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天然/废旧橡胶共混物在机械和热循环下的变形与破坏机制:同步辐射原位研究

Deformation and Failure Mechanisms of Natural/Waste Rubber Blends Under Mechanical and Thermal Cycles: A Synchrotron In Situ Study.

作者信息

Uliana Samuele, Candau Nicolas, Arioli Matteo, Franco Lourdes, Maspoch Maria Lluisa

机构信息

eb-POLICOM - e-PLASCOM, Departament De Ciència i Enginyeria De Materials, Escola d'Enginyeria de Barcelona-Est (EEBE), BarcelonaTech (UPC), Universitat Politècnica de Catalunya, Barcelona, Spain.

Barcelona Research Centre in Multiscale Science and Engineering, BarcelonaTech (UPC), Universitat Politècnica de Catalunya, Barcelona, Spain.

出版信息

Macromol Rapid Commun. 2025 Aug 14:e00480. doi: 10.1002/marc.202500480.

Abstract

This study investigates the deformation and failure mechanisms of natural rubber (NR) and waste rubber blends under mechanical and thermal cycles using in situ synchrotron wide-angle X-ray diffraction (WAXD). The incorporation of ground tire rubber (GTR) into NR enhances strain-induced crystallization (SIC), reducing the onset strain for crystallization and increasing mechanical reinforcement. Cyclic loadings reveal significant hysteresis and residual deformation, influenced by GTR content. Moreover, the strain at complete melting of SIC crystals is found to decrease with GTR content, suggesting a higher stability of SIC crystals. Under combined tensile stress and high temperature, NR/GTR blends exhibit failure likely due to decohesion at the NR/GTR interface and growth of cavities in the NR matrix. Nonetheless, the temperature at fracture is increased by 15°C with the GTR content at a strain of 300%. As SIC crystals promote resistance to crack growth, failure is delayed under high stress and temperature owing to the nucleating effect of GTR on SIC. In spite of the limitations imposed by the interface between NR and GTR, the study highlights the role of GTR in the promotion of SIC in reinforcing NR-based composites.

摘要

本研究利用原位同步辐射广角X射线衍射(WAXD)研究了天然橡胶(NR)与废橡胶共混物在机械循环和热循环下的变形及破坏机制。将磨碎轮胎橡胶(GTR)加入NR中可增强应变诱导结晶(SIC),降低结晶起始应变并增强机械增强作用。循环加载显示出显著的滞后和残余变形,这受GTR含量的影响。此外,发现SIC晶体完全熔化时的应变随GTR含量降低,表明SIC晶体具有更高的稳定性。在拉伸应力和高温共同作用下,NR/GTR共混物的破坏可能是由于NR/GTR界面处的脱粘以及NR基体中孔洞的生长。然而,在300%应变下,随着GTR含量增加,断裂温度升高了15°C。由于SIC晶体促进了对裂纹扩展的抵抗,在高应力和高温下,由于GTR对SIC的成核作用,破坏被延迟。尽管NR与GTR之间的界面存在限制,但该研究突出了GTR在促进SIC增强NR基复合材料方面的作用。

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