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Experimental Investigation of Tripod Constant Velocity (CV) Joint Friction

机译:三脚架恒定速度(CV)关节摩擦的实验研究

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Constant Velocity (CV) joints are an integral part of modern vehicles, significantly affecting steering, suspension, and vehicle vibration comfort levels. Each driveshaft comprises of two types of CV joints, namely fixed and plunging types connected via a shaft. The main friction challenges in such CV joints are concerned with plunging CV joints as their function is to compensate for the length changes due to steering motion, wheel bouncing and engine movement. Although CV joints are common in vehicles, there are aspects of their internal friction and contact dynamics that are not fully understood or modeled. Current research works on modelling CV joint effects on vehicle performance assume constant empirical friction coefficient values. Such models, however are not always accurate, especially under dynamic conditions which is the case for CV tripod joints. In this research, an instrumented advanced CV joint friction tester was developed to measure the internal friction behavior of CV joints using actual tripod-type joint assemblies. The setup is capable of measuring key performance parameters, such as friction and wear, under different realistic operating conditions of oscillatory speeds and CV joint installation angles. The tester incorporates a custom-installed, tri-axial force transducer inside the CV joint to measure in-situ internal CV joint forces (including friction). Using the designed test setup, we investigated the interfacial parameters of CV joints in order to understand their friction mechanism. Specifically the slip-to-roll ratio of the roller inside the CV joint was measured to better understand the sliding and rolling friction between the tripod's roller and housing. Intrinsic interfacial parameters, such as torque, articulation angle, plunging velocity and rotational phase angle of CV joints were also varied in order to examine their effects on the friction. Based on these experiments, one can establish a better understanding of CV joint friction and develop a model that can be used in designing improved CV joints.
机译:恒定速度(CV)关节是现代车辆的一体部分,显着影响转向,悬架和车辆振动舒适度。每个驱动轴包括两种类型的CV接头,即通过轴连接的固定和狭窄的类型。这种CV关节中的主要摩擦挑战涉及急剧CV关节,因为它们的功能是为了补偿由于转向运动,车轮弹圈和发动机运动而导致的长度变化。虽然CV关节在车辆中是常见的,但是它们的内部摩擦和接触动力学的方面不完全理解或建模。目前的研究适用于模拟CV关节效应对车辆性能的影响假设恒定的经验摩擦系数值。然而,这种模型并不总是准确,尤其是在动态条件下是CV三脚架关节的情况。在本研究中,开发了一种仪表推进的高级CV关节摩擦测试仪以使用实际三脚架型接头组件来测量CV接头的内部摩擦行为。该设置能够在振荡速度和CV联合安装角度的不同现实操作条件下测量诸如摩擦和磨损的关键性能参数。测试仪采用CV接头内的定制的三轴力换能器,以测量原位内部CV关节力(包括摩擦)。使用设计的测试设置,我们研究了CV关节的界面参数,以了解其摩擦机制。具体地,测量CV接头内的辊的滑移比以更好地了解三脚架滚子和壳体之间的滑动和滚动摩擦。 CV关节的扭矩,铰接角度,狭窄速度和旋转相位角的固有界面参数也变化,以便检查它们对摩擦的影响。基于这些实验,人们可以建立对CV关节摩擦的更好理解,并开发一种可以用于设计改进的CV关节的模型。

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