NASA's top human system research and technology needs for Mars

被引:0
|
作者
Abercromby, Andrew [1 ]
Baumann, David [1 ]
Berdich, Debbie [1 ]
Broyan, James [1 ]
Mccoy, Torin [1 ]
Watkins, Sharmila [1 ]
Zapp, Neal [1 ]
机构
[1] NASA, Washington, DC 20546 USA
关键词
Mars; Human; Spaceflight; Research; Technology; OCCUPANT PROTECTION; PERFORMANCE; EXERCISE;
D O I
10.1016/j.actaastro.2024.11.001
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
NASA is working with industry and international partners to return humans to the Moon and to eventually enable humans to explore Mars. Within NASA, several organizations work together to identify, prioritize, fund, execute, and operationalize the research and technology development (R&TD) that will be necessary to enable crew health and performance (CHP) during these future missions. These organizations include flight programs, the Health and Medical Technical Authority (HMTA), the Human Research Program, the Space Technology Mission Directorate, System Capability Leadership Teams, and other organizations, many of which existed for several years prior to the creation of the Moon-to-Mars (M2M) Program Office in 2023. A variety of constructs, vocabularies, and processes exist for managing risks and supporting strategic planning across these organizations. For example, M2M objectives, program risks, human system risks, human research gaps, capability gaps, and envisioned futures are all constructs currently used within NASA to identify and prioritize R&TD needs. These strategic planning constructs are evolving to allow M2M objectives and R&TD investments to be aligned and traced at a detailed level. A recognized need exists among stakeholder organizations to identify and communicate the highest CHP R&TD priorities in a unified and digestible way that addresses the perspectives of NASA's CHP community. To achieve this, the HMTA arranged a series of discussions with representatives of NASA's CHP community, during which the 8 highest priority CHP capabilities that will enable human missions to Mars, referred to as the "top human system capability needs for Mars", were identified. The list includes Earth- independent human operations; Mars-duration food system; Mars-duration effects on human physiology; risk mitigations for vehicle atmospheres; computational injury and anthropometric models; exploration exercise countermeasures; individual variability in responses to spaceflight; and sensorimotor countermeasures. Existing tools and processes for strategic planning and risk management were evaluated, as well as the technical practicalities, cost, and schedule feasibility associated with potential R&TD investments in different capability need areas. This capability needs report is not owned by any one NASA organization and does not replace existing strategic or program planning processes; rather it aims to complement and inform them with a unified set of community generated priorities. These top capability needs will be re-evaluated periodically based on R&TD progress and the evolving M2M architecture.
引用
收藏
页码:931 / 939
页数:9
相关论文
共 50 条
  • [31] The EMC Program for NASA's Mars Reconnaissance Orbiter
    Whittlesey, Albert
    Campbell, Larry
    Pierce, Thomas
    2006 IEEE INTERNATIONAL SYMPOSIUM ON ELECTROMAGNETIC COMPATIBILITY, VOLS 1-3, PROCEEDINGS, 2006, : 219 - 223
  • [32] Eye problems cloud NASA's vision of Mars
    Savage, Neil
    NATURE, 2025, 639 (8053) : S2 - S3
  • [33] NASA's Perseverance rover confirms ancient lake sediment on Mars using groundbreaking radar technology
    Haarsma, Durk
    GIM INTERNATIONAL-THE WORLDWIDE MAGAZINE FOR GEOMATICS, 2024, 38 (02):
  • [34] Automating CapCom: Pragmatic operations and technology research for human exploration of Mars
    Clancey, WJ
    MARTIAN EXPEDITION PLANNING, 2004, 107 : 411 - 430
  • [35] Risk reduction testing of the airbag landing system for the successful nasa mars pathfinder mission, and for upcoming NASA and European missions to Mars
    Kozar, RP
    Carek, GA
    Beach, DE
    4TH INTERNATIONAL SYMPOSIUM ON ENVIRONMENTAL TESTING FOR SPACE PROGRAMMES, PROCEEDINGS, 2001, 467 : 61 - 67
  • [36] NASA's Strategic Analysis Cycle 2021 (SAC21) Human Mars Architecture
    Rucker, Michelle A.
    Craig, Douglas A.
    Burke, Laura M.
    Chai, Patrick R.
    Chappell, Michael B.
    Drake, Bret G.
    Edwards, Stephen J.
    Hoffman, Stephen
    McCrea, Andrew C.
    Trent, Douglas J.
    Troutman, Patrick A.
    2022 IEEE AEROSPACE CONFERENCE (AERO), 2022,
  • [37] NASA's program for radioisotope power system research and development
    Schmidt, GR
    Wiley, RL
    Richardson, RL
    Furlong, RR
    SPACE TECHNOLOGY AND APPLICATIONS INTERNATIONAL FORUM-STAIF 2005, 2005, 746 : 429 - 436
  • [38] TECHNICAL CHALLENGES AND FUTURE TECHNOLOGY NEEDS FOR NASA'S GUIDANCE, NAVIGATION AND CONTROL ENGINEERING DISCIPLINE
    Dennehy, Cornelius J.
    GUIDANCE AND CONTROL 2012, 2012, 144 : 335 - 355
  • [39] NASA's strategy for mars exploration in the 1990s and beyond
    Huntress, W.T. Jr
    Feeley, T.J.
    Boyce, J.M.
    Advances in Space Research, 17 (12):
  • [40] Information system technology challenges for NASA's Earth Science Enterprise
    Prescott, GE
    Smith, SA
    Moe, KL
    IGARSS 2001: SCANNING THE PRESENT AND RESOLVING THE FUTURE, VOLS 1-7, PROCEEDINGS, 2001, : 436 - 438