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Equal channel angular deformation process and its neuro-simulation for fine-grained magnesium alloy

机译:细晶镁合金的等通道角变形过程及其神经模拟

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摘要

Fine-grained structure of as-cast magnesium AM60 alloy was obtained by means of equal channel angular deformation(ECAD) technique. Through analyzing the relationship between the load and the displacement under different working conditions, it is demonstrated that employment of back-pressure, multi-passages of deformation, and speed of deformation are the main factors representing ECAD working condition. As for ECAD process, a network composed of nonlinear neuro-element based on error back-propagation learning algorithm is launched to set up a processing mapping module for dynamic forecasting of load summit under different working conditions. The experimental results show that back-pressure, multi-passages and deforming speed have strong correlation with ECAD processing characteristics. On the metallographs of AM60 alloy after multi-passes ECAD, a morphology that inter-metallic compound Mg17 Al12 precipites on magnesium matrix without discrepancy, which evolves from coarse casting ingot microstructure, is observed. And the grains are refined significantly under accumulated severe shear strain.The study demonstrates feasibility of ECAD by using as-cast magnesium alloy directly, and launches an intelligent neuro-simulation module for quantitative analysis of its process.
机译:利用等通道角变形(ECAD)技术获得了铸态镁AM60合金的细晶组织。通过分析不同工况下的载荷与位移之间的关系,可以证明背压的使用,变形的多次通过和变形速度是代表ECAD工况的主要因素。对于ECAD过程,建立了基于误差反向传播学习算法的由非线性神经元组成的网络,以建立处理映射模块,用于在不同工作条件下动态预测负荷峰值。实验结果表明,背压,多次通过和变形速度与ECAD的加工特性密切相关。在多次通过ECAD之后的AM60合金的金相图上,观察到一种形态,在金属基质上,金属间化合物Mg17 Al12析出物在镁基体上无差异,这是由粗铸锭的微观结构演变而来的。研究证明了直接使用镁合金铸造的ECAD的可行性,并启动了智能的神经模拟模块对其过程进行定量分析。

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