论文著作:
2020年:
[1] Experimental simulation on the high-temperature friction property of slag in slab continuous casting mold[J]. Journal of Materials Research and Technology, 2020, 9(3): 6453-6463.
[2] Thermodynamic study on the solute partition coefficients on L/δ and L/δ+γ phase interfaces for 1215 high-sulfur steel solidification by orthogonal design. Journal of Materials Research and Technology, 2020, 9(1): 89-103.
[3] Study on the Precipitation and Coarsening of TiN inclusions in Ti-microalloyed Steel by a Modified Coupling Model. Journal of Materials Research and Technology, 2020, 9(3): 5499-5514.
[4] Investigation of the Peritectic Phase Transition in a Commercial Peritectic Steel Under Different Cooling Rates Using In Situ Observation. Metallurgical and Materials Transactions B, 2020, 51(1): 338-352.
[5] Control of Coarse Precipitates of Titanium Nitride in High-Strength Low-Alloy Steel[J]. Metal Science and Heat Treatment, 2020, 61(9-10): 534-542.
[6] Transient flow and mold flux behavior during ultra-high speed continuous casting of billet[J]. Journal of Materials Research and Technology, 2020, 9(3): 3984-3993.
[7] An Approach for Modelling Slag Infiltration and Heat Transfer in Continuous Casting Mold for High Mn–High Al Steel[J]. Metals, 2020, 10(1): 51.
[8] Melting and Flowing Behavior of Mold Flux in a Continuous Casting Billet Mold for Ultra-High Speed [J]. Metals, 2020, 10(9): 1165.
[9] The Formation of Humps and Ripples During Selective Laser Melting of 316l Stainless Steel. JOM, 2020: 72(3): 1128-1137.
[10] Hydraulic Modeling on Flow Behavior in High-Speed Billet Continuous Casting Mold Considering Hydrostatic Pressure and Solidified Shell. Metals, 2020, 10(9): 1226.
[11] Numerical Simulation of Heat Transfer between Roll and Slab under Dry Secondary Cooling in Ultra-Thick Slab Continuous Casting. Steel Research International, 2020, 91(3): 1900516.
[12] Evolution of Phase Transition and Mechanical Properties of Ultra-High Strength Hot-Stamped Steel During Quenching Process. Metals, 2020, 10(1), 138.
[13] Crystal structure and mechanical properties of nickel-cobalt alloys with different compositions: A first-principles study. Journal of Physics and Chemistry of Solids, 2020, 137: 109194.
[14] Ab Initio Calculations on Elastic Properties of IF Steel Matrix Phase at High Temperature Based on Lattice Expansion Theory. Metals, 2020, 10(2), 283.
[15] Ab initio study on continuous evolution of mechanical properties in phase transition region of low carbon steel. Steel Research International, 2020, 91(8): .
[16] The Reduction of Cu2+ Promoted by Zn or Ni on rGO. JOM, 2020, 72(12): 4458-4465.
[17] The effect of the elements Cr, Os, Ir, and Y additions on the mechanical and electronic properties of L1(2) Ni3Co alloys. Journal of Applied Physics, 2020, 128(18): .
[18] Site preference of the alloying additions on mechanical properties of L12 Ni3Co alloys. TMS 149th Annual Meeting & Exhibition Supplemental Proceedings. 2020: 1763-1774.
[19] In-situ Observation of the Peritectic Reaction and Transformation in a Commercial HSLA Steel. TMS 149th Annual Meeting & Exhibition Supplemental Proceedings. 2020: 525-536.
[20] Investigation on the Flow Field of Molten Steel in Ultrahigh-Speed Billet Continuous Casting Mold. TMS 149th Annual Meeting & Exhibition Supplemental Proceedings. 2020:263-274.
[21] Numerical Simulation of Heat Transfer Between Roller and Slab During Medium Thickness Slab Continuous Casting. TMS 149th Annual Meeting & Exhibition Supplemental Proceedings. 2020:143-153.
[22] Properties and Microstructure of Copper and/or Nickel Supported on GO, rGO, and NGO. T TMS 149th Annual Meeting & Exhibition Supplemental Proceedings. 2020: 127-135.
[23] Separation of Vanadium from Iron in Vanadium-Rich Molten Iron. TMS 149th Annual Meeting & Exhibition Supplemental Proceedings. 2020: 431-443.
