教师姓名: 王攀
职称:特聘副教授
教师拼音名称:Wang Pan
性别:男
所在单位:土木工程学院
学历:博士研究生毕业
入职时间:2022-09-05
学位:工学博士学位
毕业院校:哈尔滨工业大学
在职信息:在职
学科:力学
招生学科:力学

王攀,男,湖北应城人。主要针对国家重大战略装备以及核心“卡脖子”问题围绕极端环境下多场耦合问题的本构理论、多场耦合计算、多场耦合优化等相关问题开展研究。主持/参与国家自然科学基金委重大项目、JKW重点项目、国家自然科学基金委面上项目、国家自然科学基金委联合项目、广东省自然科学基金重点项目、深圳市基础研究加强项目等科研项目若干。以第一/通讯作者在Int. J. Eng. Sci.、J. Power Sources、Compo. Part-B: Eng.、Compo. Struct.、Int. J. Heat Mass Trans.等国际知名期刊发表SCI论文若干。
目前主要研究方向为:多场耦合力学、计算力学、复合材料结构力学。
鄙人不才,无显赫头衔,亦乏雄厚课题。唯怀一念:既为人师,当尽本分。若有幸得遇有志于学的年轻人,我定当以诚相待、倾囊相授。学问之道,甘苦自知;为人之本,不敢稍怠。数年时光转瞬即逝,但愿你我相携一程,不虚此行,足矣。

