Author/Authors :
Junin, Radzuan Department of Petroleum Engineering - Faculty of Chemical and Energy Engineering - Universiti Teknologi Malaysia, 81310 Skudai, Johor Bahru, Malaysia , Gbadamosi, Afeez O. Department of Petroleum Engineering - Faculty of Chemical and Energy Engineering - Universiti Teknologi Malaysia, 81310 Skudai, Johor Bahru, Malaysia , Manan, Muhammad A. Department of Petroleum Engineering - Faculty of Chemical and Energy Engineering - Universiti Teknologi Malaysia, 81310 Skudai, Johor Bahru, Malaysia , Agi, Augustine Department of Petroleum Engineering - Faculty of Chemical and Energy Engineering - Universiti Teknologi Malaysia, 81310 Skudai, Johor Bahru, Malaysia , Yusuff, Adeyinka S. Department of Chemical and Petroleum Engineering - Afe Babalola University, PMB 5454, Ado‑Ekiti, Nigeria
Abstract :
Despite the progress made on renewable energy, oil and gas remains the world’s primary energy source. Meanwhile, large
amounts of oil deposits remain unrecovered after application of traditional oil recovery methods. Chemical enhanced oil
recovery (EOR) has been adjudged as an efficient oil recovery technique to recover bypassed oil and residual oil trapped in
the reservoir. This EOR method relies on the injection of chemicals to boost oil recovery. In this overview, an up-to-date
synopsis of chemical EOR with detailed explanation of the chemicals used, and the mechanism governing their oil recovery
application have been discussed. Challenges encountered in the application of the various conventional chemical EOR methods
were highlighted, and solutions to overcome the challenges were proffered. Besides, the recent trend of incorporating
nanotechnology and their synergistic effects on conventional chemicals stability and efficiency for EOR were also explored
and analysed. Finally, laboratory results and field projects were outlined. The review of experimental studies shows that porescale
mechanisms of conventional chemical EOR is enhanced by incorporating nanotechnology, hence, resulted in higher
efficiency. Moreover, the use of ionic liquid chemicals and novel alkaline–cosolvent–polymer technology shows good potentials.
This overview presents an extensive information about chemical EOR applications for sustainable energy production.
Keywords :
Nanotechnology , Enhanced oil recovery , Nanofluid , Foam , Surfactant , Polymer