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Post-injection strategies for gasoline compression ignition combustion under high load conditions: Understanding the role of premixed, main, and post-injections in soot mitigation and load extension

机译:高负荷条件下汽油压缩点火燃烧的后喷射策略:了解预混合,主喷射和后喷射在烟灰缓解和负荷扩展中的作用

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摘要

Engine experiments and computational fluid dynamics modeling (CFD) were used to isolate and understand the role of premixed, main, and post-injections in soot mitigation and load extension for high-load GCI operation. Results showed that for all the three injection strategies soot emissions increased with increasing load. For the post-injection cases, soot emissions increased as the dwell time between the main and the post-injection increased. However, adding load through post-injections resulted in higher soot emissions compared to the baseline injection strategy irrespective of the SOI timing of the post-injection. Premixing a portion of the main injection fuel reduced the soot emissions for the post-injection cases, but they remained higher compared to the baseline injection strategy. The CFD modeling showed that the post-injection cases resulted in lower soot formation when compared to the baseline injection strategy. However, the increased injection durations at high-load conditions resulted in soot being formed late in the cycle from the post-injection where the temperatures dropped rapidly, slowing down the soot oxidation rates. This resulted in higher net soot production for the post-injection cases compared to the single long main injection cases. This temperature effect on soot emissions was enhanced, as the post-injection SOI timing was delayed, resulting in increased soot emissions with increasing dwell time. Premixing a portion of the main injection fuel reduced the soot emissions for the post-injection strategies, as the well-mixed premixed fuel combusts without forming any soot. When a similar study was repeated under low-and mid-load conditions using the validated CFD model, post-injections showed a benefit with a maximum reduction in soot of similar to 62% compared to the baseline strategy. This was because, similar to the high-load conditions, the fuel from the post-injection was targeted at a different region in the combustion chamber relative to the main injection, which provided better access to the oxygen to both the main and the post-injections. However, compared to high-load conditions, since the duration of the main and the post-injection is shorter, it allowed the SOI timing of the post-injection to be advanced closer to TDC without overlapping with the main injection. The advanced post-injection timing, combined with the shorter duration of the post-injection, resulted in the fuel being delivered sufficiently early in the cycle. This provided enough residence time in the high-temperature regions to oxidize the soot formed from the post-injection completely, resulting in reduced soot emissions compared to the case without the post-injection.
机译:发动机实验和计算流体动力学模型(CFD)用于隔离和理解预混合,主喷射和后喷射在烟灰减轻和负荷扩展中的作用,以实现高负荷GCI操作。结果表明,对于所有三种注入策略,烟尘排放均随着负荷的增加而增加。对于注射后的情况,烟尘排放随着主注射和注射后之间的停留时间增加而增加。但是,与基线注入策略相比,通过注入后添加负载会导致更高的烟尘排放,而与注入后的SOI时间无关。预混合一部分主喷射燃料可减少后喷射情况下的烟尘排放,但与基准喷射策略相比,它们仍然较高。 CFD模型显示,与基准注射策略相比,注射后病例导致较低的烟尘形成。但是,在高负荷条件下增加的喷射持续时间会导致从喷射后的温度迅速下降的喷射后周期开始形成烟灰,从而减慢了烟灰的氧化速率。与单次长主喷射案例相比,这导致了后喷射案例的净烟尘产生更高。由于延迟了注入后SOI的时间,温度对烟尘排放的影响增强了,导致烟尘排放随停留时间的增加而增加。预混合一部分主喷射燃料可减少后喷射策略中的烟尘排放,因为充分混合的预混合燃料会燃烧而不会形成任何烟尘。当使用经过验证的CFD模型在低负载和中负载条件下重复进行类似的研究时,与基准策略相比,注射后的烟尘显示出最大的烟尘减少量,减少了62%。这是因为,类似于高负荷工况,后喷射产生的燃料相对于主喷射被对准燃烧室中的不同区域,这为主喷射和后喷射提供了更好的氧气通道。注射。但是,与高负载条件相比,由于主喷射和后喷射的持续时间较短,因此可以使后喷射的SOI时序更接近TDC,而不会与主喷射重叠。提前的喷射后正时,加上喷射后的持续时间较短,导致燃料在循环中足够早地被输送。与没有后注入的情况相比,这在高温区域提供了足够的停留时间,以完全氧化由后注入形成的烟灰,从而减少了烟尘排放。

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