<bold>Results from the Mars Science Laboratory Parachute Decelerator System Supersonic Qualification Program</bold>

被引:0
|
作者
Sengupta, Anita [1 ]
Steltzner, Adam [1 ]
Comeaux, Keith [1 ]
Candler, Graham [2 ]
Barnhardt, Michael [2 ]
Pantano, Carlos [3 ]
Bell, James [4 ]
Heineck, J. T. [4 ]
Schairer, Edward [4 ]
机构
[1] CALTECH, Jet Prop Lab, 4800 Oak Grove Dr, Pasadena, CA 91109 USA
[2] Univ Minnesota, Minneapolis, MN 55455 USA
[3] Univ Illinois, Urbana 61801, IL 61801 USA
[4] NASA, Ames Res Ctr, Moffett Field, CA 94035 USA
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V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
In 2010 the Mars Science Laboratory (MSL) Mission will deliver the most massive and scientifically capable rover to the surface of Mars. To deliver this payload, an aerodynamic decelerator is required to decelerate the entry vehicle from supersonic to subsonic speeds, in advance of propulsive descent and touchdown on Mars. The aerodynamic deceleration will be accomplished by a mortar-deployed 21.5-m Viking-type disk-gap-band parachute (DGB), and will be the largest extra-terrestrial decelerator in the history of space exploration [1]. The parachute will deploy at up to Mach 2.2 and 750 Pa, resulting in the highest load and speed experienced by a parachute on Mars. The MSL parachute extends the envelope of the existing heritage deployment space in terms of load, size and Mach number. This has created the challenge of leveraging the existing heritage supersonic-high-altitude database, implementing a ground-based qualification program, and quantifying known aerodynamic instabilities associated with supersonic operation in the Mach regime of the MSL deployment. To address these challenges MSL has embarked upon a physics-based modeling and validation program to explore the fundamental physics associated with DGB-parachute operation in supersonic flow. The functional dependence of parachute performance and stability on Mach number, Reynolds number, parachute size, entry-vehicle size and parachute to entry vehicle proximity, is under investigation. The quantitative understanding garnered from this analytical effort will be used to leverage the existing heritage database of the Viking Lander, Viking Balloon Launched Decelerator Test (BLDT), Mars Pathfinder (MPF) and Mars Exploration Rover (MER) programs for the larger scale, deployment conditions, and modem construction techniques of the MSL parachute system. The physics-based modeling and validation effort includes the development of a coupled fluid and structural solver, i.e. fluid-structure-interaction code, and supersonic wind-tunnel experiments with subscale representations of the flight configuration.
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页码:497 / +
页数:3
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共 11 条
  • [1] An overview of the Mars Science Laboratory Parachute Decelerator System
    Sengupta, Anita
    Steltzner, Adam
    Witkowski, Al
    Rowan, Jerry
    [J]. 2007 IEEE AEROSPACE CONFERENCE, VOLS 1-9, 2007, : 832 - +
  • [2] <bold>Mars Science Laboratory Entry, Descent, and Landing System Overview</bold>
    Prakash, Ravi
    Burkhart, P. Dan
    Chen, Allen
    Comeaux, Keith A.
    Guernsey, Carl S.
    Kipp, Devin M.
    Lorenzoni, Leila V.
    Mendeck, Gavin F.
    Powell, Richard W.
    Rivellini, Tommaso P.
    Martin, A. Miguel San
    Sell, Steven W.
    Steltzner, Adam D.
    Way, David W.
    [J]. 2008 IEEE AEROSPACE CONFERENCE, VOLS 1-9, 2008, : 479 - +
  • [3] Mars 2007 scout phoenix parachute decelerator system program overview
    Witkowski, Allen
    [J]. 2007 IEEE AEROSPACE CONFERENCE, VOLS 1-9, 2007, : 718 - 725
  • [4] Mineralogical results from the mars science laboratory rover curiosity
    Blake, David Frederick
    [J]. ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2017, 73 : C1298 - C1298
  • [5] Mars Science Laboratory entry descent and landing system verification and validation program
    Mitcheltree, Robert
    Steltzner, Adam
    Chen, Allen
    SanMartin, Miguel
    Rivellini, Tomasso
    [J]. 2006 IEEE AEROSPACE CONFERENCE, VOLS 1-9, 2006, : 891 - +
  • [6] MARS SCIENCE LABORATORY ENTRY, DESCENT, AND LANDING SYSTEM OVERVIEW AND PRELIMINARY FLIGHT PERFORMANCE RESULTS
    Steltzner, Adam D.
    San Martin, A. Miguel
    Rivellini, Tommaso P.
    Chen, Allen
    [J]. SPACEFLIGHT MECHANICS 2013, PTS I-IV, 2013, 148 : 521 - 528
  • [7] X-ray Diffraction Results from Mars Science Laboratory: Mineralogy of Rocknest at Gale Crater
    Bish, D. L.
    Blake, D. F.
    Vaniman, D. T.
    Chipera, S. J.
    Morris, R. V.
    Ming, D. W.
    Treiman, A. H.
    Sarrazin, P.
    Morrison, S. M.
    Downs, R. T.
    Achilles, C. N.
    Yen, A. S.
    Bristow, T. F.
    Crisp, J. A.
    Morookian, J. M.
    Farmer, J. D.
    Rampe, E. B.
    Stolper, E. M.
    Spanovich, N.
    [J]. SCIENCE, 2013, 341 (6153)
  • [8] The rock abrasion record at Gale Crater: Mars Science Laboratory results from Bradbury Landing to Rocknest
    Bridges, N. T.
    Calef, F. J.
    Hallet, B.
    Herkenhoff, K. E.
    Lanza, N. L.
    Le Mouelic, S.
    Newman, C. E.
    Blaney, D. L.
    de Pablo, M. A.
    Kocurek, G. A.
    Langevin, Y.
    Lewis, K. W.
    Mangold, N.
    Maurice, S.
    Meslin, P. -Y.
    Pinet, P.
    Renno, N. O.
    Rice, M. S.
    Richardson, M. E.
    Sautter, V.
    Sletten, R. S.
    Wiens, R. C.
    Yingst, R. A.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2014, 119 (06) : 1374 - 1389
  • [9] Evolved Gas Analyses of Sedimentary Rocks From the Glen Torridon Clay-Bearing Unit, Gale Crater, Mars: Results From the Mars Science Laboratory Sample Analysis at Mars Instrument Suite
    McAdam, A. C.
    Sutter, B.
    Archer, P. D.
    Franz, H. B.
    Wong, G. M.
    Lewis, J. M. T.
    Clark, J., V
    Millan, M.
    Williams, A. J.
    Eigenbrode, J. L.
    Knudson, C. A.
    Freissinet, C.
    Glavin, D. P.
    Stern, J. C.
    Navarro-Gonzalez, R.
    Achilles, C. N.
    Ming, D. W.
    Morris, R., V
    Bristow, T. F.
    Rampe, E. B.
    Thorpe, M. T.
    House, C. H.
    Andrejkovicova, S.
    Bryk, A. B.
    Fox, V. K.
    Johnson, S. S.
    Mahaffy, P. R.
    Malespin, C. A.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2022, 127 (09)
  • [10] Managing Complexity: Solutions from the Mars Science Laboratory Entry, Descent, and Landing Flight System Verification and Validation Campaign
    Stehura, Aaron
    Rozek, Matthew
    Isla, Dan
    [J]. JOURNAL OF SPACECRAFT AND ROCKETS, 2014, 51 (04) : 1270 - 1287