Modern Mechanical Engineering

Volume 7, Issue 4 (November 2017)

ISSN Print: 2164-0165   ISSN Online: 2164-0181

Google-based Impact Factor: 1.11  Citations  

Effect of Cooling Conditions on Mechanical and Microstructural Behaviours of Friction Stir Processed AZ31B Mg Alloy

HTML  XML Download Download as PDF (Size: 4691KB)  PP. 144-160  
DOI: 10.4236/mme.2017.74010    1,820 Downloads   4,923 Views  Citations

ABSTRACT

Friction stir processing (FSP) is an important microstructural alteration process used recently in the engineering field. Grains alteration and hence the mechanical properties of the possessed zone are controlled by the temperature, heating and cooling rate. In this work, AZ31B magnesium samples were friction stir processed in three different cooling conditions like air, water and cryogenic (liquid nitrogen) cooling. 1000 rpm and 60 mm/min were kept constant as tool rotation speed and traverse speed respectively in all the three mediums. The consequence of these conditions on thermal fields, axial force, resulting grain structure and mechanical properties was studied. It is found that the cryogenic treated friction stir processed samples exhibit fine grain structures and hence offer better mechanical properties than the air and water cooled processed samples.

Share and Cite:

Ramaiyan, S. , Chandran, R. and Santhanam, S. (2017) Effect of Cooling Conditions on Mechanical and Microstructural Behaviours of Friction Stir Processed AZ31B Mg Alloy. Modern Mechanical Engineering, 7, 144-160. doi: 10.4236/mme.2017.74010.

Cited by

[1] Application Status and Prospects of Friction Stir Processing in Wrought Magnesium Alloys: A Review
… of the Indian Institute of Metals, 2024
[2] Improving the Mechanical and Corrosion Behaviour of Friction Surfaced Aluminium Deposition by Forced Convection Nitrogen Shielding Technique
Journal of The Institution …, 2024
[3] Influence of Cooling Medium on Microstructure and Mechanical Properties in Friction Stir Processing of Magnesium Alloy-A Review
Surface Review and …, 2024
[4] Evaluation of microstructure, mechanical properties, wear resistance and corrosion behaviour of friction stir-processed AZ31B-H24 magnesium alloy
… , Microstructure, and Analysis, 2023
[5] Evolution of Microstructure and Properties of Air-Cooled Friction-Stir-Processed 7075 Aluminum Alloy
Materials, 2022
[6] Microstructure and Corrosion Resistance of AZ91 Magnesium Alloy after Surface Remelting Treatment
Materials, 2022
[7] Advance in Friction Stir Processed Materials
Materials, 2022
[8] New Trends in Friction Stir Processing: Rapid Cooling—A Review
Transactions of the Indian Institute of Metals, 2022
[9] Effect of friction stir processing on the high cycle fatigue behavior of AZ31B alloy
Materials Today: Proceedings, 2022
[10] Evaluation of Weld Quality Through Non-Destructive Testing and Weld Property Analysis of Friction Stir Welded AA2014 Under Submerged Condition
ASME …, 2022
[11] Microstructural Analysis and Tensile Property Studies on Spray Cooled Friction Stir Welded Aluminium Alloy 2014
ASME …, 2021
[12] Experimental investigation of cooling medium on submerged friction stir processed AZ31 magnesium alloy
2021
[13] Wear and Corrosion Behavior of Cryogenic Friction Stir Processed AZ31B Alloy
2021
[14] Microstructure, hardness, and wear resistance of AZ91 magnesium alloy produced by friction stir processing with air-cooling
The International Journal of Advanced Manufacturing …, 2021
[15] Texture and strain-induced abnormal grain growth in cryogenic friction stir processing of severely deformed aluminum alloy
Materials Characterization, 2019
[16] Consequence of reinforced SiC particles and post process artificial ageing on microstructure and mechanical properties of friction stir processed AA7075
2019
[17] Refined Microstructure and Enhanced Hardness in Friction Stir-Welded AZ31 Magnesium Alloy Induced by Heat Pipe with Different Cooling Liquid
2019

Copyright © 2025 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.