Technical Papers
Aug 11, 2020

Induced Vibration of a Surface Foundation atop a Fluid-Conveying Embedded Pipe

Publication: Journal of Engineering Mechanics
Volume 146, Issue 10

Abstract

The dynamical behavior of a system containing a surface foundation atop a fluid-conveying pipe that is embedded in soil beneath the foundation is investigated. A Winkler–Voigt model is presented to simulate the interaction between the pipe and the foundation. The extended Hamilton’s principle is utilized to formulate the governing equation of the system. A generalized Fourier series is used to discretize the infinite-dimension model to an n-degree-of-freedom system. Maximum displacement of the surface foundation and pipe due to flow-induced vibrations is obtained via a modal analysis method. In addition, a numerical solution is used to verify the results. Good agreement was observed between the numerical and semianalytical results, even though the system is not classically damped. Variations of key factors such as flow velocity and geometrical properties that could affect the dynamical behavior of the system are considered. Although a relatively sharp rise of maximum amplitude was seen when changing the values of key factors, a unique change pattern was not seen in the maximum amplitude when varying different parameters.

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Data Availability Statement

No data, models, or code were generated or used during the study.

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Go to Journal of Engineering Mechanics
Journal of Engineering Mechanics
Volume 146Issue 10October 2020

History

Received: Jan 13, 2020
Accepted: May 26, 2020
Published online: Aug 11, 2020
Published in print: Oct 1, 2020
Discussion open until: Jan 11, 2021

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Authors

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Graduate Student, School of Engineering, Shiraz Univ., Shiraz 7134851156, Iran. ORCID: https://orcid.org/0000-0003-1987-1079
Gholamreza Rakhshandehroo
Professor, School of Engineering, Shiraz Univ., Shiraz 7134851156, Iran.
Mehdi Veiskarami, A.M.ASCE [email protected]
Associate Professor, School of Engineering, Shiraz Univ., Shiraz 7134851156, Iran (corresponding author). Email: [email protected]; [email protected]
Mojtaba Mahzoon
Professor, School of Mechanical Engineering, Shiraz Univ., Shiraz 7193616548, Iran.
Solmaz Saadat
Assistant Professor, School of Engineering, Shiraz Univ., Shiraz 7134851156, Iran.

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