渗碳体
材料科学
马氏体
延展性(地球科学)
韧性
冶金
极限抗拉强度
加工硬化
延伸率
回火
硬化(计算)
位错
变形(气象学)
复合材料
奥氏体
微观结构
蠕动
图层(电子)
作者
Zhuo Cheng,Jinyue Liu,Gang Liu,Shuize Wang,Hong‐Hui Wu,Junheng Gao,Haitao Zhao,Chaolei Zhang,Guilin Wu,Xinping Mao
标识
DOI:10.1016/j.jmrt.2023.09.295
摘要
High-strength press-hardened steels (PHSs) are characterized by a martensite structure of high strength and adequate ductility. Strengthening PHSs with high C contents is usually accompanied by a loss of ductility and toughness. To overcome this inherent strength–ductility trade-off dilemma, we propose a novel strategy to achieve outstanding mechanical performance by introducing stable high-density Cr-rich cementite, which refines the martensite structure via Zenner pinning effect in a novel 2000 MPa grade PHS. Specifically, a high tensile strength of 2085 MPa with an appreciable total elongation of 10.1% is achieved in the novel PHS, which is far superior to commercial 22MnB5 steel (1519 MPa and 10%). The strength increase is predominantly induced by a high density of dislocations and cementite in the novel PHS, while the good ductility is attributed to the refined martensite structure coordinating plastic deformation and the enhanced work-hardening ability and dislocation storage capability mediated by massive cementite. The work can lay foundations for designing high-strength PHSs with good ductility.
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