Numerical investigation on the multi-body hydrodynamic interactions under Caspian Sea environmental conditions

2021 ◽  
Vol 232 ◽  
pp. 109048
Author(s):  
Shima Tafazzoli ◽  
Rouzbeh Shafaghat ◽  
Rezvan Alamian
2020 ◽  
Vol 10 (21) ◽  
pp. 7902
Author(s):  
Dong-Yeon Kim ◽  
Han-Sol Choi ◽  
Jae Hyuk Lim ◽  
Kyung-Won Kim ◽  
Juwon Jeong

In this work, experimental and numerical investigation on the deployment of solar panels with tape spring (TS) hinges showing complex nonlinear hysteresis behavior caused by the snap-through buckling was conducted. Subsequently, it was verified by comparing simulation results by multi-body dynamics (MBD) analysis with test results on ground-based deployment testing considering gravity compensation, termed zero-gravity (Zero-G) device. It has been difficult to predict the folding and unfolding behavior of TS hinges because their moment–rotation relationship showed a nonlinear hysteresis behavior. To realize this attribute, an algorithm that checks the sign of angular velocity of the revolute joints was used to distinguish folding from unfolding. The nonlinear hysteresis was implemented in terms of two path-dependent nonlinear moment–rotation curves with the aid of the expression function (a kind of user subroutine) in MBD software RecurDyn. Finally, it was found that the results of the deployment analysis were in excellent agreement with those of the test when the friction torques of the revolute joints were properly identified by an inverse analysis with the test frames, thus validating the MBD model.


Author(s):  
Yoshiyuki Inoue ◽  
Mir Tareque Ali

This paper investigates the hydrodynamic interactions between large numbers of multiple bodies floating in each other’s close vicinity. The physical aspect of hydrodynamic interaction is rather complicated and numerically sound scheme is highly recommended to study this complex phenomenon. In the present study, the 3D sink-source method has been adopted to determine the hydrodynamic forces by taking into account the effect of hydrodynamic interactions among the different floating bodies, and the coupled equations of motions are solved directly. The validation of the computer code developed for this purpose has been justified by comparing the present results with that of the published ones for simple geometrical shaped floating bodies. The numerical computations have been carried out for different numbers of various freely floating multi-body systems and the hydrodynamic interactions between the floating bodies have been studied by calculating the hydrodynamic forces, first order wave exciting forces and motion responses. Finally some conclusions have been drawn on the basis of the present analysis.


Author(s):  
Hyoungchul Kim ◽  
Bonjun Koo ◽  
Johyun Kyoung

Abstract Fully coupled time domain turret/FPSO simulations are conducted using TechnipFMC proprietary software MLTSIM. To analyze hydrodynamic interactions and mechanical coupling effects between an FPSO and its turret, a multi-body interaction model is developed and analyzed. In the multi-body interaction model, full coupled hydrodynamic interactions are considered, and the bearing connections are modeled with nonlinear springs and frictional damping. The global performance analysis results are systematically compared with model test results (Kim et al. [1]), and hydrodynamic loads and mechanical coupling loads on the turret are presented in this paper.


2019 ◽  
Vol 42 (3-4) ◽  
pp. 354-367 ◽  
Author(s):  
Marek Jaszczur ◽  
Janusz Teneta ◽  
Qusay Hassan ◽  
Ewelina Majewska ◽  
Robert Hanus

2019 ◽  
Vol 188 ◽  
pp. 106273 ◽  
Author(s):  
Hamid Reza Ghafari ◽  
Mohammad Javad Ketabdari ◽  
Hassan Ghassemi ◽  
Esmaeil Homayoun

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