应变片对3D打印聚合物增强效果的实验研究

R. Torre, S. Brischetto
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引用次数: 2

摘要

应变片是用于测量应变的普通传感器;它们的操作依赖于电阻,电阻随底层衬底受到机械变形而变化。机械应变可以通过制造商提供的测量系数转换电信号来获得。它证明了它的值不是唯一的;它可能受到试样和应变片的几何特性以及它们各自的弹性模量的影响。当研究低模量材料时,这可能是非常危险的。这项研究证实,即使是专门为低模量材料设计的商业应变片,也可能存在这种效应。讨论了其评价的实验方法;拉伸试样用作试验台,其模量由应变片和非接触方法(数字图像相关)确定。结果表明,接触换能器与聚合物试样结合后,存在局部增强效应,获得较高的拉伸模量。这种影响的幅度是用文献中可用的既定方法和通过简单的二维有限元(FE)模型来预测的。这些模型都需要考虑应变片的弹性模量;因此,提出了一种对任何有线换能器进行估计的数字程序。预测结果与实验测量结果一致;这验证了该方法,从而建议在没有这些信息时如何评估该现象。
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Reinforcing Effect of Strain Gauges on 3D Printed Polymers: An Experimental Investigation
Strain gauges are ordinary transducers for strain measuring; their operation relies on the electrical resistance, which varies as the underlying substrate is subjected to mechanical deformation. The mechanical strain can be obtained by converting the electrical signal through a gauge factor, provided by the manufacturer. It was demonstrated that its values are not unique; it may be influenced by the geometrical characteristics of both the specimen and the strain gauge and by their respective moduli of elasticity. This can be extremely dangerous when low modulus materials are studied. This study confirms that even with commercial strain gauges specifically designed for low modulus materials the effect might be present. An experimental method for its evaluation is discussed; tensile specimens are used as a test bench and their modulus is determined using both strain gauges and a non-contact method (Digital Image Correlation). The results show that a local reinforcing effect is present and a higher tensile modulus is obtained when contact transducers are bonded to polymeric specimens. The amplitude of this effect is predicted with established methods available in the literature and through a simple 2D Finite Element (FE) model. All these models require the elastic modulus of the strain gauge to be considered; a digital procedure to estimate it for any wired transducer is therefore proposed. The predicted results were found to be consistent with those experimentally measured; this validated the method, thus advising on how to evaluate the phenomenon also when this information is not available.
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