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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Experimental Investigation on Unstable Vibration Characteristics of Plates and Drag Torque in Open Multiplate Wet Clutch at High Circumferential Speed
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Experimental Investigation on Unstable Vibration Characteristics of Plates and Drag Torque in Open Multiplate Wet Clutch at High Circumferential Speed

机译:高圆周速度开放式多板湿法离合器钢板不稳定振动特性的实验研究

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摘要

The drag torque caused by the viscous shear in open multiplate wet clutches has been studied in most available literature whose focus is placed on low circumferential speed. However, the drag torque increases drastically in the high circumferential speed range. The underlying physical principles and the influencing factors of the drag torque at high speed are still indeterminate. The present study aims to experimentally investigate the characteristics of the wobbling vibrations of plates and to characterize the effects of average clearance, flow rate of lubricant, shifting condition, and the number of friction interfaces on the drag torque at high circumferential speed. The result of the experiment reveals that the friction plate (FP) starts to wobble periodically at low circumferential speed, though the effect is insignificant. The dominant frequency of plate wobbling movements increases with the input speed. When wobbling vibrations of plates become unstable, the wobble gradually becomes nonlinear. The experiments confirm that the mechanical contacts between plates during the unstable wobbling vibration result in the drag torque rise at high circumferential speed. At high speed, the supplying flow rate of the lubricant influences the drag torque values. The rotation of separator plates (SPs) brings forward the torque rise and makes the drag torque rise smoother. By reducing the number of interfaces, the drag torque rise is delayed and the magnitude becomes smaller. Finally, a four-stage drag torque characteristic curve is illustrated to show the dominant factors of drag torque at different stages.
机译:在开放式多板湿离合器中由粘性剪切引起的阻力扭矩已经在最多可用的文献中研究了焦点在低圆周速度上。然而,在高圆周速度范围内,阻力扭矩急剧增加。高速下降扭矩的潜在物理原理和影响因素仍然不确定。本研究旨在通过在高圆周速度下,通过实验地研究板的摆动振动,表征平均间隙,流量,变速条件的影响,以及摩擦界面的摩擦接口的效果。实验的结果揭示了摩擦板(FP)在低圆周速度下周期性地开始摆动,尽管效果是微不足道的。板摆动运动的主导频率随输入速度而增加。当滑动板的振动变得不稳定时,摆动逐渐变为非线性。该实验证实,在不稳定的摆动振动期间板之间的机械触点导致阻力扭矩以高圆周速度升高。在高速时,润滑剂的供应流量会影响阻力扭矩值。隔板板(SPS)的旋转引起扭矩上升并使拖曳扭矩升高。通过减少接口的数量,延迟拖曳扭矩上升,幅度变小。最后,示出了四阶段阻力扭矩特性曲线以显示不同阶段的拖曳扭矩的主导因素。

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