Floating offshore structures often exhibit low-frequency oscillatory motions in the horizontal plane, with amplitudes in the same order as their characteristic dimensions and larger than the corresponding wave-frequency responses, making the traditional formulations in an inertial coordinate system inconsistent and less applicable. To address this issue, we extend and explore an alternative formulation completely based on a non-inertial body-fixed coordinate system. Unlike the traditional seakeeping models, this formulation consistently allows for large-amplitude horizontal motions. A numerical model based on a higher-order boundary element is applied to solve the resulting boundary-value problems in the time domain. A recently developed new set of explicit time-integration methods, which do not necessitate the use of upwind schemes for spatial derivatives, are adopted to deal with the convective-type free-surface conditions. To suppress the weak saw-tooth instabilities on the free surface in time marching, we also present novel low-pass filters based on optimized weighted-least-squares, which are in principle applicable for both structured and unstructured meshes. The presented schemes for the convection equation and the low-pass filter are also relevant for other engineering fields dealing with similar mathematical problems. For ship seakeeping and added resistance analyses, we show that the present computational model does not need to use soft-springs for surge and sway, in contrast to the traditional models. For a floating monopile, the importance of consistently taking into account the effects of large horizontal motions is demonstrated considering the bi-chromatic incident waves. The present model is considered as a complete 2nd order wave-load model, as all the 2nd order wave loads, including the sum-frequency and difference-frequency components, are solved simultaneously.
翻译:在水平平面上漂浮的离岸结构往往呈现低频振动,其振幅与其特点尺寸相同,大于相应的波频反应,使惯性协调系统中的传统配方不一致,并不太适用。为解决这一问题,我们扩展并探索完全基于非内皮体固定协调系统的替代配方。与传统的海运模式不同,这种配方始终允许大振动水平运动。基于较高级边界元素的数字模型用于解决在时间域内产生的边界值问题。最近开发的一套新的直线的双向弹性移动方法,不需要使用空间衍生工具的上风系统。为了应对这一问题,我们扩展并探索一种完全基于非内脏的体固定协调系统。与传统的海运模式不同,我们根据最优化的加权-东端和低端边框设置了新的低空过滤器。对于结构化和非结构化的间距值问题,最近开发的一套明确的双向式双向移动式调整方法的重要性并不要求使用空间衍生工具。对于当前固定式平流和低的平流模型来说,我们目前对平流的平流机的计算也是相关的。