As the velocity of a train increases,the corresponding air pumping power consumption of the brake discs increases proportionally.In the present experimental study,a standard axle-mounted brake disc with circumferentia...As the velocity of a train increases,the corresponding air pumping power consumption of the brake discs increases proportionally.In the present experimental study,a standard axle-mounted brake disc with circumferential pillars was analyzed using a 1:1 scale model and a test rig in a wind tunnel.In particular,three upstream velocities were selected on the basis of earlier investigations of trains operating at 160,250,and 400 km/h,respectively.Moreover,3D steady computational fluid dynamics(CFD)simulations of the flow field were conducted to compare with the wind tunnel test outcomes.The results for a 3-car train at 180 km/h demonstrated:(1)good agreement between the air resistance torques obtained from the wind tunnel tests and the related numerical results,with differences ranging from 0.95%to 5.88%;(2)discrepancies ranging from 3.2 to 3.8 N·m;(3)cooling ribs contributing more than 60%of the air resistance torque;(4)the fast rotation of brake discs causing a significantly different flow field near the bogie area,resulting in 25 times more air pumping power loss than that obtained in the stationary brake-disc case.展开更多
对带有线控制动系统(brake by wire,BBW)的车辆进行研究,提出了一种横摆稳定性优化控制策略.以二自由度单轨车辆模型为参考模型,利用比例-积分(proportionalintegral,PI)控制算法求出附加横摆力矩.由所计算出的车辆附加横摆力矩、方向...对带有线控制动系统(brake by wire,BBW)的车辆进行研究,提出了一种横摆稳定性优化控制策略.以二自由度单轨车辆模型为参考模型,利用比例-积分(proportionalintegral,PI)控制算法求出附加横摆力矩.由所计算出的车辆附加横摆力矩、方向盘转角来识别驾驶员转向意图和车辆实际行驶特性,通过广义逆法和数学归划法相结合的方法将附加横摆力矩分配到作用车轮上,由线控制动系统采用主缸定频调压法对各轮缸的目标液压力进行跟踪控制.硬件在环试验结果表明,该控制策略能够有效地保证车辆在高附和低附路面工况下的横摆稳定性.展开更多
基金supported by the National Key Research and Development Program of China(2020YFA0710901)the National Natural Science Foundation of China(12002395)Natural Science Foundation of Hunan Province(Grant No.2023JJ30643).
文摘As the velocity of a train increases,the corresponding air pumping power consumption of the brake discs increases proportionally.In the present experimental study,a standard axle-mounted brake disc with circumferential pillars was analyzed using a 1:1 scale model and a test rig in a wind tunnel.In particular,three upstream velocities were selected on the basis of earlier investigations of trains operating at 160,250,and 400 km/h,respectively.Moreover,3D steady computational fluid dynamics(CFD)simulations of the flow field were conducted to compare with the wind tunnel test outcomes.The results for a 3-car train at 180 km/h demonstrated:(1)good agreement between the air resistance torques obtained from the wind tunnel tests and the related numerical results,with differences ranging from 0.95%to 5.88%;(2)discrepancies ranging from 3.2 to 3.8 N·m;(3)cooling ribs contributing more than 60%of the air resistance torque;(4)the fast rotation of brake discs causing a significantly different flow field near the bogie area,resulting in 25 times more air pumping power loss than that obtained in the stationary brake-disc case.
文摘对带有线控制动系统(brake by wire,BBW)的车辆进行研究,提出了一种横摆稳定性优化控制策略.以二自由度单轨车辆模型为参考模型,利用比例-积分(proportionalintegral,PI)控制算法求出附加横摆力矩.由所计算出的车辆附加横摆力矩、方向盘转角来识别驾驶员转向意图和车辆实际行驶特性,通过广义逆法和数学归划法相结合的方法将附加横摆力矩分配到作用车轮上,由线控制动系统采用主缸定频调压法对各轮缸的目标液压力进行跟踪控制.硬件在环试验结果表明,该控制策略能够有效地保证车辆在高附和低附路面工况下的横摆稳定性.
基金support by National Natural Science Foundation of China ( 51305477)Project Supported by Program for Innovation Team Building at Institutions of Higher Education in Chongqing ( KJTD201319)the Collaborative Research Project of the Institute of Fluid Science,Tohoku University,Japan