Microstructural Evolution and Hardness Gradient in Transition Zones Between Laser Cladding and Laser Quenching on H13 Curved Die Steel
Yongkang Peng, Wei Chen, Yingxia Zhu, Hao Wu, Salimi Abderrahman, Tao WangComplex hot-stamping dies are prone to concentrated wear in protruding die-surface regions, such as rounded corners, under high loads during service, whereas friction between the sheet and adjacent die surfaces mainly occurs before die closure. Consequently, different die-surface regions require different strengthening methods, with a gradual transition in mechanical properties between adjacent strengthened regions. In this study, a zoned strengthening method combining Fe901 laser cladding and laser quenching was proposed for H13 die steel. A Fe901 cladding layer was deposited in the high-wear rounded-corner region, laser quenching was applied to the adjacent region, and a transition zone between the cladding and quenching regions was constructed. Based on cladding microstructural strengthening, beveled geometric transition, and quenching microstructural strengthening, relationships among microstructure, elemental distribution, and cross-sectional hardness in the transition zone were analyzed. The microstructural continuity, hardness transition behavior, and geometric continuity of the transition zone were evaluated through a comparison of SEM/EDS characterization, cross-sectional microhardness testing, and curved-specimen zoned-strengthening experiments. Adjacent laser quenching refined columnar crystals in the top region and disrupted cellular crystals in the bottom region, accompanied by C and Cr enrichment, attenuated B segregation, and localized elemental redistribution. The curved transition zone between the Fe901 cladding layer and the adjacent laser-quenched region mitigated abrupt hardness changes and enabled a continuous hardness gradient.