Jóźwiak Bertrand, Orczykowska Magdalena, Dziubiński Marek
Faculty of Process and Environmental Engineering, Lodz University of Technology, Łódź, Poland.
PLoS One. 2015 Nov 24;10(11):e0143090. doi: 10.1371/journal.pone.0143090. eCollection 2015.
The paper proposes a fractional generalization of the Maxwell and Kelvin-Voigt rheological models for a description of dynamic behavior of biopolymer materials. It was found that the rheological models of Maxwell-type do not work in the case of modeling of viscoelastic solids, and the model which significantly better describes the nature of changes in rheological properties of such media is the modified fractional Kelvin-Voigt model with two built-in springpots (MFKVM2). The proposed model was used to describe the experimental data from the oscillatory and creep tests of 3% (w/v) kuzu starch pastes, and to determine the values of their rheological parameters as a function of pasting time. These parameters provide a lot of additional information about structure and viscoelastic properties of the medium in comparison to the classical analysis of dynamic curves G' and G" and shear creep compliance J(t). It allowed for a comprehensive description of a wide range of properties of kuzu starch pastes, depending on the conditions of pasting process.
本文提出了麦克斯韦和开尔文-沃伊特流变模型的分数阶推广形式,用于描述生物聚合物材料的动态行为。研究发现,麦克斯韦型流变模型在模拟粘弹性固体时不起作用,而能显著更好地描述此类介质流变性质变化本质的模型是具有两个内置弹簧元件的修正分数阶开尔文-沃伊特模型(MFKVM2)。所提出的模型用于描述3%(w/v)葛粉淀粉糊振荡试验和蠕变试验的实验数据,并确定其流变参数值作为糊化时间的函数。与动态曲线G'和G''以及剪切蠕变柔量J(t)的经典分析相比,这些参数提供了许多关于介质结构和粘弹性性质的额外信息。这使得能够根据糊化过程的条件,全面描述葛粉淀粉糊的广泛性质。