首页> 外文会议>International Conference on the Technology of Plasticity >Effects of backwards thixo-extrusion on the microstructure and mechanical properties of Mg-8.20Gd-4.48Y-3.34Zn-0.36Zr alloy
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Effects of backwards thixo-extrusion on the microstructure and mechanical properties of Mg-8.20Gd-4.48Y-3.34Zn-0.36Zr alloy

机译:向后Xixo挤出对Mg-8-2.48Y-3.48Y-3.48Y-3.48Y-3.48Y-3.48Y-3.48Y-3.48Y-3.48Y合金的微观结构和力学性能的影响

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High temperature mechanical properties of Mg alloys could be improved effectively by adding Zr and rare earth (RE) elements, such as Gd and Y, in Mg matrix. In order to achieve the sufficient utilization of both the volume and properties Mg-Gd-Y-Zn-Zr alloys, semisolid forming (SSF) is one of the most potential methods to realize the near net shape manufacturing. To verify the feasibility of the SSF in manufacturing of Mg-Gd-Y-Zn-Zr alloy products, partial melting and backwards thixo-extrusion experiments of Mg-8.20Gd-4.48Y-3.34Zn-0.36Zr alloy were conducted in semisolid temperature range of it (520~580 °C). The microstructural evolution of this alloy during partial melting and backwards thixo-extrusion was studied experimentally. This alloy exhibited different microstructural morphologies and formability at different extrusion temperature. At lower semisolid temperature (520~560 °C), liquid phase with lower volume fraction cannot improve the ductility of this alloy effectively. At higher semisolid temperature (580~620 °C), handling and transferring of semisolid slurry became quite difficult, owing to the liquid phase with higher volume fraction. The occurrence of liquid segregation and plastic deformation of solid particles during thixo-extrusion at higher semisolid temperature resulted in inhomogeneous distribution of microstructure and mechanical properties of the sample.
机译:通过在Mg基质中加入Zr和稀土(RE)元素(例如Gd和Y),可以有效地提高Mg合金的高温机械性能。为了实现体积和性质Mg-Gd-Y-Zn-Zr合金的充分利用,半固体形成(SSF)是实现近净形状制造的最潜在的方法之一。为了验证SSF在Mg-Gd-Y-Zn-Zr合金产品的制造中的可行性,在半固体温度下进行Mg-8.20gd-4.48Y-3.34盎司-3.48Y-3.34-30-36ZR合金的部分熔化和向后X型挤出实验它的范围(520〜580°C)。实验研究了局部熔融和向后旋转旋转型旋转过程中该合金的微观结构演化。该合金在不同挤出温度下表现出不同的微观结构形态和可成形性。在较低的半固体温度(520〜560℃)下,具有较低体积馏分的液相不能有效地改善该合金的延展性。在较高的半固体温度(580〜620°C)下,由于液相具有较高体积分数的液相,处理和转移变得非常困难。在较高半固体温度下旋瘤挤出过程中固体颗粒的液体偏析和塑性变形导致样品的微观结构和机械性能的不均匀分布。

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