Advanced Approaches Applied to Materials Development and Design Predictions
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ArticlePublication details: MDPI - Multidisciplinary Digital Publishing Institute 2020Description: 1 electronic resource (164 p.)Content type: - text
- computer
- online resource
- 9783039284122
- 9783039284139
- Technology, Engineering, Agriculture, Industrial processes
- Technology: general issues
- History of engineering and technology
- AISI 304
- Bi4Ti3O12 ceramics
- J-integral
- PSO-BP Neural Network
- R-ratio
- adhesion
- adsorption
- advanced testing and statistics
- alternating current potential drop (ACPD)
- aluminum chip solid state recycling
- amorphization
- bladed disk
- composite coating
- copper current collector
- crack closure
- crack growth rate
- crack paths
- crack propagation
- damage
- degradation
- delamination
- dual-phase TC11 titanium alloy
- energy approach
- extremum response surface method
- failure mechanisms
- fatigue
- fatigue crack growth
- fatigue creep
- fatigue development
- finite element analysis
- first-principles method
- fractography
- full-scale static test
- fuzzy theory
- generalized Paris' Law
- generalized regression neural network
- hot extrusion
- impact resistance
- indentation behavior
- intermittent computed tomography
- laser shock peening
- lithium-ion batteries
- low cycle fatigue life
- materials technology
- mean stress effect
- mechanical properties
- mixed-mode fracture
- multi-extremum response surface method
- nanocrystallization
- polyurea
- power generation systems and technologi
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This thematic issue on advanced simulation tools applied to materials development and design predictions gathers selected extended papers related to power generation systems, presented at the XIX International Colloquium on Mechanical Fatigue of Metals (ICMFM XIX), organized at University of Porto, Portugal, in 2018. In this issue, the limits of the current generation of materials are explored, which are continuously being reached according to the frontier of hostile environments, whether in the aerospace, nuclear, or petrochemistry industry, or in the design of gas turbines where efficiency of energy production and transformation demands increased temperatures and pressures. Thus, advanced methods and applications for theoretical, numerical, and experimental contributions that address these issues on failure mechanism modeling and simulation of materials are covered. As the Guest Editors, we would like to thank all the authors who submitted papers to this Special Issue. All the papers published were peer-reviewed by experts in the field whose comments helped to improve the quality of the edition. We also would like to thank the Editorial Board of Materials for their assistance in managing this Special Issue.
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