
- 308 pages
- English
- ePUB (mobile friendly)
- Available on iOS & Android
Material Modeling in Finite Element Analysis
About this book
Finite element analysis has been widely applied in mechanical, civil, and biomedical designs. This new edition provides the readers with comprehensive views of various material models through practical examples, which will help them better understand various materials and build appropriate material models in finite element analysis. Material Modeling in Finite Element Analysis, Second Edition, consists of four main parts: (1) metals, (2) polymers, (3) soils, and (4) modern materials. Each part starts with the structure and function of different materials and then follows the corresponding material models and the temperature and time effects on the material models. The final part focuses on user subroutines such as UserMat and UserHyper. This book presents some specific problems including the metal-forming process, combustion room, Mullins effect of rubber tires, viscoelasticity of liver soft tissues, small punch test, tunnel excavation, slope stability, concrete slump test, orthodontic wire, and piezoelectric microaccelerometer. All modeling files are provided in the appendices of this book. This book would be helpful for graduate students and researchers in the mechanical, civil, and biomedical fields who conduct finite element analysis. This book provides all readers with a comprehensive understanding of modeling various materials.
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Information
Table of contents
- Cover
- Half Title
- Title Page
- Copyright Page
- Table of Contents
- Preface
- Chapter 1 Introduction
- Part I Metal
- Part II Polymers
- Part III Soil
- Part IV Modern Materials
- Part V Retrospective
- Appendix 1 Input File of Curve-Fitting of the Chaboche Model in Section 3.2
- Appendix 2 Input File of the Ratcheting Model in Section 3.2
- Appendix 3 Input File of the Forming Process Model in Section 4.1
- Appendix 4 Input File of the Bolt Model under Pretension in Section 4.2
- Appendix 5 Input File of the Combustion Chamber Model in Section 5.2
- Appendix 6 UserMat of Strain-Hardening Model in Section 6.2
- Appendix 7 Input File of the Uniaxial Test with Strain-Hardening Model in Section 6.2
- Appendix 8 Input File of Curve-Fitting of the Ogden Model in Section 8.3
- Appendix 9 Input File of the Liver Soft Tissue Model in Section 9.1
- Appendix 10 Input File of the Stress Evolution of Glass Tube in Section 9.2
- Appendix 11 Input File of the Small Punch Test in Section 10.2
- Appendix 12 Input File of the Rubber Tire Damage Model in Section 11.3
- Appendix 13 Input File of the Breast Tumor Model in Section 12.2
- Appendix 14 Input File of the Soil Excavation in Section 14.3
- Appendix 15 Input File of the Tower Subsidence Model in Section 14.4
- Appendix 16 Input File of the Concrete Slump Test in Section 15.2
- Appendix 17 Input File of the Soil-Arch Interaction Model in Section 15.3
- Appendix 18 Input File of the Concrete Slump Test in Section 16.3
- Appendix 19 Input File of the Slope Stability Model in Section 16.4
- Appendix 20 Input File of the Tunnel Excavation Model in Section 17.3
- Appendix 21 Input File of One-Dimensional Terzaghi’s Problem in Section 18.3
- Appendix 22 Input File of the Settlement Model in Section 18.4
- Appendix 23 Input File of the Composite Damage Model in Section 19.3
- Appendix 24 Input File of the SLB Model in Section 19.4
- Appendix 25 Input File of the Spur Gear Model with FGM in Section 20.3
- Appendix 26 Input File of the Orthodontic Wire Model in Section 21.2
- Appendix 27 Input File of the Vacuum Tight Shape Memory Flange Model in Section 21.3
- Appendix 28 Input File of the Piezoelectric Microaccelerometer Model in Section 22.4
- Appendix 29 Input File of the Contact Model in Section 23.2
- Index