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Model Based Approach by Combination of Test and Simulation Methodologies for NVH Investigation and Improvement of a Rear Wheel Drive Vehicle

机译:基于模型基于测试和仿真方法的NVH调查和改进后轮驱动车辆的方法

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The increasing pressure on fuel economy has brought car manufacturers to implement solutions that improve vehicle efficiency, such as downsized engines, cylinder deactivation and advanced torque lock-up strategies. However, these solutions have a major drawback in terms of noise and vibration comfort. Downsized engines and lock-up strategies lead to the use of the engine at lower RPMs, and the reduced number of cylinders generates higher torque irregularities. Since the torque generated by the engine is transferred through flexible elements (clutch, torsional damper, gearbox, transmission, tire), these also impact the energy that is transferred to the vehicle body and perceived by the driver. This phenomenon leads to low frequency behavior, for instance booming noise and vibration. This paper presents a combined test and CAE modelling approach (1D/3D) to reverse engineer a vehicle equipped with a CPVA (centrifugal pendulum vibration absorber). The objectives were to fully understand and predict vehicle behavior with respect to the drivetrain torsional oscillations and low frequency booming noise and vibration. For this purpose, the procedure was divided in two phases: testing and modelling. The testing phase was used to get insight into the vehicle behavior, noise sources and noise transfer paths, using operational measurements. Moreover, dedicated component tests were carried out to obtain parameters to be used in the modelling phase, with the CPVA being the most complex and important component. The modelling phase used the test results as input to build a full vehicle model and to validate the booming noise results. The final model was fit for sensitivity studies and was also used to evaluate the performance of the CPVA, which is dedicated to the reduction of lock-up booming noise. Such an approach is a first step which can accelerate the SDPD (system driven product development) into a consolidated MBSE (model based system engineering) framework.
机译:对燃料经济性的压力越来越大,为汽车制造商带来了实现改善车辆效率的解决方案,例如缩小的发动机,气缸停用和先进的扭矩锁定策略。然而,这些解决方案在噪声和振动舒适性方面具有重要缺点。缩小的发动机和锁定策略导致在较低的RPM下使用发动机,并且减少的汽缸数产生更高的扭矩不规则性。由于发动机产生的扭矩通过柔性元件(离合器,扭转阻尼器,齿轮箱,传动,轮胎)传递,因此这些也会影响转移到车身并由驾驶员感知的能量。这种现象导致低频行为,例如蓬勃发展的噪音和振动。本文提出了一种组合测试和CAE建模方法(1D / 3D),以逆向工程师,该车辆配备有CPVA(离心摆动振动器)。目的是完全理解和预测传动系统扭转振荡和低频轰隆噪声和振动的车辆行为。为此,该过程分为两个阶段:测试和建模。使用操作测量,使用测试阶段来了解车辆行为,噪声源和噪声传输路径。此外,执行专用组件测试以获得在建模阶段中使用的参数,CPVA是最复杂和重要的组件。建模阶段使用测试结果作为输入以构建完整的车辆模型并验证蓬勃的噪声结果。最终模型适合敏感性研究,也用于评估CPVA的性能,这致力于减少锁定蓬勃噪声。这种方法是可以将SDPD(系统驱动的产品开发)加速到综合MBSE(基于模型的系统工程)框架中的第一步。

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