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Numerical study on mixture formation characteristics in a direct-injection hydrogen engine

机译:直喷氢发动机混合气形成特性的数值研究

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Numerical modeling of direct hydrogen injection and in-cylinder mixture formation is performed in this paper. Numerical studies on direct-injection hydrogen engines are very limited due mainly to the complexity in modeling the physical phenomena associated with the high-velocity gas jet. The high injection pressure will result in a choked flow and develop an underexpanded jet at the nozzle exit, which consists of oblique and normal shock waves. A robust numerical model and a very fine computational mesh are required to model these phenomena. However, a very fine mesh may not be feasible in the practical engine application. Therefore, in this study a gas jet injection model is implemented into a multidimensional engine simulation code to simulate the hydrogen injection process, starting from the downstream of the nozzle. The fuel jet is modeled on a coarse mesh using an adaptive mesh refinement algorithm in order to accurately capture the gas jet structure. The model is validated using experimental and theoretical results on the penetrations of single and multiple jets. The model is able to successfully predict the gas jet penetration and structure using a coarse mesh with reasonable computer time. The model is further applied to simulate a direct-injection hydrogen engine to study the effects of injection parameters on the in-cylinder mixture characteristics. The effects of the start of fuel injection, orientation of the jets, and the injector location on the mixture quality are determined. Results show that the hydrogen jets impinge on the walls soon after injection due to the high velocity of the gas jet. The mixing of hydrogen and air takes place mainly after wall impingement. The optimal injection parameters are selected based on the homogeneity of the in-cylinder mixture. It is found that early injection can result in more homogeneous mixture at the time of ignition. Results also indicate that it is more favorable to position the injector near the intake valve to take advantage of the interaction of hydrogen jets and the intake flow to create a more homogeneous mixture.
机译:本文进行了直接氢注入和缸内混合物形成的数值模拟。直接喷射氢发动机的数值研究非常有限,这主要是由于建模与高速气体射流相关的物理现象的复杂性。高的注射压力将导致流量阻塞,并在喷嘴出口形成射流不足的射流,该射流由倾斜和正常冲击波组成。需要强大的数值模型和非常好的计算网格来对这些现象进行建模。但是,在实际的发动机应用中,非常细的网格可能并不可行。因此,在本研究中,将气体喷射喷射模型实施到多维引擎仿真代码中,以模拟从喷嘴下游开始的氢气喷射过程。使用自适应网格细化算法在粗网格上对燃料射流建模,以便准确捕获气体射流结构。使用关于单喷口和多喷口穿透的实验和理论结果验证了该模型。该模型能够在合理的计算机时间下使用粗糙的网格成功地预测气体的渗透和结构。该模型还被用于模拟直接喷射氢发动机,以研究喷射参数对缸内混合气特性的影响。确定了燃料喷射开始,喷嘴的方向以及喷射器位置对混合物质量的影响。结果表明,由于气体射流的高速度,氢射流在注入后不久就撞击在壁上。氢和空气的混合主要发生在壁撞击之后。基于缸内混合物的均匀性选择最佳喷射参数。发现在点火时提前喷射可导致更均匀的混合物。结果还表明,将喷射器定位在进气门附近以利用氢流和进气流的相互作用来产生更均匀的混合物是更有利的。

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