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Real-time microseismic monitoring technology for hydraulic fracturing in shale gas reservoirs: A case study from the Southern Sichuan Basin

机译:页岩气藏水力压裂实时微震监测技术-以四川盆地南部为例

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Zipper hydraulic fracturing in multiple wells with long horizontal sections is a primary solution means to increase the shale gas production rate and efficiency and to reduce the cost in Southern Sichuan Basin. Microseismic based fracturing monitoring can be used for real-time imaging of hydraulic fractures, so it has been widely used to evaluate the fracturing effect of shale gas reservoirs and to direct the optimization and adjustment of fracturing parameters. In China, however, the microseismic fracturing monitoring on fracturing of shale gas reservoirs cannot be used to evaluate the fracturing results until the fracturing operation in the pad wells is completed according to the parameters which are designed prior to the fracturing monitoring. Its evaluation results can merely provide a guidance for the fracturing parameters of the next pad wells instead of the wells in operation. As a result, the real-time effect of microseismic fracturing monitoring is out of work. In view of this, the fractures induced by zipper hydraulic fracturing in multiple shale gas wells with long horizontal sections in the southern Sichuan Basin, was real-time imaged by using the combined technology of radially arranged microseismic surface monitoring and microseismic well monitoring on the basis of real-time positioning method. The fracturing results were assessed and used in real time for the optimization of prepad fluid parameter, perforation and temporary plugging additive releasing time, so as to effectively avoid repeated fracturing and uneven fracturing effects and improve fracturing stimulation effects. This method is applied in two well groups. It is shown that the average shale gas production rate is increased by 2–5 times. Furthermore, microseismic fracturing real-time monitoring plays a vital role in real-time evaluation of fracturing effect and real-time optimization of fracturing parameters, so it can be used as the reference and should be popularized further.
机译:水平长段多口井的拉链水力压裂是提高页岩气产量和效率,降低川南盆地成本的主要解决方案。基于微震的压裂监测技术可用于水力压裂的实时成像,因此已被广泛用于评价页岩气储层的压裂效果,并指导压裂参数的优化和调整。然而,在中国,页岩气储层压裂的微震压裂监测不能用于评估压裂结果,直到根据压裂监测之前设计的参数完成了垫层井的压裂操作。它的评估结果只能为下一个垫层井的压裂参数提供指导,而不是在运行中的井。结果,微震压裂监测的实时效果无法发挥作用。有鉴于此,利用径向布置微震面监测与微震井监测相结合的技术,对川南盆地多段水平长的页岩气井的拉链水力压裂引起的裂缝进行了实时成像。实时定位方法。对压裂结果进行评估并实时用于优化预压井液参数,射孔和临时堵漏添加剂释放时间,从而有效避免重复压裂和不均匀压裂效果,提高压裂增产效果。该方法适用于两个井组。结果表明,平均页岩气生产率提高了2到5倍。此外,微震压裂实时监测在压裂效果实时评价和压裂参数实时优化中起着至关重要的作用,因此可以作为参考,应进一步推广。

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