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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Structural origin of fast yielding-strain hardening transition in fluoroelastomer F2314
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Structural origin of fast yielding-strain hardening transition in fluoroelastomer F2314

机译:含氟弹性体F2314中快速屈服应变硬化过渡的结构起源

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摘要

The mechanical response of fluoroelastomer F2314 under uniaxial extension and its relation with strain induced structural change are investigated by mechanical analysis, in-situ small angle X-ray scattering (SAXS) and wide angle X-ray scattering (WAXS). Yielding of samples followed by strain hardening is found without necking. Meanwhile, the strain range of strain softening is short, which is 0.77 at 25 degrees C and 0.3 at 60 degrees C. Microscopically, solution-cast F2314 shows microphase separation and low crystallinity. Results of WAXS and SAXS indicate strain-induced formation of fibrillar crystal during strain hardening. Based on these findings, it is supposed that the fast relay between destruction of microphase separated domains and formation of fibrillar crystal is the origin of the unique mechanical response. (C) 2017 Elsevier Ltd. All rights reserved.
机译:通过机械分析研究了单轴延伸下含氟弹性体F2314的机械响应及其与应变诱导的结构变化的关系,原位小角度X射线散射(SAX)和广角X射线散射(蜡)。 在没有缩颈的情况下发现样品随后的样品。 同时,应变软化的应变范围短,其在25℃下为0.77,在60℃下为0.3℃。显微镜,溶液铸造F2314显示微单分离和低结晶度。 蜡和萨克斯的结果表明应变诱导在菌株硬化过程中纤维晶体的形成。 基于这些发现,假设磁体分离结构域的破坏与纤维状晶体的形成之间的快速继电器是独特机械响应的起源。 (c)2017 Elsevier Ltd.保留所有权利。

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