The influence of iron and cobalt on the type II hot corrosion behavior of NiCr model alloys

被引:9
作者
Koenig, Till [1 ]
Montero, Xabier [1 ]
Galetz, Mathias [1 ]
机构
[1] DECHEMA Forschungsinst, Theodor Heuss Allee 25, D-60486 Frankfurt, Germany
来源
MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION | 2020年 / 71卷 / 07期
关键词
fireside corrosion; hot corrosion; nickel-based alloy; sodium sulfate; type II; HIGH-TEMPERATURE CORROSION; FUSED NA2SO4; ASH CORROSION; BASE ALLOYS; FIRESIDE CORROSION; NICKEL; SULFATE; SOLUBILITIES; MECHANISM; THERMODYNAMICS;
D O I
10.1002/maco.201911376
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The type II hot corrosion behavior of the alloys NiCr20, NiCr20Co10, and NiCr20Fe10 is investigated at 700 degrees C in synthetic air + 0.5% SO2 for up to 300 hr. Pure Na2SO4 and a eutectic mixture of MgSO4-Na2SO4 are applied as deposits. The kinetics are investigated via dimensional metrology and correlated to the microstructural progression of the corrosion by examining the cross-sections. All alloys exhibit two-stage corrosion kinetics, with initially low and subsequently increased metal losses. Independent of the deposit composition, the metal loss after the longest exposure time is increased by the alloying element cobalt, whereas it is decreased for the iron-containing alloy. All alloys show increased metal losses when exposed to the MgSO4-Na2SO4 deposit. The time to the propagation stage is similar for all tests. During the stage of low metal loss, all alloys develop a chromia scale and internal chromium sulfides. When the propagation stage is reached, chromium and nickel can be found along with oxygen and sulfur within the pit. Nickel is dissolved into the deposit, where it precipitates.
引用
收藏
页码:1138 / 1151
页数:14
相关论文
共 59 条
[1]   Reinterpretation of Type II Hot Corrosion of Co-Base Alloys Incorporating Synergistic Fluxing [J].
Alvarado-Orozco, J. M. ;
Garcia-Herrera, J. E. ;
Gleeson, B. ;
Pettit, F. S. ;
Meier, G. H. .
OXIDATION OF METALS, 2018, 90 (5-6) :527-553
[2]  
[Anonymous], 2011, ASME 2011 POW C DENV
[3]  
[Anonymous], 2011, Handbuch Hochtemperatur-Werkstofftechnik: Grundlagen, Werkstoffbeanspruchungen, Hochtemperaturlegierugen und -beschichtungen
[4]  
BALTING U, 1988, WERKST KORROS, V39, P90
[5]   Biomass-coal co-combustion: opportunity for affordable renewable energy [J].
Baxter, L .
FUEL, 2005, 84 (10) :1295-1302
[6]   HIGH-TEMPERATURE CORROSION-RESISTANCE [J].
BIRKS, N ;
MEIER, GH ;
PETTIT, FS .
JOURNAL OF METALS, 1987, 39 (12) :28-31
[7]   Influence of novel cycle concepts on the high-temperature corrosion of power plants [J].
Bordenet, B. .
MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION, 2008, 59 (05) :361-366
[8]   Simulated coal ash corrosion of Ni-based alloys [J].
Castello, P ;
Guttmann, V ;
Farr, N ;
Smith, G .
MATERIALS AT HIGH TEMPERATURES, 2002, 19 (01) :29-40
[9]  
Castello P, 2000, MATER CORROS, V51, P786, DOI 10.1002/1521-4176(200011)51:11<786::AID-MACO786>3.0.CO
[10]  
2-M