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Fracturing Technology of Real Time Control Guarantees Highly Efficient Exploitation of Shale in Weiyuan Gas-Field,SW China

机译:实时控制的压裂技术保证了魏源天然气场的高效开发,SW中国

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Production history fitting in Weiyuan shale gas shows that the length and height of supporting fractures are short,which limits the long-term conductivity of fractures.Due to the limited volume of reconstruction,the production decreases rapidly,which makes it difficult to achieve the purpose of economic and effective exploitation.In view of the above problems,an enhanced hydraulic fracturing technology(EHFT)which has been verified and applied is proposed to increase effective SRV.according to the different characteristics of shale reservoir,EHFT optimizs the performance parameter of fracturing fluid and matchs different modes of proppant injection,which can be classified in 4 major patterns,including modes of proppant injection in long/short slug type and densifying proppant injection in long/short slug type.First,based on brittleness evaluation and mineral composition,and combined with interpretation results of the natural fracture,the pumping plan is made according to the design goal.Then,modes of proppant injection is adjusted and optimized in real time through the construction curve and microseismic data during fracturing.The hydraulic fracture propagates along the dominant channel in the process of fracturing and there is the risk of the fracture communicating with the adjacent well.The fracture control technology of multi cluster perforating can effectively avoid it.Through field application,the following conclusions are drawn:(1)For reservoirs with high clay content,high viscosity fracturing fluid is recommended to improve the fracture width and reduce the complexity of construction;modes of proppant injection in long slugs of low concentration can control the construction scale,improve quality of proppant per meter,establish continuous fracture support and improve the longterm conductivity;modes of proppant injection in short slug type can control the fluid loss and avoid the occurrence of complex conditions,which is especially suitable for reservoir with natural fracture.(2)In the process of fracturing,the combination of various modes can achieve good results through real-time analysis and judgment.(3)The effectiveness of EHFT is verified by construction parameters,fracturing curve and micro-seismic monitoring.The construction scale(total volume of fracturing fluid)is reduced by 10%;quality of proppant per meter is increased by 10-20%;the fluctuation range of construction pressure is controllable/small;and the SRV and micro-seismic events are significantly increased.(4)The test production of well A which is the highest in Weiyuan is 71.2×104m3 with this technology.EHFT is suitable for the complexity of shale reservoir reconstruction.Multiple modes of real-time control can reduce the occurrence probability of complex conditions,improving the effective SRV and achieving efficient fracturing.Most importantly,the technology is feasible and effective in the overall goal of cost reduction and efficiency increase.
机译:魏源页岩气体的生产历史拟合表明,支撑骨折的长度和高度短,这限制了裂缝的长期电导率。为重建的有限量,生产迅速降低,这使得难以达到目的经济有效的开发。在上述问题的看法中,提出了一种已验证和应用的增强液压压裂技术(EHFT),以增加有效的SRV。根据Shale水库的不同特征,EHFT优化压裂性能参数流体并匹配不同的支撑剂注射模式,可在4个主要图案中分类,包括长/短的SLU型的支撑剂注射模式,并以长/短的SLUI型致密的支撑剂注射。首先,基于脆性评估和矿物组合物,并结合自然骨折的解释结果,泵送计划根据设计目标进行然后,通过建筑曲线和压裂过程中实时调整支撑剂注射模式。液压骨折在压裂过程中沿着主导通道传播,并且存在与相邻井通信的裂缝的风险。多簇穿孔的骨折控制技术可以有效避免它。推出了以下结论:(1)对于具有高粘土含量的储层,建议高粘度压裂液来改善骨折宽度并降低复杂性施工;高浓度长级槽的支撑剂注入可以控制施工规模,提高每米的支撑剂质量,建立连续的断裂载体,提高长型电导率;在短型型型中的支撑剂注射模式可以控制流体损失,避免复杂条件的发生,特别适用于纳米液体(2)在压裂过程中,各种模式的组合可以通过实时分析和判断来实现良好的结果。(3)通过施工参数,压裂曲线和微地震监测验证EHFT的有效性。施工规模(压裂液的总体积)减少了10%;每米的支撑剂质量增加10-20%;建筑压力的波动范围可控/小;并且SRV和微地震事件显着(4)井A的测试生产是魏源最高的,这项技术是71.2×104m3,适用于页岩水库重建的复杂性..实时控制的汇编模式可以降低复杂的发生概率条件,提高有效的SRV和实现高效的压裂。最重要的是,该技术在成本降低和效率增加的总体目标中是可行的,有效的。

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