Your browser doesn't support javascript.
loading
Observations, Meteorites, and Models: A Preflight Assessment of the Composition and Formation of (16) Psyche.
Elkins-Tanton, L T; Asphaug, E; Bell, J F; Bercovici, H; Bills, B; Binzel, R; Bottke, W F; Dibb, S; Lawrence, D J; Marchi, S; McCoy, T J; Oran, R; Park, R S; Peplowski, P N; Polanskey, C A; Prettyman, T H; Russell, C T; Schaefer, L; Weiss, B P; Wieczorek, M A; Williams, D A; Zuber, M T.
Afiliación
  • Elkins-Tanton LT; Arizona State University Phoenix AZ USA.
  • Asphaug E; University of Arizona Tucson AZ USA.
  • Bell JF; Arizona State University Phoenix AZ USA.
  • Bercovici H; Arizona State University Phoenix AZ USA.
  • Bills B; Jet Propulsion Laboratory Pasadena CA USA.
  • Binzel R; Massachusetts Institute of Technology Cambridge MA USA.
  • Bottke WF; Southwest Research Institute Boulder CO USA.
  • Dibb S; Arizona State University Phoenix AZ USA.
  • Lawrence DJ; Applied Physics Laboratory Laurel MD USA.
  • Marchi S; Southwest Research Institute Boulder CO USA.
  • McCoy TJ; Smithsonian Institution Washington DC USA.
  • Oran R; Massachusetts Institute of Technology Cambridge MA USA.
  • Park RS; Jet Propulsion Laboratory Pasadena CA USA.
  • Peplowski PN; Applied Physics Laboratory Laurel MD USA.
  • Polanskey CA; Jet Propulsion Laboratory Pasadena CA USA.
  • Prettyman TH; Planetary Science Institute Tucson AZ USA.
  • Russell CT; University of California Los Angeles CA USA.
  • Schaefer L; Stanford University Stanford CA USA.
  • Weiss BP; Massachusetts Institute of Technology Cambridge MA USA.
  • Wieczorek MA; Observatoire de la Côte d'Azur, CNRS, Laboratoire Lagrange, Université Côte d'Azur Nice France.
  • Williams DA; Arizona State University Phoenix AZ USA.
  • Zuber MT; Massachusetts Institute of Technology Cambridge MA USA.
J Geophys Res Planets ; 125(3): e2019JE006296, 2020 Mar.
Article en En | MEDLINE | ID: mdl-32714727
ABSTRACT
Some years ago, the consensus was that asteroid (16) Psyche was almost entirely metal. New data on density, radar properties, and spectral signatures indicate that the asteroid is something perhaps even more enigmatic a mixed metal and silicate world. Here we combine observations of Psyche with data from meteorites and models for planetesimal formation to produce the best current hypotheses for Psyche's properties and provenance. Psyche's bulk density appears to be between 3,400 and 4,100 kg m-3. Psyche is thus predicted to have between ~30 and ~60 vol% metal, with the remainder likely low-iron silicate rock and not more than ~20% porosity. Though their density is similar, mesosiderites are an unlikely analog to bulk Psyche because mesosiderites have far more iron-rich silicates than Psyche appears to have. CB chondrites match both Psyche's density and spectral properties, as can some pallasites, although typical pallasitic olivine contains too much iron to be consistent with the reflectance spectra. Final answers, as well as resolution of contradictions in the data set of Psyche physical properties, for example, the thermal inertia measurements, may not be resolved until the NASA Psyche mission arrives in orbit at the asteroid. Despite the range of compositions and formation processes for Psyche allowed by the current data, the science payload of the Psyche mission (magnetometers, multispectral imagers, neutron spectrometer, and a gamma-ray spectrometer) will produce data sets that distinguish among the models.
Palabras clave

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: J Geophys Res Planets Año: 2020 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: J Geophys Res Planets Año: 2020 Tipo del documento: Article