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The use of capacitance-resistance models for rapid estimation of waterflood performance and optimization

机译:使用电容-电阻模型快速评估注水性能和优化

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The capacitance-resistance model (CRM) offers the promise of rapid evaluation of waterflood performance. This semianalytical modeling approach is a generalized nonlinear multivariate regression technique that is rooted in signal processing. Put simply, a rate variation at an injector introduces a signal, with the corresponding response felt at one or more producers. CRM uses production and injection rate data and bottomhole pressure, if available, to calibrate the model against a specific reservoir. Thereafter, the model is used for predictions. We focused on three different control volumes for CRMs: the volume of the entire field, the drainage volume of each producer, and a drainage volume between each injector/producer pair. Unlike the numerical simulation approach, the CRMs use only production/injection data to predict performance, which provides simplicity and speed of calculation.Once the CRM is calibrated with historical production/injection data, we use an optimization technique to maximize the amount of oil produced by reallocating water injection rates. To verify CRM predictions, the models were tested against numerical flow-simulation results. Two case studies showed that the CRMs are able to successfully history match, and maximize the amount of oil produced by just reallocating water injection. This study introduces analytical solutions to the fundamental differential equations of the capacitance model based on superposition in time. In so doing, this approach adds flexibility, simplicity, and computational speed to the work presented previously.
机译:电容电阻模型(CRM)为快速评估注水性能提供了希望。这种半分析建模方法是一种基于信号处理的广义非线性多元回归技术。简而言之,注入器处的速率变化会引入信号,并在一个或多个生产者处感受到相应的响应。 CRM使用生产和注入速率数据以及井底压力(如果有)来针对特定储层校准模型。此后,将模型用于预测。我们关注于CRM的三种不同控制量:整个油田的体积,每个生产者的排放量以及每个注入器/生产者对之间的排放量。与数值模拟方法不同,CRM仅使用生产/注入数据来预测性能,从而提供了简便性和计算速度。一旦使用历史生产/注入数据对CRM进行了校准,我们将使用优化技术来最大程度地生产石油通过重新分配注水速率。为了验证CRM预测,针对数值流模拟结果对模型进行了测试。两项案例研究表明,CRM能够成功进行历史匹配,并且仅通过重新分配注水就能使采出的石油量最大化。本研究介绍了基于时间叠加的电容模型基本微分方程的解析解。这样,这种方法为先前介绍的工作增加了灵活性,简便性和计算速度。

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