Value of DTS in Multi-Stacked Reservoirs to Better Understand Injectivity and Water Flood Effectiveness – A Field Example from the UAE

J. Gomes, Jane Mason, Graham F. J. Edmonstone
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引用次数: 1

Abstract

This paper highlights the application of downhole fiber optic (FO) distributed temperature sensing (DTS) measurements for well and reservoir management applications: 1) Wellbore water injectivity profiling. 2) Mapping of injection water movement in an underlying reservoir. The U.A.E. field in question is an elongated anticline containing several stacked carbonate oil bearing reservoirs (Figure 1). Reservoir A, where two DTS monitored, peripheral horizontal water injectors (Y-1 and Y-2) were drilled, is less developed and tighter than the immediately underlying, more prolific Reservoir B with 40 years of oil production and water injection history. Reservoirs A and B are of Lower Cretaceous age, limestone fabrics made up of several 4th order cycles, subdivided by several thin intra dense, 2-5 ft thick stylolitic intervals within the reservoir zones. Between Reservoir A and Reservoir B there is a dense limestone interval (30-50 ft), referred as dense layer in the Figure 1 well sections.
DTS在多层储层中的应用价值,有助于更好地了解注入能力和注水效果——以阿联酋油田为例
本文重点介绍了井下光纤(FO)分布式温度传感(DTS)测量在油井和油藏管理中的应用:1)井筒注水能力分析。2)下伏油藏注水运动图。阿联酋油田是一个细长的背斜,包含几个叠合的碳酸盐岩含油油藏(图1)。A油藏有两个DTS监测,外围水平注水井(Y-1和Y-2),与紧邻的、具有40年采油和注水历史的高产油藏B相比,A油藏的开发程度较低,致密度也较高。储层A和B为下白垩世,由几个4级旋回组成的石灰岩织物,在储层带内被几个薄而密、2-5英尺厚的花柱层段细分。在油藏A和油藏B之间有一层致密的灰岩层(30-50英尺),在图1井段中称为致密层。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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