Research on Collision Restitution Coefficient Based on the Kinetic Energy Distribution Model of the Rocking Rigid Body within the System of Mass Points

Qiuyu Mao, Tongfa Deng, Botan Shen, Yuexin Wang
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Abstract

Rocking structures exhibit significant collapse resistance during earthquakes. In studies of rocking rigid bodies, the collision restitution coefficient is typically determined based on the classical model of the rocking rigid bodies. However, during the rocking process, the collision restitution coefficient, influenced by the uncontrollable error in collision energy dissipation between the rigid body and the ground, indirectly impacts the final results of the equations of motion. Therefore, the rationality and reliability of the collision restitution coefficient are crucial for seismic analysis of rocking rigid bodies and self-centering members. This paper introduces a phasic energy dissipation and kinetic energy redistribution model specifically designed for the rocking rigid body within the system of mass point. This model divides the collision into three distinct stages, incorporating energy dissipation considerations in the first two stages to calculate the total kinetic energy of the rigid body. In the third stage, the remaining kinetic energy is redistributed to precisely determine the analytical solution for the collision restitution coefficient of an ideal, homogeneous rectangular rigid body during collision. Lastly, the validity and reliability of the proposed model are confirmed through comparisons with experimental data.
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基于质点系统内摇摆刚体动能分布模型的碰撞复原系数研究
摇晃结构在地震中表现出明显的抗倒塌能力。在对摇晃刚体的研究中,碰撞恢复系数通常是根据摇晃刚体的经典模型确定的。然而,在摇晃过程中,碰撞恢复系数会受到刚体与地面之间碰撞能量耗散的不可控误差影响,间接影响运动方程的最终结果。因此,碰撞恢复系数的合理性和可靠性对于摇摆刚体和自定心构件的地震分析至关重要。本文介绍了一种专为质点系统内的摇摆刚体设计的相位能量耗散和动能再分配模型。该模型将碰撞分为三个不同阶段,在前两个阶段考虑能量耗散因素,计算刚体的总动能。在第三阶段,对剩余动能进行重新分配,以精确确定理想、均质矩形刚体在碰撞过程中的碰撞恢复系数的解析解。最后,通过与实验数据的比较,确认了所提模型的有效性和可靠性。
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