Recent cryovolcanism in Virgil Fossae on Pluto

被引:40
作者
Cruikshank, Dale P. [1 ]
Umurhan, Orkan M. [1 ]
Beyer, Ross A. [1 ,15 ]
Schmitt, Bernard [2 ]
Keane, James T. [3 ]
Runyon, Kirby D. [4 ]
Atri, Dimitra [5 ,6 ]
White, Oliver L. [1 ,15 ]
Matsuyama, Isamu [7 ]
Moore, Jeffrey M. [1 ]
McKinnon, William B. [8 ]
Sandford, Scott A. [1 ,16 ]
Singer, Kelsi N. [9 ]
Grundy, William M. [10 ]
Dalle Ore, Cristina M. [1 ,11 ,16 ]
Cook, Jason C. [12 ]
Bertrand, Tanguy [1 ,15 ]
Stern, S. Alan [9 ]
Olkin, Catherine B. [9 ]
Weaver, Harold A. [4 ]
Young, Leslie A. [9 ]
Spencer, John R. [9 ]
Lisse, Carey M. [4 ]
Binzel, Richard P. [13 ]
Earle, Alissa M. [13 ]
Robbins, Stuart J. [9 ]
Gladstone, G. Randall [14 ]
Cartwright, Richard J. [1 ,11 ]
Ennico, Kimberly [1 ]
机构
[1] NASA, Ames Res Ctr, MS 246-3, Moffett Field, CA 94035 USA
[2] Univ Grenoble Alpes, IPAG, CNRS, F-38000 Grenoble, France
[3] CALTECH, Pasadena, CA 91125 USA
[4] Johns Hopkins Univ, Appl Phys Lab, Laurel, MD USA
[5] New York Univ Abu Dhabi, Abu Dhabi, U Arab Emirates
[6] Blue Marble Space Inst, Seattle, WA USA
[7] Univ Arizona, Lunar & Planetary Lab, Tucson, AZ 85721 USA
[8] Washington Univ, St Louis, MO 63110 USA
[9] Southwest Res Inst, 1050 Walnut St, Boulder, CO 80302 USA
[10] Lowell Observ, 1400 W Mars Hill Rd, Flagstaff, AZ 86001 USA
[11] SETI Inst, 189 N Bernardo Ave,Ste 200, Mountain View, CA 94043 USA
[12] Pinhead Inst, Telluride, CO USA
[13] MIT, 77 Massachusetts Ave, Cambridge, MA 02139 USA
[14] Southwest Res Inst, 6220 Culebra Rd, San Antonio, TX 78238 USA
[15] NASA, Ames Res Ctr, MS 245-3, Moffett Field, CA 94035 USA
[16] NASA, Ames Res Ctr, MS 245-6, Moffett Field, CA 94035 USA
关键词
Pluto; Surface; Ices; IR spectroscopy; Interiors; Organic chemistry; Volcanism; ORGANIC-COMPOUNDS; WATER-VAPOR; ICE; SYSTEM; CHARON; SURFACE; REORIENTATION; INTERSTELLAR; TEMPERATURE; ABSORPTION;
D O I
10.1016/j.icarus.2019.04.023
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The Virgil Fossae region on Pluto exhibits three spatially coincident properties that are suggestive of recent cryovolcanic activity over an area approximately 300 by 200 km. Situated in the fossae troughs or channels and in the surrounding terrain are exposures of H2O ice in which there is entrained opaque red-colored matter of unknown composition. The H2O ice is also seen to carry spectral signatures at 1.65 and 2.2 mu m of NH3 in some form, possibly as a hydrate, an ammoniated salt, or some other compound. Model calculations of NH3 destruction in H2O ice by galactic cosmic rays suggest that the maximum lifetime of NH3 in the uppermost meter of the exposed surface is similar to 10(9) years, while considerations of Lyman-alpha ultraviolet and solar wind charged particles suggest shorter timescales by a factor of 10 or 10000. Thus, 10(9) y is taken as an upper limit to the age of the emplacement event, and it could be substantially younger. The red colorant in the ammoniated H2O in Virgil Fossae and surroundings may be a macromolecular organic material (tholin) thought to give color to much of Pluto's surface, but probably different in composition and age. Owing to the limited spectral range of the New Horizons imaging spectrometer and the signal precision of the data, apart from the H2O and NH3 signatures there are no direct spectroscopic clues to the chemistry of the strongly colored deposit on Pluto. We suggest that the colored material was a component of the fluid reservoir from which the material now on the surface in this region was erupted. Although other compositions are possible, if it is indeed a complex organic material it may incorporate organics inherited from the solar nebula, further processed in a warm aqueous environment inside Pluto. A planet-scale stress pattern in Pluto's lithosphere induced by true polar wander, freezing of a putative interior ocean, and surface loading has caused fracturing in a broad arc west of Sputnik Planitia, consistent with the structure of Virgil Fossae and similar extensional features. This faulting may have facilitated the ascent of fluid in subsurface reservoirs to reach the surface as flows and as fountains of cryoclastic materials, consistent with the appearance of colored, ammoniated H2O ice deposits in and around Virgil Fossae. Models of a cryoflow emerging from sources in Virgil Fossae indicate that the lateral extent of the flow can be several km (Umurhan et al., 2019). The deposit over the full length (> 200 km) of the main trough in the Virgil Fossae complex and extending through the north rim of Elliot crater and varying in elevation over a range of similar to 2.5 km, suggests that it debouched from multiple sources, probably along the length of the strike direction of the normal faults defining the graben. The source or sources of the ammoniated H2O are one or more subsurface reservoirs that may or may not connect to the global ocean postulated for Pluto's interior. Alternatives to cryovolcanism in producing the observed characteristics of the region around Virgil Fossae are explored in the discussion section of the paper.
