多层强水驱油藏水锥控制与井下水沉完井方法综合研究提高采收率

Jupriansyah Jupriansyah
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引用次数: 2

摘要

具有底水驱机理的油藏在其生产寿命中产生水锥效应的可能性较大。由于水锥现象,井的临界安全率较低,限制了油藏的产能。因此,对于底部含水层驱动的油井,需要一种新的完井设计创新。为了解决这一问题,笔者提出了一种井下水沉(DWS)系统。DWS是一种双完井设计创新,将两根管柱安装到井中,通过不同的油管同时生产水和油。DWS的主要原理是在油水层产生稳定的压降,从而形成稳定的油水界面。DWS在多层油藏中的应用有望解决水锥现象,从而提高采收率,使油井具有经济效益。在本文中,研究方法涉及数值模拟IMPES方法(隐式压力显式饱和)和托马斯算法求解迭代。完井建模是在几个层状油藏中在相似的坐标上创建两口井,目的是在井上的油管上分别采油和采水。采油油管含水率为0%,采水油管含水率为100%。结果表明,DWS完井系统可以在高产量条件下获得较高的累计产油量,且产油为无油水。观察到,DWS在多层油藏中成功实施。与常规完井设计相比,采用DWS设计配置WDP系统的井具有更好的产油量表现。这一结果得到了地面井面采油油管无产水观察结果的支持。影响DWS系统应用建模的参数有:流度比、垂直渗透率和绝对水平渗透率(kv & kh)以及射孔间距。井下水沉是消除水锥、提高采收率的一种合适的创新技术。与常规完井设计相比,DWS在具有底含水层驱动机制的多层油藏中的应用表现出更好的产油量。这一结果得到了地面井面采油油管无产水观察结果的支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Integrated Study of Water Coning Control with Downhole Water Sink Completion Approaches in Multilayered - Strong Water Drive Reservoir to Improve Oil Recovery
A reservoir with bottom water drive mechanism has a high tendency to generate water coning effect in their production life. As a result of water coning phenomenon, the well has a low critical safe rate which limits the productivity of the reservoir. Consequently, a new innovation for completion design in an oil well with a bottom aquifer drive is needed. The author offers a Downhole Water Sink (DWS) system to solve this problem. DWS is a dual completion design innovation where two tubing strings are installed into the well to produce both water and oil simultaneously by different tubing. The main principle of DWS is to create a stable pressure drawdown in oil and water zone so that a stable oil-water contact is formed. DWS application in a multilayered reservoir expected to be able to resolve the water coning phenomenon thus the recovery factor increased and the well becomes economic to be produced. In this paper, the study approach involved by numerical simulation within IMPES methodology (Implicit Pressure Explicit Saturation) and Thomas’s algorithm to solve iteration. Completion modeling is creating two wells on the similar coordinate in several layered reservoirs aims to produce oil and water separately on tubing on the well. The percentage of water cut on oil production tubing is 0% while the percentage of water cut on water production tubing is 100%. This thing shows that DWS completion system will give a greater cumulative oil production in a high production rate and the oil is oil-free water. It is observed that the successful implementation of DWS in a multilayered reservoir is taken place. The well with DWS design configuration for the WDP system shows a better performance of oil productivity compares to a conventional well completion design. This result is supported by no water production observed at oil production tubing on the surface well level. There are some parameters that affect DWS system application modeling i.e. mobility ratio, vertical and absolute horizontal permeability (kv & kh) also perforation interval. Down-Hole Water Sink is an appropriate innovation to eliminate water coning and producing oil with high recovery factor. DWS application in a multilayered reservoir with bottom aquifer driving mechanism shows a better performance of oil productivity compares to a conventional well completion design. This result is supported by no water production observed at oil production tubing on the surface well level.
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