Solar system science with the Single Aperture Large Telescope for Universe Studies space observatory

被引:2
|
作者
Anderson, Carrie M. [1 ]
Biver, Nicolas [2 ]
Bjoraker, Gordon L. [1 ]
Cavalie, Thibault [2 ,3 ]
Chin, Gordon [1 ]
Disanti, Michael A. [1 ]
Hartogh, Paul [4 ]
Roth, Nathan X. [5 ,6 ]
Tielens, Alexander [7 ]
Walker, Christopher K. [8 ]
机构
[1] NASA Goddard Space Flight Ctr, Planetary Syst Lab, Greenbelt, MD 20771 USA
[2] Sorbonne Univ, Univ Paris Cite, Univ PSL, CNRS,LESIA,Observ Paris, Meudon, France
[3] Univ Bordeaux, CNRS, Lab Astrophys Bordeaux, Pessac, France
[4] Max Planck Inst Solar Syst Res, Gottingen, Germany
[5] Amer Univ, Dept Phys, Washington, DC USA
[6] NASA Goddard Space Flight Ctr, Astrochem Lab, Greenbelt, MD USA
[7] Univ Maryland, Astron Dept, College Pk, MD USA
[8] Univ Arizona, Dept Astron, Steward Observ, Tucson, AZ USA
关键词
solar system; astrochemistry; cosmic origins; terahertz spectroscopy; far-infrared; space telescopes; HYDROGEN ISOTOPIC COMPOSITION; WATER-VAPOR; VERTICAL-DISTRIBUTION; PHOTOCHEMICAL MODEL; TITANS ATMOSPHERE; VENUS ATMOSPHERE; INFRARED-SPECTRA; ENCELADUS PLUME; SULFUR-DIOXIDE; D/H RATIO;
D O I
10.1117/1.JATIS.10.4.042302
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Single Aperture Large Telescope for Universe Studies (SALTUS) is a NASA Astrophysics Probe Explorer (APEX)-class mission concept employing a robust far-infrared pointed space observatory. SALTUS comprises a 14-m inflatable reflector that provides 16x the sensitivity and 4x the angular resolution of Herschel, with a sunshield that radiatively cools the primary to 45 K, along with cryogenic detectors that collectively span the 34 to 660 mu m far-infrared spectral range at high and moderate spectral resolutions. The high sensitivity and high spectral resolving power of the SALTUS heterodyne receivers enable both submillimeter and far-infrared observations of trace compounds comprising water and its isotopologues, hydrogen deuteride (HD), and a plethora of molecular species containing carbon, hydrogen, nitrogen, oxygen, phosphorus, or sulfur (CHNOPS), all of which are obscured by the Earth's atmosphere. The high sensitivity and broadband spectral coverage of the SALTUS far-infrared grating spectrometer enables far-infrared observations of the lattice vibrational spectral signatures of ices and mineral grains contained within a wide variety of solar system targets, including comets, planetary atmospheres, near Enceladus' plumes, and on the surfaces of icy moons, Jupiter trojans, centaurs, and Kuiper Belt objects. A key objective of SALTUS is to measure HDO/H2O in both Jupiter family and Oort cloud comets. Additional observations will allow us to characterize the water torus around Saturn generated by its icy moon Enceladus, determine the source of stratospheric water in the giant planets, ascertain the time evolution of water on Venus, and search for H2O plumes on Europa, Ganymede, and Callisto. SALTUS will measure HD/H-2 in all four giant planets to constrain models of their origin. SALTUS can also measure the abundance of CHNOPS-containing molecules and halides in the atmosphere of Venus and in the comae of comets. We review the extensive amount of solar system science achievable with SALTUS for both the Guaranteed Time Observation and the Guest Observer APEX mission observing programs.
