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首页> 外文期刊>Journal of Applied Polymer Science >TENSILE MECHANICAL PROPERTIES OF PEEK FILMS OVER A WIDE RANGE OF STRAIN RATES .2.
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TENSILE MECHANICAL PROPERTIES OF PEEK FILMS OVER A WIDE RANGE OF STRAIN RATES .2.

机译:整个应变率范围内PEEK薄膜的拉伸力学性能.2。

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摘要

Tensile mechanical properties of poly(aryl ether ether ketone) (PEEK) films showing different thermal histories have been investigated at room temperature to point out the main key microstructural features governing properties over a wide strain rate range, i.e., from 10(-5) to 300 s(-1). The strain rate sensitivity of the mechanical properties of amorphous PEEK films significantly depends on the analyzed strain rate range: i.e., 1) from 10(-5) to 10 s(-1), the strain rate dependence of both apparent Young's modulus and yield stress is weak; and 2) from 10(-1) to 200 S-1, both parameters significantly increase. Thus, based on the definition of the relationships between temperature, strain rate, and frequency respectively used for tensile tests and dynamic mechanical spectrometry, it was shown that the mechanical behavior of PEEK films at room temperature could be governed by similar molecular mechanisms as those giving rise to the beta(1) and beta(2) transitions. The Eyring analysis shows that motions of five or six monomers are implied at the beginning of the plastic deformation of amorphous and semicrystalline PEEK films, while at higher strain rates, shorter chain segments are concerned. Thus, the crystalline phase only induces an increase in the stress level because of the reinforcement effect but does not modify the molecular mechanisms governing the plastic deformation of PEEK films at room temperature. (C) 1997 John Wiley & Sons, Inc. [References: 28]
机译:在室温下研究了显示不同热历史的聚(芳醚醚酮)(PEEK)薄膜的拉伸机械性能,以指出控制应变速率范围(即10(-5))范围内性能的主要关键微结构特征。至300 s(-1)。非晶态PEEK薄膜的力学性能对应变率的敏感度很大程度上取决于所分析的应变率范围:即1(10(-5)至10 s(-1)),应变率与表观杨氏模量和屈服强度的关系压力弱和2)从10(-1)到200 S-1,两个参数都显着增加。因此,根据分别用于拉伸试验和动态力学光谱的温度,应变率和频率之间关系的定义,表明PEEK膜在室温下的力学行为可以由与上升到beta(1)和beta(2)转换。 Eyring分析表明,在非晶态和半晶态PEEK薄膜塑性变形开始时,暗示有五种或六种单体的运动,而在较高的应变速率下,则关注较短的链段。因此,结晶相仅由于增强作用而引起应力水平的增加,而没有改变控制PEEK膜在室温下塑性变形的分子机理。 (C)1997 John Wiley&Sons,Inc. [参考:28]

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