Estimating a planetary magnetic field with time-dependent global MHD simulations using an adjoint approach
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Published:2017-05-09
Issue:3
Volume:35
Page:613-628
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ISSN:1432-0576
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Container-title:Annales Geophysicae
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language:en
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Short-container-title:Ann. Geophys.
Author:
Nabert Christian,Othmer Carsten,Glassmeier Karl-Heinz
Abstract
Abstract. The interaction of the solar wind with a planetary magnetic field causes electrical currents that modify the magnetic field distribution around the planet. We present an approach to estimating the planetary magnetic field from in situ spacecraft data using a magnetohydrodynamic (MHD) simulation approach. The method is developed with respect to the upcoming BepiColombo mission to planet Mercury aimed at determining the planet's magnetic field and its interior electrical conductivity distribution. In contrast to the widely used empirical models, global MHD simulations allow the calculation of the strongly time-dependent interaction process of the solar wind with the planet. As a first approach, we use a simple MHD simulation code that includes time-dependent solar wind and magnetic field parameters. The planetary parameters are estimated by minimizing the misfit of spacecraft data and simulation results with a gradient-based optimization. As the calculation of gradients with respect to many parameters is usually very time-consuming, we investigate the application of an adjoint MHD model. This adjoint MHD model is generated by an automatic differentiation tool to compute the gradients efficiently. The computational cost for determining the gradient with an adjoint approach is nearly independent of the number of parameters. Our method is validated by application to THEMIS (Time History of Events and Macroscale Interactions during Substorms) magnetosheath data to estimate Earth's dipole moment.
Funder
Deutsches Zentrum für Luft- und Raumfahrt
Publisher
Copernicus GmbH
Subject
Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Atmospheric Science,Geology,Astronomy and Astrophysics
Reference37 articles.
1. Alexeev, I. I., Belenkaya, E. S., Slavin, J. A., Korth, H., Anderson, B. J., Baker, D. N., Boardsen, S. A., Johnson, C. L., Purucker, M. E., Sarantos, M., and Solomon, S. C.: Mercury's magnetospheric magnetic field after the first two MESSENGER flybys, Icarus, 209, 23–39, https://doi.org/10.1016/j.icarus.2010.01.024, 2010. 2. Angelopoulos, V.: The THEMIS Mission, Space Sci. Rev., 141, 5–34, https://doi.org/10.1007/s11214-008-9336-1, 2008. 3. Benkhoff, J., van Casteren, J., Hayakawa, H., Fujimoto, M., Laakso, H., Novara, M., Ferri, P., Middleton, H. R., and Ziethe, R.: BepiColombo – Comprehensive exploration of Mercury: Mission overview and science goals, Planet. Space Sci., 58, 2–20, https://doi.org/10.1016/j.pss.2009.09.020, 2010. 4. Clauser, C.: Einführung in die Geophysik, Springer Spektrum, Berlin Heidelberg, 2016. 5. Dean, J. and Ghemawat, S.: MapReduce: Simplified data processing on large clusters, in: Proceedings of Operating Systems Design and Implementation, 137–150, San Francisco, 2004.
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