复合材料 4D 印刷锥形壳体的变形分析

IF 5.3 Q2 MATERIALS SCIENCE, COMPOSITES Composites Part C Open Access Pub Date : 2024-10-01 DOI:10.1016/j.jcomc.2024.100522
Mohammad Hamidpour, Suong V Hoa
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引用次数: 0

摘要

复合材料 4D 打印(4DPC)是一种无需使用复杂形状模具即可制造复合材料结构形状的技术。相反,只需使用一个平面模具。这种创新技术已被用于制造性能可与金属弹簧媲美的复合材料板簧、欧米茄加强筋和柔性机翼的波纹芯。最近,这种技术又被用于制造复合材料锥形壳。虽然实验工作已经成功证明了从平面到圆锥形的转变,但开发一种数值方法来复制这种转变是非常可取的。这种方法的出现不仅为实验结果提供了理论支持,还为开发其他形状提供了手段。将平面形状转化为锥形形状的铺层顺序涉及曲线纤维。目前可用的有限元即使不是全部,也大多只处理直线纤维(即使元件的边界可能是弯曲的)。本研究的目的是通过包含曲线纤维的特殊有限元,检查 4DPC 所制成的复合材料从平面到曲线变形的分析效率。所开发的有限元用于确定采用多种不同铺层顺序制成的锥形壳体的形状。曲线纤维结构的弯曲方向在很大程度上受纤维取向的影响。这凸显了纤维取向和铺层组成在实现 4D 打印复合材料理想形状中的关键作用。
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Analysis of the deformation of conical shells made by 4D Printing of composites
4D printing of composites (4DPC) is a technique that allows the manufacturing of composite structures to shape without the use of a complex-shaped mold. Instead, only a flat mold is utilized. This innovative technique has been employed to make composite leaf springs with performance comparable to metallic springs, omega stiffeners, and corrugated core for flexible wings. Recently, this technique was applied to fabricate composite conical shells. While experimental work has successfully demonstrated the transformation from flat to conical shape, the development of a numerical method to replicate this transformation is highly desirable. The availability of such method not only provides theoretical support for the experimental result, it also provides means to develop other shapes. The lay-up sequence for transforming flat to conical shapes involves curvilinear fibers. Most if not all finite elements currently available deal only with straight fibers (even though the boundaries of the element may be curved). The objective of this research is to examine the efficiency of the analysis for the deformation of composite from flat to curve made by 4DPC by special finite elements containing curved fibers. The developed finite elements were used to determine the shapes of conical shells made using multiple distinct lay-up sequences. The direction of bending in curvilinear fiber structures is significantly influenced by the orientation of the fibers. This highlights the critical role of fiber orientation and layer composition in achieving desired shapes in 4D printed composites.
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来源期刊
Composites Part C Open Access
Composites Part C Open Access Engineering-Mechanical Engineering
CiteScore
8.60
自引率
2.40%
发文量
96
审稿时长
55 days
期刊最新文献
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