1887
Volume 47, Issue 4
  • ISSN: 0812-3985
  • E-ISSN: 1834-7533

Abstract

[

In environments of suitable conductivity contrast, airborne electromagnetic surveys can map variations in the depth to bedrock for mine infrastructure planning. A survey in northern Finland illustrates the success of this approach for guiding the placement of a mine crusher and related infrastructure.

,

Airborne electromagnetic (AEM) surveys with near-surface vertical resolution provide rapid and comprehensive coverage of a mine site ahead of infrastructure planning. In environments of sufficient electrical conductivity contrast, the data will map variations in the depth to bedrock, providing guidance for expected excavation depths for solid building foundations, or mine pre-strip volumes. Continuous coverage overcomes the severe areal limitation of relying only on drilling and test pits. An AEM survey in northern Finland illustrates the success of this approach for guiding the placement of a mine crusher and related infrastructure. The cost of the EM data collection and interpretation is insignificant in comparison to the US$300 million capital cost of the mine infrastructure. This environment of shallow glacial cover challenges the limits of AEM resolution, yet analysis of subsequently collected three-dimensional (3D) surface seismic data and actual pre-strip excavation depths reinforces the predictive, but qualitative, mapping capability of the AEM. It also highlights the need to tune the modelling via petrophysics for the specific goal of the investigation, and exposes the limitations of visual drill core logging.

]
Loading

Article metrics loading...

/content/journals/10.1071/EG16033
2016-12-01
2026-01-15
Loading full text...

Full text loading...

References

  1. Auken E. Christiansen A. V. Westergaard J. H. Kirkegaard C. Foged N. Viezzoli A. 2009 An integrated processing scheme for high-resolution airborne electromagnetic surveys, the SkyTEM system: Exploration Geophysics 40 184 192 10.1071/EG08128
    https://doi.org/10.1071/EG08128 [Google Scholar]
  2. Christensen N. B. Reid J. E. Halkjær M. 2009 Fast, laterally smooth inversion of airborne transient electromagnetic data: Near Surface Geophysics 7 599 612 10.3997/1873‑0604.2009047
    https://doi.org/10.3997/1873-0604.2009047 [Google Scholar]
  3. Lappalainen, M., and White, G., 2010, 43-101 Technical Report on Mineral Resources of the Kevitsa Ni-Cu-PGE Deposit, Finland. First Quantum Minerals Ltd. (128 pp. plus appendices). Report filed 12 May 2011 on www.sedar.com.
  4. Malehmir A. Juhlin C. Wijns C. Urosevic M. Valasti P. Koivisto E. 2012 3D reflection seismic imaging for open-pit mine planning and deep exploration in the Kevitsa Ni-Cu-PGE deposit, northern Finland: Geophysics 77 WC95 WC108 10.1190/2012‑0724‑SPSEIN.1
    https://doi.org/10.1190/2012-0724-SPSEIN.1 [Google Scholar]
  5. Sørensen K. I. Auken E. 2004 SkyTEM – a new high-resolution helicopter transient electromagnetic system: Exploration Geophysics 35 194 202 10.1071/EG04194
    https://doi.org/10.1071/EG04194 [Google Scholar]
/content/journals/10.1071/EG16033
Loading
/content/journals/10.1071/EG16033
Loading

Data & Media loading...

Most Cited This Month Most Cited RSS feed

This is a required field
Please enter a valid email address
Approval was a Success
Invalid data
An Error Occurred
Approval was partially successful, following selected items could not be processed due to error