digital mapping at corbula gulch outcrop, utah

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Digital Mapping at Corbula Gulch outcrop, Utah • Locate 2D and 3D GPR surveys, coreholes, measured stratigraphic sections by RTK. • Map the beds along the cliff faces by laser rangefinders. • Interpolate the 3D geometry of the sedimentary bodies. • Build the 3D geological model for visualization, analysis and interpretation.

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Digital Mapping at Corbula Gulch outcrop, Utah. Locate 2D and 3D GPR surveys, coreholes, measured stratigraphic sections by RTK. Map the beds along the cliff faces by laser rangefinders. Interpolate the 3D geometry of the sedimentary bodies. - PowerPoint PPT Presentation

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Page 1: Digital Mapping at Corbula Gulch outcrop, Utah

Digital Mapping at Corbula Gulch outcrop, Utah

• Locate 2D and 3D GPR surveys, coreholes, measured stratigraphic sections by RTK.

• Map the beds along the cliff faces by laser rangefinders.

• Interpolate the 3D geometry of the sedimentary bodies.

• Build the 3D geological model for visualization, analysis and interpretation.

Page 2: Digital Mapping at Corbula Gulch outcrop, Utah

Map of San Rafael Swell

Page 3: Digital Mapping at Corbula Gulch outcrop, Utah

EW

S N

Photomosaic of Cliff face

Page 4: Digital Mapping at Corbula Gulch outcrop, Utah

Laser Surveyed Points

Page 5: Digital Mapping at Corbula Gulch outcrop, Utah

2D Topographic Map

Page 6: Digital Mapping at Corbula Gulch outcrop, Utah

3D Perspective View of Survey data Layout

Page 7: Digital Mapping at Corbula Gulch outcrop, Utah

3D Perspective View of Survey data Layout

Page 8: Digital Mapping at Corbula Gulch outcrop, Utah

GPR Cubes and Profiles (from Corbeanu, 2000)

Page 9: Digital Mapping at Corbula Gulch outcrop, Utah

3D Perspective View of Survey data Layout

Page 10: Digital Mapping at Corbula Gulch outcrop, Utah

The high-resolution topographic model at the southeast corner of the outcrop

Page 11: Digital Mapping at Corbula Gulch outcrop, Utah

CD 1 Top Surface

Page 12: Digital Mapping at Corbula Gulch outcrop, Utah

CD 1 Bottom Surface

Page 13: Digital Mapping at Corbula Gulch outcrop, Utah

EW

S N

Photomosaic of Cliff face

Page 14: Digital Mapping at Corbula Gulch outcrop, Utah

Thickness Contour Map of CD 1

Page 15: Digital Mapping at Corbula Gulch outcrop, Utah

3D Model of Major Bounding Surfaces

Page 16: Digital Mapping at Corbula Gulch outcrop, Utah

3D Model of Major Bounding Surfaces

Page 17: Digital Mapping at Corbula Gulch outcrop, Utah

Conclusions

• Utilize GPS and laser sketching to locate the GPR survey lines, stratigraphic sections, coreholes, and sedimentary bounding surfaces.

• These digital data enable us to quantitatively analyze the key surfaces.

• A three-dimensional geological model was interpolated with these digital data and 4 coreholes.

Page 18: Digital Mapping at Corbula Gulch outcrop, Utah

Conclusions (continuing)

• The results of this project demonstrates the usefulness of digital surface mapping and power of integration of digital subsurface information.

• The final GPR analysis and interpretation can utilize these interpolated surface fits.

• The final three-dimensional model will incorporate all of subsurface and surface geology.

Page 19: Digital Mapping at Corbula Gulch outcrop, Utah

3-D GPR RESOLUTION

Seismic vertical resolution = 15 m

GPR vertical resolution = 0.5 m

Page 20: Digital Mapping at Corbula Gulch outcrop, Utah

FERRON SANDSTONE LOCATION

• Sequence stratigraphic framework well established

• Reservoir analog for oil fields in Gulf of Mexico and North Sea

• Good exposure of the vertical cliff faces

• Flat mesas and an arid environment are ideal for GPR surveying

Delta shoreline

CoyoteBasin

CorbulaGulch

X

Y

Page 21: Digital Mapping at Corbula Gulch outcrop, Utah
Page 22: Digital Mapping at Corbula Gulch outcrop, Utah

GPR METHOD

• High resolution electro-magnetic method• Similar to seismic methods• Characterizes a medium by its electrical permittivity, k and electrical conductivity, .• Decreasing velocity with depth

• Depth of penetration proportional to the loss tangent

tan() = /0k, where :0 = permittivity in a vacuum = angular frequency

v = c/ k, where c is the velocity of light in a vacuum

System console

Optic fiberAntennas

Page 23: Digital Mapping at Corbula Gulch outcrop, Utah

CORBULA GULCH BASEMAP

• reservoir simulator voxel scale: 3-D GPR cubes (51m x 28m and 31m x 27)

• reservoir grid cell scale(100mx100m)

• inter-well scale(550mx350m)

Page 24: Digital Mapping at Corbula Gulch outcrop, Utah

CORBULA GULCH FACIES MAP

Page 25: Digital Mapping at Corbula Gulch outcrop, Utah

INTEGRATING OUTCROP AND GPR DATA

• Good correlation of lithology and permeability.

• Good correlation of lithology and velocity.

