首页> 外文期刊>Proceedings of the institution of mechanical engineers >A study of the effect of strain rate and temperature on the characteristics of quasi-unidirectional natural fibre- reinforced composites
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A study of the effect of strain rate and temperature on the characteristics of quasi-unidirectional natural fibre- reinforced composites

机译:应变速率和温度对准单向天然纤维增强复合材料特性影响的研究

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The responses of quasi-unidirectional vegetable fibres (sisal and flax) - styrene polyester matrix composites under 6-J nominal strike energy at different sample temperatures and at higher impact energies of 9 and 12 J for samples at room temperature have been studied and indentation properties realized from static loading at different cross-head displacement speeds. The findings are explained in terms of the impact characteristics. At temperatures above ambient, there were changes in the impact characteristics. The drop impact tests were carried out on samples (70 × 70 × 5 mm~3) at an ambient temperature of 18 ℃ and elevated temperatures of 40 ℃, 60 ℃, 80 ℃, and 100 ℃ using an instrumented drop tester with a 12.1-mm diameter hemispheric tup and the load history and energy profile were obtained. The actual damage response depends on many intrinsic and extrinsic factors, including the thickness of the laminate, the exact stacking sequence, the shape and kinetic energy of the impactor, and the degree to which the laminate is supported against bending. The examination of the impact and post-impact characteristics at elevated temperatures revealed a plastic mode of failure and the performance was assessed in terms of contact time, post-impact displacement, and total energy. Composites are generally brittle in nature and respond elastically with little or no plastic deformation, but this is not the case for natural fibre - styrene polyester matrix composites, especially at high temperatures, as there exists some degree of plasticity seen in the after-impact state of the samples. Low energy impact (6 J) results in cracking of the matrix leading to reduction in the strength of the composite. However, higher energy impact strikes produce cracking of the matrix and splintering of the fibres. From the load-indentation curves, average power coefficients of 3.6 and 15.4 were obtained for sisal and flax composites, respectively, as against 1.5 for the special Hertz contact of two elastic bodies.
机译:研究了准单向植物纤维(剑麻和亚麻)-苯乙烯聚酯基复合材料在6-J标称打击能量下,在不同样品温度下以及在室温下9和12 J的较高冲击能量下对样品的响应,并研究了压痕性能通过在不同的十字头位移速度下的静态载荷实现。根据影响特征对发现进行了解释。在高于环境温度的情况下,冲击特性会发生变化。使用具有12.1的仪器跌落测试仪,在环境温度18℃和高温40℃,60℃,80℃和100℃下对样品(70×70×5 mm〜3)进行跌落冲击试验。获得了直径为-mm的半球体tup以及载荷历史和能量分布。实际的损坏响应取决于许多内在和外在因素,包括层压板的厚度,确切的堆叠顺序,冲击器的形状和动能以及层压板被支撑以防弯曲的程度。在高温下对撞击和撞击后特性的检查显示出塑性破坏模式,并且根据接触时间,撞击后位移和总能量评估了性能。复合材料通常本质上是脆性的,并且几乎没有或几乎没有塑性变形地产生弹性响应,但是对于天然纤维-苯乙烯聚酯基复合材料则不是这种情况,尤其是在高温下,因为在后碰撞状态下存在一定程度的可塑性的样本。低能量冲击(6 J)会导致基体开裂,从而降低复合材料的强度。但是,较高的能量冲击会导致基体开裂和纤维分裂。从载荷压痕曲线可知,剑麻和亚麻复合材料的平均功率系数分别为3.6和15.4,而两个弹性体的特殊赫兹接触为1.5。

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