仪器刚度伪影:避免不良数据与\(G_{\max }\)和操作极限线 \(E_{\max }\)

IF 2.3 3区 工程技术 Q2 MECHANICS
Mohammad Tanver Hossain, Christopher W. Macosko, Gareth H. McKinley, Randy H. Ewoldt
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引用次数: 0

摘要

我们推导了由机器刚度(仪器顺应性)引起的非理想伪影的操作极限线,这种伪影导致测量的表观粘弹性模量系统性地低于真实值。极限表示为可测量的最大表观剪切模量\(G_{\max }\)或拉伸模量\(E_{\max }\),它可以在与施加的位移、载荷或频率无关的粘弹性模量图上明确显示。未经校正的数据应远低于这些限值。修正后的数据可以高于这些限制,并且可信。通过研究如何用\(G_{\max }\)或\(E_{\max }\)重新编写修正方程以及误差如何在修正中传播,可以支持这些解释。我们还展示了动态柔度表示如何导致更简单的修正,以及如何从两种不同几何条件下单个样品的表观动态柔度测量来校准机器刚度。给出了旋转流变仪和线性位移动态力学分析仪的方程。作为操作限制线\(G_{\max }\)或\(E_{\max }\),该方法可以评估其他人数据的可信度,即使没有获得他们的位移、力、扭矩或校正量的原始数据,这些数据很少被报道。该方法还可以在获取数据之前预测未来的问题,例如,在选择仪器和测试几何形状时了解操作限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Instrument stiffness artifacts: avoiding bad data with operational limit lines of \(G_{\max }\) and \(E_{\max }\)

Instrument stiffness artifacts: avoiding bad data with operational limit lines of \(G_{\max }\) and \(E_{\max }\)

We derive an operating limit line for the non-ideal artifacts caused by machine stiffness (instrument compliance) which causes measured apparent viscoelastic moduli to be systematically lower than the true values. The limit is represented as a maximum measurable apparent shear modulus \(G_{\max }\), or tensile modulus \(E_{\max }\), which can be shown explicitly on plots of viscoelastic moduli independent of the applied displacement, load, or frequency. Uncorrected data should be much lower than these limits. Corrected data can be above these limits and credible. These interpretations are supported by studying how correction equations can be re-written in terms of \(G_{\max }\) or \(E_{\max }\) and how error propagates in the corrections. We also show how the dynamic compliance representation leads to simpler corrections and how machine stiffness can be calibrated from apparent dynamic compliance measurements of a single sample at two different geometry conditions. Equations are provided for rotational rheometers as well as linear displacement dynamic mechanical analyzers. Used as an operational limit line, \(G_{\max }\) or \(E_{\max }\), the method can assess the credibility of data from others—even without access to their primary data of displacement, force, torque, or amount of correction, which are rarely reported. The method can also anticipate future issues before data are taken, e.g., to understand operational limits when selecting instruments and test geometries.

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来源期刊
Rheologica Acta
Rheologica Acta 物理-力学
CiteScore
4.60
自引率
8.70%
发文量
55
审稿时长
3 months
期刊介绍: "Rheologica Acta is the official journal of The European Society of Rheology. The aim of the journal is to advance the science of rheology, by publishing high quality peer reviewed articles, invited reviews and peer reviewed short communications. The Scope of Rheologica Acta includes: - Advances in rheometrical and rheo-physical techniques, rheo-optics, microrheology - Rheology of soft matter systems, including polymer melts and solutions, colloidal dispersions, cement, ceramics, glasses, gels, emulsions, surfactant systems, liquid crystals, biomaterials and food. - Rheology of Solids, chemo-rheology - Electro and magnetorheology - Theory of rheology - Non-Newtonian fluid mechanics, complex fluids in microfluidic devices and flow instabilities - Interfacial rheology Rheologica Acta aims to publish papers which represent a substantial advance in the field, mere data reports or incremental work will not be considered. Priority will be given to papers that are methodological in nature and are beneficial to a wide range of material classes. It should also be noted that the list of topics given above is meant to be representative, not exhaustive. The editors welcome feedback on the journal and suggestions for reviews and comments."
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