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RDE Plus - The Development of a Road, Rig and Engine-in-the-Loop Test Methodology for Real Driving Emissions Compliance

机译:RDE Plus - 用于实际驾驶排放符合性的道路,钻机和发动机循环试验方法的开发

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The introduction of the Worldwide Harmonised Light Vehicles Test Procedure (WLTP) and Real Driving Emissions (RDE) test requirements have put increased strain on vehicle and engine performance as well as the development of advanced engine technologies and emissions mitigation strategies. This requirement for increased development is a direct result of the need for new vehicles to comply with present and emerging emissions standards across an extended range of boundary conditions that include ambient temperature, altitude and driving style. To reduce the significant number of on-road test permutations that would ordinarily be required to validate a given vehicle across the defined RDE boundary conditions, a Road to Rig (R2R) development approach known as RDE Plus (RDE+) is being evolved at HORIBA MIRA. This will enable real world driving scenarios to be developed and deployed much further upstream during the development lifecycle of the vehicle and engine using aspects of virtual calibration; the aim being to significantly reduce vehicle and engine development costs and associated timescales. On-road RDE data is presented in this paper from vehicles of different powertrain technologies gathered from several European test locations under conditions representing the boundaries defined by the RDE protocol. Upon gathering a combination of vehicle CANBus, custom instrumentation and emissions (Portable Emissions Measurement System (PEMS)) data, recorded RDE routes were replicated on a chassis dynamometer with a view of developing a standardised practical approach to replicate RDE tests in the laboratory environment. Lab tests were performed at HORIBA MIRA in the Advanced Emissions Test Centre (AETC) with the aim of defining a chassis dynamometer test methodology suitable for different powertrain technologies that results in accurate representations of on-road conditions with respect to vehicle load, ambient temperature, altitude and emissions. Following the road to chassis dynamometer correlation, the vehicle engines will be installed on an engine dynamometer with the objective of developing a suite of “worst case” RDE cycles using an Engine-in-the-Loop (EiL) format complemented with a Design of Experiments (DoE) type mapping approach. These “worst case” cycles, most likely operating near to or at the RDE boundary condition limits, can then be adopted for engine and vehicle development purposes as well as providing evidence of complete RDE compliance. The methodology to develop this EiL strategy in combination with a detailed overview of RDE+ project as a whole is presented in this paper.
机译:在全球统一的轻型车辆测试程序(WLTP)和实际驾驶排放(RDE)测试要求的引入已经增加了车辆和发动机性能的增加,以及先进的发动机技术和排放减缓策略的发展。这种增加的发展要求是一种直接导致新车辆,遵守在延长范围的边界条件范围内的现状和新兴排放标准,包括环境温度,高度和驾驶风格。为了减少通常需要在定义的RDE边界条件下验证给定车辆的大量路线测试排列,在Horiba Mira演化了称为RDE Plus(RDE +)的钻机(R2R)开发方法的道路。这将使在车辆和发动机的开发生命周期使用虚拟校准的方面,这将使现实世界的驾驶场景能够在车辆和发动机的开发生命周期中进行更大的上游;目标是显着降低车辆和发动机开发成本和相关的时间尺度。在这篇文章中向公路RDE数据提供了来自不同动力总成技术的车辆,这些技术在代表RDE协议定义的界限的条件下从几个欧洲测试位置收集。在收集车辆招牌的组合时,定制仪器和排放(便携式排放测量系统(PEMS))数据,录制的RDE路线在机箱测功机上复制了底盘测功机,了解在实验室环境中复制RDE测试的标准化实用方法。实验室测试在Horiba Mira进行了高级排放测试中心(AETC)的目的,目的是定义适合不同动力总成技术的底盘测力计测试方法,这些技术导致对车载负荷,环境温度的准确表示的通道条件的准确表示,高度和排放。在底盘测力计相关的道路之后,车辆发动机将安装在发动机测功机上,目的是使用换档(EIL)格式开发“最坏情况”RDE循环套件,辅以设计实验(DOE)型映射方法。然后可以采用这些“最糟糕的情况”周期,即在RDE边界条件限制附近或在RDE边界条件限制中进行的,以便发动机和车辆开发目的,并提供完整的RDE合规性的证据。本文介绍了与整个RDE +项目的详细概述组合开发这一eil策略的方法。

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