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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Strain measurement and error analysis in thermo-mechanical tensile tests of sheet metals for hot stamping applications
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Strain measurement and error analysis in thermo-mechanical tensile tests of sheet metals for hot stamping applications

机译:用于热冲压应用的热机械拉伸试验中的应变测量和误差分析

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摘要

In order to conduct uniaxial tensile tests for hot stamping applications, tests are normally performed by using a Gleeble thermo-mechanical materials simulator so that rapid heating and cooling processes can be obtained. However, temperature gradients in a specimen tested on Gleeble are inevitable due to resistance heating principles and heat loss to grips and water-cooled jaws. In this research, a pair of purpose-built grips made of stainless steel with low thermal conductivity and significantly reduced contacting area for clamping, as well as a flat dog-bone specimen with maximised parallel length (80mm) were designed, for the purpose of improving the temperature uniformity within the concerned gauge section area of the specimen. Uniaxial tensile tests on AA6082 were performed, after controlled heating and cooling processes, at constant deformation temperatures in the range of 400?-500? and at constant strain rate in the range of 0.1-4/s, to simulate its hot stamping conditions. The digital image correlation system was adopted to enable strain distributions in specimens to be measured. The temperature distributions in specimens were investigated and an effective gauge length of 14mm was specified accordingly to ensure temperature gradients less than 10? within it at all tested temperatures. True stress-true strain curves of AA6082 were obtained based on results of strain measurements along the defined effective gauge length and used to calibrate a set of advanced material model. Error analysis was carried out by using thermo-electrical and thermo-mechanical FE models on ABAQUS, in which the calibrated material constitutive equations were implemented via subroutines. The error of stress-strain curves of AA6082 measured based on the specified gauge length was investigated and quantified by analysing the distribution of axial strain and axial stress.
机译:为了对热冲压应用进行单轴拉伸试验,通常通过使用GLEEBLE热机械模拟器进行测试,从而可以获得快速加热和冷却过程。然而,由于电阻加热原理和夹具和水冷钳口的热量损失,在GLELBE上测试的样本中的温度梯度是不可避免的。在该研究中,设计了一对由不锈钢制成的具有低导热钢和显着降低的接触区域,以及具有最大化的平行长度(80mm)的平坦狗骨标本提高标本的有关量段区域内的温度均匀性。在控制加热和冷却过程后,在400Ω-500的恒定变形温度下进行单轴拉伸试验。并且在0.1-4 / s的恒定应变速率下,以模拟其热冲压条件。采用数字图像相关系统来实现要测量的标本中的应变分布。研究了试样中的温度分布,相应地指定了14毫米的有效规格长度,以确保温度梯度小于10?在它的所有测试温度下面。基于沿规定的有效规格长度的应变测量结果获得了AA6082的真正应力 - 真菌曲线,并用于校准一组先进的材料模型。通过在ABAQUS上使用热电和热机械FE模型进行误差分析,其中校准的材料本构方程是通过子程序实施的。通过分析轴向应变和轴向应力的分布,研究了基于指定规格长度测量的AA6082的应力 - 应变曲线的误差。

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