The Artemis Moon Program
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The Lost Indian Chandrayaan 2 Lander Vikram and Rover Pragyaan Found Intact in Single Piece on the Moon
ISSN (Online): 2350-0530 International Journal of Research -GRANTHAALAYAH ISSN (Print): 2394-3629 December 2020, Vol 8(12), 103 – 109 DOI: https://doi.org/10.29121/granthaalayah.v8.i12.2020.2608 THE LOST INDIAN CHANDRAYAAN 2 LANDER VIKRAM AND ROVER PRAGYAAN FOUND INTACT IN SINGLE PIECE ON THE MOON Jag Mohan Saxena 1 , H M Saxena *2 , Priyanka Saxena 3 1 Bldg. 1-E-19, Jai Narayan Vyas Nagar, Bikaner 334003, India *2 Geetanjali Aptts. 9FF, E Block, Rishi Nagar, Ludhiana 141001, India 3 Indian Institute of Technology, Jodhpur 342037, India DOI: https://doi.org/10.29121/granthaalayah.v8.i12.2020.2608 Article Type: Research Article ABSTRACT The Lunar Lander Vikram of the Moon Mission Chandrayaan 2 of the Article Citation: Jag Mohan Saxena, Indian Space Research Organization (ISRO) lost communication with the H M Saxena, and Priyanka Saxena. Lunar Orbiter and the mission control nearly 2.1 kms above the lunar (2020). THE LOST INDIAN surface during its landing on the Moon on 7th September, 2019. The exact CHANDRAYAAN 2 LANDER VIKRAM AND ROVER PRAGYAAN FOUND location and the sight of the lost lander and rover are still elusive. We INTACT IN SINGLE PIECE ON THE present here the exact location and first images of the lander Vikram and MOON. International Journal of rover Pragyaan sighted on the lunar surface. It is evident from the Research -GRANTHAALAYAH, processed images that the lander was intact and in single piece on landing 8(12), 103-109. away from the scheduled site and its ramp was deployed to successfully https://doi.org/10.29121/granthaa release the rover Pragyan on to the lunar surface. -
Conceptual Human-System Interface Design for a Lunar Access Vehicle
Conceptual Human-System Interface Design for a Lunar Access Vehicle Mary Cummings Enlie Wang Cristin Smith Jessica Marquez Mark Duppen Stephane Essama Massachusetts Institute of Technology* Prepared For Draper Labs Award #: SC001-018 PI: Dava Newman HAL2005-04 September, 2005 http://halab.mit.edu e-mail: [email protected] *MIT Department of Aeronautics and Astronautics, Cambridge, MA 02139 TABLE OF CONTENTS 1 INTRODUCTION..................................................................................................... 1 1.1 THE GENERAL FRAMEWORK................................................................................ 1 1.2 ORGANIZATION.................................................................................................... 2 2 H-SI BACKGROUND AND MOTIVATION ........................................................ 3 2.1 APOLLO VS. LAV H-SI........................................................................................ 3 2.2 APOLLO VS. LUNAR ACCESS REQUIREMENTS ...................................................... 4 3 THE LAV CONCEPTUAL PROTOTYPE............................................................ 5 3.1 HS-I DESIGN ASSUMPTIONS ................................................................................ 5 3.2 THE CONCEPTUAL PROTOTYPE ............................................................................ 6 3.3 LANDING ZONE (LZ) DISPLAY............................................................................. 8 3.3.1 LZ Display Introduction................................................................................. -
Gao-21-330, Nasa Lunar Programs
Report to Congressional Committees May 2021 NASA LUNAR PROGRAMS Significant Work Remains, Underscoring Challenges to Achieving Moon Landing in 2024 GAO-21-330 May 2021 NASA LUNAR PROGRAMS Significant Work Remains, Underscoring Challenges to Achieving Moon Landing in 2024 Highlights of GAO-21-330, a report to congressional committees Why GAO Did This Study What GAO Found In March 2019, the White House The National Aeronautics and Space Administration (NASA) has initiated eight directed NASA to accelerate its plans lunar programs since 2017 to help NASA achieve its goal of returning humans to for a lunar landing by 4 years, to 2024. the Moon. NASA plans to conduct this mission, known as Artemis III, in 2024. Accomplishing this goal will require NASA has made progress by completing some early lunar program development extensive