Authors
Yanfen Zhang, Dean S Oliver
Publication date
2011/6/1
Journal
SPE Journal
Volume
16
Issue
02
Pages
307-317
Publisher
Society of Petroleum Engineers
Description
The increased use of optimization in reservoir management has placed greater demands on the application of history matching to produce models that not only reproduce the historical production behavior but also preserve geological realism and quantify forecast uncertainty. Geological complexity and limited access to the subsurface typically result in a large uncertainty in reservoir properties and forecasts. However, there is a systematic tendency to underestimate such uncertainty, especially when rock properties are modeled using Gaussian random fields. In this paper, we address one important source of uncertainty: the uncertainty in regional trends by introducing stochastic trend coefficients. The multiscale parameters including trend coefficients and heterogeneities can be estimated using the ensemble Kalman filter (EnKF) for history matching.
Multiscale heterogeneities are often important, especially …
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