Abstract

Homogeneous mixing of hot air from the hot blast stove with suitable quantity of cold air in a mixing chamber is very essential to maintain uniform temperature of hot air at all tuyers of a blast furnace. Proper design of the mixing chamber is very important for stable and efficient operation of blast furnace, lower energy consumption, and lower carbon dioxide emission. Comprehensive understanding of the physics of the mixing process is very essential for efficient design of the mixing chamber. In this paper, computational fluid dynamics (CFD) simulations are conducted to analyze the mixing of hot and cold air in a tangential cold gas inlet type and in a radial cold gas inlet type mixing chambers, which are commonly used in the industry. Results show that both types of mixing chamber produce very non-homogeneous mixture of cold and hot air despite having large mixing length in the long hot blast main. Also, design of a novel compact mixing chamber is presented and CFD analysis of this mixing chamber is conducted. The new mixing chamber is found to produce almost homogeneously mixed air stream within a very short length due to very high turbulence of the intensely swirling air flow. Also, the new mixing chamber is found to save large amount of high-quality thermal energy, which is wasted in the other two designs through the wall of the long hot blast main.

References

1.
“Steel’s Contribution to a Low Carbon Future and Climate Resilient Societies—Worldsteel Position Paper,”
2020
, https://www.worldsteel.org/en/dam/jcr:7ec64bc1-c51c-439b-84b8-94496686b8c6/Position_paper_climate_2020_vfinal.pdf
2.
Edenhofe
,
O.
,
Pichs-Madruga
,
R.
, and
Sokona
,
Y.
,
2014
, “Mitigation of Climate Change—Working Group III Contribution to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change,” Cambridge University Press, New York.
3.
Xu
,
C. C.
, and
Cang
,
D. Q.
,
2010
, “
A Brief Overview of Low CO2 Emission Technologies for Iron and Steel Making
,”
J. Iron. Steel Res. Int.
,
17
(
3
), pp.
1
7
.
4.
Zetterholm
,
J.
,
Ji
,
X.
,
Sundelin
,
B.
,
Martin
,
P. M.
, and
Wang
,
C.
,
2017
, “
Dynamic Modelling for the Hot Blast Stove
,”
Appl. Energy
,
185
(
Part 2
), pp.
2142
2150
.
5.
Willmott
,
A. J.
,
1968
, “
Simulation of a Thermal Regenerator Under Conditions of Variable Mass Flow
,”
Int. J. Heat Mass Transfer
,
11
(
7
), pp.
1105
1116
.
6.
Razelos
,
P.
, and
Benjamin
,
M. K.
,
1978
, “
Computer Model of Thermal Regenerators With Variable Mass Flow Rates
,”
Int. J. Heat Mass Transfer
,
21
(
6
), pp.
735
744
.
7.
Sleptsov
,
Z. E.
,
Kolodin
,
Y. I.
,
Apshin
,
B. A.
, and
Fedotov
,
A. G.
,
1969
, “
Mixing of Blast Air in a 2000-m3-Capacity Blast Furnace
,”
Metallurgist
,
13
(
5
), pp.
278
280
.
8.
Peacey
,
J. G.
, and
Davenport
,
W. G.
,
1979
,
The Iron Blast Furnace: Theory and Practice
,
Pergamon Press
,
New York
.
9.
Geerdes
,
M.
,
Toxopeus
,
H.
, and
Vliet
,
C.
,
2009
,
Modern Blast Furnace Ironmaking: An Introduction
,
IOS Press
,
Amsterdam
.
10.
Sasaki
,
K.
,
Hatano
,
M.
,
Watanabe
,
M.
,
Shimoda
,
T.
,
Yokotani
,
K.
,
Ito
,
T.
, and
Yokoi
,
T.
,
1976
, “
Investigation of Quenched No. 2 Blast Furnace at Kokura Works
,”
Tetsu-to-Hagané
,
62
(
5
), pp.
580
591
.
11.
Zhou
,
D.
,
Cheng
,
S.
,
Zhang
,
R.
,
Li
,
Y.
, and
Chen
,
T.
,
2017
, “
Uniformity and Activity of Blast Furnace Hearth by Monitoring Flame Temperature of Raceway Zone
,”
ISIJ Int.
,
57
(
9
), pp.
1509
1516
.
12.
Kurunov
,
I. F.
,
Dobroskok
,
V. A.
,
Isteev
,
A. I.
, and
Pleshkov
,
V. I.
,
1977
, “
Effect of Circumferential Gas Distribution on the Dynamic Characteristics of a Blast Furnace
,”
Metallurgist
,
21
(
6
), pp.
367
369
.
13.
Kryachko
,
G. Y.
,
Lebed
,
P. K.
, and
Timoshenko
,
V. I.
,
1978
, “
Effect of Different Factors on Distortion of the Temperature Field Around the Blast Furnace
,”
Metallurgist
,
22
(
9
), pp.
586
590
.
14.
Regelin
,
D. H.
, and
Farrar
,
J. A.
,
1979
, “
Mixing Chamber
,” U.S. Patent No. 4,150,817
.
15.
Laar
,
J. V.
,
Felthuis
,
J.
,
Weber
,
H. G. O.
, and
Olivierse
,
H.
,
1975
, “
Apparatus for Mixing Two Gas Flows
,” U.S. Patent 3,913,617
.
16.
Ouwerkerk
,
J. H. W.
,
Lucieer
,
W. B.
, and
Cramer
,
R. E.
,
1985
, “
Arrangement for Mixing a Gas Into a Main Flow of a Second Gas
,” U.S. Patent No. 4,521,117
.
17.
Moller
,
M.
,
Eschmann
,
F.
, and
Simoes
,
J. P.
,
2014
, “
Device for Regulating the Temperature of a Gas in a Hot Gas Main
,” U.S. Patent No. 8.889.060 B2
.
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