HR: 1330h
AN: H42B-1083 [PDF]
TI: Characterizing Ground-Water Flow Paths in High-Altitude Fractured Rock Settings Impacted by Mining
Activities
AU: * Wireman, M
EM: wireman.mike@epa.gov
AF: United States Environmental Protection Agency, 999 18th Street, Denver, CO 80202-2405 United States
AU: Williams, D
EM: markw@snobear.colorado.edu
AF: University of Colorado, Campus Box 450, Boulder, CO 80309 United States
AB:
The Rocky Mountains of the western USA have tens of thousands of abandoned, inactive and active
precious-metal(gold,silver,copper)mine sites. Most of these sites occur in fractured rock hydrogeologic settings. Mining
activities often resulted in mobilization and transport of associated heavy metals (zinc,cadmium,lead) which pose a
significant threat to aquatic communities in mountain streams.Transport of heavy metals from mine related sources (waste rock
piles,tailings impoudments,underground workings, mine pits)can occur along numerous hydrological pathways including complex
fracture controlled ground-water pathways.
Since 1991, the United States Environmental Protection Agency, the Colorado Division of Minerals and Geology and the
University of Colorado (INSTAAR)have been conducting applied hydrologic research at the Mary Murphy underground mine. The
mine is in the Chalk Creek mining district which is located on the southwestern flanks of the Mount Princeton Batholith, a
Tertiary age intrusive comprised primarily of quartz monzonite.The Mount Princeton batholith comprises a large portion of the
southern part of the Collegiate Range west of Buena Vista in Chaffee County, CO. Chalk Creek and its 14 tributaries drain
about 24,900 hectares of the eastern slopes of the Range including the mining district.
Within the mining district, ground-water flow is controlled by the distribution, orientation and permeability of
discontinuities within the bedrock. Important discontinuities include faults, joints and weathered zones. Local and
intermediate flow systems are perturbed by extensive underground excavations associated with mining (adits, shafts, stopes,
drifts,, etc.). During the past 12 years numerous hydrological investigations have been completed. The investigations have
been focused on developing tools for characterizing ground-water flow and contaminant transport in the vicinity of hard-rock
mines in fractured-rock settings. In addition, the results from these investigations have been used to develop a sound
conceptual model of ground-water flow and transport of heavy metals from the mine workings to Chalk Creek.
Ground-water tracing techniques (using organic, fluorescent dyes) have been successfully used to delineate ground-water flow
paths. Surface-water tracing techniques have been used to acquire very accurate stream flow measuements and to identify
ground-water inflow zones to streams. Stable (O18/D)and radioactive (tritium,sulphur 35) isotope anlysis of waters flowing
into and out of underground workings have proved useful for conducting end member mixing analysis to determine which inflows
and outflows are most significant with respect to metals loading. Hydrogeologic mapping, inverse geochemical modeling (using
MINTEQAK code)and helium 3 analysis of ground water have also proven to useful tools.
These tools, used in combination have provided multiple lines of evidence regarding the nature, timing and magnitude of
ground-water inflow into underground mine workings and the distribution and types of hydrologic pathways that transport
metals from the underground workings to Chalk Creek. This paper presents the results of some of the more important hydrologic
investigations completed at the site and a conceptual model of ground-water flow in fractured rock settings that have been
impacted by underground mining activites.
DE: 1829 Groundwater hydrology
DE: 1831 Groundwater quality
DE: 1832 Groundwater transport
SC: Hydrology [H]
MN: 2003 Fall Meeting