• GPR reflections are produced at the surface between layers with contrast in electrical properties.

Page 26: Digital Mapping at Corbula Gulch outcrop, Utah

3-D GPR INTERPRETATION

Page 27: Digital Mapping at Corbula Gulch outcrop, Utah

3-D GPR INTERPRETATION

• High amplitude, continuous, oblique GPR reflections.

• Tuning effects at thin layers interfaces resolved with GPR attributes.

Page 28: Digital Mapping at Corbula Gulch outcrop, Utah

INCLINED SURFACES MAPS

Page 29: Digital Mapping at Corbula Gulch outcrop, Utah

CONCLUSION

• To effectively integrate geologic and GPR data, 3-D migration of the GPR data from the time domain into the depth domain is essential.

• Correlating outcrop, boreholes and GPR data allows relationships between vertical facies successions through different architectural elements and their lateral geometry to be directly interpreted in 3-D.

• The channel deposits at Coyote Basin are interpreted as scour and fill channel deposits of distributary channels on the upper delta plain.

Page 30: Digital Mapping at Corbula Gulch outcrop, Utah

CONCLUSION

• Reservoir heterogeneities are estimated by modeling 3-D experimental variograms of GPR amplitudes and are smaller (4-6 m) in scour and fill channel deposits and longer (10-15 m) in marine influenced point bar deposits.

• 3-D permeability and mudstone distributions can be predicted from empirical relationships between physical properties and GPR attributes.

Page 31: Digital Mapping at Corbula Gulch outcrop, Utah

Objectives

• 3D integration of data sets, including GPR surfaces, borehole and cliff face data.

• Building 3D model for visualization, analysis and interpretation.

Page 32: Digital Mapping at Corbula Gulch outcrop, Utah

Data Source

• GPR Survey

• Cliff Face Laser Mapping

• Stratigraphic Measured Sections

• Well cores

-All Integrated by GPS

Page 33: Digital Mapping at Corbula Gulch outcrop, Utah

EW

S N

Photomosaics of Cliff Faces

Page 34: Digital Mapping at Corbula Gulch outcrop, Utah

Laser Surveyed Points

Page 35: Digital Mapping at Corbula Gulch outcrop, Utah

2D Topographic Map

Page 36: Digital Mapping at Corbula Gulch outcrop, Utah

3D Perspective View of Survey Data Layout

Page 37: Digital Mapping at Corbula Gulch outcrop, Utah

CD 1 Top Surface

Page 38: Digital Mapping at Corbula Gulch outcrop, Utah

CD 1 Bottom Surface

Page 39: Digital Mapping at Corbula Gulch outcrop, Utah

Thickness Contour Map of CD 1

Page 40: Digital Mapping at Corbula Gulch outcrop, Utah

3D Model of Major Bounding Surfaces

Page 41: Digital Mapping at Corbula Gulch outcrop, Utah

3D Model of Major Bounding Surfaces

Page 42: Digital Mapping at Corbula Gulch outcrop, Utah

GPR Cubes and Profiles of Depth Sections

Page 43: Digital Mapping at Corbula Gulch outcrop, Utah

Rendering Procedures

• Curve fitting of the data

• Generating initial surfaces

• Installing constraints to honor geologic interpretations.

Page 44: Digital Mapping at Corbula Gulch outcrop, Utah

Initial surface

Page 45: Digital Mapping at Corbula Gulch outcrop, Utah

Honor geologic interpretation

Page 46: Digital Mapping at Corbula Gulch outcrop, Utah

Incline 0 border at Surface C

Page 47: Digital Mapping at Corbula Gulch outcrop, Utah
Page 48: Digital Mapping at Corbula Gulch outcrop, Utah

Incline 4 with laser data

Laser data

Page 49: Digital Mapping at Corbula Gulch outcrop, Utah

Major Bounding Surfaces-looking northeast

Z: X3

Page 50: Digital Mapping at Corbula Gulch outcrop, Utah

Major Bounding Surfaces-looking northwest

Z: X3

Page 51: Digital Mapping at Corbula Gulch outcrop, Utah

Location of the solid model

Page 52: Digital Mapping at Corbula Gulch outcrop, Utah

Volume of bounding surfaces

Topography

CIncl 0

Incl 1

Unit 1 Upper unit

Incl 7Incl 6 Incl 5

Incl 4

Incl 3

Incl 2

Page 53: Digital Mapping at Corbula Gulch outcrop, Utah

Volume of bounding surfaces

Surface C

Unit 1Upper unit

Incl 0

Incl 1

Incl 2

Incl 3Incl 4Incl 5Incl 6

Incl 7

Page 54: Digital Mapping at Corbula Gulch outcrop, Utah

Volume of bounding surfaces

Incl

2

Page 55: Digital Mapping at Corbula Gulch outcrop, Utah

Lessons Learned

• Laser Mapping provides an efficient way to map the surface geometry, but …

• Photorealistic model preferable because interpretation change and different interfaces interpreted from photos

Page 56: Digital Mapping at Corbula Gulch outcrop, Utah

Mismatch

Page 57: Digital Mapping at Corbula Gulch outcrop, Utah

Photorealistic Outcrop at Dallas Post Office

• Accuracy of a few centimeters• Photo registration about 0.7 – 2.7

pixels.• Bring outcrop back to office

photorealistically in three-dimensions• Directly taking measurement on photos

in three-dimensions• Virtual field trip