Analyzing thermal maturity effect on shale organic matter via PeakForce quantitative nanomechanical mapping

Chioma Onwumelu , Oladoyin Kolawole , Stephan Nordeng , Olufemi Olorode
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Abstract

Organic-rich shales have gained significant attention in recent years due to their pivotal role in unconventional hydrocarbon production. These shale rocks undergo thermal maturation processes that alter their mechanical properties, making their study essential for subsurface operations. However, characterizing the mechanical properties of organic-rich shale is often challenging due to its multiscale nature and complex composition. This work aims to bridge that knowledge gap to fully understand the nanomechanical properties of Shale organic matter at various thermal maturation stages. This study employs PeakForce Quantitative Nanomechanical Mapping (PF-QNM) using Atomic Force Microscopy (AFM) to investigate how changes at the immature, early mature, and peak mature stages impact the mechanical properties of the Bakken Shale organic matter. PF-QNM provides reliable mechanical measurements, allowing for the quantification and qualification of shale constituents' elastic modulus (E). We also accounted for the effect of probe type and further analyzed the impact of probe wear on the nanomechanical properties of shale organic matter. In immature shale, the average elastic modulus of organic matter is approximately 6 ​GPa, whereas in early mature and peak mature shale, it decreases to 5.5 ​GPa and 3.8 ​GPa, respectively. Results reveal a mechanical degradation with increasing thermal maturation, as evidenced by a reduction in Young's modulus (E). Specifically, the immature shale exhibits an 8% reduction in E, while the early mature and peak mature shales experience more substantial reductions of 31% and 37%, respectively. This phenomenon could be attributed to the surface probing of low-modulus materials like bitumen generated during heating. The findings underscore the potential of AFM PF-QNM for assessing the nanomechanical characteristics of complex and heterogeneous rocks like shales. However, it also highlights the need for standardized measurement practices, considering the diverse components in these rocks and their different elastic moduli.

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通过 PeakForce 定量纳米力学绘图评估热成熟对页岩有机质的影响
近年来,富含有机质的页岩因其在非常规碳氢化合物生产中的关键作用而备受关注。这些页岩经历了热成熟过程,改变了它们的力学性质,因此对它们的研究对地下作业至关重要。然而,由于富含有机质页岩的多尺度性质和复杂成分,表征其机械特性往往具有挑战性。这项研究旨在填补这一知识空白,以全面了解页岩有机物在不同热成熟阶段的纳米力学性能。本研究利用原子力显微镜(AFM)进行峰值力定量纳米力学绘图(PF-QNM),研究未成熟、早期成熟和峰值成熟阶段的变化如何影响巴肯页岩有机物的力学性能。PF-QNM 可提供可靠的力学测量结果,对页岩成分的弹性模量 (E) 进行量化和鉴定。我们还考虑了探针类型的影响,并进一步分析了探针磨损对页岩有机质纳米力学性能的影响。在未成熟页岩中,有机质的平均弹性模量约为 6 GPa,而在早期成熟页岩和顶峰成熟页岩中,弹性模量分别降至 5.5 GPa 和 3.8 GPa。结果显示,随着热成熟度的增加,机械性能会下降,这表现在杨氏模量(E)的降低上。具体来说,未成熟页岩的杨氏模量降低了 8%,而早期成熟页岩和峰值成熟页岩的杨氏模量降低幅度更大,分别为 31% 和 37%。这种现象可归因于加热过程中产生的低模量材料(如沥青)的表面探测。这些发现强调了原子力显微镜 PF-QNM 在评估页岩等复杂和异质岩石的纳米力学特性方面的潜力。不过,考虑到这些岩石中的各种成分及其不同的弹性模量,研究还强调了标准化测量方法的必要性。
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