Microstructure, Hot Deformation Behavior, and Recrystallization Behavior of Zn-1Fe-1Mg Alloy under Isothermal Compression

Nowadays, wrought zinc-based biodegradable alloys are favored by researchers, due to their excellent mechanical properties and suitable degradation rates. However, there are few research studies on their thermal deformation behavior at present. This study took Zn-1Fe-1Mg and explored its microstruct...

Full description

Bibliographic Details
Main Authors: Penghao Xue, Minglong Ma, Yongjun Li, Xinggang Li, Jiawei Yuan, Guoliang Shi, Kaikun Wang, Kui Zhang
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/7/1735
id doaj-ae168b66ad594c3c8356727c72d6a9d2
record_format Article
spelling doaj-ae168b66ad594c3c8356727c72d6a9d22021-04-01T23:09:18ZengMDPI AGMaterials1996-19442021-04-01141735173510.3390/ma14071735Microstructure, Hot Deformation Behavior, and Recrystallization Behavior of Zn-1Fe-1Mg Alloy under Isothermal CompressionPenghao Xue0Minglong Ma1Yongjun Li2Xinggang Li3Jiawei Yuan4Guoliang Shi5Kaikun Wang6Kui Zhang7State Key Laboratory of Nonferrous Metals and Processes, GRIMAT Engineering Institute Co., Ltd., Beijing 100088, ChinaState Key Laboratory of Nonferrous Metals and Processes, GRIMAT Engineering Institute Co., Ltd., Beijing 100088, ChinaState Key Laboratory of Nonferrous Metals and Processes, GRIMAT Engineering Institute Co., Ltd., Beijing 100088, ChinaState Key Laboratory of Nonferrous Metals and Processes, GRIMAT Engineering Institute Co., Ltd., Beijing 100088, ChinaState Key Laboratory of Nonferrous Metals and Processes, GRIMAT Engineering Institute Co., Ltd., Beijing 100088, ChinaState Key Laboratory of Nonferrous Metals and Processes, GRIMAT Engineering Institute Co., Ltd., Beijing 100088, ChinaSchool of Materials Science and Engineering, University of Science & Technology Beijing, Beijing 100083, ChinaState Key Laboratory of Nonferrous Metals and Processes, GRIMAT Engineering Institute Co., Ltd., Beijing 100088, ChinaNowadays, wrought zinc-based biodegradable alloys are favored by researchers, due to their excellent mechanical properties and suitable degradation rates. However, there are few research studies on their thermal deformation behavior at present. This study took Zn-1Fe-1Mg and explored its microstructural change, deformation, recrystallization behavior and processing map by means of the thermal simulation experiment, at temperatures ranging from 235 °C to 340 °C and strain rates ranging from 10<sup>−2</sup> s<sup>−1</sup> to 10 s<sup>−1</sup>. The constitutive model was constructed using the Arrhenius formula. The results indicated that the evolution of microstructure included the dynamic recrystallization (DRX) of the Zn matrix, the spheroidization of the Mg<sub>2</sub>Zn<sub>11</sub> phase, and breaking of the FeZn<sub>13</sub> phase. The subgrains observed within the deformed grain resulted mainly from continuous dynamic recrystallization (CDRX). The precipitated FeZn<sub>13</sub> grains overlapped with the precipitated MgZn<sub>2</sub> from the matrix, thus forming a spine-like structure at the phase interface. After compression, the alloy possessed a strong basal texture. Affected by the change of Zn twins, textural strength decreased at first and then increased as the deformation temperature rose. There was only a small unstable region in the processing map, indicating that the alloy exhibited good machinability.https://www.mdpi.com/1996-1944/14/7/1735biodegradable Zn-Fe-Mgconstitutive equationtwinningdynamic recrystallizationmicrostructure evolution
collection DOAJ
language English
format Article
sources DOAJ
author Penghao Xue
Minglong Ma
Yongjun Li
Xinggang Li
Jiawei Yuan
Guoliang Shi
Kaikun Wang
Kui Zhang
spellingShingle Penghao Xue
Minglong Ma
Yongjun Li
Xinggang Li
Jiawei Yuan
Guoliang Shi
Kaikun Wang
Kui Zhang
