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融入偏好信息的列车运行过程多目标优化算法 被引量:2
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作者 王龙达 王兴成 +2 位作者 邹广闻 孙大伟 刘罡 《交通运输系统工程与信息》 EI CSCD 北大核心 2017年第6期133-140,共8页
列车运行过程优化是一个多目标、大滞后、非线性的极其复杂的优化问题.为了更好地解决上述问题,以列车能耗、舒适性、停靠准确性和运行时间为控制目标,以列车运动动力学方程为约束,建立了列车运行过程的多目标优化模型,提出了一种融入... 列车运行过程优化是一个多目标、大滞后、非线性的极其复杂的优化问题.为了更好地解决上述问题,以列车能耗、舒适性、停靠准确性和运行时间为控制目标,以列车运动动力学方程为约束,建立了列车运行过程的多目标优化模型,提出了一种融入偏好信息的列车运行过程多目标遗传粒子群算法.提出的改进策略具有以下优点,在融入偏好信息的基础上通过控制粒子群中个体在解空间的分布能够更好地保持粒子群多样性,从而在进化过程中具有更明显的全局收敛的指向作用.仿真得到的速度距离曲线表明,在列车及其运行线路相同的情况下,本文所提出的算法性能较佳、寻优结果较好. 展开更多
关键词 铁路运输 列车多目标优化 偏好信息 遗传粒子群算法 列车运行过程
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基于工况寻优的重载列车多目标运行优化研究
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作者 付雅婷 董梦琪 +1 位作者 杨辉 李中奇 《铁道学报》 2025年第4期74-84,共11页
现有重载列车运行中存在的安全性、平稳性研究不足,车辆间车钩力考虑不充分等问题,通过研究车辆间的相互作用力,考虑降低列车运行能耗的需求,建立安全、节能和平稳的综合评价模型。针对当前列车最优工况转换点位置难以确定的问题,提出... 现有重载列车运行中存在的安全性、平稳性研究不足,车辆间车钩力考虑不充分等问题,通过研究车辆间的相互作用力,考虑降低列车运行能耗的需求,建立安全、节能和平稳的综合评价模型。针对当前列车最优工况转换点位置难以确定的问题,提出一种基于工况寻优的改进金鹰优化算法(IGEO),求解多目标适应度函数模型。为解决算法可能陷入局部最优的问题,保证全局搜索能力,在算法中引入logistic混沌映射机制和Levy飞行高度更新策略,以动态调整当前工况转换点的位置。最后根据大秦线实际线路信息,优化得到理想目标速度曲线、最优工况序列及最优工况转换点。实验结果表明,相比于自适应遗传算法,所提方法可以保证列车在安全、平稳运行的基础上,优化得到平均运行能耗降低约13.9%。 展开更多
关键词 重载列车 列车多目标优化 IGEO算法 工况寻优
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Multi-objective optimization of the streamlined head of high-speed trains based on the Kriging model 被引量:17
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作者 YAO ShuanBao GUO DiLong +2 位作者 SUN ZhenXu YANG GuoWei CHEN DaWei 《Science China(Technological Sciences)》 SCIE EI CAS 2012年第12期3495-3509,共15页
As the running speed of high-speed trains increases, aerodynamic drag becomes the key factor which limits the further increase of the running speed and energy consumption. Aerodynamic lift of the trailing car also bec... As the running speed of high-speed trains increases, aerodynamic drag becomes the key factor which limits the further increase of the running speed and energy consumption. Aerodynamic lift of the trailing car also becomes the key force which affects the amenity and safety of the train. In the present paper, a simplified CRH380A high-speed train with three carriages is chosen as the model in order to optimize aerodynamic drag of the total train and aerodynamic lift of the trailing car. A constrained mul- ti-objective optimization design of the aerodynamic head shape of high-speed trains based on adaptive non-dominated sorting genetic algorithm is also developed combining local function three-dimensional parametric approach and central Latin hypercube sampling method with maximin criteria based on the iterative local search algorithm. The results show that local function parametric approach can be well applied to optimal design of complex three-dimensional aerodynamic shape, and the adaptive non-dominated sorting genetic algorithm can be more accurate and efficient to find the Pareto front. After optimization the aerodynamic drag of the simplified train with three carriages is reduced by 3.2%, and the lift coefficient of the trailing car by 8.24%, the volume of the streamlined head by 2.16%; the aerodynamic drag of the real prototype CRH380A is reduced by 2.26%, lift coefficient of the trailing car by 19.67%. The variation of aerodynamic performance between the simplified train and the true train is mainly concentrated in the deformation region of the nose cone and tail cone. The optimization approach proposed in the present paper is simple yet efficient, and sheds lights on the constrained multi-objective engineering optimization design of aerodynamic shape of high-speed trains. 展开更多
关键词 multi-objective optimization KRIGING genetic algorithms aerodynamic shape high-speed trains
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