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A Combined Digital and Experimental Process for the Aerodynamic Optimization of the New Lavida

机译:新型LAVIDA的空气动力学优化的组合数字与实验过程

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The aerodynamic optimization of passenger cars has become a major task in the development process of SVW when developing cars for the Chinese market. The pressure to reduce fuel consumption and emissions is leading to aggressive targets for aerodynamic drag. Furthermore, Chinese regulations require the publication of aerodynamic drag of vehicles sold in the Chinese market. This paper describes the approach taken by Shanghai Volkswagen (SVW) for the aerodynamic development of the New Lavida. During this project, SVW optimized its development process by extensively using CFD simulation to reduce aerodynamic drag in the very early phase of the project, i.e. the design of the upper body. Very often the interaction between styling and aerodynamics is an iterative procedure for finding a compromise between function and styling and a short response time for the aerodynamic evaluation is required. CFD turns out to be the ideal tool for collaboration between design, package, regulation and aerodynamics in this phase of the development. In a later stage, testing in the new full scale aeroacoustic wind tunnel of the Shanghai Automotive Wind Tunnel Center (SAWTC) at Tongji University plays a more important role. Wind tunnel testing was on the one hand used to confirm the CFD results and on the other hand used for optimizing components and layout of the underbody. Such modifications do not interfere with styling and are often carried out as parameter studies which can be done very quickly in the wind tunnel once a model has been built. The approach with significant involvement of CFD for the aerodynamic optimization of the New Lavida has enabled SVW to reach the target of 4% reduction in aerodynamic drag over the Lavida (last generation) with minimal use of physical testing in the wind tunnel.
机译:乘用车的空气动力学优化已成为SVW开发汽车市场市场的开发过程中的一项重大任务。降低燃料消耗和排放的压力导致气动阻力的侵略性目标。此外,中国法规要求出版中国市场销售的车辆的空气动力学阻力。本文介绍了上海大众(SVW)对新熔岩的空气动力学发展采取的方法。在该项目期间,SVW通过广泛使用CFD仿真来优化其开发过程,以减少项目的早期阶段的空气动力学阻力,即上半身的设计。非常经常造型和空气动力学之间的相互作用是用于在功能和造型之间找到折衷的迭代过程,并且需要对空气动力学评估的短响应时间。 CFD证明是在该开发的这种阶段的设计,包装,调节和空气动力学之间合作的理想工具。在稍后阶段,同济大学上海汽车风隧道中心(SAWTC)的新全规模的空气声隧道中的测试发挥了更重要的作用。风隧道测试一方面用于确认CFD结果,另一方面是用于优化底层的组件和布局。这种修改不会干扰造型,并且通常作为参数研究进行,这是一旦建造了一个模型,可以在风洞中快速完成。 CFD对新Lavida的空气动力学优化具有显着涉及的方法使SVW能够在Lavida(上一代)上达到4%的空气动力学阻力减少的目标,并在风洞中使用物理测试使用。

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