High-Performance Deoxidized Steels
Autor Linzhu Wang, Chaoyi Chen, Ruizhi Gao, Jun Wangen Limba Engleză Hardback – 21 oct 2026
Systematic inclusion control strategies for producing high-performance aluminum-killed steels
Non-metallic inclusions in aluminum-killed steels act as stress concentrators and crack initiation sites, degrading toughness, ductility, and fatigue resistance. High-Performance Deoxidized Steels: Inclusion Behavior and Metallurgical Strategies presents a systematic framework for controlling these inclusions under non-stirring conditions, detailing mechanisms of regulation, nucleation, and coarsening that directly affect mechanical properties, surface quality, and processing performance.
The book examines how aluminum, magnesium, and rare earth elements influence inclusion morphology, composition, and distribution. It integrates thermodynamic calculations with advanced characterization techniques to develop reproducible clean steel production processes. Coverage extends to oxide metallurgy and the role of fine inclusions in promoting intragranular ferrite nucleation for next-generation high-strength, high-toughness steels.
The book also covers:
- Multi-element deoxidation approaches addressing inclusion modification through combined aluminum, magnesium, and rare earth treatment pathways
- Practical guidance on converting academic inclusion control theory into reproducible industrial steelmaking processes for steel purification
- Detailed analysis of inclusion effects on surface quality, weldability, and fatigue life in demanding structural applications
- Kinetic modeling frameworks for predicting inclusion coarsening and removal behavior during steel refining and continuous casting
- Strategies for leveraging oxide particles to improve microstructural refinement and achieve targeted grain boundary characteristics in finished steels
This reference serves materials scientists, mechanical engineers, corrosion specialists, and industrial chemists working in automotive, aerospace, and appliance manufacturing. By connecting inclusion control theory with reproducible metallurgical strategies, it provides the technical foundation needed to produce steels meeting stringent performance and reliability requirements.
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Specificații
ISBN-10: 3527356649
Pagini: 272
Dimensiuni: 170 x 244 mm
Greutate: 0.64 kg
Editura: Wiley-VCH GmbH
Notă biografică
Linzhu Wang, PhD, is a Professor at the College of Materials and Metallurgy, Guizhou University, China. She has presided over 4 national-level projects and more than 10 provincial and industry-university-research cooperation projects, publishing more than 70 SCI/EI indexed papers in authoritative metallurgical journals.
Chaoyi Chen, PhD, is a Professor at the College of Materials and Metallurgy, Guizhou University, China. He is also an associate editor-in-chief of China Metallurgy. His research mainly focuses on new technologies for short-process metallurgy, comprehensive utilization of metallurgical resources, and corrosion and protection, among other fields.
Ruizhi Gao is a PhD candidate in Materials Science and Engineering at Guizhou University, China. His research focuses on the control and modification of non-metallic inclusions, as well as the corrosion behavior and local corrosion mechanisms of materials.
Jun Wang is a PhD candidate in Materials Science and Engineering at Guizhou University, China. His research focuses on rare earth modified inclusions in steel and the regulation of strengthening phases in oxide dispersion strengthened steels for nuclear fusion reactors.
Cuprins
About the Authors xvii
Preface xix
1 Introduction 1
1.1 Background and Importance of Inclusion Control in Steels 1
1.2 Types and Origins of Non-metallic Inclusions 3
1.3 Classification and Characterization Methods 6
1.4 The Concept of Oxide Metallurgy 8
1.5 IGF Nucleation and Role of Inclusions 10
1.6 Scientific and Technological Challenges 12
1.7 Industrial Relevance and Application Scenarios 14
1.8 Objectives and Structure of This Book 16
2 Research Methods for Inclusions 21
2.1 Introduction 21
2.2 Thermodynamic Modeling and Phase-stability Prediction 22
2.3 Characterization: Morphology, Chemistry, and Crystal Structure 23
2.4 High-resolution and 3D Methods: From Interfaces to True Morphology 28
2.5 In Situ and Dynamic Observation Techniques 32
3 Formation and Evolution of Inclusions in Aluminum-deoxidized Steels 39
3.1 Background, Motivation, and Chapter Scope 39
3.2 Thermodynamic Framework and Formation Constraints of Inclusions During Aluminum Deoxidation 40
3.3 Experimental Strategy and Methodology for Capturing Inclusion Behavior 43
3.4 Composition and Phase Characteristics of Inclusions in Aluminum-deoxidized Steels 46
3.5 Morphological Evolution and Growth Mechanisms of Inclusions 49
3.6 Statistical Characteristics and Kinetic Interpretation of Inclusion Populations 52
3.7 Spatial Distribution and Dispersion Behavior of Inclusions 55
3.8 Chapter Summary and Mechanistic Implications 57
