【2h】

High-order computational fluid dynamics tools for aircraft design

机译:用于飞机设计的高阶计算流体动力学工具

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摘要

Most forecasts predict an annual airline traffic growth rate between 4.5 and 5% in the foreseeable future. To sustain that growth, the environmental impact of aircraft cannot be ignored. Future aircraft must have much better fuel economy, dramatically less greenhouse gas emissions and noise, in addition to better performance. Many technical breakthroughs must take place to achieve the aggressive environmental goals set up by governments in North America and Europe. One of these breakthroughs will be physics-based, highly accurate and efficient computational fluid dynamics and aeroacoustics tools capable of predicting complex flows over the entire flight envelope and through an aircraft engine, and computing aircraft noise. Some of these flows are dominated by unsteady vortices of disparate scales, often highly turbulent, and they call for higher-order methods. As these tools will be integral components of a multi-disciplinary optimization environment, they must be efficient to impact design. Ultimately, the accuracy, efficiency, robustness, scalability and geometric flexibility will determine which methods will be adopted in the design process. This article explores these aspects and identifies pacing items.
机译:大多数预测都预测在可预见的将来,每年的航空运输量增长率将在4.5%至5%之间。为了维持这种增长,飞机对环境的影响不容忽视。未来的飞机除了要有更好的性能外,还必须具有更好的燃油经济性,大大减少的温室气体排放和噪音。为了实现北美和欧洲各国政府制定的积极的环保目标,必须取得许多技术突破。这些突破之一将是基于物理的,高精度和高效的计算流体动力学和航空声学工具,它们能够预测整个飞行包络线以及通过飞机发动机的复杂流量,并计算飞机噪声。这些流中的一些受尺度不同的不稳定涡流(通常是高度湍流)的支配,它们要求采用高阶方法。由于这些工具将成为多学科优化环境的组成部分,因此它们必须有效地影响设计。最终,准确性,效率,鲁棒性,可伸缩性和几何灵活性将决定在设计过程中采用哪种方法。本文探讨了这些方面并确定了起搏项目。

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