Prediction and removal of rotation noise in airborne EM systems
Terence Kratzer 1 2 James Macnae 11 RMIT University, GPO Box 2476, Melbourne, Vic. 3001, Australia.
2 Corresponding author. Email: terence.kratzer@rmit.edu.au
Exploration Geophysics 45(3) 147-153 https://doi.org/10.1071/EG13064
Submitted: 23 July 2013 Accepted: 28 January 2014 Published: 12 March 2014
Abstract
We aim to eliminate or reduce significant impediments to conductive target detection and conductive cover penetration in airborne electromagnetic (AEM) systems. Existing limitations come from the very high noise encountered at low base frequencies, caused by rotations of vector magnetic field sensors in the Earth’s magnetic field. We use the output of tri-axial rotation-rate sensors to predict and subtract the rotation noise from rigidly coupled ARMIT magnetic field sensors. The approach is successful in reducing rotation noise by one to two orders of magnitude at low frequencies.
Key words: airborne EM, low-frequency, motion noise, rotation noise.
References
Barringer, A. R., 1963, Mounting system for the isolation of rotational vibrations: US Patent 3115326.Buselli, G., Hwang, H. S., and Pik, J. P., 1998, AEM noise reduction with remote referencing: Exploration Geophysics, 29, 71–76
| AEM noise reduction with remote referencing:Crossref | GoogleScholarGoogle Scholar |
Davis, A., Macnae, J., and Robb, T., 2006, Pendulum motion in airborne HEM systems: Exploration Geophysics, 37, 355–362
| Pendulum motion in airborne HEM systems:Crossref | GoogleScholarGoogle Scholar |
King, A., 2007, Review of geophysical technology for Ni-Cu-PGE deposits, in B. Milkereit, ed., Proceedings of Exploration 07: fifth decennial international conference on mineral exploration: 647–665.
Kratzer, T., and Macnae, J. C., 2012, Induced polarization in airborne EM: Geophysics, 77, E317–E327
| Induced polarization in airborne EM:Crossref | GoogleScholarGoogle Scholar |
Kratzer, T., and Vrbancich, J., 2007, Real-time kinematic tracking of towed AEM birds: Exploration Geophysics, 38, 132–143
| Real-time kinematic tracking of towed AEM birds:Crossref | GoogleScholarGoogle Scholar |
Kratzer, T., Macnae, J., and Mutton, P., 2013, Detection and correction of SPM effects in airborne EM surveys: Exploration Geophysics, 44, 6–15
| Detection and correction of SPM effects in airborne EM surveys:Crossref | GoogleScholarGoogle Scholar |
Kuzmin, P., and Morrison, E., 2009, Double-suspension receiver coil system and apparatus: US Patent 8030933.
Lee, J., Turner, R., Downey, M., Maddever, A., Dart, D., Foley, C., Binks, R., Lewis, C., Murray, W., and Panjkovic, G., 2001, Experience with SQUID magnetometers in airborne TEM surveying: Exploration Geophysics, 32, 9–13
| Experience with SQUID magnetometers in airborne TEM surveying:Crossref | GoogleScholarGoogle Scholar |
Macnae, J., 2007, Developments in broadband airborne electromagnetics in the past decade, in B. Milkereit, ed., Proceedings of Exploration 07: fifth decennial international conference on mineral exploration: 387–398.
Macnae, J., 2012, Design and testing of ARMIT magnetic field sensors for EM systems: ASEG Extended Abstracts, 2012, 1–4
| Design and testing of ARMIT magnetic field sensors for EM systems:Crossref | GoogleScholarGoogle Scholar |
Macnae, J., and Kratzer, T., 2013, Joint sensing of B and dB/dt responses: ASEG Extended Abstracts, 2013, 1–4
Macnae, J. C., Lamontagne, Y., and West, G. F., 1984, Noise processing techniques for time-domain EM systems: Geophysics, 49, 934–948
| Noise processing techniques for time-domain EM systems:Crossref | GoogleScholarGoogle Scholar |
McCracken, K., Oristaglio, M., and Hohmann, G., 1986, Minimization of noise in electromagnetic exploration systems: Geophysics, 51, 819–832
| Minimization of noise in electromagnetic exploration systems:Crossref | GoogleScholarGoogle Scholar |
Morrison, E., Kuzmin, P., and Tishin, P., 2007, Airborne electromagnetic time domain system, computer product and method: US Patent 7157914 B2.
Munkholm, M. S., 1997, Motion-induced noise from vibration of a moving TEM detector coil: characterization and suppression: Journal of Applied Geophysics, 37, 21–29
| Motion-induced noise from vibration of a moving TEM detector coil: characterization and suppression:Crossref | GoogleScholarGoogle Scholar |
Smiarowski, A., Macnae, J., and Bailey, R., 2010, Predictive filter calculation of primary fields in a fixed-wing time-domain AEM system: Geophysics, 75, F97–F106
| Predictive filter calculation of primary fields in a fixed-wing time-domain AEM system:Crossref | GoogleScholarGoogle Scholar |
Turner, R., Maddever, R., and van den Heuvel, R., 2002, Apparatus for reducing rotation of a towed airborne article: US Patent 6369573 B1.
Vrbancich, J., Fullagar, P., and Macnae, J., 2000, Bathymetry and seafloor mapping via one dimensional inversion and conductivity depth imaging of AEM: Exploration Geophysics, 31, 603–610
| Bathymetry and seafloor mapping via one dimensional inversion and conductivity depth imaging of AEM:Crossref | GoogleScholarGoogle Scholar |
Vrbancich, J., Macnae, J., Sattel, D., and Wolfgram, P., 2005, A case study of AEM bathymetry in Geographe Bay and over Cape Naturaliste, Western Australia, Part 2: 25 and 12.5 Hz GEOTEM: Exploration Geophysics, 36, 381–392
| A case study of AEM bathymetry in Geographe Bay and over Cape Naturaliste, Western Australia, Part 2: 25 and 12.5 Hz GEOTEM:Crossref | GoogleScholarGoogle Scholar |