西南石油大学学报(自然科学版) ›› 2007, Vol. 29 ›› Issue (6): 119-121.DOI: 10.3863/j.issn.1000-2634.2007.06.029

• 石油与天然气工程 • Previous Articles     Next Articles

TRANSIENT WELL TESTING ANALYSIS CONSIDERING HEAT LOSS AND NONNEWTONIAN FLOW FOR THERMAL RECOVERY IN HEAVY OIL RESERVOIR

ZHAO Hai-yang LIU Bin JIA Yong-lu YI Jing NIE Ren-shi   

  1. 1.Southwest Petroleum University:a.Postgraduate Institute,b.Institute of Petroleum Engineering,Chengdu Sichuan 610500,China;2.Engineering Technology Research Institute,Xibei Oilfield Company of SINOPEC,Urumqi Xinjiang 830000,China;3.Chuandongbei Gas Production Division of Southwest Oil and Gas Field Company,Dazhou Sichuan 635000,China
  • Received:2006-12-08 Revised:1900-01-01 Online:2007-12-20 Published:2007-12-20
  • Contact: ZHAO Hai-yang

Abstract:

The thermal recovery technology by Steam injection has become the most effective methods for the heavy oil reservoir, after steam injection, the oil viscosity in steam sweeping region can obviously be reduced and which improves the conditions of flow through porous media around the well, but the nonswept region would not be effectively improved. Adopting the composite model in which, the inner region is regarded as heat loss and outer region as nonNewtonian PowerLaw fluid, the solution of Laplace space can be obtained in the condition of infinite formation, and the method of numerical inversion is used to figure out the corresponding type curves and the corresponding sensitive analysis made, the new type curve is different from the conventional compound reservoir's under the nonNewtonian flow influence, and the radial flow section of outside is no longer the general horizontal straightline portion, on the intersection, as a result of the condensation coefficient influence, the pressure derivative obviously falls , the bigger the condensation coefficient is, the more the pressure derivative falls seriously. These provide a new model for pressure behavior analyses of heavy oil reservoir.

Key words: heavy oil thermal recovery, Non Newtonian flow, well testing, heat loss, interpretation model

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