共查询到20条相似文献,搜索用时 566 毫秒
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《汽车安全与节能学报》2015,(1)
为了提高汽车质心侧偏角估计的准确性,提出了一种新的、基于运动学—动力学方法的融合估计方法。构建了质心侧偏角融合观测器(SAFO)。该SAFO包括3个子滤波器,每个子滤波器分别将横向车速的初步估计结果送到主滤波器中。主滤波器根据当前车辆行驶工况和融合规则,将子滤波器的估计结果融合成为全局意义下的质心侧偏角估计结果。结果表明:该SAFO具有良好的估计精度和长时间尺度下的计算稳定性,同时对横向加速度传感器偏差具有鲁棒性。因此,车辆测试数据验证了SAFO的性能。 相似文献
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路面附着系数的识别对汽车稳定性控制起着至关重要的作用。轮胎回正力矩能够反映整车及轮胎的运动、受力状况以及路面环境信息,且利用回正力矩能比使用侧向力更早地估计轮-地接触状况。为此,本文设计一种基于轮胎回正力矩的路面附着系数估计方法。首先,基于二自由度车辆模型设计轮胎侧偏角反馈观测器,对轮胎侧偏角进行实时估计;其次,基于轮胎侧偏角和轮胎回正力矩信息设计路面附着系数估计器,构建路面附着系数评估函数;最后,搭建Carsim与Simulink联合仿真平台,仿真结果表明设计的估计算法能够有效地对路面附着系数进行估计。 相似文献
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轮式装载机在工作区域行驶时,避障过程频繁,以往的避障轨迹规划未考虑整车转向半径约束和车速变化,也较少考虑整车在动力学模型条件下的轨迹跟踪性能。针对上述情况,以自动驾驶轮式装载机为对象,基于最优快速随机扩展树算法(RRT*),考虑车身膨胀圆个数,生成全局最优避障路径,以整车最小稳定转向半径为约束,利用CC-Steer算法对避障路径进行平滑处理,采用路径-速度分解算法规划满足整车在加速、匀速和减速状态下的避障行驶轨迹。基于整车动力学模型,考虑行驶过程中的横向位置偏差和航向角偏差,并将整车动力传动系统视为1阶惯性环节,构建装载机动力学状态空间方程。以加速度和铰接角为控制输入,以车速、横向位置偏差和航向角偏差为控制输出,建立整车动力学预测模型,以加速度、铰接角和车速为约束条件,将目标函数转换为二次规划问题,建立满足装载机在工作区域避障的模型预测轨迹跟踪控制系统。以规划的非匀速行驶避障轨迹为目标,利用构建的模型预测轨迹跟踪系统,进行自动驾驶轮式装载机的轨迹跟踪仿真。研究结果表明:所提方法能够很好地控制自动驾驶轮式装载机从初始位姿驶向目标位姿,实现整车在工作区域的避障过程,且在避障过程中满足整车的约束要求,保证整车在轨迹跟踪过程中的安全稳定性能。 相似文献
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The sideslip driving status is of fundamental importance to the stability of a vehicle. This paper presents a practical vehicle sideslip driving status estimation method that uses ESP (electronic stability program) sensors. ESP sensors such as wheel speed, lateral acceleration, yaw rate and steering wheel angle sensors are used to determine the sideslip driving status and distinguish a banked road. This estimation algorithm contains front-rear sideslip and banked road detection methods. The proposed sideslip estimation algorithm was designed to use the analytical redundancy of these sensors and Lagrange interpolation methods. The performance and effectiveness of the proposed estimation and compensation algorithm were investigated using vehicle tests. This paper presents the results of two cases that were used for the experimental verification: a curved flat road and banked road. 相似文献
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新的轮式驱动电动车电子差速控制算法的研究 总被引:11,自引:2,他引:9
提出了一种用于轮式驱动电动车的电子差速控制算法,将转弯时转矩分配计算和基于车轮滑移率的开关控制相结合,对车辆左右驱动轮输入不同的转矩,同时根据轮胎偏转角的变化率确定目标滑移率。仿真研究证明,与采用机械差速器相比,新的电子差速控制系统鲁棒性好,车辆的驾驶更安全平稳,并能获得更优异的转向性能和更快的响应特性。 相似文献
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车轮外倾角与车轮前束值是车轮定位中的两个重要参数,车轮前束是为了抵消车轮外倾产生的侧滑不利影响,因此前束值要与车轮的外倾角有合理的匹配。综合考虑车辆的结构参数和轮胎特性,基于车轮的侧滑机理,推导出车轮外倾角与前束值的合理匹配关系模型,用试验结果验证了模型的正确性,为在车辆的设计开发过程中,合理的确定车轮的外倾角与前束值提供理论参考。 相似文献
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《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2012,50(12):1967-1979
