Microstructure Evolution and Mechanical Properties of Laser Welded Dissimilar/Similar Joints Between Medium‐Mn Transformation‐Induced Plasticity Steel and DP980/22MnB5 Steels

Author:

Pan Haijun1,Yu Wangwang1ORCID,Zhang Shunhu2,Zhou Wenhao3,Sun Ze1,Zhang Jun3,Wu Zhiqiang4

Affiliation:

1. School of Mechanical Engineering and Rail Transit Changzhou University Changzhou 213164 Jiangsu China

2. Shagang School of Iron and Steel Soochow University Suzhou 215021 Jiangsu China

3. Hunan Valin Xiangtan Iron & Steel Co., Ltd. Xiangtan 411101 Hunan China

4. Engineering Research Center of Mineral Resources Development Technology and Equipment for Deep Sea and Deep Earth Ministry of Education Hunan University of Science and Technology Xiangtan 411201 Hunan China

Abstract

In this article, the microstructure and mechanical properties of the Fe–0.31C–6.86Mn–3.53Al steel and DP980 and 22MnB5 steel dissimilar/similar joints by fiber laser welding are studied. Based on experimental results, fusion zone (FZ) of transformation‐induced plasticity (TRIP)‐welded joint mainly consists of 77 vol% martensite and 23 vol% ferrite. The FZ of TRIP‐DP980 and TRIP‐22MnB5 welds mainly consist of martensite. The hardness profile of weld cross‐section exhibits significant asymmetry, and softening zones hardness of TRIP‐DP980 and TRIP‐22MnB5 accounts for 82% and 64% of DP980 and 22MnB5 base materials (BM), respectively. However, no softening zone is observed on TRIP steel side, primarily due to the lack of martensite in TRIP BM. The tensile results showed that welding efficiency of TRIP‐TRIP reached 99%, but elongation of welded specimen is only 50% of TRIP BM due to the high hardness and brittleness of FZ region. TRIP‐DP980 and TRIP‐22MnB5 joints did not fail in softening zone, because the constraint stress is generated on both sides of softening zone to inhibit the plastic deformation in softening zone during tensile process. The tensile stress is distributed on the surface of tensile specimens and concentrated in BM on the side with low yield strength (YS), resulting in the final fracture.

Funder

Ministry of Science and Technology of the People's Republic of China

Publisher

Wiley

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