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APPLYING DYNAMIC PROGRAMMING ALGORITHMS TO THE ENERGY MANAGEMENT OF HYBRID ELECTRIC AIRCRAFT

机译:将动态规划算法应用于混合动力电机的能源管理

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To explore the application of dynamic programming (DP) to the energy management strategies of hybrid electric aircraft, a hybrid powertrain for a lightweight rotorcraft is introduced and its dynamic control model is designed. The model is conceived for the Agusta-Westland A109 helicopter, a twin-engine rotorcraft used in various roles, such as light transport, search-and-rescue and military roles. The turboshaft single spool engines are modeled with the use of performance maps that allow part load specific fuel consumption to be calculated as a function of actual power request and flight conditions. The state-of-the-art lithium polymer batteries are used for the hybridization and their behavior is evaluated by the Sheperd-Peukert model. The control problem is modeled through a graph structure where a node is obtained from the intersection between a time value, representing the starting of a phase of flight, and a splitting factor, representing the percentage of propulsive power required to the battery in such a phase. The edge connecting two nodes concerns with the state transition and the weight of the edge refers to the transition cost. The goal is to find an optimal splitting sequence to minimize the total cost over the whole mission, that is given with regard to speed and altitude. The Dijkstra algorithm, which allows the shortest energy path to be found between nodes in a graph, is used to look for the optimum. A local optimum is achieved when the cost is defined as the fuel consumption whereas the global optimum can be attained when the model is enhanced to include the effect of the battery usage into the cost. The results are compared with the original non-hybrid case and the engine efficiency was suitable evaluated. The applicability to other mission data is suitably evaluated so as to deduce the concept of similarity of mission.
机译:为了探讨动态规划(DP)对混合动力电机的能量管理策略的应用,引入了一种轻量级旋翼飞机的混合动力系,设计了其动态控制模型。该模型被构思为Agusta-Westland A109直升机,在各种角色中使用的双引擎旋翼飞行器,例如轻型运输,搜救和军事角色。涡轮轴单个阀芯发动机采用使用性能图建模,允许零件负载特定的燃料消耗作为实际功率请求和飞行条件的函数来计算。最先进的锂聚合物电池用于杂交,其行为由Sheperd-Peukert模型评估。控制问题是通过图形结构建模的,其中从时间值之间的交叉点获得节点,表示飞行的相位的开始和分裂因子,表示在这种相位中电池所需的推进功率的百分比。连接两个节点的边缘与状态转换和边缘的重量接触到过渡成本。目标是找到最佳分裂序列,以最大限度地减少整个任务的总成本,这是关于速度和高度给出的。 dijkstra算法允许在图中节点之间找到的最短能量路径,用于寻找最佳。当成本被定义为燃料消耗时,实现局部最佳最佳,而当模型增强以包括电池用量的效果进入成本时,可以获得全局最佳。将结果与原始非混合案例进行比较,并评估发动机效率。适用于其他任务数据的适用性得到评估,以推导出使命相似之处的概念。

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