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辛锋先

教授

基本信息 / Basic Information

  • 主要任职: 国际先进材料协会理事等
  • 博士生导师: 是
  • 硕士生导师: 是
  • 学历: 博士研究生毕业
  • 学位: 博士
  • 所在单位: 航天航空学院
  • 电子邮箱:
  • 办公地点: 创新港2号楼-3185

个人信息

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基本信息

辛锋先

教授  博士生导师 硕士生导师


 爱思唯尔“中国高被引学者”

 

斯坦福大学全球前2%顶尖科学家


青年拔尖人才支持计划

 陕西省杰出青年基金

 

国家自然科学基金委评审专家

教育部学位论文评审专家

中国超材料学会理事

国际先进材料学会理事

中国力学学会理性力学专委会委员

中国力学学会波动力学专业创始成员

 

联系方式

单位:复杂服役环境重大装备结构强度与寿命全国重点实验室

创新港办公室:创新港2号楼-3185

日常邮箱:fxxin@mail.xjtu.edu.cn   

通讯地址:陕西省西安市碑林区咸宁西路28号西安交通大学兴庆校区

邮编:710049

研究领域

个人简介

辛锋先,西安交通大学航天航空学院教授、博士生导师,陕西省杰出青年、青年拔尖人才,哈佛大学、麻省理工学院访问学者。2006年于西安交通大学获力学学士学位,2011年于西安交通大学获力学博士学位(硕博连读);2015—2016年在美国哈佛大学工程与应用科学学院、2017年在美国麻省理工学院机械工程系从事访问研究。

面向航空发动机、跨域飞行器、水下运载装备等国家重大需求,长期从事国家重大装备运载系统动力学与减振降噪研究,在运载系统多场耦合动力学理论、复杂装备结构减振降噪机理、运载装备结构多功能设计技术等方向形成了系统研究成果。研究成果已应用于XXXXX运载装备等领域,为我国运载装备减振降噪技术提供了技术支撑。

主持国家自然科学基金重点国际(地区)合作研究项目、面上项目、联合基金项目及国防基础加强、装发共用技术等国家级科研项目20余项,作为学术骨干参加国家973计划项目和国家自然科学基金创新研究群体项目(两期)。在《Journal of Sound and Vibration》《Mechanical Systems and Signal Processing》《International Journal of Mechanical Sciences》《Journal of the Mechanics and Physics of Solids》《Journal of Fluid Mechanics》等期刊发表SCI论文130余篇,合作出版学术专著2部,授权国家发明专利35项,研究工作获得包括60余位中外院士在内同行学者正面他引评价。

担任国家自然科学基金委员会数理科学部、工程与材料科学部项目评审专家,中国力学学会理性力学和力学中的数学方法专业委员会委员、固体力学专业委员会波动力学组创始成员,中国超材料学会理事、国际先进材料协会理事,并担任《Frontiers in Physics: Physical Acoustics and Ultrasonics》等多个SCI国际学术期刊编委或副编辑。2020—2025年连续六年入选斯坦福大学“全球前2%顶尖科学家”年度榜单及终身榜单,2022—2025年连续四年入选爱思唯尔(Elsevier)“中国高被引学者”榜单。获全国百篇优秀博士论文提名奖、中国科协优秀科技论文奖、国际先进材料协会青年科学奖、江苏省力学学会科学技术奖、中国机械工业科学技术奖等。

辛锋先教授主持的代表性国家级科研项目包括:1)国家自然基金国际合作:面向航空发动机声衬降噪的XXXXXX技术;2)国防科技基础加强计划项目:XXXXXXXX技术;3)装备发展部共用技术项目:XXXXXXXXXX技术研究;4)国家自然基金面上项目:多孔声学XXXX设计技术;5)国家自然基金面上项目:高声强下微穿孔XXXXX技术;6)国家自然基金面上项目:软物质弹性体声-力耦合XXXXXX;7)国家自然基金联合项目:基于周期XXXXX空间站舱体XXXXXX技术。

Fengxian Xin is Professor and Doctoral Supervisor at the School of Aerospace Engineering, Xi'an Jiaotong University (XJTU), recipient of the Shaanxi Provincial Science Fund for Distinguished Young Scholars and a Young Top-Talent, and a Visiting Scholar at Harvard University and the Massachusetts Institute of Technology (MIT). He received his B.S. in Mechanics from XJTU in 2006 and his Ph.D. in Mechanics from XJTU in 2011 through a combined Master's–Ph.D. program. From 2015 to 2016, he conducted visiting research at the Harvard School of Engineering and Applied Sciences, USA, and in 2017 at the Department of Mechanical Engineering, MIT, USA.