4 Inclusion Modification and Evolution Under Calcium Treatment 61
4.1 Introduction 61
4.2 Experimental Program and Research Methods 62
4.3 Effects of Calcium Treatment on Inclusion Type, Chemistry, and Morphology 65
4.4 Inclusion Size Distribution and Statistics 68
4.5 Thermodynamic Modeling and Composition-evolution Pathways 71
4.6 Chapter Summary 74
5 Type Control and Transformation Mechanisms of Inclusions Under Magnesium Treatment 79
5.1 Introduction 79
5.2 Experimental and Calculation Methods 80
5.3 Mg-induced Compositional Modification and Phase Evolution of Inclusions 82
5.4 Analysis of Thermodynamic Formation Behavior of Inclusions in Mg-Al-O System 85
5.5 Quantitative Characterization of Inclusion Size Refinement and Spatial Distribution Homogeneity 87
5.6 Chapter Summary 90
6 Formation Processes and Behavioral Characteristics of Ti-related Inclusions 93
6.1 Metallurgical Background of Titanium Treatment in Aluminum-deoxidized Steels 93
6.2 Composition and Phase Characteristics of Inclusions in Ti-Al-treated Steels 95
6.3 Morphological Evolution and Growth Behavior of Inclusions in Ti-Al-treated Steels 98
6.4 Statistical Characteristics and Population Evolution of Inclusions in Ti-Al-treated Steels 100
6.5 Spatial Distribution and Dispersion Behavior of Inclusions in Ti-Al-treated Steels 103
6.6 Chapter Summary and Mechanistic Implications 106
7 Structural Characteristics and Control Mechanisms of Inclusions in Zr-deoxidized Steels 111
7.1 Introduction 111
7.2 Experimental and Calculation Methods 112
7.3 Multi-scale Characterization and Crystal Structure Analysis of Inclusions in Zr-deoxidized Steel 114
7.4 Evolution of Inclusion Modification Characteristics by Zirconium Treatment 119
7.5 Compositional Evolution and Thermodynamic Stability of Inclusions During Solidification 121
7.6 Chapter Summary 125
8 Regulation Rules of Rare Earth Inclusions Under Cerium Treatment 129
8.1 Background and Research Scope of Cerium Treatment in Steels 129
8.2 Experimental Framework and Material Systems 131
8.3 Inclusion Characteristics in Cerium-treated Pure Iron 133
8.4 Inclusion Characteristics in Cerium-treated Oil Country Tubular Steel 136
8.5 Influence of Cerium Content on Inclusion Size and Population Statistics 141
8.6 Time-dependent Evolution of Inclusions After Cerium Addition 143
8.7 Spatial Distribution and Aggregation Behavior of Cerium-containing Inclusions 146
8.8 Thermodynamic Interpretation of Inclusion Transformation 147
8.9 Mechanism of Inclusion Transformation During Cooling and Solidification 149
8.10 Chapter Summary and Mechanistic Implications 152
9 Evolution Pathways and Cleanliness Effects of Inclusions Under Yttrium Treatment 157
9.1 Introduction 157
9.2 Experimental Methods 158
9.3 Evolution of Inclusion Types 159
9.4 Evolution of Inclusion Characteristics 162
9.5 Chapter Summary 165
10 Oxide Inclusion Nucleation 169
10.1 Significance of Inclusion Nucleation in Oxide Metallurgy 169
10.2 Classical Thermodynamic Framework of Oxide Inclusion Nucleation 171
10.3 Classical Nucleation of Al
2O3 Inclusions in Al-deoxidized Steel 173
10.4 Classical Nucleation of Mg-containing Oxides in Al-Mg Deoxidized Steel 176
10.5 Classical Nucleation of Ti-, Zr-, and Ce-based Oxides 179
10.6 Comparative Summary of Classical Nucleation Behavior 182
10.7 Limitations of CNT for Ti-, Zr-, and Ce-based Oxides 184
10.8 Two-step and Cluster-assisted Nucleation Mechanisms of Ti-, Zr-, and Ce-based Oxides 186
10.9 Unified Nucleation Pathway for Oxide Inclusions in Steel 188
10.10 Conclusions 192
11 Inclusion Coarsening Kinetics 195
11.1 Introduction 195
11.2 Thermodynamic Driving Force for Inclusion Coarsening 197
11.3 Kinetic Mechanisms of Inclusion Coarsening 200
11.4 Effect of Calcium Treatment on Coarsening Behavior 204
11.5 Evolution of Inclusion Size Distribution 207
11.6 Implications for Inclusion Control in Aluminum-killed Steels 210
11.7 Summary 211
12 Inclusion Agglomeration Forces 215
12.1 Introduction 215
12.2 Experimental Methods and Theoretical Models 216
12.3 Typical Agglomeration Behavior of Inclusions Observed In Situ 219
12.4 Quantitative Calculation and Comparison of Interaction Forces Between Inclusions 221
12.5 Influence of Inclusion Morphology on Capillary Forces 224
12.6 Application and Validation of the K-P Model in RE Steel 227
12.7 Summary 227
13 Summary of Control Mechanisms 231
13.1 Control Objectives and Evaluation Dimensions 231
13.2 Stage-wise Evolution and Key Control Points 231
13.3 Thermodynamic Control: Stable Phases, Transformation Pathways, and Composition Windows 232
13.4 Nucleation Mechanisms: Unifying Classical and Nonclassical Processes 233
13.5 Coarsening Mechanisms: Aggregation Dominance and the Ripening-tocoalescence Transition 233
13.6 Interfacial Physics: Capillary Forces, Wettability, and Agglomeration Thresholds 234
13.7 Property Matching: Thermal-expansion Mismatch and Interfacial Integrity 234
13.8 Integrated Control Essentials and a Closed-loop Strategy 235
13.9 Summary 235
Index 237