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Optimization of the thermodynamic configurations of a thermoacoustic engine auxiliary power unit for range extended hybrid electric vehicles

机译:增程混合动力汽车热声发动机辅助动力装置热力学配置的优化

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Significant research efforts are considered in the automotive industry on the use of low carbon alternative fuels in order to reduce carbon emissions of future vehicles, some of which are only compatible with external combustion machines. These machines are only suitable for electrified powertrains relying on electric propulsion, particularly in range extenders, where the energy converter operates steadily at a constant power at its optimal efficiency. The fuel consumption of these powertrains strongly relies on the performance of the energy converter in terms of efficiency, as well as on the deployed energy management strategy. This paper investigates the potential of fuel savings of a Extended Range hybrid Electric Vehicle (EREV) using a Thermoacoustic Engine (TAE) system as energy converter substitute to the conventional Internal Combustion Engine (ICE). An exergo-technological explicit analysis is conducted to identify the different TAE-system thermodynamic configurations. The Regenerative Reheat two-stage thermoacoustic engine is selected among numerous identified thermodynamic configurations, offering high efficiency and net specific work compared to other configurations. An EREV model is developed and the presented RRe-n2-TAE configuration is integrated. Fuel consumption simulations are performed on the Worldwide-harmonized Light Vehicles Test Cycle (WLTC). Results are compared to the reference ICE-APU. Results show more than 20% of fuel savings with the RRe-n2-TAE as Auxiliary Power Unit (APU) compared to the basic TAE configuration and comparable fuel consumption with the ICE. Consequently, the studied RRe-n2-TEG-APU presents a potential for the implementation in EREVs with zero carbon alternative fuels.
机译:为了减少未来车辆的碳排放,在汽车工业中考虑了使用低碳替代燃料的大量研究工作,其中一些仅与外部燃烧机兼容。这些机器仅适用于依靠电力推进的电动动力总成,特别是在增程器中,在增程器中换能器以恒定功率以最佳效率稳定运行。这些动力总成的燃油消耗在很大程度上取决于能量转换器的效率,以及所部署的能量管理策略。本文研究了使用热声发动机(TAE)系统作为能源转换器替代传统内燃机(ICE)的增程混合动力电动汽车(EREV)节省燃料的潜力。进行了能效技术显式分析,以识别不同的TAE系统热力学配置。蓄热式二级热声发动机是从众多已确定的热力学配置中选择的,与其他配置相比,它提供了高效率和净功。开发了EREV模型,并集成了提出的RRe-n2-TAE配置。油耗模拟是在全球统一的轻型车测试周期(WLTC)上进行的。将结果与参考ICE-APU进行比较。结果表明,与基本的TAE配置相比,RRe-n2-TAE作为辅助动力装置(APU)可以节省20%以上的燃料,并且与ICE相比具有可比的燃料消耗。因此,所研究的RRe-n2-TEG-APU为在零碳替代燃料的EREV中实施提供了潜力。

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