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Vibration and Buckling Characteristics of Functionally Graded Graphene Nanoplatelets Reinforced Composite Beams with Open Edge Cracks

机译:具有开放边缘裂缝的功能分级石墨烯纳米片增强复合梁的振动和屈曲特性

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摘要

This paper investigates the free vibration and compressive buckling characteristics of functionally graded graphene nanoplatelets reinforced composite (FG-GPLRC) beams containing open edge cracks by using the finite element method. The beam is a multilayer structure where the weight fraction of graphene nanoplatelets (GPLs) remains constant in each layer but varies along the thickness direction. The effective Young’s modulus of each GPLRC layer is determined by the modified Halpin-Tsai micromechanics model while its Poisson’s ratio and mass density are predicted according to the rule of mixture. The effects of GPLs distribution pattern, weight fraction, geometry, crack depth ratio (CDR), slenderness ratio as well as boundary conditions on the fundamental frequency and critical buckling load of the FG-GPLRC beam are studied in detail. It was found that distributing more GPLs on the top and bottom surfaces of the cracked FG-GPLRC beam provides the best reinforcing effect for improved vibrational and buckling performance. The fundamental frequency and critical buckling load are also considerably affected by the geometry and dimension of GPL nanofillers.
机译:本文通过使用有限元法研究了含有开口边缘裂缝的功能梯形石墨烯纳米纳薄增强复合材料(FG-GPLRC)梁的自由振动和压缩屈曲特性。该光束是多层结构,其中石墨烯纳米片(GPLS)的重量分数在每层中保持恒定,但沿厚度方向变化。每个GPLRC层的有效杨氏模量由改性的Halpin-TSAI微机械模型确定,而其泊松比和质量密度是根据混合物的规则预测的。详细地研究了GPLS分布图案,重量分数,几何形状,裂纹深度比(CDR),细长比以及边界条件对FG-GPLRC光束的基本频率和关键屈曲负荷的影响。发现在裂纹的FG-GPLRC光束的顶部和底表面上分配更多的GPL,为改善的振动和屈曲性能提供了最佳的增强效果。基本频率和关键屈曲负荷也受到GPL纳米填充物的几何形状和尺寸的显着影响。

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