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首页> 外文期刊>International Journal of Automotive Technology >EFFICIENCY IMPROVEMENT FOR AN UNTHROTTLED SI ENGINE AT PART LOAD
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EFFICIENCY IMPROVEMENT FOR AN UNTHROTTLED SI ENGINE AT PART LOAD

机译:无节流SI发动机在部分载荷下的效率改进

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Variable valve timing (VVT) and cylinder deactivation (CDA) are promising methods in reducing fuel consumption and emission at part load in SI engines. An SI engine which uses electromagnetic valvetrain (EMV) will eliminate flow restriction from the throttle valve and produce higher indicated mean efficiency pressure (IMEP) due to the disabling of some of the working cylinders at part load. Therefore, pumping loss can be significantly reduced at part-load conditions. In addition, duration and timing of valve events are variably controlled at different operating conditions. This contributes to the improvement of engine efficiency. In this study, a dynamic model of an unthrottled SI engine has been developed to simulate the engine cycle. The model uses an EMV system that allows valvetrain control and cylinder deactivation techniques to be carried out in simulation flexibly. The simulated results find the optimal valve timing for different engine speeds. The optimal timing of intake valve closing depends on engine speed linearly, while the intake valve opening insignificantly influences engine performance. Additionally, this study also shows that cylinder deactivation modes can be successfully applied in improving engine efficiency at different engine loads. Different cylinder deactivation strategies have been applied for the full range of engine loads. It is concluded that the two-cylinder deactivation mode (50% CDA) considerably improves fuel consumption at low engine load. Meanwhile, one-cylinder deactivation (25% CDA) is an optimal fuel economy mode at medium engine load. With proper uses of VVT and CDA strategies, the efficiency of an SI engine can be increased more than 30% at low engine load and 11.7% at medium engine load.
机译:可变气门正时(VVT)和汽缸停用(CDA)是减少SI发动机部分负荷下的燃料消耗和排放的有前途的方法。使用电磁气门机构(EMV)的SI发动机将消除节气门的流量限制,并由于部分工作气缸在部分负荷下失效而产生更高的指示平均效率压力(IMEP)。因此,在部分负载条件下,泵送损失可以大大降低。另外,在不同的操作条件下可变地控制阀事件的持续时间和正时。这有助于提高发动机效率。在这项研究中,已开发出无节流SI发动机的动力学模型来模拟发动机循环。该模型使用EMV系统,该系统允许在仿真中灵活地执行气门机构控制和气缸停用技术。仿真结果找到了不同发动机转速下的最佳气门正时。进气门的最佳关闭正时线性关系取决于发动机转速,而进气门的打开对发动机性能的影响很小。此外,这项研究还表明,气缸停用模式可以成功地用于提高不同发动机负载下的发动机效率。不同的气缸停用策略已应用于整个发动机负载范围。结论是,两缸停用模式(50%CDA)大大降低了低发动机负荷下的燃油消耗。同时,在中等发动机负载下,单缸停用(25%CDA)是一种最佳的燃油经济性模式。通过正确使用VVT和CDA策略,SI发动机的效率可以在低发动机负载下提高30%以上,在中发动机负载下提高11.7%。

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