Astronomy and Astrophysics – Astronomy
Scientific paper
Oct 2002
adsabs.harvard.edu/cgi-bin/nph-data_query?bibcode=2002apj...578.1009f&link_type=abstract
The Astrophysical Journal, Volume 578, Issue 2, pp. 1009-1014.
Astronomy and Astrophysics
Astronomy
50
Infrared: Solar System, Interplanetary Medium
Scientific paper
We combine observations from the DIRBE and FIRAS instruments on the COBE satellite to derive an annually averaged spectrum of the zodiacal cloud in the 10-1000 μm wavelength region. The spectrum exhibits a break at ~150 μm that indicates a sharp break in the dust size distribution at a radius of about 30 μm. The spectrum can be fitted with a single blackbody with a λ-2 emissivity law beyond 150 μm and a temperature of 240 K. We also used a more realistic characterization of the cloud to fit the spectrum, including a distribution of dust temperatures representing different dust compositions and distances from the Sun, as well as a realistic representation of the spatial distribution of the dust. We show that amorphous carbon and silicate dust with respective temperatures of 280 and 274 K at 1 AU, and size distributions with a break at grain radii of 14 and 32 μm, can provide a good fit to the average zodiacal dust spectrum. The total mass of the zodiacal cloud is 2-11 Eg (Eg=1018 g), depending on the grain composition. The lifetime of the cloud, against particle loss by Poynting-Robertson drag and the effects of solar wind, is about 105 yr. The required replenishment rate is ~1014 g yr-1. If this is provided by the asteroid belt alone, the asteroids lifetime would be ~3×1010 yr. But comets and Kuiper belt objects may also contribute to the zodiacal cloud.
Dwek Eli
Fixsen Dale J.
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