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Independent control of all-wheel-drive torque distribution

机译:独立控制全轮驱动扭矩分配

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The sophistication of all-wheel-drive (AWD) technology is approaching the point where the drive torque to each wheel can be independently controlled. This potentially offers vehicle handling enhancements similar to those provided by dynamic stability control, but without the inevitable reduction in vehicle acceleration, Independent control of AWD torque distribution would therefore be especially beneficial under acceleration close to the limit of stability. A vehicle model of a typical sports sedan was developed in Simulink, with fully independent control of torque distribution. Box-Behnken experimental design was employed to determine which torque distribution parameters have the greatest impact on the vehicle course and acceleration. A proportional-integral control strategy was implemented, applying yaw rate feedback to vary the front-rear torque distribution and lateral acceleration feedback to adjust the left-right distribution. The resulting system shows a significant improvement over conventional driveline configurations under aggressive cornering acceleration on a high-μ surface. The performance approaches the theoretical limit for these conditions. In the medium term, such a system is only likely to be economically viable for premium vehicles. However, a future revolution of powertrain technology towards, for example, wheel-mounted motors, could realize these handling benefits far more widely.
机译:全轮驱动(AWD)技术的先进性已接近可以独立控制每个车轮的驱动扭矩的地步。这可能会提供类似于动态稳定性控制所提供的车辆操纵增强功能,但不会不可避免地降低车辆加速度,因此,在接近稳定极限的加速度下,AWD扭矩分配的独立控制将特别有益。 Simulink开发了典型运动型轿车的车辆模型,具有完全独立的扭矩分配控制功能。采用Box-Behnken实验设计来确定哪些扭矩分配参数对车辆行驶过程和加速度具有最大影响。实施了比例积分控制策略,应用偏航角速度反馈来改变前后扭矩分布,并使用横向加速度反馈来调整左右分布。最终的系统在高μ表面上的主动转弯加速下显示出比传统传动系统配置显着的改进。对于这些条件,性能接近理论极限。从中期来看,这样的系统仅在经济上对高档车可行。但是,动力总成技术的未来革命(例如轮式电机)可能会更广泛地实现这些处理优势。

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