scholarly journals Analysis of the Effects of SD Plasma on Aerodynamic Drag Reduction of a High-speed Train

2014 ◽  
Vol 9 (5) ◽  
pp. 1712-1718 ◽  
Author(s):  
Hyung-Woo Lee ◽  
Hyeok-Bin Kwon
Author(s):  
Salman Javed ◽  
Farhan Javed ◽  
Samsher

An appendage is a boat tail which is installed at the rear section of the passenger car. An inflatable appendage has been developed to reduce the aerodynamic drag experienced by passenger cars. It can be inflated when driving under high-speed conditions and deflated while parking. In this study, an appendage is designed to maintain the streamlined rear body configuration and reduce flow separation. The profile of this aerodynamic device is based on several mathematical curves such as kappa curve, lame curve, catenary curve and aerofoil curve. Four types of boat tailing devices with different lengths and profiles were installed, and computational fluid dynamics (CFD) analysis was performed under moving ground conditions. The primary objective of this study is to find an optimum shape for the appendage and explain the aerodynamic drag reduction mechanism. Comparisons between the base model and modified models were made on the basis of the coefficient of drag, pressure contours, velocity contours, velocity streamlines and pressure distribution plot. It is shown that significant drag reduction can be obtained with the proposed aerodynamic device. Improvement in fuel efficiency varies based on the profile of add-on device. It is shown numerically that the aerodynamic performance is improved by 18.8% compared to the base model. As a result, the fuel consumption of the modified sedan reduces by 4.5%.


Author(s):  
Bo Yin ◽  
Guowei Yang

Rough surfaces of flying and swimming animals help to reduce the aerodynamic or hydrodynamic drag when they move in the environment. In this research, biomimetic rough surface is introduced for high-speed train to reduce the aerodynamic drag. CFD tool is used to numerically study how the aerodynamic drag is altered by applying the biomimetic structures to the high-speed train surface. Rough surface is distributed in three areas: pantograph, bogie and windshield areas to reduce the drag at train speed of V = 400km/h. Concave is employed on these areas and orthogonally distributed with diameter of 40mm and center-to-center distance from 60mm to 80mm. The drag force is slightly increased/decreased in the pantograph area, while in the bogie and windshield areas rough structures lead to drag reduction with same distribution configuration. For all cases, the amount of shear drag change is much less than the pressure drag change. The total drag reduction mainly comes from pressure change. Rough surface positively contributes to changing the surface flow and thus reducing the aerodynamic drag.


Author(s):  
Rui Li ◽  
Ping Xu ◽  
Shuguang Yao

Aerodynamic drag reduction is one of the most important issues in the development of high-speed trains. This study focused on the aerodynamic optimization of the train by modifying the shape of the head car and tail car. Three shape parameters were studied in this paper: the angle of cab-window, nose-length, and nose-width of the train. The effects of shape parameters on the aerodynamic drag coefficients of the head car and tail car were discussed, respectively. It can be concluded that the flat surface of the window region, long and sharp nose are the distinguishing characters of a high-speed train with low resistance. Response surface models of the shape parameters and the aerodynamic drag of the head car and tail car were obtained, respectively. Based on these models, an aerodynamic optimization was performed to achieve the optimal shape. As a result, the total aerodynamic drag of the optimal train decreased by 2.05% compared with the original value.


2013 ◽  
Vol 307 ◽  
pp. 186-191 ◽  
Author(s):  
Peng Guo ◽  
Xing Jun Hu ◽  
Yun Yun Zhu ◽  
Qiang Fu ◽  
Xin Yu Wang ◽  
...  

Aerodynamic drag reduction of commercial truck at high speed is one of the important ways to reduce its energy consumption. CFD simulation and wind tunnel tests are performed on a kind of commercial truck, to study the influence of the cab shape and different kinds of guide cowls on aerodynamic drag, and the impact mechanism was also analyzed. It shows that the cab shape will make great contributions to the aerodynamic drag while the truck travelling, and through improving the shape of cab, guiding the air flow passed, it can effectively reduce the aerodynamic drag and achieve energy saving.


2012 ◽  
Author(s):  
Seung-On Kang ◽  
Jun-Ho Cho ◽  
Sang-Ook Jun ◽  
Hoon-Il Park ◽  
Ki-Sun Song ◽  
...  

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