材料科学
夏比冲击试验
韧性
极限抗拉强度
微观结构
碳化物
固溶体
固溶强化
复合材料
沉淀硬化
奥氏体
延展性(地球科学)
艾氏冲击强度试验
冶金
蠕动
作者
Cheng Yang,Yong Li,Shun Han,Xuedong Pang,Ruming Geng,Xinyang Li,Chunxu Wang
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2025-05-06
卷期号:18 (9): 2126-2126
摘要
With the increasing demands for mechanical properties of ultra-high-strength steels (UHSSs), enhancing their strength and obtaining an excellent strength-toughness matching have received widespread attention. In this paper, the influence of microstructure and primary carbides on the mechanical properties of 2200 MPa ultra-high-strength steel was studied by treating it at different solid-solution temperatures. The mechanical properties of the experimental steel following aging demonstrated a non-monotonic dependence on solid-solution temperature, manifested as an initial increase followed by a gradual decline in both strength and toughness. Microstructural evolution analysis reveals that elevated solid-solution temperatures induce coarsening of prior austenite and martensite grains in the steel, thereby promoting toughness enhancement. Concurrently, primary carbides progressively dissolve into the matrix with increasing solid-solution temperature, generating a supersaturated solid-solution that facilitates M2C carbide precipitation during aging, ultimately leading to strength improvement in the experimental steel. An exceptional combination of strength, ductility, and toughness with an ultimate tensile strength of 2142 MPa, yield strength of 1830 MPa, elongation of 12.5%, and Charpy U-notch impact energy of 60.5 J was obtained when the experimental steel was solid-solution treated at 910 °C.
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