部分论文列表如下:
1. 胡竣淞, 邓锐杰, & 王攀* (2026). 基于位错滑移本构模型的冷轧加工模拟研究. 中国科学:物理学 力学 天文学.
2. Wen, W., Hong, Y., & Wang, P.* (2026). A generalized three-sub-step composite implicit time integration method with improved accuracy and convergence for linear and nonlinear dynamics. International Journal of Structural Stability and Dynamics, 2650224. https://doi.org/10.1142/S021945542650224X
3. Hu, J.-S., Deng, R.-J., Wang, P.*, & Zeng, S.* (2026). A pressure-sensitive free-volume model for elevated-temperature deformation in bulk metallic glass. Intermetallics, 197, 109361. https://doi.org/10.1016/j.intermet.2026.109361
4. Ye, X., Kang, K., Hong, Y., Wen, W.*, Wang, P.*, & Liang, J. (2026). An enhanced tetrahedral quasi-smooth manifold element method for complex three-dimensional nonlinear heat conduction problems. Applied Thermal Engineering, 302, 131929. https://doi.org/10.1016/j.applthermaleng.2026.131929
5. Hu, J., Deng, R., & Wang, P.* (2026). Crystal plasticity modeling of low-cycle fatigue in 6061-T6 aluminum alloy. Applied Mathematics and Mechanics (English Edition), 47(6), 1323–1340. https://doi.org/10.1007/s10483-026-3400-6
6. Wang, P., Li, M., Hu, J., Wen, W., Gao, R., & Zeng, S.* (2026). Efficient transient thermal topology optimization through modal-wavelet integrated framework. Structural and Multidisciplinary Optimization, 69, 99. https://doi.org/10.1007/s00158-026-04284-z
7. Deng, S., Wen, W.*, Wang, P.*, Duan, S., & Liang, J. (2026). Quasi-smooth manifold element-based parameterized level set method for microstructure design with energy homogenization. Computer Methods in Applied Mechanics and Engineering, 459, 119075. https://doi.org/10.1016/j.cma.2026.119075
8. Kang, K., Wen, W.*, Wang, P.*, Duan, S., & Liang, J.* (2026). A novel 10-node tetrahedral quasi-smooth manifold method and its application in statics analysis of complex geometric structures. Computational Mechanics, 77(3), 729–759. https://doi.org/10.1007/s00466-025-02686-2
9. Wen, W., Hong, Y., Kang, K., Ye, X., Wang, P.*, & Liang, J. (2025). A novel quadratic exponential B-spline based explicit time integration approach with energy corrector technique for transient heat conduction analysis. International Journal for Numerical Methods in Engineering, 126(17), e70117. https://doi.org/10.1002/nme.70117
10. Ye, X., Liu, S., Wen, W.*, Wang, P.*, & Liang, J. (2025). A novel quasi-smooth manifold element method for structural transient heat conduction analysis with radiation and nonlinear boundaries. Finite Elements in Analysis and Design, 251, 104428. https://doi.org/10.1016/j.finel.2025.104428
11. Deng, S., Wen, W.*, Wang, P.*, Duan, S., & Liang, J. (2025). A multi-resolution parameterized level set method based on quasi-smooth manifold element. Computer Methods in Applied Mechanics and Engineering, 441, 117995. https://doi.org/10.1016/j.cma.2025.117995
12. Wang, P., Han, X., Wen, W.*, Wang, B., & Liang, J.* (2024). Galerkin-based quasi-smooth manifold element (QSME) method for anisotropic heat conduction problems in composites with complex geometry. Applied Mathematics and Mechanics (English Edition), 45(1), 137–154. https://doi.org/10.1007/s10483-024-3072-8
13. Chen, Y., Ai, S.*, Wang, P.*, & Fang, D. (2022). A physically based thermo-elastoplastic constitutive model for braided CMCs-SiC at ultra-high temperature. Journal of the American Ceramic Society, 105(3), 2196–2208. https://doi.org/10.1111/jace.18213
14. Wang, P., Wang, K. F., Wang, B. L., Xi, L., Sano, K., Shimada, T., Hirakata, H., & Fang, D. N. (2022). Interlaminar fracture toughness measurement of multilayered 2D thermoelectric materials Bi₂Te₃ by a tapered cantilever bending experiment. Experimental Mechanics, 62(1), 165–180. https://doi.org/10.1007/s11340-021-00761-2
15. Xi, L.*, Zhang, Y., Gupta, H., Terrill, N., Wang, P.*, Zhao, T.*, & Fang, D. (2021). A multiscale study of structural and compositional changes in a natural nanocomposite: Osteoporotic bone with chronic endogenous steroid excess. Bone, 143, 115666. https://doi.org/10.1016/j.bone.2020.115666
16. Wang, P.*, Wang, B., Wang, K., Gao, R.*, & Xi, L.* (2021). An analytical model for performance prediction and optimization of thermoelectric generators with varied leg cross-sections. International Journal of Heat and Mass Transfer, 174, 121292. https://doi.org/10.1016/j.ijheatmasstransfer.2021.121292
17. Wang, P., Wang, B.*, Wang, K., & Xi, L.* (2021). Effective behaviors of anisotropic thermoelectric composites containing ellipsoidal inclusions. Composite Structures, 267, 113817. https://doi.org/10.1016/j.compstruct.2021.113817
18. Wang, P., Wang, K., Xi, L., Gao, R.*, & Wang, B.* (2021). Fast and accurate performance prediction and optimization of thermoelectric generators with deep neural networks. Advanced Materials Technologies, 6(7), 2100011. https://doi.org/10.1002/admt.202100011
19. Gao, R.*, Wang, P.*, Sun, X., & Yang, S. (2021). Isogeometric boundary element analysis of liquid nonlinear sloshing in two dimensional rectangular tanks. Computer Methods in Applied Mechanics and Engineering, 387, 114135. https://doi.org/10.1016/j.cma.2021.114135
20. Xi, L., Barbieri, E., Wang, P.*, Wu, W.*, & Gupta, H. (2021). Separating effects of bone-quality changes at multiple scales in steroid-induced osteoporosis: Combining multiscale experimental and modelling approaches. Mechanics of Materials, 157, 103821. https://doi.org/10.1016/j.mechmat.2021.103821
21. Wang, P.*, Wang, K.*, Wang, B., Zhang, C., & Fang, D. (2020). Fracture of thermoelectric materials: An electrical and thermal strip saturation model. Engineering Fracture Mechanics, 235, 107186. https://doi.org/10.1016/j.engfracmech.2020.107186
22. Wang, P., Wang, B. L.*, Wang, K. F., & Cui, Y. J. (2019). Analysis of inclusion in thermoelectric materials: The thermal stress field and the effect of inclusion on thermoelectric properties. Composites Part B: Engineering, 166, 130–138. https://doi.org/10.1016/j.compositesb.2018.11.120
23. Wang, P., Wang, B. L.*, Wang, K. F., Hirakata, H., & Zhang, C. (2019). Analysis of three-dimensional ellipsoidal inclusions in thermoelectric solids. International Journal of Engineering Science, 142, 158–169. https://doi.org/10.1016/j.ijengsci.2019.06.005
24. Wang, P., Wang, B. L.*, & Wang, K. F. (2019). Dynamic response of cracked thermoelectric materials. International Journal of Mechanical Sciences, 160, 298–306. https://doi.org/10.1016/j.ijmecsci.2019.06.047
25. Wang, P.*, Li, J. E.*, Wang, B. L., Shimada, T., Hirakata, H., & Zhang, C. (2019). Lifetime prediction of thermoelectric devices under thermal cycling. Journal of Power Sources, 437, 226861. https://doi.org/10.1016/j.jpowsour.2019.226861
26. Wang, P., Wang, K. F., Wang, B. L.*, & Cui, Y. J. (2019). Modeling of thermoelectric generators with effects of side surface heat convection and temperature dependence of material properties. International Journal of Heat and Mass Transfer, 133, 1145–1153. https://doi.org/10.1016/j.ijheatmasstransfer.2019.01.006
27. Wang, P., Wang, B. L.*, & Li, J. E.* (2019). Temperature and performance modeling of thermoelectric generators. International Journal of Heat and Mass Transfer, 143, 118509. https://doi.org/10.1016/j.ijheatmasstransfer.2019.118509
28. Wang, P., Wang, K. F., Wang, B. L.*, & Cui, Y. J. (2018). Effective thermoelectric conversion properties of thermoelectric composites containing a crack/hole. Composite Structures, 191, 180–189. https://doi.org/10.1016/j.compstruct.2018.02.049
29. Wang, P.*, & Wang, B. L. (2017). Thermoelectric fields and associated thermal stresses for an inclined elliptic hole in thermoelectric materials. International Journal of Engineering Science, 119, 93–108. https://doi.org/10.1016/j.ijengsci.2017.06.018

