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Unified Theory of Ultimate Hydrocarbon Recovery for Primary and Cyclic Injection Processes in Ultratight Reservoirs

机译:超储层初级和循环注射过程的统一烃恢复理论

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This paper presents a simple method to estimate ultimate recovery factors (URF) of ultratight reservoirs based on equilibrium by diffusion in which URF is only a function of changes in hydrocarbon density between initial and final states. URF is defined at infinite time and therefore does not depend on the transient behavior. Although URF may not be achievable during the life-cycle of the field development and production, it provides valuable insights on the role of phase behavior. We show that equilibrium phase behavior defines the absolute upper-bound for URF during primary production and explains the poor recovery from shale oil reservoirs compared to the high recovery factor in shale gas reservoirs in a unifying way. Further, we quantify how injected solvent compositions (CHsub4/sub, COsub2/sub, Nsub2/sub, and Csub2/subHsub6/sub) during huff'n'puff enhanced oil recovery (EOR) improve recovery based on density reduction and compositional dilution, and show that the largest percentage increase in recovery occurs for heavier oils. Our calculations provide a practical means to define the URF from primary production as a function of reservoir fluid composition, temperature, and pressure drawdown. In addition, our calculations articulate incremental URF (IURF) of solvent huff'n'puff based on net solvent transfer into ultratight rock, which is a key design consideration. The results illustrate that solvent transfer dilutes the hydrocarbons in place, thus maximizing long-term hydrocarbon recovery. Net mass transfer can be improved by enhancing the diffusion of solvent into the matrix based on the huff'n'puff design parameters including solvent composition, drawdown pressure, and the net amount of solvent injected based on optimal frequency and cycle duration.
机译:本文介绍了一种简单的方法来估算基于均衡的超直率储存器的终极恢复因子(URF),其中URF仅是初始和最终状态之间的碳氢化合物密度变化的函数。 URF在无限时间定义,因此不依赖于瞬态行为。虽然在现场开发和生产的生命周期中可能无法实现URF,但它为相行为的作用提供了有价值的见解。我们表明,均衡阶段行为在初级生产期间定义了URF的绝对上限,并以统一的方式与页岩气藏的高回收因子相比,页岩油藏的差。此外,我们量化了注入的溶剂组合物(CH 4 ,CO 2 ,n 2 ,C 2 h 6 )在荷叶布增强的采油(EOR)期间,改善了基于密度降低和组成稀释的恢复,并表明较重的油的恢复百分比增加。我们的计算提供了一种实用的手段,可以根据储层流体组合物,温度和压力绘制的函数将URF定义。此外,我们的计算根据净溶剂转移到超直岩,这是一种关键设计考虑的净溶剂呼吸袋的增量URF(IURF)。结果说明溶剂转移稀释烃状,从而最大化长期烃恢复。通过基于包括溶剂组合物,减少压力的霍夫的斑点设计参数增强溶剂进入基质的扩散,可以提高净传质。基于最佳频率和循环持续时间注入的溶剂的溶剂的净量,可以提高溶剂到基质中的扩散。

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