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Imaging Conditions for Primary Reflections and for Multiple Reflections. Jianming Sheng, Hongchuan Sun, Yue Wang and Gerard T. Schuster. University of Utah. Outline. Introduction. Primary-Only Imaging Condition. Multiple-Only Imaging Condition. Conclusions. Introduction.
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Imaging Conditions for Primary Reflections and for Multiple Reflections Jianming Sheng, Hongchuan Sun, Yue Wang and Gerard T. Schuster University of Utah
Outline • Introduction • Primary-Only Imaging Condition • Multiple-Only Imaging Condition • Conclusions
Introduction Other de-multiple methods: (prior to migration imaging) (1) Exploit moveout differences (2) Predict and subtract multiples
Introduction Our two new approaches: (during migration imaging) (1) POIC (1) Primary-Only Imaging Condition: Migrate primary reflections Discard multiple reflections (2) MOIC (2) Multiple-Only Imaging Condition: Migrate multiple reflections Discard primary reflections
Outline • Introduction • Primary-Only Imaging Condition • Multiple-Only Imaging Condition • Conclusions
Primary-Only Imaging Condition • Methodology • Synthetic Data Example • Unocal Field Data Example
Forward Modeling Primary Multiple S S R R Depth Offset Offset
M1 M1 M2 M2 M3 M3 Forward Modeled Data Primary Multiple Data P1 P1 + Time (s) Offset Offset Offset
Problem in Kirchhoff Migration Data ( primary + multiple ) Standard imaging condition Image ( primary + multiple )
Objective of POIC Migration Data ( primary + multiple ) Primary-only imaging condition Image ( primary + multiple )
Migration with POIC Key Steps: (1) pick seismic events automatically; obs
Key Steps: (2) calculate shooting angle and incidence anglefor event using local slant stack; obs Migration with POIC
Migration with POIC S R Key Steps: (3) Shoot ray from the source using shooting angle ; Depth Offset
Migration with POIC S R Key Steps: (4) Shoot ray from the receiver using incidence angle; Depth Offset
Migration with POIC S R Key Steps: (5) Find the crossing point P, whose traveltime is: SP +RP Depth P Offset
POIC Constraint An event is a primary reflection only if : obs = SP + RP Primary reflections are migrated calculated picked
Multiple Reflection S R Depth P Offset
Multiple Reflection An event is a multiple reflection if : obs =SP + RP Multiple reflections are discarded
Migration with POIC Data ( primary + multiple ) Primary-Only Imaging Condition obs,and Image ( primary + multiple )
Primary-Only Imaging Condition • Methodology • Synthetic Data Example • Unocal Field Data Example
0 Depth (km) 6 5 0 Distance (km) 5-Layer Model A Shot Gather 0 P1 P2 Time (s) P3 P4 4 0 Distance (km) 3
P1 P1 P2 P2 P3 P3 P4 P4 5 5 0 0 Distance (km) Distance (km) Kirchhoff Image POIC Image 0 Multiple Depth (km) 6
Primary-Only Imaging Condition • Methodology • Synthetic Data Example • Unocal Field Data Example
Stack Before Multiple Removal 0 M1 Time (s) M2 M2 4 313 1400 CDP Number
Stack After -p Multiple Removal 0 M1 Time (s) M2 M2 4 313 1400 CDP Number
Kirchhoff Image 0 M1 M2 Depth (km) M2 4 9 2 Distance (km)
POIC Image 0 M1 M2 Depth (km) M2 4 9 2 Distance (km)
Outline • Introduction • Primary-Only Imaging Condition • Multiple-Only Imaging Condition • Conclusions
Multiple-Only Imaging Condition • Methodology • Nine-layered Model • SEG/EAGE Salt Model
Ghost G P Primary Primary S G’ G S G’ G S G’ G VIRTUAL SOURCE X X X X’ X’ X’ Step1: Create crosscorrelograms
Step2: Migrate crosscorrelograms Migration image Trial image point With Imaging Condition
Three-layered Model Crosscorrelogram Image Kirchhoff Image Reflector Reflector Artifacts Artifacts Key Idea of MOIC
Key Idea of MOIC True reflectors Step3: Multiply the crosscorrelogram image by the Kirchhoff image
Multiple-Only Imaging Condition • Methodology • Nine-layered Model • SEG/EAGE Salt Model
0 0.6 Depth (km) 1.2 1.8 2.4 3.0 Nine-Layered Model Model Crosscorrelogram image Distance (km) Distance (km) 3.0 3.0 0 0
0 0.6 Depth (km) 1.2 1.8 2.4 3.0 Nine-Layered Model Kirchhoff Image Product Image artifacts Distance (km) Distance (km) 3.0 3.0 0 0
Multiple-Only Imaging Condition • Methodology • Nine-layered Model • SEG/EAGE Salt Model
SEG/EAGE Salt Model 0 0.6 1.2 Depth (km) 1.8 2.4 3.0 3.6 0 5.0 10.0 15.0 Distance (km)
Crosscorrelogram Image 0 0.6 1.2 Depth (km) 1.8 2.4 3.0 3.6 0 5.0 10.0 15.0 Distance (km)
Kirchhoff Image 0 0.6 1.2 Depth (km) 1.8 2.4 3.0 3.6 0 5.0 10.0 15.0 Distance (km)
Product Image 0 0.6 1.2 Depth (km) 1.8 2.4 3.0 3.6 0 5.0 10.0 15.0 Distance (km)
Outline • Introduction • Primary-Only Imaging Condition • Multiple-Only Imaging Condition • Conclusions
Conclusions POIC: Multiples are effectively attenuated during the imaging process MOIC: Multiples are considered as signal and correctly imaged
Further Work POIC: 1) Apply to other field data sets; 2) Develop more robust algorithms; MOIC: 1) Attenuate crosscorrelogram artifacts; 2) Deal with high-order and internal multiples.
Acknowledgments We thank the sponsors of University of Utah Tomography and Modeling /Migration (UTAM) Consortium for their financial support . We are appreciative of Yi Luo for his early insights into MOIC.