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在非线性规则波中由三次谐波力激发的张力腿平台的共振。

Resonance of a tension leg platform exited by third-harmonic force in nonlinear regular waves.

作者信息

Zhou B Z, Wu G X

机构信息

College of Ship Building Engineering, Harbin Engineering University, Harbin 150001, People's Republic of China.

College of Ship Building Engineering, Harbin Engineering University, Harbin 150001, People's Republic of China

出版信息

Philos Trans A Math Phys Eng Sci. 2015 Jan 28;373(2033). doi: 10.1098/rsta.2014.0105.

Abstract

The resonance of a floating tension leg platform (TLP) excited by the third-harmonic force of a regular wave is investigated based on fully nonlinear theory with a higher order boundary element method (BEM). The total wave elevation and the total velocity potential are separated into two parts, based on the incoming wave from infinity and the disturbed potential by the body. A numerical radiation condition is then applied at the far field to absorb the disturbed potential without affecting the incident potential. The BEM mesh on the free surface is generated only once at the initial time and the element nodes are rearranged subsequently without changing their connectivity by using a spring analysis method. Through some auxiliary functions, the mutual dependence of fluid/structure motions is decoupled, which allows the body acceleration to be obtained without the knowledge of the pressure distribution. Numerical simulation is carried out for the interaction of a floating TLP with waves. The focus is on the motion principally excited by higher harmonic wave forces. In particular, the resonance of the ISSC TLP generated by the third-order force at the triple wave frequency in regular waves is investigated, together with the tensions of the tendons.

摘要

基于完全非线性理论和高阶边界元方法(BEM),研究了规则波的三次谐波力作用下浮式张力腿平台(TLP)的共振问题。基于来自无穷远处的入射波和物体产生的扰动势,将总波面高程和总速度势分为两部分。然后在远场应用数值辐射条件,以吸收扰动势而不影响入射势。自由表面上的BEM网格仅在初始时刻生成一次,随后通过弹簧分析方法重新排列单元节点而不改变其连接性。通过一些辅助函数,解耦了流体/结构运动的相互依赖性,从而在不知道压力分布的情况下获得物体加速度。对浮式TLP与波浪的相互作用进行了数值模拟。重点是由高谐波波浪力主要激发的运动。特别地,研究了规则波中三阶力在三倍波频率下产生的国际船舶结构大会(ISSC)TLP的共振以及系杆的张力。

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