关于意大利硬质粘土在储氢方面机械性能的初步研究

IF 3.3 2区 工程技术 Q3 ENERGY & FUELS
Andrea Ciancimino , Renato Maria Cosentini , Sebastiano Foti , Alessandro Messori , Hidayat Ullah , Giorgio Volonté , Guido Musso
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引用次数: 0

摘要

可再生能源的大规模使用与能否将生产过剩期间产生的多余能源储存起来,供需求高峰时使用密切相关。因此,储存绿色能源是实现碳中和经济的关键组成部分。在枯竭的石油和天然气储层中进行地下氢气储存可能是一种有效的长期解决方案。循环注入和生产氢气会改变储层和盖岩的化学-水文-力学条件,为了安全地进行储藏作业,必须对这种改变可能造成的地质力学后果进行初步评估。本研究旨在探索循环机械载荷(如储氢和制氢可能引起的载荷)对粘性毛岩机械行为的可能影响。研究人员对从油气储层上覆的冠岩地层中提取的未受扰动的意大利硬质粘土样本进行了一系列三轴试验,包括单轴试验和循环试验。结果表明,材料反应的特点是坚硬粘土的独特应力-应变行为,具有相当高的脆性,这与加载应变速率有很大关系。在频率高于现场频率的实验室实验中,应力控制下的循环加载会导致材料结构逐渐退化,形成明显的剪切带,随后剪切强度降低。最终,当剪切强度峰值接近施加的荷载时,就会发生破坏。渐进式破坏还意味着 P 波和 S 波传播速度的降低以及信号形状的显著变化,因此是监测材料降解过程的一个有前途的参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A preliminary investigation on the mechanical behaviour of a stiff Italian clay in the context of hydrogen storage

The large-scale use of renewable energy sources is closely linked to the ability to store excess energy generated during periods of overproduction for use when demand is at a peak. Storing green energy is therefore a key component in the move towards a carbon-neutral economy. Underground hydrogen storage in depleted oil and gas reservoirs may provide an efficient long-term solution. Cyclic injection and production of hydrogen alter the chemo-hydro-mechanical conditions of the reservoir and caprocks, and possible geomechanical consequences of such alterations must be preliminarily assessed for safe storage operations. This study aims at exploring the possible effects of cyclic mechanical loads, such as those that might be induced by hydrogen storage and production, on the mechanical behaviour of a clayey caprock. A series of triaxial tests, both monotonic and cyclic, were carried out on undisturbed samples of a stiff Italian clay cored from a caprock formation overlying a hydrocarbon reservoir. The results show that the material response is characterized by the distinctive stress-strain behaviour of stiff clays, with a rather high fragility, which was found to be highly dependent on the loading strain rate. During laboratory experiments conducted at frequencies larger than in situ ones, cyclic loading under stress control causes a gradual degradation of the material structure leading to the formation of a clear shear band followed by a reduction in shear strength. Eventually, failure occurs as the peak shear strength approaches the applied load. The progressive destructuration also implies a reduction in P- and S-wave propagation velocities and a significant change in the signal shape, which is therefore a promising parameter for monitoring the material degradation process.

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来源期刊
Geomechanics for Energy and the Environment
Geomechanics for Energy and the Environment Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
5.90
自引率
11.80%
发文量
87
期刊介绍: The aim of the Journal is to publish research results of the highest quality and of lasting importance on the subject of geomechanics, with the focus on applications to geological energy production and storage, and the interaction of soils and rocks with the natural and engineered environment. Special attention is given to concepts and developments of new energy geotechnologies that comprise intrinsic mechanisms protecting the environment against a potential engineering induced damage, hence warranting sustainable usage of energy resources. The scope of the journal is broad, including fundamental concepts in geomechanics and mechanics of porous media, the experiments and analysis of novel phenomena and applications. Of special interest are issues resulting from coupling of particular physics, chemistry and biology of external forcings, as well as of pore fluid/gas and minerals to the solid mechanics of the medium skeleton and pore fluid mechanics. The multi-scale and inter-scale interactions between the phenomena and the behavior representations are also of particular interest. Contributions to general theoretical approach to these issues, but of potential reference to geomechanics in its context of energy and the environment are also most welcome.
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