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Study about the Effect of Addition of Carbon Nanofibers on the Strain-Rate Sensitivity of Thermoplastic Polymer Matrix Nanocomposites Manufactured by Ultrasonic Processing

机译:碳纳米纤维添加对超声波加工制造的热塑性聚合物基质纳米复合材料的应变速率敏感性的研究

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Polymer nanocomposites based on polypropylene (PP) reinforced with carbon nanofibers (CNFs) at a fixed concentration of 0.5% w/w were prepared by precipitation from liquid solutions of PP and CNFs. Ultrasonic processing was used as the primary process for mixing both PP and CNFs in the the solvent, while mechanical stirring was also used as a control process to prepare similar samples. Thermogravimetric analysis (TGA) shows that the ultrasonic processing influences little on the thermal stability of the polymer material. Moreover, ultrasonically-processed PP shows higher tensile strength and better ductility, compared to those of the neat PP. Although the mechanically-processed PP has about 10% higher tensile strength than the ultrasonically-processed one, it is observed that there is a significant deterioration in its ductility due to the dissolution of calcium carbonate which is used as an additive for the neat PP. The advantage of significantly reduced material processing time, increased mixing efficiency, and increase in thermal stability and mechanical properties of ultrasonically-processed PPs indicated that the ultrasonic processing is relatively more effective and efficient mixing process compared to mechanical stirring for preparation of the polymer and its nanocomposite. Tensile tests were also conducted using quasi-static strain rates from 10-4to 10-1s-1in order to obtain the tensile strength, elongation at fracture, and the elastic modulus of injection molded polymer and its nanocomposite. PP-CNF nanocomposites exhibited higher strain-rate sensitivity within the tested strain range, compared to the neat PP.Both the neat PP and PP-CNF nanocomposite exhibited strain-rate dependent material properties, showing an increase in tensile strength, and decrease in elongation with increasing strain rates.
机译:通过PP和CNF的液体溶液沉淀制备基于用碳纳米纤维(CNFS)加强的聚丙烯(CNF)加强的聚丙烯(PP)的聚合物纳米复合材料。超声波加工用作混合溶剂中PP和CNF的主要方法,而机械搅拌也用作对照过程以制备类似的样品。热重分析(TGA)表明,超声波加工对聚合物材料的热稳定性几乎影响。此外,与整洁PP相比,超声处理的PP显示出更高的拉伸强度和更好的延展性。尽管机械加工的PP具有比超声处理的抗拉强度高约10%,但是观察到由于碳酸钙的溶解而导致其延展性的显着劣化,其用作整洁PP的添加剂。显着降低的材料加工时间,增加混合效率和超声处理PPS的热稳定性和力学性能的优点表明,与机械搅拌相比,超声波加工与用于制备聚合物的机械搅拌相比更有效和有效的混合过程纳米复合材料。使用10-4至10-1S-1in的准静态应变速率进行拉伸试验,以获得拉伸强度,断裂处的伸长率,以及注塑聚合物的弹性模量及其纳米复合材料。与整齐的PP相比,PP-CNF纳米复合材料在测试的应变范围内表现出更高的应变率敏感性。纯PP和PP-CNF纳米复合材料表现出应变率依赖性材料特性,显示拉伸强度的增加,并且伸长率下降随着应变率的增加。

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