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Mission Analysis and Component-Level Sensitivity Study of Hybrid-Electric General Aviation Propulsion Systems

机译:混合动力通用航空推进系统的任务分析与组分级灵敏度研究

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The system-level capabilities and component-level sensitivities of hybrid-electric propulsion systems were analyzed by modeling a twin-engine general aviation aircraft. The flight performance model was developed using performance variables for the Tecnam P2006T found in published articles authored by the aircraft manufacturer. Both parallel and series hybrid-electric drivetrains were integrated into the aircraft performance model, and performance data were produced for various missions, degrees of electrification, battery specific energy densities, and electric motor power densities. The results quantified the improvements in battery specific energy density and electric motor power density necessary to make specific mission ranges feasible for several variants of each hybrid architecture. It was found that current technology allows a parallel hybrid configuration to achieve a maximum theoretical range of approximately 250 nmi. The results also indicated that parallel hybrid architectures will offer an effective near-term configuration, by offering greater range performance than a series hybrid with incremental future advancements in battery specific energy density and electric motor power density. However, distant future advancements in these technologies will allow series-hybrid architectures to produce similar range capabilities with improved fuel economy over parallel-hybrid architectures.
机译:通过建模双发动机通用航空飞机分析混合动力推进系统的系统级能力和组分级敏感性。飞行性能模型是使用在飞机制造商撰写的已发布文章中发现的Tecnam P2006T的性能变量进行了开发的。平行和串联的混合动力传动系统均集成到飞机性能模型中,并且为各种任务,电气化,电池特定能量密度和电动机功率密度产生性能数据。结果量化了对每个混合架构的几种变体进行特定任务范围所必需的电池特定能量密度和电动机功率密度的改进。发现当前技术允许平行的混合配置实现约250nmi的最大理论范围。结果还表明,并行混合体架构将提供有效的近期配置,通过提供比系列混合动力更大的频率性能,具有电池特定能量密度和电动机功率密度的增量进步。然而,这些技术的遥远的未来进步将允许串联混合架构产生类似的范围功能,并通过平行混合架构改善燃油经济性。

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