Carburization phenomena of the ethylene pyrolysis furnace tube made of 25Cr35NiNb alloy were investigated after service for approximate 30,000 h in a petrochemical plant. Three different zones, namely, oxidation zone, carburization zone, and aging product zone, were observed in the cross section of furnace tube by microscopic analysis. The oxidation zone near the inner surface has a thickness of about 700 μm and possesses the characterization of many loose pores and voids. The inner surface has a continuous thin Cr2O3 layer and the grain boundaries near the inner wall are mainly composed of mixed oxides of Cr2O3 and SiO2. In addition, segregation of impurities S and P was detected at grain boundaries. The dark gray SiO2 distributes in the front of the oxidation zone. Carbides distribute at grain boundaries in the carburization zone with lots of voids and micro cracks. The width of grain boundary is broadened. According to the experimental results, the initiation of cracks may be promoted by carbides at grain boundaries. The uneven distribution of the Cr element was found in the carburization zone, and direct experimental evidence of Cr element diffusion was detected. In the aging product zone, the carbides evolution was observed. The chromium carbides are composed of Cr7C3 and Cr23C6. The microstructure and composition evolutions of the furnace tube and their effects on service life of ethylene pyrolysis furnace tube were also discussed.

References

1.
Chen
,
T.
,
Chen
,
X. D.
,
Lu
,
Y. R.
,
Ye
,
J.
, and
Lian
,
X. M.
,
2012
, “
Creep and Fracture Behavior of Centrifugal Cast HP40Nb Alloy Containing Lead
,”
ASME
Paper No. PVP2012-78312. 10.1115/PVP2012-78312
2.
Chen
,
T.
,
Chen
,
X. D.
,
Lu
,
Y. R.
,
Lian
,
X. M.
, and
Ye
,
J.
,
2012
, “
Influence of Grain Shape on Rupture Life of Centrifugal Casting 25Cr35Ni-Nb Alloy Tubes
,”
ASME J. Pressure Vessel Technol
,
136
(4), p.
041407
.10.1115/1.4026597
3.
Chen
,
T.
,
Chen
,
X. D.
,
Lu
,
Y. R.
,
Ai
,
Z. B.
, and
Fan
,
Z. C.
,
2013
, “
Status of Using, Manufacturing and Testing of Ethylene Pyrolysis Furnace Tubes in China
,”
Proceedings of 8th World Congress on Engineering Asset Management and 3rd International Conference on Utility Management and Safety
, 30 Oct–1 Nov,
HongKong
.
4.
Chen
,
T.
,
Chen
,
X. D.
,
Ye
,
J.
, and
Hao
,
X. Y.
,
2013
, “
Sulfur Effects on High-Temperature Creep and Fracture Behavior of 25Cr35Ni-Nb Alloys
,” ASME Vol. 6A. Available at: http://www.gbv.de/dms/tib-ub-hannover/788342037.pdf
5.
Kaya
,
A. A.
,
2002
, “
Microstructure of HK40 Alloy After High-Temperature Service in Oxidizing/Carburizing Environment II. Carburization and Carbide Transformations
,”
Mater. Charact.
,
49
(
1
), pp.
23
34
.10.1016/S1044-5803(02)00284-X
6.
Rahmel
,
A.
,
Grabke
,
H. J.
, and
Steinkusch
,
W.
,
1998
, “
Carburization-Introductory Survey
,”
Mater. Corros.
,
49
(
4
), pp.
221
225
.10.1002/(SICI)1521-4176(199804)49:4<221::AID-MACO221>3.0.CO;2-X
8.
Stevens
,
K. J.
,
Tack
,
A. J.
,
Thomas
,
C. W.
, and
Stewart
,
D.
,
2001
, “
Through-Wall Carburization Detection in Ethylene Pyrolysis Tubes
,”
J. Phys. D: Appl. Phys.
,
34
(
5
), pp.
814
822
.10.1088/0022-3727/34/5/320
9.
Khodamorad
,
S. H.
,
Fatmehsari
,
D. H.
,
Rezaie
,
H.
, and
Sadeghipour
,
A.
,
2012
, “
Analysis of Ethylene Cracking Furnace Tubes
,”
Eng. Fail. Anal.
,
21
(4), pp.
1
8
.10.1016/j.engfailanal.2011.11.018
10.
Bogdan
,
P.
,
2010
, “
Damage of Heat-Resistant Castings in a Carburizing Furnace
,”
Eng. Fail. Anal.
,
17
(1), pp.
143
149
. http://www.sciencedirect.com/science/article/pii/S1350630709001204
11.
Silva
, I
. C.
,
Silva
,
L. L.
,
Silva
,
R. S.
,
Rebello
,
J. M. A.
, and
Bruno
,
A. C.
,
2007
, “
Carburization of Ethylene Pyrolysis Tubes Determined by Magnetic Measurements and Genetic Algorithm
,”
Scr. Metall.
,
56
(
4
), pp.
317
320
.10.1016/j.scriptamat.2006.09.004
12.
da Silva
,
I. C.
,
da Silva
,
R. S.
,
Rebello
,
J. M. A.
,
Bruno
,
A. C.
, and
Silveira
,
T. F.
,
2006
, “
Characterization of Carburization of HP Steels by Non Destructive Magnetic Testing
,”
NDT&E Int.
,
39
(
7
), pp.
569
577
.10.1016/j.ndteint.2006.03.004
13.
Wang
,
K.
,
Si
,
H.
,
Yang
,
C.
, and
Xu
,
T. D.
,
2011
, “
Nonequilibrium Grain Boundary Segregation of Phosphorus in Ni-Cr-Fe Superalloy
,”
J. Iron Steel Res.
,
18
(
1
), pp.
61
67
.http://www.sciencedirect.com/science/article/pii/S0261306911005619
14.
Takasugi
,
T.
, and
Pope
,
D. P.
,
1983
, “
Effects of Sulfur and Phosphorus on the Creep Ductility of a Cr-Mo-V Steel
,”
Mater. Sci. Eng.
,
57
(
1
), pp.
15
20
.10.1016/0025-5416(83)90021-6
15.
Wu
,
X. Q.
,
Yang
,
Y. S.
,
Zhan
,
Q.
, and
Hu
,
Z. Q.
,
1998
, “
Structure Degradation of 25Cr35Ni Heat-Resistant Tube Associated With Surface Coking and Internal Carburization
,”
J. Mater. Eng. Perform.
,
7
(5), pp.
667
672
.10.1361/105994998770347549
16.
Ramanarayanan
,
T. A.
,
1998
, “
Carburization of High Chromium Alloys
,”
Mater. Corros.
49
(
4
), pp.
226
230
.10.1002/(SICI)1521-4176(199804)49:4<226::AID-MACO226>3.0.CO;2-D
17.
Borjali
,
S.
,
Allahkaram
,
S. R.
, and
Khosravi
,
H.
,
2012
, “
Effects of Working Temperature and Carbon Diffusion on the Microstructure of High Pressure Heat-Resistant Stainless Steel Tubes Used in Pyrolysis Furnaces During Service Condition
,”
Mater. Des.
,
34
(2), pp.
65
73
.10.1016/j.matdes.2011.07.069
18.
Tawancy
,
H. M.
,
2009
, “
Degradation of Mechanical Strength of Pyrolysis Furnace Tubes by High-Temperature Carburization in a Petrochemical Plant
,”
Eng. Fail. Anal.
,
16
(7), pp.
2171
2178
.10.1016/j.engfailanal.2009.02.009
You do not currently have access to this content.