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A comprehensive constitutive law for waxy crude oil: a thixotropic yield stress fluid

机译:含蜡原油的综合本构法:触变屈服应力流体

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摘要

Guided by a series of discriminating rheometric tests, we develop a new constitutive model that can quantitatively predict the key rheological features of waxy crude oils. We first develop a series of model crude oils, which are characterized by a complex thixotropic and yielding behavior that strongly depends on the shear history of the sample. We then outline the development of an appropriate preparation protocol for carrying out rheological measurements, to ensure consistent and reproducible initial conditions. We use RheoPIV measurements of the local kinematics within the fluid under imposed deformations in order to validate the selection of a particular protocol. Velocimetric measurements are also used to document the presence of material instabilities within the model crude oil under conditions of imposed steady shearing. These instabilities are a result of the underlying non-monotonic steady flow curve of the material. Three distinct deformation histories are then used to probe the material's constitutive response. These deformations are steady shear, transient response to startup of steady shear with different aging times, and large amplitude oscillatory shear (LAOS). The material response to these three different flows is used to motivate the development of an appropriate constitutive model. This model (termed the IKH model) is based on a framework adopted from plasticity theory and implements an additive strain decomposition into characteristic reversible (elastic) and irreversible (plastic) contributions, coupled with the physical processes of isotropic and kinematic hardening. Comparisons of experimental to simulated response for all three flows show good quantitative agreement, validating the chosen approach for developing constitutive models for this class of materials.
机译:在一系列区分流变学测试的指导下,我们开发了一种新的本构模型,可以定量预测蜡质原油的关键流变特性。我们首先开发了一系列模型原油,这些原油的特征是复杂的触变性和屈服行为,这在很大程度上取决于样品的剪切历史。然后,我们概述了进行流变测量的合适制备方案的开发,以确保一致且可重现的初始条件。为了验证对特定协议的选择,我们使用在施加变形的情况下流体中的局部运动学的RheoPIV测量。测速测量还用于记录模型原油在施加稳定剪切条件下材料不稳定性的存在。这些不稳定性是材料潜在的非单调稳定流曲线的结果。然后使用三种不同的变形历史来探究材料的本构响应。这些变形是稳态剪切,具有不同时效时间的稳态剪切启动的瞬态响应以及大振幅振荡剪切(LAOS)。对这三种不同流动的物质反应被用来激励适当的本构模型的发展。该模型(称为IKH模型)基于可塑性理论采用的框架,并将加性应变分解为特征可逆(弹性)和不可逆(塑性)贡献,以及各向同性和运动学硬化的物理过程。对所有三种流的实验响应与模拟响应的比较显示出良好的定量一致性,验证了开发此类材料本构模型的选择方法。

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