On the Influence of Inflow Model Selection for Time-Domain Tiltrotor Aeroelastic Analysis

IF 1.4 4区 工程技术 Q2 ENGINEERING, AEROSPACE Journal of the American Helicopter Society Pub Date : 2021-01-01 DOI:10.4050/JAHS.66.032009
Ethan Corle, M. Floros, S. Schmitz
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引用次数: 2

Abstract

The methods of using the viscous vortex particle method, dynamic inflow, and uniform inflow to conduct whirl-flutter stability analysis are evaluated on a four-bladed, soft-inplane tiltrotor model using the Rotorcraft Comprehensive Analysis System. For the first time, coupled transient simulations between comprehensive analysis and a vortex particle method inflow model are used to predict whirl-flutter stability. Resolution studies are performed for both spatial and temporal resolution in the transient solution. Stability in transient analysis is noted to be influenced by both. As the particle resolution is refined, a reduction in simulation time-step size must also be performed. An azimuthal time step size of 0.3 deg is used to consider a range of particle resolutions to understand the influence on whirl-flutter stability predictions. Comparisons are made between uniform inflow, dynamic inflow, and the vortex particle method with respect to prediction capabilities when compared to wing beam-bending frequency and damping experimental data. Challenges in assessing the most accurate inflow model are noted due to uncertainty in experimental data; however, a consistent trend of increasing damping with additional levels of fidelity in the inflow model is observed. Excellent correlation is observed between the dynamic inflow predictions and the vortex particle method predictions in which the wing is not part of the inflow model, indicating that the dynamic inflow model is adequate for capturing damping due to the induced velocity on the rotor disk. Additional damping is noted in the full vortex particle method model, with the wing included, which is attributed to either an interactional aerodynamic effect between the rotor and the wing or a more accurate representation of the unsteady loading on the wing due to induced velocities.
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入流模型选择对倾转旋翼时域气动弹性分析的影响
利用旋翼机综合分析系统,对四叶软面倾转旋翼模型进行了旋翼颤振稳定性分析,分别采用粘性涡粒法、动态入流法和均匀入流法。首次将综合分析与涡粒法入流模型的耦合瞬态模拟应用于旋涡-颤振稳定性预测。在瞬态解决方案中进行了空间和时间分辨率的分辨率研究。暂态分析的稳定性受到两者的影响。随着粒子分辨率的提高,模拟时间步长的减小也必须进行。采用0.3°的方位时间步长来考虑粒子分辨率范围,以了解对旋转-颤振稳定性预测的影响。对比了均匀入流、动态入流和涡旋粒子法对翼梁弯曲频率和阻尼实验数据的预测能力。由于实验数据的不确定性,在评估最准确的入流模型方面存在挑战;然而,在入流模型中观察到随着保真度的增加,阻尼增加的一致趋势。动态入流预测与旋涡粒子法预测(机翼不属于入流模型的一部分)之间存在良好的相关性,表明动态入流模型足以捕捉由于转子盘上诱导速度引起的阻尼。在包含机翼的全涡粒子方法模型中注意到额外的阻尼,这归因于转子和机翼之间的相互作用气动效应,或者由于诱导速度而更准确地表示机翼上的非定常载荷。
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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来源期刊
Journal of the American Helicopter Society
Journal of the American Helicopter Society 工程技术-工程:宇航
CiteScore
4.10
自引率
33.30%
发文量
36
审稿时长
>12 weeks
期刊介绍: The Journal of the American Helicopter Society is a peer-reviewed technical journal published quarterly (January, April, July and October) by AHS — The Vertical Flight Society. It is the world''s only scientific journal dedicated to vertical flight technology and is available in print and online. The Journal publishes original technical papers dealing with theory and practice of vertical flight. The Journal seeks to foster the exchange of significant new ideas and information about helicopters and V/STOL aircraft. The scope of the Journal covers the full range of research, analysis, design, manufacturing, test, operations, and support. A constantly growing list of specialty areas is included within that scope. These range from the classical specialties like aerodynamic, dynamics and structures to more recent priorities such as acoustics, materials and signature reduction and to operational issues such as design criteria, safety and reliability. (Note: semi- and nontechnical articles of more general interest reporting current events or experiences should be sent to the VFS magazine
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