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Driveshaft Maximum Torque Estimation via Linear Model, Failure Analysis and Bench Test Simulation, an Alternative Approach

机译:通过线性模型,故障分析和台式测试模拟,驱动轴最大扭矩估计,替代方法

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Primary function of a drive half shaft is to transfer torque from transaxle to the wheels in East West configuration powertrain vehicles. Conventional practice is to consider either 1st gear max torque or the Wheel slip torque, whichever being the maximum as design torque. However vehicle dynamics and Powertrain characteristics have a major influence on the Driveshaft torque and the torques experienced can thus go beyond the design torque. This questions the design endurance limit for the driveshaft based on conventional design. One such situation is the torque experienced by the driveshaft during vehicle coasting condition with gear downshift. The torque experienced in such a scenario can go beyond the maximum design torque leading to failure as was observed in Vehicle level validation test. The paper mainly discusses about modelling such a scenario theoretically by a system approach to the vehicle test phenomenon and evaluating the torque pre-emptively to redefine the design torque strategy. Variables required for the calculation were identified and their values were determined using the engine and vehicle characteristics. Furthermore driveshaft torque measurement was done on the test vehicle with strained gauge shaft and telemetry to study the effect of variables and to refine the model based on measurement data. Finally a co-relation between the calculated torque values and measured torque was done to understand the level of accuracy.. Modifications were also done to the part and bench test was done to understand the level of improvement.
机译:驱动器半轴的初级功能是将扭矩从转座转移到东部配置动力总成车辆中的轮子。传统的做法是考虑第一齿轮最大扭矩或车轮滑动扭矩,无论最大为设计扭矩。然而,车辆动力学和动力系特性对驱动轴扭矩产生了重大影响,因此可以超出设计扭矩的扭矩。基于常规设计,这对驱动轴的设计耐用限制问题。一种这种情况是驱动轴在车辆滑行条件下经历的扭矩,齿轮降档。在这种情况下经历的扭矩可以超出导致在车辆水平验证测试中观察到的最大设计扭矩。本文主要讨论了通过系统方法对车辆测试现象进行建模和预先重新定义设计扭矩策略的扭矩来建模这种情况。识别计算所需的变量,并使用发动机和车辆特性确定它们的值。此外,在具有应变计轴和遥测的试验车上进行了驱动轴扭矩测量,以研究变量的影响并根据测量数据来改进模型。最后,完成了计算的扭矩值与测量扭矩之间的共同关系,以了解精度水平。改性也在部分和台式测试中进行,以了解改善水平。

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