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Ice accretion and aerodynamic effects on a multi-element airfoil under SLD icing conditions

机译:SLD结冰条件下多元素机翼的积冰和空气动力效应

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The impingement behavior of large water droplets, their interactions with the solid wall and the subsequent ice accretion and aerodynamic effects have become a key issue in in-flight aircraft icing. In this study, ice accretion and aerodynamic effects on a multi-element airfoil were investigated under the recently introduced Appendix O icing envelope. Supercooled large droplet (SLD) dynamics were taken into account by employing a unified computational approach. Ice accretion was simulated using a partial differential equation (PDE) based solver, instead of the commonly used control volume method. The numerical solver of the SLD impingement was built on the droplet deformation and droplet-wall interaction splash models. The unified solvers for clean air, large droplet impingement, ice accretion, and the aerodynamic analysis of ice effects-all of which are based on a single unstructured upwind finite volume framework-were first validated using available experimental data and then applied to investigate ice accretion and the resulting aerodynamic effects on multi-element airfoils for various flight conditions and, in particular, near-freezing SLD icing conditions. Interestingly, two counter-intuitive results were found when comparing the ice accretion and associated aerodynamic degradation for non-SLD and SLD cases. Moreover, considering runback ice was shown to be essential in the design of an ice protection system (IPS) for the multi-element wing. (C) 2018 Elsevier Masson SAS. All rights reserved.
机译:大水滴的撞击行为,它们与固体壁的相互作用以及随后的积冰和空气动力效应已成为飞行中飞机结冰的关键问题。在这项研究中,在最近引入的附录结冰封套下,研究了积冰和空气动力学对多元素机翼的影响。通过采用统一的计算方法考虑了过冷的大液滴(SLD)动力学。使用基于偏微分方程(PDE)的求解器代替常用的控制体积法来模拟积冰。 SLD碰撞的数值求解器建立在液滴变形和液滴-壁相互作用飞溅模型的基础上。首先使用可用的实验数据验证了用于清洁空气,大液滴撞击,积冰和冰效应的空气动力学分析的统一求解器,所有这些求解器均基于单个非结构化迎风有限体积框架,然后再用于研究积冰以及在各种飞行条件下,尤其是在接近冰冻的SLD结冰条件下,对多元素机翼产生的空气动力学影响。有趣的是,在比较非SLD和SLD情况下的积冰量和相关的空气动力学退化时,发现了两个与直觉相反的结果。此外,在设计用于多元素机翼的防冰系统(IPS)时,考虑到回流冰是至关重要的。 (C)2018 Elsevier Masson SAS。版权所有。

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