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An inverse system for incorporation of conditioning to pressure and streamline-based calibration

机译:一种将调节纳入压力和流线型校准的逆系统

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A streamline-based history matching technique is employed to perform fast and efficient permeability identification and to integrate tracer data into an inverse model. To incorporate tracer data into the inverse model, a given tracer breakthrough curve is interpreted as cumulative breakthrough along independent streamlines. Permeabilities are modified along each streamline to match the tracer breakthrough curve. In this way, there is no explicit computation of sensitivity coefficients, nor any matrix inversion. However, this approach is incomplete by itself. Since the modifications occur along the streamlines, the identified permeability distribution is often incompatible with the actual permeability distribution. Thus, streamlines should be positioned correctly before the streamline-based method is applied. To accomplish this, geostatistical methods such as kriging and sequential Gaussian simulation (SGS) are implemented to provide an appropriate disposition of streamlines at the beginning of the inverse process. Then, permeabilities are iteratively calibrated in a conventional grid system to satisfy pressure and permeability observation data, and simultaneously modified along streamlines to match tracer data. The two independent optimization processes assist mutually and lead to stable convergence to a minimum. By applying the proposed inverse system to synthetic reference fields, it is observed that identified fields satisfactorily reproduce the permeability distribution of the reference fields. In addition, the pressure distributions of the identified and the reference fields are fairly alike, and the identified tracer breakthrough curves are well fitted to those of the reference fields. With regard to spatial patterns of transport behaviors, the streamlines of the identified fields show similar trajectories to those of the reference fields, and the time of flight distributions of the inversed fields are also analogous to those of the reference fields. The proposed inverse system is capable of estimating the future performance of a two-dimensional aquifer from a constrained number of permeability and pressure observation data accompanied by tracer data.
机译:采用基于流线的历史匹配技术来执行快速有效的渗透率识别并将示踪剂数据集成到逆模型中。要将示踪剂数据合并到逆模型中,给定的示踪剂突破曲线将解释为沿独立流线的累积突破。沿每个流线修改磁导率以匹配示踪剂穿透曲线。这样,就没有显式的灵敏度系数计算,也没有任何矩阵求逆。但是,这种方法本身并不完整。由于修改是沿着流线发生的,因此识别出的渗透率分布通常与实际渗透率分布不兼容。因此,在应用基于流线的方法之前,应正确放置流线。为此,实施了诸如克里格法和顺序高斯模拟(SGS)的地统计方法,以在逆过程开始时提供流线的适当处理。然后,在常规网格系统中迭代校准渗透率以满足压力和渗透率观测数据,并同时沿流线进行修改以匹配示踪剂数据。这两个独立的优化过程相互协助,并将稳定收敛降至最低。通过将提出的逆系统应用于合成参考场,可以观察到已识别场令人满意地再现了参考场的渗透率分布。另外,所识别的和参考场的压力分布相当相似,并且所识别的示踪剂穿透曲线很好地适合于参考场。关于运输行为的空间模式,所识别场的流线显示出与参考场相似的轨迹,并且倒场的飞行时间分布也与参考场相似。所提出的逆系统能够根据伴有示踪剂数据的一定数量的渗透率和压力观测数据来估算二维含水层的未来性能。

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