Microstructure, Hot Deformation Behavior, and Recrystallization Behavior of Zn-1Fe-1Mg Alloy under Isothermal Compression
Materials
biodegradable Zn-Fe-Mg
constitutive equation
twinning
dynamic recrystallization
microstructure evolution
author_facet Penghao Xue
Minglong Ma
Yongjun Li
Xinggang Li
Jiawei Yuan
Guoliang Shi
Kaikun Wang
Kui Zhang
author_sort Penghao Xue
title Microstructure, Hot Deformation Behavior, and Recrystallization Behavior of Zn-1Fe-1Mg Alloy under Isothermal Compression
title_short Microstructure, Hot Deformation Behavior, and Recrystallization Behavior of Zn-1Fe-1Mg Alloy under Isothermal Compression
title_full Microstructure, Hot Deformation Behavior, and Recrystallization Behavior of Zn-1Fe-1Mg Alloy under Isothermal Compression
title_fullStr Microstructure, Hot Deformation Behavior, and Recrystallization Behavior of Zn-1Fe-1Mg Alloy under Isothermal Compression
title_full_unstemmed Microstructure, Hot Deformation Behavior, and Recrystallization Behavior of Zn-1Fe-1Mg Alloy under Isothermal Compression
title_sort microstructure, hot deformation behavior, and recrystallization behavior of zn-1fe-1mg alloy under isothermal compression
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-04-01
description Nowadays, wrought zinc-based biodegradable alloys are favored by researchers, due to their excellent mechanical properties and suitable degradation rates. However, there are few research studies on their thermal deformation behavior at present. This study took Zn-1Fe-1Mg and explored its microstructural change, deformation, recrystallization behavior and processing map by means of the thermal simulation experiment, at temperatures ranging from 235 °C to 340 °C and strain rates ranging from 10<sup>−2</sup> s<sup>−1</sup> to 10 s<sup>−1</sup>. The constitutive model was constructed using the Arrhenius formula. The results indicated that the evolution of microstructure included the dynamic recrystallization (DRX) of the Zn matrix, the spheroidization of the Mg<sub>2</sub>Zn<sub>11</sub> phase, and breaking of the FeZn<sub>13</sub> phase. The subgrains observed within the deformed grain resulted mainly from continuous dynamic recrystallization (CDRX). The precipitated FeZn<sub>13</sub> grains overlapped with the precipitated MgZn<sub>2</sub> from the matrix, thus forming a spine-like structure at the phase interface. After compression, the alloy possessed a strong basal texture. Affected by the change of Zn twins, textural strength decreased at first and then increased as the deformation temperature rose. There was only a small unstable region in the processing map, indicating that the alloy exhibited good machinability.
topic biodegradable Zn-Fe-Mg
constitutive equation
twinning
dynamic recrystallization
microstructure evolution
url https://www.mdpi.com/1996-1944/14/7/1735
work_keys_str_mv AT penghaoxue microstructurehotdeformationbehaviorandrecrystallizationbehaviorofzn1fe1mgalloyunderisothermalcompression
AT minglongma microstructurehotdeformationbehaviorandrecrystallizationbehaviorofzn1fe1mgalloyunderisothermalcompression
AT yongjunli microstructurehotdeformationbehaviorandrecrystallizationbehaviorofzn1fe1mgalloyunderisothermalcompression
AT xinggangli microstructurehotdeformationbehaviorandrecrystallizationbehaviorofzn1fe1mgalloyunderisothermalcompression
AT jiaweiyuan microstructurehotdeformationbehaviorandrecrystallizationbehaviorofzn1fe1mgalloyunderisothermalcompression
AT guoliangshi microstructurehotdeformationbehaviorandrecrystallizationbehaviorofzn1fe1mgalloyunderisothermalcompression
AT kaikunwang microstructurehotdeformationbehaviorandrecrystallizationbehaviorofzn1fe1mgalloyunderisothermalcompression
AT kuizhang microstructurehotdeformationbehaviorandrecrystallizationbehaviorofzn1fe1mgalloyunderisothermalcompression
_version_ 1724175464643166208