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Nanocomposites et mousses à base de nanofibrilles de cellulose : rhéologie au cours de leur mise en forme et propriétés mécaniques

机译:基于纤维素纳米原纤维的纳米复合材料和泡沫:成型和机械性能时的流变学

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摘要

This study focuses on the use of cellulose nanofibrils (NFCs) as bio-based nano-reinforcement in polymer composites and foams. These renewable materials can be used in place of traditional materials such as for instance to produce sandwich panels. This experi-mental, theoretical and numerical work aims at optimizing the processing of these NFC-based materials as well as their use properties.In the first part of this work, the rheology of concentrated NFC suspensions, that behave as thixotropic yield stress fluids, is investigated at macro- and mesoscales using an original rheo-ultrasonic velocimetry (rheo-USV) setup allowing the local flow kinematic to be obtai-ned. We show that the flow of NFC suspensions is highly heterogeneous and exhibits com-plex situations with the coexistence of wall slippage, multiple shear bands and plug-like flow bands. Using this experimental database, we develop an original multiscale rheological model for the prediction of the rheology of NFC suspensions. The model takes into account the anisotropic fibrous nature of NFC networks as well as colloidal and mechanical interaction forces occurring at the nanoscale. The model predictions prove that colloidal and hydrody-namic interaction forces together with the orientation and the wavy nature of NFCs play a major role on the yield stress and shear thinning behaviour of the suspensions.In the second part of this work, NFC-reinforced polymer nanocomposite films are processed for a wide range of NFC contents. Using advanced microscopy techniques (AFM, SEM), X-ray diffraction and mechanical tests (tensile and DMA tests), we show (i) that NFCs form highly connected nanofibrous structures with in-plane random orientation, (ii) that these connected NFC networks play a leading role on the mechanical behaviour of the nanocompo-sites and (iii) that the elastic properties of nanocomposite films are much lower than those predicted from the micromechanical models of the literature. In light of these observations, we propose an alternative multiscale model in which the main involved deformation nano-mechanisms are those occurring both in the amorphous segments of the nanofibers and in the numerous nanofiber-nanofiber contact zones.Finally, in a third part we focus on the influence of the processing conditions, the suspension type and the NFC concentration on the microstructure (using X-ray synchrotron microto-mography), the mechanical properties (using compression tests) and the deformation micro-mechanisms (using in situ compression test with X-ray microtomography) of various foams prepared from NFC suspensions by freeze-drying.
机译:这项研究的重点是在聚合物复合材料和泡沫塑料中使用纤维素纳米原纤维(NFC)作为生物基纳米增强材料。这些可再生材料可以代替传统材料,例如用于生产夹心板。这项实验,理论和数值研究旨在优化这些基于NFC的材料的加工及其使用性能。在这项工作的第一部分,浓NFC悬浮液的流变学表现为触变屈服应力流体,使用原始的流变-超声测速(rheo-USV)装置在宏观和中尺度上进行了研究,从而可以确定局部流动运动学。我们表明,NFC悬浮液的流动是高度异质的,并且与壁面滑移,多个剪切带和塞状流动带并存而表现出复杂的情况。使用该实验数据库,我们开发了用于预测NFC悬浮液流变性的原始多尺度流变模型。该模型考虑了NFC网络的各向异性纤维性质以及在纳米级发生的胶体和机械相互作用力。模型预测证明胶体和水-自然相互作用力以及NFC的取向和波浪性质对悬浮液的屈服应力和剪切稀化行为起着重要作用。第二部分是NFC增强的聚合物纳米复合膜可处理各种NFC含量。使用先进的显微镜技术(AFM,SEM),X射线衍射和机械测试(拉伸和DMA测试),我们显示(i)NFC形成具有平面内随机取向的高度连接的纳米纤维结构,(ii)这些连接的NFC网络对纳米复合位点的机械性能起着主导作用,(iii)纳米复合膜的弹性远远低于文献中的微机械模型所预测的弹性。根据这些观察结果,我们提出了一种替代的多尺度模型,其中主要涉及的变形纳米机制是那些既发生在纳米纤维的无定形部分中,又发生在众多纳米纤维-纳米纤维接触区域中的那些。最后,在第三部分中,我们着重加工条件,悬浮液类型和NFC浓度对微观结构的影响(使用X射线同步加速器X射线摄影术),力学性能(使用压缩测试)和变形微机制(使用原位压缩测试)由NFC悬浮液通过冷冻干燥制得的各种泡沫的X射线显微照片)。

著录项

  • 作者

    Martoïa Florian;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 fr
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