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DYNAMIC RESPONSE OF UNDERWATER STRUCTURES SUBJECT TO IMPACT LOADS

机译:冲击载荷作用下的水下结构动力响应

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The present paper studied the dynamic response of an underwater system with its navigation plate rotated relative to the main body until it was blocked by an energy absorber. In this process, the relation between fluid-driving moment and speed of main body, as well as the relation between rotation angle of the plate and design parameters of absorber, was investigated through combined finite element method and finite volume method. Before the plate contacted with the energy absorber, it was modeled by linear elastic material, the movement process was solved by finite volume method with dynamic boundary. When the plate started to contact and crash with the absorber, it was modeled by elastic-plastic material, and the interaction of fluid-structure coupling was simulated by explicit finite element method in LSDYNA and finite volume method in FLUENT. The two-way data exchange on the interface between fluid and structure was carried out through equivalent force and moment on each patch of the interface. In addition, the simulation accuracy on large plastic deformation of absorber was verified through a group of drop hammer experiments. After the energy absorber was crushed to ultimate shape, the open angle of plate reached the maximum value and the plate kept relative static to the rigid body. The maximum structural stress and deformation, the opening time and angle of the plate were evaluated by numerical method. It is demonstrated that the proposed method can effectively predict the dynamic response of underwater system under impact loads, and both the absorption capability of the block and the speed of moving body affect the dynamic response history and structural safety.
机译:本文研究了水下系统的动态响应,其导航板相对于主体旋转,直到被能量吸收器挡住为止。在此过程中,结合有限元法和有限体积法研究了流体驱动力矩与主体速度的关系,以及板的旋转角度与吸收器设计参数的关系。在板与能量吸收器接触之前,先用线性弹性材料对其进行建模,然后通过带有动态边界的有限体积方法来解决运动过程。当板开始与吸收器接触并碰撞时,用弹塑性材料对其进行建模,并使用LSDYNA中的显式有限元法和FLUENT中的有限体积法来模拟流固耦合。流体和结构之间的界面上的双向数据交换是通过在界面的每个面片上施加相等的力和力矩来进行的。另外,通过一组落锤实验验证了吸收体大塑性变形的模拟精度。将能量吸收器压碎成最终形状后,板的张开角达到最大值,并且板相对于刚体保持相对静态。通过数值方法评估了板的最大结构应力和变形,张开时间和角度。结果表明,所提方法可以有效地预测水下冲击荷载作用下的水下动力响应,并且块体的吸收能力和运动体的速度都会影响水下动力响应的历史和结构安全性。

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