- Артикул:00-01106093
- Автор: Ruifeng Li, Taotao Li
- ISBN: 978-981-97-4108-3
- Обложка: Мягкая обложка
- Издательство: Springer (все книги издательства)
- Город: Switzerland
- Страниц: 218
- Год: 2024
- Вес: 545 г
- Библиотечка сварщика
Издание на английском языке
The book is devoted to modern welding technologies that play an important role in industrial production. She examines the evolution of welding from traditional methods to advanced technologies such as laser welding, friction welding, electron beam welding and others. With increasing demands for product quality, reliability, and cost reduction, the book highlights the need for innovation in welding. The authors strive to provide readers with a holistic understanding of various welding technologies, their principles, advantages and disadvantages, as well as their applications in manufacturing industries. The book also includes exercises to deepen knowledge and has been developed based on an extensive analysis of existing materials, making it a valuable resource for students and welding professionals.
Contents
1 Laser Welding
1.1 Principles, Characteristics and Classification of Laser Welding
1.1.1 Principles of Laser Welding
1.1.2 Characteristics of Laser Welding
1.1.3 Classification of Laser Welding
1.2 Equipment of Laser Welding
1.2.1 CO2 Laser
1.2.2 Nd: YAG Laser
1.2.3 Disk Laser
1.2.4 Semiconductor Laser
1.2.5 Fiber Laser
1.3 Laser Welding of Metallic Materials
1.3.1 Laser Welding of Homogeneous Metals
1.3.2 Laser Welding of Dissimilar Metals
1.4 Application of Laser Welding
1.4.1 Application of Laser Welding in Shipbuilding
1.4.2 Application of Laser Welding in Aerospace
1.4.3 Application of Laser Welding in Automobile Manufacturing.
1.4.4 Application of Laser Welding in Microelectronic- Components
1.5 Other Laser Processing Methods.
1.5.1 Laser Cladding
1.5.2 Laser Cutting
1.5.3 Laser Drilling
1.5.4 Laser Additive Manufacturing
1.6 Summary and Prospects
References
2 Laser-Arc Hybrid Welding
2.1 Principle, Characteristics and Classification of Laser-Arc Hybrid Welding
2.1.1 Principle of Laser-Arc Hybrid Welding.
2.1.2 Characteristics of Laser-Arc Hybrid Welding.
2.1.3 Classification of Laser-Arc Hybrid Welding
2.2 Physical Mechanism of Laser-Arc Hybrid Welding
2.2.1 Physical Effects of Laser-Arc Hybrid Welding
2.2.2 Effect of Laser on Arc
2.2.3 Effect of Arcs on Laser
2.2.4 Role of Laser-Arc Separation
2.2.5 Spectral Characteristics of Laser-Arc Welding
2.3 Molten Pool Flow and Dynamic Behavior of Keyhole
2.4 Control of Weld Formation and Porosity in Laser-Arc Welding
2.4.1 Weld Formation
2.4.2 Weld Porosity
2.5 Applications for Laser-Arc Welding
2.5.1 Application of Laser-Arc Hybrid Welding in Shipbuilding Industry
2.5.2 Application of Laser-Arc Hybrid Welding in the Field of Construction Machinery
2.5.3 Laser-Arc Hybrid Welding in the Field of Transportation
2.6 Summary and Prospects
References
3 Electron Beam Welding
3.1 The Basic Principles of Electron Beam Welding
3.1.1 Development of Electron Beam Welding
3.1.2 Working Procedure of Electron Beam Welding
3.1.3 Characteristics of Electron Beam Welding
3.2 Electron Beam Welding Equipment
3.2.1 Components of Electron Beam Welding Machine
3.2.2 Classification of Electron Beam Welding Equipment
3.3 Process of Electron Beam Welding
3.3.1 Welding Parameters for Electron Beam Welding
3.3.2 Process of Deep Fusion Welding
3.4 Applications for Electron Beam Welding
