Constraining the Shape Distribution of Near Earth Objects from Partial Lightcurves
arXiv:1903.03159 · doi:10.3847/1538-3881/ab0e6e
Abstract
In the absence of dense photometry for a large population of Near Earth Objects (NEOs), the best method of obtaining a shape distribution comes from sparse photometry and partial lightcurves. We have used 867 partial lightcurves obtained by Spitzer to determine a shape distribution for sub-kilometre NEOs. From this data we find a best fit average elongation . We compare this result with a shape distribution obtained from 1869 NEOs in the same size range observed by Pan-STARRS 1 and find the Spitzer-obtained elongation to be in excellent agreement with this PS1 value of . These values are also in agreement with literature values for km objects in the main asteroid belt, however, there is a size discrepancy between the two datasets. Using a smaller sample of NEOs in the size range km from PS1 data, we obtain an average axis ratio . This is more elongated than the shape distribution for main belt objects in the same size regime, although the current uncertainties are sizeable and this should be verified using a larger data set. As future large surveys come online it will be possible to observe smaller main belt asteroids to allow for better comparisons of different sub-kilometre populations.
8 pages, 7 figures. Accepted to ApJ
References in corpus (5)
- The NumPy array: a structure for efficient numerical computation
- The generalised Lomb-Scargle periodogram. A new formalism for the floating-mean and Keplerian periodograms
- High-fidelity Simulations of the Near-Earth Object Search Performance of the Large Synoptic Survey Telescope
- The Mission Accessible Near-Earth Objects Survey (MANOS): first photometric results
- NEOSurvey 1: Initial results from the Warm Spitzer Exploration Science Survey of Near Earth Object Properties