An Innovated Water Shutoff Technology in Offshore Carbonate Reservoir

Yong Yang, Xiaodong Li, Changwei Sun, Yuanzhi Liu, Renkai Jiang, Bailin Pei, Wei Zhao
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引用次数: 1

Abstract

The problem of water production in carbonate reservoir is always a worldwide problem; meanwhile, in heavy oil reservoir with bottom water, rapid water breakthrough or high water cut is the development feature of this kind of reservoir; the problem of high water production in infill wells in old reservoir area is very common. Each of these three kinds of problems is difficult to be tackled for oilfield developers. When these three kinds of problems occur in a well, the difficulty of water shutoff can be imagined. Excessive water production will not only reduce the oil rate of wells, but also increase the cost of water treatment, and even lead to well shut in. Therefore, how to solve the problem of produced water from infill wells in old area of heavy oil reservoir with bottom water in carbonate rock will be the focus of this paper. This paper elaborates the application of continuous pack-off particles with ICD screen (CPI) technology in infill wells newly put into production in brown field of Liuhua, South China Sea. Liuhua oilfield is a biohermal limestone heavy oil reservoir with strong bottom water. At present, the recovery is only 11%, and the comprehensive water cut is as high as 96%. Excessive water production greatly reduces the hydrocarbon production of the oil well, which makes the production of the oilfield decrease rapidly. In order to delay the decline of oil production, Liuhua oilfield has adopted the mainstream water shutoff technology, including chemical and mechanical water shutoff methods. The application results show that the adaptability of mainstream water shutoff technology in Liuhua oilfield needs to be improved. Although CPI has achieved good water shutoff effect in the development and old wells in block 3 of Liuhua oilfield, there is no application case in the old area of Liuhua oilfield which has been developed for decades, so the application effect is still unclear. At present, the average water cut of new infill wells in the old area reaches 80% when commissioned and rises rapidly to more than 90% one month later. Considering that there is more remaining oil distribution in the old area of Liuhua oilfield and the obvious effect of CPI in block 3, it is decided to apply CPI in infill well X of old area for well completion. CPI is based on the ICD screen radial high-speed fluid containment and pack-off particles in the wellbore annulus to prevent fluid channeling axially, thus achieving well bore water shutoff and oil enhancement. As for the application in fractured reef limestone reservoir, the CPI not only has the function of wellbore water shutoff, but also fills the continuous pack-off particles into the natural fractures in the formation, so as to achieve dual water shutoff in wellbore and fractures, and further enhance the effect of water shutoff and oil enhancement. The target well X is located in the old area of Liuhua oilfield, which is a new infill well in the old area. This target well with three kinds of water problems has great risk of rapid water breakthrough. Since 2010, 7 infill wells have been put into operation in this area, and the water cut after commissioning is 68.5%~92.6%. The average water cut is 85.11% and the average oil rate is 930.92 BPD. After CPI completion in well X, the water cut is only 26% (1/3 of offset wells) and the oil rate is 1300BPD (39.6% higher than that of offset wells). The target well has achieved remarkable effect of reducing water and increasing oil. In addition, in the actual construction process, a total of 47.4m3 particles were pumped into the well, which is equivalent to 2.3 times of the theoretical volume of the annulus between the screen and the borehole wall. Among them, 20m3 continuous pack-off particles entered the annulus, and 27.4m3 continuous pack-off particles entered the natural fractures in the formation. Through the analysis of CPI completed wells in Liuhua oilfield, it is found out that the overfilling quantity is positively correlated to the effect of water shutoff and oil enhancement.
海上碳酸盐岩储层堵水技术创新
碳酸盐岩储层产水问题一直是世界性难题;在底水稠油油藏中,突水快或含水高是这类油藏的开发特征;老库区充填井高产水问题十分普遍。这三种问题都是油田开发人员难以解决的问题。当这三种问题出现在一口井中时,堵水的难度可想而知。产水过多不仅会降低油井出油率,还会增加水处理成本,甚至导致井关井。因此,如何解决碳酸盐岩底水稠油油藏老区充填井产出水问题将是本文研究的重点。本文阐述了ICD筛管连续充填颗粒技术在南海流花棕田新投产的充填井中的应用。流花油田是一个底水强的生物热灰岩稠油油藏。目前采收率仅为11%,综合含水率高达96%。含水过多大大降低了油井的油气产量,使油田产量迅速下降。为了延缓油田产量的下降,流花油田采用了主流的堵水技术,包括化学堵水和机械堵水两种方法。应用结果表明,流化油田主流堵水技术的适应性有待提高。CPI技术虽然在流花油田3区块开发和老井中取得了良好的堵水效果,但在已开发数十年的流花油田老区尚无应用案例,应用效果尚不明朗。目前,老区新井投产时平均含水率达80%,投产一个月后平均含水率迅速上升至90%以上。考虑到流花油田老区剩余油分布较多,3区块CPI效果明显,决定将CPI应用于老区X井进行完井。CPI是基于ICD筛管径向高速流体封隔和井筒环空封隔颗粒,防止流体轴向窜流,从而实现井筒堵水和增油。在裂缝性礁灰岩储层的应用中,CPI除具有井筒关水功能外,还可将连续封隔颗粒充填到地层的天然裂缝中,实现井筒和裂缝的双重关水,进一步增强了关水增油效果。目标井X位于流花油田老区,是老区的一口新井。该目标井存在三种水问题,突水风险较大。2010年以来,该地区已投产7口井,投产后含水率为68.5%~92.6%。平均含水率为85.11%,平均产油量为930.92桶/天。X井CPI完井后,含水率仅为26%(相当于邻井的1/3),产油量为1300BPD(比邻井高39.6%)。目标井取得了显著的降水增产效果。此外,在实际施工过程中,共向井内泵入颗粒47.4m3,相当于筛管与井壁之间环空理论体积的2.3倍。其中,20m3连续充填颗粒进入环空,27.4m3连续充填颗粒进入地层天然裂缝。通过对流花油田CPI完井的分析,发现过充量与堵水增油效果呈正相关。
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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