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Effect of bidirectional internal flow on fluid.structure interaction dynamics of conveying marine riser model subject to shear current
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  • Effect of bidirectional internal flow on fluid.structure interaction dynamics of conveying marine riser model subject to shear current
  • Effect of bidirectional internal flow on fluid.structure interaction dynamics of conveying marine riser model subject to shear current
저자명
Chen. Zheng-Shou,Kim. Wu-Joan
간행물명
International journal of naval architecture and ocean engineering
권/호정보
2012년|4권 1호|pp.57-70 (14 pages)
발행정보
대한조선학회
파일정보
정기간행물|ENG|
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기타
이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

This article presents a numerical investigation concerning the effect of two kinds of axially progressing internal flows (namely, upward and downward) on fluid.structure interaction (FSI) dynamics about a marine riser model which is subject to external shear current. The CAE technology behind the current research is a proposed FSI solution, which combines structural analysis software with CFD technology together. Efficiency validation for the CFD software was carried out first. It has been proved that the result from numerical simulations agrees well with the observation from relating model test cases in which the fluidity of internal flow is ignorable. After verifying the numerical code accuracy, simulations are conducted to study the vibration response that attributes to the internal progressive flow. It is found that the existence of internal flow does play an important role in determining the vibration mode (/dominant frequency) and the magnitude of instantaneous vibration amplitude. Since asymmetric curvature along the riser span emerges in the case of external shear current, the centrifugal and Coriolis accelerations owing to up- and downward internal progressive flows play different roles in determining the fluid.structure interaction response. The discrepancy between them becomes distinct, when the velocity ratio of internal flow against external shear current is relatively high.