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A new aircraft architecture based on the ACHEON Coanda effect nozzle: flight model and energy evaluation

机译:基于ACHEON Coanda效果喷嘴的新型飞机架构:飞行模型和能量评估

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摘要

Aeronautic transport has an effective necessity of reducing fuel consumption and emissions to deliver efficiency and competitiveness driven by today commercial and legislative requirements. Actual aircraft configurations scenario allows envisaging the signs of a diffused technological maturity and they seem very near their limits. This scenario clearly shows the necessity of radical innovations with particular reference to propulsion systems and to aircraftarchitecture consequently.udMethodsudThis paper presents analyses and discusses a promising propulsive architecture based on an innovative nozzle, which allows realizing the selective adhesion of two impinging streams to two facing jets to two facing Coanda surfaces. This propulsion system is known with the acronym ACHEON (Aerial Coanda High Efficiency Orienting Nozzle). This paper investigates how the application of an all-electric ACHEONs propulsion system to a very traditional commuter aircraft can improve its relevant performances. This paper considers the constraints imposed by current state-of-the-art electric motors, drives, storage and conversion systems in terms of both power/energy density and performance and considers two different aircraft configurations: one using battery only and one adopting a more sophisticated hybrid cogeneration. The necessity of producing a very solid analysis has forced to limit the deflection of the jet in a very conservative range (±15°) with respect to the horizontal. This range can be surely produced also by not optimal configurations and allow minimizing the use of DBD. From the study of general flight dynamics equations of the aircraft in two-dimensional form it has been possible to determine with a high level of accuracy the advantages that ACHEON brings in terms of reduced stall speed and of reduced take-off and landing distances. Additionally, it includes an effective energy analysis focusing on the efficiency and environmental advantages of the electric ACHEON based propulsion by assuming the today industrial grade high capacity batteries with a power density of 207 Wh/kg.udResultsudIt has been clearly demonstrated that a short flight could be possible adopting battery energy storage, and longer duration could be possible by adopting a more sophisticated cogeneration system, which is based on cogeneration from a well-known turboprop, which is mostly used in helicopter propulsion. This electric generation system can be empowered by recovering the heat and using it to increase the temperature of the jet. It is possible to transfer this considerable amount of heat to the jet by convection and direct fluid mixing. In this way, it is possible to increase the energy of the jets of an amount that allows more than recover the pressure losses in the straitening section. In this case, it is then possible to demonstrate an adequate autonomy of flight and operative range of the aircraft. The proposed architecture, which is within the limits of the most conservative results obtained, demonstrates significant additional benefits for aircraft manoeuvrability. In conclusion, this paper has presented the implantation of ACHEON on well-known traditional aircraft, verifying the suitability and effectiveness of the proposed system both in terms of endurance with a cogeneration architecture and in terms of manoeuvrability. It has demonstrated the potential of the system in terms of both takeoff and landing space requirements.udConclusionsudThis innovation opens interesting perspectives for the future implementation of this new vector and thrust propulsion system, especially in the area of greening the aeronautic sector. It has also demonstrated that ACHEON has the potential of renovating completely a classic old aircraft configuration such as the one of Cessna 402.
机译:航空运输具有减少燃油消耗和排放的有效必要性,以提供当今商业和立法要求所推动的效率和竞争力。实际的飞机配置方案可以设想技术成熟度分散的迹象,并且它们似乎已经接近极限。这种情况清楚地表明了彻底创新的必要性,特别是对推进系统和飞机架构的参考。 udMethods ud本文介绍了分析和讨论一种基于创新喷嘴的有前途的推进体系结构,该体系结构可以实现两个撞击流的选择性粘附两个面对的喷口到两个面对的柯恩达表面。该推进系统以缩写词ACHEON(空中柯恩达高效定向喷嘴)着称。本文研究了全电动ACHEON推进系统在非常传统的通勤飞机上的应用如何改善其相关性能。本文考虑了当前最先进的电动机,驱动器,存储和转换系统在功率/能量密度和性能方面的限制,并考虑了两种不同的飞机配置:一种仅使用电池,另一种采用电池先进的混合热电联产。进行非常可靠的分析的必要性已将射流相对于水平线的偏转限制在非常保守的范围内(±15°)。如果不是最佳配置,也可以肯定地产生此范围,并且可以最大程度地减少DBD的使用。通过二维形式的飞机一般飞行动力学方程的研究,可以高精度地确定ACHEON在降低失速速度以及降低起飞和着陆距离方面的优势。此外,它通过假设当今工业级的高容量电池(功率密度为207 Wh / kg)来进行有效的能量分析,重点关注基于ACHEON电动推进器的效率和环境优势。 udResults ud已明确证明采用电池能量存储可以实现短途飞行,而采用更先进的热电联产系统可以实现更长的续航时间,该系统是基于众所周知的涡轮螺旋桨飞机的热电联产而来的,该系统主要用于直升机的推进。可以通过回收热量并利用它来提高射流的温度来增强这种发电系统的能力。通过对流和直接流体混合,可以将大量的热量传递到喷嘴。以这种方式,可以增加射流的能量,其量允许的程度大于恢复在定形部分中的压力损失。在这种情况下,便有可能证明飞机具有足够的飞行自主性和有效范围。所提出的架构在所获得的最保守结果的限制之内,证明了飞机机动性的显着其他好处。总之,本文介绍了将ACHEON植入著名的传统飞机上的情况,从热电联产结构的耐久性和机动性方面验证了该系统的适用性和有效性。它已经证明了该系统在起飞和着陆空间要求方面的潜力。 ud结论 ud这项创新为该新型矢量和推力推进系统的未来实施,特别是在航空部门的绿色化领域中,开辟了有趣的前景。它还表明,ACHEON具有完全翻新经典旧飞机配置(例如塞斯纳402飞机)的潜力。

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