Infrared observations of the dusty, massive Homunculus Nebula around the luminous blue variable Carinae are crucial to characterize the mass-loss history and help constrain the mechanisms leading to the Great Eruption. We present the 2.4 - 670 m spectral energy distribution, constructed from legacy ISO observations and new spectroscopy obtained with the Using radiative transfer modeling, we find that the two best-fit dust models yield compositions which are consistent with CNO-processed material, with iron, pyroxene and other metal-rich silicates, corundum, and magnesium-iron sulfide in common. Spherical corundum grains are supported by the good match to a narrow 20.2 m feature. Our preferred model contains nitrides AlN and SiN in low abundances. Dust masses range from 0.25 to 0.44 but ≥ 45 in both cases due to an expected high Fe gas-to-dust ratio. The bulk of dust is within a 5″ × 7″ central region. An additional compact feature is detected at 390 m. We obtain = 2.96 × 10 , a 25% decline from an average of mid-IR photometric levels observed in 1971-1977. This indicates a reduction in circumstellar extinction in conjunction with an increase in visual brightness, allowing 25-40% of optical and UV radiation to escape from the central source. We also present an analysis of CO and CO = 5 - 4 through 9 - 8 lines, showing that the abundances are consistent with expectations for CNO-processed material. The [C II] line is detected in absorption, which we suspect originates in foreground material at very low excitation temperatures.
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http://dx.doi.org/10.3847/1538-4357/aa71b3 | DOI Listing |
Astrophys J
June 2017
Space Science & Technology Department, Rutherford Appleton Laboratory, Chilton, Didcot, Oxon, UK.
Infrared observations of the dusty, massive Homunculus Nebula around the luminous blue variable Carinae are crucial to characterize the mass-loss history and help constrain the mechanisms leading to the Great Eruption. We present the 2.4 - 670 m spectral energy distribution, constructed from legacy ISO observations and new spectroscopy obtained with the Using radiative transfer modeling, we find that the two best-fit dust models yield compositions which are consistent with CNO-processed material, with iron, pyroxene and other metal-rich silicates, corundum, and magnesium-iron sulfide in common.
View Article and Find Full Text PDFNear-infrared imaging at two phases in the 5 yr spectroscopic cycle of eta Carinae reveals changes in the spatial structure of the inner core that may be related to recently reported near-infrared photometric variability. The central source changed from a pointlike object to a more extended, bipolar or shell structure. This behavior is reminiscent of changes observed in the radio continuum.
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