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Effects of fracture aperture and roughness on hydraulic and mechanical properties of rocks : implication of seismic characterization of fractured reservoirs

机译:裂缝孔径和粗糙度对岩石水力和力学性质的影响:裂缝性储层地震特征的意义

摘要

Roughness and aperture are two important characteristic parameters controlling fluid flow in natural joints and fractures. It has been demonstrated by many authors that knowledge of roughness does not directly lead to that of aperture, and aperture should be handled as a separate geometrical descriptor. To determine the normal deformability and flow response of a fracture, the aperture distribution and the mechanical properties of the rock matrix are required. When shearing of joints and fractures is considered, roughness comes into play and affects the evolution of the aperture distribution. The aperture distribution can be evaluated by knowing the correlation between the asperity profiles of the rock walls of a rock fracture. Thus, the distributions of contact area and void space determine the fracture dilation and hydraulic properties during shearing. In the seismic characterization of fractured reservoirs, various equivalent medium theories describing the effective elastic properties of fractured media have been proposed. One relatively simple theory is based on the assumption of the linear slip interface or displacement discontinuity model of fractures. Two parameters are usually used in the linear slip interface model: the normal and shear fracture compliances defined as the ratio of normal (shear) displacement discontinuity and normal (shear) stress. Fracture compliances are by definition functions of mechanical aperture and are also influenced by the roughness (surface asperity distribution) of fracture surfaces. In this study, I investigate the effects of fracture roughness and apertures on the hydraulic and mechanical properties of fractured rock. Specifically, I focus on two kinds of fracture models which are commonly used in describing the effective hydraulic and mechanical (elastic) response of natural fractures. The first is the rough-walled fracture model and the second is an interface with distributions of contacts and voids (called the asperity fracture model).ududud
机译:粗糙度和孔径是控制自然节理和裂缝中流体流动的两个重要特征参数。许多作者已经证明,粗糙度的知识并不能直接导致光圈的知识,而光圈应作为单独的几何描述词来处理。为了确定裂缝的正常可变形性和流动响应,需要岩石基质的孔径分布和机械性能。当考虑到接头和断裂的剪切时,粗糙度会发挥作用并影响孔径分布的演变。可以通过了解岩石裂缝的岩石壁的凹凸轮廓之间的相关性来评估孔径分布。因此,接触面积和空隙空间的分布决定了剪切过程中的断裂膨胀和水力特性。在裂缝性储层的地震表征中,提出了描述裂缝性介质有效弹性特性的各种等效介质理论。一种相对简单的理论基于裂缝的线性滑动界面或位移不连续性模型的假设。线性滑移界面模型中通常使用两个参数:法向和剪切断裂柔度定义为法向(剪切)位移不连续性与法向(剪切)应力之比。根据定义,断裂顺应性是机械孔径的函数,并且还受断裂表面的粗糙度(表面粗糙分布)的影响。在这项研究中,我研究了裂缝粗糙度和孔径对裂缝岩石的水力和力学性能的影响。具体来说,我专注于两种裂缝模型,这些模型通常用于描述自然裂缝的有效水力和机械(弹性)响应。第一个是粗糙的裂缝模型,第二个是具有接触和空隙分布的界面(称为粗糙裂缝模型)。 ud ud ud

著录项

  • 作者

    Liu Enru;

  • 作者单位
  • 年度 2005
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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