集成岩石和流体工作流程,优化地质建模和历史匹配

Elizabeth Ruiz, Brandon Thibodeaux, C. Dorion, Herman Mukisa, M. Faskhoodi, Bilal Hakim, G. Garcia, Wangbin Xu, S. Betancourt, Jesus A. Cañas, Tom Messonnier, O. Mullins
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引用次数: 0

摘要

利用岩石和流体的综合工作流程,优化了地质建模和生产数据的历史匹配。通过使用图像测井和其他地质信息进行相识别。此外,图像测井还用于帮助确定储层中发生的构造地球动力学过程。储层流体地球动力学方法用于评价流体成分平衡的程度,特别是沥青质,从而评价这些相的连通性程度。地球化学测定结果与化学成分热力学平衡测量结果一致。开发储层地质情景的能力,以及储层中岩石和流体随地质时间的相干演化,提高了地质模型的稳健性。特别是建立了该中上新世储层的油气充注序列、成分平衡序列、断块距离序列和原生生物气充注序列,对该储层的生产、拓展和局部盆地勘探具有指导意义。生产资料的历史拟合证明了地质模型的准确性;然而,通过对电缆测井和其他数据进行扩展的确定性属性估计,改进了地质模型和历史匹配。流体数据(热力学和地球化学)与相关相及其性质测定的早期联系,使得将这些数据纳入地质模型的方法更加简便。该油田未来井的测井数据可以导入到地质模型中,以便在生产开始后很长一段时间内对该模型进行确定性优化。虽然每个储层都有其独特的特性,但本文介绍的工作流程通常适用于所有储层,并始终提高对储层的理解。
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Integrated Rock and Fluid Workflow to Optimize Geomodeling and History Matching
Optimized geomodeling and history matching of production data is presented by utilizing an integrated rock and fluid workflow. Facies identification is performed by use of image logs and other geological information. In addition, image logs are used to help define structural geodynamic processes that occurred in the reservoir. Methods of reservoir fluid geodynamics are used to assess the extent of fluid compositional equilibrium, especially the asphaltenes, and thereby the extent of connectivity in these facies. Geochemical determinations are shown to be consistent with measurements of compositional thermodynamic equilibrium. The ability to develop the geo-scenario of the reservoir, the coherent evolution of rock and contained fluids in the reservoir over geologic time, improves the robustness of the geomodel. In particular, the sequence of oil charge, compositional equilibrium, fault block throw, and primary biogenic gas charge are established in this middle Pliocene reservoir with implications for production, field extension,and local basin exploration. History matching of production data prove the accuracy of the geomodel; nevertheless, refinements to the geomodel and improved history matching were obtained by expanded deterministic property estimation from wireline log and other data. Theearly connection of fluid data, both thermodynamic and geochemical, with relevant facies andtheir properties determination enables a more facile method to incorporate this data into the geomodel. Logging data from future wells in the field can be imported into the geomodel allowingdeterministic optimization of this model long after production has commenced. While each reservoir is unique with its own idiosyncrasies, the workflow presented here is generally applicable to all reservoirs and always improves reservoir understanding.
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