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首页> 外文期刊>Journal of intelligent material systems and structures >Parametric structural modelling offish bone active camber morphing aerofoils
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Parametric structural modelling offish bone active camber morphing aerofoils

机译:鱼骨活性弯度变形翼型的参数化结构建模

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Camber morphing aerofoils have the potential to significantly improve the efficiency of fixed and rotary wing aircraft by providing significant lift control authority to a wing, at a lower drag penalty than traditional plain flaps. A rapid, mesh-independent and two-dimensional analytical model of the fish bone active camber concept is presented. Existing structural models of this concept are one-dimensional and isotropic and therefore unable to capture either material anisotropy or spanwise variations in loading/deformation. The proposed model addresses these shortcomings by being able to analyse composite laminates and solve for static two-dimensional displacement fields. Kirchhoff-Love plate theory, along with the Rayleigh-Ritz method, are used to capture the complex and variable stiffness nature of the fish bone active camber concept in a single system of linear equations. Results show errors between 0.5% and 8% for static deflections under representative uniform pressure loadings and applied actuation moments (except when transverse shear exists), compared to finite element method. The robustness, mesh-independence and analytical nature of this model, combined with a modular, parameter-driven geometry definition, facilitate a fast and automated analysis of a wide range of fish bone active camber concept configurations. This analytical model is therefore a powerful tool for use in trade studies, fluid-structure interaction and design optimisation.
机译:弯形变型翼型可以通过向机翼提供显着的升力控制权限,从而以比传统的平襟翼更低的阻力,显着提高固定翼飞机和旋翼飞机的效率。提出了一种快速,独立于网格的二维鱼骨主动弯度分析模型。这种概念的现有结构模型是一维的和各向同性的,因此无法捕获材料的各向异性或载荷/变形的展向变化。所提出的模型通过能够分析复合材料层压板并解决静态二维位移场来解决这些缺点。 Kirchhoff-Love板理论与Rayleigh-Ritz方法一起用于在单个线性方程组中捕获鱼骨主动弯度概念的复杂性和可变刚度。结果表明,与有限元方法相比,在具有代表性的均匀压力载荷和施加的驱动力矩(存在横向剪切力的情况下)下,静态挠度的误差在0.5%至8%之间。该模型的鲁棒性,网格无关性和分析性,再加上模块化的,参数驱动的几何形状定义,有助于对各种鱼骨主动弯度概念配置进行快速,自动的分析。因此,该分析模型是用于贸易研究,流体结构相互作用和设计优化的强大工具。

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