“MicroMED” Optical Particle Counter: From Design to Flight Model

Author:

Scaccabarozzi DiegoORCID,Saggin BortolinoORCID,Somaschini Riccardo,Magni Marianna,Valnegri Pietro,Esposito Francesca,Molfese Cesare,Cozzolino FabioORCID,Mongelluzzo GiuseppeORCID

Abstract

MicroMED (Micro Martian Environmental Dust Systematic Analyzer (MEDUSA)) instrument was selected for the ExoMars 2020 mission to study the airborne dust on the red planet through in situ measurements of the size distribution and concentration. This characterization has never been done before and would have a strong impact on the understanding of Martian climate and Aeolian processes on Mars. The MicroMED is an optical particle counter that exploits the measured intensity of light scattered by dust particles when crossing a collimated laser beam. The measurement technique is well established for laboratory and ground applications but in order to be mounted on the Dust Suite payload within the framework of ExoMars 2020 mission, the instrument must be compatible with harsh mechanical and thermal environments and the tight mass budget of the mission payload. This work summarizes the thermo-mechanical design of the instrument, the manufacturing of the flight model and its successful qualification in expected thermal and mechanical environments.

Funder

Agenzia Spaziale Italiana

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

Cited by 13 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Structural Optimization of MicroMED Dust Analyzer;Applied Sciences;2023-11-29

2. Assessment of the Measurement Uncertainty for Amplitude-dependent Single Optical Particle Counters;2023 IEEE 10th International Workshop on Metrology for AeroSpace (MetroAeroSpace);2023-06-19

3. Thermal Testing of Bonded Joints for a Hyper Hemispheric Panoramic Camera;2023 IEEE 10th International Workshop on Metrology for AeroSpace (MetroAeroSpace);2023-06-19

4. Dust Complex for Studying the Dust Particle Dynamics in the Near-Surface Atmosphere of Mars;Solar System Research;2022-12

5. Optimized Design and Implementation of Digital Lock-In for Planetary Exploration Sensors;IEEE Sensors Journal;2022-12-01

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