Assessment of the effectiveness of stall delay and tip loss corrections for the simulation of small propeller performance with Virtual Blade Model

IF 2.5 3区 工程技术 Q2 MECHANICS European Journal of Mechanics B-fluids Pub Date : 2024-01-05 DOI:10.1016/j.euromechflu.2023.12.013
Lorenzo Stabeli Diehl, José Gustavo Coelho
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Abstract

The powertrain efficiency of most small unmanned air vehicles (SUAVs) depend on the aerodynamic performance of multiple propellers, which must be modelled before its optimisation. To predict propeller performance while capturing interaction effects not accountable for by momentum theories, the Virtual Blade Model (VBM) can be used at much lower costs than conventional Computational Fluid Dynamics (CFD). However, the accuracy of VBM depends on aerofoil polar data that often misrepresent rotational and three-dimensional effects that influence small propellers. In an attempt to expand the capabilities of VBM, it is a common practice to introduce correction models for aerofoil coefficients in its formulation, but the actual effectiveness of such approach for small propeller analysis remains unassessed. In this paper, VBM in OpenFOAM was extended with stall delay and tip loss models, while aerodynamic databases at low Reynolds numbers were built with XFOIL and extrapolated to the full angle of attack range. The accuracy of three VBM versions was validated against wind tunnel measurements of two off-the-shelf small propellers. For the lower-pitch propeller, thrust and power at low advance ratios and efficiency at high advance ratios were significantly improved by the stall delay model. But for the higher-pitch propeller, thrust and power were overpredicted with extended versions of VBM under most operating conditions, which is attributable to an excessive shift of effective angles of attack to the post-stall region by the stall delay model and to uncertainties in extrapolated polar data. The results suggest that without reliable procedures for obtaining polar data, correction models should be implemented in VBM only for the simulation of low-pitch propellers operating at low advance ratios, given their avoidance of the effective angle of attack range where XFOIL and extrapolation methods are mainly expected to fail in predicting lift behaviour.

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利用虚拟叶片模型模拟小型螺旋桨性能时失速延迟和叶尖损失修正效果的评估
大多数小型无人驾驶飞行器(SUAV)的动力系统效率取决于多个螺旋桨的气动性能,在优化之前必须对其进行建模。为了预测螺旋桨的性能,同时捕捉动量理论无法解释的相互作用效应,可以使用虚拟叶片模型(VBM),其成本远远低于传统的计算流体动力学(CFD)。然而,VBM 的准确性取决于气膜极坐标数据,而这些数据往往错误地反映了影响小型螺旋桨的旋转和三维效应。为了扩展 VBM 的功能,通常的做法是在其公式中引入气膜系数修正模型,但这种方法在小型螺旋桨分析中的实际效果仍有待评估。本文对 OpenFOAM 中的 VBM 进行了扩展,增加了失速延迟和叶尖损失模型,同时使用 XFOIL 建立了低雷诺数下的气动数据库,并将其外推至整个攻角范围。通过对两个现成的小型螺旋桨进行风洞测量,验证了三个 VBM 版本的准确性。对于低螺距螺旋桨,失速延迟模型显著提高了低推进比时的推力和功率以及高推进比时的效率。但对于较大螺距的螺旋桨,在大多数工作条件下,扩展版 VBM 对推力和功率的预测过高,这归因于失速延迟模型将有效攻角过度转移到失速后区域,以及外推极值数据的不确定性。结果表明,如果没有可靠的极值数据获取程序,校正模型只能在 VBM 中用于模拟以低推进比运行的低螺距螺旋桨,因为它们避开了有效攻角范围,而 XFOIL 和外推法在预测升力行为时主要会在这一范围失效。
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来源期刊
CiteScore
5.90
自引率
3.80%
发文量
127
审稿时长
58 days
期刊介绍: The European Journal of Mechanics - B/Fluids publishes papers in all fields of fluid mechanics. Although investigations in well-established areas are within the scope of the journal, recent developments and innovative ideas are particularly welcome. Theoretical, computational and experimental papers are equally welcome. Mathematical methods, be they deterministic or stochastic, analytical or numerical, will be accepted provided they serve to clarify some identifiable problems in fluid mechanics, and provided the significance of results is explained. Similarly, experimental papers must add physical insight in to the understanding of fluid mechanics.
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