coordination across lunar activities including initial contract awards, but an ambitious schedule decreases programs and contractors to ensure the likelihood of NASA achieving its goal. For example, NASA’s planned pace to systems operate together seamlessly develop a Human Landing System, shown below, is months faster than other and safely. In December 2019, GAO spaceflight programs, and a lander is inherently more complex because it found that NASA had begun making supports human spaceflight. decisions related to requirements, cost, and schedule for individual lunar Notional Human Landing System programs but was behind in taking these steps for the Artemis III mission. The House Committee on Appropriations included a provision in 2018 for GAO to review NASA’s proposed lunar-focused programs. This is the second such report. -
Space Sector Brochure
SPACE SPACE REVOLUTIONIZING THE WAY TO SPACE SPACECRAFT TECHNOLOGIES PROPULSION Moog provides components and subsystems for cold gas, chemical, and electric Moog is a proven leader in components, subsystems, and systems propulsion and designs, develops, and manufactures complete chemical propulsion for spacecraft of all sizes, from smallsats to GEO spacecraft. systems, including tanks, to accelerate the spacecraft for orbit-insertion, station Moog has been successfully providing spacecraft controls, in- keeping, or attitude control. Moog makes thrusters from <1N to 500N to support the space propulsion, and major subsystems for science, military, propulsion requirements for small to large spacecraft. and commercial operations for more than 60 years. AVIONICS Moog is a proven provider of high performance and reliable space-rated avionics hardware and software for command and data handling, power distribution, payload processing, memory, GPS receivers, motor controllers, and onboard computing. POWER SYSTEMS Moog leverages its proven spacecraft avionics and high-power control systems to supply hardware for telemetry, as well as solar array and battery power management and switching. Applications include bus line power to valves, motors, torque rods, and other end effectors. Moog has developed products for Power Management and Distribution (PMAD) Systems, such as high power DC converters, switching, and power stabilization. MECHANISMS Moog has produced spacecraft motion control products for more than 50 years, dating back to the historic Apollo and Pioneer programs. Today, we offer rotary, linear, and specialized mechanisms for spacecraft motion control needs. Moog is a world-class manufacturer of solar array drives, propulsion positioning gimbals, electric propulsion gimbals, antenna positioner mechanisms, docking and release mechanisms, and specialty payload positioners. -
Concept for a Crewed Lunar Lander Operating from the Lunar Orbiting Platform-Gateway
69th International Astronautical Congress (IAC), Bremen, Germany, 1-5 October 2018. Copyright © 2018 by Lockheed Martin Corporation. Published by the IAF, with permission and released to the IAF to publish in all forms. IAC-18.A5.1.4x46653 Concept for a Crewed Lunar Lander Operating from the Lunar Orbiting Platform-Gateway Timothy Cichana*, Stephen A. Baileyb, Adam Burchc, Nickolas W. Kirbyd aSpace Exploration Architect, P.O. Box 179, MS H3005, Lockheed Martin Space, Denver, Colorado, U.S.A. 80201, [email protected] bPresident, 8100 Shaffer Parkway, Unit 130, Deep Space Systems, Inc., Littleton, Colorado, 80127-4124, [email protected] cDesign Engineer / Graphic Artist, 8341 Sangre de Christo Rd, Deep Space Systems, Inc., Littleton, Colorado, 80127, [email protected] dSystems Engineer, Advanced Programs, P.O. Box 179, MS H3005, Lockheed Martin Space, Denver, Colorado, U.S.A. 80201, [email protected] * Corresponding Author Abstract Lockheed Martin is working with NASA on the development of the Lunar Orbiting Platform – Gateway, or Gateway. Positioned in the vicinity of the Moon, the Gateway allows astronauts to demonstrate operations beyond Low Earth Orbit for months at a time. The Gateway is evolvable, flexible, modular, and is a precursor and mission demonstrator directly on the path to Mars. Mars Base Camp is Lockheed Martin's vision for sending humans to Mars. Operations from an orbital base camp will build on a strong foundation of today's technologies and emphasize scientific exploration as mission cornerstones. Key aspects of Mars Base Camp include utilizing liquid oxygen and hydrogen as the basis for a nascent water-based economy and the development of a reusable lander/ascent vehicle. -
