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" Shape Memory Materials / "
Arun D I, Chakravarthy P, Arockia Kumar R, Santhosh B.
Document Type
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BL
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Record Number
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840433
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Main Entry
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D. I, Arun
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Title & Author
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Shape Memory Materials /\ Arun D I, Chakravarthy P, Arockia Kumar R, Santhosh B.
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Edition Statement
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First edition.
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Publication Statement
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Boca Raton, FL :: CRC Press,, 2018.
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Page. NO
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1 online resource :: text file, PDF
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ISBN
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1351119923
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: 1351119931
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: 135111994X
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: 9781351119924
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: 9781351119931
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: 9781351119948
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9780815359692
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Bibliographies/Indexes
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Includes bibliographical references and index.
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Contents
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Cover; Half Title; Title; Copyright; Contents; Foreword; Preface; About the Authors; 1: Introduction; 1.1 Smart Materials; 1.2 Stimuli-Responsive Materials; 1.2.1 Piezoelectric Materials; 1.2.2 Quantum Tunneling Composites; 1.2.3 Electrostrictive/Magnetostrictive Materials; 1.2.4 Shape Memory Materials; References; Bibliography; 2: Shape Memory Alloys; 2.1 Shape Memory Effect in Alloys; 2.1.1 One-Way and Two-Way Shape Memory in Alloys; 2.1.2 Superelasticity; 2.2 SMA Properties and Processing; 2.3 Magnetic SMAs; 2.4 Applications of SMAs; 2.5 Challenges in SMAs; References; Bibliography.
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3: Shape Memory Ceramics3.1 SME in Ceramics; 3.1.1 Viscoelastic Mechanism; 3.1.2 Martensitic Transformation Mechanism; 3.1.3 Ferroelectric and Ferromagnetic Mechanism; 3.2 Advantages of SMCs over SMAs; 3.3 Applications of SMCs; References; Bibliography; 4: Shape Memory Gels; 4.1 Shape Memory Effect in Gels; 4.2 Applications of SMGs; References; Bibliography; 5: Shape Memory Polymers; 5.1 Shape Memory Effect in Polymers; 5.2 Mechanism of Shape Memory in Polymeric Materials; 5.3 Transition Temperature; 5.4 One-Way and Two-Way Shape Memory in Polymers; 5.5 Comparison of SMPs and SMAs.
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5.13 Constitutive Models of SMPs5.13.1 Maxwell Model; 5.13.2 Kelvin-Voigt Model; 5.13.3 Standard Linear Solid Model; References; Bibliography; 6: Shape Memory Hybrids; 6.1 Hybrid Materials with Shape Memory Properties; 6.2 Mechanism and Concept; References; Bibliography; 7: Shape Memory Polymer Composites; 7.1 Composite Materials; 7.2 Shape Memory Polymer Composites; 7.2.1 Modulus, Tg, and Shape Recovery; 7.3 Nanomaterial-Reinforced Polymer Composites; 7.4 Elastic Memory Composites; 7.5 Synthesis of SMPCs; 7.6 Thermal and Electrical Properties of SMPCs; 7.7 Applications of SMPCs; References.
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5.6 Response Stimuli5.7 Thermoset and Thermoplastic SMPs; 5.8 Cross-Linking; 5.8.1 Covalently Cross-Linked Glassy Thermosets; 5.8.2 Covalently Cross-Linked Semicrystalline Thermosets; 5.8.3 Physically Cross-Linked Glassy Copolymers; 5.8.4 Physically Cross-Linked Semicrystalline Block Copolymers; 5.9 Wax Analogy of SMPs; 5.10 Molecular Mechanisms in SMPs; 5.11 Self-Healing SMPs; 5.12 Characterization and Testing; 5.12.1 Differential Scanning Calorimetry (DSC); 5.12.2 Thermomechanical Analysis (TMA); 5.12.3 Dynamic Mechanical Analysis (DMA); 5.12.4 Cyclic/Bending Tests.
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Abstract
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"This work addresses the basic principles, synthesis / fabrication and applications of smart materials, specifically shape memory materials. Based on origin, the mechanisms of transformations vary in different shape memory materials and are discussed in different chapters under titles of shape memory alloys, ceramics, gels and polymers. The scenario of composite formation with polymer matrix and reinforcement filler conductive materials leading to the shape morphing / changing / memorizing behavior is discussed in detail with suitable examples. The future prospects of such novel materials is included to kindle the imagination of readers that can lead to further development of smart materials."--Provided by publisher.
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Subject
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Alloys.
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Subject
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Metals.
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Subject
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Alloys.
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Subject
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Metals.
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Subject
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TECHNOLOGY ENGINEERING-- Engineering (General)
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Subject
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TECHNOLOGY ENGINEERING-- Reference.
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Dewey Classification
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WB032
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WB057
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WB075
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[E]
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LC Classification
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TA487
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Added Entry
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B, Santhosh
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P, Chakravarthy
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R, Arockia Kumar
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