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Measuring, imaging and suppressing scattered surface waves Xander Campman*, Kasper van Wijk, John Scales and Gérard Herman** * Dept. of Applied Mathematics Delft University ** Shell Int. E & P and Delft University
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Near-receiver scattering
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Vs=400 m/s, Vp=1700 m/s Vs=600 m/s, Vp=2500 m/s h d w Example w d < h <<
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Vertical velocity
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Aligned at first breaks
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Stacked
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Scattered noise model
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Outline of the scheme 1. Estimate velocity of the scattered surface wave u G 2Estimate near-surface scattered energy from one isolated event. 3 Image the scattered energy impedance distribution, 4 Predict and remove scattered surface waves on the entire record
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Validation experiment A B
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Seismic record, inline Direct Rayleigh wave Sound wave Ghost Rayleigh wave Scattered Rayleigh wave Cavity AB
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Step 1: Estimate surface wave velocity c ~ 3000 m/s AB
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Step 2: Separate scattered energy Direct Rayleigh wave : d Scattered energy : d 1 ABAB
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Step 3: Estimate impedance function Impedance function: cross-section at t=0 for entire data volume A B AB
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Scattered noise model
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Step 4: Predict scattered energy Ghost Rayleigh wavePredicted scattered field AB AB
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Step 4: Subtract predicted scattered energy -= AB AB AB Ghost minus scattered
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Transmission experiment Top view Side view AB
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Transmission data AB
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Step 1: Separate scattered energy First arrival : dScattered energy : d 1 AB AB
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Step 2: Estimate impedance distribution Impedance function cross-section at t=0 for entire data volume AB AB
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Step 4: Predict scattered field on the rest of the record AB
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Input data after dip-filtering AB
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Output data AB Rest minus scattered
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Latest experiment
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Acknowledgments Dutch Technology Foundation (STW) for financial support. Army Research Office and NSF also for financial support Everyone at PAL and CWP Shell Int. E&P and Wim Mulder (SIEP) for the use of FD code Jan Willem van den Dries for the artist impression
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