Closed-Loop Integrated Time-Lapse Seismic Feasibility in Amberjack Field – Deepwater Offshore Gulf of Mexico

Brandon Thibodeaux, T. Ramsay, F. Segovia, L. Hernandez, M. Ibrahim
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Abstract

A flow simulation-driven time-lapse seismic feasibility study is performed for the Amberjack field that leverages existing multi-vintage 4D time-lapse seismic data. The focus is a field consisting of stacked shelf and deepwater reservoir sands situated in the Gulf of Mexico in Mississippi Canyon Block 109 in 1,030 ft of water. The solution leverages seismic interpretation, seismic inversion, earth modeling, and reservoir simulation [including embedded petro-elastic modeling (PEM) capabilities] to enable the reconciliation of data across multiple seismic vintages and forecast the optimal future seismic survey acquisition in a closed-loop. The overarching feasibility solution is integrated and simulation-driven involving multi-vintage seismic inversion, spatially constraining the petrophysical property model by seismic inversion, and performing reservoir simulation with the embedded PEM. The PEM is used to compute P-impedance and Vp/Vs dynamically, which enables tuning to both historical production and multi-vintage seismic data. The process considers a hybrid fine-scale 3D geocellular model in which the only upscaling of petrophysical properties occurs when the P-impedance from seismic inversion is blocked to the 3D geocellular grid. This process minimizes resampling errors and promotes direct tuning of the simulator response with registered seismic that has been blocked to a geocellular earth model grid. The results illustrate a three-part simulation-to-seismic calibration procedure that culminates with a prediction step which leads to a simulation-proposed time-lapse seismic acquisition timeline that is consistent with the calibrated reservoir simulation model. The first calibration tunes the model to historical production profiles. The second calibration reconciles the dynamic P-impedance estimate of the simulated shallow reservoir with that of the seismic inversion blocked to the 3D geocellular grid. The combination of these two steps outline a seismic-driven history matching process whereby the simulation model is not only consistent with production data but also the subsurface geologic and fluid saturation description. Large and short wavelength disparities in the P-impedance calibration existing between the simulator response and the time-lapse seismic data are attributed to resampling errors as a result of seismic inversion-derived P-impedance being blocked to the 3D geocelluar grid, as well as sparse well control in the earth model which leads to the obscuring of some asset-specific characteristics. The results of the third calibration step show how the time-lapse seismic feasibility solution accurately confirms prior seismic surveys undertaken in the asset. Given this confirmation, the solution achieves a suitable prediction of seismic-derived rock property response from the reservoir simulator as well as the optimal future time-lapse seismic acquisition time.
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Amberjack油田闭环集成时移地震可行性-墨西哥湾深水
利用Amberjack油田现有的多期4D时移地震数据,进行了流动模拟驱动的时移地震可行性研究。该油田位于墨西哥湾密西西比峡谷109区块,水深1030英尺,由叠层陆架和深水储层砂组成。该解决方案利用地震解释、地震反演、地球建模和油藏模拟(包括嵌入式石油弹性建模(PEM)功能),实现跨多个地震区数据的协调,并在闭环中预测未来最佳的地震调查采集。总体可行性解决方案是集成和模拟驱动的,包括多年份地震反演,通过地震反演对岩石物性模型进行空间约束,并使用嵌入的PEM进行储层模拟。PEM用于动态计算p阻抗和Vp/Vs,从而可以调整历史生产和多年份地震数据。该过程考虑了一种混合精细三维地胞模型,其中只有当地震反演的p -阻抗被阻挡到三维地胞网格时,岩石物理性质才会上升。这一过程最大限度地减少了重采样误差,并促进了模拟器响应的直接调整,这些响应与已被阻塞到地球细胞模型网格的已登记地震有关。结果说明了一个由三部分组成的模拟到地震校准过程,最后是一个预测步骤,该步骤导致模拟提出的延时地震采集时间表,该时间表与校准的油藏模拟模型一致。第一次校准将模型调整为历史生产概况。第二次校准将模拟浅层储层的动态p阻抗估计与三维地元格网的地震反演结果相一致。这两个步骤的结合勾勒出了一个地震驱动的历史匹配过程,其中模拟模型不仅与生产数据一致,而且与地下地质和流体饱和度描述一致。仿真器响应与时移地震数据之间存在较大且较短的p阻抗校准波长差异,这是由于地震反演得到的p阻抗被阻挡在三维地元网格上造成的重采样误差,以及地球模型中稀疏的井控导致某些资产特定特征的模糊。第三步校准的结果显示了延时地震可行性解决方案如何准确地确认了在该资产中进行的先前地震调查。考虑到这一点,该解决方案可以从油藏模拟器中实现对地震衍生岩石性质响应的合适预测,以及未来最佳时移地震采集时间。
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