Jamnongkan Tongsai, Intraramongkol Nitchanan, Samoechip Wesarach, Potiyaraj Pranut, Mongkholrattanasit Rattanaphol, Jamnongkan Porntip, Wongwachirakorn Piyada, Sugimoto Masataka, Ito Hiroshi, Huang Chih-Feng
Department of Fundamental Science and Physical Education, Faculty of Science at Sriracha, Kasetsart University, Chonburi 20230, Thailand.
Department of Materials Science, Faculty of Science, Chulalongkorn University, Bangkok 10330, Thailand.
Polymers (Basel). 2022 Dec 14;14(24):5482. doi: 10.3390/polym14245482.
This research focuses on the mechanical properties of polypropylene (PP) blended with recycled PP (rPP) at various concentrations. The rPP can be added at up to 40 wt% into the PP matrix without significantly affecting the mechanical properties. MFI of blended PP increased with increasing rPP content. Modulus and tensile strength of PP slightly decreased with increased rPP content, while the elongation at break increased to up to 30.68% with a 40 wt% increase in rPP content. This is probably caused by the interfacial adhesion of PP and rPP during the blending process. The electrical conductivity of materials was improved by adding carbon black into the rPP matrices. It has a significant effect on the mechanical and electrical properties of the composites. Stress-strain curves of composites changed from ductile to brittle behaviors. This could be caused by the poor interfacial interaction between rPP and carbon black. FTIR spectra indicate that carbon black did not have any chemical reactions with the PP chains. The obtained composites exhibited good performance in the electrical properties tested. Finally, DSC results showed that rPP and carbon black could act as nucleating agents and thus increase the degree of crystallinity of PP.
本研究聚焦于不同浓度下聚丙烯(PP)与回收聚丙烯(rPP)共混物的力学性能。rPP可添加至PP基体中,添加量最高可达40 wt%,而不会显著影响力学性能。共混PP的熔体流动指数(MFI)随rPP含量的增加而增大。PP的模量和拉伸强度随rPP含量的增加略有下降,而断裂伸长率在rPP含量增加40 wt%时增至高达30.68%。这可能是由于共混过程中PP与rPP之间的界面黏附所致。通过向rPP基体中添加炭黑,材料的电导率得到提高。这对复合材料的力学和电学性能有显著影响。复合材料的应力-应变曲线从韧性行为转变为脆性行为。这可能是由于rPP与炭黑之间的界面相互作用较差所致。傅里叶变换红外光谱(FTIR)表明炭黑与PP链之间没有任何化学反应。所制备的复合材料在测试的电学性能方面表现出良好的性能。最后,差示扫描量热法(DSC)结果表明,rPP和炭黑可作为成核剂,从而提高PP的结晶度。