不同负荷下直接双燃料分层(DDFS)燃烧的多目标优化

IF 2.2 4区 工程技术 Q2 ENGINEERING, MECHANICAL
Yizi Zhu, Yanzhi Zhang, Zhixia He, Qian Wang, Weimin Li
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引用次数: 0

摘要

通过结合使用三维计算流体动力学模拟和遗传算法,优化了重型发动机中直接双燃料分层(DDFS)策略在全负荷范围内的运行参数。获得优化结果后,使用皮尔逊法对不同负荷下的运行参数进行了敏感性分析。结果表明,优化后的 DDFS 策略可在整个全负荷范围内实现稳定高效的燃烧。在中低负荷时,发动机的性能主要受初始运行参数的影响,而在高负荷时,初始参数和喷射参数都起着关键作用。工作参数的敏感度随着负荷的增加而增加,敏感度高的工作参数分布更集中,敏感度低的工作参数分布更分散。中低负荷燃烧的最佳条件通常是以预混合为主的燃烧机制,并伴有一定程度的反应性分层,这在很大程度上受到装料热力学的影响。增加高活性柴油的比例可以提高燃烧效率和稳定性,尤其是在低负荷条件下。在高负荷条件下,最佳燃烧策略是使用大量直接喷射汽油,以实现更明显的分层和扩散燃烧机制,这有助于降低过高的热释放率。然而,与中低负荷的最佳策略相比,这种方法可能会降低燃油经济性。因此,加注热力学的作用变得不那么重要,而喷射策略对于实现高负荷下的最佳燃烧则变得更加关键。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiple-objective optimization of direct dual fuel stratification (DDFS) combustion at different loads
The operating parameters of the direct dual fuel stratification (DDFS) strategy in a heavy-duty engine are optimized across a full load range by utilizing a combination of three-dimensional computational fluid dynamics simulation and genetic algorithm. After obtaining the optimized results, sensitivity analyses were conducted on the operating parameters at various loads using the Pearson method. The results show that the DDFS strategy can attain stable and efficient combustion across the entire full-load range after optimization. At low-to-medium loads, the engine’s performance is predominantly influenced by initial operating parameters, while both initial and injection parameters play critical roles at high loads. The sensitivities of operating parameters increase as load increases, with the operating parameters having higher sensitivities having more concentrated distributions, while those with lower sensitivities have more dispersed distributions. The optimal conditions for low-to-medium load combustion generally involve a premixed-dominated combustion regime with some degree of reactivity stratification, which is strongly influenced by charge thermodynamics. Increasing the proportion of high-reactivity diesel fuel can improve combustion efficiency and stability, particularly under low-load conditions. Under high-load conditions, the optimal combustion strategy involves using a significant amount of direct-injected gasoline to achieve a more distinct stratified and diffusion combustion regime, which helps mitigate excessive heat release rates. However, this approach may result in reduced fuel economy compared to the optimal strategy for low-to-medium loads. As a consequence, the role of charge thermodynamics becomes less significant while the injection strategy becomes more critical for achieving optimal combustion at high loads.
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来源期刊
International Journal of Engine Research
International Journal of Engine Research 工程技术-工程:机械
CiteScore
6.50
自引率
16.00%
发文量
130
审稿时长
>12 weeks
期刊介绍: The International Journal of Engine Research publishes high quality papers on experimental and analytical studies of engine technology.
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