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Heavy Truck Drag Reduction Obtained from Devices Installed on the Trailer

机译:从安装在拖车上安装的设备获得的重型卡车减阻

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摘要

The flow-field around a “common” European heavy truck, equipped with several different trailer devices, is investigated using steady and unsteady simulations.udThis work demonstrates how with simple devices added on the trailer it is possible to strongly decrease the aerodynamic drag over 10%, with an increase of overall dimensions below 1% without any change to the load capacity of the trailer.udSeveral devices, installed on the trailer, are tested on a target vehicle and the shape of the “airbag”, the “fin”, the “boat tail” and the “front-rear trailer device” has been optimized to achieve the maximum in drag reduction in front wind. The performance of the optimized devices are tested also in cross wind conditions with the yaw angle varying from 0° to 30°.udThe truck equipped with the front-rear trailer device is also investigated using time variant simulation with yaw angle of 0°, 5°, 10°.udDetached eddy simulation (DES) with one equation Spalart-Allmaras as turbulence model is used to perform the analysis of the unsteady flow; the two equation k-ω SST turbulence model is selected for the steady-state RANS simulations. The unsteady simulations are performed using computational meshes on the order of 40 million of elements while RANS simulation are done with mesh of 10 million of elements.
机译:使用稳定和不稳定的模拟来研究“常见的”欧洲重型卡车的流场,配备有几种不同的拖车设备。 udthis工作演示了拖车上添加的简单设备,可以强烈降低空气动力学拖动10%,随着拖车的负载容量而没有任何改变的总尺寸的总体尺寸增加。 udseveral设备,安装在拖车上,在目标车辆上进行测试,并在“安全气囊”,“鳍片” “,”船尾“和”前后拖车设备“已被优化,以实现前风减少的最大值。优化器件的性能也在交叉风条件下测试,横摆角度从0°变为0°到30°。 ud该卡车还使用时间变体模拟来研究,横摆角度为0°, 5°,10°10°。 Uddetached涡流模拟(DES)使用一个等式Spalart-Allmaras作为湍流模型用于执行不稳定流的分析;选择两个等式K-ωSST湍流模型用于稳态RANS模拟。不稳定的模拟是使用计算网格在40百万元素的元素上进行的,而RAN模拟以1000万元素的网格完成。

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