[24] 钢液连铸二次冷却先进工艺模型的发展与研究. 钢铁, 2020, 55(3): 40-49.
[25] 连铸坯氧化行为及其对铸坯冷却降温的影响. 钢铁研究学报, 2020, 32(2): 129-134.
[26] Q345连铸坯的高温力学性能. 2020年全国电磁冶金与强磁场材料科学年会, 重庆, 2020.11.27-29.
[27] 石墨烯负载型Cu-Ni催化剂活化二氧化碳性质研究. 2020年全国电磁冶金与强磁场材料科学年会, 重庆, 2020.11.27-29.
[28] 磁性状态转变对铸坯基体相弹性性能的影响. 2020年全国电磁冶金与强磁场材料科学年会, 重庆, 2020.11.27-29.
[29] 基于方坯连铸过程末端电磁搅拌的二次冷却研究. 2020年全国电磁冶金与强磁场材料科学年会, 重庆, 2020.11.27-29.
[30] 22MnB5钢连铸过程中碳氮化钛析出热力学研究. 2020年全国电磁冶金与强磁场材料科学年会, 重庆, 2020.11.27-29.
[31] 石墨烯负载型Cu-Ni催化剂活化二氧化碳性质研究. 2020年全国电磁冶金与强磁场材料科学年会, 重庆, 2020.11.27-29.
[32] 不锈钢CaO基渣系脱磷的热力学分析. 2020年全国冶金物理化学学术会议. 唐山, 2020.10.16-18.
[33] 汽车高强钢P700L热轧过程第二相析出研究. 2020年全国冶金物理化学学术会议. 唐山, 2020.10.16-18.
[34] GO、rGO 和 NGO 表征及吸附CO2性能探究. 2020年全国冶金物理化学学术会议. 唐山, 2020.10.16-18.
2019年:
[35] Thermal Behavior During the Selective Laser Melting Process of Ti-6Al-4V Powder in the Point Exposure Scan Pattern. Metallurgical and Materials Transactions B, 2019, 50(6): 2804-2814.
[36] Numerical analysis of molten pool behavior and spatter formation with evaporation during selective laser melting of 316L stainless steel. Metallurgical and Materials Transactions B, 2019, 50(5): 2273-2283.
[37] Effect of hot water vapor on strand surface temperature measurement in steel continuous casting . International Journal of Thermal Sciences, 2019, 138: 467~479.
[38] Quantifying the Effects of Combustion Gases Radiation on Surface Temperature Measurements Using Two-Color Pyrometry. Energy & Fuels, 2019, 33 (4): 3610-3619.
[39] Coupled Effects of Reflection and Absorptive Gas Mixture on Surface Temperature Determined by Single color Pyrometer . Journal of Quantitative Spectroscopy and Radiative Transfer, 2019, 228: 111-123.
[40] Effect of the Mold Corner Structure on the Friction Behavior in Slab Continuous Casting Molds. Journal of Materials Processing Technology, 2019, 270: 157-167.
[41] Effect of the strand corner structure on the corner stress during the bending and straightening processes in slab continuous casting. Journal of Manufacturing Processes, 2019, 48: 270-282.
[42] Quantitative effects of phase transition on solute partition coefficient, inclusion precipitation, and microsegregation for high-sulfur steel solidification . Journal of Materials Science & Technology, 2019, 35(10): 2383-2395.
[43] Thermodynamic study on the solute partition coefficients on L/δ and L/δ+γ phase interfaces for 1215 high-sulfur steel solidification by orthogonal design. Journal of Materials Research and Technology, 2019.
[44] Prediction model for austenite grains growth during reheating process in Ti micro-alloyed cast steel by coupling precipitates dissolution and coarsening behavior. Journal of Iron and Steel Research International, 2019, 26: 162~172.
[45] Investigations of the peritectic reaction and transformation in a hypo-peritectic steel: Using high-temperature confocal scanning laser microscopy and differential scanning calorimetry. Materials Characterization, 2019, 156,109870.
[46] The control of coarse TiN inclusions precipitation in HSLA steel containing high titanium content. Metal Science and Heat Treatment, 2019. 60(8) :80-91.
[47] A Prediction Model for Internal Cracks during Slab Continuous Casting. Metals, 2019, 9(5), 587.
