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Main Authors: Kalateh, Mohamad Amin, Talebi, Naeime, Nekoei, Soroush, Novini, Mohamad Mahdi, Khodabakhshi, Farzad, Nili-Ahmadabadi, Mahmoud
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2501.14703
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author Kalateh, Mohamad Amin
Talebi, Naeime
Nekoei, Soroush
Novini, Mohamad Mahdi
Khodabakhshi, Farzad
Nili-Ahmadabadi, Mahmoud
author_facet Kalateh, Mohamad Amin
Talebi, Naeime
Nekoei, Soroush
Novini, Mohamad Mahdi
Khodabakhshi, Farzad
Nili-Ahmadabadi, Mahmoud
contents A comprehensive study on thermomechanical processing of pure Mg was conducted through sequential hot extrusion, hot rolling, and cold drawing operations. Three different extrusion ratios (6:1, 25:1, and 39:1) were investigated at 350°C, revealing that 39:1 ratio produced an optimal bimodal grain structure with beneficial twin morphology. Subsequently, hot rolling experiments were performed at varying linear speeds (26- and 130-mm s-1) and interpass annealing times (2.5 and 10 minutes). Results demonstrated that higher rolling speeds led to finer microstructure, while longer interpass annealing times resulted in reduced twin fraction and more inhomogeneous microstructure. The processed material was then subjected to cold drawing with approximately 12% true strain per pass. Different annealing conditions (275°C and 375°C for 2.5-10 minutes) between drawing passes were evaluated. Analysis showed that annealing at 375°C for 2.5-5 minutes provided optimal softening for subsequent deformation. Fracture analysis revealed a mixed ductile-brittle behavior, with twin-matrix interfaces serving as preferred crack propagation paths This study establishes optimal processing parameters for pure Mg wire production, highlighting the critical role of twin characteristics and restoration processes in determining material formability during multi-step thermomechanical processing.
format Preprint
id arxiv_https___arxiv_org_abs_2501_14703
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Thermomechanical Processing of Pure Magnesium: Hot Extrusion, Hot Rolling and Cold Drawing
Kalateh, Mohamad Amin
Talebi, Naeime
Nekoei, Soroush
Novini, Mohamad Mahdi
Khodabakhshi, Farzad
Nili-Ahmadabadi, Mahmoud
Materials Science
A comprehensive study on thermomechanical processing of pure Mg was conducted through sequential hot extrusion, hot rolling, and cold drawing operations. Three different extrusion ratios (6:1, 25:1, and 39:1) were investigated at 350°C, revealing that 39:1 ratio produced an optimal bimodal grain structure with beneficial twin morphology. Subsequently, hot rolling experiments were performed at varying linear speeds (26- and 130-mm s-1) and interpass annealing times (2.5 and 10 minutes). Results demonstrated that higher rolling speeds led to finer microstructure, while longer interpass annealing times resulted in reduced twin fraction and more inhomogeneous microstructure. The processed material was then subjected to cold drawing with approximately 12% true strain per pass. Different annealing conditions (275°C and 375°C for 2.5-10 minutes) between drawing passes were evaluated. Analysis showed that annealing at 375°C for 2.5-5 minutes provided optimal softening for subsequent deformation. Fracture analysis revealed a mixed ductile-brittle behavior, with twin-matrix interfaces serving as preferred crack propagation paths This study establishes optimal processing parameters for pure Mg wire production, highlighting the critical role of twin characteristics and restoration processes in determining material formability during multi-step thermomechanical processing.
title Thermomechanical Processing of Pure Magnesium: Hot Extrusion, Hot Rolling and Cold Drawing
topic Materials Science
url https://arxiv.org/abs/2501.14703