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Microscopic theory of rubber elasticity

机译:橡胶弹性的微观理论

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A microscopic integral equation theory of elasticity in polymer liquids and networks is developed which addresses the nonclassical problem of the consequences of interchain repulsive interactions and packing correlations on mechanical response.The theory predicts strain induced softening,and a nonclassical intermolecular contribution to the linear modulus.The latter is of the same magnitude as the classical single chain entropy contribution at low polymer concentrations,but becomes much more important in the melt state,and dominant as the isotropic-nematic liquid crystal phase transition is approached.Comparison of the calculated stress-strain curve and induced nematic order parameter with computer simulations show good agreement.A nearly quadratic dependence of the linear elastic modulus on segmental concentration is found,as well as a novel fractional power law dependence on degree of polymerization.Quantitative comparison of the theory with experiments on polydimethylsiloxane networks are presented and good agreement is found.However,a nonzero modulus in the long chain limit is not predicted since quenched chemical crosslinks and trapped entanglements are not explicitly taken into account.The theory is generalizable to treat the structure,thermodynamics and mechanical response of nematic elastomers.
机译:建立了聚合物液体和网络中的微观微观积分方程理论,解决了链间斥力相互作用和堆积相关性对机械响应后果的非经典问题。该理论预测了应变诱导的软化,以及非经典的分子间对线性模量的贡献。后者在低聚合物浓度下与经典单链熵的贡献大小相同,但在熔融态时变得更为重要,并且在接近各向同性向列液晶相变时起主导作用。计算应力-应变的比较曲线和诱导的向列有序参数与计算机模拟显示出良好的一致性。发现线性弹性模量对链段浓度的近似二次依赖性,以及新的分数幂定律对聚合度的依赖性。理论与实验的定量比较聚二甲基硅氧烷网络虽然没有明确考虑淬灭的化学交联和捕获的缠结,但不能预测长链极限的非零模量。该理论可推广用于结构,热力学和机械响应向列弹性体。

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