Zhang Xuefei, Du Baoyi, Cao Yuejie
School of Mechanical Engineering, Shenyang University, Shenyang 110044, China.
School of Aeronautics, Chongqing Jiaotong University, Chongqing 400074, China.
Materials (Basel). 2023 Jun 25;16(13):4588. doi: 10.3390/ma16134588.
Mg-3Sn-1Mn-xLa alloy bars were prepared using backward extrusion, and the effects of the La content on the microstructures and mechanical properties of the alloy were systematically studied using an optical microscope (OM), X-ray diffraction (XRD), scanning electron microscope (SEM), transmission electron microscope (TEM), and tensile tests. The results of this research show that the MgSn phases were mainly formed at the α-Mg grain boundaries and within the grains in the Mg-3Sn-1Mn alloy. After adding a certain amount of La, the plate-shaped MgSnLa compounds consisting of MgLa, MgSn, and LaSn gradually disappeared in the α-Mg matrix and grain boundaries. With an increase in La content, the MgSn phase in the crystal was gradually refined and spheroidized. When the content of La reached 1.5%, the tensile strength of the alloy reached 300 Mpa and the elongation reached 12.6%, i.e., 25% and 85% increases, respectively, compared to the Mg-3Sn-1Mn alloy. The plate-shaped compound of Mg-3Sn-1Mn-1.5La had an average length of 3000 ± 50 nm, while the width was 350 ± 10 nm. Meanwhile, the extruded alloy's grain size was significantly refined, and there were many small cleavage steps and dimples in the fracture surface of the alloy. When the La content reached 2%, the alloy performance showed a downward trend due to the coarsening of the grains. The formed plate-shaped MgSnLa compounds and MgSn phases were consistent with the α-Mg matrix. They effectively pinned the dislocations and grain boundaries, which is the main reason for strengthening the mechanical properties of extrusion alloys.
采用反向挤压制备了Mg-3Sn-1Mn-xLa合金棒材,并利用光学显微镜(OM)、X射线衍射(XRD)、扫描电子显微镜(SEM)、透射电子显微镜(TEM)和拉伸试验系统研究了La含量对合金微观组织和力学性能的影响。研究结果表明,MgSn相主要在Mg-3Sn-1Mn合金的α-Mg晶界处和晶粒内部形成。添加一定量的La后,由MgLa、MgSn和LaSn组成的板状MgSnLa化合物在α-Mg基体和晶界处逐渐消失。随着La含量的增加,晶体中的MgSn相逐渐细化并球化。当La含量达到1.5%时,合金的抗拉强度达到300 Mpa,伸长率达到12.6%,即与Mg-3Sn-1Mn合金相比,分别提高了25%和85%。Mg-3Sn-1Mn-1.5La的板状化合物平均长度为3000±50 nm,宽度为350±10 nm。同时,挤压合金的晶粒尺寸显著细化,合金断口表面有许多小的解理台阶和韧窝。当La含量达到2%时,由于晶粒粗化,合金性能呈下降趋势。形成的板状MgSnLa化合物和MgSn相与α-Mg基体一致。它们有效地钉扎了位错和晶界,这是挤压合金力学性能强化的主要原因。