Modelling and modal characteristics of NPS-100 9.2m wind turbine

K. Ahmad, Hammad Rahman Hassan Junaid Hasham
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Abstract

This paper presents a methodology for modeling and modal characteristics of wind turbine blade. Structures with different cross section airfoils, different chord lengths and manufactured with composite materials are difficult to model. Moreover, modeling should be such that it can address requirements from aerodynamic as well structural perspective. Complexity is further added when failure analyses are also required. Ideal modeling tool is therefore should be capable of addressing all above requirements along with ease of modeling in less time. NuMAD (Numerical Manufacturing And Design) developed by Sandia National Laboratories offers all such capabilities. In the present work, NPS-100 wind turbine blade has been used as test case to demonstrate and share the capabilities of the package. NuMAD generated input files for ANSYS which is then used to perform modal analysis in wind off and wind on conditions with cantilevered boundary condition. In wind off condition, modes were extracted without the application of any force and in un-deformed state. Results were in good agreement with those of published data. In wind on condition, axial load was applied with pre-stress option on, followed by nonlinear modal analysis. Results indicated a progressive increase in frequencies with the increase of axial load. This is because of stress stiffening effect. Similarly bucking analysis and other FEM based analyses may be performed with the modeling procedures adopted in this work for the current geometry or for any other geometry of interest.
NPS-100型9.2m风力机建模及模态特性
本文提出了一种风力机叶片建模和模态特性分析方法。不同截面翼型、不同弦长和复合材料制造的结构是难以建模的。此外,建模应该是这样的,它可以从空气动力学和结构的角度来解决需求。当还需要进行故障分析时,复杂性会进一步增加。因此,理想的建模工具应该能够在更短的时间内解决上述所有需求并易于建模。桑迪亚国家实验室开发的NuMAD(数字制造和设计)提供了所有这些能力。在目前的工作中,NPS-100风力涡轮机叶片已被用作测试案例,以演示和分享该套件的功能。NuMAD为ANSYS生成输入文件,然后使用ANSYS进行无风和悬臂边界条件下的模态分析。在无风条件下,模态提取无需施加任何力,且处于非变形状态。结果与已发表的数据一致。在风工况下,施加轴向荷载并选择预应力,然后进行非线性模态分析。结果表明,随着轴向载荷的增加,频率逐渐增加。这是由于应力硬化效应。类似地,屈曲分析和其他基于FEM的分析也可以使用本工作中采用的建模程序对当前几何形状或任何其他感兴趣的几何形状进行。
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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