Title :
Particle Swarm Optimization for Multiple Dipole Modeling of Space Equipment
Author :
Carrubba, Elisa ; Junge, Axel ; Marliani, Filippo ; Monorchio, Agostino
Author_Institution :
Dept. of Inf. Eng., Univ. of Pisa, Pisa, Italy
Abstract :
An advanced modeling algorithm based on particle swarm optimization (PSO) has been developed to solve multiple dipole modeling (MDM) problems in space applications. MDM is a method to represent spacecraft units as a set of equivalent magnetic dipoles able to reconstruct, in the far-field distance, the same magnetostatic field. This procedure allows preparing a magnetic model of the spacecraft during design and development phases. Moreover, it allows refined prediction of magnetic cleanliness for space missions with equipment susceptible to magnetic fields. Indeed, owing to the increase of missions requiring magnetostatic cleanliness, such characterization becomes increasingly important. To validate the PSO procedure, synthetic data have been initially used, generated using a software simulator. Algorithm performance has been tested through measured data acquired using the Mobile Coil Facility located at the European Space Research and Technology Centre in The Netherlands. Starting from measured data, the algorithm iteratively identifies the values of the unknowns, positions, and magnetic moments of the equivalent dipoles that best match the measured field. Since the problem is ill posed, several solutions are possible. To develop a reliable algorithm, some test cases have been analyzed where the expected solution is known. This allowed improving the algorithm leading to satisfying results.
Keywords :
aerospace instrumentation; aerospace testing; hygiene; inverse problems; magnetic field measurement; magnetic moments; magnetostatics; particle swarm optimisation; space vehicles; European Space Research and Technology Centre; MDM problems; PSO procedure; advanced modeling algorithm; equivalent magnetic dipole; ill pose problem; magnetic field measurement; magnetic model; magnetostatic cleanliness; magnetostatic field; multiple dipole modeling problems; particle swarm optimization; software simulator; space applications; space equipment susceptibility; space missions; spacecraft units; Aerospace testing; Inverse problems; Magnetic field measurement; Magnetic moments; Particle swarm optimization; Space vehicles; Aerospace testing; inverse problem; magnetic field measurement; magnetic moments; particle swarm optimization (PSO);
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2014.2334277