利用形状优化技术和附加装置减少阻力的概念自主重型车辆的计算分析

Dr. Mohammad Rafiq B. Agrewale, Pratik Deepak Agrawal
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引用次数: 0

摘要

重型商用车辆的设计对提高空气动力性能起着至关重要的作用。传统的商用车通常采用箱形驾驶室和标准拖车配置,因此油耗较高。车辆周围的流线型气流将改善空气动力特性,并直接影响油耗。作为技术进步的一部分,设计具有流线型流动特性的自动驾驶汽车将带来高效率的车辆。这项研究工作的目的是对自主重型车辆减少阻力的概念进行计算分析。最初,为了获得车辆周围的流线型流动特性,我们使用了形状优化技术,并对不同的设计方面进行了优化。此外,还在车辆拖车部分加入了各种附加装置,如船尾和侧裙。根据基准和市场调查,选择了典型的传统重型商用车辆作为基准车型。考虑到自动驾驶车辆,利用形状优化技术和附加装置提出了车辆的概念设计。为了观察流动特性和评估阻力,我们使用可实现的 k-e 湍流模型,以 80kmph 的速度对基准车辆模型和拟议的概念自主重型车辆模型进行了计算分析。结果表明,在所选参数下,与基准车辆模型相比,拟议的概念自主重型车辆模型的阻力系数较低。风阻系数总体降低了约 54%。因此,采用自主技术的拟议车辆设计可用于高效货运。关键词流动特性、概念自主车辆、形状优化、阻力系数、附加装置
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computational Analysis of Concept Autonomous Heavy Vehicle to Reduce Drag Using Shape Optimization Technique and Add-On Devices
The design of heavy commercial vehicles plays a vital role in improving aerodynamic performance. Typically, conventional commercial vehicles have box-shaped driver cabins and standard trailer configurations leading to high fuel consumption. The streamlined flow around the vehicle will improve the aerodynamic characteristics and directly influence fuel consumption. As a part of technological advancement, the design of the autonomous vehicle with streamlined flow characteristics will give a highly efficient vehicle. The objective of this research work is to perform a computational analysis of the concept of autonomous heavy vehicles to reduce drag. Initially, to get streamline flow characteristics around the vehicle, the shape optimization technique is used with different design aspects. Further, various add-on devices such as boat tails and side skirts are incorporated into the vehicle trailer part. Based on benchmarking and market surveys, a typical conventional heavy commercial vehicle model is selected as the baseline vehicle model. Considering autonomous vehicles, the concept design of the vehicle is proposed using shape optimization techniques and add-on devices. To observe flow characteristics and to evaluate drag, the computational analysis is performed using a realizable k-e turbulence model at a speed of 80kmph for the baseline vehicle model and proposed concept autonomous heavy vehicle model. The result shows a low drag coefficient for the proposed conceptual autonomous heavy vehicle model as compared to the baseline vehicle model for the selected parameters. The overall reduction of the drag coefficient is observed at around 54%. Thus, the proposed vehicle design using autonomous technology can be used for efficient freight transportation. Keywords: Flow characteristics, concept autonomous vehicle, shape optimization, drag coefficient, add-on devices
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