Abstract

To reduce aerodynamic drag of a minivan, non-smooth surfaces are applied to the minivan’s roof panel design. A steady computational fluid dynamics (CFD) method is used to investigate the aerodynamic drag characteristics. The accuracy of the numerical method is validated by wind tunnel test. The drag reduction effects of rectangle, rhombus and arithmetic progression arrangement for circular concaves are investigated numerically, and then the aerodynamic drag coefficient of the rectangle arrangement with a better drag reduction effect is chosen as the optimization objective. Three parameters, that is, the diameter D of the circular concave, the width W and the longitudinal distance L among the circular concaves, are selected as design variables. A 20-level design of an experimental study using a Latin Hypercube scheme is conducted. The responses of 20 groups of sample points are obtained by CFD simulation, based on which a Kriging model is chosen to create the surrogate-model. The multi-island genetic algorithm is employed to find the optimum solution. The result shows that maximum drag reduction effects up to 7.71% can be achieved with a rectangle circular concaves arrangement. The reduction mechanism of the roof with the circular concaves was discussed. The circular concaves decrease friction resistance of the roof and change the flow characteristics of the recirculation area in the wake of the minivan. The roof with the circular concaves reduces the differential pressure drag of the front and rear of the minivan.

Highlights

  • Due to the energy crisis, the field of automotive engineering is more concerned with decreasing the fuel consumption of road vehicles

  • Reducing the aerodynamic drag is crucial for improving fuel efficiency Currently, the improvement of aerodynamic drag characteristics is mainly achieved through methods such as streamlining and local improvement of the body

  • The purpose of this study is to investigate the aerodynamic drag improvement effect by applying the Surrogate Model to the circular concave shape optimization of a minivan with a non-smooth surface

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Summary

Introduction

Due to the energy crisis, the field of automotive engineering is more concerned with decreasing the fuel consumption of road vehicles. Rong Jianglei put forward a local retrofit method of aerodynamic characteristics based on an iterative method, and verified its validity with the aerodynamic drag improvement practice of a car [2]. These methods have some limitations in terms of further aerodynamic drag reductions. If the modified model is still unsatisfactory, trials must be repeated for further modification [3] This method is time-consuming and less efficient, and blind and arbitrary; it is very difficult to obtain the best results

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