研究工作面向现代工程装备轻量化、高强度、多功能、智能化、长续航的核心需求,聚焦材料结构功能一体化设计的基础理论和关键技术研究,旨在发挥仿生学原理、多尺度力学与机械设计理论的交叉融合优势,突破功能复合材料(高强超韧材料、可编程材料)、智能机器人(软体驱动器、仿生机器人)、先进飞行器(空天发动机、空间折展结构)等领域关键技术。目前我们在上述研究方向上已发表的论文和受资助的项目如下: 论文列表(#代表共同一作,*代表通讯作者): 1.X.S. Meng#, L.C. Zhou# (co-first author), L. Liu#, Y.B. Zhu, Y.F. Meng, D.C. Zheng, B. Yang, Q.Z. Rao, L.B. Mao*, H.A. Wu*, S.H. Yu*. Deformable hard tissue with high fatigue resistance in the hinge of bivalve cristaria plicata[J]. Science, 2023, 380(6651): 1252-1257. 2.H.H. Liu, L.C. Zhou*, J.H. Fu*, Q. Zhang, G.M. Zhang, X.Z. Xia, H.L. Pan, Q.G. Wu, Y.X. Zhang, X.L. Jia, L. Zu*. Strength prediction of thin-walled composite pressure vessels under axial compression: Revealing buckling-induced failure competition[J]. Composite Structures, 2026, 378: 119933. 3.H.H. Liu, H.L. Pan, L. Zu*, Q. Zhang, G.M. Zhang, J.H. Fu, Q.G. Wu, X.L. Jia, L.C. Zhou*. A universal kinking-based strength model for unidirectional composite laminates under multiaxial loading[J]. Composite Structures, 2025, 373: 119655. 4.L.C. Zhou, Y.F. Wu, L. Zu, Q. Zhang, G.M. Zhang, J.H. Fu, H.L. Pan, H.H. Liu, Q.G. Wu, X.L. Jia. Enhanced burst strength of thin-walled composite pressure vessels through tailorable bi-elliptical dome[J]. Thin Walled Structures, 2025, 216: 113723. 5.Y.F. Meng, Y.B. Zhu, B. Yang, L.C. Zhou, S.C. Zhang, Y.R. Wang, X.S. Meng, B.H. Ge, L.B. Mao*, S.H. Yu*. Iron-rich diet enhances the damage resistance of bamboo rat tooth enamel[J]. Matter, 2025, 8(7). 6.H.H. Liu, L. Zu*, Q. Zhang, G.M. Zhang, J.H. Fu, H.L. Pan, Q.G. Wu, X.L. Jia, L.C. Zhou*. Impact angle-dependent residual burst strength of thin-walled composite pressure vessels under low-velocity impact[J]. Thin Walled Structures, 2025, 209: 112963. 7.L.C. Zhou, L. Sun, L. Zu*, Q. Zhang, G.M. Zhang, J.H. Fu, H.L. Pan, Q.G. Wu, H.H. Liu, X.L. Jia. Suppressing burst risk of dome section in composite pressure vessels by contour-driven collaborative design[J]. Composite Structures, 2024, 348: 118489. 8.H.H. Liu, L. Zu*, Q. Zhang, P. Ren, G.M. Zhang, J.H. Fu, H.L. Pan, Q.G. Wu, H.B. Wang, D.B. Li, L.C. Zhou*. Repeated loading damage analysis of thin-walled composite shell for lighter structural design[J]. Composite Structures, 2024, 340: 118178. 9.W.Y. Hu, D.K. Song, X.H. Shi, L.C. Zhou, Z.H. Zhao, T. Xue, X.Y. Lin, N. Liu*. Anisotropic electronic skin for neurofeedback[J]. Advanced Functional Materials, 2024, 34(11): 2309359. 10.Y.F. Meng, C.X. Yu, L.C. Zhou, L.M. Shang, B. Yang, Q.Y. Wang, X.S. Meng, L.B. Mao*, S.H. Yu*. Nanograded artificial nacre with efficient energy dissipation[J]. The Innovation, 2023, 4(6). 