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  • Unknown author (Lunar and Planetary Institute, 2017)
    Experience Pluto and its largest moon, Charon, in immersive augmented reality. Step onto Pluto's surface and take in the spectacular views of the al-Idrisi mountains and Elliot crater.
  • Unknown author (Lunar and Planetary Institute, 2017)
    Take a virtual journey to Saturn and its seven largest moons with 3D visualizations, featuring Dione, Enceladus, Iapetus, Mimas, Rhea, Tethys, and Titan.
  • Unknown author (Lunar and Planetary Institute, 2017)
    Discover surface features of Earth's nearest neighbor by interacting with a 3D model of the Moon. View the Apollo 11 command module up close from the inside and out.
  • Unknown author (Lunar and Planetary Institute, 2001)
    A youth activity program handbook divided into eight sessions, complete with activities, resources and NASA handouts.
  • Unknown author (Jet Propulsion Laboratory, 2012)
    Explore! Jupiter's Family Secrets will acquaint you with Jupiter and NASA's upcoming Juno mission! The activities showcase how the Juno mission will unveil Jupiter's deepest secrets, including clues about how our solar ...
  • Ballard, Yolanda; Halligan, Eve; LaConte, Keliann; Shaner, Andrew; Shipp, Stephanie, 1964-; https://orcid.org/0000-0002-7343-9343 (Lunar and Planetary Institute, 2013)
    Explore: Life on Mars? will introduce children to and engage them in the science of life in the universe (i.e., astrobiology) and Mars.
  • Treiman, Allan H.; https://orcid.org/0000-0002-8073-2839; Kiefer, Walter S.; https://orcid.org/0000-0001-6741-5460 (National Aeronautics and Space Administration, 1997)
    A NASA Education Brief on Mars exploration.
  • Unknown author (National Aeronautics and Space Administration, Office of Space Science, Solar System Exploration Division, Office of Human Resources and Education, Education Division, 1997)
    The study of meteorites provides a unifying theme that links almost every aspect of Earth and planetary science with mathematics, physics, chemistry and even biology. The activities are divided into units based on key ...
  • Unknown author (Center for Lunar Science and Exploration, Lunar and Planetary Institute, Universities Space Research Association, 2012)
    Rocks in the mountains of Montana tell a story of the Moon's history.
  • Unknown author (Lunar and Planetary Institute, 2016)
    Training for informal educators.
  • Zimmer, J. (Bendix Aerospace Systems Division, 1968)
    This memo presents the results of the simultaneous grenade launching failure investigation. The failure investigation includes tests made in the field at El Mirage, California, laboratory tests made at BxA to determine the ...
  • Staats, J. T. (Bendix Aerospace Systems Division, 1971)
    This ATM documents the Failure Modes, Effects and Criticality Analysis on the Lunar Seismic Profiling Experiment for the Array E (Apollo 17) ALSEP System. The report reflects analysis on those parts which are presently ...
  • Fox, T. W. (Bendix Aerospace Systems Division, 1971)
    The failure mode, effects, and criticality analysis shows, in a systematic way, the effect of part, pin, and receiver redundancy on system performance. Specifically these analyses have identified the only single point ...
  • McGinnis, P. (Bendix Aerospace Systems Division, 1969)
    Criticality rankings were calculated on the basis of probability of failure, system effect and failure mode distribution. The probability criticality product (PCP) was calculated to indicate the order of criticality for ...
  • Anthis, W. (Bendix Aerospace Systems Division, 1970)
    The purpose of the Failure Modes and Effects Analysis (FMEA) is to discover critical failure areas in a system and to remove susceptibility to such failures. Each possibility of failure is considered in light of its ...
  • Moskowitz, Lee S. (Bendix Aerospace Systems Division, 1970)
    The purpose of the Failure Modes and Effects Analysis (FMEA) is to discover critical failure areas in the LRRR experiment and to remove susceptibility to such failures. Each possibility of failure is considered in light ...
  • Howell, F. L. (Bendix Aerospace Systems Division, 1971)
    This memo contains the results of the final FMEA for the 300 Array LRRR experiment. This analysis has been revised and is now reissued as the final revision.
  • Mansour, John. (Bendix Aerospace Systems Division, 1970)
    The intent of this report is to evaluate the design features of the ALSEP Cask Assembly; identify potential failure modes; and to establish and/or define an acceptable contingency operational procedure designed to circumvent ...
  • Howell, F. L. (Bendix Aerospace Systems Division, 1970)
    This ATM now includes failure rate data on Unitrode and Isofilm diodes and TTL integrated circuits. Also, the integrated circuit failure rate is now a function of temperature. A lunar standby K factor has been added and ...
  • Pressly, C. P. (Bendix Systems Division, 1966)
    This ATM presents the failure rate modifiers to be used for various types of ALSEP equipment during those mission phases from launch through deployment.

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