引用
收藏
页数:27
相关论文
共 50 条
  • [31] The Simons Observatory: the Large Aperture Telescope Receiver (LATR) Integration and Validation Results
    Xu, Zhilei
    Bhandarkar, Tanay
    Coppi, Gabriele
    Kofman, Anna
    Orlowski-Scherer, John
    Zhu, Ningfeng
    Ali, Aamir
    Arnold, Kam
    Austermann, Jason
    Choi, Steve
    Connors, Jake
    Cothard, Nicholas
    Devlin, Mark
    Dicker, Simon
    Dober, Bradley
    Duff, Shannon
    Fabbian, Giulio
    Galitzki, Nicholas
    Haridas, Saianeesh
    Harrington, Katheleen
    Healy, Erin
    Ho, Patty
    Hubmayr, Johannes
    Iuliano, Jeffrey
    Lashner, Jack
    Li, Yaqiong
    Limon, Michele
    Koopman, Brian
    McCarrick, Heather
    Moore, Jenna
    Nati, Federico
    Niemack, Michael
    Reichardt, Christian
    Sarmiento, Karen
    Seibert, Joseph
    Silva-Feaver, Maximiliano
    Sonka, Rita
    Staggs, Suzanne
    Thornton, Robert
    Vavagiakis, Eve
    Vissers, Michael
    Walker, Samantha
    Wang, Yuhan
    Wollack, Edward
    Zheng, Kaiwen
    MILLIMETER, SUBMILLIMETER, AND FAR-INFRARED DETECTORS AND INSTRUMENTATION FOR ASTRONOMY X, 2020, 11453
  • [32] The Integration and Testing Program for the Simons Observatory Large Aperture Telescope Optics Tubes
    Harrington, Kathleen
    Sierra, Carlos
    Chesmore, Grace
    Sutariya, Shreya
    Ali, Aamir M.
    Choi, Steve K.
    Cothard, Nicholas F.
    Dicker, Simon
    Galitzki, Nicholas
    Ho, Shuay-Pwu Patty
    Kofman, Anna M.
    Koopman, Brian J.
    Lashner, Jack
    McMahon, Jeff
    Niemack, Michael D.
    Orlowski-Scherer, John
    Seibert, Joseph
    Silva-Feaver, Max
    Vavagiakis, Eve M.
    Xu, Zhilei
    Zhu, Ningfeng
    MILLIMETER, SUBMILLIMETER, AND FAR-INFRARED DETECTORS AND INSTRUMENTATION FOR ASTRONOMY X, 2020, 11453
  • [33] A large single-aperture telescope for submillimetre astronomy
    Holland, W
    Ivison, R
    Greaves, J
    Dent, W
    Russell, A
    Robson, I
    Longmore, A
    Hawarden, T
    Stevens, J
    Dunlop, J
    Greve, T
    GROUND-BASED TELESCOPES, PTS 1 AND 2, 2004, 5489 : 47 - 61
  • [34] A large single-aperture telescope for submillimeter astronomy
    Holland, Wayne
    Ivison, Rob
    Dent, William
    Atad, Eli
    Robson, Ian
    Longmore, Andy
    Hawarden, Tim
    Greaves, Jane
    Dunlop, James
    Ward-Thompson, Derek
    Wild, Wolfgang
    GROUND-BASED AND AIRBORNE TELESCOPES, PTS 1 AND 2, 2006, 6267
  • [35] The Atacama Large Aperture Submillimeter Telescope: Key science drivers
    Ramasawmy, Joanna
    Klaassen, Pamela D.
    Cicone, Claudia
    Mroczkowski, Tony K.
    Chen, Chian-Chou
    Cornish, Thomas
    da Cunha, Elisabete Lima
    Hatziminaoglou, Evanthia
    Johnstone, Doug
    Liu, Daizhong
    Perrott, Yvette
    Schimek, Alice
    Stanke, Thomas
    Wedemeyer, Sven
    MILLIMETER, SUBMILLIMETER, AND FAR-INFRARED DETECTORS AND INSTRUMENTATION FOR ASTRONOMY XI, 2022, 12190
  • [36] Large Aperture Millimeter/Submillimeter Telescope: Which is More Cost-effective, Aperture Synthesis Telescope vs Large Single Dish Telescope?
    Iguchi, Satoru
    Saito, Masao
    GROUND-BASED AND AIRBORNE TELESCOPES VI, 2016, 9906
  • [37] First fruits of the Spitzer Space Telescope:: Galactic and solar system studies
    Werner, Michael
    Fazio, Giovanni
    Rieke, George
    Roellig, Thomas L.
    Watson, Dan M.
    ANNUAL REVIEW OF ASTRONOMY AND ASTROPHYSICS, 2006, 44 : 269 - 321
  • [38] Special Issue: Innovative Solar System Science with the James Webb Space Telescope
    Mangum, Jeff
    PUBLICATIONS OF THE ASTRONOMICAL SOCIETY OF THE PACIFIC, 2016, 128 (959)
  • [39] Structural Design of Large Aperture Rectangular Mirror for Space Telescope
    Li, Zhilai
    ADVANCES IN CIVIL ENGINEERING II, PTS 1-4, 2013, 256-259 : 855 - 858
  • [40] Membrane Space Telescope: Case study of a deployable large aperture
    Ageorges, N.
    Eberle, S.
    Kampf, D.
    Rabien, S.
    SPACE TELESCOPES AND INSTRUMENTATION 2024: OPTICAL, INFRARED, AND MILLIMETER WAVE, 2024, 13092