Journal of
Petroleum and Gas Engineering

  • Abbreviation: J. Petroleum Gas Eng.
  • Language: English
  • ISSN: 2141-2677
  • DOI: 10.5897/JPGE
  • Start Year: 2010
  • Published Articles: 123

Full Length Research Paper

Concept of complete CO2 capture from natural gas inside exploration wells and its storage in rock reservoirs

Marco Ludovico-Marques
  • Marco Ludovico-Marques
  • INCITE, Polytechnic Institute of Setúbal, Barreiro School of Technology, Portugal.
  • Google Scholar


  •  Received: 26 February 2019
  •  Accepted: 26 March 2019
  •  Published: 31 August 2019

References

API Spec 7-1/ISO 10424-1 (2004, 2007, 2009, 2011). Specification for rotary drill stem elements. American Petroleum Institute.

 

API RP96 (2013). Deepwater well design and construction. American Petroleum Institute.

 

Cavalcanti L, Kalantzopoulos G, Eckert J, Knudsen K, Fossum J (2018). A nano-silicate material with exceptional capacity for CO2 capture and storage at room temperature. Scientific Reports 8:11-27.
Crossref

 

Cavenati S, Grande C, Rodrigues A (2004). Adsorption equilibrium of methane, carbon dioxide, and nitrogen on zeolite 13X at high pressures. Journal of Chemical Engineering Data 49:1095-1101.
Crossref

 

Dong F, Kodama A, Goto M, Hirose T (1998). Simultaneous separation of a ternary gas mixture (CH4-CO2-N2) by a novel PSA process. In Fundamentals of Adsorption. Le Van D, eds. Kluwer Academic Publisher. Boston pp. 769-774.

 

Dreisbach F, Staudt R, Keller J (1999). High-pressure adsorption data of methane, nitrogen, carbon dioxide and their binary and ternary mixtures on activated carbon. Adsorption 5(3):215-227.
Crossref

 

Dudley B (2019). BP energy outlook 2019 edition. United Kingdom 73 p. ISO 10426-1 ANSI/API SPECIFICATION 10A (2009). Specification for cements and materials for well cementing/Petroleum and natural gas industries. Cements and materials for well cementing -Part 1: Specification. International Organization for Standardization/ American Petroleum Institute.

 

First E, Hasan M, Floudas C (2013). Computational discovery of cost-effective materials for carbon capture and other molecular separations. Computer-Aided Systems Laboratory, Princeton University. helios.princeton.edu/CO2/

 

Gasda S, Bachu S, Celia M (2004). Spatial characterization of the location of potentially leaky wells penetrating a deep saline aquifer in a mature sedimentary basin. Environmental Geology 46:707-720.
Crossref

 

Ghabezloo S, Sulem J, Saint-Marc J (2009). Evaluation of a permeability-porosity relationship in a low permeability creeping material using a single transient test. International Journal of Rock Mechanics and Mining Sciences 46(4):761-768.
Crossref

 

Hasan M, First E, Floudas C (2013). Cost-effective CO2 capture based on in silico screening of zeolites and process optimization. Physical Chemistry Chemical Physics 15:17601-17618.
Crossref

 

Jacobsen S, Everett B, Levien L, Van Baaren C, Neuman C, Watson J (1990). Log interpretation strategies in gas wells. SPWLA 31st Annual Logging Symposium. Louisiana. USA.

 

Joos L, Lejaeghere K, Huck J, Speybroecka V, Smit B (2015). Carbon capture turned upside down: high temperature adsorption and low-temperature desorption (HALD). Energy Environment Science 8:2480.
Crossref

 

Ko D, Siriwardane R, Biegler L (2003). Optimization of pressure swing adsorption process using zeolite 13X for CO2 sequestration. Industrial and Engineering Chemistry 42:339-348.
Crossref

 

Krooss B, van Bergen F, Gensterblum Y, Siemons N, Pagnier H, David P (2002). High-pressure methane and carbon dioxide adsorption on dry and moisture-equilibrated pennsylvanian coals. International Journal of Coal Geology 51:69-92.
Crossref

 

Murata K, Miyawaki J, Kaneko K (2002). A simple determination method of the absolute adsorbed amount for high-pressure gas adsorption. Carbon 40:425-428.
Crossref

 

Murata K, Kaneko K (2000). Nano-range interfacial layer upon high-pressure adsorption of supercritical gases. Chemical Physics Letters 321:342-348.
Crossref

 

Olajossy A, Gawdzik A, Budner Z, Dula J (2003). Methane separation from coal mine methane gas by vacuum pressure swing adsorption. Transactions of the Institution of Chemical Engineers 81(A):474-482.
Crossref

 

Rolniak P, Kobayashi R (1980). Adsorption of methane and several mixtures of methane and carbon dioxide at elevated pressures and near ambient temperatures on 5A and 13X molecular sieves by tracer pertubation chromatography. American Institute of Chemical Engineers Journal 26(4):616-625.
Crossref

 

Salem A, Shedid S (2013). Variation of petrophysical properties due to carbon dioxide (CO2) storage in carbonate reservoirs. Journal of Petroleum and Gas Engineering 4(4):91-102.

 

Siperstein F, Myers A (2001). Mixed-gas adsorption. American Institute of Chemical Engineers Journal 47(5): 141-1159.
Crossref

 

Sircar S. (1988). High efficiency separation of methane and carbon dioxide mixtures by adsorption. American Institute of Chemical Engineers Symposium Series 84(264):70-72.

 

Siriwardane R, Shen M, Fisher E (2001). Adsorption of CO2 on molecular sieves and activated carbon. Energy Fuels 15:279-284.
Crossref

 

Talu O (1998). Needs, status, techniques and problems with binary gas adsorption experiments. Advances in Colloid and Interface Science 76-77:227-269.
Crossref

 

TR 5C3/ISO 10400 (2007, 2015). Technical report on equations and calculations for casing, tubing, and line pipe used as casing or tubing; and performance properties tables for casing and tubing. American Petroleum Institute.

 

Um W, Jung H, Martin P, McGrail B (2011). Effective permeability change in wellbore cement with carbon dioxide reaction. Pacific Northwest National Laboratory (under contract for the United States Department of Energy).
Crossref

 

Vargaftik N (1975). Tables on the thermophysical properties of liquids and gases, 2nd ed. John Wiley and Sons. New York.
Crossref