自适应循环微型涡扇发动机在监视和消防场景下的任务分析与运行优化

M. Palman, B. Leizeronok, B. Cukurel
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引用次数: 2

摘要

目前的工作重点是基于任务的新型发动机架构评估,该架构是通过引入变速风扇和旁路喷嘴将微型涡轮喷气发动机转换为微型涡轮风扇而产生的。该解决方案将最大推力提高了260%,通过保持核心在最佳状态下独立运行,将燃油消耗降低了60%,并实现了更大的工作范围,同时保留了简单的单阀芯配置。特别是变速风扇的引入,使高速巡航和低速徘徊的实时优化成为可能。为了表征增加控制数量(发动机转速、齿轮传动比、旁路开度)的自适应循环发动机的性能,使用基于组件图的热力学研究将其与其他输入变量逐渐减少的类似推进系统进行对比。接下来,基于一组梯度驱动的连通性约束,针对传动比和旁通喷管面积的变化,对局部最小油耗工作点进行了基于最短路径的优化。所得到的状态转换图提供了给定高度和马赫飞行包线下推力范围内燃油消耗的全局最优值。然后,将发动机模型与具有代表性的多用途无人机概念设计提供的飞行力学求解器耦合。最后,在监视和消防场景中演示了相关任务的好处。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mission Analysis and Operational Optimization of Adaptive Cycle Micro-Turbofan Engine in Surveillance and Firefighting Scenarios
The current work focuses on mission based evaluation of a novel engine architecture arising from the conversion of a micro turbojet to a micro turbofan via introduction of a variable speed fan and bypass nozzle. The solution significantly improves maximum thrust by 260%, reduces fuel consumption by as much as 60% through maintaining the core independently running at its optimum, and enables a wider operational range, all the meanwhile preserving a simple single spool configuration. Particularly, the introduction of a variable speed fan, enables real-time optimization for both high speed cruise and low speed loitering. In order to characterize the performance of the adaptive cycle engine with increased number of controls (engine speed, gear ratio, bypass opening), a component map based thermodynamic study is used to contrast it against other similar propulsion systems with incrementally reduced input variables. In following, a shortest path based optimization is conducted over the locally minimum fuel consumption operating points, based on a set of gradient driven connectivity constraints for changes in gear ratio and bypass nozzle area. The resultant state transition graphs provide global optimum for fuel consumption at a thrust range in a given altitude and Mach flight envelope. Then, the engine model is coupled to a flight mechanics solver supplied with a conceptual design for a representative multipurpose UAV. Lastly, the associated mission benefits are demonstrated in surveillance and firefighting scenarios.
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