Improving Mechanical Properties of Nano-Sized Tic Particle Reinforced Aa7075 Al Alloy Composites Produced by Ball Milling and Hot Pressing

Loading...
Thumbnail Image

Date

2021

Authors

Şavklıyıldız, İlyas

Journal Title

Journal ISSN

Volume Title

Publisher

ELSEVIER

Open Access Color

Green Open Access

No

OpenAIRE Downloads

OpenAIRE Views

Publicly Funded

No
Impulse
Top 1%
Influence
Top 10%
Popularity
Top 1%

Research Projects

Journal Issue

Abstract

Considering commonly employed carbide particles, titanium carbide (TiC) is regarded as an excellent reinforcement material due to its superior physical and mechanical characteristics and particularly appropriate interfacial bonding (wetting) ability with aluminum. In this study, 5 wt.% nanoparticle titanium carbide (TiCNP) reinforced AA7075 alloy composites were produced by ball milling and hot pressing. The effects of milling time (15 min, 1 h, 1.5 h, 2 h, 10 h) on the morphologic and crystallographic properties of powders were characterized by scanning electron microscopy, particle size analysis, X-ray diffraction, and high-resolution transmission electron microscopy. It was observed that particle size and morphology varied with milling time. The results indicated that the TiCNP were gradually dispersed into the matrix as ball-milling time increased and achieved a uniform dispersion after 2 h of milling. Consolidation of the milled powders was performed via hot pressing under 400 MPa and 430 degrees C for 30 min. The effect of milling time on the microstructural and mechanical properties of the bulk TiCNP/AA7075 composites was evaluated in terms of grain formation behavior, hardness, tensile strength, and relative density results. The results revealed that three times enhanced hardness value (277.55 HB) was achieved in a 10 h milled and hot-pressed sample than initial AA7075 alloy (94.43 HB) because of the hardened nanoparticles' homogeneous distribution within the matrix along with the increment in milling time. Tensile tests showed that the 1 h milled TiCNP/AA7075 composite's ultimate tensile strength (284.46 MPa) was increased by 40 % compared with the initial AA7075 alloy (210.24 MPa). Considering test results, it was determined that the hardness values increased as a function of the milling time, but the optimum milling time, which means achieving the highest tensile strength value, was determined as 1 h. This continuous increase in hardness is attributed to the homogeneous distribution of nanoparticles within the matrix, and increased hardness of particles originated from the severe plastic deformation due to advancing milling time. However, the incoherent variation of tensile strength values with milling time suggests that the increased hardness of particles and the changes in particle morphology after 1 h of milling deteriorates the sinterability and packing properties of the powders.

Description

Keywords

Aa7075, Ticnp, Mechanical Alloying, Milling Time, Microstructure Characterization, Packing Density, Mechanical Properties, Metal-Matrix Composites, 7075 Aluminum-Alloy, Powder-Metallurgy, Zno Nanoparticles, Microstructure, Behavior, Consolidation, Fabrication, Morphology, Dispersion

Turkish CoHE Thesis Center URL

Fields of Science

0203 mechanical engineering, 02 engineering and technology

Citation

WoS Q

Q2

Scopus Q

Q2
OpenCitations Logo
OpenCitations Citation Count
55

Source

MATERIALS TODAY COMMUNICATIONS

Volume

27

Issue

Start Page

102202

End Page

PlumX Metrics
Citations

CrossRef : 63

Scopus : 97

Captures

Mendeley Readers : 72

SCOPUS™ Citations

92

checked on Feb 03, 2026

Web of Science™ Citations

84

checked on Feb 03, 2026

Google Scholar Logo
Google Scholar™
OpenAlex Logo
OpenAlex FWCI
9.14288781

Sustainable Development Goals

SDG data is not available