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离聚物/Fe₃O₄纳米颗粒复合材料早期疲劳损伤的修复

Healing of Early Stage Fatigue Damage in Ionomer/Fe₃O₄ Nanoparticle Composites.

作者信息

Post Wouter, Bose Ranjita K, García Santiago J, Van der Zwaag Sybrand

机构信息

Novel Aerospace Materials, Faculty of Aerospace Engineering, Delft University of Technology, Kluyverweg 1, 2629 HS Delft, The Netherlands.

出版信息

Polymers (Basel). 2016 Dec 15;8(12):436. doi: 10.3390/polym8120436.

Abstract

This work reports on the healing of early stage fatigue damage in ionomer/nano-particulate composites. A series of poly(ethylene--methacrylic acid) zinc ionomer/Fe₃O₄ nanoparticle composites with varying amounts of ionic clusters were developed and subjected to different levels of fatigue loading. The initiated damage was healed upon localized inductive heating of the embedded nanoparticles by exposure of the particulate composite to an alternating magnetic field. It is here demonstrated that healing of this early stage damage in ionomer particulate composites occurs in two different steps. First, the deformation is restored by the free-shrinkage of the polymer at temperatures below the melt temperature. At these temperatures, the polymer network is recovered thereby resetting the fatigue induced strain hardening. Then, at temperatures above the melting point of the polymer phase, fatigue-induced microcracks are sealed, hereby preventing crack propagation upon further loading. It is shown that the thermally induced free-shrinkage of these polymers does not depend on the presence of ionic clusters, but that the ability to heal cracks by localized melting while maintaining sufficient mechanical integrity is reserved for ionomers that contain a sufficient amount of ionic clusters guaranteeing an acceptable level of mechanical stability during healing.

摘要

这项工作报道了离聚物/纳米颗粒复合材料中早期疲劳损伤的愈合情况。开发了一系列具有不同离子簇含量的聚(乙烯-甲基丙烯酸)锌离聚物/Fe₃O₄纳米颗粒复合材料,并使其承受不同水平的疲劳载荷。通过将颗粒复合材料暴露于交变磁场,对嵌入的纳米颗粒进行局部感应加热,从而愈合引发的损伤。在此证明,离聚物颗粒复合材料中这种早期损伤的愈合分两个不同步骤进行。首先,在低于熔体温度的温度下,聚合物通过自由收缩恢复变形。在这些温度下,聚合物网络得以恢复,从而重置疲劳诱导的应变硬化。然后,在高于聚合物相熔点的温度下,疲劳诱导的微裂纹被密封,从而防止在进一步加载时裂纹扩展。结果表明,这些聚合物的热诱导自由收缩并不依赖于离子簇的存在,但通过局部熔化愈合裂纹同时保持足够机械完整性的能力仅保留给含有足够量离子簇的离聚物,这些离子簇可确保在愈合过程中具有可接受的机械稳定性水平。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/799b/6432088/f35df6a7d901/polymers-08-00436-g001.jpg

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