利用示踪剂数据改进了油藏历史匹配和产量优化

Hsieh Chen, M. Poitzsch
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引用次数: 4

摘要

井间示踪剂已被证明可以提供有关储层动态、井连通性和流体流动分配的宝贵信息。然而,示踪测试通常是零星应用的,因为它们的投资回报对资源所有者来说并不明显。在这里,我们严格证明了示踪剂数据确实可以改善油藏历史匹配,更重要的是,通过对基准问题的油藏模拟,可以提高未来的产量。敏感性研究和示踪数据的局限性也提供。数值实验分为两部分。首先,收集参考油田的生产数据(含或不含示踪剂数据),进行第一次水驱期的历史匹配。其次,将第一段的历史匹配模型用于下一个水驱期的生产优化。第一部分数值实验采用多数据同化集成平滑法(ES-MDA)进行历史匹配处理,第二部分数值实验采用改进的鲁棒集成优化法(EnOpt)实现净现值(NPV)最大化。选择三维通道化的“鸡蛋模型”作为初始基准问题。从数值实验的第一部分,使用相同的超参数,可以观察到包括示踪剂数据在内的历史匹配可以在较小的标准差下更好地匹配现场产量。此外,在观察历史匹配渗透率图时,包括示踪剂数据在内的历史匹配使得地质特征更加明显。从第二部分的数值实验中,我们观察到地质模型历史匹配包括示踪剂数据导致更好的生产优化和更高的净现值。在鸡蛋模型的具体情况下,NPV增加了+4.3%。为了了解示踪数据的敏感性和局限性,对具有不同裂缝模式的储层模型库进行了相同的数值实验。在历史匹配和生产优化模拟之后,我们观察到,包括示踪剂数据在内的7个测试用例中有5个的NPV增加了+0.3%到+9.4%。结果表明,示踪剂对非均匀驱替油藏效果更好。据我们所知,这篇论文是第一个量化示踪剂在提高产量方面的好处的研究,以NPV来衡量。从更广泛的角度来看,我们认为这是测试任何新的历史匹配算法或油藏监测方法的最佳方式。在这项工作中,我们表明,在大多数情况下,示踪剂可以产生正的NPV,并且在大规模水驱作业中进行更多的示踪剂测试将使石油生产商受益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved Reservoir History Matching and Production Optimization with Tracer Data
Interwell tracers have been shown to provide invaluable information about reservoir dynamics, well connectivity, and fluid flow allocations. However, tracer tests are often applied sporadically because their immediate returns of investments are not readily apparent to a resource-holder. Here, we rigorously demonstrate that tracer data can indeed improve reservoir history matching, and, more importantly, improve future production, using reservoir simulations on benchmark problems. Sensitivity studies and the limitations of tracer data are also provided. The numerical experiments were divided in two sections. First, production data with or without tracer data from reference fields were collected for the first water flooding periods for history matching. Second, the history matched models from the first section were used for production optimization for the next water flooding periods. The ensemble smoother with multiple data assimilation (ES-MDA) was used for the history matching processes for the first part of the numerical experiments, and the modified robust ensemble-based optimization (EnOpt) was adopted to maximize the net present value (NPV) for the second part of the numerical experiments. The three-dimensional channelized "Egg Model" was chosen as the initial benchmark problem. From the first part of the numerical experiments, using the same hyper-parameters, it was observed that history matching including tracer data resulted in a better match of the field production rates with smaller standard deviations. In addition, history matching including tracer data resulted in more distinct geological features when observing the history matched permeability maps. From the second part of the numerical experiments, we observed that the geological models history matched including tracer data resulted in better production optimization with higher NPV produced. In the specific case of the Egg Model, +4.3% increase of the NPV was observed. To understand the sensitivity and the limitations of the tracer data, the same numerical experiments were performed on a library of reservoir models with different fracture patterns. After the history matching and production optimization simulations, we observed that including tracer data gave positive NPV increases ranging from +0.3% to +9.4% from 5 of the 7 test cases. It was observed that tracers were more effective for the non-homogeneously flooded reservoirs. To the best of our knowledge, this paper is the first study that quantifies the benefits of tracers in the context of the improved production, measured in NPV. In a broader perspective, we believe this is the best way to test any new history matching algorithms or reservoir surveillance methods. In this work, we show that tracers can result in positive NPV in most situations, and oil producers using large-scale water flooding operations would benefit from performing more tracer tests in their operations.
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