列车变坡点联合制动纵向冲动影响分析

Influence Analysis of Combined Braking on Train Longitudinal Impulse at Grade Change Points

  • 摘要:
    目的 重载列车在变坡点处实施制动时,坡道阻力突变与车辆制动不同步会引发显著的纵向冲动,抑制制动过程的纵向冲动对保障列车运行安全具有重要意义。
    方法 建立多刚体质点纵向动力学模型,以“1+1+1” 编组组合式重载列车为研究对象,分析变坡点电空联合制动工况下,坡道坡度、不同位置机车电制动力分配比及电制动力异步施加方式对列车纵向冲动的影响规律。
    结果及结论  坡道坡度越大,列车纵向冲动越剧烈,在下坡-平直道凹型变坡点位置进行联合制动时,最大车钩力以压钩力为主,最大可达−2019.48 kN。对于“1+1+1”编组,中间与尾部重联机车按1/3与2/3分配电制动力时,最大车钩力为−937.00 kN。相较于各机车平均分配方案,最大车钩力减少了15.7%,制动距离仅增加了10.93 m。相同电制动分配比下,减小主控机车的电制动力分配,选择合适比例的中间与尾部重联机车的电制动比例,能有效缓解列车纵向冲动。在制动距离基本不变的前提下,延迟主控与尾部重联机车的电制动力施加时刻,能够适度缓解列车纵向冲动。

     

    Abstract:
    Objective When heavy-haul trains apply brakes at grade change points, the sudden change in gradient resistance and the asynchronous braking of vehicles will induce significant longitudinal impulse. Suppressing the longitudinal impulse during the train braking process is of great significance for ensuring train operational safety.
    Method A multi-rigid-body particle longitudinal dynamics model is established. Taking a '1+1+1' marshaled combined heavy-haul train as the research object, the influencing law of grade slope, the distribution ratio of electric braking force among locomotives at different positions, and the asynchronous application modes of electric braking force on the train longitudinal impulse under the condition of electro-pneumatic combined braking at grade change points are analyzed.
    Result & Conclusion  The greater the grade slope, the more severe the train's longitudinal impulse. When combined braking is applied at a concave grade change point from a downgrade to a level track, the maximum coupler force is predominantly compressive, reaching up to −2019.48 kN. For the '1+1+1' marshalling, when the middle and rear distributed locomotives are allocated 1/3 and 2/3 of the electric braking force respectively, the maximum coupler force is −937.00 kN. Compared to the scheme of average distribution among all locomotives, the maximum coupler force is reduced by 15.7 %, and the braking distance increases by only 10.93 m. Under the same electric braking distribution ratio, reducing the electric braking force distribution of the master locomotive and selecting an appropriate electric braking ratio for the middle and rear distributed locomotives can effectively alleviate the longitudinal impulse of the train. Under the premise that the braking distance remains basically unchanged, delaying the application time of the electric braking force for the master and rear distributed locomotives can moderately alleviate the train longitudinal impulse.

     

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