Produktbild: Applied Nanoindentation in Advanced Materials

Applied Nanoindentation in Advanced Materials

205,99 €

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Beschreibung

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

30.10.2017

Herausgeber

Atul Tiwari + weitere

Verlag

John Wiley & Sons Inc

Seitenzahl

704

Maße (L/B/H)

24,6/17,3/3,8 cm

Gewicht

1474 g

Auflage

1. Auflage

Sprache

Englisch

ISBN

978-1-119-08449-5

Beschreibung

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

30.10.2017

Herausgeber

Verlag

John Wiley & Sons Inc

Seitenzahl

704

Maße (L/B/H)

24,6/17,3/3,8 cm

Gewicht

1474 g

Auflage

1. Auflage

Sprache

Englisch

ISBN

978-1-119-08449-5

Herstelleradresse

Libri GmbH
Europaallee 1
36244 Bad Hersfeld
DE

Email: GPSR Kontakt

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  • Produktbild: Applied Nanoindentation in Advanced Materials
  • List of Contributors xvii
     
    Preface xxiii
     
    Part I 1
     
    1 Determination of Residual Stresses by Nanoindentation 3
    P-L. Larsson
     
    1.1 Introduction 3
     
    1.2 Theoretical Background 5
     
    1.3 Determination of Residual Stresses 12
     
    1.3.1 Low Hardening Materials and Equi-biaxial Stresses 12
     
    1.3.2 General Residual Stresses 13
     
    1.3.3 Strain-hardening Effects 15
     
    1.3.4 Conclusions and Remarks 15
     
    References 16
     
    2 Nanomechanical Characterization of Carbon Films 19
    Ben D. Beake and TomaszW. Liskiewicz
     
    2.1 Introduction 19
     
    2.1.1 Types of DLC Coatings and their Mechanical Properties 19
     
    2.1.2 Carbon Films Processing Methods 20
     
    2.1.3 Residual Stresses in Carbon Films 21
     
    2.1.4 Friction Properties of Carbon Films 22
     
    2.1.5 Multilayering Strategies 23
     
    2.1.6 Applications of Carbon Films 24
     
    2.1.7 Optimization/testing Challenges 24
     
    2.2 Factors Influencing Reliable and Comparable Hardness and Elastic Modulus Determination 24
     
    2.2.1 The International Standard for Depth-sensing Indentation: EN ISO 14577-4 : 2007 24
     
    2.2.2 Challenges in Ultra-thin Films 27
     
    2.2.3 Indenter Geometry 28
     
    2.2.4 Surface Roughness 28
     
    2.3 Deformation in Indentation Contact 30
     
    2.3.1 The Relationship Between H/E and Plastic and ElasticWork in Nanoindentation 30
     
    2.3.2 Variation in H/E and Plasticity Index for Different DLC Films 31
     
    2.3.3 Cracking and Delamination 32
     
    2.3.4 Coatings on Si: Si Phase Transformation 33
     
    2.4 Nano-scratch Testing 34
     
    2.4.1 Scan Speed and Loading Rate 35
     
    2.4.2 Influence of Probe Radius 36
     
    2.4.3 Contact Pressure 36
     
    2.4.4 Role of the Si Substrate in Nano-scratch Testing 38
     
    2.4.5 Failure Behaviour of ta-C on Si 40
     
    2.4.6 Film Stress and Thickness 43
     
    2.4.7 Repetitive Nano-wear by Multi-pass Nano-scratch Tests 44
     
    2.4.8 Load Dependence of Friction 46
     
    2.5 Impact and Fatigue Resistance of DLC Films Using Nano-impact Testing 46
     
    2.5.1 Compositionally Graded a-C and a-C:H Coatings on M42 Tool Steel 49
     
    2.5.2 DLC/Cr Coating on Steel 51
     
    2.5.3 PACVD a-C:H Coatings on M2 Steel 51
     
    2.5.4 DLC Films on Si-film Thickness, Probe Geometry, Impact Force and Interfacial Toughness 52
     
    2.6 Wear Resistance of Amorphous Carbon Films Using Nano-fretting Testing 54
     
    2.6.1 Nano-fretting: State-of-the-art 55
     
    2.6.2 Nano-fretting of Thin DLC Films on Si 55
     
    2.6.3 Nano-fretting of DLC Coatings on Steel 57
     
    2.7 Conclusion 58
     
    References 59
     
    3 Mechanical Evaluation of Nanocoatings under Extreme Environments for Application in Energy Systems 69
    E.J. Rubio, G. Martinez, S.K. Gullapalli, M. Noor-A-Alam and C.V. Ramana
     
    3.1 Introduction 69
     
    3.2 Thermal Barrier Coatings 70
     
    3.2.1 Nanoindentation Characterization of TBCs 72
     
    3.2.2 Mechanical Properties of Hafnium-based TBCs 74
     
    3.3 Nanoindentation Evaluation of Coatings for Nuclear Power Generation Applications 76
     
    3.3.1 Evaluation ofW-based Materials for Nuclear Application 77
     
    3.4 Conclusions and Outlook 80
     
    Acknowledgments 81
     
    References 81
     
    4 Evaluation of the Nanotribological Properties of Thin Films 83
    ShojiroMiyake and MeiWang
     
    4.1 Introduction 83
     
    4.2 Evaluation Methods of Nanotribology 83
     
    4.3 Nanotribology Evaluation Methods and Examples 84
     
    4.3.1 Nanoindentation Evaluation 84
     
    4.3.2 Nanowear and Friction Evaluation 88