Dynamic game theory brings together different features that are keys to many situations in control design: optimisation behaviour, the presence of multiple agents/players, enduring consequences of decisions and robustness with respect to variability in the environment, etc. In the presented methodology, vehicle stability is represented by a cooperative dynamic/difference game such that its two agents (players), namely the driver and the direct yaw controller (DYC), are working together to provide more stability to the vehicle system. While the driver provides the steering wheel control, the DYC control algorithm is obtained by the Nash game theory to ensure optimal performance as well as robustness to disturbances. The common two-degrees-of-freedom vehicle-handling performance model is put into discrete form to develop the game equations of motion. To evaluate the developed control algorithm, CarSim with its built-in nonlinear vehicle model along with the Pacejka tire model is used. The control algorithm is evaluated for a lane change manoeuvre, and the optimal set of steering angle and corrective yaw moment is calculated and fed to the test vehicle. Simulation results show that the optimal preview control algorithm can significantly reduce lateral velocity, yaw rate, and roll angle, which all contribute to enhancing vehicle stability. 相似文献
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《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2012,50(9):1065-1075
A steer-by-wire system, which has no mechanical constraints between steering wheel and front wheel, is expected to improve steering performance. The mechanical resistance torque is not transmitted from the front wheel to the steering wheel, and it is essential to simulate the torque around the steering wheel for better human-machine interface. Previous studies investigated resistance torque control originating from vehicle behaviour variables such as yaw rate and lateral acceleration. However, other variables such as steering wheel angle and front wheel actuation force are also good candidate sources to generate resistance torque. In this paper, first, four general guidelines are introduced to evaluate three types of resistance torques, i.e., the steering wheel angle origin, the steering force origin and the vehicle behaviour origin. First two guidelines are for ‘driver-made’ phase to make a turn, while the third guideline is for ‘vehicle-made’ phase to return to straight driving and the fourth one is the applicability guideline. Satisfaction of these guidelines by each of the three resistance torques is examined by the actual vehicle experiment. A necessity of combining these three types of resistance torques is indicated as a future subject. 相似文献
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针对轮毂电机分布式驱动越野车辆在狭小空间快速机动的需求,设计了一种分层结构的原地转向控制策略。基于动力学原理分析了各轮载荷、附着条件对原地转向横摆速度的影响机理,并搭建原地转向运动学模型,上层采用模型预测控制算法设计原地转向理想轨迹以及期望的横摆角速度,开发基于 PI滑模控制的横摆运动跟踪算法,通过补偿转向横摆力矩以提高方向角控制的鲁棒性和稳定性,下层以最优轮胎利用率为目标,设计二次规划算法优化分配各轮附加横摆力矩。dSPACE 硬件在环测试结果表明,所提出的控制算法可在保证稳定性的前提下实现原地转向,大幅提高了车辆的转向机动性,在方向盘动态输入仿真中,车辆最大转弯半径为 0.157 m,转向中心的最大偏移量为 3.610 m;同时,驾驶员能对转向过程进行闭环控制,实现了原地转向过程中横摆速度的实时调节。 相似文献