Extending the Life Cycle of Old Wells: Fracturing and Replenishing Formation Energy at the Same Time

Wang Chunpeng, Zhu Weiyao, Cui Weixiang, Zhang Min, H. Xueqin, Shi Shuzhe, Nie Zhen
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Abstract

In order to extend the life cycle of the developed oilfield and ensure the stable production of the oilfield, the exploration and practice of supplementary energy refracturing has been carried out in a small block in eastern China which is on the verge of shutdown since 2017. All of the well in this block are vertical wells. This technology breaks the injection production relationship of the original well pattern. The injection wells and production wells are fractured at the same time. Fracturing fluid is not only used for fracturing, but also for supplementing formation energy. In order to produce more new fractures and make them more complex, low viscosity slippery water is used in hydraulic fracturing. It ensures that the material cost is reduced while the amount of fracturing fluid is increased. In addition, the multi-stage proppant combination is used to support all levels of fractures, which improves the conductivity of all levels of fractures. During the implementation of refracturing, the amount of fluid used in single layer is gradually increased, from 2300 to 3500 cubic meters, the maximum amount of fracturing fluid injected in single layer is 10000 cubic meters, and the proportion of slippery water is increased from 80% to 95%. The proppant is composed of 100/140 mesh and 40/70 mesh ceramic proppant, with an average sand content of 97.7 cubic meters per layer. From the perspective of construction data, after increasing the amount of fracturing fluid used in single well, the average pump stopping pressure of the later batch of construction wells is increased by 3.5 Mpa and the construction pressure is increased by 4.5MPa. After adding temporary plugging agent, the average construction pressure increased by 1.8 MPa, and the opening characteristics of new joints were obvious. After refracturing, all test wells are produced by automatic injection production, the total number of automatic injection production days is 5.2 times of the initial fracturing, and the cumulative oil production is 1.5 times of the initial fracturing. Through practice, the original injection production relationship is broken. Increasing the amount of fracturing fluid can not only supplement the formation energy, but also improve the complexity of fractures. The multi-stage proppant slug can significantly improve the conductivity of fractures at all levels, prolong the life cycle of old wells, and provide technical support for multi thin layer reconstruction.
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延长老井生命周期:同时压裂和补充地层能量
为延长已开发油田的生命周期,保证油田的稳定生产,自2017年起,在中国东部一个濒临停产的小区块开展了补充能源重复压裂的勘探与实践。该区块所有井均为直井。该技术打破了原有井网的注采关系。注水井和生产井同时压裂。压裂液不仅用于压裂,还用于补充地层能量。为了产生更多的新裂缝,使裂缝变得更复杂,在水力压裂中使用了低粘度滑水。在增加压裂液用量的同时,降低了材料成本。此外,多级支撑剂组合用于支撑所有级别的裂缝,从而提高了所有级别裂缝的导流能力。在重复压裂实施过程中,单层液体用量逐渐增加,从2300立方米增加到3500立方米,单层压裂液最大注入量为10000立方米,滑水比例从80%增加到95%。支撑剂由100/140目和40/70目陶瓷支撑剂组成,每层平均含砂量为97.7立方米。从施工数据来看,单井压裂液用量增加后,后期施工井的平均停泵压力增加3.5 Mpa,施工压力增加4.5MPa。加入暂堵剂后,施工压力平均提高1.8 MPa,新缝开口特征明显。重复压裂后,所有测试井均采用自动注采,自动注采总天数为初始压裂的5.2倍,累计产油量为初始压裂的1.5倍。通过实践,打破了原有的注射生产关系。增加压裂液的用量不仅可以补充地层能量,还可以提高裂缝的复杂性。多级支撑剂段塞可以显著提高各级裂缝的导流能力,延长老井的生命周期,为多层薄层改造提供技术支持。
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