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Novel method of measuring tappet rotation and the effect of lubricant rheology

机译:测量挺杆旋转的新方法以及润滑剂流变学的影响

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摘要

One of the main drivers for developing lubricant technology is engine durability. Researchers and scientists are using new technologies, materials and advanced lubricant formulations to reduce overall engine friction and wear. One of the main engine tribological components is the valve train. This is one of the most challenging components to lubricate effectively because of the higher contact loadings and accounts for 10-20% of the total engine friction loss. The two main factors affecting the performance of engine valve trains are wear and friction, and a wide range of mechanical configurations are used to improve these. For example, direct-acting overhead camshaft valve train configurations use a rotating tappet design. Normally, the tappet is slightly offset from the cams and the cam is slightly conical to match the domed tappet to facilitate tappet rotation for even wear and to reduce slippage. In this paper, a novel innovative technique has been described to monitor tappet rotation in a real production engine having a direct overhead cam-tappet arrangement. The monitoring technique was applied to a VW Tdi engine head, and tests were carried out under different operating conditions. Lubricant compositions, oil temperature, pressure and camshaft speeds on tappet rotation were measured and all are shown to have an effect. The balance of forces between the cam-tappet and tappet-bore was found to be interlinked and the design of the hydraulic lash adjuster had a significant effect. This unique tappet rotation monitoring system can be used on most of the direct overhead camshaft engines, with minor engine modifications, to measure lubricant and hardware effects under both motored and fired conditions.
机译:开发润滑油技术的主要驱动力之一是发动机的耐用性。研究人员和科学家正在使用新技术,新材料和先进的润滑剂配方来减少整体发动机摩擦和磨损。气门机构是发动机的主要摩擦学组件之一。由于较高的接触载荷,这是有效润滑的最具挑战性的组件之一,占发动机总摩擦损耗的10-20%。影响发动机气门机构性能的两个主要因素是磨损和摩擦,广泛的机械配置可用于改善这些因素。例如,直接作用的顶置凸轮轴气门机构配置使用旋转挺杆设计。通常,挺杆相对于凸轮略有偏移,凸轮略呈圆锥形以与圆顶挺杆匹配,从而有助于挺杆旋转,从而实现均匀磨损并减少打滑。在本文中,已经描述了一种新颖的创新技术,以监控具有直接顶置凸轮-挺杆装置的实际生产发动机中的挺杆旋转。该监控技术应用于大众Tdi发动机机头,并在不同的工况下进行了测试。测量了挺杆旋转时的润滑剂成分,机油温度,压力和凸轮轴速度,均显示有影响。发现凸轮挺杆和挺杆孔之间的力平衡是相互联系的,并且液压间隙调节器的设计具有显着的效果。这种独特的挺杆旋转监控系统可在大多数直接顶置凸轮轴发动机上使用,并且只需对发动机进行少量改动,即可在机动和燃烧条件下测量润滑剂和硬件的影响。

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