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_aTS183.25 _b.A48 2024 |
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| 082 | 0 | 0 |
_223 _a621.988 |
| 245 | 0 | 0 |
_aAdvances in additive manufacturing / _cedited by Sandip Kunar, Jagadeesha T., S. Rama Sree, K.V.S.R. Murthy, and M. Sreenivasa Reddy. |
| 264 | 1 |
_aHoboken, NJ : _bWiley ; _aBeverly, MA : _bScrivener, _c2024. |
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| 264 | 4 | _c©2024 | |
| 300 | _a1 online resource | ||
| 336 |
_atext _btxt _2rdacontent |
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| 337 |
_acomputer _bc _2rdamedia |
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| 338 |
_aonline resource _bcr _2rdacarrier |
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| 490 | 0 | _aAdvances in production engineering | |
| 504 | _aIncludes bibliographical references and index. | ||
| 505 | 0 | _aCover -- Series Page -- Title Page -- Copyright Page -- Contents -- Preface -- Acknowledgment -- Chapter 1 Fundamentals and Applications of Additive Manufacturing -- 1.1 Basics and Definitions -- 1.1.1 Additive Manufacturing -- 1.1.2 Theory of Layer-Based Technology -- 1.1.3 Additive Manufacturing (AM) -- 1.2 Application Levels -- 1.2.1 Direct Processes -- 1.2.1.1 Rapid Prototyping -- 1.2.1.2 Rapid Manufacturing -- 1.2.1.3 Rapid Tooling -- 1.3 Application Levels -- Indirect Processes -- 1.3.1 Indirect Prototyping -- 1.3.2 Indirect Tooling -- 1.3.3 Indirect Manufacturing | |
| 505 | 8 | _a1.4 Machines for Additive Manufacturing -- 1.5 Conclusions -- References -- Chapter 2 Characteristics of Additive Manufacturing Process -- 2.1 Basic Principles -- 2.2 Generation of Layer Information -- 2.2.1 Description of the Geometry by a 3D Data Record -- 2.2.1.1 Data Flow and Interfaces -- 2.2.1.2 Modeling by 3D CAD -- 2.2.1.3 Creating 3D Models from Measurements -- 2.2.2 Creation of Geometrical Layer Information on Single Layers -- 2.2.2.1 STL Format -- 2.2.2.2 CLI/SLC Format -- 2.2.2.3 PLY and VRML Formats -- 2.2.2.4 AMF Format -- 2.3 Physical Principles for Layer Formation | |
| 505 | 8 | _a2.3.1 Solidification of Liquid Materials -- 2.3.1.1 Photopolymerization-Stereolithography (SL) -- 2.3.1.2 Fundamentals of Polymerization -- 2.3.2 Creation from the Solid Phase -- 2.3.2.1 Melting and Solidification of Powders and Granules -- 2.3.2.2 Cutting from Foils: Layer Laminate Manufacturing (LLM) -- 2.3.2.3 Extrusion and Ballistic Methods -- 2.3.2.4 Conglutination of Granules and Binders: 3D Printing -- 2.3.3 Solidification from the Gas Phase -- 2.3.3.1 Aerosol Printing Method -- 2.3.3.2 Laser Chemical Vapor Deposition (LCVD) -- 2.3.4 Other Processes | |
| 505 | 8 | _a2.4 Summary Evaluation of Rapid Prototyping Methods -- 2.4.1 Materials -- 2.4.2 Model Properties -- 2.4.3 Accuracy -- 2.4.4 Surface Quality -- 2.4.5 Development Potential -- 2.4.6 3D Model Generation -- 2.5 Conclusion -- References -- Chapter 3 Directed Energy Deposition (DED) Process -- 3.1 Introduction -- 3.2 Direct Energy Deposition (DED) -- 3.2.1 Principles and Mechanisms -- 3.2.2 Overview of Powder DED and Wire DED Process -- 3.2.2.1 Wire Feeding Type DED Processes -- 3.2.2.2 Applications of WAAM -- 3.2.3 Wire and Laser Additive Manufacturing (WLAM) Process -- 3.2.3.1 Powder Delivery Nozzles | |
| 505 | 8 | _a3.2.3.2 Applications of WLAM -- 3.2.4 Wire and Electron Beam Additive Manufacturing (WEBAM) Process -- 3.2.4.1 Applications of WEAM -- 3.3 Materials Used in the DED Process -- 3.3.1 Process Parameters -- 3.4 Hybrid DED Process -- 3.5 In Situ Monitoring in DED -- 3.6 Case Studies -- 3.7 Limitations and Challenges -- 3.8 Applications of DED Process -- Summary -- References -- Chapter 4 Current Progress and Future Perspectives of Biomaterials in 3D Bioprinting -- 4.1 Introduction -- 4.1.1 Biomaterial Combinations for 3D Bioprinting -- 4.2 Biomaterials Used in Designing a Bioink | |
