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熵:一种通过非预混火焰和预混火焰的直接数值模拟来表征旋流火焰中湍流-燃烧相互作用的启发式工具。

Entropy: An Inspiring Tool for Characterizing Turbulence-Combustion Interaction in Swirling Flames via Direct Numerical Simulations of Non-Premixed and Premixed Flames.

作者信息

Su Jingke, Liu Anxiong, Xiao Hualin, Luo Kun, Fan Jianren

机构信息

State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou 310027, China.

Shanghai Institute for Advanced Study, Zhejiang University, Shanghai 200000, China.

出版信息

Entropy (Basel). 2023 Aug 1;25(8):1151. doi: 10.3390/e25081151.

DOI:10.3390/e25081151
PMID:37628181
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10453663/
Abstract

This article focuses on entropy generation in the combustion field, which serves as a useful indicator to quantify the interaction between turbulence and combustion. The study is performed on the direct numerical simulations (DNS) of high pressure non-premixed and premixed swirling flames. By analyzing the entropy generation in thermal transport, mass transport, and chemical reactions, it is found that the thermal transport, driven by the temperature gradient, plays a dominant role. The enstrophy transport analysis reveals that the responses of individual terms to combustion can be measured by the entropy: the vortex stretching and the dissipation terms increase monotonically with the increasing entropy. In high entropy regions, the turbulence behaves as the "cigar shaped" state in the non-premixed flame, while as the axisymmetric state in the premixed flame. A substantial increase in the normal Reynolds stress with the entropy is observed. This is due to the competition between two terms promoted by the entropy, i.e., the velocity-pressure gradient correlation term and the shear production term. As a result, the velocity-pressure gradient correlation tends to isotropize turbulence by transferring energy increasingly from the largest streamwise component to the other smaller normal components of Reynolds stress and is dominated by the fluctuating pressure gradient that increases along the entropy. The shear production term increases with the entropy due to the upgrading alignment of the eigenvectors of strain rate and Reynolds stress tensors.

摘要

本文聚焦于燃烧领域中的熵产生,它是量化湍流与燃烧之间相互作用的一个有用指标。该研究是对高压非预混和预混旋流火焰的直接数值模拟(DNS)进行的。通过分析热传输、质量传输和化学反应中的熵产生,发现由温度梯度驱动的热传输起主导作用。涡量传输分析表明,各个项对燃烧的响应可以用熵来衡量:涡旋拉伸项和耗散项随熵的增加而单调增加。在高熵区域,在非预混火焰中湍流表现为“雪茄形”状态,而在预混火焰中表现为轴对称状态。观察到法向雷诺应力随熵大幅增加。这是由于熵促进的两个项之间的竞争,即速度 - 压力梯度相关项和剪切生成项。结果,速度 - 压力梯度相关项倾向于通过将能量越来越多地从最大的流向分量转移到雷诺应力的其他较小法向分量来使湍流各向同性,并且由沿熵增加的脉动压力梯度主导。由于应变率张量和雷诺应力张量特征向量的升级对齐,剪切生成项随熵增加。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b62/10453663/823cc1208f3e/entropy-25-01151-g015.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b62/10453663/a70257ae8c44/entropy-25-01151-g008.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b62/10453663/823cc1208f3e/entropy-25-01151-g015.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b62/10453663/a70257ae8c44/entropy-25-01151-g008.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b62/10453663/823cc1208f3e/entropy-25-01151-g015.jpg

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