Environmental processes that control the chemical recovery of arsenic impacted northern landscapes

Arsenic (As) is a contaminant of global concern because of its toxic and carcinogenic properties. Waste streams associated with gold mining activities have resulted in extensive As pollution of landscapes worldwide. The Yellowknife area in the Northwest Territories, Canada was contaminated by more t...

Full description

Bibliographic Details
Main Author: Palmer, Michael J.
Format: Thesis
Language:unknown
Published: 2022
Subjects:
Online Access:https://curve.carleton.ca/ba48d9e8-bde5-4e63-a23c-9d0af7b9cb1c
https://doi.org/10.22215/etd/2022-14987
https://ocul-crl.primo.exlibrisgroup.com/permalink/01OCUL_CRL/j2o5om/alma991022997632505153
id ftcarletonuniv:oai:curve.carleton.ca:40576
record_format openpolar
spelling ftcarletonuniv:oai:curve.carleton.ca:40576 2023-05-15T17:46:45+02:00 Environmental processes that control the chemical recovery of arsenic impacted northern landscapes Palmer, Michael J. 2022 https://curve.carleton.ca/ba48d9e8-bde5-4e63-a23c-9d0af7b9cb1c https://doi.org/10.22215/etd/2022-14987 https://ocul-crl.primo.exlibrisgroup.com/permalink/01OCUL_CRL/j2o5om/alma991022997632505153 unknown https://curve.carleton.ca/ba48d9e8-bde5-4e63-a23c-9d0af7b9cb1c https://doi.org/10.22215/etd/2022-14987 https://ocul-crl.primo.exlibrisgroup.com/permalink/01OCUL_CRL/j2o5om/alma991022997632505153 Thesis/Dissertation 2022 ftcarletonuniv https://doi.org/10.22215/etd/2022-14987 2022-08-13T23:04:48Z Arsenic (As) is a contaminant of global concern because of its toxic and carcinogenic properties. Waste streams associated with gold mining activities have resulted in extensive As pollution of landscapes worldwide. The Yellowknife area in the Northwest Territories, Canada was contaminated by more than half a century of As-bearing atmospheric mining emissions from the roasting of arsenopyrite ore during historical gold ore processing (1938-1999). The environmental footprint from legacy mining emissions persists on the landscape and questions remain about the distribution and fate of As in the local environment. The principal objective of this thesis was to improve our understanding of the environmental processes that control the chemical recovery of As impacted landscapes. Individual field studies were designed to address: a) the distribution, source, and solid-phase speciation of As in Yellowknife area soils; b) the seasonal variation of As in surface waters of shallow lakes; c) the influence of contrasting winter hydrology on the geochemical cycling of As in a shallow lake; and d) the seasonal contributions of terrestrial and aquatic fluxes of As in a contaminated watershed. The combination of mineralogical, geospatial, and statistical tools provided a novel method for determination of geochemical background in soils for areas impacted by legacy mining emissions, including recent unambiguous identification of anthropogenically impacted soils. Year-round investigations of surface waters, sediments, and sediment porewaters provided new insights into seasonal and under-ice processes that influence the mobility and geochemical cycling of As. The evaluation of terrestrial and aquatic As fluxes across a contaminated watershed revealed continued transport of legacy arsenic from catchment soils to lakes, and hydrology mediated within-lake processing and export of arsenic. Thus, climate and hydrology were found to play a fundamental role in the chemical recovery of As impacted lakes. Thesis Northwest Territories Yellowknife CURVE - Carleton University Research Virtual Environment Northwest Territories Yellowknife Canada
institution Open Polar
collection CURVE - Carleton University Research Virtual Environment
op_collection_id ftcarletonuniv
language unknown
description Arsenic (As) is a contaminant of global concern because of its toxic and carcinogenic properties. Waste streams associated with gold mining activities have resulted in extensive As pollution of landscapes worldwide. The Yellowknife area in the Northwest Territories, Canada was contaminated by more than half a century of As-bearing atmospheric mining emissions from the roasting of arsenopyrite ore during historical gold ore processing (1938-1999). The environmental footprint from legacy mining emissions persists on the landscape and questions remain about the distribution and fate of As in the local environment. The principal objective of this thesis was to improve our understanding of the environmental processes that control the chemical recovery of As impacted landscapes. Individual field studies were designed to address: a) the distribution, source, and solid-phase speciation of As in Yellowknife area soils; b) the seasonal variation of As in surface waters of shallow lakes; c) the influence of contrasting winter hydrology on the geochemical cycling of As in a shallow lake; and d) the seasonal contributions of terrestrial and aquatic fluxes of As in a contaminated watershed. The combination of mineralogical, geospatial, and statistical tools provided a novel method for determination of geochemical background in soils for areas impacted by legacy mining emissions, including recent unambiguous identification of anthropogenically impacted soils. Year-round investigations of surface waters, sediments, and sediment porewaters provided new insights into seasonal and under-ice processes that influence the mobility and geochemical cycling of As. The evaluation of terrestrial and aquatic As fluxes across a contaminated watershed revealed continued transport of legacy arsenic from catchment soils to lakes, and hydrology mediated within-lake processing and export of arsenic. Thus, climate and hydrology were found to play a fundamental role in the chemical recovery of As impacted lakes.
format Thesis
author Palmer, Michael J.
spellingShingle Palmer, Michael J.
Environmental processes that control the chemical recovery of arsenic impacted northern landscapes
author_facet Palmer, Michael J.
author_sort Palmer, Michael J.
title Environmental processes that control the chemical recovery of arsenic impacted northern landscapes
title_short Environmental processes that control the chemical recovery of arsenic impacted northern landscapes
title_full Environmental processes that control the chemical recovery of arsenic impacted northern landscapes
title_fullStr Environmental processes that control the chemical recovery of arsenic impacted northern landscapes
title_full_unstemmed Environmental processes that control the chemical recovery of arsenic impacted northern landscapes
title_sort environmental processes that control the chemical recovery of arsenic impacted northern landscapes
publishDate 2022
url https://curve.carleton.ca/ba48d9e8-bde5-4e63-a23c-9d0af7b9cb1c
https://doi.org/10.22215/etd/2022-14987
https://ocul-crl.primo.exlibrisgroup.com/permalink/01OCUL_CRL/j2o5om/alma991022997632505153
geographic Northwest Territories
Yellowknife
Canada
geographic_facet Northwest Territories
Yellowknife
Canada
genre Northwest Territories
Yellowknife
genre_facet Northwest Territories
Yellowknife
op_relation https://curve.carleton.ca/ba48d9e8-bde5-4e63-a23c-9d0af7b9cb1c
https://doi.org/10.22215/etd/2022-14987
https://ocul-crl.primo.exlibrisgroup.com/permalink/01OCUL_CRL/j2o5om/alma991022997632505153
op_doi https://doi.org/10.22215/etd/2022-14987
_version_ 1766150571177279488