Commercial Orbital Transportation Services
National Aeronautics and Space Administration Commercial Orbital Transportation Services A New Era in Spaceflight NASA/SP-2014-617 Commercial Orbital Transportation Services A New Era in Spaceflight On the cover: Background photo: The terminator—the line separating the sunlit side of Earth from the side in darkness—marks the changeover between day and night on the ground. By establishing government-industry partnerships, the Commercial Orbital Transportation Services (COTS) program marked a change from the traditional way NASA had worked. Inset photos, right: The COTS program supported two U.S. companies in their efforts to design and build transportation systems to carry cargo to low-Earth orbit. (Top photo—Credit: SpaceX) SpaceX launched its Falcon 9 rocket on May 22, 2012, from Cape Canaveral, Florida. (Second photo) Three days later, the company successfully completed the mission that sent its Dragon spacecraft to the Station. (Third photo—Credit: NASA/Bill Ingalls) Orbital Sciences Corp. sent its Antares rocket on its test flight on April 21, 2013, from a new launchpad on Virginia’s eastern shore. Later that year, the second Antares lifted off with Orbital’s cargo capsule, (Fourth photo) the Cygnus, that berthed with the ISS on September 29, 2013. Both companies successfully proved the capability to deliver cargo to the International Space Station by U.S. commercial companies and began a new era of spaceflight. ISS photo, center left: Benefiting from the success of the partnerships is the International Space Station, pictured as seen by the last Space Shuttle crew that visited the orbiting laboratory (July 19, 2011). More photos of the ISS are featured on the first pages of each chapter. -
VIPER: Virtual Intelligent Planetary Exploration Rover
Proceeding of the 6th International Symposium on Artificial Intelligence and Robotics & Automation in Space: i-SAIRAS 2001, Canadian Space Agency, St-Hubert, Quebec, Canada, June 18-22, 2001. VIPER: Virtual Intelligent Planetary Exploration Rover Laurence Edwards Lorenzo Fl¨uckiger∗ Laurent Nguyen† Richard Washington‡ Autonomy and Robotics Area, NASA Ames Research Center, Moffett Field, CA 94035 { edwards | lorenzo | nguyen | richw } @artemis.arc.nasa.gov Keywords: Simulation, 3D visualization, plan ex- your vehicle works. This is the world of scientist- ecution, planetary rovers. directed planetary rover exploration. Planetary rovers are scientific tools for exploring Abstract an unknown world. One focus of the Autonomy and Simulation and visualization of rover be- Robotics Area (ARA) at the NASA Ames Research havior are critical capabilities for scientists Center is to design and develop the tools and tech- and rover operators to construct, test, and niques that allow scientists to control a rover effi- validate plans for commanding a remote ciently and effectively. This presents challenges both rover. The VIPER system links these capa- in the user interface and in the underlying rover con- bilities, using a high-fidelity virtual-reality trol methods. (VR) environment, a kinematically accu- One important element of the planetary rover con- rate simulator, and a flexible plan execu- trol is the ability to simulate and visualize possible tive to allow users to simulate and visualize execution outcomes of a plan under development. possible execution outcomes of a plan under We have developed the VIPER system, which links development. plan execution, rover simulation, and a high-fidelity, This work is part of a larger vision of a realistic virtual-reality (VR) environment. -
Understanding Socio-Technical Issues Affecting the Current Microgravity Research Marketplace
