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Prediction of NO_X Vehicular Emissions using On-Board Measurement and Chassis Dynamometer Testing

机译:使用车载测量和机箱测功机测试预测NO_X车辆排放

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Motor vehicles' rate models for predicting emissions of oxides of nitrogen (NO_x) are insensitive to their modes of operation such as cruise, acceleration, deceleration and idle, because these models are usually based on the average trip speed. This study demonstrates the feasibility of using other variables such as vehicle speed, acceleration, load, power and ambient temperature to predict NO_X emissions. The NO_X emissions need to be accurately estimated to ensure that air quality plans are designed and implemented appropriately. For this, we propose to use the non-parametric multivariate adaptive regression splines (MARS) to model NO_X emission of vehicle in accordance with on-board measurements and also the chassis dynamometer testing. The MARS methodology is then applied to estimate the NO_X emissions. The model approach provides more reliable results of the estimation and offers better predictions of NO_X emissions. The results therefore suggest that the MARS methodology is a useful and fairly accurate tool for predicting NO_X emission that may be adopted by regulatory agencies in understanding the effect of vehicle operation and NO_X emissions.
机译:机动车速率模型预测氮(NO_x的)的氧化物的排放是不敏感的它们的操作的模式,如巡航,加速,减速和空闲,因为这些模型通常基于平均行程速度。这项研究表明,使用其他变量,如车辆速度,加速度,负载,功率和环境温度来预测排放NO_X的可行性。该NO_X排放量需要精确地估计,以确保空气质量计划的设计和适当的执行。对于这一点,我们建议使用非参数多元自适应回归样条(MARS)到车辆的模型NO_X发射按照板载测量和也底盘测功机测试。然后,MARS方法被施加到估算NO_X排放。该模型方法提供估计的更可靠的结果和NO_X排放提供了更好的预测。因此,该结果表明,MARS方法是预测可能由监管机构了解车辆运行和NO_X排放的效果采用NO_X排放的有用和相当准确的工具。

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