Application of a geostatistical algorithm for correcting well logging data when modelling complex hydrocarbon deposits at the stage of additional field exploration

V. Shuster, O. V. Tjukavkina, I. S. Permyakova, I. Kapitonova
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Abstract

Background. Additional exploration of oil and gas reserves requires the application of information technologies for modelling all technological processes and interpreting the results of geophysical well logging. Reliable models of the object under exploration and the use of best practices in the field of information systems reduce investment risks associated with planning exploration works, at the same time as optimizing the planning and design of the entire process of field development.Aim. Optimization of the selection process of multivolume, multiparameter logging data when modelling a complex oil reservoir at the stage of additional field exploration, grouping well data by quality, completeness and uniformity of their distribution over the study area, as well as identifying inaccuracies (errors) in the field data (registration of signals in probes, errors in measurements of directional survey, borehole picks, etc.).Materials and methods. Examples of well logging interpretation for a complex reservoir are given, along with its distribution options for a constructed lithology cube (2D, 3D) based on the data obtained during drilling from one pilot borehole – a horizontal well, a sidetrack and a directional well. It was established that the data obtained when distributing the reservoir and modelling the lithology cube of a complex development target can be significantly different for wells located close to each other. The results obtained when constructing 2D and 3D models by different specialists revealed discrepancies in the interpretation and cross-well correlation of well sections.Results. Local zones with a sharp change in the structure were established, in particular, the concentration of extrema around some wells. The presence of such anomalies points to the presence of wells, for which the values of stratigraphic depth marks for wells located close to each other are quite different. A geostatistical algorithm was applied to correct the well data using the “sliding window” method, which became a solution for the most accurate determination of the depths of the object under exploration.Conclusions. The possibility of using a geostatistical algorithm for correcting well data based on multiparameter geophysical data was assessed; the current state of modelling the processes of exploration and development of oil fields with a complex geological structure was analysed.
应用地质统计算法校正测井数据,为油田勘探阶段复杂油气沉积建模
背景。石油和天然气储量的进一步勘探需要应用信息技术对所有技术过程进行建模,并解释地球物理测井的结果。勘探对象的可靠模型和信息系统领域最佳实践的使用,降低了规划勘探工作相关的投资风险,同时优化了油田开发全过程的规划设计。在额外的野外勘探阶段,对复杂油藏建模时的多体积、多参数测井数据的选择过程进行优化,根据数据在研究区域内分布的质量、完整性和均匀性对井数据进行分组,并识别现场数据中的不准确(误差)(探头信号的配准、定向测量的测量误差、井眼取样等)。材料和方法。给出了复杂储层的测井解释实例,以及基于水平井、侧钻井和定向井在钻井过程中获得的数据构建的岩性立方体(2D、3D)的分布选择。研究表明,在油藏分布和复杂开发目标岩性立方体建模过程中,相邻井间的数据可能存在显著差异。不同专家在构建2D和3D模型时获得的结果表明,井段的解释和井间相关性存在差异。在结构上形成了急剧变化的局部区域,特别是一些井周围的极值集中。这些异常的存在说明井的存在,而相邻井的地层深度标志值差异较大。应用地质统计学算法对“滑动窗口”方法的井资料进行校正,成为最准确确定勘探目标深度的解决方案。评价了利用地质统计算法对多参数地球物理资料进行井资料校正的可能性;分析了复杂地质构造油田勘探开发过程建模的现状。
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