Understanding Socio-Technical Issues Affecting the Current Microgravity Research Marketplace The MIT Faculty has made this article openly available. Please share how this access benefits you. Your story matters. Citation Joseph, Christine and Danielle Wood. "Understanding Socio- Technical Issues Affecting the Current Microgravity Research Marketplace." 2019 IEEE Aerospace Conference, March 2019, Big Sky, Montana, USA, Institute of Electrical and Electronics Engineers, June 2019. © 2019 IEEE As Published http://dx.doi.org/10.1109/aero.2019.8742202 Publisher Institute of Electrical and Electronics Engineers (IEEE) Version Author's final manuscript Citable link https://hdl.handle.net/1721.1/131219 Terms of Use Creative Commons Attribution-Noncommercial-Share Alike Detailed Terms http://creativecommons.org/licenses/by-nc-sa/4.0/ Understanding Socio-Technical Issues Affecting the Current Microgravity Research Marketplace Christine Joseph Danielle Wood Massachusetts Institute of Technology Massachusetts Institute of Technology 77 Massachusetts Ave 77 Massachusetts Ave Cambridge, MA 02139 Cambridge, MA 02139 [email protected] [email protected] Abstract— For decades, the International Space Station (ISS) 1. INTRODUCTION has operated as a bastion of international cooperation and a unique testbed for microgravity research. Beyond enabling For anyone who is a teenager in October 2019, the insights into human physiology in space, the ISS has served as a International Space Station has been in operation and hosted microgravity platform for numerous science experiments. In humans for the entirety of that person’s life. The platform has recent years, private industry has also been affiliating with hosted a diverse spectrum of microgravity, human space NASA and international partners to offer transportation, exploration, technology demonstration, and education related logistics management, and payload demands. -
Lunar Lander Educator Edition
National Aeronautics and Space Administration Geometry and Algebra II Grade Level THE LUNAR LANDER – Ascending from the Moon 9-12 Instructional Objectives Subject Area Mathematics: Geometry Students will and Algebra II • use trigonometric function rules to solve problems • graph and analyze functions to determine a relationship between Key Concept two variables Application of trigonometric functions Prerequisites Teacher Prep Time Students should have a good knowledge of right triangle trigonometry and 15 minutes how to solve problems using trigonometric functions and inverse trigonometric functions. Students should also be able to manipulate and Problem Duration evaluate functions. 45-60 minutes Background Technology Graphing Calculator This problem is part of a series of problems that apply Algebra and Geometry principles to U.S. Space Exploration policy. Materials Exploration provides the foundation of our knowledge, technology, Student Edition resources, and inspiration. It seeks answers to fundamental questions about our existence, responds to recent discoveries and puts in place Degree of Difficulty revolutionary techniques and capabilities to inspire our nation, the world, Moderate to Difficult and the next generation. Through NASA, we touch the unknown, we learn and we understand. As we take our first steps toward sustaining a human Skill presence in the solar system, we can look forward to far-off visions of the Operations with past becoming realities of the future. trigonometric functions; manipulating and The vision for space exploration includes returning the space shuttle evaluating functions; safely to flight, completing the International Space Station, developing a graphing; calculator use new exploration vehicle and all the systems needed for embarking on extended missions to the Moon, Mars, and beyond. -
Designing a Lunar Lander
Designing a Lunar Lander Supplies You’ll Need: Any clean, recyclable items that you find around your house, for example: paper towel or bathroom rolls, paper plates and utensils, plastic cups, bottles, caps, etc...aluminum foil, paper and/or plastic bags, party supplies – like hats, balloons, streamers, wrapping paper; paper clips, envelopes, old stuff from your garage like string, rope, twist ties, wire, strong tape, glue – anything works – get creative!! Before You Begin: Think about your design, it helps if you make a plan, or drawing. Here are some things to think about. The NASA Artemis Mission – Return to the Moon by 2024! Imagine that you are part of the new Artemis Mission team, designing a Lunar Lander that will help astronauts return to the moon by the year 2024. Your Lander must: • Disconnect, and reconnect later, with the Command Module • Have a way of moving through space on its own • Have space for the crew to live (sleep, eat, work, and pilot the lander) while they are on the moon • Land safely on the moon and lift off again • Have at least 1 hatch where astronauts can get in and out after landing on the moon • Have a way for astronauts to safely get in and out of the lander while it’s connected the Command Module in space Take a few minutes to think about what your Lander will need. Imagine what it will look like. Draw the exterior (outside) of your Lander below, and label the important parts! Use this drawing to guide you as you build. -
