Multi-Modal Morphing Wing Flaps for Next Generation Green Regional Aircraft: The CleanSky Challenge

R. Pecora
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引用次数: 3

Abstract

Regional aviation is an innovation driven sector of paramount importance for the European Union economy. Large resources and efforts are currently spent through the CleanSky program for the development of an efficient air transport system characterized by a lower environmental impact and unequalled capabilities of ensuring safe and seamless mobility while complying with very demanding technological requirements. The Green Regional Aircraft (GRA) panel, active from 2006, aims to mature, validate and demonstrate green aeronautical technologies best fitting the regional aircraft that will fly from 2020 onwards with reference to specific and challenging domains: from advanced low-weight and high performance structures up to all-electric systems and bleed-less engine architectures, from low noise/high efficiency aerodynamic up to environmentally optimized missions and trajectories management. The development of such technologies addresses two different aircraft concepts, identified by two seat classes, 90-pax with Turboprop (TP) engine and 130-pax, in combination with advanced propulsion solutions, namely, the Geared Turbofan (GTF), the Advanced Turbofan (ATF) and the Open Rotor (OR) configuration. Within the framework of the Clean Sky program, and along nearly 10 years of research, the design and technological demonstration of a novel wing flap architecture was addressed. Research activities aimed at demonstrating the industrial feasibility of a morphing architecture enabling flap camber variation in compliance with the demanding safety requirements applicable to the next generation GRA in both open rotor and turboprop configurations. The driving motivation was found in the opportunity to replace a conventional double slotted flap with a single slotted morphing flap assuring improved high lift performances — in terms of maximum attainable lift coefficient and stall angle — while lowering emitted noise, fuel-burnt and deployment system complexity. Additional functionalities for load control and alleviation were then considered and enabled by a smart architecture allowing for an independent shape-control of the flap tip region during cruise. The entire process moving from concept definition up to the experimental qualification of true scale prototypes, characterized by global and multi-zone differential morphing capabilities, is here described with specific emphasis on the adopted design philosophy and implemented technological solutions. Paths to improvements are finally outlined in perspective of a low-term item certification and series production.
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下一代绿色支线飞机的多模态变形机翼襟翼:清洁的挑战
支线航空是一个创新驱动的部门,对欧盟经济至关重要。目前,大量的资源和努力都花在了CleanSky项目上,用于开发一种高效的航空运输系统,其特点是对环境的影响更小,确保安全和无缝移动的能力无与伦比,同时符合非常苛刻的技术要求。绿色支线飞机(GRA)小组从2006年开始运作,旨在成熟、验证和展示最适合2020年以后飞行的支线飞机的绿色航空技术,涉及特定和具有挑战性的领域:从先进的低重量高性能结构到全电动系统和无排放发动机架构,从低噪音/高效率空气动力学到环境优化任务和轨迹管理。这些技术的发展涉及两种不同的飞机概念,由两种座位级别确定,90座的涡轮螺旋桨(TP)发动机和130座的先进推进解决方案,即齿轮传动涡扇(GTF),先进涡扇(ATF)和开放式旋翼(OR)配置。在清洁天空计划的框架内,经过近10年的研究,一种新型机翼襟翼结构的设计和技术演示得到了解决。研究活动旨在证明一种可变形结构的工业可行性,使襟翼弧度变化符合适用于新一代开放式旋翼和涡桨配置的GRA的严格安全要求。驱动动机是将传统的双开槽襟翼替换为单开槽变形襟翼,以确保在最大可达到的升力系数和失速角方面提高高升力性能,同时降低噪音、燃油消耗和部署系统的复杂性。然后考虑了负载控制和减轻的附加功能,并通过智能架构实现了在巡航期间对襟翼尖端区域的独立形状控制。从概念定义到真正规模原型的实验鉴定的整个过程,以全球和多区域差异变形能力为特征,在这里详细描述了采用的设计理念和实施的技术解决方案。最后从低周期项目认证和批量生产的角度概述了改进的途径。
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