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Critical Strains for Lamellae Deformation and Cavitation during Uniaxial Stretching of Annealed Isotactic Polypropylene

机译:退火全同立构聚丙烯的单轴拉伸期间LAMELLAE变形和空化的临界菌株

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摘要

The lamellae deformation and cavitation behavior of annealed isotactic polypropylene during uniaxial stretching are comprehensively investigated by in situ synchrotron small-angle X-ray scattering and wide-angle X-ray scattering. We reveal how lamellae deformation occurs in the time scales of elastic deformation, intralamellar slip, and melting–recrystallization, separated by three critical strains which are only rarely influenced by annealing. Strain I (0.1) marks the end of elastic deformation and the onset of intralamellar slip, beyond which the crystallinity decreases gradually. Strain II (0.45) signifies the start of the recrystallization process, from where the long period in the stretching direction begins to decrease from its maximum and the polymer chains in the crystal start to orient along the stretching direction. The energy required for melting arises from the friction between the fragmented lamellae produced by intralamellar slip. Strain III (0.95) denotes the end of the recrystallization process. Beyond the strain of 0.95, the long period and the crystal size remain nearly unchanged. During further stretching, the newly formed lamellae serve as the anchoring points for polymer chains in the amorphous phase. The extension of the polymer chains in between lamellae triggers the strain hardening behavior. On the other hand, annealing significantly decreases the critical strain for voids formation and increases the voids number but restricts the void size. For those samples annealed at a temperature lower than 90 °C, voids are formed between strain II and strain III, and voids are oriented in the stretching direction once they are formed. However, for those samples annealed at a temperature higher than 105 °C, voids are formed between strain I and strain II. In this case, voids are initially oriented with their longitudinal axis perpendicular to the stretching direction and then transferred along stretching direction via void coalescence. Additionall
机译:通过原位同步X射线散射和广角X射线散射,全面研究了单轴拉伸期间退火的全星聚丙烯的薄片变形和空化行为。我们揭示了在弹性变形的时尺度,脑内单独的滑移和熔融重结晶的时间尺度中如何发生薄片变形,其三次临界菌株分离,其仅仅通过退火很少受影响。菌株I(0.1)标志着弹性变形的结束和脑内腔内的开始,超出结晶度逐渐降低。菌株II(0.45)表示重结晶过程的开始,从拉伸方向上的长时间开始从其最大值减小并且晶体中的聚合物链开始沿着拉伸方向定向。熔化所需的能量出现在通过腔内晶状体晶片产生的碎裂薄片之间的摩擦。菌株III(0.95)表示重结晶过程的结束。超出0.95的应变,长时间和晶体尺寸仍然几乎不变。在进一步拉伸期间,新形成的薄片用作非晶相中的聚合物链的锚定点。在薄片之间的聚合物链的延伸触发了应变硬化行为。另一方面,退火显着降低空隙形成的临界应变,并增加空隙数量,但限制空隙尺寸。对于那些在低于90℃的温度下退火的样品,在菌株II和菌株III之间形成空隙,并且一旦形成它们,空隙就在拉伸方向上取向。然而,对于那些在高于105℃的温度下退火的样品,在菌株I和菌株II之间形成空隙。在这种情况下,空隙最初用它们的纵向轴线垂直于拉伸方向定向,然后沿着空隙聚结沿拉伸方向传送。过盖

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