The nitric oxide formation in anode baking furnace through numerical modeling

被引:0
|
作者
Nakate P. [1 ,2 ]
Lahaye D. [1 ]
Vuik C. [1 ]
机构
[1] Aluminium and Chemie, Rotterdam B.V.
来源
关键词
Diffusion tuning; Eddy dissipation model; Industrial furnace; P1 approximation model; Thermal NOx formation;
D O I
10.1016/j.ijft.2021.100122
中图分类号
学科分类号
摘要
Thermal nitric-oxide (NOx) formation in industrial furnaces due to local overheating is a widely known problem. Various industries made significant investments to reduce thermal NOx by varying the operating conditions and designs of the furnace. It is difficult to find the optimal operating conditions that minimize NOx formation in the furnace by trial and error methods. The high temperature in the furnace complicates performing experiments in the furnace. Numerical modeling can provide significant information in such cases. Therefore, the objective of this paper is to obtain a numerical model of the furnace in such a way that the operating conditions can be varied and examined. In this paper, a three-dimensional steady-state finite element model for the anode baking industrial furnace is discussed. The COMSOL Multiphysics software is used for modeling the non-premixed turbulent combustion and the conjugate heat transfer to the insulation lining. The cfMesh software is used for obtaining the mesh. The results show that the simulated temperature agrees well with the measured data from our industrial partner in regions distant from the flames. The analysis shows that by decreasing the fuel mass flow rate and increasing the fuel pipe diameter by 45%, the peak in thermal NOx ppm generated in the furnace decreases by 42%. The model is limited by the use of a single-step chemistry mechanism with an eddy dissipation combustion model and a simplified approach for radiation, such as the P1 approximation model. The model can be further improved by considering a detailed chemistry mechanism model for combustion and a discrete ordinate model for radiation. © 2021 The Authors
引用
收藏
相关论文
共 50 条
  • [21] A unique refractory solution for anode baking furnace flues
    Uhrig, JR
    LIGHT METALS 2004, 2004, : 553 - 557
  • [22] MEETING THE CHALLENGE OF INCREASING ANODE BAKING FURNACE PRODUCTIVITY
    Ordronneau, Francois
    Gendre, Magali
    Pomerleau, Luc
    Backhouse, Nigel
    Berkovich, Adam
    Huang, Xin
    LIGHT METALS 2011, 2011, : 865 - 870
  • [23] MATHEMATICAL-MODEL SIMULATING AN ANODE BAKING FURNACE
    FURMAN, A
    MARTIRENA, H
    JOURNAL OF METALS, 1979, 31 (12): : 138 - 138
  • [24] Systemic Analysis for the Selection of Anode Baking Furnace Refractories
    Braulio, Mariana A. L.
    MacNair, Valerie
    Pandolfelli, Victor C.
    LIGHT METALS 2018, 2018, : 1397 - 1401
  • [25] VERTICAL FLUE BAKING FURNACE CONCEPTS AND ANODE QUALITY
    FOOSNAES, T
    JAREK, S
    LINGA, H
    JOURNAL OF METALS, 1988, 40 (11): : 60 - 60
  • [26] Investigation of Spent Refractory Lining in an Anode Baking Furnace
    Brandvik, Trond
    Wang, Zhaohui
    Ratvik, Arne Petter
    Grande, Tor
    LIGHT METALS 2017, 2017, : 1281 - 1288
  • [27] SOHAR ALUMINIUM'S ANODE BAKING FURNACE OPERATION
    Al Hosni, Said
    Chandler, Jim
    Forato, Olivier
    Morales, Francois
    Bigot, Jean
    Jonville, Christian
    LIGHT METALS 2011, 2011, : 859 - 863
  • [28] Nitric oxide formation in an iron oxide pellet rotary kiln furnace
    Davis, RA
    JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 1998, 48 (01): : 44 - 51
  • [29] BAKING TECHNIQUE IN ANODE BAKING FURNACE IN DEPENDENCE OF FLUE-GAS CLEANING EQUIPMENT
    ALBERSDOERFER, G
    FISCHER, KH
    RIEDHAMMER, L
    JOM-JOURNAL OF METALS, 1976, 28 (12): : A56 - A56
  • [30] ON THE LOGISTICS OF REBUILDING AN ANODE BAKING FURNACE WHILE MAINTAINING OPERATION
    Coulombe, Richard
    Machado, David
    Ferguson, John
    Carle, Darren
    LIGHT METALS 2010, 2010, : 999 - +