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Measurement of total porosity for gas shales by gas injection porosimetry (GIP) method

机译:气体注入孔隙率法(GIP)测量页岩气的总孔隙度

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摘要

Porosity is considered one of the most important rock physics parameter when evaluating a gas shale reservoir's production potential. The measurement of total porosity by the gas injection porosimetry (GIP) method in these low permeability rocks with complex mineralogy has usually proven to be challenging. It is not rare for results to vary from different laboratories but the reasons behind these inconsistencies are not fully understood. These differences are commonly attributed to apparatus (different performances of porosimeter), core cleaning (lacking of cleaning effect evaluation criteria and arbitrary drying) and measurement (insufficient gas injection pressure and inconsistent crushing level). In this study, systematic experimental investigations are conducted to study the impact of these factors in determining gas shale's total porosity using the GIP method. We propose a modified porosimeter design to meet the particular needs of gas shales. Helium is used to minimize adsorption via the molecular sieve effect that can occur during gas shale porosity measurements. ESH (extended slow heating) pyrolysis and TGA (thermal gravimetric analysis, 200 degrees C) techniques are also adapted to evaluate core cleaning effects ensuring that only integrated matrix is left in the sample. The experimental results indicate that the ESH pyrolysis technique produces more reasonable results than the Rock-Eval II pyrolysis in free hydrocarbon cleaning effect and solid organic matter integrity evaluation when experimenting on gas shale and other organic-rich rocks. Besides, the effects of gas injection pressure and particle size on porosities measured with plug samples and crushed samples are studied. Results show that the gas injection pressures play an important role in both crushed and uncrushed samples' porosity measurements. It is proven through this series of experiments that both the plug and GIP methods can effectively measure the total porosity of gas shales. The plug sample requires a higher minimum injection pressure and more total diffusion time in the total porosity estimation with respect to crushed sample, because these two parameters are greatly decreased by crushing. Note that the lower crushing level should be controlled not to alter the integrity of grain size composition. The porosity resulted by GIP method is interpreted as total gas accessible porosity. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在评估气页岩储层的生产潜力时,孔隙度被认为是最重要的岩石物理参数之一。通常,用气体注入孔隙率法(GIP)对这些具有复杂矿物学特征的低渗透率岩石进行总孔隙率测量通常具有挑战性。不同实验室得出的结果并不少见,但这些不一致背后的原因尚未完全弄清。这些差异通常归因于设备(孔隙率计的不同性能),岩心清洁(缺乏清洁效果评估标准和任意干燥)和测量(注气压力不足和破碎水平不一致)。在这项研究中,进行了系统的实验研究,以研究这些因素对使用GIP方法确定气页岩总孔隙度的影响。我们提出一种改进的孔隙率计设计,以满足页岩气的特殊需求。氦气通过在气页岩孔隙度测量过程中可能发生的分子筛效应使吸附最小化。 ESH(扩展缓慢加热)热解和TGA(热重量分析,200摄氏度)技术也适用于评估岩心清洁效果,从而确保样品中仅保留集成基质。实验结果表明,在页岩气和其他富含有机物的岩石上进行实验时,ESH热解技术比Rock-Eval II热解法产生的游离烃清洁效果和固体有机物完整性评估方面的结果要更合理。此外,还研究了注气压力和粒径对塞样和压碎样品测得的孔隙率的影响。结果表明,注气压力在压碎和未压碎样品的孔隙率测量中都起着重要作用。通过这一系列实验证明,插塞法和GIP法均可有效测量气页岩的总孔隙度。相对于压碎的样品,塞子样品在总孔隙率估算中需要更高的最小注入压力和更长的总扩散时间,因为这两个参数会因压碎而大大降低。注意,应控制较低的破碎水平,以不改变粒度组成的完整性。 GIP方法产生的孔隙度可解释为总气体可及孔隙度。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Fuel》 |2016年第15期|694-707|共14页
  • 作者单位

    China Univ Petr, Sch Geosci, Qingdao 266580, Peoples R China;

    China Univ Petr, Sch Geosci, Qingdao 266580, Peoples R China|Univ Alberta, Dept Phys, Edmonton, AB T6G 2R3, Canada;

    China Univ Geosci, Fac Earth Resources, Wuhan 430074, Peoples R China;

    Univ Alberta, Dept Phys, Edmonton, AB T6G 2R3, Canada;

    China Univ Petr, Sch Geosci, Qingdao 266580, Peoples R China;

    Univ Alberta, Dept Phys, Edmonton, AB T6G 2R3, Canada;

    China Univ Petr, Sch Geosci, Qingdao 266580, Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Gas shale; Porosity; Gas injection porosimetry (GIP); Gas injection pressure; Size effect; ESH pyrogram;

    机译:气页岩;孔隙度;注气孔隙率法;注气压力;尺寸效应;ESH热解图;

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