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An affine microsphere approach to modeling strain-induced crystallization in rubbery polymers

机译:一种染色体诱导橡胶聚合物诱导结晶的仿射微球方法

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摘要

Upon stretching a natural rubber sample, polymer chains orient themselves in the direction of the applied load and form crystalline regions. When the sample is retracted, the original amorphous state of the network is restored. Due to crystallization, properties of rubber change considerably. The reinforcing effect of the crystallites stiffens the rubber and increases the crack growth resistance. It is of great importance to understand the mechanism leading to strain-induced crystallization. However, limited theoretical work has been done on the investigation of the associated kinetics. A key characteristic observed in the stress-strain diagram of crystallizing rubber is the hysteresis, which is entirely attributed to strain-induced crystallization. In this work, we propose a micromechanically motivated material model for strain-induced crystallization in rubbers. Our point of departure is constructing a micromechanical model for a single crystallizing polymer chain. Subsequently, a thermodynamically consistent evolution law describing the kinetics of crystallization on the chain level is proposed. This chain model is then incorporated into the affine microsphere model. Finally, the model is numerically implemented and its performance is compared to experimental data.
机译:在拉伸天然橡胶样品时,聚合物链在施加的载荷方向上定位并形成晶体区域。当样本缩回时,网络的原始非晶态已恢复。由于结晶,橡胶的性能大大变化。微晶的增强效果使橡胶变硬并增加裂纹生长抗性。了解导致应变诱导的结晶的机制非常重要。但是,已经在对相关动力学进行调查的情况下完成了有限的理论工作。在结晶橡胶的应力 - 应变图中观察到的关键特征是滞后,其完全归因于应变诱导的结晶。在这项工作中,我们提出了一种用于橡胶中应变诱导的结晶的微机械促进的材料模型。我们的出发点正在构建单一结晶聚合物链的微机械模型。随后,提出了描述链级结晶动力学的热力学一致的演化法。然后将该链模型掺入仿射微球模型中。最后,模型在数值上实现,其性能与实验数据进行比较。

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