论文标题

内向旋转的火焰模型

Inward Swirling Flamelet Model

论文作者

Sirignano, William A.

论文摘要

开发了一种新的旋转燃料模型,其向内旋转流过拉伸的涡流管,用于子网格建模,该模型与分辨率流相结合以进行湍流燃烧。与现有模型相比,该模型具有关键的新功能。 (i)确定而不是规定的非固定火焰,预混合火焰或多部火焰结构。 (ii)确定涡度和相关的易位加速度的影响。 (iii)在没有人为的进度变量的情况下,可以从分辨率尺度的应变速率和涡度直接确定在子网格水平上应用的应变率和涡度。 (iv)火焰模型是三维的。 (v)解决可变密度的效果。 (vi)内向漩涡是由涡度与两个压缩正常应变成分结合在一起的;此功能将模型与Counterflow Flamelet模型区分开。获得了控制弗莱姆模型的多组分Navier-Stokes方程的解决方案。通过坐标转换,通过普通微分方程的系统找到了模型的类似解决方案。涡度在子网格逆流上产生一个离心力,可修饰分子传输速率,燃烧速率和可燃性限制。介绍了内向旋转旋转火焰模型的样本计算,而无需与分辨流的耦合,以证明新功能的重要性。检查了预混合,未经构图和多部火焰结构。参数调查是由正常应变,涡度,Damköhler编号和PrandTL编号进行的。与可变密度场结合使用时,离心效应会产生有趣的后果。流动方向可以逆转;可以修改燃烧率;可以扩展可燃性限制。

A new rotational flamelet model with inward swirling flow through a stretched vortex tube is developed for sub-grid modeling to be coupled with the resolved flow for turbulent combustion. The model has critical new features compared to existing models. (i) Non-premixed flames, premixed flames, or multi-branched flame structures are determined rather than prescribed. (ii) The effects of vorticity and the related centifugal acceleration are determined. (iii) The strain rates and vorticity applied at the sub-grid level can be directly determined from the resolved-scale strain rates and vorticity without a contrived progress variable. (iv) The flamelet model is three-dimensional. (v) The effect of variable density is addressed. (vi) The inward swirl is created by vorticity combined with two compressive normal strain components; this feature distinguishes the model from counterflow flamelet models. Solutions to the multicomponent Navier-Stokes equations governing the flamelet model are obtained. By coordinate transformation, a similar solution is found for the model, through a system of ordinary differential equations. Vorticity creates a centrifugal force on the sub-grid counterflow that modifies the molecular transport rates, burning rates, and flammability limits. Sample computations of the inward swirling rotational flamelet model without coupling to the resolved flow are presented to demonstrate the importance of the new features. Premixed, nonpremixed, and multi-branched flame structures are examined. Parameter surveys are made with rate of normal strain, vorticity, Damköhler number, and Prandtl number. The centrifugal effect has interesting consequences when combined with the variable-density field. Flow direction can reverse; burning rates can be modified; flammability limits can be extended.

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