Coupling RSM with soot model for the study of soot formation in a momentum-dominated strained jet flames

被引:0
|
作者
N. H. Mohamed Ibrahim
M. Udayakumar
机构
[1] National Institute of Technology,Department of Mechanical Engineering
关键词
Momentum; Strain rate; Mixture fraction; QUICK; CFL; Froude number;
D O I
暂无
中图分类号
学科分类号
摘要
This paper presents a comparison between the numerically determined soot volume fraction (SVF) in a momentum-dominated turbulent diffusion strained jet flames burning ethylene/hydrogen/nitrogen mixture in air with experimental results. The soot inception model used is based on the formation rate of two or three ring poly aromatic hydrocarbon with C6H6 as the soot precursor. Second-moment closure Reynolds stress method turbulent model is used in conjunction with the governing equation of mass, momentum and energy. The turbulent combustion kinetic chemistry interaction is modeled by choosing a chemical equilibrium non-premixed combustion model along with the species inlet diffusion probability density function (PDF). Soot radiation source term like P-1 radiation model is also included along with the turbulent combustion model. The soot turbulence interaction invoked uses single-variable PDF based on the temperature and mixture fraction (Z) for measurement of flame lift-off height, flame length and radiative heat loss. Equilibrium-based Lee soot oxidation model is chosen to estimate the hydroxyl (OH) and O2 species for the oxidation of soot particles. The numerical solutions for each of the experimental configurations are proposed by Mahmoud and co-workers for three different strained flames (4000 s−1, 7300 s−1, and 12,900 s−1). In each discretized finite volume cell, using a quadratic upstream interpolation for convective kinematics algorithm in spatial coordinate and time-bounded second-order accurate in temporal coordinate solution is obtained. All the above turbulence combustion interaction models are iterated with unit Courant–Friedrichs–Lewy condition. It is noted that the mixture fraction (Z) PDF used is very sensitive to the chosen turbulence combustion soot interaction models. Also, it is observed that the simulated outputs are in good agreement with the measured experimental data in terms of SVF, temperature both axially and radially. SVF increases with a decrease in the flame strain rate and shows the reverse trend in radially integrated soot volume reaction. In agreement with experiments, soot productivity shows a linear relationship in momentum-dominated flame with an increase in the strain rates for soot productivity, maximum mean SVF, exit Froude number, exit C2H4 flow rate.
引用
收藏
页码:2369 / 2389
页数:20
相关论文
共 50 条
  • [1] Coupling RSM with soot model for the study of soot formation in a momentum-dominated strained jet flames
    Ibrahim, N. H. Mohamed
    Udayakumar, M.
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2020, 141 (06) : 2369 - 2389
  • [2] Large Eddy Simulation Studies on Effects of Soot Productivity in a Momentum Dominated Strained Diffusion Jet Flames
    Ibrahim, N. H. Mohamed
    Udayakumar, M.
    Balasubramanian, Dhinesh
    Tran, Viet Dung
    Truong, Thanh Hai
    Nguyen, Van Nhanh
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2023, 145 (04):
  • [3] A Study on Evolution and Modelling of Soot Formation in Diesel Jet Flames
    Udayakumar, M.
    Ibrahim, N. H. Mohamed
    AIR POLLUTION AND CONTROL, 2018, : 155 - 184
  • [4] SOOT FORMATION IN STRAINED DIFFUSION FLAMES WITH GASEOUS ADDITIVES
    DU, DX
    AXELBAUM, RL
    LAW, CK
    COMBUSTION AND FLAME, 1995, 102 (1-2) : 11 - 20
  • [5] Coupling LES with soot model for the study of soot volume fraction in a turbulent diffusion jet flames at various Reynolds number configurations
    Ibrahim N.H., Mohamed
    Udayakumar, M.
    Suresh, Sivan
    Bhattacharyya, Suvanjan
    Sharifpur, Mohsen
    INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2021, 31 (07) : 2246 - 2278
  • [6] Soot formation in flames of model biodiesel fuels
    Feng, Qiyao
    Jalali, Aydin
    Fincham, Adam M.
    Wang, Yang Lee
    Tsotsis, Theodore T.
    Egolfopoulos, Fokion N.
    COMBUSTION AND FLAME, 2012, 159 (05) : 1876 - 1893
  • [7] Imaging studies of soot formation in turbulent ethylene jet flames
    Lee, SY
    Santoro, RJ
    CHEMICAL AND PHYSICAL PROCESSES IN COMBUSTION, 1997, : 47 - 50
  • [8] Pressure effects on soot formation and evolution in turbulent jet flames
    Zhou, Dezhi
    Zou, Shufan
    Boyette, Wesley R.
    Guiberti, Thibault F.
    Roberts, William L.
    Yang, Suo
    PHYSICS OF FLUIDS, 2023, 35 (01)
  • [9] Soot formation in hydrocarbon air laminar jet diffusion flames
    Sunderland, PB
    Faeth, GM
    COMBUSTION AND FLAME, 1996, 105 (1-2) : 132 - 146
  • [10] DEVELOPMENT AND VALIDATION OF A GLOBAL SOOT MODEL IN TURBULENT JET FLAMES
    Yao, Wei
    Zhang, Jianping
    Nadjai, Ali
    Beji, Tarek
    Delichatsios, Michael
    COMBUSTION SCIENCE AND TECHNOLOGY, 2012, 184 (05) : 717 - 733