A Polymer-Based Metallurgical Route to Produce Aluminum Metal-Matrix Composite with High Strength and Ductility

Author:

Gutta Bindu1,Huilgol Prashant2,Perugu Chandra S.3,Kumar Govind1ORCID,Reddy S. Tejanath3ORCID,Toth Laszlo S.456ORCID,Bouaziz Olivier5,Kailas Satish V.12ORCID

Affiliation:

1. Centre for Product Design and Manufacturing, Indian Institute of Science, Bangalore 560012, India

2. Department of Mechanical Engineering, Indian Institute of Science, Bangalore 560012, India

3. Department of Materials Engineering, Indian Institute of Science, Bangalore 560012, India

4. Laboratory of Excellence on Design of Alloy Metals for Low-Mass Structure (Labex-DAMAS), Lorraine University, 57070 Metz, France

5. Laboratoire d’Etude des Microstructures et de Mécanique des Matériaux, UMR 7239, CNRS/Université de Lorraine, 57070 Metz, France

6. Institute of Physical Metallurgy, Metal-Forming and Nanotechnology, University of Miskolc, 3515 Miskolc, Hungary

Abstract

In this investigation, an attempt was made to develop a new high-strength and high-ductility aluminum metal–matrix composite. It was achieved by incorporating ceramic reinforcement into the metal which was formed in situ from a polymer by pyrolysis. A crosslinked PMHS polymer was introduced into commercially pure aluminum via friction stir processing (FSP). The distributed micro- and nano-sized polymer was then converted into ceramic particles by heating at 500 °C for 10 h and processed again via FSP. The produced composite showed a 2.5-fold increase in yield strength (to 119 MPa from 48 MPa) and 3.5-fold increase in tensile strength (to 286 MPa from 82 MPa) with respect to the base metal. The ductility was marginally reduced from 40% to 30%. The increase in strength is attributed to the grain refinement and the larger ceramic particles. High-temperature grain stability was obtained, with minimal loss to mechanical properties, up to 500 °C due to the Zenner pinning effect of the nano-sized ceramic particles at the grain boundaries. Fractures took place throughout the matrix up to 300 °C. Above 300 °C, the interfacial bonding between the particle and matrix became weak, and fractures took place at the particle–matrix interface.

Funder

National Research, Development and Innovation Office

National Research Agency

Publisher

MDPI AG

Subject

General Materials Science

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