HR: 1330h
AN: H42F-1137 [PDF]
TI: Geometric Analysis of Vein Fracture Networks From the Awibengkok Core, Indonesia
AU: * Khatwa, A
EM: anjana.khatwa@geog.utah.edu
AF: Department of Geography, University of Utah, 260 S. Central Campus Dr. Rm. 180A, Salt Lake City, UT
84112-9155 United States
AU: Bruhn, R L
EM: rlbruhn@mines.utah.edu
AF: Department of Geology and Geophysics, University of Utah, 135 South 1460 East, Room 719, Salt Lake
City, UT 84112-0111 United States
AU: Brown, S R
EM: sbrown@ner.com
AF: New England Research, 331 Olcott Drive, Suite L1, White River Jct., VT 05001 United States
AB:
Fracture network systems within rocks are important features for the transportation and remediation of hazardous waste, oil
and gas production, geothermal energy extraction and the formation of vein fillings and ore deposits. A variety of methods,
including computational and laboratory modeling have been employed to further understand the dynamic nature of fractures and
fracture systems (e.g. Ebel and Brown, this session). To substantiate these studies, it is also necessary to analyze the
characteristics and morphology of naturally occurring vein systems. The Awibengkok core from a geothermal system in West
Java, Indonesia provided an excellent opportunity to study geometric and petrologic characteristics of vein systems in
volcanic rock. Vein minerals included chlorite, calcite, quartz, zeolites and sulphides. To obtain geometric data on the
veins, we employed a neural net image processing technique to analyze high-resolution digital photography of the veins. We
trained a neural net processor to map the extent of the vein using RGB pixel training classes. The resulting classification
image was then converted to a binary image file and processed through a MatLab program that we designed to calculate vein
geometric statistics, including aperture and roughness. We also performed detailed petrographic and microscopic geometric
analysis on the veins to determine the history of mineralization and fracturing. We found that multi-phase mineralization
due to chemical dissolution and re-precipitation as well as mechanical fracturing was a common feature in many of the veins
and that it had a significant role for interpreting vein tortuosity and history of permeability. We used our micro- and
macro-scale observations to construct four hypothetical permeability models that compliment the numerical and laboratory
modeled data reported by Ebel and Brown. In each model, permeability changes, and in most cases fluctuates, differently over
time as the tortuosity and aperture of veins are affected by the precipitation, dissolution, and re-precipitation of
minerals, and also by mechanical fracturing. In all of our cases we interpret a first-phase mineral dissolution stage where
permeability gradually declines as the vein is blocked by inward growing minerals. Hereafter, permeability may briefly
increase with the onset of internal fracturing within the vein or by a phase of mineral dissolution opening up new pathways
for fluid flow. Eventually we infer that permeability will decline again as second stage minerals are deposited in the fluid
flow pathways.
DE: 1832 Groundwater transport
DE: 1848 Networks
DE: 5104 Fracture and flow
DE: 5112 Microstructure
DE: 5139 Transport properties
SC: Hydrology [H]
MN: 2003 Fall Meeting