Univ. Lyon, INSA-Lyon, CNRS, LaMCoS, UMR5259, 69621 Villeurbanne, France.
Univ. Lyon, INSA-Lyon, CNRS, LaMCoS, UMR5259, 69621 Villeurbanne, France; Univ. Grenoble Alpes, CNRS, Grenoble INP, 3SR Lab, F-38000 Grenoble, France.
Carbohydr Polym. 2022 Nov 15;296:119911. doi: 10.1016/j.carbpol.2022.119911. Epub 2022 Jul 26.
Processing cellulose nanofibril (CNF) hydrogels with a high concentration is a solution to reduce logistics costs and drying energy and to produce CNF-based materials with good dimensional stability. However, the rheology of concentrated and highly concentrated CNF hydrogels is poorly understood due to the difficulties to characterise them using standard shear rheometers. In this study, enzymatic CNF hydrogels in the concentrated and highly concentrated regimes (3-13.6 wt%) were subjected to lubricated compression at various strain rates. At low strains, compression curves exhibited a linear regime. At higher strains and low strain rates, a heterogeneous and marked hardening of stress levels was observed and accompanied with a two-phase flow with significant fluid segregation and network consolidation. At high strain rates, a homogeneous and incompressible one-phase plateau-like regime progressively established. In this regime, a yield stress was measured and compared with literature data, showing a good agreement with them.
处理高浓度纤维素纳米纤维 (CNF) 水凝胶是一种降低物流成本和干燥能源的解决方案,并能生产具有良好尺寸稳定性的 CNF 基材料。然而,由于使用标准剪切流变仪对其进行特性化具有一定的难度,因此高浓度和超高浓度 CNF 水凝胶的流变性能仍了解甚少。在这项研究中,对处于高浓度和超高浓度(3-13.6wt%)状态的酶解 CNF 水凝胶在不同应变速率下进行了润滑压缩。在低应变下,压缩曲线呈现线性状态。在较高应变和低应变速率下,观察到应力水平的异质和明显的硬化,并且伴随着显著的流体分离和网络固结的两相流。在高应变速率下,逐渐建立了均匀的不可压缩的单相平台状状态。在该状态下,测量了屈服应力并与文献数据进行了比较,结果表明与文献数据吻合良好。