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页码:155 / 168
页数:14
相关论文
共 84 条
[1]   GEANT4-a simulation toolkit [J].
Agostinelli, S ;
Allison, J ;
Amako, K ;
Apostolakis, J ;
Araujo, H ;
Arce, P ;
Asai, M ;
Axen, D ;
Banerjee, S ;
Barrand, G ;
Behner, F ;
Bellagamba, L ;
Boudreau, J ;
Broglia, L ;
Brunengo, A ;
Burkhardt, H ;
Chauvie, S ;
Chuma, J ;
Chytracek, R ;
Cooperman, G ;
Cosmo, G ;
Degtyarenko, P ;
Dell'Acqua, A ;
Depaola, G ;
Dietrich, D ;
Enami, R ;
Feliciello, A ;
Ferguson, C ;
Fesefeldt, H ;
Folger, G ;
Foppiano, F ;
Forti, A ;
Garelli, S ;
Giani, S ;
Giannitrapani, R ;
Gibin, D ;
Cadenas, JJG ;
González, I ;
Abril, GG ;
Greeniaus, G ;
Greiner, W ;
Grichine, V ;
Grossheim, A ;
Guatelli, S ;
Gumplinger, P ;
Hamatsu, R ;
Hashimoto, K ;
Hasui, H ;
Heikkinen, A ;
Howard, A .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2003, 506 (03) :250-303
[2]   PHOTOCHEMICAL AND THERMAL EVOLUTION OF INTERSTELLAR PRECOMETARY ICE ANALOGS [J].
ALLAMANDOLA, LJ ;
SANDFORD, SA ;
VALERO, GJ .
ICARUS, 1988, 76 (02) :225-252
[3]   On the possibility of galactic cosmic ray-induced radiolysis-powered life in subsurface environments in the Universe [J].
Atri, Dimitra .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2016, 13 (123)
[4]   Organic samples produced by ion bombardment of ices for the EXPOSE-R2 mission on the International Space Station [J].
Baratta, G. A. ;
Chaput, D. ;
Cottin, H. ;
Cascales, L. Fernandez ;
Palumbo, M. E. ;
Strazzulla, G. .
PLANETARY AND SPACE SCIENCE, 2015, 118 :211-220
[5]   Space-Weathering of Solar System Bodies: A Laboratory Perspective [J].
Bennett, Chris J. ;
Pirim, Claire ;
Orlando, Thomas M. .
CHEMICAL REVIEWS, 2013, 113 (12) :9086-+
[6]   Reflectance spectroscopy (0.35-8 μm) of ammonium-bearing minerals and qualitative comparison to Ceres-like asteroids [J].
Berg, Breanne L. ;
Cloutis, Edward A. ;
Beck, Pierre ;
Vernazza, Pierre ;
Bishop, Janice L. ;
Takir, Driss ;
Reddy, Vishnu ;
Applin, Daniel ;
Mann, Paul .
ICARUS, 2016, 265 :218-237
[7]   H, C, N, and O isotopic substitution studies of the 2165 wavenumber (4.62 micron) "XCN" feature produced by ultraviolet photolysis of mixed molecular ices [J].
Bernstein, MP ;
Sandford, SA ;
Allamandola, LJ .
ASTROPHYSICAL JOURNAL, 2000, 542 (02) :894-897
[8]   ORGANIC-COMPOUNDS PRODUCED BY PHOTOLYSIS OF REALISTIC INTERSTELLAR AND COMETARY ICE ANALOGS CONTAINING METHANOL [J].
BERNSTEIN, MP ;
SANDFORD, SA ;
ALLAMANDOLA, LJ ;
CHANG, S ;
SCHARBERG, MA .
ASTROPHYSICAL JOURNAL, 1995, 454 (01) :327-344
[9]   The CH4 cycles on Pluto over seasonal and astronomical timescales [J].
Bertrand, T. ;
Forget, F. ;
Umurhan, O. M. ;
Moore, J. M. ;
Young, L. A. ;
Protopapa, S. ;
Grundy, W. M. ;
Schmitt, B. ;
Dhingra, R. D. ;
Binzel, R. P. ;
Earle, A. M. ;
Cruikshank, D. P. ;
Stern, S. A. ;
Weaver, H. A. ;
Ennico, K. ;
Olkin, C. B. .
ICARUS, 2019, 329 :148-165
[10]  
Caine JS, 1996, GEOLOGY, V24, P1025, DOI 10.1130/0091-7613(1996)024<1025:FZAAPS>2.3.CO