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Effects of Molecular Weight of Polypropylene on the Correlation Between Fracture Toughness and Mechanical/Impact Properties of GFPP Composites

机译:聚丙烯分子量对GFPP复合材料断裂韧性与力学/冲击性能相关性的影响

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The accurate prediction of scientific and statistical parameters depends, largely, on the functional correlation between the variables involved, as well as their definite and predictable behaviour around the line of best fit (the regression line). Hence, an accurate and reliable prediction of the fracture toughness and mechanical properties of glass fibre reinforced polypropylene (GFPP) composites is very important in order to prevent sudden failure of components fabricated from them. It also gives the opportunity to save cost on experimentation. Three grades of polypropylene (PP) of different molecular weights (M_w) had glass fibre reinforcements each. The incorporation of maleic anhydride grafted PP (MA-g-PP) into the composites was for compatibilisation between the matrix and reinforcements. There was tensile testing on both the un-notched and notched dumbbell samples. The use of J-Integral analysis was to investigate the fracture toughness of the composites. There was an evaluation of the effect of different M_w of PP on the fracture toughness and impact properties of the composites. The examination of the morphology of the materials was by (SEM), while charge coupled device (CCD) camera monitored crack propagation behaviour under tensile loading. There was further morphology study to analyse the fibre length distribution and interfacial shear strength of the composites. Investigations revealed that the composite with the lowest M_w PP consistently showed better mechanical, impact and fracture toughness properties than those with higher M_w PP. It was also observed that incorporating MA-g-PP as compatibilisers had greater interfacial bonding effects, resulting in higher interfacial shear strength in GFPP of lower M_w and high melt flow rates than those of higher M_w and low melt flow rate. The investigation further revealed that as the M_w, of PP decreased, the fracture toughness and other mechanical properties increased in a linear correlation. Crack propagation trailed the interface between PP matrix and GF because of weak bonding in the composite with higher M_w, PP. This study revealed that incorporating MA-g-PP into GFPP composites achieved better properties with PP of lower M_w and higher melt flow rate. Hence the mechanical and fracture properties of GFPP depend largely on the M_w, of the polymer PP matrix. There was a strong linear correlation observed between the M_w of PP, fracture toughness and other impact properties thereby making it possible to make a reliable prediction of any property of the composites from another.
机译:科学和统计参数的准确预测在很大程度上取决于所涉及变量之间的功能相关性,以及它们在最佳拟合线(回归线)附近的确定和可预测的行为。因此,准确和可靠地预测玻璃纤维增​​强聚丙烯(GFPP)复合材料的断裂韧性和机械性能对于防止由其制造的组件突然失效非常重要。它还提供了节省实验成本的机会。三种不同分子量(M_w)的聚丙烯(PP)具有玻璃纤维增​​强材料。将马来酸酐接枝的PP(MA-g-PP)掺入复合材料中是为了增强基质和增强材料之间的相容性。在无缺口和有缺口的哑铃样品上均进行了拉伸测试。 J-积分分析的用途是研究复合材料的断裂韧性。评估了不同M_w的PP对复合材料的断裂韧性和冲击性能的影响。用(SEM)检查材料的形态,而电荷耦合器件(CCD)相机监控在拉伸载荷下的裂纹扩展行为。还进行了进一步的形态研究,以分析复合材料的纤维长度分布和界面剪切强度。研究表明,与具有较高M_w PP的复合材料相比,具有最低M_w PP的复合材料始终显示出更好的机械,冲击和断裂韧性。还观察到,将MA-g-PP用作相容剂具有更大的界面键合效果,与较高的M_w和较低的熔体流动速率相比,较低的M_w和较高的熔体流动速率导致GFPP的界面剪切强度更高。研究进一步表明,随着PP的M_w降低,断裂韧性和其他机械性能呈线性相关。由于具有较高M_w,PP的复合材料中的键合较弱,因此裂纹扩展落后于PP基体和GF之间的界面。这项研究表明,将MA-g-PP掺入GFPP复合材料可以获得更好的性能,而PP的M_w较低且熔体流动速率较高。因此,GFPP的机械和断裂性能在很大程度上取决于聚合物PP基体的M_w。 PP的M_w,断裂韧性和其他冲击性能之间存在很强的线性相关性,因此可以可靠地预测复合材料的任何性能。

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