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Experimental Investigation of the Damage Mechanisms of Drilling Mud in Fractured Tight gas Reservoir

机译:致密致密气藏中钻井泥浆破坏机理的实验研究

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摘要

Mud pollution seriously restricts the development of tight gas reservoirs. For the Dabei tight gas field in Tarim Basin, lots of wells show a higher skin factor on the pressure buildup test curves after drilling. Little researches on mud damage have been conducted for the fracture gas reservoir. Based on the previous researches, a dynamic filtration experimental method utilizing full diameter cores is established for fracture-porous cores under reservoir temperature. Twelve sets of dynamic filtration tests with full diameter cores (D=10 cm) on the established device and some cuttings microscopic analysis on environmental-scanning-electron microscope/energy dispersive X-ray detector (ESEM/EDX) have been conducted. The effects of core type, fracture width, pressure difference, and mud type on mud damage are all investigated. The results show that the fractured cores suffer a more serious damage degree and exhibit lower return permeability ratio, compared with the porous cores. And the damage degree of fractured cores is proportional to the fracture width and pressure difference. The solids invasion is the key factor damaging the fractured cores, while the porous is mainly impaired by the filtrate invasion. This paper provides a scientific, in-depth understanding of the behaviors, laws, and characteristics of mud damage in fractured and porous cores.
机译:泥浆污染严重限制了致密气藏的开发。对于塔里木盆地的大北致密气田,很多井在钻井后的压力累积测试曲线上显示出较高的表皮因子。对裂缝性气藏的泥浆破坏研究很少。在前人研究的基础上,建立了储层温度下裂孔岩心动态全直径岩心动态过滤实验方法。在已建立的设备上进行了十二组具有全直径芯体(D = 10 cm)的动态过滤测试,并在环境扫描电子显微镜/能量色散X射线检测器(ESEM / EDX)上进行了一些切屑显微镜分析。研究了岩心类型,裂缝宽度,压差和泥浆类型对泥浆破坏的影响。结果表明,与多孔岩心相比,断裂岩心的破坏程度更大,回波渗透率更低。断裂芯的损伤程度与断裂宽度和压力差成正比。固相侵入是破坏裂隙岩心的关键因素,而多孔层则主要受滤液侵入的损害。本文对裂隙和多孔岩心中的泥浆破坏行为,规律和特征提供了科学,深入的了解。

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