Pilot Assistance Systems for Energy-Optimized Approaches: Is It Possible to Reduce Fuel Consumption and Noise at the Same Time?

J. Wunderli, Jonas Meister, Johan Boyer, Martin Gerber, Tobias Bauer, Fethi Abdelmoula
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Abstract

Air traffic has appreciable environmental impacts, especially regarding gaseous emissions and noise. Recent studies have shown that the energy management during approach is a driving factor regarding environmental impact and is especially challenging for pilots. In a previous project, a newly developed pilot assistance system called LNAS (Low Noise Augmentation System) showed the potential of energy-optimized approaches to reduce fuel consumption and noise. Within the SESAR Exploratory Research project DYNCAT, novel functions based on LNAS have been integrated in the flight management system. In this contribution, results from real-time simulations with the enhanced FMS are presented, and mitigation of the environmental impact is analyzed. It was shown that with DYNCAT, the energy management could be improved, resulting in a later configuration and engines mostly in idle. With DYNCAT, procedures were also flown more uniformly and the variability in noise and fuel outcomes was reduced. However, the results revealed a trade-off for optimizing noise and fuel consumption simultaneously, whereby both parameters can be improved along specific optimum curves. A perfect strategy to minimize noise would be to first reduce speed and only secondly height, as high speeds lead to higher levels of airframe noise and sound exposure increases with decreasing distance. In contrast, saving fuel might be achieved by reducing the flight time, as the engines consume fuel even when being in idle.
能源优化方法的试点辅助系统:同时降低油耗和噪音可行吗?
空中交通对环境有明显的影响,尤其是气体排放和噪音。最近的研究表明,进近过程中的能源管理是环境影响的一个驱动因素,对飞行员来说尤其具有挑战性。在之前的一个项目中,一个名为 LNAS(低噪音增强系统)的新开发的飞行员辅助系统显示了能源优化方法在降低油耗和噪音方面的潜力。在 SESAR 探索性研究项目 DYNCAT 中,基于 LNAS 的新功能已被集成到飞行管理系统中。本文介绍了使用增强型 FMS 进行实时模拟的结果,并分析了如何减轻对环境的影响。结果表明,利用 DYNCAT,可以改进能源管理,从而实现后期配置,发动机大部分处于空转状态。有了 DYNCAT,飞行程序也更加统一,噪声和燃料结果的变化也减少了。然而,研究结果表明,同时优化噪声和油耗需要权衡利弊,这两个参数都可以沿着特定的最佳曲线得到改善。噪音最小化的完美策略是首先降低速度,其次才是高度,因为高速会导致更高水平的机身噪音,而声音暴露会随着距离的减小而增加。相反,由于发动机即使在空转时也会消耗燃料,因此可以通过缩短飞行时间来节省燃料。
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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