近期论文
查看导师新发文章
(温馨提示:请注意重名现象,建议点开原文通过作者单位确认)
SCI论文(通讯作者*)
1. Xueshi Ma, Ke Xiong, Qingda Yang, Liang Wang*. Progress damage analysis and crack growth modelling in thin ply laminates using nonlinear augmented finite element method. Thin-Walled Structures, 2021,161:107433.
2. Hu C, Yang Q, Ling D, Wang L*. Numerical simulations of arbitrary evolving cracks in soil structures using the nonlinear augmented finite element method. Mechanics of materials, 2021, 156:103814.
3. Wang L, Yang Q D. Geometrically nonlinear augmented finite element method for arbitrary cracking in composite laminates[J]. Computers & Structures, 2020, 239: 106327.
4. Liao X, Wang W, Wang L, et al. A highly stretchable and deformation-insensitive bionic electronic exteroceptive neural sensor for human-machine interfaces[J]. Nano Energy, 2020: 105548.
5. Wang L, Ma X, Yang Q, et al. Nonlinear Augmented Finite Element Method (n-AFEM) for Arbitrary Cracking in Large Deformation Plates and Shells[J]. International Journal for Numerical Methods in Engineering, 2020,121:4509-4536.
6. Nygren G, Wang L, Yang Q, et al. Microstructural effects on failure modes in highly aligned short carbon fiber composites[J]. Polymer Composites, 2020, 41(10): 4288-4296.
7. Hu C, Ling D, Ren X, Gong S, Wang L, Huang Z. An improved crack-tip element treatment for advanced FEMs[J]. Theoretical and Applied Fracture Mechanics, 2020: 102587.
8. Hu C, Wang L, Ling D, et al. Experimental and Numerical Investigation on the Tensile Fracture of Compacted Clay[J]. Computer Modeling in Engineering & Sciences, 2020, 123(1): 283-307.
9. Wang L, Nygren G, Karkkainen R L, et al. A multiscale approach for virtual testing of highly aligned short carbon fiber composites[J]. Composite Structures, 2019, 230: 111462.
10. Wang L, Zhao B, Wu J, et al. Experimental and numerical investigation on mechanical behaviors of woven fabric composites under off-axial loading[J]. International Journal of Mechanical Sciences, 2018, 141: 157-167.
11. Liao X, Wang W, Wang L, et al. Controllably Enhancing Stretchability of Highly Sensitive Fiber-Based Strain Sensors for Intelligent Monitoring[J]. ACS applied materials & interfaces, 2018, 11(2): 2431-2440.
12. Wang B, Wang L*, Wu J, et al. Design and characterization of isothermal chambers filled with gradient-porous materials[J]. Journal of Thermal Science and Technology, 2017, 12(1): JTST0008-JTST0008.
13. Shin, G., Gomez, A. M., Al-Hasani, R., Jeong, Y. R., Kim, J., Xie, Z., Wang, L., et al. Flexible near-field wireless optoelectronics as subder mal implants for broad applications in optogenetics[J]. Neuron, 2017, 93(3): 509-521. e3.
14. Lee, Y. K., Jang, K. I., Ma, Y., Koh, A., Chen, H., Wang, L., et al. Chemical Sensing Systems that Utilize Soft Electronics on Thin Elastomeric Substrates with Open Cellular Designs. Advanced Functional Materials, 27(9):1605476.1-1605476.8, 2017.
15. Wang L, Wu J, Chen C, et al. Progressive failure analysis of 2D woven composites at the meso-micro scale[J]. Composite Structures, 2017, 178: 395-405.
16. Yinji Ma, Matt Pharr, Liang Wang, Jeonghyun Kim, Yuhao Liu, Yeguang Xue, Rui Ning, Xiufeng Wang, Ha Uk Chung, Xue Feng, John A. Rogers, and Yonggang Huang. Soft elastomers with ionic liquid-filled cavities as strain isolating substrates for wearable electronics. Small, 13(9):1602954, 2017.
17. Wang L, Wang B, Wei S, et al. Prediction of long-term fatigue life of CFRP composite hydrogen storage vessel based on micromechanics of failure[J]. Composites Part B: Engineering, 2016, 97: 274-281.
18. Koh, A., Kang, D., Xue, Y., Lee, S., Pielak, R. M., Kim, J., Wang, L., et al. A soft, wearable microfluidic device for the capture, storage, and colorimetric sensing of sweat. Science Translational Medicine, 8(366):366ra165-366ra165, 2016.
19. Ma Y, Jang K I, Wang L, et al. Design of Strain Limiting Substrate Materials for Stretchable and Flexible Electronics. Advanced Functional Materials, 26(29):5345-5351, 2016.
20. Wang L, Zheng C, Wei S, et al. Micromechanics-based progressive failure analysis of carbon fiber/epoxy composite vessel under combined internal pressure and thermomechanical loading[J]. Composites Part B: Engineering, 2016, 89: 77-84.
21. Yihui Zhang, Zheng Yan, Kewang Nan, Dongqing Xiao, Yuhao Liu, Haiwen Luan, Haoran Fu, Xizhu Wang, Qinglin Yang, Jiechen Wang, Liang Wang, Yonggang Huang, and John A. Rogers. A mechanically driven form of Kirigami as a route to 3D mesostructures in micro/nanomembranes. (PNAS) Proceedings of the National Academy of Sciences USA, 112(38): 11757-11764, 2015.
22. Wang L, Zheng C, Luo H, et al. Continuum damage modeling and progressive failure analysis of carbon fiber/epoxy composite pressure vessel[J]. Composite Structures, 2015, 134: 475-482.
23. Wang B, Hong Y, Wang L, et al. Development and numerical investigation of novel gradient-porous heat sinks. Energy Conversion & Management, 106:1370-1378, 2015.
24. Wang L, Zheng C, Wei S, et al. Thermo-mechanical investigation of composite high-pressure hydrogen storage cylinder during fast filling[J]. International Journal of Hydrogen Energy, 2015, 40(21): 6853-6859.
25. Li R, Zheng C, Chen B, Wang L, et al. Research on hydrogen environment fatigue test system and correlative fatigue test of hydrogen storage vessel. Journal of Shanghai Jiaotong University, 19: 88-94, 2014.
26. Wang L, Zheng C, Li R, et al. Numerical analysis of temperature rise within 70 MPa composite hydrogen vehicle cylinder during fast refueling[J]. Journal of Central South University, 2014, 21(7): 2772-2778.
27. Zheng C, Wang L*, Li R, et al. Fatigue test of carbon epoxy composite high pressure hydrogen storage vessel under hydrogen environment[J]. Journal of Zhejiang University SCIENCE A, 2013, 14(6): 393-400.