NASA Program & Budget Update
NASA Update AAAC Meeting | June 15, 2020 Paul Hertz Director, Astrophysics Division Science Mission Directorate @PHertzNASA Outline • Celebrate Accomplishments § Science Highlights § Mission Milestones • Committed to Improving § Inspiring Future Leaders, Fellowships § R&A Initiative: Dual Anonymous Peer Review • Research Program Update § Research & Analysis § ROSES-2020 Updates, including COVID-19 impacts • Missions Program Update § COVID-19 impact § Operating Missions § Webb, Roman, Explorers • Planning for the Future § FY21 Budget Request § Project Artemis § Creating the Future 2 NASA Astrophysics Celebrate Accomplishments 3 SCIENCE Exoplanet Apparently Disappears HIGHLIGHT in the Latest Hubble Observations Released: April 20, 2020 • What do astronomers do when a planet they are studying suddenly seems to disappear from sight? o A team of researchers believe a full-grown planet never existed in the first place. o The missing-in-action planet was last seen orbiting the star Fomalhaut, just 25 light-years away. • Instead, researchers concluded that the Hubble Space Telescope was looking at an expanding cloud of very fine dust particles from two icy bodies that smashed into each other. • Hubble came along too late to witness the suspected collision, but may have captured its aftermath. o This happened in 2008, when astronomers announced that Hubble took its first image of a planet orbiting another star. Caption o The diminutive-looking object appeared as a dot next to a vast ring of icy debris encircling Fomalhaut. • Unlike other directly imaged exoplanets, however, nagging Credit: NASA, ESA, and A. Gáspár and G. Rieke (University of Arizona) puzzles arose with Fomalhaut b early on. Caption: This diagram simulates what astronomers, studying Hubble Space o The object was unusually bright in visible light, but did not Telescope observations, taken over several years, consider evidence for the have any detectable infrared heat signature. -
Gao-21-306, Nasa
United States Government Accountability Office Report to Congressional Committees May 2021 NASA Assessments of Major Projects GAO-21-306 May 2021 NASA Assessments of Major Projects Highlights of GAO-21-306, a report to congressional committees Why GAO Did This Study What GAO Found This report provides a snapshot of how The National Aeronautics and Space Administration’s (NASA) portfolio of major well NASA is planning and executing projects in the development stage of the acquisition process continues to its major projects, which are those with experience cost increases and schedule delays. This marks the fifth year in a row costs of over $250 million. NASA plans that cumulative cost and schedule performance deteriorated (see figure). The to invest at least $69 billion in its major cumulative cost growth is currently $9.6 billion, driven by nine projects; however, projects to continue exploring Earth $7.1 billion of this cost growth stems from two projects—the James Webb Space and the solar system. Telescope and the Space Launch System. These two projects account for about Congressional conferees included a half of the cumulative schedule delays. The portfolio also continues to grow, with provision for GAO to prepare status more projects expected to reach development in the next year. reports on selected large-scale NASA programs, projects, and activities. This Cumulative Cost and Schedule Performance for NASA’s Major Projects in Development is GAO’s 13th annual assessment. This report assesses (1) the cost and schedule performance of NASA’s major projects, including the effects of COVID-19; and (2) the development and maturity of technologies and progress in achieving design stability.