Lim Seongsik, Dhimole Vivek Kumar, Kim Yongbae, Cho Chongdu
Metal Forming R&D Department, Korea Institute of Industrial Technology (KITECH), Incheon 21999, Korea.
Mechanical Engineering Department, Inha University Graduate School, Incheon 22212, Korea.
Polymers (Basel). 2022 May 12;14(10):1977. doi: 10.3390/polym14101977.
Composite plates with holes are common in engineering applications, such as the automotive and aerospace industries. Three-dimensional braided carbon/epoxy polymers are an advanced textile composite and are used in various structures due to their high damage resistance and relatively low manufacturing cost. When a braided polymer plate with a hole is used in engineering applications, it is necessary to know its mechanical behavior under loading conditions using analysis theory to design it better. However, the effects of stress distribution with shear deformation theories on the variable thickness of the braided polymer plate (carbon/epoxy) with a hole under tensile loading have not been reported yet. In this paper, a study is conducted to evaluate shear deformation theories for a braided polymer plate with variable thickness and a hole in the center, analyzing the stresses and their concentration variations. First, multiscale modeling and analysis are performed to determine the mechanical properties of the plate. Then, finite element analyses are performed on a homogenized macro plate with a hole. The analysis process is verified by comparison with the available literature. Results show that the first-order shear deformation theory calculates 37, 56, and 70 percent less maximum transverse shear stress than the high-order shear deformation theory (Reissner-Mindlin) and the elasticity theory for thin, moderately thick, and thick braided polymer plates, respectively. Additionally, changing the theory has no significant effect on circumferential stress, radial stress, Von Mises stress, and stress concentration factor. As a result, this research can provide researchers and designers with structural intuition for a braided polymer plate with a center hole.
带孔的复合材料板在工程应用中很常见,比如汽车和航空航天工业。三维编织碳/环氧树脂聚合物是一种先进的纺织复合材料,因其高抗损伤性和相对较低的制造成本而被用于各种结构中。当带孔的编织聚合物板用于工程应用时,有必要运用分析理论了解其在加载条件下的力学行为,以便更好地进行设计。然而,关于拉伸载荷下,剪切变形理论对应变厚度带孔编织聚合物板(碳/环氧树脂)应力分布的影响尚未见报道。本文开展了一项研究,以评估中心带孔变厚度编织聚合物板的剪切变形理论,分析应力及其集中变化情况。首先,进行多尺度建模与分析以确定板材的力学性能。然后,对带孔的均匀化宏观板进行有限元分析。通过与现有文献对比验证了分析过程。结果表明,对于薄、中等厚度和厚编织聚合物板,一阶剪切变形理论计算出的最大横向剪应力分别比高阶剪切变形理论(赖斯纳-明德林理论)和弹性理论少37%、56%和70%。此外,改变理论对周向应力、径向应力、冯·米塞斯应力和应力集中系数没有显著影响。因此,本研究可为研究人员和设计人员提供关于中心带孔编织聚合物板的结构直观认识。