Liu Debao, Liu Yichi, Zhao Yue, Huang Y, Chen Minfang
School of Materials Science and Engineering, Tianjin University of Technology, Tianjin 300384, China.
Tianjin Dongyi Magnesium Products Co., LTD, Tianjin 301700, China.
Mater Sci Eng C Mater Biol Appl. 2017 Aug 1;77:690-697. doi: 10.1016/j.msec.2017.03.239. Epub 2017 Mar 28.
The hot deformation behavior of nano-sized hydroxylapatite (HA) reinforced Mg-3Zn-0.8Zr composites were performed by means of Gleeble-1500D thermal simulation machine in a temperature range of 523-673K and a strain rate range of 0.001-1s, and the microstructure evolution during hot compression deformation were also investigated. The results show that the flow stress increases increasing strain rates at a constant temperature, and decreases with increasing deforming temperatures at a constant strain rate. Under the same processing conditions, the flow stresses of the 1HA/Mg-3Zn-0.8Zr specimens are higher than those of the Mg-3Zn-0.8Zr alloy specimens, and the difference is getting closer with increasing deformation temperature. The hot deformation behaviors of Mg-3Zn-0.8Zr and 1HA/Mg-3Zn-0.8Zr can be described by constitutive equation of hyperbolic sine function with the hot deformation activation energy being 124.6kJ/mol and 125.3kJ/mol, respectively. Comparing with Mg-3Zn-0.8Zr alloy, the instability region in the process map of 1HA/Mg-3Zn-0.8Zr expanded to a bigger extent at the same conditions. The optimum process conditions of 1HA/Mg-3Zn-0.8Zr composite is concluded as between the temperature window of 573-623K with a strain rate range of 0.001-0.1s. A higher volume fraction and smaller grain size of dynamic recrystallization (DRX) grains was observed in 1HA/Mg-3Zn-0.8Zr specimens after the hot compression deformation compared with Mg-3Zn-0.8Zr alloy, which was ascribed to the presence of the HA particles that play an important role in particle-stimulated nucleation (PSN) mechanism and can effectively hinder the migration of interfaces.
采用Gleeble-1500D热模拟试验机对纳米羟基磷灰石(HA)增强Mg-3Zn-0.8Zr复合材料在523-673K温度范围和0.001-1s应变率范围内的热变形行为进行了研究,并对热压缩变形过程中的微观组织演变进行了探讨。结果表明,在恒定温度下,流变应力随应变率的增加而增大;在恒定应变率下,流变应力随变形温度的升高而降低。在相同加工条件下,1HA/Mg-3Zn-0.8Zr试样的流变应力高于Mg-3Zn-0.8Zr合金试样,且随着变形温度的升高,二者差异逐渐减小。Mg-3Zn-0.8Zr和1HA/Mg-3Zn-0.8Zr的热变形行为可用双曲正弦函数本构方程描述,其热变形激活能分别为124.6kJ/mol和125.3kJ/mol。与Mg-3Zn-0.8Zr合金相比,1HA/Mg-3Zn-0.8Zr在相同条件下的加工图中不稳定区域扩展程度更大。得出1HA/Mg-3Zn-0.8Zr复合材料的最佳工艺条件为温度窗口在573-623K之间,应变率范围为0.001-0.1s。热压缩变形后,1HA/Mg-3Zn-0.8Zr试样中观察到比Mg-3Zn-0.8Zr合金更高的动态再结晶(DRX)晶粒体积分数和更小的晶粒尺寸,这归因于HA颗粒的存在,其在颗粒激发形核(PSN)机制中起重要作用,并能有效阻碍界面迁移。