[48] Characteristics of Slag Infiltration in High-Mn Steel Castings. Metallurgical and Materials Transactions B, 2019, 50(2): 1104-1113.
[49] Influence of Mn content on the intrinsic energy barriers of paramagnetic FeMn alloys from longitudinal spin fluctuation theory. International Journal of Plasticity, 2019, 119, 123-139.
[50] Optimization of the Flow Behavior of Molten Steel in Ultra High-Speed Billet Continuous Casting. Materials Processing Fundamentals 2019. Springer, Cham, 2019: 59-70.
[51] 水雾对高温铸坯表面辐射测温影响的实验研究. 连铸, 2019, 44(01): 35-39.
[52] 不同冷速下钛微合金化Q345B钢的HAZ组织及性能.中国冶金, 2019, 29(03): 11-14.
[53] L245MB钢铸坯高温强度与弹性性能研究. 钢铁, 2019, 54(08): 194-201.
[54] 钛微合金钢连铸中TiN与TiC析出热力学研究. 连铸, 2019, 44(01): 28-34.
[55] 180 mm×180 mm方坯连铸二冷工艺模型研究. 连铸, 2019, 44(5): 10-13.
[56] 基于第一性原理计算的钢中Fe基体相弹性性能演变规律研究. 2019年全国炼钢学术会议,陕西西安,2019.05.29-31.
[57] 特厚板单辊重压下热力耦合数值模拟研究. 2019年冶金反应工程会议, 安徽马鞍山,2019.11.14-16.
[58] 方坯高速连铸结晶器钢液流动行为研究, 2019年冶金反应工程会议,安徽马鞍山,2019.11.14-16.
发明专利:
1) 基于钢水静压力和凝固现象的结晶器物理模拟方法和装置. 发明专利,获权(证书)号:第3120081号.
2) 一种新型无筛板沸腾氯化炉底部结构. 发明专利,获权(证书)号:第2584346号.
3) 液态高炉渣热量回收过程中渣的粒化方法及其装置. 发明专利, 获权(证书)号:第984241号.
4) 液态高炉渣热量回收装置及其方法. 发明专利, 获权(证书)号: 第433565号.
5) 线材水平连铸无台阶分离环及使用方法. 发明专利, 获权(证书)号:第440081号.
6) 含钛磁铁矿尾矿制作的微晶玻璃. 发明专利, 获权(证书)号:第539558号.
7) 水雾介质下高温铸坯表面温度的测量方法. 发明专利, 获权(证书)号:第638426号.
8) 一种基于记忆识别模式的连铸坯温度在线控制方法. 发明专利, 获权(证书)号:第683449号.
9) 复杂环境中高温固体表面长期准确测温系统. 发明专利, 获权(证书)号:第638054号.
10) 一种连铸坯凝固过程温度和质量控制冷却方法. 发明专利, 获权(证书)号:第689766号.
11) 基于凝固壳生长形貌分析的连铸板坯中心偏析的改善方法. 发明专利, 获权(证书)号:第706841号.
12) 防止连铸中间包产生旋流的旋流抑制器. 发明专利, 获权(证书)号:第852835号.
13) 考虑凝固壳厚度和流动质量平衡的连铸结晶器模拟方法及装置. 发明专利, 获权(证书)号:第1093510号.
14) 液态高炉渣直接制备微晶玻璃的方法. 发明专利, 获权(证书)号:第979262号.
15) 一种改善方圆坯中心偏析及缩孔的方法. 发明专利, 获权(证书)号:第1293229号.
16) 基于在线测温与传热模型的连铸二冷动态控制方法. 发明专利, 获权(证书)号:第1374868号.
17) 一种控制添加剂粒径来实现钒渣高效提钒的方法. 发明专利, 获权(证书)号:第1509124号.
18) 考虑振动行为的连铸结晶器流场物理模拟方法. 发明专利, 获权(证书)号:第1608973号.
19) 连铸结晶器内腔锥度的确定方法. 发明专利, 获权(证书)号:第1728166号.
20) 一种H型坯连铸结晶器内腔锥度确定方法. 发明专利, 获权(证书)号:第1738629号.
21)一种含钒铁水氧化提钒工艺中冷却剂加入方法. 发明专利, 获权(证书)号:第1878783号