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1.
Astrobiology ; 19(3): 440-461, 2019 03.
Article in English | MEDLINE | ID: mdl-30840505

ABSTRACT

Future human missions to Mars are expected to emphasize scientific exploration. While recent Mars rover missions have addressed a wide range of science objectives, human extravehicular activities (EVAs), including the Apollo missions, have had limited experience with science operations. Current EVAs are carefully choreographed and guided continuously from Earth with negligible delay in communications between crew and flight controllers. Future crews on Mars will be expected to achieve their science objectives while operating and coordinating with a science team back on Earth under communication latency and bandwidth restrictions. The BASALT (Biologic Analog Science Associated with Lava Terrains) research program conducted Mars analog science on Earth to understand the concept of operations and capabilities needed to support these new kinds of EVAs. A suite of software tools (Minerva) was used for planning and executing all BASALT EVAs, supporting text communication across communication latency, and managing the collection of operational and scientific EVA data. This paper describes the support capabilities provided by Minerva to cope with various geospatial and temporal constraints to support the planning and execution phases of the EVAs performed during the BASALT research program. The results of this work provide insights on software needs for future science-driven planetary EVAs.


Subject(s)
Exobiology/organization & administration , Extraterrestrial Environment , Mars , Space Flight/organization & administration , Space Simulation/methods , Astronauts , Communication , Earth, Planet , Exobiology/methods , Exobiology/trends , Forecasting , Humans , Satellite Communications , Software , Space Flight/trends , Strategic Planning , Time Factors
2.
Astrobiology ; 19(3): 245-259, 2019 03.
Article in English | MEDLINE | ID: mdl-30840510

ABSTRACT

The articles associated with this Special Collection focus on the NASA BASALT (Biologic Analog Science Associated with Lava Terrains) Research Program, which aims at answering the question, "How do we support and enable scientific exploration during human Mars missions?" To answer this the BASALT team conducted scientific field studies under simulated Mars mission conditions to both broaden our understanding of the habitability potential of basalt-rich terrains on Mars and examine the effects of science on current Mars mission concepts of operations. This article provides an overview of the BASALT research project, from the science, to the operational concepts that were tested and developed, to the technical capabilities that supported all elements of the team's research. Further, this article introduces the 12 articles that are included in this Special Collection.


Subject(s)
Exobiology/methods , Extraterrestrial Environment/chemistry , Mars , Space Flight , Space Simulation , Astronauts , Humans , Silicates/chemistry
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