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聚合物基体对短碳纤维增强的聚酰亚胺和聚醚酰亚胺基复合材料在低周疲劳下非弹性应变发展的影响。

Effect of Polymer Matrix on Inelastic Strain Development in PI- and PEI-Based Composites Reinforced with Short Carbon Fibers under Low-Cyclic Fatigue.

作者信息

Panin Sergey V, Bogdanov Alexey A, Eremin Alexander V, Buslovich Dmitry G, Shilko Ivan S

机构信息

Laboratory of Mechanics of Polymer Composite Materials, Institute of Strength Physics and Materials Science of Siberian Branch of Russian Academy of Sciences, 634055 Tomsk, Russia.

Department of Materials Science, Engineering School of Advanced Manufacturing Technologies, National Research Tomsk Polytechnic University, 634050 Tomsk, Russia.

出版信息

Polymers (Basel). 2023 Feb 28;15(5):1228. doi: 10.3390/polym15051228.

Abstract

Since the inelastic strain development plays an important role in the low-cycle fatigue (LCF) of High-Performance Polymers (HPPs), the goal of the research was to study the effect of an amorphous polymer matrix type on the resistance to cyclic loading for both polyimide (PI)- and polyetherimide (PEI)-based composites, identically loaded with short carbon fibers (SCFs) of various lengths, in the LCF mode. The fracture of the PI and PEI, as well as their particulate composites loaded with SCFs at an aspect ratio (AR) of 10, occurred with a significant role played by cyclic creep processes. Unlike PEI, PI was less prone to the development of creep processes, probably because of the greater rigidity of the polymer molecules. This increased the stage duration of the accumulation of scattered damage in the PI-based composites loaded with SCFs at AR = 20 and AR = 200, causing their greater cyclic durability. In the case of SCFs 2000 µm long, the length of the SCFs was comparable to the specimen thickness, causing the formation of a spatial framework of unattached SCFs at AR = 200. The higher rigidity of the PI polymer matrix provided more effective resistance to the accumulation of scattered damage with the simultaneously higher fatigue creep resistance. Under such conditions, the adhesion factor exerted a lesser effect. As shown, the fatigue life of the composites was determined both by the chemical structure of the polymer matrix and the offset yield stresses. The essential role of the cyclic damage accumulation in both neat PI and PEI, as well as their composites reinforced with SCFs, was confirmed by the results of XRD spectra analysis. The research holds the potential to solve problems related to the fatigue life monitoring of particulate polymer composites.

摘要

由于非弹性应变发展在高性能聚合物(HPPs)的低周疲劳(LCF)中起着重要作用,该研究的目的是在LCF模式下,研究非晶态聚合物基体类型对基于聚酰亚胺(PI)和聚醚酰亚胺(PEI)的复合材料的抗循环载荷性能的影响,这些复合材料均填充了不同长度的短碳纤维(SCFs)。PI和PEI及其填充长径比(AR)为10的SCFs的颗粒复合材料的断裂,循环蠕变过程起到了重要作用。与PEI不同,PI不太容易发生蠕变过程,这可能是由于聚合物分子的刚性更大。这增加了填充AR = 20和AR = 200的SCFs的PI基复合材料中分散损伤积累阶段的持续时间,使其具有更高的循环耐久性。在SCFs长度为2000 µm的情况下,SCFs的长度与试样厚度相当,导致在AR = 200时形成未附着SCFs的空间框架。PI聚合物基体的较高刚性提供了对分散损伤积累更有效的抵抗,同时具有更高的疲劳抗蠕变性。在这种情况下,粘附因子的影响较小。结果表明,复合材料的疲劳寿命既取决于聚合物基体的化学结构,也取决于偏移屈服应力。XRD光谱分析结果证实了循环损伤积累在纯PI和PEI及其SCFs增强复合材料中的重要作用。该研究具有解决与颗粒聚合物复合材料疲劳寿命监测相关问题的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3a5a/10007074/f011b0f91aae/polymers-15-01228-g001.jpg

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