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A Comprehensive Powertrain Model to Evaluate the Benefits of Electric Turbo Compound (ETC) in Reducing CO_2 Emissions from Small Diesel Passenger Cars

机译:一种全面的动力总成模型,以评估电动涡轮增压(ETC)在减少小柴油乘用车中的CO_2排放中的益处

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In the last years the automotive industry has been involved in the development and implementation of CO_2 reducing concepts such as the engines downsizing, stop/start systems as well as more costly full hybrid solutions and, more recently, waste heat recovery technologies. These latter include ThermoElectric Generator (TEG), Rankine cycle and Electric Turbo Compound (ETC) that have been practically implemented on few heavy-duty application but have not been proved yet as effective and affordable solutions for the automotive industry. The paper deals with the analysis of opportunities and challenges of the Electric Turbo Compound for automotive light-duty engines. In the ETC concept the turbine-compressor shaft is connected to an electric machine, which can work either as generator or motor. In the former case the power can satisfy the vehicle electrical demand to drive the auxiliaries or stored in the batteries. In the latter case the electric motor can assist the turbine and speed up the compressor when requested. Potentially the ETC offers great opportunity for better performance and emissions control, nevertheless its management needs to be carefully set, being strongly dependent on transient operation. In the paper the benefits achievable by the electric turbo compound have been analyzed by a comprehensive powertrain model. The model considers in-cylinder processes by a steady-state approach and simulates the ETC dynamics, accounting for the mutual interactions of engine boosting, exhaust temperature and pressure, auxiliaries demand and motor/generator management. The simulations have been carried out against generic and standard driving conditions (i.e. EUDC, FTP) and several ETC management strategies, assuming as reference a small Diesel passenger car. The results evidence that significant improvement of fuel economy and CO_2 reduction can be achieved by suitable management of ETC operation, depending on engine speed and load and auxiliaries demand.
机译:在过去的几年汽车行业一直参与制定和实施的CO_2减少概念,如发动机小型化,停止/启动系统,以及更昂贵的全混合动力解决方案,最近,余热回收技术。这些后者包括热电发电机(TEG),朗肯循环和电动涡轮复合机(ETC)已在一些重型应用被切实执行,但还没有被证明是汽车行业的有效和经济的解决方案。有机会和电动涡轮复合机用于汽车轻型发动机的挑战的分析文章交易。在ETC概念涡轮压缩机轴连接到电机,其既可以作为工作发电机或马达。在前一种情况下的功率可满足车辆电力需求来驱动辅助设备或存储在电池中。在后者的情况下,电动马达可协助涡轮并在请求时加快压缩机。可能获得更好的性能和排放控制ETC提供了巨大的机会,不过其管理的需求进行精心设置,是强烈依赖于瞬时操作。在本文由电动涡轮复合机可实现的收益已经由全面的动力总成模型进行分析。该模型由稳态方法考虑缸内过程和模拟ETC动力学,占发动机的增压,排气温度和压力的相互交互,助剂要求和马达/发电机的管理。模拟已经进行了针对一般的和标准的行驶条件(即EUDC,FTP)和几个ETC的管理策略,假定作为基准的小柴油客车。结果证明燃料经济性和CO_2减少的显着提高可以通过适当的ETC操作来实现,具体取决于发动机速度和负载和助力的需求。

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