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Speeding Up Compositional Reservoir Simulation through an Efficient Implementation of Phase Equilibrium Calculation

机译:通过高效实施相均衡计算来加速组成储层模拟

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Compositional reservoir simulations are widely used to simulate reservoir processes with strong compositional effects, such as gas injection. The equations of state (EoS) based phase equilibrium calculation is a time consuming part in this type of simulations. The phase equilibrium problem can be either decoupled from or coupled with the transport problem. In the former case, flash calculation is required, which consists of stability analysis and subsequent phase split calculation; in the latter case, no explicit phase split calculation is required but efficient stability analysis and optimized coding of the basic thermodynamic subroutines are still crucial to the overall speed. This work tries to provide a comprehensive strategy to increase the speed for compositional simulation. This strategy begins with the coding of the basic thermodynamic properties, including the derivatives of fugacities with respect to molar numbers. Then, in the algorithms for stability analysis and phase split calculation, successive substitution with acceleration and minimization-based second-order methods are combined to gain both robustness and efficiency. For compositional simulations, the results from previous simulation steps provide the possibility to skip stability analysis by the shadow region method in the single phase regions. The approach was implemented in the general purpose research simulator (GPRS) developed by Stanford University. GPRS is a modular, state of the art reservoir simulation and its architecture makes the implementation and evaluation of new ideas and concepts easy. Tests on several 2-D and 3-D gas injection examples indicate that with an efficient implementation of the thermodynamic package and the conventional stability analysis algorithm, the speed can be increased by several folds. Application of the shadow region method to skip stability analysis can further cut the phase equilibrium calculation time.
机译:组成储层模拟广泛用于模拟具有强大组成效果的储层过程,例如气体注入。基于状态(EOS)的相平衡计算的方程是此类模拟中的耗时部分。相平衡问题可以与运输问题分离或与运输问题分离或耦合。在前一种情况下,需要闪光计算,由稳定性分析和随后的相分机计算组成;在后一种情况下,无需明确的相分机计算,但基本热力学子程序的有效稳定性分析和优化编码仍然对整体速度至关重要。这项工作试图提供全面的策略来提高组成模拟的速度。该策略始于基本热力学性质的编码,包括摩尔数的逃逸条件的衍生物。然后,在稳定性分析和相分机计算的算法中,组合了与加速度和基于最小化的二阶方法的连续取代,以获得鲁棒性和效率。对于组成仿真,来自先前的模拟步骤的结果提供了通过在单相区域中跳过暗影区域方法的稳定性分析的可能性。该方法是在斯坦福大学开发的通用研究模拟器(GPRS)中实施的方法。 GPRS是一个模块化的,艺术储层仿真的状态,其架构使新想法和概念的实施和评估容易。在几个二进制和3-D气体注入示例上的测试表明,随着热力学包的有效实施和传统稳定性分析算法,速度可以增加几倍。荫区域方法跳过稳定性分析可以进一步切割相平衡计算时间。

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