Exposed bright features on the comet 67P/Churyumov–Gerasimenko: distribution and evolution

Context. Since its arrival at the comet 67P/Churyumov–Gerasimenko in August 2014, the Rosetta spacecraft followed the comet as it went past the perihelion and beyond until September 2016. During this time there were many scientific instruments operating on board Rosetta to study the comet and its evolution in unprecedented detail. In this context, our study focusses on the distribution and evolution of exposed bright features that have been observed by OSIRIS, which is the scientific imaging instrument aboard Rosetta. Aims. We envisage investigating various morphologies of exposed bright features and the mechanisms that triggered their appearance. Methods. We co-registered multi-filter observations of OSIRIS images that are available in reflectance. The Lommel–Seeliger disk function was used to correct for the illumination conditions and the resulting colour cubes were used to perform spectrophotometric analyses on regions of interest. Results. We present a catalogue of 57 exposed bright features observed on the nucleus of the comet, all of which are attributed to the presence of H2O ice on the comet. Furthermore, we categorise these patches under four different morphologies and present geometric albedos for each category. Conclusions. Although the nucleus of 67P/Churyumov–Gerasimenko appears to be dark in general, there are localised H2O ice sources on the comet. Cometary activity escalates towards the perihelion passage and reveals such volatile ices. We propose that isolated H2O ice patches found in smooth terrains in regions, such as Imhotep, Bes, and Hapi, result from frost as an aftermath of the cessation of the diurnal water cycle on the comet as it recedes from perihelion. Upon the comet’s return to perihelion, such patches are revealed when sublimation-driven erosion removes the thin dust layers that got deposited earlier. More powerful activity sources such as cometary outbursts are capable of revealing much fresher, less contaminated H2O ice that is preserved with consolidated cometary material, as observed on exposed patches resting on boulders. This is corroborated by our albedo calculations that attribute higher albedos for bright features with formations related to outbursts.

[1]  S. Debei,et al.  Long-term survival of surface water ice on comet 67P , 2017 .

[2]  S. Debei,et al.  The Opposition Effect of 67P/Churyumov-Gerasimenko on post-perihelion Rosetta images , 2017 .

[3]  S. Debei,et al.  The highly active Anhur–Bes regions in the 67P/Churyumov–Gerasimenko comet: results from OSIRIS/ROSETTA observations , 2017, 1707.02945.

[4]  S. Debei,et al.  Surface changes on comet 67P/Churyumov-Gerasimenko suggest a more active past , 2017, Science.

[5]  S. Debei,et al.  The pristine interior of comet 67P revealed by the combined Aswan outburst and cliff collapse , 2017, Nature Astronomy.

[6]  S. Debei,et al.  Rosetta’s comet 67P/Churyumov-Gerasimenko sheds its dusty mantle to reveal its icy nature , 2016, Science.

[7]  U. Fink,et al.  Seasonal exposure of carbon dioxide ice on the nucleus of comet 67P/Churyumov-Gerasimenko , 2016, Science.

[8]  S. Debei,et al.  Spectrophotometry of the Khonsu region on the comet 67P/Churyumov–Gerasimenko using OSIRIS instrument images , 2016 .

[9]  P. Drossart,et al.  Detection of exposed H2O ice on the nucleus of comet 67P/Churyumov-Gerasimenko - as observed by Rosetta OSIRIS and VIRTIS instruments , 2016 .

[10]  S. Debei,et al.  The global shape, density and rotation of Comet 67P/Churyumov-Gerasimenko from preperihelion Rosetta/OSIRIS observations , 2016 .

[11]  S. Debei,et al.  Summer fireworks on comet 67P , 2016, 1609.07743.

[12]  S. Erard,et al.  Detection of exposed H₂O ice on the nucleus of comet 67P/Churyumov-Gerasimenko , 2016, 1609.00551.

[13]  S. Debei,et al.  Aswan site on comet 67P/Churyumov-Gerasimenko: Morphology, boulder evolution, and spectrophotometry , 2016 .

[14]  S. Debei,et al.  Variegation of comet 67P/Churyumov-Gerasimenko in regions showing activity , 2016 .

[15]  U. Fink,et al.  Exposed water ice on the nucleus of comet 67P/Churyumov–Gerasimenko , 2016, Nature.

[16]  Giampiero Naletto,et al.  OSIRIS observations of meter-sized exposures of H2O ice at the surface of 67P/Churyumov-Gerasimenko and interpretation using laboratory experiments , 2015 .

[17]  Giampiero Naletto,et al.  Shape model, reference system definition, and cartographic mapping standards for comet 67P/Churyumov-Gerasimenko Stereo-photogrammetric analysis of Rosetta/OSIRIS image data , 2015 .

[18]  S. Debei,et al.  Size-frequency distribution of boulders ≥7 m on comet 67P/Churyumov-Gerasimenko , 2015 .

[19]  S. Debei,et al.  Rosetta mission results pre-perihelion Special feature Scientific assessment of the quality of OSIRIS images , 2015 .

[20]  S. Erard,et al.  The diurnal cycle of water ice on comet 67P/Churyumov–Gerasimenko , 2015, Nature.

[21]  S. Debei,et al.  Gravitational slopes, geomorphology, and material strengths of the nucleus of comet 67P/Churyumov-Gerasimenko from OSIRIS observations , 2015, 1509.02707.

[22]  S. Debei,et al.  Temporal morphological changes in the Imhotep region of comet 67P/Churyumov-Gerasimenko , 2015, 1509.02794.

[23]  S. Debei,et al.  Spectrophotometric properties of the nucleus of comet 67P/Churyumov-Gerasimenko from the OSIRIS instrument onboard the ROSETTA spacecraft , 2015, 1505.06888.

[24]  S. Debei,et al.  The morphological diversity of comet 67P/Churyumov-Gerasimenko , 2015, Science.

[25]  U. Fink,et al.  The organic-rich surface of comet 67P/Churyumov-Gerasimenko as seen by VIRTIS/Rosetta , 2015, Science.

[26]  S. Debei,et al.  On the nucleus structure and activity of comet 67P/Churyumov-Gerasimenko , 2015, Science.

[27]  S. Debei,et al.  OSIRIS – The Scientific Camera System Onboard Rosetta , 2007 .

[28]  H. Keller,et al.  Determination of the light curve of the Rosetta target asteroid (2867) Steins by the OSIRIS cameras onboard Rosetta , 2006, astro-ph/0612097.

[29]  D. Sears,et al.  Laboratory simulation of the physical processes occurring on and near the surfaces of comet nuclei , 1999 .

[30]  F. Fanale,et al.  An idealized short-period comet model - Surface insolation, H2O flux, dust flux, and mantle evolution , 1984 .