同济大学
导师风采
王旭
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个人信息

Personal Information

  • 副教授
  • 导师类别:硕士,博士生导师
  • 性别: 男
  • 学历:博士研究生
  • 学位:博士

联系方式

Contact Information

  • 所属院系:物理科学与工程学院
  • 所属专业: 物理学
  • 邮箱 : xuwang@tongji.edu.cn
  • 工作电话 : 021-65982313

个人简介

Personal Profile

同济大学声学研究所副教授,博士生导师。主要研究方向为基于声学功能材料的复杂环境噪声控制技术,包括绿色建筑宽带通风隔声窗、面向城市立体交通的干涉型声屏障等。现兼任中国声学学会环境声学分会委员,中国环境科学学会物理分会委员,上海市声学学会理事;担任国家自然科学基金、上海市科委项目函评专家。主持承担了包括多项国家自然科学基金、上海市科技创新行动计划、国家电网公司总部科技项目等研发课题10余项。在Physical Review Letters, Science Bulletin,Communication Physics等高水平期刊上发表论文30余篇,累计被引用980余次。关于流通条件下环境噪声控制的研究成果受到美国科技媒体ArsTechinca,国内东方卫视、上海科技报等多家媒体的报导。


  • 研究方向Research Directions
复杂城市环境噪声控制,声学超构材料
2. 机电结构优化与控制 研究内容:在对机电结构进行分析和优化的基础上,运用控制理论进行结构参数的调整,使结构性能满足设计要求。1. 仿生结构材料拓扑优化设计, 仿生机械设计 研究内容:以仿生结构为研究对象,运用连续体结构拓扑优化设计理论和方法,对多相仿生结构(机构)材料进行2. 机电结构优化与控制 研究内容:在对机电结构进行分析和优化的基础上,运用控制理论进行结构参数的调整,使结构性能满足设计要求。1. 仿生结构材料拓扑优化设计, 仿生机械设计 研究内容:以仿生结构为研究对象,运用连续体结构拓扑优化设计理论和方法,对多相仿生结构(机构)材料进行整体布局设计。 整体布局设计。
科研项目

宽带通风隔声结构,国家自然科学基金面上项目,2021-2024,主持

绿色建筑通风隔声窗,上海市自然科学基金面上项目,2020-2023,主持

相位和幅度耦合多重干涉型声屏障机理研究,国家自然科学基金面上项目,2018-2021,主持

基于弹性波色散理论的500kV低噪声变压器箱体结构降噪关键技术研究,中国电网,共同主持

基于准周期共鸣器阵列的声阻抗突变界面爆裂声抑制研究,国家自然科学基金青年项目,主持

亚波长尺度声结构阵列构建的非均匀阻抗界面特性研究,中央高校基本科研业务费,主持

Theoretical, numerical and experimental investigations on low-frequency board-band noise control in ventilation systems based on periodic and quasi-periodic Helmholtz resonators array,Research Grants Council of Hong Kong,共同主持