部分项目列表如下:
1. XXX能力评估方法研究,中船集团719所,2026.06-2027.11,92.9万元,主持
2. XXX计算方法与失效判据研究,中船集团719所,2026.06-2027.11,105.2万元,主持
3. XXX仿真分析与设计计算,中船集团725所,2026.05-2027.04,27万元,主持
4. 编织复合材料与结构高性能计算框架与热-力耦合优化,湖南省自然科学基金青年B类项目,2026.01-2028.12,20万元,主持
5. XXX高效计算分析方法,JKW基础加强计划重点项目,2024.08~2027.08,225万元,主持课题一
6. XXX综合效能评估,中央军委科技委基础加强计划重点项目,2023.06~2027.06,200万元,主持子课题
7. 新型U型拼接板式钢—混凝土组合桥面结构体系关键技术研究,贵州省交通规划勘察设计研究院股份有限公司,2023.02~2023.12,17万元,主持
8. 可穿戴柔性热电器件的界面退化和服役寿命预测研究,湖南省自然科学基金青年项目,2023.01~2025.12,5万元,主持
9. 服役热电器件界面损伤演化的热-电-力-化学耦合行为及寿命预测,国家自然科学基金委青年项目,2022.01~2024.12,30万元,主持
10. 服役环境下力化学耦合机制与性能调控,国家自然科学基金委重大项目,2021.01~2025.12,64万元,主持子课题
11. 热电器件的界面失效机理研究,中国博士后基金面上项目,2021.01~2022.06,8万元,主持

专业:力学
专业:力学

中南大学 › 土木工程学院 › 特聘副教授
北京理工大学 › 宇航学院 › 博士后