Aerodynamic drag optimization of a high-speed train

被引:39
作者
Munoz-Paniagua, J. [1 ]
Garcia, J. [1 ]
机构
[1] Univ Politecn Madrid, Escuela Tecn Super Ingn Ind, Dept Ingn Energet, C Jose Gutierrez Abascal 2, Madrid 28006, Spain
关键词
Shape optimization; High-speed train; Genetic algorithm; Surrogate model; SAS; NOSE SHAPE; FLOW; WAKE; SLIPSTREAM; SIMULATION; MODELS; SAS;
D O I
10.1016/j.jweia.2020.104215
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This paper considers the optimization of the nose shape of a high-speed train to minimize the drag coefficient in zero-yaw-angle conditions. The optimization is performed using genetic algorithms (GA) and is based on the Aerodynamic Train Model (ATM) as the reference geometry. Since the GA requires the parameterization of each optimal candidate, 25 design variables are used to define the shape of the train nose and, in particular, to reproduce that of the ATM. The computational cost associated to the GA is reduced by introducing a surrogate model in the optimization workflow so that it evaluates each optimal candidate in a more efficient way. This surrogate model is built from a large set of simulations defined in a Latin Hypercube Sampling design of ex-periments, and its accuracy is improved each optimization iteration (online optimization). In this paper we detail the whole optimization process, ending with an extense analysis of results, both statistical (analysis of variance (ANOVA) to identify the most significant variables and clustering using Self-Organized Maps (SOM)), and aero-dynamic. The latter is performed running two accurate simulations using Scale-Adaptive Simulation (SAS) tur-bulence model. The optimal design reduces the drag coefficient a 32.5% of the reference geometry.
引用
收藏
页数:15
相关论文
共 57 条
[1]  
[Anonymous], 2006, OFF J EUR COMMUNITIE
[2]  
[Anonymous], 2013, ANSYS FLUENT US GUID
[3]  
[Anonymous], 1984, SAE INT, DOI DOI 10.4271/840300
[4]  
[Anonymous], 1993, REPORT RAIL TECHNICA
[5]   The flow around high speed trains [J].
Baker, Chris .
JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2010, 98 (6-7) :277-298
[6]   Full-scale measurement and analysis of train slipstreams and wakes. Part 1: Ensemble averages [J].
Baker, Chris J. ;
Quinn, Andrew ;
Sima, Mikael ;
Hoefener, Lars ;
Licciardello, Ricardo .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART F-JOURNAL OF RAIL AND RAPID TRANSIT, 2014, 228 (05) :451-467
[7]   The effect of tail geometry on the slipstream and unsteady wake structure of high-speed trains [J].
Bell, J. R. ;
Burton, D. ;
Thompson, M. C. ;
Herbst, A. H. ;
Sheridan, J. .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2017, 83 :215-230
[8]   Wind tunnel analysis of the slipstream and wake of a high-speed train [J].
Bell, J. R. ;
Burton, D. ;
Thompson, M. ;
Herbst, A. ;
Sheridan, J. .
JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2014, 134 :122-138
[9]   Aerodynamics of Heavy Vehicles [J].
Choi, Haecheon ;
Lee, Jungil ;
Park, Hyungmin .
ANNUAL REVIEW OF FLUID MECHANICS, VOL 46, 2014, 46 :441-468
[10]   Robert!Legendre and Henri!Werle:: Toward the elucidation of three-dimensional separation [J].
Délery, JM .
ANNUAL REVIEW OF FLUID MECHANICS, 2001, 33 :129-154