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Exploring advanced technology gas turbine engine design and performance for the Large Civil Tiltrotor (LCTR)

机译:探索大型民用Tiltrotor(LCTR)的先进技术燃气轮机设计和性能

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A Large Civil Tiltrotor (LCTR) conceptual design was developed as part of the NASA Heavy Lift Rotorcraft Systems Investigation in order to establish a consistent basis for evaluating the benefits of advanced technology for large tiltrotors. The concept has since evolved into the second-generation LCTR2, designed to carry 90 passengers for 1,000 nautical miles at 300 knots, with vertical takeoff and landing capability. This paper explores gas turbine component performance and cycle parameters to quantify performance gains possible for additional improvements in component and material performance beyond those identified in previous LCTR2 propulsion studies and to identify additional research areas. The vehicle-level characteristics from this advanced technology generation 2 propulsion architecture will help set performance levels as additional propulsion and power systems are conceived to meet ever-increasing requirements for mobility and comfort, while reducing energy use, cost, noise and emissions. The Large Civil Tiltrotor vehicle and mission will be discussed as a starting point for this effort. A few, relevant engine and component technology studies, including previous LCTR2 engine study results will be summarized to help orient the reader on gas turbine engine architecture, performance and limitations. Study assumptions and methodology used to explore engine design and performance, as well as assess vehicle sizing and mission performance will then be discussed. Individual performance for present and advanced engines, as well as engine performance effects on overall vehicle size and mission fuel usage, will be given. All results will be summarized to facilitate understanding the importance and interaction of various component and system performance on overall vehicle characteristics.
机译:作为美国宇航局重型升降机旋翼机系统调查的一部分,开发了一个大型民用倾斜仪(LCTR)概念设计,以便为评估大型乘性大型技术的先进技术的益处来确定一致的基础。此概念自发展为第二代LCTR2,旨在携带90个乘客,以300节在300次,垂直起飞和着陆能力。本文探讨了燃气轮机元件性能和循环参数,以量化性能提升,以便在先前的LCTR2推进研究中确定的组件和材料性能的额外改进,并确定其他研究领域。来自这种先进技术生成的推进架构的车辆级特征将有助于将性能水平设定为额外的推进和电力系统,以满足越来越多的移动性和舒适性,同时减少能源使用,成本,噪音和排放。大型民用倾斜车辆和使命将被讨论为这项努力的起点。少数,相关发动机和组件技术研究,包括以前的LCTR2发动机研究结果将总结为帮助将读者归因于燃气轮机架构,性能和限制。研究假设和方法用于探索发动机设计和性能,然后讨论评估车辆尺寸和使命性能。将提供目前和先进发动机的个人性能,以及对整体车辆尺寸和任务燃料使用的发动机性能影响。所有结果都将总结一下,促进了解各个组件和系统性能对整体车辆特征的重要性和相互作用。

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