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首页> 外文期刊>Advances in Polymer Technology >Microstructure and Fracture Behavior of Maleated High-Density Polyethylene/ Silicon Carbide Nanocomposites Toughened with Poly(styrene-ethylene-butylene-styrene) Triblock Copolymer
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Microstructure and Fracture Behavior of Maleated High-Density Polyethylene/ Silicon Carbide Nanocomposites Toughened with Poly(styrene-ethylene-butylene-styrene) Triblock Copolymer

机译:聚(苯乙烯-乙烯-丁烯-苯乙烯)三嵌段共聚物增韧的马来酸化高密度聚乙烯/碳化硅纳米复合材料的微观结构和断裂行为

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摘要

Maleated high-density polyethylene (mPE) consisting of 95 wt% high-density polyethylene and 5 wt% polyethylene-graft-maleic anhydride was filled with 2-4 wt% silicon carbide nanoparticles (SiC_p) and toughened with 10-30 wt% poly(styrene-ethylene-butylene-styrene) (SEBS). Such mPE nanocomposites were compounded in a twin-screw extruder followed by injection molding. The effects of SEBS elastomer and SiC_P additions on the structure, thermal and mechanical behavior, and fracture toughness of mPE composites were studied using X-ray diffraction (XRD), polarizing optical microscopy (POM), differential scanning calorimetry (DSC), heat deflection temperature (HDT), tensile test, Izod impact, and essential work of fracture(EWF) techniques. XRD and POM results showed that SEBS and SiC_p additions reduce the crystallite thickness and spherulite size of mPE. DSC and HDT measurements revealed that SiC_p addition promotes nucleation of HDPE crystals and markedly increases the range of elevated temperature over which mPE hybrids maintain adequate stiffness. Tensile test results showed that SEBS reduces the Young's modulus and yield strength of mPE, whereas SiC_p stiffens and reinforces the mPE/SEBS blend. The Izod impact test was conducted at liquid nitrogen temperature. The impact strength of mPE/SEBS/SiC_p hybrids improved dramatically with increasing SEBS content. EWF results obtained at room temperature showed that the specific EWF of mPE/SEBS blends and mPE/SEBS/SiC_p hybrids also increases with increasing SEBS content.
机译:由2-4 wt%的碳化硅纳米颗粒(SiC_p)填充由95 wt%的高密度聚乙烯和5 wt%的聚乙烯-接枝-马来酸酐组成的马来酸化的高密度聚乙烯(mPE),并用10-30 wt%的聚醚增韧(苯乙烯-乙烯-丁烯-苯乙烯)(SEBS)。将这种mPE纳米复合材料在双螺杆挤出机中混合,然后注塑。使用X射线衍射(XRD),偏振光学显微镜(POM),差示扫描量热法(DSC),热变形研究了SEBS弹性体和SiC_P的添加对mPE复合材料的结构,热力学性能和断裂韧性的影响。温度(HDT),拉伸试验,悬臂梁式冲击和断裂必不可少的工作(EWF)技术。 XRD和POM结果表明,SEBS和SiC_p的添加降低了mPE的微晶厚度和球晶尺寸。 DSC和HDT测量表明,SiC_p的添加促进了HDPE晶体的成核作用,并显着增加了mPE杂化物保持足够刚度的高温范围。拉伸试验结果表明,SEBS降低了mPE的杨氏模量和屈服强度,而SiC_p则增强并增强了mPE / SEBS的共混物。艾佐德冲击试验在液氮温度下进行。随着SEBS含量的增加,mPE / SEBS / SiC_p杂化材料的冲击强度显着提高。室温下获得的EWF结果表明,mPE / SEBS共混物和mPE / SEBS / SiC_p杂化物的比EWF也随着SEBS含量的增加而增加。

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