4.7 Article

A SELF-CONSISTENT MODEL OF THE CIRCUMSTELLAR DEBRIS CREATED BY A GIANT HYPERVELOCITY IMPACT IN THE HD 172555 SYSTEM

期刊

ASTROPHYSICAL JOURNAL
卷 761, 期 1, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/0004-637X/761/1/45

关键词

astrochemistry; infrared: stars; planetary systems; planets and satellites: formation; radiation mechanisms: thermal; techniques: spectroscopic

资金

  1. NASA PGG grant [NNX10AU88G]
  2. STFC [ST/H001972/1, ST/J000647/1, ST/J001538/1] Funding Source: UKRI
  3. Science and Technology Facilities Council [ST/J001538/1, ST/H001972/1, ST/H00243X/1, ST/J000647/1] Funding Source: researchfish
  4. Division Of Astronomical Sciences
  5. Direct For Mathematical & Physical Scien [0747154, 908815] Funding Source: National Science Foundation
  6. NASA [NNX10AU88G, 122035] Funding Source: Federal RePORTER

向作者/读者索取更多资源

Spectral modeling of the large infrared excess in the Spitzer IRS spectra of HD 172555 suggests that there is more than 10(19) kg of submicron dust in the system. Using physical arguments and constraints from observations, we rule out the possibility of the infrared excess being created by a magma ocean planet or a circumplanetary disk or torus. We show that the infrared excess is consistent with a circumstellar debris disk or torus, located at similar to 6 AU, that was created by a planetary scale hypervelocity impact. We find that radiation pressure should remove submicron dust from the debris disk in less than one year. However, the system's mid-infrared photometric flux, dominated by submicron grains, has been stable within 4% over the last 27 years, from the Infrared Astronomical Satellite (1983) to WISE (2010). Our new spectral modeling work and calculations of the radiation pressure on fine dust in HD 172555 provide a self-consistent explanation for this apparent contradiction. We also explore the unconfirmed claim that similar to 10(47) molecules of SiO vapor are needed to explain an emission feature at similar to 8 mu m in the Spitzer IRS spectrum of HD 172555. We find that unless there are similar to 10(48) atoms or 0.05 M-circle plus of atomic Si and O vapor in the system, SiO vapor should be destroyed by photo-dissociation in less than 0.2 years. We argue that a second plausible explanation for the similar to 8 mu m feature can be emission from solid SiO, which naturally occurs in submicron silicate smokes created by quickly condensing vaporized silicate.

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