Phase Transformation of Manganese Steel: A Role of Alloying Elements

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Year : August 21, 2024 at 3:57 pm | [if 1553 equals=””] Volume :14 [else] Volume :14[/if 1553] | [if 424 equals=”Regular Issue”]Issue[/if 424][if 424 equals=”Special Issue”]Special Issue[/if 424] [if 424 equals=”Conference”][/if 424] : 02 | Page : 15-20

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Amit Tiwari, Pravin Sharma1, Vivek Patel1, Adarsh Kr Singh1,

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  1. Assistant Professor, Student, student, Student Department of Mechanical Engineering, Suresh Gyan Vihar University, Jaipur, Department of Mechanical Engineering, Suresh Gyan Vihar University, Jaipur, Department of Mechanical Engineering, Suresh Gyan Vihar University, Jaipur, Department of Mechanical Engineering, Suresh Gyan Vihar University, Jaipur Rajasthan, Rajasthan, Rajasthan, Rajasthan India, India, India, India
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Abstract

nLow alloyed steels that are both strong and ductile are the primary focus of new material concept work due to economic considerations. One key to making good use of these materials is applying the right heat and thermo mechanical treatments. Phase transitions can be influenced by using different alloying procedures. Microstructural evolution and mechanical characteristics were investigated in relation to varying manganese, silicon, and chromium levels. Developing high-strength flat rolled steels that combine a sufficient elongation with a high tensile strength is a major focus of contemporary sheet steel research. Because the formability of most engineering materials decreases with increasing strength, it is extremely challenging to obtain a material with both high tensile strength and good elongation. Due of their impact on the microstructure and strength, the alloying elements’ selection is crucial. The largest contribution of the steel composition is related to the effect of alloying elements on the microstructure, which determines most of the mechanical properties of the final product. The objective of the study is the alloying effects of Mn on the corrosion properties of low carbon steels in sulfuric acid were examined through surface analyses.

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Keywords: Low carbon steel, ultrafine-grained material, martensite structure, phase transformation, manganese steel

n[if 424 equals=”Regular Issue”][This article belongs to Trends in Mechanical Engineering & Technology(tmet)]

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[/if 424][if 424 equals=”Special Issue”][This article belongs to Special Issue under section in Trends in Mechanical Engineering & Technology(tmet)][/if 424][if 424 equals=”Conference”]This article belongs to Conference [/if 424]

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How to cite this article: Amit Tiwari, Pravin Sharma1, Vivek Patel1, Adarsh Kr Singh1. Phase Transformation of Manganese Steel: A Role of Alloying Elements. Trends in Mechanical Engineering & Technology. August 21, 2024; 14(02):15-20.

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How to cite this URL: Amit Tiwari, Pravin Sharma1, Vivek Patel1, Adarsh Kr Singh1. Phase Transformation of Manganese Steel: A Role of Alloying Elements. Trends in Mechanical Engineering & Technology. August 21, 2024; 14(02):15-20. Available from: https://journals.stmjournals.com/tmet/article=August 21, 2024/view=0

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[if 424 not_equal=””]Regular Issue[else]Published[/if 424] Subscription Review Article

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Volume 14
[if 424 equals=”Regular Issue”]Issue[/if 424][if 424 equals=”Special Issue”]Special Issue[/if 424] [if 424 equals=”Conference”][/if 424] 02
Received June 21, 2024
Accepted June 23, 2024
Published August 21, 2024

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