Driven by major national demands for aero-engines, cross-domain aircraft, and underwater delivery equipment, he has long been engaged in research on the dynamics and vibration/noise reduction of delivery systems for major national equipment, and has established systematic achievements in the theory of multi-field coupled dynamics of delivery systems, the mechanisms of vibration and noise reduction in complex equipment structures, and multifunctional structural design technologies for delivery equipment. His research findings have been applied in fields including aero-engines, cross-domain aircraft, and underwater delivery equipment, providing technical support for vibration and noise reduction technologies for China's delivery equipment.

He has led more than 20 national research projects, including the Key International (Regional) Cooperative Research Program, General Program, and Joint Fund Program of the National Natural Science Foundation of China (NSFC), as well as the National Defense Foundation Strengthening Program and the common technology program of the Equipment Development Department. He has participated as an academic backbone in a National 973 Program and in two phases of an NSFC Creative Research Group Program. He has published over 130 SCI-indexed papers in journals including Journal of Sound and Vibration, Mechanical Systems and Signal Processing, International Journal of Mechanical Sciences, Journal of the Mechanics and Physics of Solids, and Journal of Fluid Mechanics, co-authored two academic monographs, and holds 35 granted national invention patents; his work has been positively cited and commented on by more than 60 Chinese and foreign academicians.

He serves as a project review expert for the Mathematical and Physical Sciences Division and the Engineering and Materials Sciences Division of NSFC, a member of the Professional Committee on Rational Mechanics and Mathematical Methods in Mechanics and a founding member of the Wave Dynamics Group of the Professional Committee on Solid Mechanics of the Chinese Society of Mechanics, and a council member of the Chinese Metamaterials Society and of the International Association of Advanced Materials (IAAM). He also serves as an editorial board member or associate editor of several SCI-indexed international journals, including Frontiers in Physics: Physical Acoustics and Ultrasonics. He has been listed in Stanford University's "World's Top 2% Scientists" annual and career-long rankings for six consecutive years (2020–2025), and in Elsevier's "Highly Cited Chinese Researchers" list for four consecutive years (2022–2025). His honors include the Nomination Award for the National 100 Excellent Doctoral Dissertations, the Excellent Science and Technology Paper Award of the China Association for Science and Technology, the Young Scientist Award of the International Association of Advanced Materials, the Science and Technology Award of the Jiangsu Society of Mechanics, and the China Machinery Industry Science and Technology Award.

 

教育经历

2006/09-2011/03,西安交通大学,力学,研究生/工学博士

2002/09-2006/07,西安交通大学,力学,本科/工学学士

 

工作经历

2020.12.14-至今,西安交通大学,航天航空学院,教授,博士生导师

2016.01-2020.12,西安交通大学,航天航空学院,副教授,博士生导师

2017.10-2017.11,麻省理工学院,机械工程系,访问学者

2015.01-2016.01,哈佛大学,工程与应用科学学院,访问学者

2014.01-2014.12,西安交通大学,航天航空学院,副教授,博士生导师

2011.04-2013.12,西安交通大学航天航空学院,讲师,硕士生导师

 

研究方向:

1. 运载系统声-力耦合多场动力学(Acousto-mechanical coupled multi-field dynamics of delivery systems)

(1)运载装备系统中多场耦合与跨尺度能量转换机理(Mechanisms of multi-field coupling and cross-scale energy conversion in delivery vehicle systems);

(2)极端工况下载运结构声振耦合动力学行为(Acousto-vibration coupled dynamics of delivery structures under extreme conditions);

(3)运载装备多物理场耦合建模与性能预测(Multi-physics coupled modeling and performance prediction of delivery equipment)。

2. 航空运载装备减振降噪技术(Vibration and noise reduction technology for aerospace delivery equipment)

(1)航空发动机声衬结构吸声理论与设计方法(Sound absorption theory and design methods for aero-engine acoustic liners);

(2)跨域飞行器典型结构热-声-振耦合动力学与减振设计(Thermal-acoustic-vibration coupled dynamics and vibration reduction design of typical cross-domain aircraft structures);

