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Direction of Wormhole Growth Under Anisotropic Stress

机译:各向异性应力下虫孔生长的方向

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The CHOPS process involves the growth of high permeability channels (wormholes) into the reservoir. The wormholes provide improved access to the reservoir, thereby substantially increasing oil production rates. As production from a group of CHOPS wells matures, wormhole networks that have developed from different wells often interconnect. This can have negative consequences. For example, water influx into one well will spread readily to a system of interconnected wells. A better understanding of preferential trends in the development of wormhole networks could allow more optimal placement of CHOPS wells, in terms of their spatial distribution. There are several factors that could influence the direction of wormhole growth in a heavy oil reservoir. The direction of growth may be affected by heterogeneity in the distribution of petrophysical and fluid properties such as permeability, porosity, water saturation, and oil viscosity. The stress field could be another factor. This paper presents the results of an experimental investigation on the influence of anisotropic (unequal) horizontal principal stresses on the direction of wormhole growth in a sand pack saturated with viscous oil. The experiments were performed in a large rectangular triaxial cell (box). Each of the two perpendicular horizontal stresses and the vertical stress applied to the sand pack could be controlled independently. Oil was injected into the sand pack through flow distributors located on adjacent vertical walls of the cell. The oil flowed through the sand toward a production well in the cell. When a critical flow rate was reached, the sand failed around one of the openings in the well. The failed sand was transported by the oil into the well, resulting in the growth of a wormhole inside the pack. The experiments indicated that, under the conditions of stress and flow that were applied, there was a tendency for wormholes to grow in the direction of the lower horizontal stress. However, this tendency was overcome when there were significant directional differences in the oil flux (pressure gradient). Then, the wormholes tended to grow in the direction of the largest oil flux. Both behaviours are consistent with the local effective stress conditions at the tip of a wormhole that lead to continuing sand failure there.
机译:CHOPS方法涉及高渗透通道(虫洞)进入储层的生长。虫洞提供了改进的储层的进入,从而大大增加了油生产率。随着一组浓度的生产,从不同的井中开发的虫洞网络经常互连。这可能产生负面后果。例如,将水流入一个井将容易地扩散到互联孔的系统。就其空间分布而言,更好地理解虫洞网络的开发中的优先趋势可以允许更优选的排骨井放置。有几个因素可以影响重油箱中虫洞生长的方向。生长方向可能受到透渗透性,孔隙率,水饱和度和油粘度的岩石物理和流体性质的分布中的异质性的影响。压力场可能是另一个因素。本文介绍了关于各向异性(不等)水平主应力对粘性油饱和砂包虫虫生长方向的实验研究结果的结果。实验在大型矩形三轴细胞(箱子)中进行。两个垂直的水平应力和施加到砂包的垂直应力中的每一个可以独立地控制。通过位于电池的相邻垂直壁上的流量分配器将油注入砂包中。油流过沙子朝向细胞中的生产井。当达到临界流量时,砂在井中的一个开口周围失灵。失败的沙子被油输送到井中,导致包装内虫洞的生长。实验表明,在所施加的应力和流动的条件下,虫洞倾向于在较低水平应力方向上生长。然而,当油量(压力梯度)存在显着的定向差异时,克服了这种趋势。然后,虫洞倾向于在最大的油通量方向上生长。两种行为都与虫洞尖端的局部有效应力条件一致,导致在那里继续砂失效。

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