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Temperature scanning stress relaxation behavior of water responsive and mechanically adaptive elastomer nanocomposites

机译:水响应性和机械自适应弹性体纳米复合材料的温度扫描应力松弛行为

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摘要

The decrease of stress at constant strain, that is, the stress relaxation process as a function of temperature, is a central mechanical characteristics of elastomer nanocomposites for their potential applications. However, in the conventional stress relaxation test, the relaxation behavior is usually determined as a function of time at constant temperature. The present work reports the temperature scanning stress relaxation (TSSR) characteristics of a new kind of mechanically adaptive elastomer nanocomposite by monitoring the nonisothermal relaxation behavior as a function of temperature. This kind of adaptive elastomer nanocomposite was prepared by introducing calcium sulfate (CaSO4), as the water-responsive phase into the hydrophilic elastomer matrix. The influence of water-induced structural changes on TSSR behavior was investigated. Water treatment had a strong effect on the shape of the relaxation spectrum of the nanocomposite. It was revealed that the in situ development of hydrated nano-rod crystal structures of CaSO4 in the elastomer matrix was responsible for the changes in the mechanical relaxation behavior of the composites. Atomic force microscopy was used to verify this nano-rod crystal morphology in the elastomer matrix. The mechanism of water-induced mechanical reinforcement of the composite was explored from dynamic mechanical analysis of the material and correlated with its stress relaxation behavior. (c) 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2019, 136, 48344.
机译:恒定应变的应力降低,即作为温度函数的应力松弛过程是弹性体纳米复合材料的中心机械特性,用于其潜在的应用。然而,在传统的应力松弛测试中,弛豫行为通常在恒定温度下作为时间的函数确定。本作者通过监测作为温度的函数,通过监测非等温弛豫行为来报告新种机械自适应弹性体纳米复合材料的温度扫描应力松弛(TSSR)特性。通过将硫酸钙(CasO4)引入水响相中进入亲水弹性体基质来制备这种自适应弹性体纳米复合材料。研究了水诱导的结构变化对TSSR行为的影响。水处理对纳米复合材料的弛豫光谱的形状具有很大的影响。揭示了弹性体基质中CasO4中水合纳米棒状晶体结构的原位发展负责复合材料的机械松弛行为的变化。原子力显微镜用于验证弹性体基质中的该纳米棒状晶体形态。探索了材料的水诱导机械加固机制,从对材料的动态机械分析探索了,与其应力松弛行为相关。 (c)2019 Wiley期刊,Inc.J.Phill。聚合物。 SCI。 2019,136,48344。

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