论文标题
纤维间债券的作用及其对纸纤维网络板尺度行为的影响
Role of inter-fibre bonds and their influence on sheet scale behaviour of paper fibre networks
论文作者
论文摘要
在纤维纸材料中,暴露于水分含量变化会导致几何和机械性能的变化。这种变化受到纤维间键的强烈影响,纤维间键是导致卫生机械反应从一个纤维转移到网络中其邻居的情况,从而导致板尺度变形。大多数文献中开发的模型都假设纤维之间的完美键合。在3D现实中,即使对于完美的粘合纤维,粘结区域也有一定的灵活性,因为可能通过纤维厚度进行变形梯度。在早期的2D理想化中,假定完美粘合的纤维,这意味着通过薄板的整个厚度进行全运动限制。本研究的目的是评估该假设的效果。使用均质化方法,生成一个随机的纤维网络,具有不同的覆盖范围,并使用有限元素进行建模。为了了解纤维之间的键合在网络的卫生表达行为上的作用,开发了键模。在此模型中,纤维是使用2D常规散装有限元元素对纤维进行建模的,并且键由有限刚度的界面元素表示,这在网络中键入的每对纤维之间引入。这些嵌入的界面元素在两个相应的纤维之间形成了连接,从而允许其中间平板之间的相对位移。通过在机械负载的应用和水分含量变化下改变键刚度和网络覆盖,研究了使用该键模型获得的网络的卫生弹性响应。此外,键模模型用于分析纤维间键对纸纤维网络各向异性响应的影响。
In fibrous paper materials, an exposure to a variation in moisture content causes changes in the geometrical and mechanical properties. Such changes are strongly affected by the inter-fibre bonds, which are responsible for the transfer of the hygro-mechanical response from one fibre to its neighbours in the network, resulting in sheet-scale deformation. Most models developed in literature assume perfect bonding between fibres. In the 3D reality, there is some flexibility in the bond region, even for the perfectly bonded fibres, because of the possibility of deformation gradients through the fibre thickness. In earlier 2D idealizations, perfectly bonded fibres were assumed, implying full kinematic constraint through the entire thickness of the sheet. The purpose of the present study is to assess the effect of this assumption. Using a homogenization approach, a random network of fibres is generated with different coverages and modelled using finite elements. In order to understand the role of bonding between fibres on the hygro-expansive behaviour of a network, a bond model is developed. In this model, the fibres are modelled using 2D regular bulk finite elements and the bonds are represented by interfacial elements of finite stiffness, which are introduced between each pair of fibres bonded in the network. These embedded interfacial elements form a connection between two respective fibres, allowing relative displacements between their mid-planes. The hygro-elastic response of networks obtained with this bond model is investigated by varying the bond stiffness and the network coverage under the application of mechanical loading and changes in moisture content. Furthermore, the bond model is used to analyse the influence of inter-fibre bonds on the anisotropic response of the paper fibre network.