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Introducing a New Capacitance-Resistance Model and Solutions to Current Modeling Limitations

机译:引入新的电容电阻模型和对当前建模限制的解决方案

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Numerical reservoir simulation offers the best representation for reservoir fluid flow. However, uncertainty in assigning and distributing static parameters between wells adds a dimension of weakness to its implementation and cultivates modeling doubts. Capacitance-resistance modeling is one of the recent evolving technologies that provides opportunities to study fluid dynamic signatures that can help unveil uncertainties for some aspects of static reservoir parameters such as fractures and faults. Capacitance-resistance modeling (CRM) is a tool that relies on signal processing in associating actions (i.e. injection and drawdown) to reactions (i.e. production). This is accomplished through means of multivariate nonlinear regression. There are many documented limitations to this tool that reduce the model reliability, or prevent it from attaining an acceptable match. Capacitance-resistance modeling limitations result from varying model parameters, or missing input data. Examples of these limitations include changes to the number of active producers, significant change in well productivity index (e.g. well workover), high variation of fluid compressibility, and presence of aquifer support. Most reservoirs will encounter many of these limitations which makes it important to find a rectifying solution. In this paper, CRM limitations are addressed and a new modeling equation is introduced to produce a flexible capacitance-resistance model. Shutting-in producers, or introducing them, changes the number of active production wells. This limitation is solved by modifying the injection rates in a way that honors the mass balance and keeps the modeling weights constant. Changes in a well's productivity index are addressed by considering the well as two separate wells (before/after change), while the presence of aquifer support is engaged by adding a pseudo injection well, to mimic influx support, and adjusting the injection rate to reach the best possible match quality. As for the new modeling equation, it performs very well when compared to current CRM equations, has fewer variables, and has more applications due to the incorporation of a drainage control-volume that acts as a filter to all supporting streams. This new formulation also gives clearer indications to noncontributing injectors; the information from which can be used to detect the presence of faults and fractures.
机译:数值储层仿真提供了储层流体流动的最佳表示。然而,在井间分配和分配静态参数的不确定性为其实施增加了弱点的维度,并培养了模拟疑虑。电容电阻建模是最近的不断发展的技术之一,提供了研究流体动力学签名的机会,这有助于揭示静态储层参数的某些方面的不确定性,例如裂缝和故障。电容电阻建模(CRM)是一种依赖于将动作(即注射和绘制)与反应(即生产)相关的信号处理的工具。这是通过多变量非线性回归来实现的。此工具有许多记录的限制,可降低模型可靠性,或防止其获得可接受的匹配。电容电阻建模限制从不同的型号参数或缺少输入数据产生。这些限制的示例包括对主动生产者的数量的变化,井生产力指数(例如,井是WORKOVER)的显着变化,流体压缩性的高变化以及含水层支持的存在。大多数水库将遇到许多这些限制,这使得找到整流解决方案很重要。在本文中,引入了CRM限制,并引入了一种新的建模方程来产生柔性电容电阻模型。关闭生产商或介绍它们,改变了积极生产井的数量。通过以追踪质量平衡的方式修改注射率并保持建模重量恒定来解决这种限制。通过考虑良好的井(在变化之前/之后)来解决井的生产率指数的变化,而含水层支持的存在是通过增加伪注入井来实现的,以模仿吹气器支撑,并调节进入速率最好的匹配质量。至于新的建模方程,与当前CRM方程相比,它具有较少的变量,并且由于掺入作为滤波器的排水控制量而具有更多的应用程序,并且具有与所有支持流的过滤器的排水控制量。这种新的配方还可以更清楚地给予非责任注射器的指示;可用于检测故障和裂缝的存在的信息。

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