首页> 外文期刊>Iranian polymer journal >Tuning the interlaminar shear strength and thermo-mechanical properties of glass fiber composites by incorporation of (3-mercaptopropyl) trimethoxysilane-functionalized carbon black
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Tuning the interlaminar shear strength and thermo-mechanical properties of glass fiber composites by incorporation of (3-mercaptopropyl) trimethoxysilane-functionalized carbon black

机译:通过掺入(3-巯基丙基)三甲氧基硅烷官能化炭黑来调节玻璃纤维复合材料的层间剪切强度和热机械性能

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摘要

The incorporation of functionalized nanoscale fillers into traditional glass fiber/unsaturated polyester (GF/UPE) composites provides a more robust mechanical attributes. The current study demonstrates the potential of 3-mercaptopropyl trimethoxysilane (MPTS)-functionalized carbon black (f-CB) for enhancing the thermo-mechanical properties of GF composites. The composites infused with 1, 3 and 5 wt% of pristine and MPTS-functionalized CB were fabricated by hand lay-up and hot press processing. Tensile testing, interlaminar shear strength (ILSS) testing and dynamic mechanical analysis were used to evaluate the performance of nanocomposites. Fourier transform infrared spectroscopy validated the MPTS functionalization of CB. Pristine CB-loaded nanocomposites exhibited marginal improvement in ultimate tensile strength (UTS), ILSS and thermo-mechanical properties. However, with the addition of f-CB, the improvement in all the studied properties was more substantial. The inclusion of 5 wt% f-CB increased the elastic modulus and UTS by 16 and 22%, respectively, whereas the ILSS was enhanced by 36%, in comparison to the neat GF composite. The scanning electron microscope analysis of fractured ILSS samples revealed better fiber-matrix adhesion and compatibility in f-CB-loaded nanocomposites. At the same filler weight percentage, the storage modulus at 25 degrees C was similar to 19% higher than that of neat composite. The f-CB inclusion resulted in increment of T-g by similar to 13 degrees C over the Tg of neat GF/UPE composite (similar to 109 degrees C). These improvements were due to the chemical connection of f-CB to the UPE matrix and GF surface. With such improvements in thermal and mechanical properties, these nanocomposites can replace the conventional GF composites with prominent improvements in performance.
机译:将功能化的纳米级填料结合到传统的玻璃纤维/不饱和聚酯(GF / UPE)复合材料中可提供更强大的机械性能。当前的研究证明了3-巯基丙基三甲氧基硅烷(MPTS)-官能化的炭黑(f-CB)可以增强GF复合材料的热机械性能。通过手工铺层和热压工艺制备了注入了1、3和5 wt%的原始胶和MPTS官能化CB的复合材料。拉伸测试,层间剪切强度(ILSS)测试和动态力学分析用于评估纳米复合材料的性能。傅里叶变换红外光谱法验证了CB的MPTS功能。原始的CB负载纳米复合材料在极限抗拉强度(UTS),ILSS和热机械性能方面显示出一定程度的改善。但是,通过添加f-CB,所有研究性能的改善都更为显着。与纯GF复合材料相比,包含5 wt%的f-CB分别使弹性模量和UTS分别提高了16%和22%,而ILSS增强了36%。断裂的ILSS样品的扫描电子显微镜分析显示,在负载f-CB的纳米复合材料中,纤维基质的粘附性和相容性更好。在相同的填料重量百分比下,在25摄氏度下的储能模量比纯复合材料高出19%。与纯GF / UPE复合材料的Tg(类似于109摄氏度)相比,f-CB夹杂物导致T-g的增量接近13摄氏度。这些改进归因于f-CB与UPE基质和GF表面的化学连接。通过改善热性能和机械性能,这些纳米复合材料可以显着改善性能,从而取代传统的GF复合材料。

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