首页> 外文会议>Society of Petroleum Engineers International Petroleum Technology Conference >Integrating The Geophysical Characterization Of Seismic Thin Beds With Stochastic Reservoir Modeling: A Case Study From The Kutei Basin (Offshore Kalimantan, Indonesia)
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Integrating The Geophysical Characterization Of Seismic Thin Beds With Stochastic Reservoir Modeling: A Case Study From The Kutei Basin (Offshore Kalimantan, Indonesia)

机译:随机储层模型整合地震薄床的地球物理特征 - 以Qutei盆地(紫上岸Kalimantan,印度尼西亚)为例

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In exploration plays driven by DHI, seismic thin beds are common targets. When resolution capabilities are comparable to isochrones of remarkable elastic contrasts, reflections tend to fall around tuning thickness, where interference phenomena prevent a correct calibration of amplitudes to reservoir properties. If a de-tuning step is not applied in seismic characterization, wrong estimation of reservoir properties and pay thickness may lead to inaccurate volumetrics and misleading geologic models. These issues were faced in the characterization of a Kutei Basin (Offshore Kalimantan, Indonesia) discovery, where gas sands, acoustically marked by lower P-impedance than bounding shales, respond as bright, single-loop reflections (i.e. seismic thin beds). In order to support appraisal and reservoir modeling activities, our seismic characterization approach combined the following steps: a) Statistical tuning charts realization by extracting reservoir isochron and amplitude; b) Investigation of petro-elastic relations through rock physics modeling; c) Definition of deterministic tuning curves by generating a family of pseudo-reservoir responses via forward seismic modeling and d) De-tuned calibration of amplitude - isochron pairs to Porosity*Thickness (PT) and Net Pay. Appraisal wells confirmed the reliability of this approach but also revealed how other uncertainties may impact reservoir quality predictions. For this reason, PT realizations were only used as "soft" information in the reservoir model, built through a Sequential Indicator Simulation of sedimentological facies recognized in cores. Assuming a link between seismic porosity and facies, normalized porosity maps derived from PT estimates were used to condition the horizontal facies distributions and define a seismic-consistent variography. Sensitivity analysis confirmed the robustness of the approach and final results appear consistent with the de-tuned PT predictions. In a field where seismic thin beds affected by tuning represent the key geophysical issue to address, the applied workflow ensured the link between geophysics and geological modeling, from assessment of gas in-place to dynamic simulation.
机译:在DHI驱动的勘探剧中,地震薄床是普通的目标。当分辨率能力与异卷量相当的弹性对比的时,反射趋于围绕调谐厚度落下,其中干扰现象防止对储层性质的幅度正确校准。如果未在地震表征中应用去调谐步骤,则储层性能的错误估计和付费厚度可能导致不准确的体积和误导性地质模型。这些问题面临着Queia盆地(海上卡利曼丹,印度尼西亚)发现的表征,其中天然气砂,由较低的p阻抗标记而不是边界的索拉斯,反应为明亮的单环反射(即抗震薄床)。为了支持评估和储层建模活动,我们的地震表征方法结合以下步骤:a)通过提取储层等距和幅度来实现统计调整图表; b)通过岩石物理建模研究石油弹性关系; c)以经由前向地震模拟和d产生一个家庭的伪储应答确定性调谐曲线的定义)幅度的失谐校准 - 等时线对到孔隙度*厚度(PT)和净产。评估井确认了这种方法的可靠性,但也揭示了其他不确定性如何影响水库质量预测。因此,PT实现仅在储层模型中用作“软”信息,通过核心识别的沉积物相的顺序指示模拟构建。假设地震孔隙率和面之间的链路,使用从PT估计的归一化孔隙率图用于调节水平相片分布并限定地震一致的变形例。敏感性分析证实了方法的稳健性和最终结果看起来与去调谐的PT预测一致。在通过调整影响的地震薄床代表到地址的关键地球物理问题的领域中,应用的工作流程确保了地球物理和地质建模之间的联系,从对动态模拟的燃气评估。

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