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Improved Comfort Analysis and Drivability Assessment by the Use of an Extended Power Train Model for Automatic Transmissions

机译:通过使用用于自动变速器的扩展动力列车模型来提高舒适性分析和驾驶性评估

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The new generation of automatic transmissions is characterized by a compact and highly efficient design. By the use of a higher overall gear ratio and lightweight components combined with optimal gear set concepts it is possible to improve significantly fuel consumption and driving dynamics. Precise and efficient real time models of the whole power train including models for complex subsystems like the automatic transmission are needed to combine real hardware with virtual models on XiL test rigs. Thereby it's possible to achieve a more efficient product development process optimized towards low development costs by less needed prototypes and shorter development times by pushing front loading in the process. In this paper a new real time model for automatic transmissions including approved models for the torque converter, the lock-up clutch and the torsional damper are introduced. At the current development stage the model can be used for comfort analysis and drivability assessment. Thereby various operating conditions including motored engine and an open, slipping or locked clutch condition can be simulated. For the torque converter a map based, an equivalent mechanical system model derived from the bond graph modeling method or a detailed physical model based on the energy and momentum equations can be used. The mechanical dampers can be varied in their positions and allow to model common used damper configurations including the conventional, TTD (Turbine Torsional Damper) and DTD (Double Torsional Damper) system arrangement. Different simulation examples for various operation conditions and modeling approaches are analyzed to underline the broad range of application for comfort analysis and drivability assessment. Further an outlook is given how to include losses into the model to improve the efficiency of future power trains based on measurements and empirical equations.
机译:新一代的自动变速器的特点是具有紧凑且高效的设计。通过使用更高的整体齿轮比和轻质部件与最佳齿轮组概念结合使用,可以提高燃料消耗和驾驶动态。整个动力传动系统的精确和高效的实时模型包括用于自动传输的复杂子系统的模型,以将实际硬件与XIL试验台上的虚拟模型相结合。因此,通过推动该过程中的前负荷,可以通过更低的原型和更短的开发时间来实现更有效的产品开发过程,优化了低开发成本和更短的发展时间。在本文中,引入了一种新的自动变速器的实时模型,包括用于变矩器,锁定离合器和扭转阻尼器的批准的模型。在目前的开发阶段,该模型可用于舒适分析和驾驶性评估。因此,可以模拟包括电动发动机和打开,滑动或锁定的离合器状态的各种操作条件。对于基于地图的变矩器,可以使用基于键合图形建模方法的等效机械系统模型或基于能量和动量方程的详细物理模型。机械阻尼器可以在它们的位置变化,并且允许模拟包括传统的TTD(涡轮扭转阻尼器)和DTD(双扭转阻尼器)系统装置的常用使用阻尼器配置。分析了各种操作条件和建模方法的不同仿真实例,以强调广泛的舒适分析和驱动性评估应用。进一步的前景是如何将损失包括进入模型的损失,以提高基于测量和经验方程的未来电力列机的效率。

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