1887
24th International Geophysical Conference and Exhibition – Geophysics and Geology Together for Discovery
  • ISSN: 2202-0586
  • E-ISSN:

Abstract

Regional scale fault structures are considered a first order control on hydrothermal ore systems. Recognition and delineation of such features is essential for search space reduction and project selection in exploration. The New England Orogen in northeastern New South Wales has significant potential for the discovery of new hydrothermal ore systems. However, limits to interpretation of broad scale geophysics in the region and limited exposure for ground-based mapping have hampered the recognition of the first order fault architecture in many areas.

As part of the Geological Survey of New South Wales 3D mapping program, we aim to further the understanding of strike extensive and depth penetrative regional scale fault architecture in the southern New England Orogen. The workflow for constraining the regional 3D fault architecture involves integrating a limited number of deep seismic lines with broader gravity and magnetic wavelet-based multiscale edges. All the geophysical data sets are further constrained by the Geological Survey of New South Wales’ seamless geology mapping and surface structural orientation data. The work to date demonstrates correlation between the lateral position of multiscale edges and their dip inferred from upward continuation, with steeper dipping structures interpreted in seismic lines. Strike orientations of edges, or systematic breaks in edges, are broadly consistent with structural orientations previously recognised in mapping, but often not at the true regional scale as suggested by edge continuity. Known hydrothermal ore systems in the southern New England Orogen display a strong correlation with the deeply penetrating edges.

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/content/journals/10.1071/ASEG2015ab174
2015-12-01
2026-01-22
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References

  1. Archibald, N.J., Gow, P. and Boschetti, F., 1999, Multiscale edge analysis of potential field data. Exploration Geophysics, 30, 38-44.
  2. Austin, J.R. and Blenkinsop, T.G., 2008, The Cloncurry Lineament: Geophysical and geological evidence for a deep crustal structure in the Eastern Succession of the Mount Isa Inlier. Precambrian Research, 163, 50-68.
  3. Betts, P.G. and Lister, G.S., 2002, Geodynamically indicated targeting strategy for shale hosted massive sulphide Pb-Zn-Ag mineralisation in the Western Fold Belt, Mount Isa terrane. Australian Journal of Earth Sciences, 49, 985-1010.
  4. Bierline, F.P., Murphy, F.C., Weinberg, R.F. and Lee, T. , 2006, Distribution of orogenic gold deposits in relation to fault zones and gravity gradients: targeting tools applied to the Eastern Goldfields, Yilgarn Craton, Western Australia.
  5. Blenkinsop, T.G., Huddlestone-Holmes, C.R., Foster D.R.W, Edminston, M.A., Lepong, P., Mark, G., Austin, J.R., Murphy, F.C., Ford, A. and Rubenach, M.J., 2008, The crustal scale architecture of the Eastern Succession Mount Isa: The influence of inversion. Precambrian Research, 163, 31-49.
  6. Downes, P.M., Blevin, P.L., Reid, W.J., Barnes, R.G. and Forster, D.B., 2011, Metalogenic Map of New South Wales -1:1 500 000 map. Geological Survey of New South Wales, Resources and Energy NSW, Maitland, Australia.
  7. Groves, D.I., Goldfarc, R.J. Gebre-Mariam, M., Hagermann, S.G. and Robert, F., 1998, Orogenic gold deposits: A proposed classification in the context of their crustal distribution and relationship to other gold deposit types. Ore Geology Reviews, 13, 7-27.
  8. Haynes, D.W., 2002, Giant iron oxide-copper-gold deposits: are they in distinctive geological settings? In: Cooke, D.R. and Pongratz, J. (eds). Giant ore deposits: characteristics, genesis and exploration, CODES Special Publication 4. Hobart, Tasmania, 57-77.
  9. Hornby, P., Boschetti, F. and Horowitz, F., 1999, Analysis of potential field data in the wavelet domain. Geophysical Journal International 137, 175-196.
  10. Lennox, P.G. and Flood, P.G., 1997, Age and structural characterisation of the Texas megafold, southern New England Orogen, eastern Australia. In: Ashley. P.M. & Flood, P.G. (eds.) Tectonics and metallogenesis of the New England orogen, University of New England, Armidale: 161-177.
  11. Murphy, F.C. and Russell-Head, D. 2006. Geoscope Version 1.11 Release Notes. Predictive mineral discovery*CRC (unpubl).
  12. Murphy, F.C., Rawling, T.J., Wilson, C.J.L., Dugdale L.J., and Miller, J.McL., 2007, 3D structural modelling and implications for targeting gold mineralisation in western Victoria. Australian Journal of Earth Sciences, 53, 875-889.
  13. Murphy, F.C., 2008, Structural Architecture, Potential Field Gradients and Metal Distributions in the Tasmanides of Victoria and New South Wales. In: Rawling, T.J. (ed) Project T5 Final Report August 2008: A three dimensional architectural, plumbing and mineral system analysis of the Tasmanides Terrane of eastern Australia. Predictive mineral discovery*CRC.
  14. Offer, R. and Foster, D.A., 2008, Timing and development of oroclines in the southern New England Orogen, New South Wales. Australian Journal of Earth Sciences, 55(3), 331-340.
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