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SPRAY COMBUSTION MODELING IN LEAN DIRECT INJECTION COMBUSTORS, PART Ⅰ: SINGLE-ELEMENT LDI

机译:小型直接喷射燃烧器的喷雾燃烧模型,第一部分:单元素LDI

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摘要

Lean direct injection (LDI) is one of the most promising low NOx combustion concepts for aero-engines. This work reports turbulent reacting spray modeling in a single-element LDI combustor to determine a validated numerical framework that can be used to model such complex combustion systems involving highly swirling flows, droplet breakup, and combustion. Different sub-models are employed within a numerical framework to characterize the spray processes involved in the primary atomization and secondary breakup regimes. The sensitivity of the associated breakup model parameters to the predicted behavior is investigated, thereby fine tuning the sub-models for turbulent spray combustion in LDI. The two-way coupling accomplishes the interactions between the liquid and gas phases and the respective phase properties are analyzed. The size and distribution of drops are computed at various locations and the results are compared with the measurements. The work demonstrates that modeling of primary atomization improves the overall predictions of both gas phase and spray. The validation with the measurements reflects that the numerical framework implemented in this study is able to characterize the effects of highly swirling flows with strong turbulence on spray velocity and size distribution, and strong momentum exchange between the gas and liquid phases.
机译:稀薄的直接喷射(LDI)是航空发动机中最有希望的低NOx燃烧概念之一。这项工作报告了在单元素LDI燃烧器中进行的湍流反应喷雾建模,以确定可用于对此类复杂的燃烧系统进行建模的有效数值框架,该复杂燃烧系统涉及高涡流,液滴破裂和燃烧。在数值框架内采用不同的子模型来表征涉及初级雾化和次级破碎方案的喷雾过程。研究了相关的分解模型参数对预测行为的敏感性,从而微调了LDI中湍流喷雾燃烧的子模型。双向耦合完成了液相和气相之间的相互作用,并分析了各自的相性质。在各个位置计算液滴的大小和分布,并将结果与​​测量结果进行比较。这项工作表明,初级雾化的模型可以改善气相和喷雾的总体预测。测量结果的验证表明,本研究中采用的数值框架能够表征强涡流和强旋流对喷雾速度和粒度分布的影响,以及气相和液相之间的强动量交换。

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