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航天工程

 


姓名:赵瑞

职称:副教授

导师类型:博导

团队名称:高温材料与结构技术团队

邮箱:zr@bit.edu.cn

 

研究领域

主要研究领域为:

1.高超声速气动热-烧蚀耦合计算

2.高超声速边界层转捩和湍流

3.大型计算流体力学(CFD)软件开发

4.基于机器学习的气动-材料响应分析

教育经历

2008年9月–2013年6月:北京航空航天大学 流体力学专业 博士学位

2004年9月–2008年7月:北京航空航天大学 飞行器设计与工程专业 学士学位

工作经历

2019年7月–今:北京理工大学 宇航学院 副教授

2017年1月-2018年1月:香港理工大学 机械工程学系 助理研究员

2013年6月–2019年7月:北京理工大学 宇航学院 讲师

学术成果

专著:

1. 赵瑞,等,《湍流与转捩数值模拟方法》,ISBN:978-7-5640-7626-9

2. 赵瑞,等, Stabilization of Hypersonic Boundary-Layer: Acoustic Metasurfaces,北京理工大学出版社和Springer出版社, ISBN: 978-7-5763-4109-6,2024.5(国外书号:978-981-97-8622-0,2025.01)

论文:

[1]Stabilization mechanisms of various acoustic metasurfaces on the second mode in hypersonic boundary-layer flows,  Physics of Fluids,2023, online

[2]Effect of Acoustic Metasurface on Hypersonic-Boundary-Layer Wave Packet, Physics of Fluids,2023, online

[3]Energy growth of vortical, acoustic, and entropic components of the second-mode instability in the hypersonic boundary layer. Physics of Fluids, 2023,35 (5): 054104.

[4]Broadband design of acoustic metasurfaces for the stabilization of a Mach 4 boundary layer flow. Advances in Aerodynamics 4, 15 (2022).

[5]Stabilization effect of acoustic metasurfaces on broadband disturbances in a Mach 6 boundary-layer flow. Physics of Fluids 2022; 34 (12): 121706.

[6]Review of Acoustic Metasurfaces for Hypersonic Boundary Layer Stabilization. Progress in Aerospace Sciences, Vol. 130, No.100808, 2022.

[7]Assessment and Improvement of K-ω-γ Model for Separation-Induced Transition Prediction [J]. Chinese Journal of Aeronautics, 35(11), 219-234, 2022.

[8]Performance Deterioration of Pitot Tubes Caused by In-Flight Ice Accretion: A Numerical Investigation.” International Journal of Aerospace Engineering, Vol. 2021, 5599116, pp. 1–18.

[9]Mechanism of stabilization of porous coatings on unstable supersonic mode in hypersonic boundary layers, Physics of Fluids. 33 (2021) 054105.

[10]Control of Reflected Waves with Acoustic Metasurfaces for Hypersonic Boundary-Layer Stabilization, AIAA Journal, 59(6), 1893–1898, 2021.

[11]Spatial Direct Numerical Simulation of the Hypersonic Boundary-Layer Stabilization using Porous Coatings [J], AIAA Journal, 57(11), 5061-5065, 2019.

[12]Theoretical Modeling of Porous Coatings with Simple Microstructures for Hypersonic Boundary-Layer Stabilization [J], AIAA Journal, 58(2), 981–986, 2020.

[13]Reverse Design of Ultrasonic Absorptive Coating for the Stabilization of Mack Modes [J], AIAA Journal, 57(6),2264-2269,2019.

[14]Impedance-Near-Zero Acoustic Metasurface for Hypersonic Boundary-Layer Flow Stabilization [J], Physical Review Applied, 11, 044015, 2019. (SCI)

[15]Application of improved k-ω-γ transition model to hypersonic complex configurations [J], AIAA Journal , 57(5),2214-2221,2019.

[16]Theoretical Modeling and Optimization of Porous Coating for Hypersonic-laminar-flow Control [J], AIAA Journal,56(8),2942-2946,2018

[17]CFD design of ventilation system for large underground bus terminal in Macau Barrier Gate [J], Journal of Wind Engineering & Industrial Aerodynamics, 179, 1-13, 2018

[18]An investigation of interface conditions inherent in detached-eddy simulation methods [J], Aerospace Science and Technology. 74,46-55,2018.

[19]A combined criteria-based method for hypersonic three-dimensional boundary layer transition prediction [J], Aerospace Science and Technology. 73, 105–117, 2018.

[20]Numerical simulation of local wall heating and cooling effect on the stability of a hypersonic boundary layer [J]. International Journal of heat and mass transfer 121, 986-998, 2018.

