首页> 外文会议>ASME/JSME/KSME Joint Fluids Engineering Conference;AJK2011 >FLOW FIELD ANALYSIS AROUND A LOCKUP CLUTCH INSIDE A TORQUE CONVERTER
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FLOW FIELD ANALYSIS AROUND A LOCKUP CLUTCH INSIDE A TORQUE CONVERTER

机译:扭矩转换器内锁止离合器周围的流场分析

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The performance of a torque converter has been one of the most important areas of improvement for an automatic-transmission equipped automobile. Improving the torque converter's performance and efficiency is key to saving fuel consumption, which is an important consideration with recent environmental awareness. Moreover, the locking up operation or slipping control of an automatic transmission is another good opportunity for improving fuel economy. For this reason, there has been much research carried out to predict hydrodynamic performance and to understand the flow field inside a torque converter either experimentally or analytically using Computational Fluid Dynamics (CFD). Most of the research to date has focused on the inside of a torque converter torus. In recent years, the usage of a lockup clutch has expanded, and the lockup control system has become more complex. Understanding the flow field around the lockup clutch has become a very important issue. Only a few studies have focused on the lockup clutch, and most of the numerical research was solved at steady state conditions. In this paper, not only was an unsteady solution applied to solve the flow field, but also two new techniques were attempted. One was "virtual weight" and the other was "moving mesh." By using these techniques, the lockup clutch was moved by the balance of its own weight and the opposing pressure acting on its surface. With this approach, the lockup clutch engagement time or the responsiveness of the lockup clutch could be estimated. The flow field calculated by a transient solution was found to be different from the flow field calculated by a steady state solution. The transient solution also revealed that the lockup engagement time and the lockup clutch moving speed were dependent on the lockup engagement pressure and rotation speed.
机译:对于配备自动变速器的汽车,变矩器的性能一直是最重要的改进领域之一。改进液力变矩器的性能和效率是节省燃油消耗的关键,这是近期环保意识的重要考虑因素。此外,自动变速器的锁止操作或打滑控制是提高燃油经济性的另一个好机会。因此,已经进行了许多研究来预测流体动力性能并使用计算流体动力学(CFD)通过实验或分析来了解变矩器内部的流场。迄今为止,大多数研究都集中在变矩器圆环的内部。近年来,锁止离合器的用途已经扩大,并且锁止控制系统已经变得更加复杂。了解锁止离合器周围的流场已成为非常重要的问题。只有很少的研究集中在锁止离合器上,并且大多数数值研究都是在稳态条件下解决的。在本文中,不仅将非稳态解决方案应用于求解流场,还尝试了两种新技术。一个是“虚拟重量”,另一个是“移动网格”。通过使用这些技术,锁止离合器通过其自身重量和作用在其表面上的反压力的平衡而运动。通过这种方法,可以估计锁止离合器的接合时间或锁止离合器的响应性。发现通过瞬态解计算的流场与通过稳态解计算的流场不同。瞬态解决方案还表明,锁止接合时间和锁止离合器移动速度取决于锁止接合压力和转速。

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