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SHEAR FATIGUE BEHAVIOR OF PVC FOAMS

机译:PVC泡沫的剪切疲劳行为

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摘要

When a sandwich structure is subjected to transverse loads, the face sheets carry bending moments as tensile and compressive stresses and the core carries transverse forces as shear stresses. The core is typically the weakest component of the structure and is the first to fail in shear. In this study the shear fatigue behavior of two closed-cell cellular PVC foams, Divinycell HD130 (linear) and H130 (cross linked), with the same nominal density of 130 kg/m~3, were investigated. Static shear tests reveal that HD130 foams are more ductile, have almost twice the energy absorption capability, and an extraordinary crack propagation resistance when compared to the H130 foams. Shear fatigue tests were conducted at room temperature, at a frequency of 3 Hz and at a stress ratio, R=0.1 on the HD130 and H130 foams. S-N curves were generated and shear fatigue characteristics were determined. The number of cycles to failure for the linear foams was substantially higher than that of the cross-linked PVC foams. HD foams have smaller cells with thicker faces and edges. This microstructure supports absorption of larger amounts of liquid resin forming a resin rich sub interface zone in the core. The high intrinsic toughness of the sub interface delays the initiation of fatigue cracks and thereby increases the fatigue life. For both foams shear deformation occurs without volume change and the materials fail by shearing in the vicinity of the centerline along the longitudinal axis Details of the experimental investigation and the evaluation of the fatigue performance are presented.
机译:当夹层结构经受横向载荷时,面板携带弯曲力矩作为拉伸和压缩应力,并且芯具有横向力作为剪切应力。核心通常是结构最薄弱的部件,并且是第一个在剪切中失效的部件。在该研究中,研究了两个闭孔细胞PVC泡沫,Divinycell HD130(线性)和H130(交叉连接)的剪切疲劳行为,具有相同的标称密度为130kg / m〜3。静态剪切试验显示,与H130泡沫相比,HD130泡沫更加延展,几乎具有能量吸收能力的两倍,以及具有非凡的裂纹传播电阻。剪切疲劳试验在室温下,以3 Hz的频率和应力比,在HD130和H130泡沫上以应力比进行r = 0.1。产生了S-N曲线并测定剪切疲劳特性。线性泡沫的失效循环的数量基本上高于交联的PVC泡沫的循环。高清泡沫具有较小的面和边缘的细胞。该微观结构支持吸收较大量的液体树脂,形成核心的树脂富界面区域。亚界面的高固有韧性延迟了疲劳裂缝的启动,从而增加了疲劳寿命。对于两种泡沫的剪切变形而发生而没有体积变化,并且通过沿着实验研究的纵向轴线细节剪切来说,材料通过剪切来剪切,并提出了对疲劳性能的评价。

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