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Breaking the Viscosity Paradigm: Formulating Approaches for Optimizing Efficiency and Axle Life - Part II

机译:打破粘度范式:制定优化效率和轴寿命的方法 - 第二部分

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The popularity of light trucks and sport utility vehicles (SUVs), coupled with growing consumer demand for vehicles with more size, weight and horsepower, has increased the impact of these vehicle classes on the manufacturer's CAFE (Corporate Average Fuel Economy) numbers. Consumers often use light trucks and SUVs in applications such as prolonged towing at highway speeds, resulting in heavy loading and/or high operating temperatures in the axle. These conditions require superior axle lubricant protection, often provided by choosing a higher viscosity fluid (e.g., SAE 75W-140). Traditionally, the choice of these higher viscosity fluids for enhanced durability performance often results in reduced city-highway efficiency. This paper will describe the use of controlled axle dynamometer laboratory testing methods to develop fluids that maximize both fuel efficiency and durability performance across the wide spectrum of the new proposed viscosity classifications. The impact of viscosity grade and additive chemistry will be explored using controlled laboratory axle testing in an effort to build fluids that maintain durability performance while they maximize efficiency.
机译:轻型卡车和运动型多用途车辆(SUV)的普及,加上具有更多尺寸,重量和马力的车辆的消费者需求,增加了这些车辆课程对制造商咖啡厅(企业平均燃料经济)的影响。消费者经常使用轻型卡车和SUV在高速公路速度下长时间牵引的应用中,导致轴上的重载和/或高工作温度。这些条件需要优异的轴润滑剂保护,通常通过选择更高的粘度流体(例如,SAE 75W-140)提供。传统上,这些较高粘度流体的选择用于增强的耐用性性能通常导致城市高速公路效率降低。本文将描述使用受控的轴测力计实验室测试方法开发流体,这些液体在新的粘度分类的广泛频谱上最大化燃料效率和耐用性性能。使用受控实验室轴检测将探索粘度级和添加剂化学的影响,以便在最大限度地构建保持耐用性性能的流体。

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