DocumentCode :
3102369
Title :
Numerical Simulation of Supercritical Water Oxidation with a Transpiring Wall Reactor
Author :
Zhang, Fengming ; Chen, Shouyan ; Wang, Zhiqiang ; Ma, Chunyuan ; Chen, Guifang ; Zhang, Jiaming
Author_Institution :
Nat. Eng. Lab. for Coal Combustion Pollutant Control, Shandong Univ., Jinan, China
fYear :
2010
fDate :
18-20 June 2010
Firstpage :
1
Lastpage :
4
Abstract :
Transpiring wall reactor is a promising engineering solution to corrosion and salt precipitation for the technology of supercritical water oxidation. Characteristics of flow conditions and species concentrations in the reactor and around the transpiring wall are hardly accessible to measurements. So a computational fluid dynamic model of the transpiring wall reactor was developed. The influence of different operating parameters on the temperature distribution and species distribution, especially the temperature near the transpiring wall, were investigated. Feed mass flow, feed flow temperature and ethanol concentration has a strong influence on the temperature of reactor. Higher feed mass flow, feed flow temperature and ethanol concentration are beneficial to the destruction of ethanol, but it reduces the protection of upper transpiring wall. The optimum feed flow for the reactor is between 0.002 and 0.003kg/s at 380°C, Transpiration intensity has minimal influence on the temperature, but lower transpiring flow temperature is beneficial to protection of the porous wall. Upper branch transpiring water of 300°C provides a subcritical protective film to prevent corrosion and salt precipitation.
Keywords :
computational fluid dynamics; corrosion protection; organic compounds; oxidation; precipitation; temperature distribution; wastewater treatment; computational fluid dynamic model; corrosion; ethanol concentration; feed flow temperature; feed mass flow; flow conditions; salt precipitation; species concentrations; species distribution; subcritical protective film; supercritical water oxidation; temperature 300 C; temperature 380 C; temperature distribution; transpiration intensity; transpiring wall reactor; upper branch transpiring water; Computational fluid dynamics; Corrosion; Ethanol; Feeds; Fluid flow measurement; Inductors; Numerical simulation; Oxidation; Protection; Temperature distribution;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioinformatics and Biomedical Engineering (iCBBE), 2010 4th International Conference on
Conference_Location :
Chengdu
ISSN :
2151-7614
Print_ISBN :
978-1-4244-4712-1
Electronic_ISBN :
2151-7614
Type :
conf
DOI :
10.1109/ICBBE.2010.5515571
Filename :
5515571
Link To Document :
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