重载对轻型汽车轴工作温度的影响

B. M. O'connor, Chris Schenkenberger
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引用次数: 3

摘要

近年来,随着北美运动型多用途车(SUV)市场的持续增长,人们越来越重视这些车辆的流体性能。除了燃油经济性外,原始设备制造商(oem)普遍追求的关键性能领域是降低车轴的温度。这是由保修索赔所驱动的,该索赔表明,这些类型车辆轴故障的原因之一与过热有关。反过来,过热是由高负载情况引起的,例如,在车辆的最大额定负载限制或接近最大额定负载限制时牵引大型拖车,特别是当车辆或其主要子部件相对较新时。过高的温度通常会导致密封件、轴承和齿轮过早失效。在这些极端条件下,润滑剂的选择可以对峰值和稳定的工作温度产生显着影响。随着时间的推移和经验的积累,几种实验室方法逐渐发展成为评估润滑剂性能的方法。创建了一个实验室方法来重现导致今天一些设备制造商遇到的所述保修问题的场景。这包括使用一个新的车轴,在短暂的磨合期后将其置于模拟的恶劣路况中,并测量峰值温度作为流体类型的函数。随后在美国沙漠地区的高温环境条件下进行了实际车辆评估,验证了这一点。实验方法与车辆方法具有良好的相关性。目前正在根据这些评估期间获得的车辆数据进一步改进实验室方法。两种方法都表明,流体的选择对峰值温度和稳定温度有显著影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Effect of Heavy Loads on Light Duty Vehicle Axle Operating Temperature
With the continued growth of the sport utility vehicle (SUV) market in North America in recent years more emphasis has been placed on fluid performance in these vehicles. In addition to fuel economy the key performance area sought by original equipment manufacturers (OEMs) in general has been temperature reduction in the axle. This is being driven by warranty claims that show that one of the causes of axle failure in these type vehicles is related to overheating. The overheating is, in turn, caused by high load situations, e.g., pulling a large trailer at or near the maximum rated load limit for the vehicle, especially when the vehicle or its main subcomponents are relatively new. The excessive temperature generally leads to premature failure of seals, bearings and gears. The choice of lubricant can have a significant effect on the peak and stabilized operating temperature under these extreme conditions. Several laboratory methods evolved with time and experience to assess lubricant performance. One laboratory method was created to reproduce a scenario leading to the stated warranty issues encountered by some equipment manufacturers today. This involved using a new axle and subjecting it to a simulated severe road condition after a short break-in period and measuring the peak temperature as a function of fluid type. This was later validated with actual vehicle evaluations conducted in a desert region of the USA in high ambient temperature conditions. Good correlation was observed between the laboratory and vehicle methods. Further refinement of the laboratory method now is in progress based on vehicle data obtained during these evaluations. Both methods showed that fluid choice can have a significant effect on peak and stabilized temperatures.
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