TY - JOUR
T1 - Effect of the cellular structure on austenite distribution and cryogenic mechanical properties of maraging stainless steel processed by laser powder bed fusion
AU - Wang, Chao
AU - Wang, Lilin
AU - Lin, Xin
AU - Liu, Geng
AU - Su, Jie
AU - Huang, Weidong
N1 - Publisher Copyright:
© 2025
PY - 2025/12
Y1 - 2025/12
N2 - The cellular structure, a distinctive feature of steels fabricated by laser powder bed fusion (L-PBF), can enhance strength and ductility in austenitic steel. Its effect in maraging stainless steel undergoing austenite-martensite transformation is more complex. This study compares the microstructure and mechanical properties of L-PBFed Fe-Cr-Ni-Co-Mo maraging steel with and without the cellular structure. The as-built steel shows a ∼0.52 μm cellular structure with Cr and Mo segregation at cellular walls, which disappears after homogenization. Direct solution-aging of the as-built (775) specimen yields 22.6 % retained austenite with an island-like morphology, whereas the homogenized (1775) specimen has 18.6 % with a lath-like morphology. This difference results from elemental segregation, which stabilizes austenite at cellular walls and disrupts lath-like austenite continuity. At 23 °C, the 1775 specimen shows higher strength and elongation than the 775 specimen. At −196 °C, this advantage increases, with yield strength of 1697 vs. 1606 MPa, ultimate strength of 1737 vs. 1658 MPa, elongation of 26 % vs. 16 %, and impact energy of 44 vs. 7 J. The island-like austenite in the 775 specimen provides limited crack resistance, causing more secondary cracks. In contrast, the lath-like austenite with heterogeneous shells in the 1775 specimen undergoes greater strain-induced martensitic transformation, producing a stronger transformation-induced plasticity (TRIP) effect. Eliminating the cellular structure via homogenization treatment is essential for optimizing L-PBF maraging steels.
AB - The cellular structure, a distinctive feature of steels fabricated by laser powder bed fusion (L-PBF), can enhance strength and ductility in austenitic steel. Its effect in maraging stainless steel undergoing austenite-martensite transformation is more complex. This study compares the microstructure and mechanical properties of L-PBFed Fe-Cr-Ni-Co-Mo maraging steel with and without the cellular structure. The as-built steel shows a ∼0.52 μm cellular structure with Cr and Mo segregation at cellular walls, which disappears after homogenization. Direct solution-aging of the as-built (775) specimen yields 22.6 % retained austenite with an island-like morphology, whereas the homogenized (1775) specimen has 18.6 % with a lath-like morphology. This difference results from elemental segregation, which stabilizes austenite at cellular walls and disrupts lath-like austenite continuity. At 23 °C, the 1775 specimen shows higher strength and elongation than the 775 specimen. At −196 °C, this advantage increases, with yield strength of 1697 vs. 1606 MPa, ultimate strength of 1737 vs. 1658 MPa, elongation of 26 % vs. 16 %, and impact energy of 44 vs. 7 J. The island-like austenite in the 775 specimen provides limited crack resistance, causing more secondary cracks. In contrast, the lath-like austenite with heterogeneous shells in the 1775 specimen undergoes greater strain-induced martensitic transformation, producing a stronger transformation-induced plasticity (TRIP) effect. Eliminating the cellular structure via homogenization treatment is essential for optimizing L-PBF maraging steels.
KW - Austenite
KW - Cellular structure
KW - Cryogenic toughness
KW - Laser powder bed fusion
KW - Maraging stainless steel
UR - https://www.scopus.com/pages/publications/105018174070
U2 - 10.1016/j.msea.2025.149243
DO - 10.1016/j.msea.2025.149243
M3 - 文章
AN - SCOPUS:105018174070
SN - 0921-5093
VL - 947
JO - Materials Science and Engineering: A
JF - Materials Science and Engineering: A
M1 - 149243
ER -