变轨距货车转向架的动力学分析
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西南交通大学 牵引动力国家重点实验室,成都 610031

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E-mail:luoren@swjtu.edu.cnE-mail: luoren@swjtu.edu.cn


DYNAMICS ANALYSIS OF A GAUGE-CHANGEABLE RAILWAY FREIGHT VEHICLE BOGIE
Affiliation:

State Key Laboratory of Traction Power, Southwest Jiaotong University, Chengdu 610031, China

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    摘要:

    建立了考虑轮轴间隙的三大件式变轨距货车转向架动力学模型,研究车辆在准轨和宽轨线路上的动力学性能和LM踏面在不同轨距线路上的轮轨接触关系.考虑轨距为1435mm和1520mm、轨底坡为1/40和1/20、标准和打磨后的多种钢轨廓形与LM踏面匹配,发现LM踏面对两种轨底坡的兼容性较好,而踏面磨耗后对轨底坡变化较敏感;LM踏面在准轨线路上对轮轴横向间隙比较敏感,而在宽轨线路上则不存在这个问题.轮轴之间的横向和旋转间隙会导致车辆临界速度降低,建议控制间隙在0.6mm和0.5mrad以内;轮轴间隙不影响车辆运行安全性和平稳性,且在准轨和宽轨线路上的动力学指标基本无差异.变轨距车辆运行过程中,轮轨横向力和纵向蠕滑力会导致轮轴横向间隙和旋转间隙动态变化,变化量为间隙值;给出轮轴间隙与轮轨载荷的正态分布统计,发现轮轴间隙载荷与轮轨载荷相当.

    Abstract:

    Considering the gap between the wheel and axle, the dynamic model of a three-piece and gauge-changeable truck was established, and the running performance of the vehicle and the wheel-rail contact characteristic of LM tread on both the standard and broad gauge tracks were investigated. The LM tread with gauge 1435 mm and 1520 mm, the rail inclination 1/40 and 1/20, and the standard and worn rail profiles were selected for parameter analysis. It was found that the compatibility of LM tread for two kinds of rail inclinations is good, but it is sensitive to the change of the bottom slope after tread wear. Moreover, the LM tread is sensitive to the transverse gap the wheel and axle on the standard line, but insensitive on the wide rail line. The transverse and rotational gaps lead to a reduction in the critical speed of the vehicle, which are recommended to be selected within 0.6mm and 0.5mrad, respectively. However, the gaps do not affect the safety and smoothness of the vehicle operation, and the dynamic performances of the vehicle on the standard and wide rail lines are almost the same. During the operation of the gauge-changeable vehicle, both the transverse force and longitudinal creep force between the wheel and rail lead to dynamic changes of the transverse and rotational gaps. Finally, the normal distribution statistics of the axle-gap and wheel-rail loads were conducted, which indicated that the axle-gap load is equal to the wheel-rail load.

    表 1 车辆质量、结构和悬挂参数Table 1 Vehicle’s mass, structure and suspension parameters
    图5 不同横向间隙工况下的轮对蛇行运动幅值Fig.5 Wheelset hunting displacement at various lateral wheel-axle clearance
    图11 轮轨横向力和间隙横向力的幅值正态分布Fig.11 Normal distribution of lateral wheel-rail forces and wheel-axle clearance forces
    图12 轮轨纵向蠕滑力矩和间隙扭转力矩的幅值正态分布Fig.12 Normal distribution of torques from the wheel-rail longitudinal forces and the torques from wheel-axle clearance
    表 3 LM踏面的等效锥度和接触带宽Table 3 Equivalent conicity and contact bandwidth of LM
    表 4 不含轮轴间隙时的车辆临界速度(km/h)Table 4 Critical speed of vehicle without wheel-axle clearance
    表 2 轮轨匹配参数Table 2 Wheel/rail match parameters
    图2 三大件式货车转向架动力学模型Fig.2 Dynamics model of three-piece bogie of freight wagon
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引用本文

石怀龙,罗仁,王勇,施以旋,郭金莹.变轨距货车转向架的动力学分析[J].动力学与控制学报,2020,18(3):79~85; . DYNAMICS ANALYSIS OF A GAUGE-CHANGEABLE RAILWAY FREIGHT VEHICLE BOGIE[J]. Journal of Dynamics and Control,2020,18(3):79-85.

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  • 收稿日期:2020-05-14
  • 最后修改日期:2020-05-14
  • 录用日期:2020-05-14
  • 在线发布日期: 2020-06-30
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