(3)多维约束条件下低频宽带高效减振降噪技术(Low-frequency broadband high-efficiency vibration and noise reduction technology under multi-dimensional constraints)。

3. 水下运载装备声学多功能设计(Acoustic multifunctional design of underwater delivery equipment)

(1)深海高压环境下装备结构吸声机理(Sound absorption mechanisms of equipment structures in deep-sea high-pressure environments);

(2)力学承载与声振耗能协同的多功能构型设计方法(Multifunctional configuration design methods synergizing mechanical load-bearing with acousto-vibration energy dissipation);

(3)水下运载装备声隐身与减振降噪一体化技术(Integrated acoustic stealth and vibration/noise reduction technology for underwater delivery equipment)。

4. 声学超结构在运载装备中的应用(Application of acoustic metastructures in delivery equipment)

(1)面向运载装备的声学超结构跨尺度设计理论(Cross-scale design theory of acoustic metastructures for delivery equipment);

(2)多功能复合材料结构性能优化与工程应用(Performance optimization and engineering application of multifunctional composite structures);

(3)超结构设计、性能表征及运载装备适配性验证(Metastructure design, performance characterization and adaptability verification for delivery equipment)。

 

讲授课程

本科生课程《工程力学》

本科生课程《结构设计原理及优化设计》

研究生课程《声学理论与工程应用》

 

 

代表文章

 

  1.  Wang XC, Li M, Wu ZS, Lu TJ*, Xin FX*. A lightweight compact metastructure for simultaneous load-bearing, energy absorption and broadband low-frequency underwater sound attenuation. Journal of the Mechanics and Physics of Solids, 2026, 214: 106655:1-30.

  2. Zhang WT, Xin FX*. Broadband low-frequency sound absorption via Helmholtz resonators with porous material lining. Journal of Sound and Vibration, 2024, 578: 118330:1-14. [ESI高被引文章]

  3. Xu FL, Liu YF, Xin FX*. Deformation dynamics of biconcave red blood cells in viscous fluid driven by ultrasound. Journal of Fluid Mechanics, 2025, 1023: A22:1-28.

  4. Liu YF, Xin FX*. Shape dynamics of capsules in two phase-shifted orthogonal ultrasonic standing waves: A numerical investigation. Journal of Fluid Mechanics, 2023, 964: A18:1-29.

  5.  Liu YF, Xin FX*. Controlled mean dynamics of red blood cells by two orthogonal ultrasonic standing waves. Journal of Fluid Mechanics, 2024, 979: A11:1-33.

  6.  Zhang WT, Xin FX*. Coiled-up structure with porous material lining for enhanced sound absorption. International Journal of Mechanical Sciences, 2023, 256:108480:1-13. [ESI高被引文章]

  7. Liu XW, Liu ML, Xin FX*. Sound absorption of a perforated panel backed with perforated porous material: Energy dissipation of Helmholtz resonator cavity. Mechanical Systems and Signal Processing, 2023, 185: 109762:1-14.

  8.  Cai CX, Xin FX*. Hybrid honeycomb structure for enhanced broadband underwater sound absorption. International Journal of Mechanical Sciences, 2024, 283: 109645: 1-13.

  9. Ye CZ, Liu XW, Xin FX*, Lu TJ*. Influence of hole shape on sound absorption of underwater anechoic layers. Journal of Sound and Vibration, 2018, 426: 54-74.

  10.  Xin FX*, Lu TJ*. Analytical modeling of fluid loaded orthogonally rib-stiffened sandwich structures: Sound transmission. Journal of the Mechanics and Physics of Solids, 2010, 58(9):1374-1396.


  1. Xin FX*, Lu TJ*, Chen CQ*. External mean flow Influence on noise transmission through double-leaf aeroelastic plates. AIAA Journal, 2009, 47(8): 1939-1951.

  2. Meng H, Xin FX* and Lu TJ*. External Mean Flow Effects on Sound Transmission Through Acoustic Absorptive Sandwich Structure. AIAA Journal, 2012, 50(10): 2268-2276.

  3. Xin FX*, Lu TJ*. External mean flow effects on noise radiation from orthogonally rib-stiffened aeroelastic plates. AIAA Journal, 2013, 51(2): 406-415.

  4. Liu XW, Ma XW, Yu CL, Xin FX*. Sound absorption of porous materials perforated with holes having gradually varying radii. Aerospace Science and Technology, 2022, 120: 107229:1-16.

