Performance and Structural Integrity of Advanced Materials

Authors

  • Ekta Soni

Keywords:

Advanced materials, Structural integrity, Fatigue and fracture, Material performance

Abstract

The study of the performance and structural integrity of advanced materials has emerged as a critical field in modern engineering due to the increasing demand for lightweight, durable, and reliable materials across diverse industries. Conventional materials, though widely used, are often inadequate for applications that require high strength-to-weight ratios, fatigue resistance, and long-term durability under extreme service conditions. Advanced materials such as composites, superalloys, nanomaterials, smart materials, and biomaterials have therefore become essential in aerospace, automotive, biomedical, energy, and defense applications. However, their structural integrity is influenced by complex factors, including microstructural defects, cyclic loading, creep, and fracture propagation, which must be thoroughly investigated to ensure reliability. This study highlights the fundamentals of stress–strain behavior, elasticity, plasticity, failure theories, and time-dependent phenomena such as fatigue and creep, while also integrating modern computational tools and experimental techniques to predict material performance. The research emphasizes the importance of material selection and durability assessment in preventing catastrophic failures and ensuring long-term safety and efficiency. By bridging theoretical concepts with real-world applications, the study contributes to industrial innovation and sustainable technological advancement. Ultimately, the exploration of advanced materials’ performance and structural integrity plays a pivotal role in shaping the future of engineering systems that are safe, efficient, and environmentally responsible.

References

Callister, W. D. & Rethwisch, D. G. (2011). Materials Science and Engineering: An Introduction (8th ed.). John Wiley & Sons.

Budynas, R. G. & Nisbett, J. K. (2011). Shigley’s Mechanical Engineering Design (9th ed.). McGraw-Hill.

Ashby, M. F. (2010). Materials Selection in Mechanical Design (4th ed.). Butterworth-Heinemann.

Dieter, G. E. (2012). Mechanical Metallurgy (3rd ed., SI Metric Edition). McGraw-Hill.

Jones, R. M. (1999). Mechanics of Composite Materials (2nd ed.). Taylor & Francis.

Courtney, T. H. (2005). Mechanical Behavior of Materials (2nd ed.). Waveland Press.

Anderson, T. L. (2005). Fracture Mechanics: Fundamentals and Applications (3rd ed.). CRC Press.

Hertzberg, R. W. (1996). Deformation and Fracture Mechanics of Engineering Materials (4th ed.). John Wiley & Sons.

Meyers, M. A. & Chawla, K. K. (2008). Mechanical Behavior of Materials (2nd ed.). Cambridge University Press.

ASM International (2002). ASM Handbook, Volume 19: Fatigue and Fracture. ASM International, Materials Park, OH.

Downloads

How to Cite

Ekta Soni. (2016). Performance and Structural Integrity of Advanced Materials. International Journal of Engineering, Science and Humanities, 6(4), 09–17. Retrieved from https://www.ijesh.com/index.php/j/article/view/216

Similar Articles

<< < 2 3 4 5 6 7 8 9 10 > >> 

You may also start an advanced similarity search for this article.