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Balancing Thermodynamic and Aerodynamic Attributes Through the Use of a Common CFD Model

机译:通过使用普通的CFD模型平衡热力学和空气动力学属性

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This paper describes how simultaneous numerical simulation of cooling performance and aerodynamic drag can be used to achieve attribute-balanced solutions. Traditionally at Volvo, evaluation of cooling performance and aerodynamics are done by separate teams using separate models and software. However, using this approach, any project changes can be evaluated in terms of their effect on cooling performance and drag from one single model. This enables the project to make decisions that are optimal in a more global perspective. If several proposals have similar levels of cooling performance, the proposal that yields the lowest overall drag can be chosen, thus reducing the fuel consumption of the vehicle. The first part of the paper discusses the prerequisites for the method in terms of boundary conditions, mesh and solution strategy. For the cooling performance part, the importance of high quality boundary conditions is reviewed. To capture drag with a reasonable level of confidence, the boundary layer treatment needs to be addressed. In the second part, the methodology is applied to a Volvo S60R. Four configurations are investigated using the developed methodology. The capability of the method to produce results suitable for attribute balancing is clearly demonstrated.
机译:本文介绍了如何使用冷却性能和空气动力学阻力的同时数值模拟来实现属性平衡的解决方案。传统上,在沃尔沃,使用单独的型号和软件,通过单独的团队进行冷却性能和空气动力学的评估。但是,使用这种方法,可以根据其对冷却性能的影响和从一个单一模型拖动来评估任何项目变化。这使项目能够在更全面的视角下做出最佳的决定。如果有几个提案具有相似的冷却性能水平,则可以选择产生最低总阻力的提议,从而降低了车辆的燃料消耗。本文的第一部分讨论了在边界条件,网格和解决方案策略方面的方法的先决条件。对于冷却性能部分,综述了高质量边界条件的重要性。为了捕获具有合理置信水平的阻力,需要解决边界层处理。在第二部分中,方法应用于沃尔沃S60R。使用开发方法研究了四种配置。清楚地证明了该方法产生适合属性平衡的结果的能力。

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