Volatilization kinetics of chromium oxide, manganese oxide, and manganese chromium spinel at high temperatures in environments containing water vapor

被引:26
作者
Stenzel, Alexander [1 ]
Faehsing, Diana [1 ]
Schuetze, Michael [1 ]
Galetz, Mathias C. [1 ]
机构
[1] DECHEMA Res Inst, High Temp Mat, Frankfurt, Germany
来源
MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION | 2019年 / 70卷 / 08期
基金
欧盟地平线“2020”;
关键词
chromium oxide; diffusion-controlled volatilization; manganese chromium spinel; manganese oxide; water vapor corrosion; OXIDATION BEHAVIOR; FERRITIC STEEL; ALLOYS; VAPORIZATION; INTERCONNECT; SYSTEM; CR2O3; REDUCTION; DIFFUSION;
D O I
10.1002/maco.201810655
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Performance degradation of solid oxide fuel cells due to chromium volatilization is a well-investigated issue in the literature. Therefore, retention coatings were developed to distinctly reduce the chromium volatilization. One approach was by alloying with manganese to ferritic steels to form manganese chromium spinel which is reported to decrease chromium volatilization by 61-75%. In the present paper, the volatilization rates of pure manganese chromium spinel ceramics were examined as well as those of the two oxides forming this spinel-pure chromium oxide and pure manganese oxide-in synthetic air containing 10% water vapor (high p(O-2)) and argon/hydrogen containing 10% water vapor (low p(O-2)) at 850 degrees C, 950 degrees C, and 1,050 degrees C. Chromium oxide showed higher volatilization rates in high p(O-2), whereas manganese oxide demonstrated higher volatilization rates in low p(O-2). Contradictory to the literature, manganese chromium spinel displayed the highest volatilization rates in both atmospheres and nonlinear kinetics behavior. This deviation from linear behavior can be attributed to diffusion-controlled volatilization in high p(O-2).
引用
收藏
页码:1426 / 1438
页数:13
相关论文
共 30 条
[21]   Biohybrid nanofibers containing manganese oxide-forming fungi for heavy metal removal from water [J].
Park, Yaewon ;
Liu, Shuang ;
Gardner, Terrence ;
Johnson, Drake ;
Keeler, Aaron ;
Ortiz, Nathalia ;
Rabah, Ghada ;
Ford, Ericka .
JOURNAL OF ENGINEERED FIBERS AND FABRICS, 2020, 15 (15)
[22]   New Approaches to the Preparation of Highly Efficient Chromium-Containing Oxide Catalysts for the Water Gas Shift Reaction [J].
Khassin, A. A. ;
Minyukova, T. P. ;
Demeshkina, M. P. ;
Baronskaya, N. A. ;
Plyasova, L. M. ;
Kustova, G. N. ;
Zaikovskii, V. I. ;
Yurieva, T. M. .
KINETICS AND CATALYSIS, 2009, 50 (06) :837-850
[23]   Integration of iron-manganese co-oxide (FMO) with gravity-driven membrane (GDM) for efficient treatment of surface water containing manganese and ammonium [J].
Li, Kai ;
Xu, Weihua ;
Han, Min ;
Cheng, Ya ;
Wen, Gang ;
Huang, Tinglin .
SEPARATION AND PURIFICATION TECHNOLOGY, 2022, 282
[24]   High-Throughput Description of Infinite Composition-Structure-Property-Performance Relationships of Lithium-Manganese Oxide Spinel Cathodes [J].
Zhang, Weibin ;
Cupid, Damian M. ;
Gotcu, Petronela ;
Chang, Keke ;
Li, Dajian ;
Du, Yong ;
Seifert, Hans J. .
CHEMISTRY OF MATERIALS, 2018, 30 (07) :2287-2298
[25]   Manganese-doped cobalt spinel oxide as bifunctional oxygen electrocatalyst toward high-stable rechargeable Zn-air battery [J].
Zhang, Xiaoke ;
Liu, Qianfeng ;
Liu, Shimin ;
Wang, Erdong .
ELECTROCHIMICA ACTA, 2023, 437
[26]   Comparison of removal of chromium (III) from aqueous solution by two kinds of modified diatomite: manganese-oxide-modified diatomite and microemulsion-modified diatomite [J].
Li, Er ;
Zeng, Xiangying ;
Fan, Yuehua .
INTERNATIONAL JOURNAL OF ENVIRONMENT AND POLLUTION, 2010, 41 (3-4) :326-335
[27]   Microstructure Characterization of Oxide Dispersion Strengthened Steels Containing Metallic Chromium Inclusions after High-Temperature Thermal Aging [J].
Ohtsuka, Satoshi ;
Yano, Yasuhide ;
Tanno, Takashi ;
Kaito, Takeji ;
Tanaka, Kenya .
MATERIALS TRANSACTIONS, 2013, 54 (10) :2018-2026
[28]   High performance and carbon-deposition resistance metal-supported solid oxide fuel cell with a nickel-manganese spinel modified anode [J].
Li, Q. ;
Wang, X. ;
Jia, L. ;
Chi, B. ;
Pu, J. ;
Li, J. .
MATERIALS TODAY ENERGY, 2020, 17
[29]   Manganese oxide dissociation kinetics for the Mn2O3 thermochemical water-splitting cycle. Part 1: Experimental [J].
Francis, Todd M. ;
Lichty, Paul R. ;
Weimer, Alan W. .
CHEMICAL ENGINEERING SCIENCE, 2010, 65 (12) :3709-3717
[30]   Manganese oxide dissociation kinetics for the Mn2O3 thermochemical water-splitting cycle. Part 2: CFD model [J].
Francis, Todd M. ;
Perkins, Christopher ;
Weimer, Alan W. .
CHEMICAL ENGINEERING SCIENCE, 2010, 65 (15) :4397-4410