An Update on Sizing and Performance Analysis of a Hybrid Turboelectric Regional Jet for the NASA ULI Program

Christopher A. Perullo, Mingxuan Shi, Gokcin Cinar, Alan Alahmad, M. Sanders, D. Mavris, M. Benzakein
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引用次数: 9

Abstract

Under the NASA University Leadership Initiative (ULI) program, a team of universities are collaborating on the advancement of technologies a hybrid turboelectric regional jet, with an intent to enter service in the 2030 timeframe. In the previous studies of the ULI program, the in-service benefits of the technologies under development were analyzed by integrating the technologies of interest to a 2030 regional jet with a hybrid turbo-electric distributed propulsion system. As the program has progressed, the projected performances for each technology and subsystem have been updated. This paper presents an update in the sizing and performance analysis of the regional jet with the hybrid turbo-electric distributed propulsion system, by integrating the updated values of the technologies and subsystems to the vehicle. The updates in this paper include the DC/AC conversion links, efficiency of generator and cabling losses, weight of the wires, the battery cooling through the environmental control system, motor and inverter cooling by the thermal management system, and the redundancy strategy of the propulsion system. The updates of the results from the integrated model include the overall efficiency of the propulsion system, mission fuel savings, mission energy flow distribution, and the optimal hybridization rate in climb and cruise. The overall fuel saving benefit for the target 600-nmi mission is 19.9% compared to the baseline aircraft.
NASA ULI项目混合动力涡轮电动区域喷气机尺寸和性能分析的最新进展
在NASA大学领导计划(ULI)项目下,一组大学正在合作推进混合动力涡轮电动支线喷气机的技术进步,计划在2030年投入使用。在ULI项目之前的研究中,通过将相关技术与混合涡轮电力分布式推进系统集成到2030年支线喷气机中,分析了正在开发的技术的使用效益。随着项目的进展,每个技术和子系统的预期性能已经更新。本文通过将各技术和子系统的更新值与飞行器相结合,提出了采用混合动力-电力分布式推进系统的支线喷气机的尺寸和性能分析的新方法。本文的更新内容包括直流/交流转换环节、发电机效率和电缆损耗、导线重量、通过环境控制系统冷却电池、通过热管理系统冷却电机和逆变器以及推进系统的冗余策略。集成模型的更新结果包括推进系统的整体效率、任务燃油节约、任务能量流分配以及爬升和巡航时的最优混合率。与基线飞机相比,目标600海里任务的总体燃油节约效益为19.9%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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