首页> 外文会议>Society of Petroleum Engineers annual technical conference and exhibition >Capillary Shockwave Front Blind Imaging of Reservoir Limits: A Case Study
【24h】

Capillary Shockwave Front Blind Imaging of Reservoir Limits: A Case Study

机译:毛细管冲击波前盲对副作用储层限值 - 以案例研究

获取原文

摘要

Reservoir boundary information is gleaned from a steadyflowrate- drawdown test and/or a subsequent buildup following the steady flow period. Singularities are observed to be present in virtually all transient pressure data that can provide direct information about the limits around a well. Multiple limits can be detected discretely and described by distance from the well and angular shape at the point of contact. The input information required is pressure data acquired while flowing on a fixed choke, petrophysical properties from cores and electric logs, and fluid production rates and compositions during the flow period.(2) Reservoir limits can be assembled into an energy equivalent image based upon cone of influence energy growth behind a bounding initiating capillary pressure shockwave front. The resulting image can then be compared with a seismic data based map or a geologic map. Volume integrals for gas inplace can provide an early physical measurement for reserve accounting purposes.(4,5,6,8) A variety of boundary contact shapes were assembled into a “blind” energy map that was later confirmed by seismic imaging. A direct overlay comparison of the “blind” energy image and a 3D seismic map is presented. The limit information will be compared with the seismic image to confirm it point by point. This new transient pressure analysis method is based upon a real capillary network growing from the well bore. Flow into the well bore is restricted to radial flow and confined to the real capillary flow paths by initial capillary pressure.(2) The cone of influence is bounded by an associated capillary shockwave front that restricts its growth. The bounding initiating capillary pressure shockwave front is the physical phenomenon that exists at the radius of investigation.(1,7,10) The capillary networks give rise to secondary pressure singularities when a boundary is encountered. The method extends traditional analysis to the realm of wave mechanics(8,9,11) and allows direct data processing. The solution is based upon an energy model that solves for boundary geometry directly from flow and buildup data without the process of traditional iterative history matching. The boundary contacts can then be assembled into an image of the reservoir based upon relative disposition of individual limit contact.
机译:从稳定流动时段之后,从稳定的汇流绘制测试和/或随后的积累中收集了储层边界信息。观察到奇点在几乎所有瞬态压力数据中都存在,可以提供关于井周围限制的直接信息。可以在接触点处离径地检测多个限制并通过距井和角形的距离来检测。所需的输入信息是在流动的压力数据上获取的,在固定扼流圈,来自核和电记录的岩石物理性质以及流体生产率和流体期间的流体生产率和组合物。(2)储存器限制可以组装成基于锥体的能量等效图像影响毛细管压力冲击毛细管后掺杂背面的能量增长。然后可以将得到的图像与基于地震数据的地图或地质图进行比较。气体的体积积分可以为预留会计目的提供早期的物理测量。(4,5,6,8)组装各种边界接触形状,以通过地震成像确认的“盲”能量图。呈现了“盲”能量图像和3D地震图的直接叠加比较。将与地震图像进行比较限制信息以通过点确认它。这种新的瞬态压力分析方法基于从孔口生长的真正毛细管网络。进入井孔的流量仅限于径向流动,并且通过初始毛细管压力限制在真正的毛细血管流动路径上。(2)影响的锥体由相关的毛细管冲击波前沿限制其生长。束缚起始毛细管压力冲击波前沿是在调查半径处存在的物理现象。(1,7,10)当遇到边界时,毛细管网络引起次要压力奇点。该方法将传统分析扩展到波力学的领域(8,9,11)并允许直接数据处理。该解决方案基于能量模型,该能量模型可以直接从流量和积累数据解决,而无需传统迭代历史匹配的过程。然后可以基于个体限位接触的相对布置来组装边界触点。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号