Matches in SemOpenAlex for { <https://semopenalex.org/work/W4383911571> ?p ?o ?g. }
- W4383911571 endingPage "5289" @default.
- W4383911571 startingPage "5289" @default.
- W4383911571 abstract "In this paper, an innovative multi-phase strategy is developed and numerically tested to optimize CO2 utilization and storage in an oil reservoir to support low carbon transition. In the first phase, the water-alternating-gas (WAG) injection is conducted to simultaneously store CO2 and produce crude oil in the reservoir from the respective injection and production wells. In the second phase, the injection and production wells are both shut in for some time to allow CO2 and water to be stratigraphically separated. In the third phase, CO2 is injected from the upper part of the reservoir above the separated water layer to displace water downwards, while fluids continue to be produced in the water-dominated zone from the lower part of the production well. Lastly, the production well is finally shut in when the produced gas–water ratio (GWR) reaches 95%, but CO2 injection is kept until the reservoir pressure is close to the fracture pressure of its caprocks. The numerical simulations show that implementing the proposed multi-phase strategy doubles CO2 storage in comparison to applying the WAG injection alone. In particular, 80% of the increased CO2 is stored in the third phase due to the optimized perforation. In addition, the CO2 injection rate in the last phase does not appear to affect the amount of CO2 storage, while a higher CO2 injection rate can reduce the CO2 injection time and accelerate the CO2 storage process. In the proposed strategy, we assume that the geothermal energy resources from the produced fluids can be utilized to offset some energy needs for the operation. The analysis of energy gain and consumption from the simulation found that at the early stage of the CO2-WAG phase, the energy gain mostly comes from the produced oil. At the late stage of the CO2-WAG phase and the subsequent phases, there is very little or even no energy gain from the produced oil. However, the geothermal energy of the produced water and CO2 substantially compensate for the energy loss due to decreasing oil production. As a result, a net energy gain can be achieved from the proposed multi-phase strategy when geothermal energy extraction is incorporated. The new multi-phase strategy and numerical simulation provide insights for practical energy transition and CO2 storage by converting a “to be depleted” oil reservoir to a CO2 storage site and a geothermal energy producer while enhancing oil recovery." @default.
- W4383911571 created "2023-07-12" @default.
- W4383911571 creator A5006940937 @default.
- W4383911571 creator A5028593470 @default.
- W4383911571 creator A5045902730 @default.
- W4383911571 creator A5082912885 @default.
- W4383911571 creator A5083424541 @default.
- W4383911571 date "2023-07-10" @default.
- W4383911571 modified "2023-09-29" @default.
- W4383911571 title "A Novel Multi-Phase Strategy for Optimizing CO2 Utilization and Storage in an Oil Reservoir" @default.
- W4383911571 cites W2021983224 @default.
- W4383911571 cites W2024485858 @default.
- W4383911571 cites W2050669921 @default.
- W4383911571 cites W2058372874 @default.
- W4383911571 cites W2070063441 @default.
- W4383911571 cites W2070565858 @default.
- W4383911571 cites W2071995055 @default.
- W4383911571 cites W2075567615 @default.
- W4383911571 cites W2080272390 @default.
- W4383911571 cites W2103192742 @default.
- W4383911571 cites W2139881352 @default.
- W4383911571 cites W2232988832 @default.
- W4383911571 cites W2254123944 @default.
- W4383911571 cites W2415473084 @default.
- W4383911571 cites W2510068103 @default.
- W4383911571 cites W2524646894 @default.
- W4383911571 cites W2526283918 @default.
- W4383911571 cites W2618120610 @default.
- W4383911571 cites W2747478368 @default.
- W4383911571 cites W2800517378 @default.
- W4383911571 cites W2931426244 @default.
- W4383911571 cites W2938998656 @default.
- W4383911571 cites W3000297880 @default.
- W4383911571 cites W3045078166 @default.
