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Dynamic Modelling of Walloon Coal Measures: An Unsavoury Cocktail of Reservoir Variability,Mismatched Resolutions,and Unreasonable Expectations

机译:瓦隆煤炭措施的动态建模:水库变异性,不匹配决议的令人讨厌的鸡尾酒,不合理的期望

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A full-field dynamic simulation model has traditionally been seen as the benchmark for assimilating all available static and dynamic data to develop robust production forecasts. Santos’experience modelling the Walloon Coal Measures in its Surat Basin acreage has shown that the performance of individual wells producing from this CSG reservoir is governed by reservoir variability at a fine-scale. This presents a fundamental challenge in developing full-field dynamic models that can accurately describe and predict production performance down to the scale of individual coal seams. Current Queensland CSG projects have focussed on the most prospective acreage,however as subsequent developments move to more marginal areas a greater understanding of the subsurface will be required for optimum development. The target formations will increase in geological complexity,such as Santos’Surat Basin acreage on the edge of the CSG fairway. Here wells produce from a greater number of distinct coal reservoir units,and how these reservoir units are structured and relate to each other governs reservoir connectivity and defines long-term production performance. Each reservoir unit is comprised of multiple coal plies,all with their own unique maceral distribution and cleating characteristics. These fine-scale properties define the reservoir’s dynamic behaviour,and can be impossible to upscale such that these characteristics are preserved at a coarse scale. Consequently,accurately modelling individual well performance will require a fine-scale model to capture and characterise this variability. In development areas where the quantity and quality of reservoir data gathered from exploration and appraisal is sparsely populated,these fine-scale models will need to be populated geostatistically. Without model-scale appropriate control data from production and pressure measurement in the development wells to provide constraints however,a probabilistic model will not accurately define fine-scale behaviour of specific reservoir units. These data requirements can help shape the appraisal scope for new areas and define an appropriate level of surveillance for producing assets. Traditional full-field dynamic modelling has fundamental limitations for interrogating complex unconventional CSG reservoirs at a fine scale. Because of this,alternative workflows are required to answer the subsurface questions necessary to develop CSG assets such as the Surat Basin effectively. This paper details a selection of workflows explored to address this pragmatically,as well as their limitations and associated data requirements. This will also assist in identifying data gaps needed for optimum reservoir management and to aid in the development of these challenging CSG reservoirs.
机译:传统上,全场动态仿真模型被视为同化所有可用静态和动态数据的基准,以开发强大的生产预测。 Santos'Experience在Surat盆地面漆中建模沃隆煤炭措施表明,从该CSG水库生产的个体井的性能受到细分的微量变异性的影响。这对开发全场动态模型来说至关重要的挑战,该挑战可以将生产性能准确描述和预测到各个煤层的规模。目前的昆士兰州CSG项目专注于最前景的面积,然而随着后续的发展走向更多边际领域,将需要更好地了解地产以获得最佳发展。目标地层将增加地质复杂性,例如CSG航道边缘的Santossurat盆地面积。这里的井从更多的不同的煤储层装置生产,以及这些储层单元的结构如何构建和彼此涉及储层连接并定义长期的生产性能。每个储存器单元由多种煤层组成,所有煤层都具有自身独特的丙酰胺分布和剪切特性。这些精细尺度属性定义了储库的动态行为,并且可能无法高档,使得这些特性以粗略的尺度保持。因此,准确地建模个人井性能需要精细模型来捕获和表征这种可变性。在从勘探和评估中收集的水库数据的数量和质量稀少填充的发展领域,这些精细模型将需要地稳定地填充。在没有模型规模的适当控制数据中,在发育井中的生产和压力测量来提供约束,概率模型将无法准确地定义特定储层单元的微尺度行为。这些数据要求可以帮助为新领域塑造评估范围,并确定生产资产的适当监视水平。传统的全场动态建模具有以精细规模询问复杂的非传统CSG水库的基本限制。因此,替代工作流程需要回答有效开发CSG资产所需的地下问题,例如苏珊盆地。本文详细介绍了各种工作流程,探讨了务实的务实,以及它们的局限性和相关数据要求。这还将有助于确定最佳油藏管理所需的数据差距,并帮助开发这些挑战性CSG水库。

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