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Assessing Road Load Coefficients of a Semi-Trailer Combination Using a Mechanical Simulation Software with Calibration Corrections

机译:使用具有校准校正的机械仿真软件评估半拖车组合的道路载荷系数

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The study of road loads on trucks plays a major role in assessing the effect of heavy-vehicle design on fuel conservation measures. Coastdown testing with full-scale vehicles in the field offers a good avenue to extract drag components, provided that random instrumentation faults and biased environmental conditions do not introduce errors into the results. However, full-scale coastdown testing is expensive, and environmental biases which are ever-present are difficult to control in the results reduction. Procedures introduced to overcome the shortcomings of full-scale field testing, such as wind tunnels and computational fluid dynamics (CFD), though very reliable, mainly focus on estimating the effects of aerodynamic drag forces to the neglect of other road loads which should be considered. The development of mechanical simulation software in recent years suggests it is becoming much easier to incorporate the effects of other road load forces in drag analyses and fuel conservation measures. This study analyzed road loads obtained using a typical mechanical simulation software under calm and zero-wind conditions. The results were compared to drag coefficients derived from field tests of a fully instrumented truck and published drag coefficient values. The study found that the aerodynamic drag coefficients obtained from the simulation software were higher than those of the field and published data. A calibration curve was developed using the field test results and simulated data to correct the simulated drag forces. Average drag coefficients obtained from the corrected simulation forces were found to fall within the range of published data. However, due to the limitations of the simulation software in fully accounting for environmental conditions encountered in the field, some sensitivities of the derived coefficients in the field were observed. The results from using the mechanical simulation software suggest reasonable estimates of total road loads can be derived if corrections are applied. Better estimates of the aerodynamic drag forces may be derived from other approaches such as CFD and wind tunnel tests.
机译:卡车上的道路载荷研究在评估重型设计对燃料养护措施的影响方面发挥了重要作用。通过该领域的全尺寸车辆的海岸测试提供了一个良好的途径来提取拖曳组件,只要随机仪器故障和偏见的环境条件不会引入结果。然而,满量程的海岸测试是昂贵的,并且在减少结果中难以控制环境偏差。介绍的程序克服了全规模现场测试的缺点,如风隧道和计算流体动力学(CFD),虽然非常可靠,主要是估计空气动力阻力力对应考虑的其他道路载荷的忽视效果。近年来机械仿真软件的开发表明,在拖累分析和燃料节约措施中融合其他道路负荷力量的影响变得越来越容易。本研究分析了在平静和零风条件下使用典型的机械仿真软件获得的道路载荷。将结果与源自完全仪表卡车的现场测试和公布的拖动系数值进行了比较。该研究发现,从仿真软件获得的空气动力学阻力系数高于现场和公布数据的空气动力学阻力系数。使用现场测试结果和模拟数据来开发校准曲线,以校正模拟阻力。发现从校正的模拟力获得的平均拖动系数落在发布数据的范围内。然而,由于仿真软件在现场遇到的环境条件的完全核算中,观察了该领域中衍生系数的一些敏感性。使用机械仿真软件的结果表明,如果应用校正,可以推导出总路载荷的合理估计。更好地估计空气动力学阻力力可能来自其他方法,例如CFD和风洞测试。

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