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Application of a hybrid breakup model for the spray simulation of a multi-hole injector used for a DISI gasoline engine

机译:混合分解模型在DISI汽油机多孔喷油器喷雾模拟中的应用

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A hybrid atomization and breakup model was developed for the simulation of the fuel injection processes of multi-hole injectors for direct injection spark ignition (DISI) gasoline engines. In modeling primary breakup, a competition between the Huh-Gosman and Kelvin-Helmholtz (KH) breakup mechanisms was adopted. In addition to the two breakup mechanisms above, the Rayleigh-Taylor (RT) model was selected as a third competing mechanism in simulating secondary breakup. The hybrid model was implemented in the Star-CD software to simulate the effect of the background and injection pressures on the breakup processes of gasoline jets in a constant volume vessel, and on the mixture stratification of a wall-guided DISI gasoline engine with a newly-designed cavity in the piston. Results indicate that a higher background pressure intensifies the aerodynamically induced breakup along the tip of spray although it tends to reduce the overall breakup of spray. The spray atomization enhanced by increasing injection pressures is more pronounced at elevated background pressures. With the retard of fuel injection timing, the inhomogeneity of mixture increases in the DISI gasoline engine. Double injection with elevated second injection pressure can reduce the overall inhomogeneity of the mixture and effectively direct the mixture towards the spark plug.
机译:开发了一种混合雾化和分解模型,用于模拟直喷火花点火(DISI)汽油发动机的多孔喷油器的燃油喷射过程。在对初次分手进行建模时,采用了Huh-Gosman和Kelvin-Helmholtz(KH)分手机制之间的竞争。除了上述两种分解机制外,还选择了Rayleigh-Taylor(RT)模型作为模拟二次分解的第三种竞争机制。在Star-CD软件中实现了混合模型,以模拟背景压力和喷射压力对恒定容积容器中的汽油喷射破裂过程以及壁导向的DISI汽油发动机与新的混合气分层的影响设计的活塞腔。结果表明,较高的背景压力会加剧空气动力学引起的沿喷雾尖端的破裂,尽管这会减少喷雾的总体破裂。在升高的背景压力下,通过增加注射压力而增强的喷雾雾化更加明显。随着燃油喷射正时的延迟,DISI汽油发动机的混合气不均匀性增加。在较高的第二次喷射压力下进行二次喷射可以减少混合物的整体不均匀性,并有效地将混合物引向火花塞。

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