| 520 | _aThis volume focuses on the fundamentals of additive manufacturing and its components, explains why and what we do, outlines what is crucial to the user, offers details on important applications such as in the aerospace, automotive, or medical areas, and the difficult certification process. This book explores the advancements in additive manufacturing which produces solid, free-form, nearly net-shaped objects. This refers to items that are easy to use, out-of-the-box, and not bound by the design constraints of modern manufacturing techniques. AM expands the definition of 3D printing to encompass a variety of procedures that begin with a three-dimensional computer model, incorporate an AM production procedure, and result in a useful product. The AM process can be confusing due to the rapid rise of competing techniques for fabricating 3D parts. This volume provides a thorough review of the basic components and procedures involved in additive manufacturing. It outlines a road map for where to begin, what to study, how everything goes together, and how AM might enable ideas outside traditional processing to realize those ideas in AM. Furthermore, this book investigates the benefits of AM including affordable access to 3D solid modeling software. With this software, learning is achieved without having to invest in costly industrial equipment. AM encompasses a variety of techniques, including those that use high-intensity beams to fuse powder or wire, and hybrid techniques that combine additive and subtractive manufacturing techniques. AM-related processes have developed at breakneck speed, giving rise to a deluge of acronyms and terminology, not to mention the emergence, acquisition, and demise of new businesses. By combining ideas and aspirations, better methods will be revealed that result in useful products that will serve and contribute to a lasting future. Although expensive commercial additive manufacturing equipment can cost hundreds of thousands to millions of dollars, a lack of access to equipment does not preclude the study of the technology. 3D printing services will undoubtedly become more reasonable for small- and medium-sized organizations as their prices decline. Hybrid 3D plastic printing technologies and low-cost hobbyist 3D weld deposition systems are already in development which will make the best 3D printers accessible and affordable. This book will assist the reader in determining what is required to begin, which software, supplies, and procedures best suit, and where to obtain additional information. Audience The book will be used by engineers and R&D researchers involved in advanced additive manufacturing technology, postgraduate students in various disciplines such as mechanical, manufacturing, biomedical, and industrial engineering, etc. It will also serve as a reference manual for manufacturing and materials engineers involved in additive manufacturing and product development. | ||
| 588 | _aDescription based on online resource; title from digital title page (viewed on October 15, 2024). | ||
| 650 | 0 |
_aAdditive manufacturing. _0http://id.loc.gov/authorities/subjects/sh2020000052 |
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| 650 | 6 | _aFabrication additive. | |
| 650 | 7 |
_aMechanical. _2bisacsh/2023 |
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| 650 | 7 |
_aTECHNOLOGY & ENGINEERING. _2bisacsh/2023 |
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| 650 | 7 |
_aMechanical. _2bisacsh/2024 |
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| 650 | 7 |
_aTECHNOLOGY & ENGINEERING. _2bisacsh/2024 |
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| 655 | 0 | _aElectronic books. | |
| 700 | 1 |
_aKunar, Sandip, _eeditor. _0http://id.loc.gov/authorities/names/no2023113514 |
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| 776 | 0 | 8 |
_iPrint version: _z1394238282 _z9781394238286 _w(OCoLC)1411219863 |
| 856 | 4 | 0 |
_uhttps://onlinelibrary.wiley.com/doi/book/10.1002/9781394238316 _yFull text is available at Wiley Online Library. Click here to view. |
| 942 |
_2ddc _cER |
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