位置:成果数据库 > 期刊 > 期刊详情页
Water flooding optimization with adjoint model under control constraints
  • ISSN号:1001-6058
  • 期刊名称:《水动力学研究与进展:英文版》
  • 时间:0
  • 分类:TE341[石油与天然气工程—油气田开发工程] TQ320.8[化学工程—合成树脂塑料工业]
  • 作者机构:[1]School of Petroleum Engineering, China University of Petroleum (East China), Qingdao 266580, China
  • 相关基金:Project supported by the China Important National Science and Technology Specific Projects (Grant No. 2011ZX05024-002-008), the Fundamental Research Funds for the Central Universities (Grant No. 13CX02053A) and the Changjiang Scholars and Innovative Reserch Team in University (Grant No. IRT1294).
中文摘要:

The oil recovery enhancement is a major technical issue in the development of oil and gas fields.The smart oil field is an effective way to deal with the issue.It can achieve the maximum profits in the oil production at a minimum cost,and represents the future direction of oil fields.This paper discusses the core of the smart field theory,mainly the real-time optimization method of the injection-production rate of water-oil wells in a complex oil-gas filtration system.Computing speed is considered as the primary prerequisite because this research depends very much on reservoir numerical simulations and each simulation may take several hours or even days.An adjoint gradient method of the maximum theory is chosen for the solution of the optimal control variables.Conventional solving method of the maximum principle requires two solutions of time series:the forward reservoir simulation and the backward adjoint gradient calculation.In this paper,the two processes are combined together and a fully implicit reservoir simulator is developed.The matrixes of the adjoint equation are directly obtained from the fully implicit reservoir simulation,which accelerates the optimization solution and enhances the efficiency of the solving model.Meanwhile,a gradient projection algorithm combined with the maximum theory is used to constrain the parameters in the oil field development,which make it possible for the method to be applied to the water flooding optimization in a real oil field.The above theory is tested in several reservoir cases and it is shown that a better development effect of the oil field can be achieved.

英文摘要:

The oil recovery enhancement is a major technical issue in the development of oil and gas fields. The smart oil field is an effective way to deal with the issue. It can achieve the maximum profits in the oil production at a minimum cost, and represents the future direction of oil fields. This paper discusses the core of the smart field theory, mainly the real-time optimization method of the injection-production rate of water-oil wells in a complex oil-gas filtration system. Computing speed is considered as the primary prerequisite because this research depends very much on reservoir numerical simulations and each simulation may take several hours or even days. An adjoint gradient method of the maximum theory is chosen for the solution of the optimal control variables. Conven-tional solving method of the maximum principle requires two solutions of time series: the forward reservoir simulation and the backward adjoint gradient calculation. In this paper, the two processes are combined together and a fully implicit reservoir simulator is developed. The matrixes of the adjoint equation are directly obtained from the fully implicit reservoir simulation, which accelera-tes the optimization solution and enhances the efficiency of the solving model. Meanwhile, a gradient projection algorithm combined with the maximum theory is used to constrain the parameters in the oil field development, which make it possible for the method to be applied to the water flooding optimization in a real oil field. The above theory is tested in several reservoir cases and it is shown that a better development effect of the oil field can be achieved.

同期刊论文项目
同项目期刊论文
期刊信息
  • 《水动力学研究与进展:英文版》
  • 中国科技核心期刊
  • 主管单位:中国船舶重工集团公司
  • 主办单位:中国船舶科学研究中心
  • 主编:矣有生
  • 地址:上海高雄路185号
  • 邮编:200011
  • 邮箱:jhdzhou@aliyun.com
  • 电话:021-63150072
  • 国际标准刊号:ISSN:1001-6058
  • 国内统一刊号:ISSN:31-1563/T
  • 邮发代号:
  • 获奖情况:
  • 国内外数据库收录:
  • 被引量:427