TEMPus VoLA: The timed Epstein multi-pressure vessel at low accelerations

Author:

Capelo H. L.1ORCID,Kühn J.1ORCID,Pommerol A.1ORCID,Piazza D.1,Brändli M.1,Cerubini R.1,Jost B.1,Bodénan J.-D.2ORCID,Planchet T.1,Spadaccia S.1ORCID,Schräpler R.3ORCID,Blum J.3ORCID,Schönbächler M.2ORCID,Mayer L.4ORCID,Thomas N.1ORCID

Affiliation:

1. Space Research and Planetary Sciences Division, Physikalisches Institut, University of Bern, Sidlerstrasse 5, CH-3012 Bern, Switzerland

2. ETH Zurich, Institute of Geochemistry and Petrology, 8092 Zurich, Switzerland

3. Institut fur Geophysik und extraterrestrische Physik, Technische Universitat Braunschweig, Mendelssohnstr. 3, D-38106 Braunschweig, Germany

4. Center for Theoretical Astrophysics and Cosmology, Institute for Computational Science, University of Zurich, Winterthurerstrasse 190, CH-8057 Zurich, Switzerland

Abstract

The field of planetary system formation relies extensively on our understanding of the aerodynamic interaction between gas and dust in protoplanetary disks. Of particular importance are the mechanisms triggering fluid instabilities and clumping of dust particles into aggregates, and their subsequent inclusion into planetesimals. We introduce the timed Epstein multi-pressure vessel at low accelerations, which is an experimental apparatus for the study of particle dynamics and rarefied gas under micro-gravity conditions. This facility contains three experiments dedicated to studying aerodynamic processes: (i) the development of pressure gradients due to collective particle–gas interaction, (ii) the drag coefficients of dust aggregates with variable particle–gas velocity, and (iii) the effect of dust on the profile of a shear flow and resultant onset of turbulence. The approach is innovative with respect to previous experiments because we access an untouched parameter space in terms of dust particle packing fraction, and Knudsen, Stokes, and Reynolds numbers. The mechanisms investigated are also relevant for our understanding of the emission of dust from active surfaces, such as cometary nuclei, and new experimental data will help interpreting previous datasets (Rosetta) and prepare future spacecraft observations (Comet Interceptor). We report on the performance of the experiments, which has been tested over the course of multiple flight campaigns. The project is now ready to benefit from additional flight campaigns, to cover a wide parameter space. The outcome will be a comprehensive framework to test models and numerical recipes for studying collective dust particle aerodynamics under space-like conditions.

Funder

Swiss National Science Foundation NCCR PlanetS

Deutsches Zentrum für Luft- und Raumfahrt

Publisher

AIP Publishing

Subject

Instrumentation

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