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Theoretical Analysis and Experimental Verification of Particle Damper-Based Energy Dissipation with Applications to Reduce Structural Vibration

机译:基于粒子阻尼器的能量耗散的理论分析与实验验证,以减少结构振动

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摘要

Particle damping technology can greatly reduce vibration of equipment and structure through friction and inelastic collisions of particles. An energy dissipation model for particle damper has been presented based on the powder mechanics and the collision theory. The energy dissipation equations of friction and collision motion are developed for the particle damper. The rationality of energy dissipation model has been verified by the experiment and the distributions for the energy dissipation of particles versus acceleration are nonlinear. As the experiment process includes lots of factors of energy dissipation, such as the noise and the air resistance, the experimental value is about 7% more than the simulation value. The simulation model can provide an effective method for the design of particle damper. And the particle parameters for damper have been investigated. The results have shown that choosing an appropriate particle density, particle size, and particle filling rate determined based on the simulation model will provide the optimal damping effect for the practical application of particle damping technology.
机译:颗粒阻尼技术可以通过摩擦和颗粒的非弹性碰撞大大降低设备和结构的振动。对于颗粒阻尼器的能量耗散模型,基于该粉末力学和碰撞理论被提出。摩擦和碰撞运动的能量耗散方程用于颗粒阻尼器开发的。能量耗散模型的合理性已经通过实验验证和粒子相对于加速度的能量耗散分布是非线性的。随着实验的方法包括大量的能量耗散的因素,如噪声和空气阻力,实验值是约7%以上的模拟值。仿真模型可以提供用于颗粒阻尼器的设计的有效方法。而对于阻尼器的粒子参数进行了研究。结果表明,选择适当的颗粒密度,颗粒尺寸和颗粒填充率的基础上确定仿真模型将提供颗粒阻尼技术的实际应用的最佳的阻尼效果。

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