Rollover and jack-knifing of tractor semi-trailer are serious threats for vehicle safety, and accordingly active safety technologies have been widely used to reduce or prevent the occurrence of such accidents. However...Rollover and jack-knifing of tractor semi-trailer are serious threats for vehicle safety, and accordingly active safety technologies have been widely used to reduce or prevent the occurrence of such accidents. However, currently tractor semi-trailer stability control is generally only a single hazardous condition (rollover or jack-knifing) control, it is difficult to ensure the vehicle comprehensive stability of various dangerous conditions. The main objective of this study is to introduce a multi-objective stability control algorithm which can improve the vehicle stability of a tractor semi-trailer by using differential braking. A vehicle controller is designed to minimize the likelihood of rollover and jack-knifing. First a linear vehicle model of tractor semi-trailer is constructed. Then an optimal yaw control for tractor using differential braking is applied to minimize the yaw rate and lateral acceleration deviation of tractor, as well as the hitch articulation angle of tractor semi-trailer, so as to improve the vehicle stability. Second a braking scheme and variable structure control with sliding mode control are introduced in order to achieve the best braking effect. Last Fishhook maneuver is introduced to the active safety simulation and the active control system effect verification. The simulation results show that multi-objective stability control algorithm of semi-trailer could improve the vehicle stability significantly during the transient maneuvers. The proposed multi-objective stability control algorithm is effective to prevent the vehicle rollover and jackknifing.展开更多
针对重型半挂车的侧倾稳定性问题,建立了八自由度的车辆模型,并以LQR主动侧倾控制方法为基础,提出了一种基于回路传输恢复技术(Loop Transfer Recovery:LTR)的LQG主动侧倾控制算法。设计各个车速下LQG/LTR局部状态反馈控制器,并进行了...针对重型半挂车的侧倾稳定性问题,建立了八自由度的车辆模型,并以LQR主动侧倾控制方法为基础,提出了一种基于回路传输恢复技术(Loop Transfer Recovery:LTR)的LQG主动侧倾控制算法。设计各个车速下LQG/LTR局部状态反馈控制器,并进行了阶跃转向工况下车辆的仿真。仿真结果表明:LQG/LTR主动侧倾控制算法有效提高了重型半挂车的侧倾稳定性。展开更多
基金supported by Open Research Fund of State Key Laboratory of Automobile Dynamics Simulation, China (Grant No. 20101103)National Natural Science Foundation of China (Grant No. 51075176)
文摘Rollover and jack-knifing of tractor semi-trailer are serious threats for vehicle safety, and accordingly active safety technologies have been widely used to reduce or prevent the occurrence of such accidents. However, currently tractor semi-trailer stability control is generally only a single hazardous condition (rollover or jack-knifing) control, it is difficult to ensure the vehicle comprehensive stability of various dangerous conditions. The main objective of this study is to introduce a multi-objective stability control algorithm which can improve the vehicle stability of a tractor semi-trailer by using differential braking. A vehicle controller is designed to minimize the likelihood of rollover and jack-knifing. First a linear vehicle model of tractor semi-trailer is constructed. Then an optimal yaw control for tractor using differential braking is applied to minimize the yaw rate and lateral acceleration deviation of tractor, as well as the hitch articulation angle of tractor semi-trailer, so as to improve the vehicle stability. Second a braking scheme and variable structure control with sliding mode control are introduced in order to achieve the best braking effect. Last Fishhook maneuver is introduced to the active safety simulation and the active control system effect verification. The simulation results show that multi-objective stability control algorithm of semi-trailer could improve the vehicle stability significantly during the transient maneuvers. The proposed multi-objective stability control algorithm is effective to prevent the vehicle rollover and jackknifing.
文摘针对重型半挂车的侧倾稳定性问题,建立了八自由度的车辆模型,并以LQR主动侧倾控制方法为基础,提出了一种基于回路传输恢复技术(Loop Transfer Recovery:LTR)的LQG主动侧倾控制算法。设计各个车速下LQG/LTR局部状态反馈控制器,并进行了阶跃转向工况下车辆的仿真。仿真结果表明:LQG/LTR主动侧倾控制算法有效提高了重型半挂车的侧倾稳定性。