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A Finite Beam Element Framework for Variable Stiffness Structures

机译:用于可变刚度结构的有限梁元件框架

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Recently, interest in using spatially variable structural properties has increased significantly due to the perceived benefits associated with composite and functionally graded materials. However, the increased variability of structural properties can exacerbate numerical errors resulting from the modelling assumptions originally derived for prismatic structures. This work is the first of a series we are conducting with the aim to achieve accurate 3D displacement, strain and stress fields using computationally cheap 1D beam elements to model spatially variable wind turbine blades. The strategy developed for this purpose is split into two parts. The first concerns the automated generation of refined linear beam elements and the second considers the extension of the co-rotational framework in order to provide a straightforward means of using these elements in non-linear analyses. In this paper we focus on the former and propose two enhancements to conventional beam elements. First, a framework for the automated generation of beam elements with a variable number of nodes is developed. Second, an integration scheme designed to take into account spanwise variations of structural properties along the beam element length is introduced. The influence of the proposed improvements on the displacements and strains accuracy of a statically loaded wind turbine blade is presented. Results suggest that this new method successfully improves the accuracy of strain predictions while lowering the number of nodes required in order to reach a converged strain field.
机译:最近,由于与复合材料和功能分级材料相关的感知益处,使用空间可变结构性质的兴趣显着增加。然而,结构特性的增加可变性可以加剧原始导出棱镜结构的建模假设产生的数值误差。这项工作是我们首个系列的旨在实现准确的3D位移,应变和应力场,使用计算廉价的1D光束元件来模拟空间可变风力涡轮机叶片。为此目的开发的策略分为两部分。首先涉及精制线性光束元件的自动产生,第二是通过在非线性分析中提供使用这些元件的直接方法来实现共旋转框架的延伸。在本文中,我们专注于前者,并提出了传统光束元件的两个增强功能。首先,开发了具有可变数量节点的自动生成光束元件的自动生成框架。其次,介绍了旨在考虑沿着梁元件长度的结构性特性的霉菌变化的集成方案。提出了提高改进对静载风力涡轮机叶片的位移和菌株精度的影响。结果表明,这种新方法成功提高了应变预测的准确性,同时降低了达到融合应变场所需的节点的数量。

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