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Extending Tensile Curves beyond Uniform Elongation Using Digital Image Correlation: Capability Analysis

机译:使用数字图像相关性延伸超出均匀伸长的拉伸曲线:能力分析

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A uniaxial stress-strain curve obtained from a conventional tensile test is only valid up to the point of uniform elongation, beyond which a diffuse neck begins to develop, followed by localized necking and eventual fracture. However Finite Element Analysis for sheet metal forming requires an effective stress-strain curve that extends well beyond the diffuse necking point. Such an extension is usually accomplished by analytical curve fitting and extrapolation. Recent advancement in Digital Image Correlation (DIC) techniques allows direct measurement of full-range stress-strain curves by continuously analyzing the deformation within the diffuse neck zone until the material ruptures. However the stress-strain curve obtained this way is still approximate in nature. Its accuracy depends on the specimen size, the gage size for analysis, and the material response itself. An extensive numerical study is presented in this paper to evaluate the capability of extending tensile curves based on DIC measurement data. A numerical model for uniaxial tensile test is established and used to simulate the experimental tests. The results are used as the input for DIC analysis. A wide range of conditions are considered, and the "full-range stress-strain curve" obtained from the DIC analysis is compared with the actual curve in the numerical model to assess the measurement error. It is found that, within 5% error range, DIC analysis can provide sufficient stress-strain curve extension for FEA analysis. The study also concludes that narrower test specimens give longer-range extensions of the tensile curve and closer to the actual material response.
机译:从传统的拉伸试验中获得的单轴应力 - 应变曲线仅对均匀伸长率有效,延伸颈部开始发展,然后局部颈缩和最终裂缝。然而,金属板形成的有限元分析需要有效的应力 - 应变曲线,其远远超过漫射缩放点。这种延伸通常通过分析曲线拟合和外推完成。最近的数字图像相关性(DIC)技术允许通过连续分析漫射颈部区域内的变形直到材料破裂,直接测量全范围应力 - 应变曲线。然而,通过这种方式获得的应力 - 应变曲线仍然近似。其精度取决于样品尺寸,分析的量大尺寸,以及物质响应本身。本文提出了广泛的数值研究,以评估基于DIC测量数据延伸拉伸曲线的能力。建立了单轴拉伸试验的数值模型,并用于模拟实验试验。结果用作DIC分析的输入。考虑了广泛的条件,并将从DIC分析获得的“全范围应力 - 应变曲线”与数值模型中的实际曲线进行比较,以评估测量误差。发现,在5%误差范围内,DIC分析可以为FEA分析提供足够的应力 - 应变曲线延伸。该研究还得出结论,较窄的试样较窄的抗拉曲线的延伸范围和更接近实际材料响应。

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