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Coupling effect of critical properties shift and capillary pressure on confined fluids: A simulation study in tight reservoirs

Critical properties shift and large capillary pressure are important contributors for the phase behavior altering of nanopore fluid. However, the effects of critical properties shift and large capillary pressure on the phase behavior are ignored in traditional compositional simulators, leading to in...

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Autores principales: Ma, Yuhua, Kang, Zhihong, Lei, Xin, Chen, Xiaodong, Gou, Congbo, Kang, Zhijiang, Wang, Shuoliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10195854/
https://www.ncbi.nlm.nih.gov/pubmed/37215859
http://dx.doi.org/10.1016/j.heliyon.2023.e15675
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author Ma, Yuhua
Kang, Zhihong
Lei, Xin
Chen, Xiaodong
Gou, Congbo
Kang, Zhijiang
Wang, Shuoliang
author_facet Ma, Yuhua
Kang, Zhihong
Lei, Xin
Chen, Xiaodong
Gou, Congbo
Kang, Zhijiang
Wang, Shuoliang
author_sort Ma, Yuhua
collection PubMed
description Critical properties shift and large capillary pressure are important contributors for the phase behavior altering of nanopore fluid. However, the effects of critical properties shift and large capillary pressure on the phase behavior are ignored in traditional compositional simulators, leading to inaccurate evaluation results of tight reservoirs. In this study, phase behavior and production of confined fluid in nanopores are studied. First, we developed a method for coupling the effect of critical properties shift and capillary pressure into the vapor-liquid equilibrium calculation base on Peng-Robinson equation of state. Second, a novel fully compositional numerical simulation algorithm considering effect of critical properties shift and capillary pressure on phase behavior is accomplished. Third, we have discussed the alterations of critical properties shift effect, capillary pressure effect and coupling effect on the composition of oil and gas production in detail. The critical properties shift and capillary pressure effects on oil and gas production in tight reservoirs are analyzed quantitatively through four cases, and the influences of the two effects in oil/gas production are compared. Based on the fully compositional numerical simulation, the simulator can rigorously simulate the impacts of component changes during production. The simulation results show that both the critical properties shift effect and the capillary pressure effect reduce the bubble point pressure of Changqing shale oil, and the influence are more prevalent in pores of smaller radius. In pores is larger than 50 nm, the phase behavior altering of the fluid can be ignored. In addition, we devised four cases to comprehensively investigate the effects of critical properties shift and large capillary pressure on production performance of tight reservoirs. The comparisons between the four cases show that the capillary pressure effect impacts the reservoir production performances greater than the critical properties shift effect, such as higher oil production, higher GOR, and lower content of lighter component and higher content of heavier component in the residual oil/gas. The results of coupling effects indicate that the critical properties shift effect would suppress the effect of the capillary pressure effect. In particular, the difference between the simulation results of the coupling effects and the base case is smaller than that between the simulation results of the capillary pressure effect and the base case.
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spelling pubmed-101958542023-05-20 Coupling effect of critical properties shift and capillary pressure on confined fluids: A simulation study in tight reservoirs Ma, Yuhua Kang, Zhihong Lei, Xin Chen, Xiaodong Gou, Congbo Kang, Zhijiang Wang, Shuoliang Heliyon Research Article Critical properties shift and large capillary pressure are important contributors for the phase behavior altering of nanopore fluid. However, the effects of critical properties shift and large capillary pressure on the phase behavior are ignored in traditional compositional simulators, leading to inaccurate evaluation results of tight reservoirs. In this study, phase behavior and production of confined fluid in nanopores are studied. First, we developed a method for coupling the effect of critical properties shift and capillary pressure into the vapor-liquid equilibrium calculation base on Peng-Robinson equation of state. Second, a novel fully compositional numerical simulation algorithm considering effect of critical properties shift and capillary pressure on phase behavior is accomplished. Third, we have discussed the alterations of critical properties shift effect, capillary pressure effect and coupling effect on the composition of oil and gas production in detail. The critical properties shift and capillary pressure effects on oil and gas production in tight reservoirs are analyzed quantitatively through four cases, and the influences of the two effects in oil/gas production are compared. Based on the fully compositional numerical simulation, the simulator can rigorously simulate the impacts of component changes during production. The simulation results show that both the critical properties shift effect and the capillary pressure effect reduce the bubble point pressure of Changqing shale oil, and the influence are more prevalent in pores of smaller radius. In pores is larger than 50 nm, the phase behavior altering of the fluid can be ignored. In addition, we devised four cases to comprehensively investigate the effects of critical properties shift and large capillary pressure on production performance of tight reservoirs. The comparisons between the four cases show that the capillary pressure effect impacts the reservoir production performances greater than the critical properties shift effect, such as higher oil production, higher GOR, and lower content of lighter component and higher content of heavier component in the residual oil/gas. The results of coupling effects indicate that the critical properties shift effect would suppress the effect of the capillary pressure effect. In particular, the difference between the simulation results of the coupling effects and the base case is smaller than that between the simulation results of the capillary pressure effect and the base case. Elsevier 2023-04-23 /pmc/articles/PMC10195854/ /pubmed/37215859 http://dx.doi.org/10.1016/j.heliyon.2023.e15675 Text en © 2023 Published by Elsevier Ltd. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Ma, Yuhua
Kang, Zhihong
Lei, Xin
Chen, Xiaodong
Gou, Congbo
Kang, Zhijiang
Wang, Shuoliang
Coupling effect of critical properties shift and capillary pressure on confined fluids: A simulation study in tight reservoirs
title Coupling effect of critical properties shift and capillary pressure on confined fluids: A simulation study in tight reservoirs
title_full Coupling effect of critical properties shift and capillary pressure on confined fluids: A simulation study in tight reservoirs
title_fullStr Coupling effect of critical properties shift and capillary pressure on confined fluids: A simulation study in tight reservoirs
title_full_unstemmed Coupling effect of critical properties shift and capillary pressure on confined fluids: A simulation study in tight reservoirs
title_short Coupling effect of critical properties shift and capillary pressure on confined fluids: A simulation study in tight reservoirs
title_sort coupling effect of critical properties shift and capillary pressure on confined fluids: a simulation study in tight reservoirs
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10195854/
https://www.ncbi.nlm.nih.gov/pubmed/37215859
http://dx.doi.org/10.1016/j.heliyon.2023.e15675
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