[21]An entropy-assisted shielding function in DDES formulation for the SST turbulence model [J], Entropy. 19, 93, 2017.

[22]Entropy-based detached-eddy simulation of the airwake over a simple frigate shape [J], Advances in Mechanical Engineering, 7(11), 1-13, 2015

[23]Entropy and its application in turbulence modeling [J], Science Bulletin, 59(31),4137-4141, 2014

[24]Towards an entropy-based detached eddy simulation [J], SCIENCE CHINA Physics, Mechanics & Astronomy, 56(10),1970-1980,2013

[25]A new kind Baldwin-Lomax turbulence model under the limit of entropy [J], Chinese Journal of Aeronautics, 26(3),529-534,2013

[26]Scale-Adaptive Simulation of flow over wavy cylinders at a subcritical Reynolds number [J], Acta Mechanica Sinica, 27(5), 660-667, 2011

[27]Comparative assessment of PANS and DES for simulation of flow past a circular cylinder [J]. Journal of Wind Engineering and Industrial Aerodynamics, 134, 65-77, 2014

[28]延迟高超声速边界层转捩技术研究进展[J].航空学报,2021:1-15.

[29]声学超表面抑制高速边界层内宽频不稳定模态研究[J].北京航空航天大学学报,2021:1-14

[30]高超声速飞行器复杂外形转捩预测[J].气体物理,2021,6(05):26-33.

[31]声学超表面抑制第一模态研究[J].航空科学技术,2020,31(11):104-112.

[32]不同舰船机库外形下艉流场特征数值模拟研究[J]. 船舶力学.23 (05):512-522,2019

[33]声学超表面抑制Mack第2模态机理与优化设计[J]. 气体物理. 3(06):35-40, 2018

[34]火星进入器壁面脉动压力环境数值模拟研究[J],宇航学报,39(5),482-490,2018

[35]火星进入器作强迫震荡运动壁面脉动压力数值模拟[J].宇航学报,40(02):148-155,2019.

[36]一种新型的动态RANS/LES混合方法[J],推进技术[J], 38(9),1950-1955,2017

[37]舰船舰面空气流场特性研究进展[J]. 船舶力学. 22(11):1431-1444, 2018

[38]整流罩母线形状对脉动压力环境的影响研究[J],兵工学报,38(5),1020-1026,2017

[39]一种改进的跨声速旋成体壁面脉动压力经验预测公式[J],宇航学报,37(10),1179-1184,2016.

[40]Definition of turbulent boundary-layer with entropy concept [J]. MATEC Web of Conferences, 77: 02005, 2016.

[41]火箭整流罩外气动噪声环境的大涡模拟研究 [J], 宇航学报,36(9),988-994,2015.

[42].比熵增概念及其在湍流模型中的应用[J],空气动力学报,31(3),381-387,2013

[43]Detailed investigation of detached-eddy simulation for the flow past a circular cylinder at Re=3900 [J], Applied Mechanics and Materials Journal, 232,471-476,2012

[44]基于熵限制的Baldwin-Lomax 湍流模型[J],北京航空航天大学学报,38(2),175-190,2012

[45]超声速复杂流动中湍流模型的性能评估[J],北京航空航天大学学报,37(2),202-205,2011

[46]壁面温度条件对边界层转捩预测的影响[J]. 航空学报. 2013,(10):2249-2255.

[47]γ-Reθ模式应用于高速边界层转捩的研究[J]. 空气动力学学报. 2013,(01):120-126.

[48]XY-SAS模型对于分离流动的性能分析[J]. 北京航空航天大学学报. 2010,(04):415-419.

教学工作

1.本科生课程《流场仿真与风洞试验实践》《空气动力学》《Computational fluid dynamics》《气动弹性基础》

2.研究生课程《粘性流体力学》《航天工程科技前沿》

荣誉奖励

1.首次火星探测任务先进个人。决定文号:人社部发〔2022〕78号。表彰时间:2022年11月。表彰单位:人力资源社会保障部 国防科工局 工业和信息化部 国资委 中科院 中央军委政治工作部。

2.2024年入围美国斯坦福大学与Elsevier联合发布了第七版航空航天领域全球前2%顶尖科学家榜单

3.2021年北京理工大学科技创新计划创新人才-青年拔尖人才

社会兼职

1.中国空气动力学会理事

2.高超声速专业委员会委员

3.中国航空学会流动控制与热管理分会委员

4.《气动研究与实验》期刊青年编委

5.《Space: Science & Technology》期刊青年编委

6.《空天技术》期刊青年编委

7.《Discover Fluid Mechanics》编委

8.《American Journal of Mechanics and Applications》编委