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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Structural formation of amorphous poly (ethylene terephthalate) during uniaxial deformation above glass temperature
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Structural formation of amorphous poly (ethylene terephthalate) during uniaxial deformation above glass temperature

机译:玻璃温度以上单轴变形过程中非晶态聚对苯二甲酸乙二醇酯的结构形成

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摘要

An in situ study of structural formation of amorphous poly (ethylene terephthalate) (PET) during uniaxial deformation above its T_g (at 90 deg C) was carried out by wide-angle X-ray diffraction (WAXD) with synchrotron radiations.Results indicate that the relationships between structure and mechanical property can be divided into three zones:I,II and III.In Zone I,oriented mesophase is induced by strain,where the applied load remaisn about constant but the amount of mesophase increases with strain.In Zone II,crystallization is initiated from the mesophase through nucleation and growth,where the load starts to increase marking the beginning of the strain-hardening region.The initial crystallites are defective but they form an effective three-dimensional network to enhance the mechanical property.The perfection of the crystal structure and the orientation of the crystals all increase with strain in this zone.In Zone III,the ratio between laod and strain is about constant,while the stable crystal growth process takes place until be breaking of the sample.The sample damage is probably dominated by the chain pull-out mechanism from the crystal amorphosu interface.The increase in molecular was found to enhance the overall mechanical properties such as the load to induce the mesophase and the ultimate tensile strength before breakage.
机译:通过同步辐射辐射的广角X射线衍射(WAXD)进行了无定形聚对苯二甲酸乙二酯(PET)在其T_g(在90摄氏度)以上的单轴变形过程中的结构形成的原位研究。结构和力学性能之间的关系可分为三个区域:I,II和III。在I区中,取向中间相是由应变引起的,所施加的载荷大约保持恒定,而中间相的量却随应变而增加。 ,从中间相开始通过成核和生长开始结晶,此时载荷开始增加,标志着应变硬化区的开始。初始晶粒是有缺陷的,但它们形成了有效的三维网络以增强机械性能。在该区域,晶体结构的取向和晶体的取向都随应变而增加。在区域III中,Laod和应变之比大致恒定,而稳定晶体的生长过程一直持续到样品破裂为止。样品的破坏可能是由晶体非晶界面上的链拔出机制所决定的,发现分子的增加可以增强整体机械性能,例如引起晶界的载荷。中间相和断裂前的极限拉伸强度。

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