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首页> 外文期刊>Latin American Journal of Solids and Structures >Numerical and experimental investigation of forming limit diagrams of 6063 aluminum alloy sheets using Ayada ductile fracture criterion and the second derivative of large strain criterion at increased temperatures
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Numerical and experimental investigation of forming limit diagrams of 6063 aluminum alloy sheets using Ayada ductile fracture criterion and the second derivative of large strain criterion at increased temperatures

机译:基于Ayada韧性断裂准则和高温大应变准则二阶导数的6063铝合金板材成形极限图的数值与实验研究。

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摘要

The present study investigated the forming limit diagrams (FLDs) of aluminum alloy 6063 sheets using numerical and experimental methods at increased temperatures. In the numerical section, for the first time, the Ayada ductile fracture criterion and the second derivative of the large strain criterion were used. ABAQUS finite element (FE) analysis software was employed for the simulations. In order to determine necking time, after simulation, relevant data such as stress history, principal stresses, equivalent strain history, and large strain were extracted and the conditions for the necking criteria were investigated. To obtain the FLD in the experimental part, a Nakazima format was used. Experiments were conducted at temperatures of 25, 150, 200 and 250 degrees Celsius for the samples with equal lengths and different widths. Ayada criterion had better compatibility with the left side of the FLD (for small negative strains), while the second derivative of the large strain criterion had better compatibility with the right side of the diagrams (for small positive strains). The results also showed that with the increase in temperature, the FLD moved upward and sheet forming was improved. This improvement was almost similar for the temperatures of 150 and 200oC, while the processing temperature of 250oC led to significant improvement in forming, as compared to other temperatures.
机译:本研究使用数值和实验方法在升高的温度下研究了铝合金6063板材的成形极限图(FLD)。在数值部分中,首次使用了Ayada韧性断裂准则和大应变准则的二阶导数。模拟使用了ABAQUS有限元(FE)分析软件。为了确定缩颈时间,在模拟之后,提取诸如应力历史,主应力,等效应变历史和大应变之类的相关数据,并研究缩颈标准的条件。为了在实验部分获得FLD,使用了Nakazima格式。对于长度相同和宽度不同的样品,在25、150、200和250摄氏度的温度下进行了实验。 Ayada准则与FLD的左侧具有更好的兼容性(对于较小的负应变),而大应变准则的二阶导数与图表的右侧具有更好的兼容性(对于较小的正应变)。结果还表明,随着温度的升高,FLD向上移动,片材成形得到改善。与其他温度相比,在150和200oC的温度下,这种改善几乎是相似的,而250oC的处理温度导致成型方面的显着改善。

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