Hydrologic and hydrochemical processes on mine spoil fills

Appalachian surface coal mining operations fracture rocks (termed mine spoils), resulting in the weathering of minerals and release of water-soluble ions to streams. Collectively, the concentration of water-soluble ions in streams is called total dissolved solids (TDS) and streams with elevated TDS...

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Main Author: Clark, Elyse V.
Other Authors: Crop and Soil Environmental Sciences
Format: Others
Published: Virginia Tech 2017
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Online Access:http://hdl.handle.net/10919/77528
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-775282021-11-03T05:33:38Z Hydrologic and hydrochemical processes on mine spoil fills Clark, Elyse V. Crop and Soil Environmental Sciences Zipper, Carl E. McGuire, Kevin J. Eick, Matthew J. Daniels, W. Lee total dissolved solids coal mining disturbance hydrology reclamation Appalachian surface coal mining operations fracture rocks (termed mine spoils), resulting in the weathering of minerals and release of water-soluble ions to streams. Collectively, the concentration of water-soluble ions in streams is called total dissolved solids (TDS) and streams with elevated TDS often have altered biota. The surficial, subsurface, and discharge properties of mine spoils influence TDS discharge concentrations. This study aimed to improve understanding of how hydrologic and hydrochemical processes occur and function in coal mining areas. These processes were characterized by infiltration and dye staining tests, mine spoil leaching experiments and modeling, and mining-influenced stream discharge monitoring. Results indicate that many factors influence hydrologic and hydrochemical processes in Appalachian coal mining areas, but these processes evolve over time as subsurface flow paths develop, mine rocks weather, and TDS is released from mine spoils. Fourteen years after placement, mean infiltration rates of mine soils reclaimed with trees were statistically greater than areas reclaimed with grasses, and different subsurface flow types were evident, indicating vegetation type influenced hydrologic processes. Specific conductance (SC) leaching patterns from mine spoils conformed to an exponential decay and linear segmented regression model. Maximum SC values (1108 ± 161 µS cm⁻¹) occurred initially during leaching, exponentially decayed, then exhibited linear SC releases (276 ± 25 µS cm⁻¹) that were elevated relative to natural background levels at the end of leaching. Major element (S, Ca, Mg, K, Na) leaching patterns resembled those of SC, whereas trace elements (As, Cd, Cu, Ni, Pb, Se) transitioned to linear release earlier in the leaching period. Mining-influenced stream SC discharge patterns varied by season and by precipitation amounts during storm events. Storm responses were characterized by either infiltration-excess overland flow or delayed SC releases due to internal flow through the VF. Given these results, mining companies wishing to control TDS discharges may be selective and pre-test mine spoils for total S and paste SC to determine TDS-generation potential. Isolation of spoils with high-TDS release potentials (i.e. unweathered sandstones and mudstones) from water-rock contact may help improve TDS discharges. Ph. D. 2017-04-27T08:00:24Z 2017-04-27T08:00:24Z 2017-04-26 Dissertation vt_gsexam:10561 http://hdl.handle.net/10919/77528 In Copyright http://rightsstatements.org/vocab/InC/1.0/ ETD application/pdf application/vnd.openxmlformats-officedocument.wordprocessingml.document Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic total dissolved solids
coal mining
disturbance hydrology
reclamation
spellingShingle total dissolved solids
coal mining
disturbance hydrology
reclamation
Clark, Elyse V.
Hydrologic and hydrochemical processes on mine spoil fills
description Appalachian surface coal mining operations fracture rocks (termed mine spoils), resulting in the weathering of minerals and release of water-soluble ions to streams. Collectively, the concentration of water-soluble ions in streams is called total dissolved solids (TDS) and streams with elevated TDS often have altered biota. The surficial, subsurface, and discharge properties of mine spoils influence TDS discharge concentrations. This study aimed to improve understanding of how hydrologic and hydrochemical processes occur and function in coal mining areas. These processes were characterized by infiltration and dye staining tests, mine spoil leaching experiments and modeling, and mining-influenced stream discharge monitoring. Results indicate that many factors influence hydrologic and hydrochemical processes in Appalachian coal mining areas, but these processes evolve over time as subsurface flow paths develop, mine rocks weather, and TDS is released from mine spoils. Fourteen years after placement, mean infiltration rates of mine soils reclaimed with trees were statistically greater than areas reclaimed with grasses, and different subsurface flow types were evident, indicating vegetation type influenced hydrologic processes. Specific conductance (SC) leaching patterns from mine spoils conformed to an exponential decay and linear segmented regression model. Maximum SC values (1108 ± 161 µS cm⁻¹) occurred initially during leaching, exponentially decayed, then exhibited linear SC releases (276 ± 25 µS cm⁻¹) that were elevated relative to natural background levels at the end of leaching. Major element (S, Ca, Mg, K, Na) leaching patterns resembled those of SC, whereas trace elements (As, Cd, Cu, Ni, Pb, Se) transitioned to linear release earlier in the leaching period. Mining-influenced stream SC discharge patterns varied by season and by precipitation amounts during storm events. Storm responses were characterized by either infiltration-excess overland flow or delayed SC releases due to internal flow through the VF. Given these results, mining companies wishing to control TDS discharges may be selective and pre-test mine spoils for total S and paste SC to determine TDS-generation potential. Isolation of spoils with high-TDS release potentials (i.e. unweathered sandstones and mudstones) from water-rock contact may help improve TDS discharges. === Ph. D.
author2 Crop and Soil Environmental Sciences
author_facet Crop and Soil Environmental Sciences
Clark, Elyse V.
author Clark, Elyse V.
author_sort Clark, Elyse V.
title Hydrologic and hydrochemical processes on mine spoil fills
title_short Hydrologic and hydrochemical processes on mine spoil fills
title_full Hydrologic and hydrochemical processes on mine spoil fills
title_fullStr Hydrologic and hydrochemical processes on mine spoil fills
title_full_unstemmed Hydrologic and hydrochemical processes on mine spoil fills
title_sort hydrologic and hydrochemical processes on mine spoil fills
publisher Virginia Tech
publishDate 2017
url http://hdl.handle.net/10919/77528
work_keys_str_mv AT clarkelysev hydrologicandhydrochemicalprocessesonminespoilfills
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