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External aerodynamics of heavy ground vehicles: Computations and wind tunnel testing.

机译:重型地面车辆的外部空气动力学:计算和风洞测试。

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Aerodynamic characteristics of a ground vehicle affect vehicle operation in many ways. Aerodynamic drag, lift and side forces have influence on fuel efficiency, vehicle top speed and acceleration performance. In addition, engine cooling, air conditioning, wind noise, visibility, stability and crosswind sensitivity are some other tasks for vehicle aerodynamics. All of these areas benefit from drag reduction and changing the lift force in favor of the operating conditions. This can be achieved by optimization of external body geometry and flow modification devices. Considering the latter, a thorough understanding of the airflow is a prerequisite.; The present study aims to simulate the external flow field around a ground vehicle using a computational method. The model and the method are selected to be three dimensional and time-dependent. The Reynolds-averaged Navier Stokes equations are solved using a finite volume method. The Renormalization Group (RNG) k-ϵ model was elected for closure of the turbulent quantities. Initially, the aerodynamics of a generic bluff body is studied computationally and experimentally to demonstrate a number of relevant issues including the validation of the computational method. Experimental study was conducted at the Langley Full Scale Wind Tunnel using pressure probes and force measurement equipment. Experiments and computations are conducted on several geometric configurations. Results are compared in an attempt to validate the computational model for ground vehicle aerodynamics.; Then, the external aerodynamics of a heavy truck is simulated using the validated computational fluid dynamics method, and the external flow is presented using computer visualization. Finally, to help the estimation of the error due to two commonly practiced engineering simplifications, a parametric study on the tires and the moving ground effect are conducted on full-scale tractor-trailer configuration. Force and pressure coefficients and velocity distribution around tractor-trailer assembly are computed for each case and the results compared with each other.; Finally, this study demonstrates that it is possible to apply computational fluid dynamics for ground vehicle aerodynamics with substantial detail and fidelity. With the latest developments on computing power, computational fluid dynamics can be applied on real-life transportation problems with reasonable turn-around times, reliability, ease of accessibility and affordability. The next step is deemed to be considering such a computational methodology for analysis within an automated optimization process in improving aerodynamic designs of heavy ground vehicles.
机译:地面车辆的空气动力学特性在许多方面影响车辆的运行。气动阻力,升力和侧向力会影响燃油效率,车辆最高速度和加速性能。此外,发动机冷却,空调,风噪声,能见度,稳定性和侧风灵敏度是车辆空气动力学的其他一些任务。所有这些领域都受益于减少阻力和根据工作条件改变升力。这可以通过优化外部几何形状和流量调节装置来实现。考虑到后者,必须对气流有透彻的了解。本研究旨在使用一种计算方法来模拟地面车辆周围的外部流场。该模型和方法选择为三维且与时间有关。使用有限体积方法求解雷诺平均Navier Stokes方程。重归一化组(RNG)k-ϵ选择模型以关闭湍流量。最初,对通用钝体的空气动力学进行了计算和实验研究,以证明许多相关问题,包括计算方法的验证。使用压力探头和测力设备在兰利全尺寸风洞进行了实验研究。在几种几何构型上进行实验和计算。比较结果以验证地面车辆空气动力学的计算模型。然后,使用经过验证的计算流体动力学方法对重型卡车的外部空气动力学进行了模拟,并使用计算机可视化来显示外部流动。最后,为帮助估算由于两次常用的工程简化而引起的误差,对轮胎和移动地面效应的参数研究在全尺寸拖拉机-拖车构型上进行。计算每种情况下牵引车-挂车总成周围的力和压力系数以及速度分布,并将结果相互比较。最后,这项研究表明,可以将计算流体动力学应用于地面车辆的空气动力学,并且具有相当的细节和逼真度。随着计算能力的最新发展,计算流体动力学可以以合理的周转时间,可靠性,易访问性和可负担性应用于现实生活中的运输问题。下一步被认为是考虑在改进重型地面车辆的空气动力学设计的自动优化过程中进行分析的这种计算方法。

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