3.4.1 Electron Beam Welding of Large Thick Parts
3.4.2 Applications of Electron Beam Welding in Aerospace
3.4.3 Applications in the Electronics and Instrumentation Industry
3.4.4 Application in the Production of Automotive Parts
3.5 Other Electron Beam Processing Method
3.5.1 Electron Beam Cutting
3.5.2 Electron Beam Surface Modification
3.5.3 Electron Beam Etching
3.5.4 Electron Beam Additive Manufacturing
3.6 Summary and Prospects
References
4 Friction Stir Welding
4.1 Principle, Characteristics and Classification of Friction Stir Welding
4.1.1 Principle of Friction Stir Welding
4.1.2 Characteristics of Friction Stir Welding
4.1.3 Classification of Friction Stir Welding
4.2 Parameters of Friction Stir Welding
4.2.1 Tool Rotational Speed
4.2.2 Welding Speed
4.2.3 Tilt Angle and Axial Force
4.3 Tool Designs of FSW
4.3.1 Tool Geometry
4.3.2 Tool Materials
4.4 Friction Stir Welding of Various Materials
4.4.1 Friction Stir Welding of Aluminum Alloys
4.4.2 Friction Stir Welding of Magnesium Alloys
4.4.3 Friction Stir Welding of Titanium Alloy
4.4.4 Friction Stir Welding of Steel
4.4.5 Friction Stir Welding of Dissimilar Materials
4.5 Applications of Friction Stir Welding
4.5.1 Application of Friction Stir Welding in Aerospace
4.5.2 Application of Friction Stir Welding in Automobile Manufacturing
4.5.3 Application of Friction Stir Welding in Marine Ships
4.6 Other Friction Stir Processing Methods
4.6.1 Friction Stir Spot Welding
4.6.2 Friction Stir Lap Welding
4.6.3 Stationary Shoulder Friction Stir Welding
4.6.4 Self-reacting Friction Stir Welding
4.6.5 Friction Stir Additive Manufacturing
4.6.6 Robotic Friction Stir Welding
4.7 Summary and Prospects
References
5 Narrow Gap Welding
5.1 Principle. Characteristics and Classification of Narrow Gap Welding
5.1.1 Definition and Characteristics of Narrow Gap Welding
5.1.2 Advantages and Disadvantages of Narrow Gap Welding
5.1.3 Classification of Narrow Gap Welding
5.2 Narrow Gap GTAW
5.3 Narrow Gap GMAW
5.4 Narrow Gap SAW
5.5 Narrow Gap Laser Welding
5.6 Summary and Prospects
References
6 Underwater Welding
6.1 Characteristics and Methods of Underwater Welding
6.1.1 Characteristics of Underwater Welding
6.1.2 Classification of Underwater Welding
6.2 Underwater Wet Welding
6.2.1 Underwater Wet Arc Welding
6.2.2 Underwater Wet Laser Welding
6.2.3 Underwater Wet Friction Stir Welding
6.2.4 Underwater Wet Submerged Arc Welding
6.2.5 Underwater Explosive Welding
6.3 Underwater Dry Welding
6.3.1 Hyperbaric Underwater Dry Welding
6.3.2 Atmospheric Underwater Dry Welding
6.4 Underwater Local Dry Welding
6.4.1 Underwater Local Dry GMAW
6.4.2 Underwater Local Dry GTAW
6.4.3 Underwater Local Dry Laser Welding
6.5 Summary and Prospects
References
7 Development of the Traditional Welding Process
7.1 Cold Metal Transfer Welding
7.1.1 Introduction
7.1.2 Cold Metal Transfer Process
7.1.3 Operation Principle of CMT
7.1.4 Characteristics of CMT
7.1.5 Applications of CMT
7.1.6 Classification of CMT
7.2 Hot-Wire GMAW/GTAW Welding
7.2.1 Hot-Wire GMAW Welding
7.2.2 Hot-Wire GTAW Welding
7.3 Tandem and Multi-wire Welding Process
7.3.1 Tandem GMAW Welding
7.3.2 Multi-wire Welding
7.4 Plasma Arc Welding
7.4.1 Introduction
7.4.2 Plasma Arc Welding Equipment
7.4.3 Advantages of Plasma Arc Welding.
7.4.4 Disadvantages of Plasma Arc Welding
7.4.5 Principles of Operation of Plasma Arc Welding
7.5 Summary and Prospects
References

