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Optimal Control and Energy Management for Hybrid Gas-Electric Propulsion

机译:混合燃气推进的最优控制与能源管理

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摘要

The paper considers a generic model for a turbofan engine coupled to electromechanical (EM) elements used for energy conversion and storage in electric form. The electromechanical systems apply torque to the engine shafts, allowing for controllable power injection or extraction to and from the engine. The standard proportional-integral (PI) control law used to command fuel flow for turbofan speed regulation is maintained for compatibility with industry practices, leaving the electromechanical torque to be specified. The paper adopts an optimal control approach for this purpose, where a weighted combination of electric energy consumption and fuel consumption is minimized subject to the dynamics of the electrified propulsion system. The solution for the optimal torques is given by linear state feedback plus bias, with gains calculated numerically from engine linearization data. Energy balance equations are derived and used to guide the optimization, evaluate the resulting power distributions, and check for errors. Simulation studies are presented for a chop-burst transient and for a realistic flight mission profile with environmental input variations. The paper shows the economic advantage of operating the engine with the electrified components. Specifically, fuel burn can be reduced in exchange for electric energy, which must be replenished, but at lower cost.
机译:本文考虑了涡轮通发动机的通用模型,该发动机耦合到用于电能转换和储存的机电(EM)元件以电形式。机电系统将扭矩施加到发动机轴上,允许可控的电力注入或从发动机提取。用于指挥涡轮机速度调节燃料流量的标准成比例积分(PI)控制法是与行业实践的兼容性,使指定机电扭矩。本文采用最佳控制方法,为此目的,电力消耗和燃料消耗的加权组合最小化,以电气化推进系统的动态。最佳扭矩的解决方案由线性状态反馈加上偏置给出,从发动机线性化数据数字计算出来的增益。能量平衡方程式衍生并用于指导优化,评估所得到的功率分布,并检查错误。仿真研究介绍了斩波爆炸瞬态和具有环境输入变化的现实飞行任务型材。本文显示了用电气化部件操作发动机的经济优势。具体地,可以减少燃料燃烧以换取电能,必须补充,但成本较低。

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