Lake sediment geochemical methods in the Canadian Shield, Cordillera and Appalachia

Author:

Cook Stephen J.12,McConnell John W.3

Affiliation:

1. British Columbia Geological Survey 5-1810 Blanshard Street, Victoria, British Columbia V8V 1X4, Canada stephencook@angloamerican.ca

2. Hudson Bay Exploration and Development Co. Limited 800-700 West Pender St., Vancouver, British Columbia V6C 1G8, Canada

3. Geological Survey of Newfoundland and Labrador P.O. Box 8700, St. John’s, Newfoundland A1B 4J6, Canada

Abstract

AbstractLake sediment geochemistry has been used in Canada since the 1970s for mineral exploration and resource evaluation in glaciated regions of Appalachia, the Canadian Shield and the western Cordillera which are of low to moderate relief. Geochemical signatures of bedrock and mineralization within a lake’s catchment basin are commonly reflected in the chemical constituents of the organic-rich Holocene sediment which has been transported from source by a combination of mechanical and hydromorphic processes. Lake sediment geochemical surveys have been used successfully to discover base metal, Au, Mo, W, Sb, Sn, U, and REE mineralization. The scale of such surveys determines the size and density of lake sediment sampling. In regional surveys, large lithological targets such as greenstone belts or chemically distinctive intrusives can be identified by low density (c. 1 per 10–15 km2) sampling of relatively larger lakes. Smaller targets such as mineralized areas require higher density (c. 1 per 4–5 km2) sampling using a greater number of smaller lakes. Regional surveys are typically helicopter-borne, and employ a tubular grab sampler which permits rapid reconnaissance-scale coverage of large areas. Centre-basin profundal lake sediment, or gyttja, is an ideal sample medium because of its homogeneity and abundance of fine-grained organic matter, which complexes with many trace elements. Multi-element analytical techniques in common use include inductively coupled plasma emission spectrometry (ICP-ES), ICP mass spectrometry (ICP-MS) and instrumental neutron activation analysis (INAA). Reliability of data is assessed by analysis of known standards, site duplicates and sample splits. PC statistical software packages facilitate the interpretation of geochemical data, and desktop GIS packages aid in further interpretation and generation of multi-layer maps.

Publisher

Geological Society of London

Subject

Geology,Ocean Engineering,Water Science and Technology

Reference77 articles.

1. Allan R. J. Lynch J. J. Lund N. G. (1972) Regional Geochemical Exploration in the Coppermine River Area, District of Mackenzie; a Feasibility Study in Permafrost Terrain, Geological Survey of Canada Paper, 71–33.

2. Bellefontaine K. A. Legun A. Massey N. Desjardins P. (1995) Digital Geological Compilation of Northeast British Columbia — Southern Half (NTS 83D, E; 93F, G, H, I, J, K, N, O, P), British Columbia Ministry of Energy, Mines and Petroleum Resources Open File, 1995–24.

3. Bonham-Carter G. F. (1994) Geographic Information Systems for Geoscientists: Modeling with GIS (Pergamon/Elsevier Science Publications, Oxford).

4. Burns J. F. (1978) Kuyakuz Lake, B.C. Ministry of Environment, Lands and Parks, unpublished Fisheries Branch Report.

5. The Bakos deposit discovery — a case history;Chapman,1990

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