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首页> 外文期刊>Progress in Polymer Science >A review of nonlinear oscillatory shear tests: Analysis and application of large amplitude oscillatory shear (LAOS)
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A review of nonlinear oscillatory shear tests: Analysis and application of large amplitude oscillatory shear (LAOS)

机译:非线性振荡剪切试验的回顾:大振幅振荡剪切(LAOS)的分析和应用

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Dynamic oscillatory shear tests are common in rheology and have been used to investigate a wide range of soft matter and complex fluids including polymer melts and solutions, block copolymers, biological macromolecules, polyelectrolytes, surfactants, suspensions, emulsions and beyond. More specifically, small amplitude oscillatory shear (SAOS) tests have become the canonical method for probing the linear viscoelastic properties of these complex fluids because of the firm theoretical background [1-4] and the ease of implementing suitable test protocols. However, in most processing operations the deformations can be large and rapid: it is therefore the nonlinear material properties that control the system response. A full sample characterization thus requires well-defined nonlinear test protocols. Consequently there has been a recent renewal of interest in exploiting large amplitude oscillatory shear (LAOS) tests to investigate and quantify the nonlinear viscoelastic behavior of complex fluids. In terms of the experimental input, both LAOS and SAOS require the user to select appropriate ranges of strain amplitude (γ0) and frequency (ω). However, there is a distinct difference in the analysis of experimental output, i.e. the material response. At sufficiently large strain amplitude, the material response will become nonlinear in LAOS tests and the familiar material functions used to quantify the linear behavior in SAOS tests are no longer sufficient. For example, the definitions of the linear viscoelastic moduli G'(ω) and G"(ω) are based inherently on the assumption that the stress response is purely sinusoidal (linear). However, a nonlinear stress response is not a perfect sinusoid and therefore the viscoelastic moduli are not uniquely defined; other methods are needed for quantifying the nonlinear material response under LAOS deformation. In the present review article, we first summarize the typical nonlinear responses observed with complex fluids under LAOS deformations. We then introduce and critically compare several methods that quantify the nonlinear oscillatory stress response. We illustrate the utility and sensitivity of these protocols by investigating the nonlinear response of various complex fluids over a wide range of frequency and amplitude of deformation, and show that LAOS characterization is a rigorous test for Theological models and advanced quality control.
机译:动态振荡剪切测试在流变学中很常见,已被用于研究各种软物质和复杂流体,包括聚合物熔体和溶液,嵌段共聚物,生物大分子,聚电解质,表面活性剂,悬浮液,乳液等。更具体地讲,由于扎实的理论背景[1-4]和易于实施合适的测试规程,小振幅振荡剪切(SAOS)测试已成为探测这些复杂流体的线性粘弹性特性的规范方法。但是,在大多数加工操作中,变形可能很大且非常迅速:因此,非线性材料属性控制着系统响应。因此,完整的样品表征需要定义明确的非线性测试方案。因此,最近对利用大振幅振荡剪切(LAOS)测试来研究和量化复杂流体的非线性粘弹性行为感兴趣。在实验输入方面,LAOS和SAOS均要求用户选择应变幅度(γ0)和频率(ω)的适当范围。但是,对实验输出(即材料响应)的分析存在明显差异。在足够大的应变幅度下,材料响应在LAOS测试中将变为非线性,并且用于量化SAOS测试中线性行为的熟悉的材料功能不再足够。例如,线性粘弹性模量G'(ω)和G“(ω)的定义本质上是基于应力响应是纯正弦曲线(线性)的假设。但是,非线性应力响应不是理想的正弦曲线,因此,粘弹性模量不是唯一定义的;需要定量分析LAOS变形下的非线性材料响应的其他方法。在本文中,我们首先总结了在LAOS变形下复杂流体所观察到的典型非线性响应,然后介绍并进行了严格的比较。量化非线性振荡应力响应的几种方法,我们通过研究各种复杂流体在较大的变形频率和幅度范围内的非线性响应来说明这些协议的实用性和敏感性,并表明LAOS表征是对神学的严格测试型号和先进的质量控制。

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