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MPC-based power management strategy for a series hybrid electric tracked bulldozer

机译:基于MPC的系列混合动力履带推土机电源管理策略

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摘要

In this brief, a model predictive control (MPC) is developed for the first time to solve the optimal energy management problem in tracked bulldozers equipped with advanced series hybrid powertrains. Hybrid bulldozers use two distinct power sources for propulsion, and their complex powertrain architecture requires the coordination of all subsystems to achieve target performances in terms of fuel economy, exhaust emissions. This method is applied to a series hybrid electric vehicle, using a linearized model in state space formulation and a linear MPC algorithm, based on Quadratic Programming (QP), to find a feasible suboptimal solution. The MPC solution is then compared with the dynamic programming algorithm, which requires the entire driving profile to be known priori, guarantees the optimality and is used here as the benchmark solution. The effect of the parameters of the MPC (length of prediction horizon) is also investigated. The results from comparing the MPC solution and the rule-based control strategy indicate that there is an approximately 5.2%improvement in fuel economy.
机译:在本摘要中,首次开发了模型预测控制(MPC),以解决配备先进系列混合动力总成的履带推土机的最佳能源管理问题。混合动力推土机使用两种不同的动力进行推进,其复杂的动力总成架构要求协调所有子系统,以实现燃油经济性,废气排放方面的目标性能。该方法适用于串联混合动力电动汽车,它使用状态空间公式化的线性化模型和基于二次规划(QP)的线性MPC算法,以找到可行的次优解决方案。然后将MPC解决方案与动态编程算法进行比较,后者要求先验地了解整个驾驶情况,保证最优性,并在此处用作基准解决方案。还研究了MPC参数(预测范围的长度)的影响。通过比较MPC解决方案和基于规则的控制策略的结果表明,燃油经济性提高了大约5.2%。

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