Experimental Study on Geometry Characteristics of Turbulent Premixed Flames for Natural Gas/Air Mixtures

  • ZHENG Weilin ,
  • WANG Qijiao ,
  • XIAO Huahua ,
  • CHEN Xiaoxiao ,
  • XIE Fan ,
  • ZENG Wen
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  • 1. Liaoning Key Lab of Advanced Test Technology for Aerospace Propulsion System, Shenyang Aerospace University, Shenyang 110136, China
    2. State Key Laboratory of Fire Science, University of science and Technology of China, Hefei 230027, China
    3. AVIC Shenyang Aircraft Design and Research Institute, Shenyang 110035, China

网络出版日期: 2025-01-09

基金资助

This study is financially supported by the General Program Supported by Educational Committee of Liaoning Province of China (LJKMZ20220537), the financial support from the National Science and Technology Major Project (2017-III-0006-0031) and the fundamental research funds for the universities of Liaoning Province.

版权

Science Press, Institute of Engineering Thermophysics, CAS and Springer-Verlag GmbH Germany, part of Springer Nature 2024

Experimental Study on Geometry Characteristics of Turbulent Premixed Flames for Natural Gas/Air Mixtures

  • ZHENG Weilin ,
  • WANG Qijiao ,
  • XIAO Huahua ,
  • CHEN Xiaoxiao ,
  • XIE Fan ,
  • ZENG Wen
Expand
  • 1. Liaoning Key Lab of Advanced Test Technology for Aerospace Propulsion System, Shenyang Aerospace University, Shenyang 110136, China
    2. State Key Laboratory of Fire Science, University of science and Technology of China, Hefei 230027, China
    3. AVIC Shenyang Aircraft Design and Research Institute, Shenyang 110035, China

Online published: 2025-01-09

Supported by

This study is financially supported by the General Program Supported by Educational Committee of Liaoning Province of China (LJKMZ20220537), the financial support from the National Science and Technology Major Project (2017-III-0006-0031) and the fundamental research funds for the universities of Liaoning Province.

Copyright

Science Press, Institute of Engineering Thermophysics, CAS and Springer-Verlag GmbH Germany, part of Springer Nature 2024

摘要

本文利用湍流燃烧弹实验设备重点研究了天然气/空气的湍流预混火焰的球形膨胀火焰的几何特征,探讨了不同初始温度(T=300400 K)、初始压力(P=0.10.3 MPa)、湍流强度(u’=1.02.7 m/s)、含氧量(φ(O2)=15%21%)和二氧化碳含量(φ(CO2)=020%)对火焰特性的影响。基于高速度摄像机拍摄的火焰图像,得到在笛卡尔坐标系下的火焰轮廓。通过提取火焰锋面、小波分解和网络拓扑等手段从宏观和微观两个角度研究了实验条件对火焰几何特性的影响。结果表明,对于显著的火焰皱褶,组分浓度和湍流强度的变化对火焰皱褶比的影响更为明显。火焰前锋的皱褶保持了一定程度的相似性,这具体表现在最大波动半径的角度局部分布上。大尺度(D6D8)扰动下的扰动能量相对较高并且趋势相似,对火焰锋面的几何特性产生显著影响。不同的分解尺度或火焰半径下相关度的峰值较为分散,这表明不同细节分量之间不存在线性相关。此外,关键皱褶区域内节点度的概率分布与大尺度皱褶和扰动能量的趋势不同,尤其是在初始压力变化时,这是因为关键皱褶的数量会根据扰动的强度和区域的跨度而变化。因此,火焰局部半径的扰动频率增加并不一定会导致关键折叠区域数量的增加。

本文引用格式

ZHENG Weilin , WANG Qijiao , XIAO Huahua , CHEN Xiaoxiao , XIE Fan , ZENG Wen . Experimental Study on Geometry Characteristics of Turbulent Premixed Flames for Natural Gas/Air Mixtures[J]. 热科学学报, 2025 , 34(1) : 268 -282 . DOI: 10.1007/s11630-024-2065-2

Abstract

In this study, focusing on the geometry characteristics of spherical expanding flame, the turbulent premixed flames of natural gas/air mixtures were investigated in a fan-stirred turbulent combustor. The effects of initial temperature (T=300–400 K), initial pressure (P=0.1–0.3 MPa), turbulence intensity (u′=1.0–2.7 m/s), oxygen volumetric percentage (φ(O2)=15%–21%) and carbon dioxide volumetric percentage (φ(CO2)=0–20%) were delved into. The flame profile under the Cartesian coordinate system was derived from the schlieren images taken by the high-speed camera. Besides, from both macroscopic and microscopic perspectives, the influence of experimental conditions on the flame geometry characteristics was explored through flame front extraction, wavelet decomposition and network topology. The results demonstrate that for significant flame wrinkling, changes in species concentrations and turbulence intensity have more pronounced effects on the flame wrinkling ratio. The wrinkling of the flame front maintains a certain degree of similarity, as evidenced by the locally concentrated distribution of the angles of the maximum fluctuation radius. The disturbance energy under large-scale (D6–D8) disturbances exhibits relatively high values with a similar trend, exerting a significant impact on the geometry characteristics of the flame front. The peaks of correlation degree are scattered either with the decomposition scale or the development of flame radius, indicating no linear correlation between different detail components. Furthermore, the probability distribution of node degrees in key wrinkled regions exhibits different trends with that of large-scale wrinkling and disturbance energy, especially with changes in initial pressure. This occurs because the number of key wrinkles varies based on the perturbation’s strength or the region’s span. Consequently, an increase in the fluctuation frequency of the flame’s local radius may not necessarily lead to an increase in the number of key folded regions.

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