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Engineering rhamnolipid biosurfactants as agents for microbial enhanced oil recovery

  • Xiangdong Fang
  • , Qinhong Wang
  • , Baojun Bai
  • , Xi Cai Liu
  • , Yongchun Tang
  • , Patrick J. Shuler
  • , Willliam A. Goddard
  • SPE
  • California Institute of Technology

Résultats de recherche: Contribution à un journalArticle de conférenceRevue par des pairs

Résumé

This investigation considered engineered rhamnolipid biosurfactants as EOR agents that potentially could be manufactured at low cost from renewable resources, and have lower toxicity than synthetic EOR surfactants. This particular biosurfactant comes mainly from the microbe Pseudomonas aeruginosa. Disadvantages of working with this strain include that the chemical structures of the produced rhamnolipids are not easily controlled, plus there is a preference to use instead a completely non-pathogenic microbe. Towards that end, the study took the approach to clone the genetic information from a P. aeruginosa strain into E. coli to manipulate systematically the structure of the created rhamnolipids and evaluate their EOR performance by themselves (no co-surfactant or viscosity chemical added). Six E.coli strains (ETRA, ETRAB, ERAC, ETRABC, ETRhl, ETRhl-RC) that carry different combinations of the genes involoved in rhamnolipid biosynthesis were successfully engineered and tested for their rhamnolipid production. Sand-pack core flooding tests were run to evaluate and compare the effectiveness of these products as agents for enhanced oil recovery. The brine with optimized pH and salt concentration in which a given biosurfactant product has its lowest IFT was used to saturate the core, perform a waterflood, and prepare the surfactant solution. Injection of 6 PV of only a 250 ppm rhamnolipid biosurfactant solution and 4 PV of a brine chaser could recover as much as half of the waterflood residual hydrocarbon (n-octane). The engineered E. coli strains that include more of the implanted genetic code had the better performance in these oil displacement tests. The IFT, biosurfactant concentration and pH of effluents from core flooding were monitored to address EOR mechanisms and quantify the adsorption of each product in the sand pack.

langue originaleAnglais
Pages (de - à)229-237
Nombre de pages9
journalProceedings - SPE International Symposium on Oilfield Chemistry
étatPublié - 30 mai 2007
Modification externeOui
EvénementSPE International Symposium on Oilfield Chemistry 2007 - Houston, TX, États-Unis
Durée: 28 févr. 20072 mars 2007

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