  5. Xu ZM, Song SY, Xin FX*, Lu TJ*. Mathematical modeling of Stokes flow in petal shaped pipes. Physics of Fluids, 2019, 31(1): 013602: 1-9. [PoF主编遴选Featured article].

  6. Xu ZM, He W, Xin FX*, Lu TJ*. Sound propagation in porous materials containing rough tubes. Physics of Fluids, 2020, 32(9):093604:1-9. [PoF主编遴选Editor's Pick].

  7.  Zhang L, Zhang WT, Xin FX*. Sound absorption of two-dimensional rough tube porous materials. Physics of Fluids, 2022, 34(8): 083612:1-12. [PoF主编遴选Featured article].

  8. Xin FX*, Lu TJ*. A nonlinear acoustomechanical field theory of polymeric gels. International Journal of Solids and Structures, 2017, 112: 133-142.

  9. Duan MY, Yu CL, Xin FX*, Lu TJ*. Tunable underwater acoustic metamaterials via quasi-Helmholtz resonance: From low-frequency to ultra-broadband. Applied Physics Letters, 2021, 118: 071904:1-6.

  10. Xin FX*. Signal response of rib-stiffened plates covered by decoupling coating layers. Journal of Sound and Vibration, 2015, 348: 206-223.


  11. He W, Peng XJ, Xin FX*, Lu TJ*. A microstructure-based model of transport parameters and sound absorption for woven fabrics. Composites Science and Technology, 2022, 227:109607:1-10.

  12. Zhang WT, Liu XW, Xin FX*. Normal incidence sound absorption of an acoustic labyrinthine metal-fibers-based porous metamaterial at high temperature. International Journal of Mechanical Sciences, 2023, 237: 107821:1-10.

  13. S. W. Ren*, L. Van Belle, C. Claeys, F. X. Xin*, T. J. Lu*, E. Deckers, W. Desmet. Improvement of the sound absorption of flexible micro-perforated panels by local resonances. Mechanical Systems and Signal Processing, 2019, 117: 138-156.

  14. Xin FX*, Ma XW, Liu XW, Zhang Ch. A multiscale theoretical approach for the sound absorption of slit-perforated double porosity materials. Composite Structures, 2019, 223: 110919:1-12.

  15. Tang YF, Xin FX*, Lu TJ*. Sound absorption of micro-perforated sandwich panel with honeycomb-corrugation hybrid core at high temperatures. Composite Structures, 2019, 226: 111285:1-11.

  16. Tang YF, He W, Xin FX*, Lu TJ*. Nonlinear sound absorption of ultralight hybrid-cored sandwich panels. Mechanical Systems and Signal Processing, 2020, 135:106428:1-11.

  17. Zhang L, Zhang WT, Xin FX*. Broadband low-frequency sound absorption of honeycomb sandwich panels with rough embedded necks. Mechanical Systems and Signal Processing, 2023, 196: 110311:1-12.

  18. Zhou XD, Zhang WT, Geng XF, Xin FX*. Broadband sound absorption of micro-perforated sandwich panels with hierarchical honeycomb core at high sound pressure levels. Composite Structures, 2025, 354: 118794:1-11.

  19. Cai CX, Xin FX*. Pressure-adaptive ultra-thin hybrid metamaterials for broadband low-frequency underwater sound absorption. Thin-Walled Structures, 2025, 216: 113603:1-15.

  20. Gong JQ, Zhang Ch. Xin FX*. Aerothermoelastic flutter analysis of variable angle tow composite laminated plates in supersonic flow. Applied Mathematical Modelling, 2024, 130: 119-139.



2022年-2026年连续培养4篇西安交通大学优秀硕士学位论文、及西安交通大学优秀博士学位论文。

 

课题组常年招收力学、机械及相关专业硕士、博士研究生,招收博士后,并欢迎申报学校青年优秀人才(青秀)、青年拔尖人才(青拔)计划的青年学者加入。

 

课题组面向航空发动机、跨域飞行器、水下运载装备等国家重大需求,长期从事运载系统多场耦合动力学与减振降噪研究,承担国家级科研项目多项,具备良好的理论、计算与实验条件。欢迎力学、机械、航天航空、能源动力、物理、声学、材料等相关理工科背景的优秀学生及青年学者联系,课题组将提供开阔的学术视野、扎实的科研训练与良好的成长发展空间。

   

联系方式:fxxin@mail.xjtu.edu.cn