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Research on the impact of surface properties of particle on damping effect in gear transmission under high speed and heavy load

机译:高速重载条件下颗粒表面特性对齿轮传动减振效果的影响研究

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The vibration and noise from gear transmission have great damage on the mechanical equipment and operators. Through inelastic collisions and friction between particles, the energy can be dissipated in gear transmission. A dynamic model of particle dampers in gear transmission was put forward in this paper. The performance of particle dampers in centrifugal fields under different rotational speeds and load was investigated. The surface properties such as the impact of coefficient of restitution and friction coefficient of the particle on the damping effect were analyzed and the total energy loss was obtained by discrete element method (DEM). The vibration from time-varying mesh stiffness was effectively reduced by particle dampers and the optimum coefficient of restitution was discovered under different rotational speeds and load. Then, a test bench for gear transmission was constructed, and the vibration of driven gear and driving gear were measured through a three-directional wireless acceleration sensor. The research results agree well with the simulation results. While at relatively high speed, smaller coefficient of restitution achieves better damping effect. As to friction coefficient, at relatively high speed, the energy dissipation climbs up and then declines with the increase of the friction coefficient. The results can provide guidelines for the application of particle damper in gear transmission.
机译:齿轮传动装置产生的振动和噪声对机械设备和操作人员造成极大损害。通过非弹性的碰撞和粒子之间的摩擦,能量可以在齿轮传动中消散。提出了齿轮传动中颗粒阻尼器的动力学模型。研究了在不同转速和载荷下离心场中颗粒阻尼器的性能。分析了表面性质,如颗粒的回复系数和摩擦系数对阻尼效应的影响,并通过离散元法(DEM)获得了总能量损失。颗粒阻尼器有效地降低了随时间变化的网格刚度引起的振动,并在不同的转速和负载下发现了最佳的恢复系数。然后,构建齿轮传动测试台,并通过三向无线加速度传感器测量从动齿轮和主动齿轮的振动。研究结果与仿真结果吻合良好。在较高速度下,较小的恢复系数可实现更好的阻尼效果。至于摩擦系数,在相对较高的速度下,能量消耗随着摩擦系数的增加而上升,然后下降。研究结果可为在齿轮传动中应用颗粒阻尼器提供指导。

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