Department of Civil and Industrial Engineering, University of Pisa, Via Diotisalvi, 2, 56122 Pisa, Italy.
Interuniversity National Consortium of Materials Science and Technology (INSTM), Via Giusti 9, 50121 Florence, Italy.
Biomolecules. 2020 Nov 13;10(11):1549. doi: 10.3390/biom10111549.
In this paper, the production and the characterization of poly (lactic) acid (PLA)-based composites containing different amounts (from 10 wt.% to 25 wt.%) of ultra-short cellulose fibers (Arbocel 600 BE/PU) have been investigated. On the basis of a previous study, it was observed that the addition of the cellulose fibers led to an embrittlement of the composite. Consequently, in order to obtain a composite with enhanced impact resistance and elongation at break, the effect of the Einar 101 addition (a bio-based dispersing aid additive) was analyzed. The role of the adhesion between the fiber and the matrix, coupled with a better fiber dispersion, was thus evaluated. Also, the consequences on the final mechanical properties (tensile and impact test) caused by the Einar addition were investigated. Analytical models were also applied in order to obtain an evaluation of the variation of the interfacial shear stress (IFSS) (strictly correlated to the fiber-matrix adhesion) caused by the Einar introduction. Furthermore, due to the very low aspect ratio of the Arbocel fibers, a suitable Bader and Boyer model variation was adopted in order to have a better quantitative estimation of the IFSS value.
本文研究了不同含量(10wt%至 25wt%)的超短纤维素纤维(Arbocel 600 BE/PU)对聚乳酸(PLA)基复合材料的制备和特性的影响。在前一项研究的基础上,我们观察到添加纤维素纤维会导致复合材料变脆。因此,为了获得具有更高抗冲击性和断裂伸长率的复合材料,我们分析了添加 Einar 101(一种基于生物的分散助剂添加剂)的效果。评估了纤维和基体之间的粘结以及更好的纤维分散对最终机械性能(拉伸和冲击试验)的影响。此外,我们还应用了分析模型,以评估 Einar 添加引起的界面剪切应力(IFSS)的变化(与纤维-基体的粘结密切相关)。此外,由于 Arbocel 纤维的纵横比非常低,我们采用了适当的 Bader 和 Boyer 模型变化,以更准确地定量估计 IFSS 值。