研究成果

  1. Q. Li, R. Dong, D. Mao, X. Wang*, Y. Li*, A Compact Broadband Absorber Based on Helical Metasurfaces, International Journal of Mechanical Sciences 254, 108425 (2023).
  2. X. Fang, N. Wang, W. Wu*, W. Wang, X. Yin, X. Wang*, Y. Li*, Extreme Wave Manipulation via Non-Hermitian Metagratings on Degenerated States, Physical Review Applied 19, 054003 (2023).
  3. Z. Zhou, B. Jia, N. Wang, X. Wang*, Y. Li*, Observation of Perfectly-Chiral Exceptional Point via Bound State in the Continuum, Physical Review Letters 130, 116101 (2023).
  4. (Editors' Suggestion) Y. Zhu, R. Dong, D. Mao*, X. Wang*, Y. Li*, Nonlocal Ventilating Metasurfaces, Physical Review Applied 19, 014067 (2023).
  5. X. Fang, N. Gerard, Z. Zhou, H. Ding, N. Wang, B. Jia, Y. Deng, X. Wang*, Y. Jing*, and Y. Li*, Observation of higher-order exceptional points in a non-local acoustic metagrating, Communication Physics 4, 271(2021).
  6. R. Dong, D. Mao, Y. Zhu, F. Mo, X. Wang* and Y. Li*, A ventilating acoustic barrier for attenuating broadband diffuse sound, Applied Physics Letters119, 263505 (2021).
  7. (Review) R. Dong, M. Sun, F. Mo, D. Mao, X. Wang*, and Y. Li*, Recent advances in acoustic ventilation barriers, J. Phys. D: Appl. Phys. 54, 403002 (2021).
  8. R. Dong, D. Mao, X. Wang*, and Y. Li*, Ultrabroadband Acoustic Ventilation Barriers via Hybrid-Functional Metasurfaces, Physical Review Applied 15, 024044 (2021).
  9. S. Huang, T. Liu, Z. Zhou, X. Wang*, J. Zhu*, and Y. Li*, Extreme sound confinement from quasibound states in the continuum, Physical Review Applied 14, 021001 (2020).
  10. M. Sun, X. Fang, D. Mao*, X. Wang*, and Y. Li*, Broadband acoustic ventilation barriers, Physical Review Applied 13, 044028 (2020).
  11. S. Huang, Z. Zhou, D. Li, T. Liu, X. Wang*, J. Zhu* and Y. Li*, Compact broadband acoustic sink with coherently coupled weak resonances, Science Bulletin 65, 373-379 (2020).
  12. X. Wang, X. Fang, D. Mao, Y. Jing*, and Y. Li*, Extremely asymmetrical acoustic metasurface mirror at the exceptional point, Physical Review Letters 123, 214302 (2019).
  13. X. Fang, X. Wang*, and Y. Li*, Acoustic splitting and bending with compact coding metasurfaces, Physical Review Applied 11, 064033 (2019).
  14. Y. Xiao, H. Lai, Q. Li, XN. Wang, and X. Wang*, Improved interference-type sound barriers: Use of hyperbolic phase modulation, Applied Acoustics 161, 107186 (2020).
  15. W. Zhao, Z. X. Jiang, X. Wang*, and D. Mao*, Characteristics of fine-scale turbulence noise evaluated by modal analysis, Applied Acoustics, 160, 107145 (2020).
  16. X. Wang, W. Yu, Z. Jiang, X. Wang*, and D. Mao*, Acoustic gradient surfaces and gradient-index surfaces: Principles and applications on noise control, Applied Acoustics 143, 151-156 (2019).
  17. S. J. Qiu, S. Li, X. Wang*, and D. Mao*, Enhanced transmission loss through lattice-supported micro-membranes, Applied Acoustics 153, 127-131 (2019).
  18. S. B. Huang, X. S. Fang, X. Wang, B. Assouar, Q. Cheng*, and Y. Li*, Acoustic perfect absorbers via spiral metasurfaces with embedded apertures, Applied Physics Letter 113, 233501 (2018).
  19. S. Li, D. Mao*, S. Huang, X. Wang*,Enhanced transmission loss in acoustic materials with micro-membranes, Applied Acoustics 130, 92-98(2017).
  20. S. Huang,S. Li, X. Wang*,Dongxing Mao*,Micro-perforated absorbers with incompletely partitioned cavities,Applied Acoustics 126, 114-119(2017).
  21. X. Wang, W. Yu, X. Zhu, Z. Jiang, and D. Mao*, Effects of ceiling phase gradients on the acoustic environment on roadside balconies, Journal of the Acoustical Society of America 141, EL146-EL152 (2017).
  22. X. Wang, D. Mao*, and Y. Li*, Broadband acoustic skin cloak based on spiral metasurfaces, Scientific Reports 7, 11604(2017).
  23. X. Wang, XN. Wang, W. Yu, Z. Jiang, and D. Mao*, Acoustic performance of boundaries having constant phase gradient, Journal of the Acoustical Society of America 140, EL7-EL13 (2016).
  24. X. Wang, XN. Wang, W. Yu, Z. Jiang, and D. Mao*, A theoretical model of barriers having inhomogeneous impedance surfaces, Journal of the Acoustical Society of America 139, EL63-69(2016).
  25. W. Yu, X. Wang, R. Wu, J. Yu, Z. Jiang*, D. Mao, Wave propagation in a waveguide with continuous right-angled corners: Numerical simulations and experiment measurements, Applied Acoustics 104, 6-15 (2016).
  26. X. Wang, D. Mao*, W. Yu, and Z. Jiang, Sound barriers from materials of inhomogeneous impedance, Journal of the Acoustical Society of America 137, 1-8 (2015).
  27. X. Wang, D Mao*, W. Yu, and Z. Jiang, Acoustic performance of balconies having inhomogeneous ceiling surfaces on a roadside building facade, Building and Environment 93, 1-8 (2015).
  28. X. Wang and C.M. Mak*, Disorder in a periodic Helmholtz resonators array, Applied Acoustics 82: 1-5(2014).
  29. C.M. Mak*, X Wang and Z. Ai, Prediction of flow noise from in-duct spoilers using Computational Fluid Dynamics, Applied Acoustics 76, 386-390(2014).
  30. X. Wang and C.M. Mak*,Acoustic performance of a duct loaded with identical resonators,Journal of the Acoustical Society of America 131, EL316-EL322(2012).
  31. X. Wang and C.M. Mak*, Wave propagation in a duct with a periodic Helmholtz resonators array, Journal of the Acoustical Society of America 131, 1172~1182(2012).


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