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。

部分论文列表如下:
1. Dong, H., Shi, H., Lei K., Wang, P.*(2026). Contact-aware semi-analytical modeling for high-throughput thermoelectric generator design with temperature-dependent properties. Applied Thermal Engineering, 307, 133075.
2. Hu, J., Liu Y., Zeng S., Wang, P.*(2026). A Sobolev-constrained Fourier neural operator for high-throughput thermoelectric device screening. Energy Conversion and Management, 370, 122110.
3. 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.
4. 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.
5. 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.
6. 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.
7. 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.
8. 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.
9. 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
10. 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
11. 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.
12. 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
13. 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
14. 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
15. 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.
16. 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.
17. 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.
18. 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.
19. Wang, P., Wang, B.*, Wang, K., & Xi, L.* (2021). Effective behaviors of anisotropic thermoelectric composites containing ellipsoidal inclusions. Composite Structures, 267, 113817.
20. 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.
21. 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.
22. 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.
23. 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.
24. 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.
25. 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.
26. Wang, P., Wang, B. L.*, & Wang, K. F. (2019). Dynamic response of cracked thermoelectric materials. International Journal of Mechanical Sciences, 160, 298–306.
27. 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.
28. 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.
29. 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.
30. 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.
31. 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.

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,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,主持
3. XXX仿真分析与设计计算,中船集团725所,2026.05-2027.04,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,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,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,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,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,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,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,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,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