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The Effects of Process Parameters on Evolutions of Thermodynamics and Microstructures for Composite Extrusion of Magnesium Alloy

机译:工艺参数对镁合金复合挤压热力学和组织演变的影响

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To research the effects of process parameters on evolutions of extrusion force and temperature rise and microstructures for composite extrusion of magnesium alloy which includes initial extrusion and shearing process subsequently and is shortened for “ES” in this paper, the ES extrusion process has been researched by using finite element modeling (FEM) technology. The rules of temperature rise and the extrusion force varying with process parameters have been developed. The thermal-mechanical coupling finite element models including the geometric and FEM models and solution conditions were applied to calculate the effective strain and temperature and extrusion force during ES extrusion. The maximum temperature rises in the billets do not increase with billet temperature rising. The temperature of rod surface increased continuously with development of ES extrusion. The evolutions of extrusion load curve and effective stress and temperature can be divided into three stages obviously. Extrusion experiments have been constructed to validate the FEM models with different process conditions. The simulation results and microstructure observation showed that ES process can introduce compressive and accumulated shear strain into the magnesium alloy. The ES extrusion would cause severe plastic deformation and improve the dynamic recrystallization during ES extrusion. The microstructures show that ES is an efficient and inexpensive grain refinement method for magnesium alloys.
机译:为了研究工艺参数对镁合金复合挤压过程中挤压力和温升的演变以及微观结构的影响,包括初始挤压和剪切过程,并在本文中简称为“ ES”,对ES挤压过程进行了研究。使用有限元建模(FEM)技术。已经开发出温度升高的规则和挤压力随工艺参数而变化的规则。应用热力学耦合有限元模型(包括几何模型和有限元模型以及求解条件)来计算ES挤压过程中的有效应变,温度和挤压力。钢坯的最高温度上升不会随着钢坯温度的上升而上升。随着ES挤出技术的发展,棒材表面温度不断升高。挤压载荷曲线和有效应力和温度的变化可以明显地分为三个阶段。已经构建了挤出实验来验证具有不同工艺条件的FEM模型。仿真结果和显微组织观察表明,ES工艺可以将压缩应变和累积剪切应变引入镁合金。 ES挤压会导致严重的塑性变形,并改善ES挤压过程中的动态再结晶。显微组织表明,ES是一种有效且廉价的镁合金晶粒细化方法。

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