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Evolution of the Material Microstructures and Mechanical Properties of AA1100 Aluminum Alloy within a Complex Porthole Die during Extrusion

机译:复杂孔模挤压过程中AA1100铝合金材料组织和力学性能的演变。

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摘要

Microchannel tube (MCT) is widely employed in industry due to its excellent efficiency in heat transfer. An MCT is commonly produced through extrusion within a porthole die, where severe plastic deformation is inevitably involved. Moreover, the plastic deformation, which dramatically affects the final property of the MCT, varies significantly from location to location. In order to understand the development of the microstructure and its effect on the final property of the MCT, the viscoplastic self-consistent (VPSC) model, together with the finite element analysis and the flow line model, is employed in the current study. The flow line model is used to reproduce the local velocity gradient within the complex porthole die, while VPSC model is employed to predict the evolution of the microstructure accordingly. In addition, electron backscatter diffraction (EBSD) measurement and mechanical tests are used to characterize the evolution of the microstructure and the property of the MCT. The simulation results agree well with the corresponding experimental ones. The influence of the material’s flow line on the evolution of the orientation and morphology of the grains, and the property of the produced MCT are discussed in detail.
机译:微通道管(MCT)由于其出色的传热效率而被广泛应用于工业中。 MCT通常是通过在舷窗模具中挤出来生产的,不可避免地会引起严重的塑性变形。此外,可显着影响MCT最终性能的塑性变形随位置的不同而有很大差异。为了了解微结构的发展及其对MCT最终性能的影响,本研究采用了粘塑性自洽(VPSC)模型,以及有限元分析和流线模型。流线模型用于再现复杂舷窗模具内的局部速度梯度,而VPSC模型用于相应地预测微观结构的演变。此外,电子背散射衍射(EBSD)测量和机械测试用于表征微结构的演变和MCT的特性。仿真结果与相应的实验结果吻合良好。详细讨论了物料流线对晶粒取向和形态演变以及所生产的MCT的性能的影响。

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