[1] Sun F, Ran M*, Li G, et al. Strength model for mismatched butt welded joints of high strength steel[J]. Journal of Constructional Steel Research. 2018, 150(NOV.): 514-527.
[2] Ran M, Sun F, Li G, et al. Experimental study on the behavior of mismatched butt welded joints of high strength steel[J]. Journal of Constructional Steel Research. 2019, 153(FEB.): 196-208.
[3] Sun F, Ran M*, Li G, et al. Mechanical behavior of transverse fillet welded joints of high strength steel using digital image correlation techniques[J]. Journal of Constructional Steel Research. 2019, 162(Nov.): 105710-105711.
[4] Ran M, Sun F, Li G, et al. Mechanical properties of mismatched high strength steel butt joints with three softened/hardened strength distribution patterns[J]. Thin-Walled Structures. 2020, 146(Jan.): 201-216.
[5] Ran M, Zhao C, Sun F, et al. Experimental study on the strength and fracture behaviour of fillet welded joints made of high strength steel under multiple loading angles[J]. Thin-Walled Structures. 2021, 169: 108295.
[6] Ran M, Sun F, Li G, et al. Mechanical behaviour of longitudinal lap-welded joints of high strength steel: Experimental and numerical analysis[J]. Thin-Walled Structures. 2021, 159: 107286.
[7] Lu Y, Xiong F, Ran M*, et al. Seismic pounding damage to adjacent reinforced concrete frame-shear wall buildings and freestanding contents[J]. Earthquake Engineering & Structural Dynamics. 2022, 51(6): 1436-1456.
[8] Zhong Y, Xiong F, Ran M*, et al. Seismic behavior of a novel bolt-connected horizontal joint for precast RC wall panel structures: Experimental and numerical analysis[J]. Journal of Building Engineering. 2022, 52: 104451.
[9] Ran M, Zhong Y, Wang Y, et al. Fracture prediction in transverse fillet welded joints of high strength structural steel[J]. Journal of Constructional Steel Research. 2022, 189: 107101.
[10] Sun F, Ran M, Li G, et al. Experimental and numerical study of high-strength steel butt weld with softened HAZ[J]. Proceedings of the Institution of Civil Engineers - Structures and Buildings. 2018, 171(8): 583-597.
[11] Sun F, Ran M, Li G, et al. 12 - Welded connections[M]. Behavior and Design of High-Strength Constructional Steel, Li G, Wang Y, Woodhead Publishing, 2021, 565-612.
[12] 冉明明, 李国强等. 考虑匹配比和软化效应的高强钢对接焊缝的设计建议[J]. 建筑结构学报, 2022, 43(11) :275-286.
[13] 孙飞飞,冉明明,周健,等. 钢管混凝土柱巨型交叉节点受力性能研究[J]. 建筑结构学报. 2017, 38(5): 69-76.
[14] 熊峰, 王兆强, 冉明明*, 等. 螺栓连接装配式墙板抗侧刚度研究[J]. 工程科学与技术, 2022,54(3):98-108.
[15] 熊峰, 钟亚超, 冉明明*, 等. 螺栓连接装配式混凝土墙板结构水平缝的抗震性能研究[J]. 建筑结构, 2022,52(23):35-45, 55.
[16] 熊峰, 边钰, 刘烨, 冉明明, 等. 预制混凝土夹心保温墙板结构性能研究综述[J]. 建筑结构, 2022,52(23):26-34, 125.
[17] 熊峰, 吴朝安, 冉明明*, 等. 螺栓连接装配式墙板结构体系“非等同现浇”抗震设计方法研究[J]. 建筑结构学报,2023
[18] 姜顺航, 冉明明*, 李国强, 等. 高强钢角焊缝的强度模型和设计建议[J]. 建筑结构学报,2023