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首页> 外文期刊>Oil & gas science and technology >Fault Permeability and Strength Evolution Related to Fracturing and Healing Episodic Processes (Years to Millennia): the Role of Pressure Solution
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Fault Permeability and Strength Evolution Related to Fracturing and Healing Episodic Processes (Years to Millennia): the Role of Pressure Solution

机译:与压裂和愈合过程有关的断层渗透率和强度演化(数年至数年):压力解决方案的作用

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It is well known that fluids flow through faults and fractures but it is also demonstrated that fault zones act as impermeable barriers. Consequently, one must consider that faults are successively open and closed paths for fluids. On the human-activity time scale (years to millennia), studies of the seismic cycle offer the possibility of making a model of such evolution. According to this model, seismic (or hydraulic) fracturing opens fluid paths almost instantaneously through the faults with associated weakening and post-fracturing creep processes. Fault healing processes then progressively close such fluid paths, associated with fault strengthening and fluid pressure recovery. Such transient behaviors have major consequences in the studies of: the evolution of permeability along faults with application tooil-field reservoir exploitation and fluid and waste storage; the evolution of fluid fluxes along faults with application to mass balance and climate evolution on the scale of the earth; the timing of earthquakes and the probability of their occurrence. The aim is to understand and evaluate the kinetics of the processes and the specific characteristic times of the fracturing and healing cycles. Results from laboratory experiments and natural fault studies are presented that show how pressure solution processes can explain both creep and sealing processes and the way they are associated in nature. The various fault-healing processes are discussed with their various characteristics in times from weeks to millennia. It is shown how they can be integrated into creep and sealing laws. Laboratory experiments give the values of some parameters of the laws (kinetics, thermodynamic). Other parameters must always be evaluated from the study of natural structures (geometry of path transfer, pressure and temperature conditions, nature of minerals and fluids). Consequently, the duration of the fracturing and sealing cycle is related to some extent to the geological context of a faulted area. Finally, as the mechanisms of permeability and strength evolution interact and occur on various scales of time and space, they must be integrated into numerical models, which are briefly discussed.
机译:众所周知,流体流过断层和裂缝,但也证明了断层带是不可渗透的屏障。因此,必须考虑到故障是流体的连续打开和关闭路径。在人类活动时间尺度上(从几年到几千年),对地震周期的研究提供了建立这种演化模型的可能性。根据该模型,地震(或水力)压裂几乎在瞬间通过断层打开了流体路径,并伴有弱化和压裂后蠕变过程。然后,故障修复过程会逐渐关闭此类流体路径,从而增强故障并恢复流体压力。这种瞬态行为在以下研究中具有重要意义:在油田储层开采以及流体和废物存储中的应用,沿着断层渗透率的演变;沿断层的流体通量的演变及其在地球规模上的质量平衡和气候演变中的应用;地震的时间和发生的可能性。目的是了解和评估过程的动力学以及破裂和愈合周期的特定特征时间。给出了实验室实验和自然断裂研究的结果,这些结果表明压力求解过程如何解释蠕变和密封过程以及它们在自然界中的关联方式。从几周到几千年的时间,讨论了各种故障修复过程及其各种特征。它显示了如何将它们集成到蠕变和密封定律中。实验室实验给出了一些定律参数的值(动力学,热力学)。必须始终通过对自然结构的研究(路径传递的几何形状,压力和温度条件,矿物和流体的性质)来评估其他参数。因此,压裂和封闭周期的持续时间在一定程度上与断层区域的地质背景有关。最后,由于渗透率和强度演化的机制相互作用并发生在不同的时空尺度上,因此必须将它们整合到数值模型中,对此进行简要讨论。

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