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Analyzing the nanoindentation response of carbon black filled elastomers

机译:分析炭黑填充弹性体的纳米凸缘响应

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摘要

Carbon black (CB) filled elastomers are structurally complex materials that offer unique properties at different length scales. They have tremendous potential applications in a number of fields including the automotive and aerospace industries and for designing innovative smart materials such as artificial muscles but their applications remain limited primarily due to inadequate understanding of their unique mechanical properties. Here, using the Berkovich technique to probe the surface mechanical properties at different scales the nanoindentation response of a series of composites made by homogeneously dispersed CB nanoparticles inside a semicrystalline copolymer matrix has been explored. While the measured loading part of the force-displacement curves is well described by Meyer's empirical power relation, the inverted methodology (IM) approach to deal with the unloading part has been considered and its outcome has been compared with that obtained from the standard Oliver-Pharr's method. The results were consistent with the observed increase of hardness when the applied displacement decreases for all composite samples over a large range of CB volume fraction. Zhang and Xu's model is demonstrated to produce experimentally consistent explanation of this indentation size effect. X-ray photoelectron spectroscopy (XPS) spectra also show composition gradients with depth up to 100 nm. Furthermore, the effect of CB content, surface features, and length scale-dependent deformation on the hardness-displacement behavior have been considered. These findings highlight the possibility of attaining a diverse set of mechanical properties by a better understanding of the nanoindentation response of CB filled elastomers which can be useful for material selection and design improvements in a number of practical applications.
机译:炭黑(CB)填充弹性体是一种结构复杂的材料,在不同的长度范围内具有独特的性能。它们在许多领域都有巨大的潜在应用,包括汽车和航空航天行业,以及设计创新的智能材料,如人工肌肉,但它们的应用仍然有限,主要是因为对其独特的机械性能了解不足。在这里,使用Berkovich技术探测不同尺度下的表面机械性能,探索了由均匀分散在半结晶共聚物基体中的CB纳米颗粒制成的一系列复合材料的纳米压痕响应。虽然Meyer的经验幂关系很好地描述了测得的力-位移曲线的加载部分,但考虑了处理卸载部分的反向方法(IM),并将其结果与标准Oliver-Phar方法所得结果进行了比较。结果与所观察到的硬度增加相一致,当施加的位移在很大的炭黑体积分数范围内降低时,所有复合材料样品的硬度增加。Zhang和Xu的模型在实验上证明了对这种压痕尺寸效应的一致性解释。X射线光电子能谱(XPS)光谱也显示出深度高达100nm的成分梯度。此外,还考虑了炭黑含量、表面特征和长尺度变形对硬度位移行为的影响。这些发现强调了通过更好地理解炭黑填充弹性体的纳米压痕响应来获得多种机械性能的可能性,这对于材料选择和许多实际应用中的设计改进是有用的。

著录项

  • 来源
    《Journal of Applied Polymer Science》 |2021年第30期|共12页
  • 作者单位

    Cadi Ayyad Univ Lab Rech Dev Durable &

    Sante FSTG BP 549 Marrakech Morocco;

    Cadi Ayyad Univ Lab Rech Dev Durable &

    Sante FSTG BP 549 Marrakech Morocco;

    Univ Grenoble Alpes CEA LITEN 17 Rue Martyrs Grenoble 9 France;

    Univ Brest CNRS Lab STICC CS 93837 6 Ave Le Gorgeu F-29238 Brest 3 France;

    Cadi Ayyad Univ Lab Rech Dev Durable &

    Sante FSTG BP 549 Marrakech Morocco;

    Univ Lille Lab Genie Civil &

    Geoenvironm LGCgE EA4515 Villeneuve Dascq France;

    Arts &

    Metiers Paris Tech Mech Surfaces &

    Mat Proc MSMP EA7350 8 Blvd Louis XIV Lille France;

    Univ Paris Saclay Cent Supelec Lab Mecan Sols Struct &

    Mat MSSMat CNRS UMR 8579 3 Rue Joliot Curie Gif Sur Yvette France;

    Univ Paris Saclay Cent Supelec Lab Mecan Sols Struct &

    Mat MSSMat CNRS UMR 8579 3 Rue Joliot Curie Gif Sur Yvette France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化合物工业(高聚物工业);
  • 关键词

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