基于离散元法的南海含水胶结砂质沉积物宏观细观力学特性研究

IF 3.5 3区 工程技术 Q3 ENERGY & FUELS
Zhigang Wang, Xuran Zhang, Yan Zhang, Qingmeng Yuan, Lin Yang, Xuhui Zhang, Xuemin Wu, Qianyong Liang
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引用次数: 0

摘要

砂质水合物储层被认为是海洋天然气水合物(NGH)开采的理想目标。然而,工程地质风险,包括油藏出砂和开采过程中的海底沉降,提出了重大挑战。2019年,中国在南海琼东南盆地发现了一个具有良好商业开发潜力的高浓度砂质天然气水合物储层,使该地区成为未来勘探开发的重点地区。深入了解这种特殊砂质天然气水合物储层的宏观细观力学特性对于安全高效地开采水合物至关重要。本文提出了一种计算六方密排态含水砂质沉积物水合物饱和度的新方法。一系列具有柔性边界的不排水双轴压缩实验表明,水合物胶结提高了试样的强度。然而,过高的水合物饱和度可能导致应变软化,而围压的增加有助于减缓应变软化。水合物胶结促进了丰富力链的形成。颗粒的不均匀位移、滑动和相对旋转是导致x形剪切带形成的主要因素,而x形剪切带与胶结断裂有关。导致水合物胶结破坏的主要原因是拉应力破坏。外部载荷诱导力链发生屈曲、断裂和重构,从而控制织物的发育。研究结果为研究HBSS在颗粒尺度上的非均匀变形和宏观细观力学性能提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Investigation of Macro-Meso Mechanical Properties of Cemented Hydrate-Bearing Sandy Sediments in the South China Sea Using Discrete Element Method

Investigation of Macro-Meso Mechanical Properties of Cemented Hydrate-Bearing Sandy Sediments in the South China Sea Using Discrete Element Method

Sandy hydrate reservoirs are considered an ideal target for the extraction of marine natural gas hydrates (NGH). However, engineering geological risks, including reservoir sand production and seabed subsidence during the extraction process, present a significant challenge. In 2019, China discovered a high-concentration sandy NGH reservoir with favorable commercial development potential in the Qiongdongnan Basin of the South China Sea, establishing the region as a key focus for future exploration and development efforts. A thorough comprehension of macro-meso mechanical properties of this specific sandy NGH reservoir is essential for the safe and efficient extraction of hydrates. In this study, a novel method is proposed to calculate hydrate saturation of hydrate-bearing sandy sediments (HBSS) with hexagonal close-packed state. A series of undrained biaxial compression with flexible boundary show that hydrate cementation enhances the strength of the sample. However, an excessively high hydrate saturation is likely to induce strain softening, whereas an increase in confining pressure helps to mitigate strain softening. Hydrate cementation promotes the formation of abundant force chains. The inhomogeneous displacement, sliding, and relative rotation of the particles are the primary factors contributing to the formation of X-shaped shear bands, which is related to cemented bond breakage. The primary cause of hydrate cementation failure is tensile stress failure. External loading induces force chains to undergo buckling, fracturing, and restructuring, which governs fabric development. The research outcomes offer novel insights into the inhomogeneous deformation and macro-meso mechanical properties of HBSS at the particle-scale.

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来源期刊
Energy Science & Engineering
Energy Science & Engineering Engineering-Safety, Risk, Reliability and Quality
CiteScore
6.80
自引率
7.90%
发文量
298
审稿时长
11 weeks
期刊介绍: Energy Science & Engineering is a peer reviewed, open access journal dedicated to fundamental and applied research on energy and supply and use. Published as a co-operative venture of Wiley and SCI (Society of Chemical Industry), the journal offers authors a fast route to publication and the ability to share their research with the widest possible audience of scientists, professionals and other interested people across the globe. Securing an affordable and low carbon energy supply is a critical challenge of the 21st century and the solutions will require collaboration between scientists and engineers worldwide. This new journal aims to facilitate collaboration and spark innovation in energy research and development. Due to the importance of this topic to society and economic development the journal will give priority to quality research papers that are accessible to a broad readership and discuss sustainable, state-of-the art approaches to shaping the future of energy. This multidisciplinary journal will appeal to all researchers and professionals working in any area of energy in academia, industry or government, including scientists, engineers, consultants, policy-makers, government officials, economists and corporate organisations.
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