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Evaluation and Optimization of Aerodynamic and Aero-Acoustic Performance of a Heavy Truck using Digital Simulation

机译:用数字仿真评估和优化重型卡车的空气动力学和空气声学性能

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The engineering process in the development of commercial vehicles is facing more and more stringent emission regulations while at the same time the market demands for better performance but with lower fuel consumption. The optimization of aerodynamic performance for reduced drag is a key element for achieving related performance targets. Closely related to aerodynamics are wind noise and cabin soiling and both of them are becoming more and more important as a quality criterion in many markets. This paper describes the aerodynamic and aero-acoustic performance evaluation of a Dongfeng heavy truck using digital simulation based on a LBM approach. It includes a study for improving drag within the design of a facelift of the truck. A soiling analysis is performed for each aerodynamic result by calculating the accumulation of particles emitted form the wheels on the cabin. One of the challenges in the development process of trucks is that different cabin types have to be designed. The aerodynamic performance study considers a high roof and a low roof version of the truck. For the high roof version, the existing model is compared to the initial facelift version. Design recommendations for guide vanes, sun visor, mirrors and roof fairing are derived from the flow analysis. The design changes are then applied by morphing the simulation model and tested by simulating the modified geometry in a very short design cycle. While drag is improved by 7.4% the detailed analysis shows that not all changes are really effective and that in particular soiling is affected in an adverse way. For the low roof version of the truck the effectiveness of a roof fairing is evaluated by comparing to the low roof model without roof fairing and to the best high roof model. The aero-acoustic evaluation considers two areas of interest. The first one is typical greenhouse wind noise where wall pressure fluctuations (WPF) on the glass panels are main contributors to the interior noise. Problem areas are identified through surface dB maps and design recommendations are derived from a detailed analysis of the flow structures. The second area considers problems that are related to appendages like a sun visor or the roof fairing. Such problems have occasionally been observed on trucks and a methodology to address such issues in the development process is shown.
机译:商用车开发中的工程过程正面临越来越严格的排放法规,与此同时,市场需要更好的性能,但油耗更低。优化气动性能以减少阻力是实现相关性能目标的关键因素。与空气动力学密切相关的是风噪声和机舱污染,在许多市场上,这两种质量标准越来越重要。本文使用基于LBM方法的数字仿真描述了东风重型卡车的空气动力学和空气声学性能评估。它包括一项在卡车整车设计中改善阻力的研究。通过计算从机舱上的车轮排出的颗粒物的积聚,对每个空气动力学结果进行污染分析。卡车开发过程中的挑战之一是必须设计不同的驾驶室类型。空气动力性能研究考虑了卡车的高车顶和低车顶版本。对于高屋顶版本,将现有模型与初始改版版本进行比较。导流叶片,遮阳板,后视镜和屋顶整流罩的设计建议来自流量分析。然后,通过使仿真模型变形来应用设计更改,并在非常短的设计周期内通过仿真修改后的几何形状进行测试。虽然阻力提高了7.4%,但详细分析显示,并非所有更改都真正有效,尤其是污染受到不利影响。对于卡车的低车顶版本,通过与无车顶整流罩的低车顶模型以及最佳的高车顶模型进行比较,评估了车顶整流罩的有效性。航空声学评估考虑了两个感兴趣的领域。第一个是典型的温室风噪声,玻璃面板上的壁压波动(WPF)是造成室内噪声的主要因素。通过表面分贝图确定问题区域,并根据对流动结构的详细分析得出设计建议。第二个区域考虑与附件相关的问题,例如遮阳板或屋顶整流罩。偶尔会在卡车上观察到此类问题,并显示了在开发过程中解决此类问题的方法。

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