Characteristic of solid product layer of MgSO4 in the reaction of MgO with SO2

Science in China Series E: Technological Sciences - Tập 53 - Trang 1869-1876 - 2010
ZhenShan Li1, Fan Fang1, NingSheng Cai1
1Key Laboratory for Thermal Science and Power Engineering of the Ministry of Education, Department of Thermal Engineering, Tsinghua University, Beijing, China

Tóm tắt

The microstructure, nucleation and growth of MgSO4 product layer during the reaction of MgO Single crystal with SO2 and O2 were investigated with thermo gravity analyzer (TGA) and atomic force microscopy (AFM). The AFM images indicated that three dimensional islands with different sizes were formed during the initial reaction stage. At the initial stage, cone-shaped islands were formed, and most of them appeared at the position with terrace-step-kink. With the reaction time increasing, small islands would grow to large islands, and the coalescent would happen during this growth stage. During the product layer growth stage, the space and surface between islands would be occupied by islands, and continuum islands were formed. With the reaction time increasing in the product layer growth stage, the size of island increased while the number and total surface of all islands decreased.

Tài liệu tham khảo

Biswas A K. Principles of Blast Furnace Ironmaking: Theory and Practice. Brisbane: Cootha Publishing House, 1981 Tang J S, Song Q, He B L, et al. Oxidation behavior of a kind of carbon black. Sci China Ser E-Tech Sci, 2009, 52: 1535–1542 Cheng J, Zhou J H, Liu J Z, et al. Sulfur removal at high temperature during coal combustion in furnaces: A review. Prog Energy Combust Sci, 2003, 29: 381–405 Soo J L, Suk Y J, Soo C L, et al. SO2 removal and regeneration of MgO-Based sorbents promoted with titanium oxide. Ind Eng Chem Res, 2009, 48: 2691–2696 Dennis J S, Pacciani R. The rate and extent of uptake of CO2 by a synthetic, CaO-containing sorbent. Chem Eng Sci, 2009, 64: 2147–2157 Li Z S, Fang F, Cai N S. CO2 capture from flue gases using three Ca-based sorbents in a fluidized bed reactor. J Environ Eng-ASCE, 2009,135: 418–425 Shen L H, Zheng M, Xiao J, et al. Chemical looping combustion of coal in interconnected fluidized beds. Sci China Ser E-Tech Sci, 2007, 50:230–240 Silcox G D, Kramlich J C, Pershing D W. A mathematical-model for the flash calcination of dispersed CaCO3 and Ca(OH)2 particles. Ind Eng Chem Res, 1989,28: 155–160 Szekely J, Evans J W. A structural model for gas-solid reactions with a moving boundary. Chem Eng Sci, 1970, 25: 1091 Garcia-Labiano F, de Diego L F, Adanez J, et al. Temperature variations in the oxygen carrier particles during, their reduction and oxidation in a chemical-looping combustion System. Chem Eng Sci, 2005, 60:851–862 Bhatia S K. The effect of pore structure on the kinetics of fluid-solid reactions. Dissertation of Doctoral Degree. Pennsylvania: University of Pennsylvania, 1981 Li X T, Luo Z Y, Cen K F, et al. Modeling sulfur retention in circulating fluidized bed—Application of percolation theory (in Chinese). Prog Nat Sci, 1996, 6: 69–74 Szekely J, Evans J W, Sohn H Y. Gas-Solid Reactions. New York: Academic Press, 1976 Zhang Z Y, Lagally M G. Atomistic processes in the early stages of thin-film growth. Science, 1997, 276: 377–383 Zhou G W, Yang J C. Temperature effects on the growth of oxide islands on Cu(l 10). Appl Surf Sci, 2004, 222: 357–364 Wang C B, Shen X L, Xu Y Q. Investigation on sulfation of modified Ca-based sorbent. Fuel Process Technol, 2002, 79: 121–133 Agnihotri R, Chauk S S, Mahuli S K, et al. Mechanism of CaO reaction with H2S: Diffusion through CaS product layer. Chem Eng Sci, 1999, 54: 3443–3453. Yang H B, Wu Z H, Qiu X P, et al. Ca2+ cation diffusion through CaS04 product layer during sulfur retained reaction with CaO (in Chinese). Acta Chim Sin, 2003, 61: 1410–1415 Bausach M, Pera-Titus M, Fite C, et al. Kinetic modeling of the reaction between hydrated lime and SO2 at low temperature. AIChE J. 2005, 51:1455–1466 Li M S. Hot Corrosion of Metals (in Chinese). Beijing: Metallurgical Industry Press, 2001 Li T F. High-Temperature Oxidation and Corrosion of Metals (in Chinese). Beijing: Chemical Industry Press, 2003