科技成果获广西省科技进步奖二等奖、冶金科技进步奖二等奖、云南省自然科学三等奖、云南省科技进步三等奖、中国有色金属工业科学技术奖二等奖、中信铌钢进步奖特等奖、昆明市科学技术进步奖一等奖等奖项。在国内外公开刊物上发表学术论文150余篇;获得授权发明专利30余件。 部分代表性论文: [1]Liu X, Cao J*, Chen W, et al. Post-Rolling Cooling Phase Transformation and Microstructure of High-Strength Anti-Seismic Rebars with Different Solute Nb and Austenite Microstructure[J]. Metals, 2022, 12(10): 1734. [2]Luo H, Cao J*. The epitaxial growth of TiC on ZrC in low-carbon steel[J]. Materials Science and Technology, 2022, 38(11): 730-733. [3]Zeng M, Cao J*. Effect of Zr on Dynamic Recrystallization Behavior of Ti‐Microalloyed Low Carbon Steels[J]. steel research international, 2020, 91(10): 2000104. [4]Liu P, Cao J*, Yin S, et al. Effect of Zr on undissolved phases and carbide precipitation in Ti microalloyed low-carbon steel[J]. Journal of Iron and Steel Research International, 2019, 26: 720-732. [5] Zhang Z, Cao J*, Zhong Z, et al. Tensile deformation behavior of high strength anti-seismic steel with multi-phase microstructure[J]. Journal of Iron & Steel Research International, 2017, 24(1):111-120. 部分授权发明专利: [1] 一种Nb微合金化铁碳合金的梯度材料及制备方法, ZL 202211261283.6, 2023-07-18. [2]一种Ti-Zr-Mo复合微合金化800MPa级高强度高韧性钢板及制备方法, ZL 20221 0575503.6, 2023-06-16. [3] 一种Ti-Zr复合微合金化700MPa级高强度高韧性钢板及制备方法, ZL 2022 10574564.0, 2023-03-24. [4] 一种Ti-Zr复合微合金化钢超细化奥氏体晶粒的控轧控冷工艺方法, ZL 2018 10205572.1, 2020-11-27 [5] 一种Ti-Zr-Mo复合微合金化钢超细化奥氏体晶粒的控轧控冷工艺方法, ZL 20181 0204975.4 , 2020-11-27 [6] 一种Ti-Mo复合微合金化钢超细化奥氏体晶粒的控轧控冷工艺方法, ZL 201810204972.0 , 2020-11-6 |