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Potential of carbon dioxide transcritical power cycle waste-heat recovery systems for heavy-duty truck engines

机译:用于重型卡车发动机的二氧化碳跨临界功率循环余热回收系统的潜力

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Carbon dioxide transcritical power cycle (CTPC) systems are considered a new and particularly interesting technology for waste-heat recovery. In heavy-duty truck engine applications, challenges arise from the highly transient nature of the available heat sources. This paper presents an integrated model of CTPC systems recovering heat from a truck diesel engine, developed in GT-SUITE software and calibrated against experimental data, considers the likely fuel consumption improvements and identifies directions for further improvement. The transient performance of four different CTPC systems is predicted over a heavy-heavy duty driving cycle with a control structure comprising a mode switch module and two PID controllers implemented to realize stable, safe and optimal operation. Three operating modes are defined: startup mode, power mode, and stop mode. The results demonstrate that CTPC systems are robust and able to operate safely even when the heat sources are highly transient, indicating a promising potential for the deployment of this technology in such applications. Furthermore, a system layout with both a preheater and a recuperator appears as the most promising, allowing a 2.3% improvement in brake thermal efficiency over the whole driving cycle by utilizing 48.9% of the exhaust and 72.8% of the coolant energy, even when the pump and turbine efficiencies are as low as 50%. Finally, factor analysis suggests that important directions aimed at improving the performance and facilitating CTPC system integration with vehicle engines are: (1) ensuring long-duration operation in power mode, e.g., by employment in long-haul trucks; and (2) enhancing pump and turbine performance.
机译:二氧化碳跨临界功率循环(CTPC)系统被认为是用于废热回收的一种新的且特别有趣的技术。在重型卡车发动机应用中,挑战来自可用热源的高度瞬态特性。本文介绍了一种GTPC SUITE软件开发并针对实验数据进行校准的,从卡车柴油机回收热量的CTPC系统的集成模型,考虑了可能的燃油消耗改善并确定了进一步改善的方向。通过重载驾驶周期可预测四种不同CTPC系统的瞬态性能,其控制结构包括模式切换模块和两个PID控制器,可实现稳定,安全和最佳的运行。定义了三种操作模式:启动模式,电源模式和停止模式。结果表明,即使在热源高度瞬变的情况下,CTPC系统也很坚固并且能够安全运行,这表明在此类应用中部署该技术的潜力很大。此外,具有预热器和换热器的系统布局看来是最有前途的,通过利用48.9%的排气和72.8%的冷却剂能量,即使在车辆行驶整个过程中,制动热效率在整个驾驶周期中也可以提高2.3%。泵和涡轮的效率低至50%。最后,因素分析表明,旨在提高性能并促进CTPC系统与车辆发动机集成的重要方向是:(1)确保以动力模式进行长时间操作,例如,通过在长途卡车上使用; (2)提高泵和涡轮的性能。

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