【获奖】
[1]指导研究生分别获得第五届全国大学生冶金科技竞赛一、二等奖;
[2]指导研究生获得第六届全国大学生冶金科技竞赛二等奖2项;
[3]指导研究生获得第八届全国大学生冶金科技竞赛二等奖1项;
【代表性学术著作、论文】 部分学术论文如下:
[1]Xiao Y, Cao, L, Xu T, et al. Competition and precipitation mechanism of inclusions in the Al-Ti-Mg complex deoxidized steel. Steel Research International, 2024, 2400853.
[2]Xiao Y, Cao, L, Yuan, X, et al. Nucleation Mechanism of TiS in Al/Ti Simultaneously Deoxidized Steel based on Homogeneous and Heterogeneous Modes, Metallurgical and Materials Transactions B. 2024, 55(3): 1564-1581.
[3]Xiao Y, Cao, L, Wang, G, et al. Effect of Cooling Conditions on the Size and Morphology Evolution of MgAl2O4 Inclusions in Al‐Deoxidized Steel Coupling with Mg Treatment. Steel Research International, 2024, 95(5), 2300783.
[4]Xiao Y, Cao, L, Wang, G, et al. Evolution Pathway of Competitive Precipitation of Inclusions in Al-Ti-Deoxidized Steel, Steel Research International, 2024, 2400500.
[5]Xiao Y, Cao, L, Wang, G, et al. Nanoscale nucleation and growth of MgAl2O4 inclusion in Al-Mg deoxidized steel. Journal of Alloys and Compounds, 2024, 970: 172621.
[6]Zhang H, Lei H., Xiao Y*, et al. Atomic-scale nucleation pathways of MgAl2O4 particle in molten steel[J]. Computational and Theoretical Chemistry, 2024, 1234: 114544.
[7]Wang, G, Song, T, Xiao Y*, et al. Effect of cooling conditions on the size evolution of typical inclusions in the Al-Ti deoxidised steel. Ironmaking & Steelmaking, 2023, 50(9), 1260-1270.
[8]Xiao Y, Cao L, Wang G, et al. Formation and Precipitation Mechanism of TiN Inclusion in Mg-treated GCr15 Bearing Steel[J]. Metallurgical and Materials Transactions B, 2022, 53, 916-930.
[9]Xiao Y, Wang G, Jin P, et al. Atomistic nucleation mechanism of titanium oxides in steel based on homogeneous and heterogeneous modes[J]. Metallurgical and Materials Transactions B, 2021, 52, 3315-3331.
[10]Xiao Y, Jin P, Wang G, et al. New insight of the structural evolution of the TiO2-Ti3O5-Ti2O3-TiO-TixOyCz-TiC systems at nanoscale during reduction process[J]. Physical Chemistry Chemical Physics, 2021, 23, 4796-4804.
[11]Xiao Y, Wang G, Lei H, et al. Formation pathways for MgO·Al2O3 inclusions in iron melt[J]. Journal of Alloys and Compounds, 2020: 813, 152243.
[12]Xiao Y, Lei H, Zhang H, et al. Structural evolution of calcia during calcium deoxidation in Fe-O-Ca melt[J]. Physical Chemistry Chemical Physics, 2019, 21(25): 13847-13855.
[13]Xiao Y, Lei H, Yang B, et al. Nucleation and growth for magnesia inclusion in Fe-O-Mg melt[J]. RSC Advances, 2018, 8(67): 38336-38345.
[14] Xiao Y, Lei H, Yang B, et al. Thermodynamic insight into the growth of calcia inclusions at the nanoscale: the case of Fe-O-Ca melt[J]. RSC Advances, 2019, 9(20): 11135-11141.
[15] Wang G, Xiao Y, Zhao C, et al. Atomic cluster aggregates in nucleation of solid alumina inclusion in the aluminum deoxidation for liquid iron[J]. Metallurgical and Materials Transactions B, 2018, 49(1): 282-290.
[16] 王国承, 肖远悠, 宋玉来, 等. 钢液中原子与夹杂物颗粒间的介尺度物相及二步形核[J]. 炼钢, 2016, 32(4): 60-72.
[17] 曹磊, 金朋亮, 肖远悠, 等. 镁处理低碳钢中MgAl2O4夹杂物的聚集行为[J]. 钢铁, 2020, 55(11): 37-46
【专利】 1.专利人:王国承; 曹磊; 肖远悠; 臧喜民。申请号:CN202411129651.0(发明专利),一种提高轴承钢中非金属夹杂物塑性变形的冶炼方法,2024。
2.专利人:王国承; 曹磊; 肖远悠; 臧喜民。申请号:CN202411129648.9(发明专利)一种实时监测钢中氧浓度的装置及方法,2024。
3.专利人:王国承; 肖远悠; 许涛; 曹磊; 艾新港。申请号:CN202011533052.7(发明专利),授权号:CN 112708728 B,提高铝脱氧钢/含铝钢中非金属夹杂物塑性的方法及钢材,2020。
【主要科研项目】 (1)国家自然基金青年项目,超纯铁素体不锈钢中TiN夹杂形核路径及细化机制研究(52404346),2025-2027,主持
(2)辽宁省教育厅项目,凝固及冷却过程中钢中硫化物夹杂析出演变机制(LJKMZ20220663),2022-2025,主持
(3)辽宁省科技厅项目,钢液中纳米夹杂物的界面性质研究(2022-BS-282),2022-2024,主持
(4)东北大学EPM教育部重点实验室开放课题,钢中MgAl2O4夹杂物的析出与演变行为 (NEU-EPM-022),2022-2024,主持。
(5)东北大学EPM教育部重点实验室项目,基于二步形核理论的钢中强脱氧产物尺寸控制基础研究(NEU-EPM-001),2018-2019,参与。
(6)国家自然科学基金项目,基于二步形核理论的钢液凝固过程中夹杂物细化控制基础研究(51874170),2019-2022,参与。
(7)国家自然科学基金项目,高洁净钢液中纳米尺度夹杂物形成及演变过程的热力学研究(51004054),2011-2013,参与。
(8)辽宁省科技厅自然科学基金项目,基于二步形核理论的钢中夹杂物形成机理及控制(2015020181),2016-2018,参与。
(9)辽科大-鞍钢海工钢国家重点实验室项目,基于二步形核理论的钢种强脱氧产物尺寸控制基础研究(SKLMEA - USTL - 201706),2018-2019,参与。
(10)山东钢铁股份有限公司(莱钢),夹杂物/析出物无损提取系统,2018-2019,参与。
(11)首钢集团合作项目,高性能铁铬铝合金中第二相行为机制与调控,2023-2025,参与。