Accès ouvert déclaré
2023
article
Euclid preparation
M. Schirmer, Konrad Thürmer, Bert Bras, M. Cropper, J Martín-Fleitas, Yann Goueffon, R. Kohley, A. Mora, M. Portaluppi, A. Short, Szilvia Szmolka, Luis M. Gaspar Venancio, M. Altmann, Z. Balog, U. Bastian, M. Biermann, D. Busonero, C. Fabricius, F. Grupp, C. Jordi, W. Löffler, A. Sagristà Sellés, N. Aghanim, A. Amara, Luca Amendola, Marco Baldi, C. Bodendorf, D. Bonino, E. Branchini, M. Brescia, J. Brinchmann, S. Camera, Gian Paolo Candini, V. Capobianco, C. Carbone, J. Carretero, M. Castellano, S. Cavuoti, A. Cimatti, R. Clédassou, G. Congedo, Christopher J. Conselice, L. Conversi, Y. Copin, L. Corcione, F. Courbin, A. Da Silva, H. Degaudenzi, A.M Di Giorgio, J. Dinis, F. Dubath, X. Dupac, S. Dusini, S. Farrens, S. Ferriol, M. Frailis, E. Franceschi, M. Fumana, S. Galeotta, B. Garilli, W. Gillard, B. Gillis, C. Giocoli, S. V. H. Haugan, Henk Hoekstra, W. A. Holmes, F. Hormuth, A. Hornstrup, K. Jahnkę, S. Kermiche, A. Kiessling, M. Kilbinger, T. Kitching, M. Kunz, H. Kurki‐Suonio, S. Ligori, P. B. Lilje, I. Lloro, E. Maiorano, O. Mansutti, O. Marggraf, K. Markovič, F. Marulli, R. Massey, E. Medinaceli, S. Mei, Y. Mellier, M. Meneghetti, E. Merlin, G. Meylan, M. Moresco, L. Moscardini, E. Munari, R. Nakajima, S.-M Niemi, J.W Nightingale, T. Nutma, S. Paltani, F. Pasian, V. Pettorino, S. Pires, G. Polenta, M. Poncet, L.A Popa, F. Raison, A. Renzi, J. Rhodes, G. Riccio, E. Romelli, M. Roncarelli, E. Rossetti, R. P. Saglia, D. Sapone, B. Sartoris, P. C. Schneider, A. Secroun, G. Seidel, S. Serrano, C. Sirignano, G. Sirri, J. Skottfelt, L. Stančo, P. Tallada-Crespí, A.N Taylor, I. Tereno, R. Toledo-Moreo, I. Tutusaus, E. A. Valentijn, L. Valenziano, T. Vassallo, Yun Wang, J. Weller, A. Zacchei, J. Zoubian, S. Andreon, S. Bardelli, P Battaglia, E. Bozzo, C Colodro-Conde, M. Farina, J. Graciá‐Carpio, E. Keihänen, V. Lindholm, D. Maino, N. Mauri, N. Morisset, V Scottez, M. Tenti, E. Zucca, Y. Akrami, C. Baccigalupi, M. Ballardini, A. Biviano, Alain Blanchard, Alejandro S. Borlaff, C. Burigana, R. Cabanac, A. Cappi, C.S Carvalho, Santiago Casas, G. Castignani, T. Castro, K. C. Chambers, Asantha Cooray, J. Coupon, H. M. Courtois, Jean-Gabriel Cuby, S. Davini, G. De Lucia, G. Desprez, S. Di Domizio, H. Dole, J. A. Escartín, S. Escoffier, I. Ferrero, L. Gabarra, K. Ganga, J. García-Bellido, Koshy George, F. Giacomini, G. Gozaliasl, H. Hildebrandt, J. J. E. Kajava, V. Kansal, C.C Kirkpatrick, L Legrand, P. Liebing, A. Loureiro, G. Maggio, M. Magliocchetti, G Mainetti, S. Marcin, M. Martinelli, N. Martinet, C. J. A. P. Martins, S Matthew, M. Maturi, L. Maurin, R. B. Metcalf, Pierluigi Monaco, G. Morgante, S. Nadathur, Achille Nucita, L. Patrizii, V. Popa, D. Potter, M. Pöntinen, Ariel G. Sánchez, Z. Sakr, Aurel Schneider, M. Sereno, A. Shulevski, P. Šimon, J Steinwagner, Romain Teyssier, J. Väliviita
10Citations signalées, ce qui n’est pas une note de qualité
65Institutions déclarées
9Pays d’affiliation déclarés
Rattachement africain : ch, it, nl, fr, es, gb, de, pt, no.
Niveau de preuve : code pays fourni par la source.
Le résumé fourni par la source
Material outgassing in a vacuum leads to molecular contamination, a well-known problem in spaceflight. Water is the most common contaminant in cryogenic spacecraft, altering numerous properties of optical systems. Too much ice means that Euclid’s calibration requirements cannot be met anymore. Euclid must then be thermally decontaminated, which is a month-long risky operation. We need to understand how ice affects our data to build adequate calibration and survey plans. A comprehensive analysis in the context of an astrophysical space survey has not been done before. In this paper we look at other spacecraft with well-documented outgassing records. We then review the formation of thin ice films, and find that for Euclid a mix of amorphous and crystalline ices is expected. Their surface topography – and thus optical properties – depend on the competing energetic needs of the substrate-water and the water-water interfaces, and they are hard to predict with current theories. We illustrate that with scanning-tunnelling and atomic-force microscope images of thin ice films. Sophisticated tools exist to compute contamination rates, and we must understand their underlying physical principles and uncertainties. We find considerable knowledge errors on the diffusion and sublimation coefficients, limiting the accuracy of outgassing estimates. We developed a water transport model to compute contamination rates in Euclid, and find agreement with industry estimates within the uncertainties. Tests of the Euclid flight hardware in space simulators did not pick up significant contamination signals, but they were also not geared towards this purpose; our in-flight calibration observations will be much more sensitive. To derive a calibration and decontamination strategy, we need to understand the link between the amount of ice in the optics and its effect on the data. There is little research about this, possibly because other spacecraft can decontaminate more easily, quenching the need for a deeper understanding. In our second paper, we quantify the impact of iced optics on Euclid’s data.
Ce résumé expose les affirmations des auteurs. BNTIC ne l’interprète pas comme une validation indépendante des résultats.
Le contrôle bibliographique ouvert
DOI retrouvé dans Crossref DOI retrouvé, mais le titre doit être comparé manuellement.
- Titre Crossref
- <i>Euclid</i> preparation
- Date Crossref
- 01/07/2023
- Éditeur
- EDP Sciences
- Type
- journal-article
Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude, et il ne compte pas comme une seconde source scientifique indépendante.
Les institutions déclarées
Une affiliation ne permet pas de déduire la nationalité d’un auteur.
Les sujets associés
Astro and Planetary ScienceNuclear physics research studiesAdvanced Chemical Physics Studies