蒸汽驱中后期热化学-气体交替驱提高采收率技术研究OA
Research on Thermochemical-Gas Alternating Flooding Technology for Enhanced Oil Recovery in the Middle and Late Stages of Steam Flooding
由于稠油油藏高孔高渗储层特点及高强度注采工况,蒸汽驱开发中后期热流体窜流、含水率突升、开采效果变差等矛盾日益突出,迫切需要借助新技术进一步增效.通过数值模拟、室内模拟实验等手段研究了热流体的温度场、饱和度场等变化规律,并在此基础上开展了热化学-气体交替驱技术的研究.结果表明,薄层稠油油藏吞吐转驱开发中后期,井组内部分井出现热联通现象,温度场扩展半径达100~140 m,含水率升高至74%;油藏加热区与未加热区的面积占比达到1∶1,未加热区剩余油富集且未得到有效动用.通过优化高温强化泡沫、耐高温低黏固结凝胶复合体系,其封堵率可达97.0%以上,实现高效液流转向,进而有效动用富集剩余油.提出了一种依托地层内剩余热量加上热水补充热量、结合烟道气等气体交替驱的工艺,数值模拟结果表明采收率可提升2.00个百分点左右.
In view of the characteristics of high porosity and high permeability in heavy oil reservoirs,together with the high-intensity injection-production conditions,challenges such as thermal fluid channeling,sudden increase in water cut,and deteriorating development performance have become increasingly prominent in the middle and late stages of steam flooding.Therefore,new technologies are urgently needed to further enhance development efficiency.The variation laws of thermal fluid temperature field and saturation field were investigated via numerical simulation and laboratory simulation experiments,on the basis of which the thermochemical-gas alternating flooding technology was studied.The results show that in the middle and late stages of the conversion from cyclic steam stimulation to steam flooding in thin heavy oil reservoirs,thermal communication occurs in some wells within the well group;the expansion radius of the temperature field reaches 100~140 m,and the water cut rises to 74%.According to the analysis of the heating chamber expansion law,the area ratio of the heated zone to the unheated zone in the reservoir is close to 1∶1,and the remaining oil in the unheated zone is abundant but not effectively produced.By optimizing the composite system composed of high-temperature reinforced foam and high-temperature-resistant low-viscosity consolidated gel,the plugging efficiency can exceed 97.0%,realizing fluid diversion and enabling the recovery of enriched remaining oil.A process is proposed that utilizes the residual heat in the formation supplemented by hot water,combined with alternate injection of flue gas and other gases.Numerical simulation results indicate that the oil recovery factor can be improved by approximately 2.00%.
林珊珊;林涛;张建亮;李田靓;袁钟涛;孟祥祥;刘江海
海洋油气高效开发全国重点实验室,北京 100020||中海油田服务股份有限公司,天津 300459海洋油气高效开发全国重点实验室,北京 100020||中海油田服务股份有限公司,天津 300459||中国海油海上稠油热采重点实验室,北京 100020海洋油气高效开发全国重点实验室,北京 100020||中海油田服务股份有限公司,天津 300459||中国海油海上稠油热采重点实验室,北京 100020海洋油气高效开发全国重点实验室,北京 100020||中海油田服务股份有限公司,天津 300459||中国海油海上稠油热采重点实验室,北京 100020中海油田服务股份有限公司,天津 300459||中国海油海上稠油热采重点实验室,北京 100020中海油田服务股份有限公司,天津 300459中海油田服务股份有限公司,天津 300459
能源科技
稠油油藏驱替中后期热化学-气体交替封堵提高采收率
Heavy oil reservoirMiddle and late flooding stagesThermochemical gas alternationBlockEnhanced oil recovery
《石油化工高等学校学报》 2026 (2)
65-71,7
国家自然科学基金企业联合基金项目(U22B20145).
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