State-of-the-art review of fabrication, application, and mechanical properties of functionally graded porous nanocomposite materials

Ismail Barbaros, Yongmin Yang*, Babak Safaei*, Zhicheng Yang, Zhaoye Qin, Mohammed Asmael

*Corresponding author for this work

Research output: Contribution to journalReview articlepeer-review

102 Citations (Scopus)
36 Downloads (Pure)

Abstract

Functionally graded porous (FGP) nanocomposites are the most promising materials among the manufacturing and materials sector due to their adjustable physical, mechanical, and operational properties for distinctive engineering applications for maximized efficiency. Therefore, investigating the underlying physical and materialistic phenomena of such materials is vital. This research was conducted to analyze the preparation, fabrication, applications, and elastic properties of functionally graded materials (FGMs). The research investigated for both porous and nonporous synthesis, preparation, and manufacturing methods for ceramics, metallic, and polymeric nanocomposites in the first section, which is followed by deep research of the development of elastic properties of the above-mentioned materials. Main nano-reinforcing agents used in FGMs to improve elastic properties were found to be graphene platelets, carbon nanotubes, and carbon nanofibers. In addition, research studied the impact of nano-reinforcing agent on the elastic properties of the FGMs. Shape, size, composition, and distribution of nano-reinforcing agents were analyzed and classified. Furthermore, the research concentrated on modeling of FGP nanocomposites. Extensive mathematical, numerical, and computational modeling were analyzed and classified for different engineering analysis types including buckling, thermal, vibrational, thermoelasticity, static, and dynamic bending. Finally, manufacturing and design methods regarding different materials were summarized. The most common results found in this study are that the addition of reinforcement units to any type of porous and nonporous nanocomposites significantly increases materialistic and material properties. To extend, compressive and tensile stresses, buckling, vibrational, elastic, acoustical, energy absorption, and stress distribution endurance are considerably enhanced when reinforcing is applied to porous and nonporous nanocomposite assemblies. Ultimately, the review concluded that the parameters such as shape, size, composition, and distribution of the reinforcing units are vital in terms of determining the final mechanical and materialistic properties of nanocomposites.

Original languageEnglish
Pages (from-to)321-371
Number of pages51
JournalNanotechnology Reviews
Volume11
Issue number1
DOIs
Publication statusPublished - 07 Jan 2022
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2022 Ismail Barbaros et al., published by De Gruyter.

Keywords

  • fabrication
  • functionally graded material
  • mechanical properties
  • nanocomposites
  • porous material
  • synthesis

ASJC Scopus subject areas

  • Biotechnology
  • Medicine (miscellaneous)
  • Materials Science (miscellaneous)
  • Energy Engineering and Power Technology
  • Engineering (miscellaneous)
  • Process Chemistry and Technology

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