一致性控制在独立筛管SAS已完井水平井中的应用——以渤海湾为例

Xu Zheng, Y. Lei, Bailin Pei, Wei Zhao
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引用次数: 0

摘要

渤海湾相当一部分SAS完井水平井的关水要求较高。目前流行的可膨胀封隔器与ICD筛管相结合的方法不能被采用,因为可膨胀封隔器无法在SAS与井壁之间的环空中实现分段,因为SAS无法起下钻。介绍了一种一致性控制方法,并给出了实例分析。当SAS管柱没有流出时,首先通过射孔建立粒子流过的路径。然后,下入一串直径较小的ICD筛管,然后将连续的封隔颗粒泵入ICD筛管和SAS之间的环空(内环空)。与此同时,流体携带的颗粒也通过SAS上的穿透填满SAS与井壁之间的环空(外环空)。因此,通过颗粒环来实现防止轴向窜流的功能。该井是一口老井,同时遭受高含水、出砂和泥浆堵塞。该操作颗粒充填率为104.2%,表明颗粒在内外环内充填紧密,实现了生产区间的分段。投产后,产水量由原来的638m3/d降至85m3/d。产油速度恢复到关井前的水平,随后缓慢增加到40.3m3/d。实现了堵水增油,不出砂、不堵泥。采用该方法实现了三个功能。首先,通过控制顺性实现堵水增油;其次,颗粒环和夹套内的过滤层具有较好的防砂效果;第三,由紧密堆积的颗粒形成的环能够防止泥浆堵塞。本文创新性地提出了射孔的方法,建立颗粒的流动路径,使颗粒在两个环空内被颗粒紧密填充,配合ICD筛管,实现了整个生产区间的一致性控制,达到了堵水增油的目的。因此,避免了侧钻的高资本支出,提高了单井的投资回报率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Conformance Control in Stand-Alone Screen SAS Completed Horizontal Wells-A Case Study of Bohai Bay
There is high demand for water shutoff in quite a few SAS completed horizontal wells in the Bohai Bay, China. The popular swellable packer in combination with the ICD screen method cannot be adopted because segmentation cannot be achieved in the annulus between the SAS and the borehole wall by the swellable packers for the SAS is unable to be tripped out. A conformance control method is introduced and a case study is provided. When the SAS string is not tripped out, first the path for the particles to flow through is established by perforation. Then, a string of ICD screen with smaller diameter is run in place, followed by the pumping of the continuous pack-off particles into the annulus (the inner annulus) between the ICD screen and the SAS. Meanwhile, the particles being carried by the fluids also pack the annulus (the outer annulus) between the SAS and the borehole wall through the penetrations on the SAS. Thus, the function of axial channeling prevention is realized by the rings of particles. The well in the case study is an old well that suffered from high water cut, sand production and mud clogging simultaneously. For this operation, the filling rate of the particles was 104.2%, indicating the particles were tightly packed in the inner and outer annuluses and segmentation in the production interval was realized. After commissioning, the water rate dropped from the original 638m3/d to 85m3/d. The oil rate resumed to the level before the well was shut in and later slowly increased to 40.3m3/d. Water shutoff and oil enhancement was realized and neither sand production nor mud clogging occurred. Three functions are realized via the adoption of this method. Firstly, water shutoff and oil enhancement are realized via conformance control; secondly, both rings of particles together with the filtering layers in jacket provide better sand control; thirdly, the rings formed by the tightly packed particles are capable of preventing mud clogging. In this paper, perforation is innovatively proposed to establish the path for the particles to flow through so that both annuluses are tightly filled by particles, together with the ICD screens, conformance control is realized along the entire production interval and the target of water shutoff and oil enhancement is achieved. Accordingly, high CAPEX for sidetracking is avoided and the single well ROI is improved.
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