Stoudt M R, Levine L E, Ma L
National Institute of Standards & Technology, 100 Bureau Drive, Gaithersburg, MD 20899.
Exp Mech. 2017 Jan;57(1):155-163. doi: 10.1007/s11340-016-0202-x. Epub 2016 Sep 13.
We describe an innovative design for an in-plane measurement technique that subjects thin sheet metal specimens to bidirectional loading. The goal of this measurement is to provide the critical performance data necessary to validate complex predictions of the work hardening behavior during reversed uniaxial deformation. In this approach, all of the principal forces applied to the specimen are continually measured in real-time throughout the test. This includes the lateral forces that are required to prevent out of plane displacements in the specimen that promote buckling. This additional information will, in turn, improve the accuracy of the compensation for the friction generated between the anti-bucking guides and the specimen during compression. The results from an initial series of experiments not only demonstrate that our approach is feasible, but that it generates data with the accuracy necessary to quantify the directionally-dependent changes in the yield behavior that occur when the strain path is reversed (i.e., the Bauschinger Effect).
我们描述了一种用于面内测量技术的创新设计,该技术使薄金属板材试样承受双向载荷。这种测量的目的是提供关键性能数据,以验证反向单轴变形过程中加工硬化行为的复杂预测。在这种方法中,在整个测试过程中实时连续测量施加到试样上的所有主应力。这包括防止试样发生平面外位移(这种位移会导致屈曲)所需的横向力。这些额外信息反过来将提高对压缩过程中抗屈曲导轨与试样之间产生的摩擦进行补偿的准确性。最初一系列实验的结果不仅表明我们的方法是可行的,而且所生成的数据具有足够的精度来量化应变路径反转时(即包辛格效应)屈服行为中与方向相关的变化。