11.L.C. Zhou, Z.Z. He, Z.T. Zhang, Y.B. Zhu*, H.A. Wu*. Maximum utilization of nacre-mimetic composites by architecture manipulation and interface modification towards critical damage state[J]. Composites Science and Technology, 2023, 233: 109893. 12.S.M. Chen, S.C. Zhang, H.L. Gao*, Q. Wang, L.C. Zhou, H.Y. Zhao, X.Y. Li, M. Gong, X.F. Pan, C. Cui, Z.Y. Wang, Y.L. Zhang, H.A. Wu, S.H. Yu*. Mechanically robust bamboo node and its hierarchically fibrous structural design[J]. National Science Review, 2023, 10(2): nwac195. 13.X.F. Pan, B. Wu, H.L. Gao*, S.M. Chen, Y.B. Zhu, L.C. Zhou, H.A. Wu, S.H. Yu*. Double-layer nacre-inspired polyimide-mica nanocomposite films with excellent mechanical stability for LEO environmental conditions[J]. Advanced Materials, 2022, 34(2): 2105299. 14.Y.F. Meng, Y.B. Zhu, L.C. Zhou, X.S. Meng, Y.L. Yang, R. Zhao, J. Xia, B. Yang, Y.J. Lu, H.A. Wu, L.B. Mao*, S.H. Yu*. Artificial nacre with high toughness amplification factor: residual stress-engineering sparks enhanced extrinsic toughening mechanisms[J]. Advanced Materials, 2022, 34(9): 2108267. 15.L.C. Zhou, Y.B. Zhu, Z.Z. He, X. Jin*, H.A. Wu*. Multi-parameter structural optimization to reconcile mechanical conflicts in nacre-like composites[J]. Composite Structures, 2021, 259: 113225. 16.Q.F. Guan, H.B. Yang, Z.M. Han, L.C. Zhou, Y.B. Zhu, Z.C. Ling, H.B. Jiang, P.F. Wang, T. Ma, H.A. Wu, S.H. Yu*. Lightweight, tough, and sustainable cellulose nanofiber-derived bulk structural materials with low thermal expansion coefficient[J]. Science Advances, 2020, 6(18): eaaz1114. 17.M.W. Chen, B. Wu, L.C. Zhou, Y.B. Zhu*, H.A. Wu. Micromechanical properties of pyrolytic carbon with interlayer crosslink[J]. Carbon, 2020, 159: 549-560. 18.L.C. Zhou, X.H. Sun, M.W. Chen, Y.B. Zhu, H.A. Wu*. Multiscale modeling and theoretical prediction for the thermal conductivity of porous plain-woven carbonized silica/phenolic composites[J]. Composite Structures, 2019, 215: 278-288. 19.L.C. Zhou, M.W. Chen, C. Liu, H.A. Wu*. A multi-scale stochastic fracture model for characterizing the tensile behavior of 2D woven composites[J]. Composite Structures, 2018, 204: 536-547. 20.Z.L. Yu, N. Yang, L.C. Zhou, Z.Y. Ma, Y.B. Zhu, Y.Y. Lu, B. Qin, W.Y. Xing, T. Ma, S.C. Li, H.L. Gao, H.A. Wu, S.H. Yu*. Bioinspired polymeric woods[J]. Science Advances, 2018, 4(8): eaat7223. 主要科研项目: 1.国家重点研发计划青年科学家项目,高性能仿生纳米光学材料的按需设计与制备,2024~2029,参与 2.国家自然科学基金青年项目,仿贝壳结构陶瓷的多层级梯度设计及冲击吸能强化机理研究,2025~2027,主持 3.安徽省自然科学基金青年项目,光热力协同调控下热塑性复合材料缠绕薄壳层间强韧化设计,2024~2026,主持 4.合肥工业大学学术新人提升计划B项目,仿生非等距螺旋复合材料的缓冲特性及增韧机理研究,2025~2026,主持 5.企业委托横向项目,航天可展开空间结构强度设计及数值模拟方法研究,2024~2025,主持 6.国家自然科学基金面上项目,纳米纤维素序构材料多尺度力学和强韧化设计,2022~2025,参与 7.军委装备预研重大基础研究项目,多载荷工况XXX损伤失效规律推演,2021~2023,参与 |