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Pneumatic-Combustion Hybrid Engine: A Study of the Effect of the Valvetrain Sophistication on Pneumatic Modes

机译:气动混合动力发动机:气门机构复杂性对气动模式的影响研究

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摘要

Although internal combustion engines display high overall maximum global efficiencies, this potential cannot be fully exploited in automotive applications: in real conditions, the average engine load (and thus efficiency) is quite low and the kinetic energy during a braking phase is lost. This work presents a hybrid pneumatic-combustion engine and the associated thermodynamic cycles, which is able to store and recover energy in the form of compressed air. The study focuses on the two major pneumatic modes: pneumatic pump mode and pneumatic motor mode. For each of them, three valvetrain technologies are considered: 4-stroke mode, 4-stroke mode with one camshaft disengaged, and 2-stroke fully variable. The concept can be adapted to SI or CI engines. In any case the valvetrain technology is the key to best fuel economy. A kinematic model of the charging valve's actuator is introduced, and implemented in a quasi dimensional model of the pneumatic-combustion hybrid engine. Simulation results are presented for each pneumatic mode, for each valvetrain technology, in order to determine the best valve train configuration, and to show the impact of the kinematic valve actuator on the performance of the engine The tradeoffs between valvetrain sophistication and fuel economy will be presented for each case.
机译:尽管内燃机显示出较高的总体最大整体效率,但这种潜力无法在汽车应用中充分利用:在实际条件下,平均发动机负载(因此效率)非常低,并且在制动阶段会损失动能。这项工作提出了一种混合式气动燃烧发动机以及相关的热力学循环,该循环能够以压缩空气的形式存储和回收能量。该研究集中于两种主要的气动模式:气动泵模式和气动马达模式。对于它们中的每一种,都考虑了三种气门传动技术:四冲程模式,四冲程模式(其中一个凸轮轴已分离)和二冲程完全可变。该概念可以适用于SI或CI引擎。无论如何,气门机构技术是实现最佳燃油经济性的关键。介绍了充气阀执行机构的运动学模型,并在气动混合动力发动机的准尺寸模型中实现。给出了每种气动模式,每种气门机构技术的仿真结果,以确定最佳气门机构配置,并显示了运动型气门致动器对发动机性能的影响。将在气门机构复杂性和燃油经济性之间进行权衡针对每种情况提出。

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