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A two conserved scalar model for HCCI and PPCI engine applications.

机译:HCCI和PPCI引擎应用的两个守恒标量模型。

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There is a strong demand for a versatile computational model in the design of modern engines such as homogeneous charge compression ignition (HCCI) and partially premixed compression ignition (PPCI) engines. A robust model is required to describe accurately both the chemistry and turbulent mixing processes in the reacting flow. Although the existing computational fluid dynamics (CFD) codes coupled with detailed kinetics models may reproduce some realistic results, the excessive computational cost prevents them to be applicable as engineering tools. The present study aims at developing a new modeling approach that can describe the combustion process with high fidelity and computational efficiency.; In this study, a two-conserved scalar approach is proposed to model HCCI and PPCI combustion. The first conserved scalar, the mixture fraction Z, is introduced to capture the inhomogeneities in the fuel-air mixture, and the second conserved scalar, the initial EGR fraction J, is introduced to capture the inhomogeneities in the fresh mixture-EGR charge. The main benefits of this approach are the reduction of dimensionality and the compactness of the domain in the conserved scalar plane, and the capability to use different resolutions for the chemistry and the fluid mechanics calculation. To solve the flow in the conserved scalar plane, two algorithms are proposed. First, the flamelet (zone) creation strategy is introduced to discretize the conserved scalar space based on its mass distribution and reactivity. The second part is the regeneration procedure which accounts for the nonlinear effect of EGR on reaction rates.; Test results from the two-conserved scalar approach are compared to those obtained by direct calculation, and it is demonstrated that the regeneration process in the present approach can properly account for the nonlinear effects arising from chemical reactions, as an improvement over the representative interactive flamelet (RIF) approach. The two conserved scalar model is subsequently implemented into the KIVA-3v code to simulate HCCI combustion. The results show excellent agreement with experimental data, demonstrating that the present approach achieves the initial modeling objectives.; Finally, the two conserved scalar approach is applied to the modeling of direct injection (DI) combustion with an assumption of non-homogeneous EGR. Discrepancies relative to the results from direct calculations are identified. These are attributed to the limitation inherent to the flamelet model, and further improvements are suggested as future work.
机译:在现代发动机的设计中,诸如均质充量压缩点火(HCCI)和部分预混压缩点火(PPCI)发动机,对通用计算模型有强烈的需求。需要一个可靠的模型来准确描述反应流中的化学过程和湍流混合过程。尽管现有的计算流体动力学(CFD)代码与详细的动力学模型结合在一起可以重现一些真实的结果,但是过多的计算成本使它们无法用作工程工具。本研究旨在开发一种新的建模方法,该方法可以高保真度和计算效率描述燃烧过程。在这项研究中,提出了两个守恒的标量方法来模拟HCCI和PPCI燃烧。引入第一守恒标量,即混合物分数Z,以捕获燃料-空气混合物中的不均匀性,引入第二守恒标量,即初始EGR分数J,以捕获新鲜混合物-EGR进料中的不均匀性。这种方法的主要好处是减小了维数并减小了守恒标量平面中的域的紧密度,并且能够使用不同的分辨率进行化学和流体力学计算。为了解决守恒标量平面中的流动问题,提出了两种算法。首先,引入小火焰(区域)创建策略以基于守恒标量空间的质量分布和反应性离散化该守恒标量空间。第二部分是再生程序,它说明了EGR对反应速率的非线性影响。将两个守恒标量方法的测试结果与直接计算得到的结果进行了比较,证明了该方法的再生过程可以适当地考虑到化学反应产生的非线性效应,这是对代表性交互式小火焰的改进。 (RIF)方法。随后将两个守恒的标量模型实现到KIVA-3v代码中,以模拟HCCI燃烧。结果表明与实验数据非常吻合,表明本方法达到了初始建模目标。最后,在非均匀EGR的假设下,将两个守恒标量方法应用于直接喷射(DI)燃烧的建模。确定与直接计算结果有关的差异。这些归因于小火焰模型固有的局限性,并建议进一步改进作为未来的工作。

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