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Development of High Strength and Corrosion Resistant Magnesium Alloys Using Severe Plastic Deformation Process

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dc.contributor.advisorKwang Seon Shin-
dc.contributor.authorAhmad Bahmani-
dc.date.accessioned2018-05-28T16:14:02Z-
dc.date.available2018-05-28T16:14:02Z-
dc.date.issued2018-02-
dc.identifier.other000000150482-
dc.identifier.urihttps://hdl.handle.net/10371/140613-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 공과대학 재료공학부, 2018. 2. Kwang Seon Shin.-
dc.description.abstractIn the present work, several Mg alloys as well as pure Mg were produced through different processes including casting, extrusion, screw rolling (SR) and multi directional forging (MDF). The mechanical properties and corrosion behavior of the extruded materials were studied and materials with the best mechanical properties and corrosion behavior were subjected to the SR and MDF. The related processing conditions of SR and MDF were changed and mechanical properties and corrosion behavior of the produced materials were analyzed.
The microstructure was characterized by optical microscopy (OM), x-ray diffraction (XRD) and scanning electron microscope (SEM). The mechanical properties including tensile and compression properties were measured using a R&B, an Instron universal testing system and hardness vickers. The electrochemical, hydrogen evolution and mass loss techniques in a 3.5 wt. % NaCl solution saturated with Mg(OH)2 were used for corrosion studies. Moreover, the scanning kelvin probe force microscopy (SKPFM) was utilized to measure the volta-potential of the matrix and various intermetallic phases.
ZAXM4211 alloy was subjected to both processes of SR and MDF at different temperatures. It was observed that increasing the screw rolling temperature from 220 to 340 oC results in decreasing the yield strength, while it results in decreasing the corrosion rate up to 300 oC and increasing it from 300 to 340 oC. Moreover, it was observed that increasing the screw rolling temperature results in the dissolution of intermetallics and increase in the grain size.
Then, several alloys like ZAXM4211, XM11, ZAXM4411, ZTXM4411 were also subjected to MDF at different temperatures and same trend as SR were obtained. It was also confirmed from the MDF results that, both the mechanical and corrosion properties were improved after MDF. However, increase in MDF temperature decreased the yield strength and increased the corrosion resistance. Yield strength reduction at higher temperatures is due to increase in grain size while corrosion rate behavior is under control of two parameters including reduction of second phases (galvanic cells) and grain size. A very low corrosion rate material was obtained from XM11 alloy MDFed at 300oC. The corrosion rate of this material was 0.26 mm/y which is even less than that of high purity Mg (0.39 mm/y).
Finally to understand the corrosion rate improvement, all the corrosion rate data which was obtained in this study as well as some available literature were quantitatively analyzed and an experimental formula was proposed to model the corrosion rate using the microstructure parameters. These parameters were related to the composition, grain size, and area fraction of the second phases and volta-potential difference of the second phase relative to the matrix. The experimental data was in a good agreement with the data of the proposed model.
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dc.description.tableofcontentsChapter 1: Introduction 1
1.1 Effect of alloying elements 2
1.2 Severe plastic deformation (SPD) 4
1.3 Parameters Influencing on Corrosion Behavior 6
1.3.1 Composition 6
1.3.2 Passivation 7
1.3.3 Grain size 9
1.3.4 Texture 19
1.3.5 Second phase (phase fraction and volta-potential) 19
1.4 Research Objectives 20
Chapter 2: Experimental procedure 24
2.1 Extrusion 24
2.2 MDF 24
2.3 Screw rolling (SR) 26
2.4 Microstructure 26
2.5 Mechanical properties 27
2.6 Corrosion studies 27
Chapter 3: Results and discussions 30
3.1 Objective 30
3.2 Extrusion 32
3.2.1 Effect of Mn on mechanical properties and corrosion behavior of pure Mg 34
3.2.2 Microstructure 36
3.2.3 Mechanical Properties 38
3.2.4 Corrosion behavior 40
3.3 Corrosion behavior and mechanical properties of Mg-Mn-Ca Alloy: influences of Al, Sn and Zn 43
3.3.1 Objective 43
3.3.2 Microstructure analysis 43
3.3.3 Mechanical properties 46
3.3.4 Corrosion behavior 50
3.4.1 Summary 61
3.6 Effect of Ca on mechanical properties and corrosion behavior 62
3.7 Improvement of mechanical properties and corrosion behavior of a magnesium alloy using screw rolling (SR) 65
3.7.1 Microstructure 65
3.7.2 Mechanical Properties 70
3.7.3 Corrosion Behavior 70
3.7.4 Summary 82
3.9 Effect of multi-directional forging on mechanical properties and corrosion behavior of ZAXM4411 alloy 83
3.9.1 Microstructures 83
3.9.2 Mechanical properties 89
3.9.3 Corrosion behavior 92
3.9.4 SKPFM 98
3.9.5 Short time immersion 98
3.10 Effect of multi directional forging on mechanical properties and corrosion behavior of ZAXM4211 alloy 104
3.10.1 Microstructures 104
3.10.2 Mechanical properties 107
3.10.3 Corrosion behavior 109
3.10.4 Summary 117
3.11 Manufacturing a low corrosion rate alloy using MDF (XM11) 118
3.11.1 Corrosion behavior 121
3.11.2 Summary 134
4 Data analysis 135
4.1 Mechanical properties 135
4.2 Corrosion behavior 138
4.2.1 Composition: 139
4.2.2 Matrix 140
4.2.3 Second phase (Intermetallic) 141
4.2.4 Total corrosion rate 142
5 Conclusions 145
6 Bibliography 148
7 Supplementary Information 163
7.1 Texture and dislocation density analysis 163
7.1.1 Extruded and screw rolled ZAXM4211 alloy 163
7.1.2 Extrusion and MDFed ZAXM4211 alloy 165
7.1.3 Extrusion and MDFed XM11 alloy 168
7.2 Literature review on the effect of grain size on corrosion rate 171
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dc.formatapplication/pdf-
dc.format.extent9980354 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectmagnesium alloys-
dc.subjectmechanical properties-
dc.subjectcorrosion behavior-
dc.subjectcorrosion rate-
dc.subjectmulti-directional forging-
dc.subjectscrew rolling-
dc.subjectscanning kelvin probe force microscopy-
dc.subjectgrain size-
dc.subject.ddc620.1-
dc.titleDevelopment of High Strength and Corrosion Resistant Magnesium Alloys Using Severe Plastic Deformation Process-
dc.typeThesis-
dc.description.degreeDoctor-
dc.contributor.affiliation공과대학 재료공학부-
dc.date.awarded2018-02-
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