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3D processing maps of cast Mg-8Gd-3Y alloy at high strain rates and their application in plane strain forging

机译:高应变率下铸造MG-8GD-3Y合金的3D处理地图及其在平面应变锻造中的应用

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摘要

The stress-strain curves of cast Mg-8Gd-3Y (GW83) alloy at the high strain rates ranging from 0.1 to 1.5 s(-1) were obtained by isothermal compression tests. In order to exhibit the hot formability related to material itself, the three-dimensional (3D) processing maps of GW83 alloy were constructed on the basis of hot compression experimental data and dynamic material model (DMM). The 3D processing maps show that the material at high strain rates mostly suffers flow instability, and safety deformation occurs only in a narrow high-temperature domain. The formable processing region is concentrated within the temperature range of 410-440 degrees C and strain rate range of 0.20-0.73 s(-1). By means of user subroutines, the 3D processing maps were integrated into the finite element (FE) software Deform-3D, and the formability of GW83 alloy during the isothermal plane strain forging (PSF) process under four different parameters was predicted. The simulation results indicate that the material possesses good formability under the three parameters of safety region (410 degrees C/0.4 s(-1), 440 degrees C/0.3 s(-1), and 440 degrees C/0.4 s(-1)), and flow instability occurs under the parameters of instability region (400 degrees C/0.8 s(-1)). Combined with microstructure observation, the accuracy of the simulation results and 3D processing maps was verified via the PSF experiments under the same process parameters as the simulated conditions.
机译:通过等温压缩试验获得铸造Mg-8GD-3Y(GW83)合金的铸造Mg-8GD-3Y(GW83)合金的应力 - 应变曲线。为了表现出与材料本身相关的热成形性,基于热压缩实验数据和动态材料模型(DMM)构建GW83合金的三维(3D)处理图。 3D处理地图表明,高应变率下的材料大多遭受流量不稳定性,并且仅在窄的高温域中发生安全变形。可塑造的加工区集中在410-440℃的温度范围内,而应变速率范围为0.20-0.73s(-1)。通过用户子程序,将3D处理映射集成到有限元(FE)软件Deform-3d中,并且预测了在四个不同参数下的等温平面应变锻造(PSF)过程中的GW83合金的可成形性。仿真结果表明,该材料在安全区域的三个参数下具有良好的成形性(410℃/ 0.4 s(-1),440℃/ 0.3 s(-1),440℃/ 0.4 s(-1) )),并且在不稳定性区域的参数(400度C / 0.8S(-1))下发生流动不稳定性。结合微观结构观察,通过PSF实验验证了模拟结果和3D处理地图的精度,在与模拟条件相同的过程参数下。

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