通过振荡试验和蠕变试验测定的悬浮液粘弹性能和粘度的比较

IF 1.6 4区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING
Kento Nakanishi, Takehiro Sumita, Noritaka Saito, Kunihiko Nakashima
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引用次数: 0

摘要

了解悬浮液的粘弹性能对许多工业流程至关重要。尽管振荡测试和蠕变测试被广泛用于测量复杂流体的粘弹性能,但有关使用这些方法测量的粘弹性能之间的相关性的研究却鲜有发表。本研究旨在深入探讨这两种方法之间的差异,并确定哪种方法更适合特定应用。通过振荡测试和蠕变测试测量了由分散在硅油基质中的聚乙烯珠组成的悬浮液的室温粘弹性能,并进行了比较。振荡测试结果表明,悬浮液表现出弱弹性变形,而蠕变测试结果表明,悬浮液具有相对弹性,液相粘度较低。此外,振荡测试测得的粘度低于蠕变测试测得的粘度。当外加流动导致微观结构发生变化时,例如当剪切流动和颗粒与颗粒之间的接触引起聚集时,不同测试方法所分析的流动特性会有很大不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison of the viscoelastic properties and viscosity of suspensions determined by oscillation and creep testing

Knowledge of the viscoelastic properties of suspensions is essential for many industrial processes. Although oscillation and creep testing are widely used to measure the viscoelastic properties of complex fluids, few studies on the correlation between the viscoelastic properties measured using these methods have been published. This study aims to provide insights into the differences between these methods and determine which method is better suited for a particular application. The room-temperature viscoelastic properties of a suspension composed of polyethylene beads dispersed in a silicone oil matrix were measured by oscillation and creep testing and compared. The results of oscillation testing indicated that the suspension showed weakly elastic deformation, whereas the results of creep testing revealed that the suspension was relatively elastic, with the liquid phase showing lower viscosity. In addition, the viscosity measured by oscillation testing was lower than that measured by creep testing. When the imposed flow causes microstructural changes, such as when the shear flow and particle‒particle contact induce aggregation, the analyzed flow property considerably differs between testing methods.

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来源期刊
Isij International
Isij International 工程技术-冶金工程
CiteScore
3.40
自引率
16.70%
发文量
268
审稿时长
2.6 months
期刊介绍: The journal provides an international medium for the publication of fundamental and technological aspects of the properties, structure, characterization and modeling, processing, fabrication, and environmental issues of iron and steel, along with related engineering materials.
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