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Control of Mullins stress softening in silicone elastomer composites by rational design of fumed silica fillers

机译:用气相二氧化硅填料的理性设计控制硅氧烷弹性体复合材料中的穆林斯胁迫软化

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摘要

The influence of fumed silica as reinforcement filler is investigated on the Mullins stress softening in composite silicone elastomers. Especially, the impact of surface area, loading level, surface chemistry, and structure modification of fumed silica is evaluated on the fatigue behavior of high consistency silicone rubber. It is observed that high loading level and large surface area of fumed silica increase the energy loss during initial loading cycles which is related to disruptions in filler-polymer interactions. Addition of a processing aid or hydrophobization of the silica surface decrease the brittleness and energy loss of the compounds. A close correlation between Shore A hardness and energy loss is found confirming the contribution of the filler-polymer interactions on Mullins stress-softening. At the same time, the permanent set remains almost independent of the surface hydrophobicity of the filler indicating a breakdown of the structured silica agglomerates during initial deformation. To improve the fatigue resistance of the silicone elastomer, a structure modified and hydrophobic silica, AEROSIL (R) R 8200, was used leading to the lowest permanent set even at high loading levels in combination with good mechanical reinforcement. The reduction in energy loss and permanent set is attributed to the combination of hydrophobic surface and low aggregate structure of the silica preventing agglomerate breakdown and chain disentanglements at the silica surface. This study provides fundamental understanding on the relation between filler-polymer interactions, filler morphology and Mullins stress softening for the rational design of future filler particles in reinforced elastomer composites with improved fatigue resistance.
机译:对复合硅氧烷弹性体中的穆林斯胁迫软化,研究了气相二氧化硅作为增强填料的影响。特别是,对高稠度硅橡胶的疲劳行为评估了表面积,装载水平,表面化学和结构改性的影响。观察到,高负荷水平和烟雾二氧化硅的大表面积增加了初始装载循环期间的能量损失,其与填充聚合物相互作用的破坏有关。加入二氧化硅表面的加工助剂或疏水化降低了化合物的脆性和能量损失。发现肖氏硬度和能量损失之间的紧密相关性证实填料 - 聚合物相互作用对穆林斯应力软化的贡献。同时,永久组几乎独立于填料的表面疏水性,表示在初始变形期间结构化二氧化硅附聚物的击穿。为了提高硅氧烷弹性体的疲劳性,使用结构改性和疏水性二氧化硅,即使在高负载水平与良好的机械加固的高负载水平,也使用通向最低的永久性凝固。能量损失和永久性集合的减少归因于疏水表面和二氧化硅的低聚集体结构的组合,防止凝聚的崩解和二氧化硅表面的链脱离术。本研究为填料 - 聚合物相互作用,填料形态和穆林斯胁迫软化的关系提供了根本的理解,所述加强弹性体复合材料中未来填料颗粒的合理设计具有改善的抗疲劳性。

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  • 来源
    《Composites Science and Technology》 |2021年第29期|108955.1-108955.9|共9页
  • 作者单位

    Evon Operat GmbH Rodenbacher Chaussee 4 D-63457 Hanau Germany;

    Evon Operat GmbH Rodenbacher Chaussee 4 D-63457 Hanau Germany|Rhein Westfal TH Aachen Dept Chem Landoltweg 1 D-52074 Aachen Germany;

    Evon Operat GmbH Rodenbacher Chaussee 4 D-63457 Hanau Germany;

    Evon Operat GmbH Rodenbacher Chaussee 4 D-63457 Hanau Germany;

    Evon Operat GmbH Rodenbacher Chaussee 4 D-63457 Hanau Germany|Max Planck Inst Polymer Res Ackermannweg 10 D-55128 Mainz Germany|Lodz Univ Technol Fac Chem Dept Mol Phys Zeromskiego 116 PL-90924 Lodz Poland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Silicone elastomers; Fumed silica; Reinforcement; Fatigue behavior; Mullins effect;

    机译:硅氧烷弹性体;熏蒸二氧化硅;加固;疲劳行为;穆林斯效应;

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