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聚(1,4-环己烷二甲醇-2,2,4,4-四甲基-1,3-环丁二醇对苯二甲酸酯)的加速物理老化

Accelerated physical ageing of poly(1,4-cyclohexylenedimethylene--2,2,4,4-tetramethyl-1,3-cyclobutanediol terephthalate).

作者信息

Andersen Emil, Mikkelsen René, Kristiansen Søren, Hinge Mogens

机构信息

Plastic and Polymer Engineering, Department of Engineering, Aarhus University Hangøvej 2, DK-8200 Aarhus N. Denmark

LEGO System A/S Kløvermarken 16, DK-7190 Billund Denmark.

出版信息

RSC Adv. 2019 May 7;9(25):14209-14219. doi: 10.1039/c9ra00925f.

Abstract

Successfully evaluating plastic lifetime requires understanding of the relationships between polymer dynamics and mechanical performance as a function of thermal ageing. The relatively high ( = 110 °C) of poly(1,4-cyclohexylenedimethylene--2,2,4,4-tetramethyl-1,3-cyclobutanediol terephthalate) (PCTT) renders it useful as a substituent for PET in higher temperature applications. This work links thermal ageing and mechanical performance of a commercial PCTT plastic after exposure to 40-80 °C for up to 2950 h. No chemical or conformational changes were found while pronounced physical ageing, measured as enthalpic relaxation, caused yield hardening (28% increase in yield strength) and embrittlement (80% decrease in toughness). Enthalpic relaxation increased with temperature and time to 3.8 J g and correlated to the determined toughness and yield strength. Finally, a 9% increase in Young's modulus was observed independent of temperature and with no correlation to enthalpic relaxation. Enthalpic relaxation followed Vogel-Fulcher-Tammann behaviour, while yield strength and charpy v-notch toughness followed Arrhenius behaviour enabling prediction of the different properties with time and temperature.

摘要

成功评估塑料寿命需要了解聚合物动力学与热老化作用下机械性能之间的关系。聚(1,4 - 环己烷二甲醇 - 2,2,4,4 - 四甲基 - 1,3 - 环丁二醇对苯二甲酸酯)(PCTT)相对较高的玻璃化转变温度((T_g) = 110 °C)使其在高温应用中可作为PET的替代品。这项工作将一种商用PCTT塑料在40 - 80 °C下暴露长达2950小时后的热老化与机械性能联系起来。未发现化学或构象变化,而以焓松弛衡量的明显物理老化导致屈服硬化(屈服强度增加28%)和脆化(韧性降低80%)。焓松弛随温度和时间增加至3.8 J/g,并与测定的韧性和屈服强度相关。最后,观察到杨氏模量增加了9%,与温度无关且与焓松弛无关。焓松弛遵循Vogel - Fulcher - Tammann行为,而屈服强度和夏比V型缺口韧性遵循Arrhenius行为,从而能够随时间和温度预测不同性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31b9/9122620/34a7df30211b/c9ra00925f-f1.jpg

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