依托金属成形高端装备与先进技术全国重点实验室,围绕航空航天、新能源汽车等领域高端装备高性能和轻量化等重大需求,开展轻量化材料塑性成形理论与技术、组织与性能调控等方面研究工作。主持国家自然科学基金青年基金项目等,参与国家自然科学基金重大研发计划、中国航发集团产学研合作项目等。在成形制造领域顶级期刊Int J Plasticity、Int J Mech Sci、J Mater Process Tech等发表SCI学术论文近20篇,担任Int J Plasticity 等期刊审稿人。
代表性科研论文: 1. Lihuang Zheng, Jeong Whan Yoon*. A new failure criterion for predicting meso/micro-scale forming limit of composite metal foils. International Journal of Plasticity, 2024, 176, 103962. 2. Lihuang Zheng, Jeong Whan Yoon*. A flexible yield criterion for strength modeling from biaxial compression to biaxial tension, International Journal of Plasticity. 2024, 104113. 3. Lihuang Zheng, Zhongjin Wang, Bao Meng*, Min Wan. A unified ductile fracture criterion suitable for sheet and bulk metals considering multiple void deformation modes. International Journal of Plasticity, 2023, 164: 103572. 4. Lihuang Zheng, Kun Wang, Yuanyuan Jiang, Min Wan, Bao Meng*. A new ductile failure criterion for micro/meso scale forming limit prediction of metal foils considering size effect and free surface roughening. International Journal of Plasticity, 2022, 157: 103406. 5. Li Ma, Lihuang Zheng, Zhongjin Wang*. An extended M-K model under surface traction with adjustable gradient distribution. International Journal of Plasticity, 2023, 171: 103817. 6. Lihuang Zheng*, Bao Meng*, Min Wan. Prediction of meso/micro scale forming limit for metal foils using a simple criterion. Journal of Material Processing Technology, 2024, 333, 118612. 7. Lihuang Zheng, Zhongjin Wang*, Zhe Wang. Characterizing forming limits at fracture for aluminum 6K21-T4 sheets using an improved biaxial tension/shear loading test. International Journal of Mechanical Sciences, 2019, 159: 487-501. 8. Zhongjin Wang*, Lihuang Zheng, Zhe Wang. Characterization of forming limits at fracture for aluminum alloy 6K21-T4 sheets in non-linear strain paths using a biaxial tension/shear loading test. International Journal of Mechanical Sciences, 2020, 184: 105672. 9. Lihuang Zheng, Cheng Cheng, Min Wan, Bao Meng*. Experimental characterization and theoretical modeling of size-dependent distortional hardening behavior of ultrathin metal sheets under multi-axial loading. European Journal of Mechanics/A Solids, 2022, 92: 104461. 10. Lihuang Zheng, Zhongjin Wang*, Min Wan, Bao Meng*. Yield surface characterization for lightweight alloy sheets via an improved combined shear–tension experimental method. Archives of Civil and Mechanical Engineering, 2022, 22: 96. |
1) 新葡萄88805官网齐鲁青年学者项目, 2025-2030, 主持 2) 国家自然科学基金青年基金项目, 2024-2026, 主持 3) 国家自然科学基金重大研究计划, 2024-2026, 参与 4) 韩国国家研究基金, 2023-2025, 参与 |