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Efficient calculation of the hydrodynamic coefficients and dynamic stiffness of an air-spring type vibration absorber

机译:空气弹簧式减振器的水动力系数和动力刚度的有效计算

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Integration of an air-spring device into an offshore platform can be an effective solution to modify the system properties, such as the restoring stiffness. In this study, the dynamic stiffness due to the linear vibration of the air and fluid entrapped inside an air-spring type vibration absorber is investigated. The device is modelled as a hollow column with a closed top and floats vertically in a water of constant depth. At the initial time, the free surfaces inside and outside the device are at the same level and there is an amount of air entrapped above the inner water surface. Within the device, the variation to the air pressure is assumed to occur adiabatically and the free-surface boundary condition is derived based on the ideal gas state equation. Energy dissipation is introduced into the region within the device by adding a resistance force on the inner free surface. The wave radiation due to the heave motion of the device is then concerned and an analytical model is developed to evaluate the associated hydrodynamic coefficients and the induced dynamic stiffness by using the method of separation of variables in conjunction with the matching technology. An alternative solution of the dynamic stiffness has also been developed based on a decomposition of the total velocity potential into two parts which depend purely on the oscillation of the device and the dynamic air pressure applied on the inner free surface, respectively. Based on the developed model, detailed numerical analysis is performed. The relative phases between the body motion and the dynamic stiffness are discussed for different wave conditions and geometric parameters.
机译:将空气弹簧装置集成到海上平台可能是修改系统属性(例如恢复刚度)的有效解决方案。在这项研究中,研究了由于空气弹簧型减振器内部截留的空气和流体的线性振动而引起的动态刚度。该设备被建模为顶部封闭的空心圆柱,并在恒定深度的水中垂直漂浮。最初,设备内部和外部的自由表面处于同一高度,并且内部水表面上方截留了一些空气。在装置内,假定空气压力的变化绝热,并且基于理想气体状态方程推导出自由表面边界条件。通过在内部自由表面上施加阻力,将能量耗散引入设备内的区域。然后考虑由于装置的波动引起的波辐射,并通过使用变量分离方法和匹配技术,建立了一个分析模型来评估相关的水动力系数和感应的动态刚度。还基于总速度势分解为两部分而开发了动态刚度的另一种解决方案,这两个部分分别完全取决于设备的振动和施加在内部自由表面上的动态空气压力。基于开发的模型,进行详细的数值分析。针对不同的波浪条件和几何参数,讨论了人体运动与动态刚度之间的相对相位。

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