Advances in sulfur chemistry for treatment of acid gases. (May 2016)
- Record Type:
- Journal Article
- Title:
- Advances in sulfur chemistry for treatment of acid gases. (May 2016)
- Main Title:
- Advances in sulfur chemistry for treatment of acid gases
- Authors:
- Gupta, A.K.
Ibrahim, S.
Al Shoaibi, A. - Abstract:
- Abstract: Increased energy demand worldwide has caused faster depletion of sweet feedstock and increased exploitation of sourer hydrocarbon fuels. These fuels often contain acid gases (H2 S and CO2 ), mercaptans and trace amounts of benzene, toluene and xylene (BTX) that are harmful to human health, the environment and industrial equipment. The US EPA has proposed a reduction of sulfur in gasoline from 30 ppm to 10 ppm by 2017. To reach this goal, crude oil and gas must be subjected to more efficient desulfurization processes in which acid gases are major byproducts. The separated acid gases and associated impurities are further processed for material and energy recovery, as the fuels with high sulfur content are restricted due to their harmful effects. In this paper, a comprehensive review of the treatment of acid gases and associated impurities is given along with an advanced Claus process design that can capture much greater amounts of sulfur in the thermal stage to decrease the burden in catalytic stages and reduce operational costs. Claus process technology, although mature and commonly used for the recovery of sulfur and energy from acid gases, has low thermal stage efficiency that further deteriorates with change in acid gas composition. The non-uniformity of acid gas feed streams poses several technical and operational problems, resulting in higher operational costs and increased toxic gas emissions. Sulfur chemistry provides a path for improved understanding of theAbstract: Increased energy demand worldwide has caused faster depletion of sweet feedstock and increased exploitation of sourer hydrocarbon fuels. These fuels often contain acid gases (H2 S and CO2 ), mercaptans and trace amounts of benzene, toluene and xylene (BTX) that are harmful to human health, the environment and industrial equipment. The US EPA has proposed a reduction of sulfur in gasoline from 30 ppm to 10 ppm by 2017. To reach this goal, crude oil and gas must be subjected to more efficient desulfurization processes in which acid gases are major byproducts. The separated acid gases and associated impurities are further processed for material and energy recovery, as the fuels with high sulfur content are restricted due to their harmful effects. In this paper, a comprehensive review of the treatment of acid gases and associated impurities is given along with an advanced Claus process design that can capture much greater amounts of sulfur in the thermal stage to decrease the burden in catalytic stages and reduce operational costs. Claus process technology, although mature and commonly used for the recovery of sulfur and energy from acid gases, has low thermal stage efficiency that further deteriorates with change in acid gas composition. The non-uniformity of acid gas feed streams poses several technical and operational problems, resulting in higher operational costs and increased toxic gas emissions. Sulfur chemistry provides a path for improved understanding of the complex process in the thermal stage of the Claus reactor with a goal to recover both energy and improve the quality of sulfur produced, so that catalytic stages are minimal. The sulfur chemistry and kinetic models of H2 S combustion are reviewed. Practical problems emanating from the presence of acid gas impurities (such as CO2, ammonia, light hydrocarbons, aromatics, COS and CS2 ) during the acid gas conversion process are evaluated. Reactor conditions that mitigate the impact of impurities are also included. An urgent need exists for the development of comprehensive kinetic models that can capture the combustion chemistry of H2 S along with the presence of trace quantities of aromatics, ammonia and other impurities during sulfur recovery in Claus reactors. Our current knowledge lacks a detailed chemistry, so that effective capture of acid gas conversion in the Claus thermal stage remains a challenge. Future studies must focus on a systematic coupling of the available kinetic models for neat H2 S, hydrocarbon and ammonia fuels, and subsequent validation under partially oxidizing operating conditions in Claus reactors. Such a mechanism could help to improve the efficiency of sulfur recovery processes and sulfur quality for improved design of advanced Claus reactors with enhanced sulfur capture, energy recovery and mitigated environmental issues. … (more)
- Is Part Of:
- Progress in energy and combustion science. Volume 54(2016:Jun.)
- Journal:
- Progress in energy and combustion science
- Issue:
- Volume 54(2016:Jun.)
- Issue Display:
- Volume 54 (2016)
- Year:
- 2016
- Volume:
- 54
- Issue Sort Value:
- 2016-0054-0000-0000
- Page Start:
- 65
- Page End:
- 92
- Publication Date:
- 2016-05
- Subjects:
- Acid gases treatment -- Advanced Claus process -- Sulfur chemistry -- Energy recovery -- Sulfur recovery -- Trace contaminants -- Mercaptans -- Benzene -- Toluene and xylene -- Thermal stage conversion -- Catalytic stages -- CO2 -- Ammonia -- Light hydrocarbons -- Aromatics -- Carbon disulfide (CS2) -- Carbonyl sulfide (COS) -- Kinetic models -- Chemistry -- Air pollution -- Mitigated of environmental issues -- Distributed reactor -- Uniform thermal field -- Isothermal reaction -- Decomposition -- Acid gas enrichment -- Acid gas bypass -- Hydrogenation/Hydrolysis of effluent byproducts -- Oxygen enrichment -- High temperature air combustion (HiTAC) -- Selectox processes -- Amine gas sweetening -- Syngas production -- Reactor operation -- Chemicals
Combustion -- Periodicals
Power (Mechanics) -- Periodicals
Combustion engineering -- Periodicals
621.4023 - Journal URLs:
- http://www.sciencedirect.com/science/journal/03601285 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.pecs.2015.11.001 ↗
- Languages:
- English
- ISSNs:
- 0360-1285
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 6868.330000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 7920.xml