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METHOD TO REDUCE DRAG COEFFICIENT FOR FUEL EFFICIENCY IN SEMI-TRUCK TRAILER AND TRAILER STABILITY

机译:半卡车拖车和拖车稳定性降低燃料效率拖曳系数的方法

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Heavy commercial vehicles due to their un-streamlined body shapes are aerodynamically inefficient due to higher fuel consumption as compared to passenger vehicles. The rising demand and use of fossil fuel escalate the amount of carbon dioxide emitted to the environment, thus more efficient tractor-trailer design becomes necessary to be developed. Fuel consumption can be reduced by either improving the driveline losses or by reducing the external forces acting on the truck. These external forces include rolling resistance and aerodynamic drag. When driving at most of the fuel is used to overcome the drag force, thus aerodynamic drag proves an area of interest to study to develop an efficient tractor-trailer design. Tractor-trailers are equipped with standard add-on components such as roof defectors, boat tails and side skirts. Modification of these components helps reduce drag coefficient and improve fuel efficiency. The objective of this study is to determine the most effective geometry of trailer add-on devices in semi-truck trailer design to reduce the drag coefficient to improve fuel efficiency and vehicle stability. The methodology consisted of CFD analysis on Mercedes Benz Actros using ANSYS FLUENT. The simulation was performed on the tractor-trailer at a speed of 30m/s. The analysis was performed with various types of add-on devices such as side skirts, boat tail and vortex generators. From the simulation results, it was observed that addition of tractor-trailer add-on devices proved beneficial over modifying trailer geometry. Combination of add-on devices in the trailer underbody, rear and front sections was more beneficial in reducing drag coefficient as compared to their individual application. Improving fuel efficiency by 17.74%. Stability of the tractor-trailer is improved due to the add-on devices creating a streamlined body and reducing the low-pressure region at the rear end of the trailer.
机译:由于与乘用车相比,由于其未流动的身体形状引起的重型商用车辆由于燃料消耗而导致的空气动力学效率低。化石燃料的需求和使用升级升级为环境的二氧化碳量,因此开发更有效的拖拉机拖车设计。通过改善传动系损失或通过减少在卡车上的外力来降低燃料消耗。这些外力包括滚动阻力和空气动力学阻力。当行驶在大部分燃料被用于克服阻力,因此空气阻力证明的兴趣研究的领域开发一种有效的拖拉机拖车的设计。拖拉机拖车配有标​​准附加组件,如屋顶缺陷,船尾和侧裙。这些组件的修改有助于降低阻力系数并提高燃料效率。本研究的目的是确定半卡车拖车设计中的拖车附加装置的最有效几何形状,以降低拖曳系数,以提高燃油效率和车辆稳定性。该方法包括梅赛德斯奔驰Actros的CFD分析,使用ANSYS流畅。以30m / s的速度在拖拉机拖车上进行仿真。用各种类型的附加装置进行分析,如侧裙,船尾和涡流发生器。从仿真结果中,观察到添加拖拉机拖车附加装置的添加有利于修改拖车几何形状。与其个人应用相比,拖车底部,后部和前部的拖车中的附加装置的组合更有益,从而降低阻力系数。提高燃油效率17.74%。由于附加装置产生了简化的主体并减少拖车后端的低压区域,提高了拖拉机拖车的稳定性。

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