Assesing Well Placement in Multi Faulted Reservoir

Valsan Vevakanandan, A. Ting, Tingting Zhang, F. Maula, Aqil Ahmad, G. Santoso, K. Alang
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Abstract

K field is a faulted anticline structure lying in a turbidite environmental setting, which consists of two main sand bodies of 50-100ft gross thickness. Two main challenges during development stages were, 1). The narrow thickness of the fault block requiring accurate landing, well placement and characterization. 2). The low vertical permeability inside the sand which requires the straddling and precision of horizontal placement relative to reservoir boundary. Geosteering was proposed to mitigate those challenges, which is then translated into a directional drilling plan. Hybrid LWD combination of Seismic, Reservoir Mapping, RT-Image and Formation Pressure While Drilling technology were used overcome those objectives and challenges. Seismic was used to update target uncertainty in both depth and lateral coordinates, hence accurate landing inside the target fault block was the main driver. Reservoir Mapping Technology and borehole images were used to update the presence of fault and plan for an accurate placement of the horizontal section. Pressure While Drilling was used to update the reservoir pressure and fault/ connectivity between fault/compartments. Post job subsurface modeling was updated using those measurement for accurate interpretation, which was used for future field development plan. The drilling workflow was extensively discussed among the stakeholders to make sure it was fit for purpose and could achieve the objectives. Horizontal well landing procedures using Seismic While Drilling technology helped the well penetrate into fault block A at 100m before fault edge. Reservoir Mapping While Drilling technology enabled successful Geosteering inside the desired target zone. Another important application regarding the Reservoir Mapping Technology is the capability of resolving the internal sedimentary bedding feature (higher dip feature) and the delineating of multiple faults including sub seismic fault block B, which helped the team define well TD at the desired fault block position. An integrated interpretation between Reservoir Mapping While Drilling, High Resolution Images and Formation Pressure While Drilling to detect pressure continuity between one block to the other proved to be very helpful for production management and completion optimization. At the end, two horizontal wells were successfully drilled in the desired fault block. Everything worked, ie the technology, the people and the process, resulting in an accurate and well controlled execution of a complex and high-profile project. The novel approach was successfully demonstrated to ensure well objectives are achieved in an integrated manner. The flawless execution allowed the team to avpid drilling any side tracks which would have been costly.
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多断陷油藏井位评价
K油田是一个位于浊积岩环境背景下的断裂背斜构造,由两个总厚度为50-100ft的主要砂体组成。开发阶段的两个主要挑战是:1)断块厚度窄,需要精确的着陆、井位和表征。2)砂体内部垂向渗透率低,要求砂体相对于储层边界的横向布置具有跨界性和精度。地质导向是为了缓解这些挑战,然后将其转化为定向钻井计划。随钻测井结合了地震、油藏测绘、rt成像和随钻地层压力技术,克服了这些目标和挑战。利用地震来更新目标在深度和横向坐标上的不确定性,因此在目标断块内准确着陆是主要驱动因素。利用油藏测绘技术和钻孔图像来更新断层的存在,并规划水平段的精确位置。随钻压力用于更新油藏压力和断层/隔室之间的断层/连通性。使用这些测量数据更新作业后的地下建模,以获得准确的解释,并用于未来的油田开发计划。钻井工作流程在利益相关者之间进行了广泛的讨论,以确保其符合目的并能够实现目标。采用随钻地震技术的水平井着陆程序帮助井在断层边缘前100米处钻入断块A。随钻储层测绘技术成功实现了目标区域内的地质导向。关于储层测绘技术的另一个重要应用是能够解决内部沉积层理特征(高倾角特征),并圈定包括次地震断块B在内的多条断层,这有助于团队在期望的断块位置确定井TD。油藏随钻成像、高分辨率图像和地层随钻压力之间的综合解释,以检测一个区块到另一个区块之间的压力连续性,这对生产管理和完井优化非常有帮助。最后,在期望的断块上成功钻了两口水平井。技术、人员和流程等一切都发挥了作用,使这个复杂而引人注目的项目得以准确而良好地执行。该新方法已成功验证,确保以综合方式实现井目标。完美的执行使团队避免了钻井任何昂贵的侧轨。
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