Nanopore Characteristics and Oil-Bearing Properties of Tight Oil Reservoirs in Jimsar Sag, Junggar Basin
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摘要: 纳米技术在非常规油气致密储层微观孔隙结构表征、油气赋存等研究中发挥着重要的作用.以准噶尔盆地东部吉木萨尔凹陷二叠系芦草沟组致密油储层为例,综合运用高压压汞分析、场发射扫描电镜及纳米CT扫描等纳米分析技术,对吉木萨尔凹陷芦草沟组致密油储层微纳米孔隙特征与结构进行研究,并结合宏微观特征分析了原油在孔隙中的赋存状态.结果表明:吉木萨尔凹陷二叠系芦草沟组储层为中低孔、特低渗储层,孔隙以微纳米级为主,类型多样,主要有粒间孔(隙)、粒间溶孔、晶间孔及微裂隙等,纳米孔隙是吉木萨尔凹陷二叠系芦草沟组致密油储层主要储集空间之一,纳米孔隙中普遍含油,且多以吸附状态存在,赋存在纳米孔隙中的油气,改变了微米级孔隙是油气储层唯一微观孔隙的传统认识,是未来石油工业的发展方向.Abstract: Nanotechnology plays an important role in the study of microscopic pore structure characterization and hydrocarbon accumulation in unconventional oil and gas tight reservoirs. This paper takes the tight oil reservoir of Permian Lucaogou Formation Jimsar sag in eastern Junggar basin as an example, comprehensively using high pressure mercury analysis, field emission scanning electron microscope (SEM) and nano CT scanning analysis technology to study micronano pore characteristics and structure of Lucaogou Formation tight oil reservoir in Jimsar sag. In addition, the occurrence state of crude in nanopores is analyzed combined with macro and micro characteristics. The results show that nanopore space is one of the main reservoir spaces in the Permian Lucaogou Formation tight oil reservoir in Jimsar sag of Junggar basin. On the whole, the main reservoir pore structure is micron and nano level, showing the characteristics of micron and nano pore throat. Nanopores are generally oil-bearing, and exist mostly in the adsorption state, which changes the traditiongal cognition that micron pore is the only microscopic pore in reservoir. It is the development direction of the future petroleum industry.
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Key words:
- nanotechnology /
- Lucaogou Formation /
- tight reservoir /
- nanometer pore /
- petroleum geology
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表 1 芦草沟组“上、下甜点”段压汞参数
Table 1. Mercury injection parameters for the upper and lower dessert sections of Lucaogou Formation
甜点体 孔隙体积(μm3) 有效孔隙度(%) 渗透率(mD) 均值 分选系数 偏态 峰态 变异系数 中值压力(MPa) 中值半径(μm) 排驱压力(MPa) 最大孔喉半径(μm) 退汞效率(%) 孔喉体积比 平均毛管半径(μm) 均质系数 非饱和孔隙体积百分数(%) 上甜点 1.367 12.029 0.177 13.059 2.108 0.762 2.393 0.165 29.308 0.073 4.064 0.789 24.359 3.428 0.237 0.230 16.831 下甜点 1.147 10.398 0.152 13.407 1.972 0.746 2.327 0.149 29.935 0.043 4.053 0.435 20.119 4.710 0.131 0.223 18.371 表 2 芦草沟组CT定量表征参数
Table 2. CT quantitative characterization parameter of Lucaogou Formation
体积 孔隙度(%) 14.680 6.490 16.860 2.692 4.380 孔喉体积(μm3) 5.948 3.067×107 8.004×107 1.192×107 2.070×107 连通体积(μm3) 3.190
占总体积的
的53.63%2.459×107
占总体积的
的80.17%7.742×107
占总体积的
96.73%2.477×106
占总体积的
的20.78%3.150×106
占总体积的
的15.22%孔隙 数量 349 3 045 4 040 8 714 19 465 体积(μm3) 5.084 2.704×107 7.097×107 1.010×107 1.795×107 半径(nm) 平均:71
最小:7
最大:366平均:4.934
最小:0.551
最大:55.070平均:4.978
最小:0.477
最大:78.94平均:2.704
最小:0.467
最大:24.68平均:2.642
最小:0.456
最大:26.18连通性 3.0407 5.260 4.816 2.822 1.843 喉道 数量 489 8 453 10 394 12 118 17 470 体积(μm3) 0.864 3.636×106 9.075×106 1.822×106 2.751×106 半径(nm) 平均:47
最小:5
最大:157平均:4.102
最小:0.450
最大:39.070平均:4.347
最小:0.453
最大:57.46平均:2.351
最小:0.45
最大:14.62平均:2.227
最小:0.434
最大:14.44 -
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