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Michele Armano

Researcher at European Space Agency

Publications -  65
Citations -  1963

Michele Armano is an academic researcher from European Space Agency. The author has contributed to research in topics: Pathfinder & Gravitational wave. The author has an hindex of 17, co-authored 62 publications receiving 1398 citations. Previous affiliations of Michele Armano include European Space Research and Technology Centre.

Papers
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In-flight thermal experiments for LISA pathfinder: simulating temperature noise at the inertial sensors

Ferran Gibert, +90 more
TL;DR: In this paper, the authors report on how these kind of thermal diagnostics experiments were simulated in the last LPF Simulation Campaign (November, 2013) involving all the LPF Data Analysis team and using an end-to-end simulator of the whole spacecraft.
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Disentangling the magnetic force noise contribution in LISA Pathfinder

Michele Armano, +88 more
TL;DR: In this paper, the authors show the first results on the magnetic experiments during an end-to-end LISA Pathfinder simulation, and describe the methods under development to map the magnetic field on-board.
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Sensor noise in LISA Pathfinder : An extensive in-flight review of the angular and longitudinal interferometric measurement system

TL;DR: A deeper and more complete overview of the full subpicometer interferometer system and its interferometric mission performance under varying operational conditions is provided, allowing a much more detailed view on the noise model.
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Quantitative Analysis of LISA Pathfinder Test Mass Noise

TL;DR: In this article, the authors discuss two main problems associated with the analysis of the data from LISA Pathfinder (LPF): i) Excess noise detection and ii) Noise parameter identification.
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In-flight testing of the injection of the LISA Pathfinder test mass into a geodesic

Daniele Bortoluzzi, +81 more
TL;DR: The experiments showed that the grabbing positioning and release mechanism, working in its nominal conditions, is capable of releasing the TM into free-fall fulfilling the very strict constraint imposed on the TM residual velocity, in order to allow its capture on behalf of the electrostatic actuation.