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Numerical Investigation of the Aerodynamic and Structural Characteristics of a Corrugated Airfoil

机译:波纹翼型气动和结构特性的数值研究

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Previous experimental studies on static, bioinspired corrugated wings have shown that they produce favorable aerodynamic properties such as delayed stall compared with streamlined wings and flat plates at high Reynolds numbers (Re > 10~4). The majority of studies have been carried out with scaled models of dragonfly forewings from the Aeshna cyanea in either wind tunnels or water channels. In this paper, the aerodynamics of a corrugated airfoil was investigated using computational fluid dynamics at low Reynolds numbers of 500,1000, and 2000. A structural analysis was also performed using the commercial software SolidWorks 2009. The complex vortex structures that formed in the corrugated airfoil valleys and around the corrugated airfoil are studied in detail. Comparisons are made with experimental measurements at different Reynolds numbers and with simulations of a flat plate. The study shows that, at low Reynolds numbers, the corrugation does not provide any aerodynamic benefit compared with a flat plate. Instead, the corrugated airfoil generates more drag than the flat plate. Structural analysis shows that the wing corrugation can increase the resistance to bending moments on the wing structure with reduced thickness and weight.
机译:以前对静态的,受生物启发的波纹状机翼进行的实验研究表明,与流线型机翼和平板相比,在高雷诺数下(Re> 10〜4),它们具有良好的空气动力学特性,例如延迟失速。大多数研究都是使用风洞或水道中的Aeshna cyanea蜻蜓成虫的比例模型进行的。在本文中,使用计算流体动力学在500,1000和2000的低雷诺数下研究了波纹翼型的空气动力学。还使用商业软件SolidWorks 2009进行了结构分析。在波纹中形成的复杂涡旋结构对翼型谷和波纹翼型周围进行了详细研究。使用不同雷诺数下的实验测量值和平板模拟进行比较。研究表明,与平板相比,在低雷诺数下,波纹不会提供任何空气动力学优势。相反,波纹状翼型比平板产生更大的阻力。结构分析表明,机翼波纹可以增加机翼结构抗弯矩的能力,并减小厚度和重量。

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