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Assessment of the running resistance of a diesel passenger train using evolutionary bilevel algorithms and operational data

机译:使用进化贝韦算法和运营数据评估柴油旅客列车的运行阻力

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Evolutionary bilevel algorithms are used for approximating the running resistance on the basis of the long-term fuel consumption data of a diesel passenger train in different routes. The input data comprises the geometry of these routes, speed and acceleration limits and certain engine properties. A running resistance is found for which the consumptions predicted by the model are equal to the logged consumptions of the vehicle for each of the routes in the training set. The model has been validated with simulated data with known properties and also with a diesel-hydraulic railcar operating on a 94 km route in northern Spain. The error in the running resistance estimation using evolutionary algorithms with respect to the measurement with a coasting test was less than 4%.
机译:进化的Bilevel算法用于近似于在不同路线中的柴油旅客列车的长期燃料消耗数据的基础上近似于运行电阻。 输入数据包括这些路由,速度和加速度限制以及某些发动机特性的几何形状。 找到一种运行阻力,该阻力在于该模型预测的消耗等于训练集中的每个路由的车辆的记录消耗。 该模型已通过具有已知性能的模拟数据验证,也具有在西班牙北部的94公里的路线上运行的柴油液压铁路。 使用进惯性测试的测量的进化算法运行电阻估计中的误差小于4%。

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