Sample Acquisition and Caching Architecture for the Mars Sample Return Mission

被引:0
|
作者
Zacny, Kris [1 ]
Chu, Philip [1 ]
Cohen, Joanna [1 ]
Paulsen, Gale [1 ]
Craft, Jack [1 ]
Szwarc, Timothy
机构
[1] Honeybee Robot, Pasadena, CA 91103 USA
关键词
D O I
暂无
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
This paper presents a Mars Sample Return (MSR) Sample Acquisition and Caching (SAC) study developed for the three rover platforms: MER, MER+, and MSL. The study took into account 26 SAC requirements provided by the NASA Mars Exploration Program Office. For this SAC architecture, the reduction of mission risk was chosen by us as having greater priority than mass or volume. For this reason, we selected a "One Bit per Core" approach. The enabling technology for this architecture is Honeybee Robotics' "eccentric tubes" core breakoff approach. The breakoff approach allows the drill bits to be relatively small in diameter and in turn lightweight. Hence, the bits could be returned to Earth with the cores inside them with only a modest increase to the total returned mass, but a significant decrease in complexity. Having dedicated bits allows a reduction in the number of core transfer steps and actuators. It also alleviates the bit life problem, eliminates cross contamination, and aids in hermetic sealing. An added advantage is faster drilling time, lower power, lower energy, and lower Weight on Bit (which reduces Arm preload requirements). Drill bits are based on the BigTooth bit concept, which allows re-use of the same bit multiple times, if necessary. The proposed SAC consists of a 1) Rotary-Percussive Core Drill, 2) Bit Storage Carousel, 3) Cache, 4) Robotic Arm, and 5) Rock Abrasion and Brushing Bit (RABBit), which is deployed using the Drill. The system also includes PreView bits (for viewing of cores prior to caching) and Powder bits for acquisition of regolith or cuttings. The SAC total system mass is less than 22 kg for MER and MER+ size rovers and less than 32 kg for the MSL-size rover.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Sample Acquisition and Caching using Detachable Scoops for Mars Sample Return
    Younse, P.
    Stroupe, A.
    Huntsberger, T.
    Garrett, M.
    Eigenbrode, J. L.
    Benning, L. G.
    Fogel, M.
    Steele, A.
    2009 IEEE AEROSPACE CONFERENCE, VOLS 1-7, 2009, : 103 - +
  • [2] Mars Sample Return: Architecture and mission design
    Sherwood, B
    2002 IEEE AEROSPACE CONFERENCE PROCEEDINGS, VOLS 1-7, 2002, : 523 - 536
  • [3] Mars Sample Return: Architecture and mission design
    Sherwood, B
    Smith, DB
    Greeley, R
    Whittaker, WR
    Woodcock, GR
    Barton, G
    Pearson, DW
    Siegfried, W
    ACTA ASTRONAUTICA, 2003, 53 (4-10) : 353 - 364
  • [4] The many faces of the Mars sample return mission architecture
    Mattingly, RL
    Guidance and Control 2005, 2005, 121 : 325 - 338
  • [5] SAC Architecture for the 2018 Mars Sample Return Mission
    Zacny, Kris
    Chu, Phil
    Wilson, Jack
    Davis, Kiel
    Craft, Jack
    2011 IEEE AEROSPACE CONFERENCE, 2011,
  • [6] Sample Sealing Approaches for Mars Sample Return Caching
    Younse, Paulo
    de Alwis, Thimal
    Backes, Paul
    Trebi-Ollennu, Ashitey
    2012 IEEE AEROSPACE CONFERENCE, 2012,
  • [7] Mars sample return mission with ISPP
    Sridhar, K.R.
    JBIS - Journal of the British Interplanetary Society, 1996, 49 (11): : 435 - 440
  • [8] Mars Sample Return Using Commercial Capabilities: Mission Architecture Overview
    Gonzales, Andrew A.
    Stoker, Carol R.
    Lemke, Lawrence G.
    Bowles, Jeffrey V.
    Huynh, Loc C.
    Faber, Nicholas T.
    Race, Margaret S.
    2014 IEEE AEROSPACE CONFERENCE, 2014,
  • [9] Orbit acquisition, rendezvous, and docking with a noncooperative capsule in a Mars sample return mission
    Santoro, Riccardo
    Pontani, Mauro
    ACTA ASTRONAUTICA, 2023, 211 : 950 - 962
  • [10] The CanMars Mars Sample Return analogue mission
    Osinski, Gordon R.
    Battler, Melissa
    Caudill, Christy M.
    Francis, Raymond
    Haltigin, Timothy
    Hipkin, Victoria J.
    Kerrigan, Mary
    Pilles, Eric A.
    Pontefract, Alexandra
    Tornabene, Livio L.
    Allard, Pierre
    Bakambu, Joseph N.
    Balachandran, Katiyayni
    Beaty, David W.
    Bednar, Daniel
    Bina, Arya
    Bourassa, Matthew
    Cao, Fenge
    Christoffersen, Peter
    Choe, Byung-Hun
    Cloutis, Edward
    Cote, Kristen
    Cross, Matthew
    D'Aoust, Bianca
    Draz, Omar
    Dudley, Bryce
    Duff, Shamus
    Dzamba, Tom
    Fulford, Paul
    Godin, Etienne
    Goordial, Jackie
    Galofre, Anna Grau
    Haid, Taylor
    Harrington, Elise
    Harrison, Tanya
    Hawkswell, Jordan
    Hickson, Dylan
    Hill, Patrick
    Innis, Liam
    King, Derek
    Kissi, Jonathan
    Laughton, Joshua
    Li, Yaozhu
    Lymer, Elizabeth
    Maggiori, Catherine
    Maloney, Matthew
    Marion, Cassandra L.
    Maris, John
    Mcfadden, Sarah
    McLennan, Scott M.
    PLANETARY AND SPACE SCIENCE, 2019, 166 : 110 - 130