENGINEERING
Corresponding AuthorCheng, Shing Shin
Affiliation1.Department of Mechanical Engineering and Automation, The Chinese University of Hong Kong, Hong Kong
2.CUHK T Stone Robotics Institute, The Chinese University of Hong Kong, Hong Kong
3.School of Electromechanical and Automotive Engineering, Yantai University, Yantai, China
4.School of Mechanical and Electronic Engineering, Wuhan University of Technology, Wuhan, China
5.Department of Mathematics and Computer Science, Eindhoven University of Technology, Eindhoven, Netherlands
6.Department of mechanical engineering, The University of Utah, Salt Lake, United States
7.State Key Laboratory of Internet of Things for Smart City and Department of Civil and Environmental Engineering, University of Macau, Macao
8.Shun Hing Institute of Advanced Engineering, The Chinese University of Hong Kong, Hong Kong
Recommended Citation
GB/T 7714
Wang, Ze Chao,Gao, Pei Xin,Zhou, Zu De,et al. A numerically stable flexural dynamics model of complex multi-span fluid-conveying pipes with flexible components and its application to clamp stiffness identification[J]. Thin-Walled Structures, 2024, 195, 111488.
APA Wang, Ze Chao., Gao, Pei Xin., Zhou, Zu De., Tijsseling, Arris S.., Qu, Yong Zhi., Yan, Wang Ji., Yuen, Ka Veng., & Cheng, Shing Shin (2024). A numerically stable flexural dynamics model of complex multi-span fluid-conveying pipes with flexible components and its application to clamp stiffness identification. Thin-Walled Structures, 195, 111488.
MLA Wang, Ze Chao,et al."A numerically stable flexural dynamics model of complex multi-span fluid-conveying pipes with flexible components and its application to clamp stiffness identification".Thin-Walled Structures 195(2024):111488.
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