Influence of Structural Evolution and Load Level on the Properties of Creep and Recovery Curves Generated by a Nonlinear Model for Thixotropic Viscoelastoplastic Media

IF 1.8 4区 材料科学 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
A. V. Khokhlov, V. V. Gulin
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引用次数: 0

Abstract

This paper continues the systematic analytical study of the properties of the previously constructed nonlinear shear deformation model of thixotropic viscoelastoplastic media, which takes into account the mutual influence of deformation and structural evolution. The ability of the model to describe the behavior of liquid and solid media (solidifying/solidified) is analyzed. The focus is on the response properties of the model to step loading, in particular, creep and recovery curves and curves of incremental cyclic loading. The aim is to find out what typical effects of viscoelastoplastic media the model can describe and what unusual effects/properties are generated by changes in the structuredness compared to typical creep and recovery curves of structurally stable materials. A system of two nonlinear differential equations is obtained to describe the response of the system to a given loading (not deformation) program, such as creep under constant load and arbitrary piecewise constant stress. A general solution to the Cauchy problem for this system is constructed in an explicit form for six arbitrary material parameters and an increasing material function governing the model, i.e. expressions are derived as quadratures for the shear strain and structuredness as functions of time, which depend on the initial conditions and all parameters of the model and loading program. An analytical study is performed for the basic properties of the family of creep and recovery curves and the structural evolution in these processes, their dependence on the time (monotonicity and convexity intervals, extrema, asymptotes, etc.), on the material parameters and function of the model, on the stress level and initial structuredness of the material, and on the initial stage of loading to a given stress before creep. It is proven that creep curves always increase with time, do not have inflection points, and have oblique asymptotes (although their initial arcs can differ considerably from straight lines). The structuredness at constant stress (at each incremental loading step, in particular, at zero stress) is always monotonic unlike other loading modes, but can decrease or increase depending on the relationship between the stress level and the initial structuredness at each incremental loading step. The model is shown to describe unusual effects observed in tests on some materials, e.g. the difference in the absolute values of strain jumps during loading and complete unloading and the opposite sign of residual strain with respect to the stress and strain signs at the creep stage. Several applicability indicators of the model are found, which can be conveniently verified using experimental data. Responses of the model to cyclic loading/unloading (creep/recovery), induced oscillations of the structuredness, and their effect on the rate of plastic strain accumulation are studied.

Abstract Image

结构演化和荷载水平对触变粘弹塑性介质非线性模型生成的蠕变和恢复曲线特性的影响
本文对先前建立的考虑变形与结构演化相互影响的触变粘弹塑性介质非线性剪切变形模型的特性进行了系统的分析研究。分析了该模型描述液体和固体介质(凝固/固化)行为的能力。重点研究了模型在阶跃加载下的响应特性,特别是蠕变和恢复曲线以及增量循环加载曲线。目的是找出模型可以描述的粘弹塑性介质的典型效应,以及与结构稳定材料的典型蠕变和恢复曲线相比,结构变化产生的异常效应/特性。得到了一个由两个非线性微分方程组成的系统来描述系统对给定加载(非变形)程序的响应,如恒载下的蠕变和任意分段恒应力下的蠕变。本文以显式形式建立了该系统Cauchy问题的通解,其中包含六个任意材料参数和一个控制模型的递增材料函数,即导出了剪切应变和结构度随时间的函数的正交表达式,它们取决于模型的初始条件和所有参数以及加载程序。分析研究了蠕变和恢复曲线族的基本特性和这些过程中的结构演变,以及它们对时间(单调性和凸性区间、极值、渐近线等)、模型的材料参数和函数、材料的应力水平和初始结构性以及蠕变前加载到给定应力的初始阶段的依赖关系。证明蠕变曲线总是随着时间的推移而增加,没有拐点,并且有倾斜的渐近线(尽管它们的初始弧可能与直线有很大的不同)。与其他加载模式不同,在恒应力下(特别是在零应力下)结构的结构性通常是单调的,但根据应力水平与初始结构性之间的关系,结构性可以减小或增大。该模型被证明可以描述在某些材料的试验中观察到的不寻常的影响,例如在加载和完全卸载期间应变跳变绝对值的差异以及相对于蠕变阶段的应力和应变符号的残余应变的相反符号。找到了模型的几个适用性指标,可以方便地利用实验数据进行验证。研究了模型对循环加载/卸载(蠕变/恢复)、结构性诱发振荡的响应及其对塑性应变积累速率的影响。
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来源期刊
Physical Mesomechanics
Physical Mesomechanics Materials Science-General Materials Science
CiteScore
3.50
自引率
18.80%
发文量
48
期刊介绍: The journal provides an international medium for the publication of theoretical and experimental studies and reviews related in the physical mesomechanics and also solid-state physics, mechanics, materials science, geodynamics, non-destructive testing and in a large number of other fields where the physical mesomechanics may be used extensively. Papers dealing with the processing, characterization, structure and physical properties and computational aspects of the mesomechanics of heterogeneous media, fracture mesomechanics, physical mesomechanics of materials, mesomechanics applications for geodynamics and tectonics, mesomechanics of smart materials and materials for electronics, non-destructive testing are viewed as suitable for publication.
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