- W4383911571 cites W3154233157 @default.
- W4383911571 cites W3216065673 @default.
- W4383911571 cites W4213015690 @default.
- W4383911571 cites W4224443414 @default.
- W4383911571 cites W4316468317 @default.
- W4383911571 cites W4323654529 @default.
- W4383911571 cites W4323981601 @default.
- W4383911571 cites W835688285 @default.
- W4383911571 doi "https://doi.org/10.3390/en16145289" @default.
- W4383911571 hasPublicationYear "2023" @default.
- W4383911571 type Work @default.
- W4383911571 citedByCount "0" @default.
- W4383911571 crossrefType "journal-article" @default.
- W4383911571 hasAuthorship W4383911571A5006940937 @default.
- W4383911571 hasAuthorship W4383911571A5028593470 @default.
- W4383911571 hasAuthorship W4383911571A5045902730 @default.
- W4383911571 hasAuthorship W4383911571A5082912885 @default.
- W4383911571 hasAuthorship W4383911571A5083424541 @default.
- W4383911571 hasBestOaLocation W43839115711 @default.
- W4383911571 hasConcept C111766609 @default.
- W4383911571 hasConcept C127313418 @default.
- W4383911571 hasConcept C127413603 @default.
- W4383911571 hasConcept C178790620 @default.
- W4383911571 hasConcept C185592680 @default.
- W4383911571 hasConcept C21880701 @default.
- W4383911571 hasConcept C2778059233 @default.
- W4383911571 hasConcept C2778456384 @default.
- W4383911571 hasConcept C2778527123 @default.
- W4383911571 hasConcept C2779538338 @default.
- W4383911571 hasConcept C2779681308 @default.
- W4383911571 hasConcept C3020597237 @default.
- W4383911571 hasConcept C39432304 @default.
- W4383911571 hasConcept C44280652 @default.
- W4383911571 hasConcept C57054060 @default.
- W4383911571 hasConcept C78519656 @default.
- W4383911571 hasConcept C78762247 @default.
- W4383911571 hasConcept C8058405 @default.
- W4383911571 hasConcept C9677107 @default.
- W4383911571 hasConceptScore W4383911571C111766609 @default.
- W4383911571 hasConceptScore W4383911571C127313418 @default.
- W4383911571 hasConceptScore W4383911571C127413603 @default.
- W4383911571 hasConceptScore W4383911571C178790620 @default.
- W4383911571 hasConceptScore W4383911571C185592680 @default.
- W4383911571 hasConceptScore W4383911571C21880701 @default.
- W4383911571 hasConceptScore W4383911571C2778059233 @default.
- W4383911571 hasConceptScore W4383911571C2778456384 @default.
- W4383911571 hasConceptScore W4383911571C2778527123 @default.
- W4383911571 hasConceptScore W4383911571C2779538338 @default.
- W4383911571 hasConceptScore W4383911571C2779681308 @default.
- W4383911571 hasConceptScore W4383911571C3020597237 @default.
- W4383911571 hasConceptScore W4383911571C39432304 @default.
- W4383911571 hasConceptScore W4383911571C44280652 @default.
- W4383911571 hasConceptScore W4383911571C57054060 @default.
- W4383911571 hasConceptScore W4383911571C78519656 @default.
- W4383911571 hasConceptScore W4383911571C78762247 @default.
- W4383911571 hasConceptScore W4383911571C8058405 @default.
- W4383911571 hasConceptScore W4383911571C9677107 @default.
- W4383911571 hasFunder F4320334620 @default.
- W4383911571 hasIssue "14" @default.
- W4383911571 hasLocation W43839115711 @default.
- W4383911571 hasOpenAccess W4383911571 @default.
- W4383911571 hasPrimaryLocation W43839115711 @default.
- W4383911571 hasRelatedWork W1502326610 @default.
- W4383911571 hasRelatedWork W2024607432 @default.