Nonlinear oscillatory rheology of aqueous suspensions of cellulose nanocrystals and nanofibrils

Jiatong Xu, Pengguang Wang, Ziyu Zhou, Baihua Yuan, Hongbin Zhang
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Abstract

In this work, the nonlinear rheological behavior of aqueous suspensions composed of two typical nanocellulose [rod-like cellulose nanocrystals (CNCs) and filamentous cellulose nanofibrils (CNFs)] was examined and compared by using various large-amplitude oscillatory shear (LAOS) analysis methods, such as Fourier-transform rheology, stress decomposition, Chebyshev polynomials, and the sequence of physical processes. From our analysis, the nonlinear rheological parameters of higher harmonics, dissipation ratio, strain hardening ratio, shear thickening ratio, transient modulus, and cage modulus were obtained and quantitatively analyzed. CNCs tend to assemble to form anisotropic structures in an aqueous medium while the CNFs are entangled to form gels. The CNF suspensions demonstrated a significant viscous modulus overshoot and had stronger yield stresses, but the yield of CNC suspensions was more ductile. In the case of low concentrations, the CNF suspensions demonstrated stronger intracycle shear thickening behavior in medium-amplitude oscillatory shear region and lower dissipation ratios at small strain amplitudes. Although both nanocellulose suspensions revealed the existence of four intracycle rheological transition processes (viscoplastic deformation, structural recovery, early-stage yielding, and late-stage yielding), the CNF suspensions exhibited a stronger structural recovery ability. Larger strain amplitudes did not invariably result in a broader range of intracycle rheological transitions, which are also affected by the excitation frequency. The application of the various LAOS analysis methods provided valuable intracycle nonlinear rheological insights into nanocellulose suspensions, which are of great importance for enhancing their industrial perspectives.
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纤维素纳米晶体和纳米纤维水悬浮液的非线性振荡流变学
本研究采用傅立叶变换流变学、应力分解、切比雪夫多项式和物理过程序列等多种大振幅振荡剪切(LAOS)分析方法,研究和比较了由两种典型纳米纤维素(棒状纤维素纳米晶体(CNCs)和丝状纤维素纳米纤维(CNFs))组成的水悬浮液的非线性流变行为。通过分析,我们获得并定量分析了高次谐波、耗散比、应变硬化比、剪切增厚比、瞬态模量和笼型模量等非线性流变参数。在水介质中,CNCs 倾向于聚集形成各向异性结构,而 CNFs 则缠结形成凝胶。CNF 悬浮液表现出明显的粘模量过冲,屈服应力较大,但 CNC 悬浮液的屈服韧性更强。在低浓度情况下,CNF 悬浮液在中等振幅振荡剪切区域表现出更强的周期内剪切增厚行为,而在小应变振幅下则表现出更低的耗散比。虽然两种纳米纤维素悬浮液都显示存在四个循环内流变转变过程(粘塑变形、结构恢复、早期屈服和晚期屈服),但 CNF 悬浮液表现出更强的结构恢复能力。应变幅值越大,周期内流变转变的范围也就越广,这也受到激励频率的影响。各种 LAOS 分析方法的应用为纳米纤维素悬浮液提供了宝贵的周期内非线性流变学见解,这对提高其工业前景具有重要意义。
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