研究方向 复合材料结构 结构疲劳与断裂 科研项目 · 国家自然科学基金青年项目,疲劳荷载作用下复材夹芯结构的Ⅰ/Ⅱ混合型界面剥离机理与寿命预测,2022.01-2024.12,主持 · 江苏省自然科学基金青年项目,纤维增强复合材料夹芯结构界面疲劳剥离机理与寿命预测,2020.07-2023.06,主持 · 江苏省高校自然科学研究面上项目,复合材料夹芯结构界面Ⅰ/Ⅱ混合型剥离机制研究,2019.09-2021.08,主持 · 苏州科技大学自然科学基金青年项目,GFRP-轻木夹芯受弯构件界面剥离性能研究,2020.01-2021.12,主持 · 山东省土木工程防灾减灾重点实验室开放课题,复合材料夹芯结构界面裂纹扩展及剥离损伤研究,2019.07-2021.06,主持 代表性论著 [1] Huiyuan Shi*, Hai Fang, Weiqing Liu, Zhiyuan Xia. Flexural fatigue behavior and life prediction of web reinforced GFRP-balsa sandwich beams[J]. International Journal of fatigue, 2020, 136:105592. [2] Huiyuan Shi, Weiqing Liu, Hai Fang. Damage characteristics analysis of GFRP-Balsa sandwich beams under four-point fatigue bending[J]. Composites Part A: Applied Science and Manufacturing, 2018, 109: 564-577. [3] Huiyuan Shi, Weiqing Liu, Hai Fang, Yu Bai, David Hui. Flexural responses and pseudo-ductile performance of lattice-web reinforced GFRP-wood sandwich beams[J]. Composites Part B: Engineering, 2017, 108: 364-376. [4] Chen Yang, Xiaolong Li, Hai Fang*, Huiyuan Shi*, Weiqing Liu, Dian Zhu. An experimental investigation of static and fatigue behaviour of GFRP sandwich beams with a web reinforced wood core [J]. Construction and Building Materials, 2020, 136:105592. [5] Xia Zhiyuan*, Quek Ser Tong, Li Aiqun, Li Jianhui, Duan Maojun, Zhou Guangpan, Shi Huiyuan. Sensitivity Analysis in Seismic Reliability of An Urban Self-Anchored Suspension Bridge[J]. Mechanical Systems and Signal Processing, 2022, 164:108231. [6] Xia Zhiyuan*, Li Aiqun, Shi Huiyuan, Li Jianhui. Model Updating of Bridge Structure Using Vibration Test Data Based on GMPSO and BPNN: Case Study[J]. Earthquake Engineering and Engineering Vibration, 2021, 20(1): 213-221. [7] Xia Zhiyuan*, Li Aiqun, Li Jianhui, Shi Huiyuan, Duan Maojun, Zhou Guangpan. Model Updating of An Existing Bridge with High-Dimensional Variables Using Modified Particle Swarm Optimization and Ambient Excitation Data[J]. Measurement, 2020, 159:107754. [8] Dian Zhu, Huiyuan Shi, Hai Fang, Weiqing Liu, Yujun Qi, Yu Bai. Fiber reinforced composites sandwich panels with web reinforced wood core for building floor applications[J]. Composites Part B: Engineering, 2018, 150: 196-211. [9] Youjun Qi, Hai Fang, Huiyuan Shi, Weiqing Liu, Yujun Qi, Yu Bai. Bending performance of GFRP-wood sandwich beams with lattice-web reinforcement in flatwise and sidewise directions[J]. Construction & Building Materials, 2017, 156:532-545. [10] Hai Fang, Huiyuan Shi, Yue Wang, Yujun Qi, Weiqing Liu. Experimental and Theoretical Study of Sandwich Panels with Steel Facesheets and GFRP Core[J]. Advances in Materials Science and Engineering, 2016, 2016: 1-12. [11] 史慧媛, 刘伟庆*, 方海, 霍瑞丽. GFRP复合材料-轻木夹芯梁弯曲疲劳性能试验[J]. 复合材料学报, 2018, 35(5): 1114-1122. [12] 史慧媛, 刘伟庆*, 方海. 复合材料夹层结构的疲劳损伤性能[J]. 南京工业大学学报, 2017, 39(5): 1-6. [13] 祝典, 方海*, 史慧媛, 刘伟庆. 格构式腹板增强桐木夹芯复合梁弯曲疲劳性能试验研究[J]. 建筑结构学报, 2018,39(S2): 215-220. [14] 李晓龙, 刘伟庆*, 方海, 史慧媛. 格构腹板增强复合材料泡沫夹芯板侧压性能试验与分析[J]. 南京工业大学学报, 2017, 39(2): 64-69. [15] Hai Fang, Weiqing Liu, Huiyuan Shi, Fubin Zhang. Composite Sandwich Structure[M]. 科学出版社, 2020. [16] 方海, 刘伟庆, 张富宾, 史慧媛. 格构增强复合材料夹芯结构[M]. 科学出版社, 2020. |