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首页> 外文期刊>Journal of materials in civil engineering >Complex-Fluid Approach for Determining Rheological Characteristics of Fine-Grained Soils and Clay Minerals
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Complex-Fluid Approach for Determining Rheological Characteristics of Fine-Grained Soils and Clay Minerals

机译:复合流体法测定细粒土壤和黏土矿物的流变特性

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Soft and semisolid states of fine-grained soils and clay minerals (FGS-CMs) are frequently dealt with during execution of infrastructure projects located in the coastal areas, analysis of natural hazards, and mineral processing. In most of these cases, the FGS-CMs flow like a slurry, and hence determination of their rheological characteristics becomes essential. However, test methods and approaches available for determining the rheological behavior of the FGS-CMs when they transform from the solid to the liquid state are yet to evolve. This study uses a parallel-plate rheometer, which is widely used for rheological characterization of complex fluids (i.e., fluids which exhibit yield stress), to determine the rheological parameters (i.e.,yield stress, T-y, and strains) of the FGS-CMs with a consistency near the liquid limit. A critical analysis of the existing protocols that are used to determine T-y and their applicability to FGS-CMs is conducted. The constant shear-rate (CSR) test, when conducted at low shear-rate, yields the most accurate T-y of FGS-CMs. Subsequently, the results are used to develop a generalized relationship which explains the variation of the T-y of the FGS-CM with the consistency represented as water content normalized with respect to the liquid limit. Furthermore, to understand the nature of strains that develop during the preyielding regime of FGS-CMs, creep-relaxation (CR) tests are conducted by imposing stress equivalent to different fractions of T-y. The results from CR tests were utilized in the development of a novel methodology to determine the elastic component of the shear modulus, G(E), of FGS-CMs. This study reveals that FGS-CMs behave as a linear elastoplastic material in the preyield stage, contrary to the much expected purely elastic response, providing a new insight in the realm of contemporary geomechanics. (C) 2018 American Society of Civil Engineers.
机译:在执行沿海地区的基础设施项目,自然灾害分析和矿物加工过程中,经常要处理细粒土壤和粘土矿物(FGS-CM)的软半固态。在大多数情况下,FGS-CM像浆一样流动,因此确定其流变特性至关重要。然而,可用于确定FGS-CM从固态转变为液态时的流变行为的测试方法和方法尚待发展。这项研究使用平行板流变仪(其广泛用于复杂流体(即表现出屈服应力的流体)的流变性)来确定FGS-CM的流变参数(即屈服应力,Ty和应变)。具有接近液体极限的一致性。对用于确定T-y的现有协议及其对FGS-CM的适用性进行了严格的分析。在低剪切速率下进行的恒定剪切速率(CSR)测试可得出FGS-CM的最准确的T-y。随后,将结果用于建立广义关系,该关系说明FGS-CM的T-y的变化,其稠度表示为相对于液位归一化的水含量。此外,为了了解在FGS-CM的屈服前阶段产生的应变的性质,通过施加与T-y的不同分数相等的应力来进行蠕变松弛(CR)测试。 CR测试的结果被用于开发一种新颖的方法,以确定FGS-CM的剪切模量G(E)的弹性分量。这项研究表明,FGS-CM在预屈服阶段表现为线性弹塑性材料,这与人们普遍期望的纯弹性响应相反,为当代地质力学领域提供了新的见识。 (C)2018美国土木工程师学会。

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