Virtual Rover on Its Own
Virtual Rover on Its Own
Virtual Rover Deploys Arm
Virtual Rover Deploys Arm
Virtual background of CAPSTONE spacecraft optimized for phone use (9:16). The CAPSTONE mission will demonstrate an innovative spacecraft-to-spacecraft navigation solution at the Moon from a near rectilinear halo orbit slated for Artemis’ Gateway. Illustration by Daniel Rutter.
CAPSTONE Virtual Background
Virtual background of CAPSTONE spacecraft optimized for phone use (9:16). The CAPSTONE mission will demonstrate an innovative spacecraft-to-spacecraft navigation solution at the Moon from a near rectilinear halo orbit slated for Artemis’ Gateway. Illustration by Daniel Rutter.
CAPSTONE Virtual Background
Virtual background of CAPSTONE spacecraft optimized for desktop use (16:9). The CAPSTONE mission will demonstrate an innovative spacecraft-to-spacecraft navigation solution at the Moon from a near rectilinear halo orbit slated for Artemis’ Gateway. Illustration by Daniel Rutter.
CAPSTONE Virtual Background
Virtual background of CAPSTONE spacecraft optimized for desktop use (16:9). The CAPSTONE mission will demonstrate an innovative spacecraft-to-spacecraft navigation solution at the Moon from a near rectilinear halo orbit slated for Artemis’ Gateway. Illustration by Daniel Rutter.
CAPSTONE Virtual Background
Virtual background of CAPSTONE spacecraft optimized for phone use (9:16). The CAPSTONE mission will demonstrate an innovative spacecraft-to-spacecraft navigation solution at the Moon from a near rectilinear halo orbit slated for Artemis’ Gateway.  Illustration by Daniel Rutter.
CAPSTONE Virtual Background
Virtual background of CAPSTONE spacecraft optimized for phone use (9:16). The CAPSTONE mission will demonstrate an innovative spacecraft-to-spacecraft navigation solution at the Moon from a near rectilinear halo orbit slated for Artemis’ Gateway. Illustration by Daniel Rutter.
CAPSTONE Virtual Background
Virtual background of CAPSTONE spacecraft optimized for desktop use (16:9). The CAPSTONE mission will demonstrate an innovative spacecraft-to-spacecraft navigation solution at the Moon from a near rectilinear halo orbit slated for Artemis’ Gateway. Illustration by Daniel Rutter.
CAPSTONE Virtual Background
Virtual background of CAPSTONE spacecraft optimized for phone use (9:16). The CAPSTONE mission will demonstrate an innovative spacecraft-to-spacecraft navigation solution at the Moon from a near rectilinear halo orbit slated for Artemis’ Gateway. Illustration by Daniel Rutter.
CAPSTONE Virtual Background
Virtual Rover Drives Toward Rock
Virtual Rover Drives Toward Rock
BOEING AND MARSHALL ENGINEERS SHARE VIRTUAL REALITY TECHNOLOGY FOR SLS DESIGN PLANNING.
BOEING AND MARSHALL ENGINEERS SHARE VIRTUAL REALITY TECHNOLOGY F
Artemis II virtual background
Artemis II Crew Poster - Virtual Background
Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Dr Michael McGreevy with virtual helmet and EXOS Dexterous interface (holding rock in virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Lewis Hitchner with virtual helmet and  EXOS Dexterous interface (virtual hand)
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Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Environment Telepresence workstation, simulated Mars Exploration shows William Briggs with EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows William Briggs with EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows William Briggs with EXOS Dexterous interface (virtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Dr Michael McGreevy with virtual helmet and EXOS Dexterous interface (holding rock invirtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Dr Michael McGreevy with virtual helmet and EXOS Dexterous interface (holding rock invirtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Dr Michael McGreevy with virtual helmet and EXOS Dexterous interface (holding rock invirtual hand)
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Virtual Environment Telepresence workstation, simulated Mars Exploration shows Dr Michael McGreevy with virtual helmet and EXOS Dexterous interface (holding rock invirtual hand)
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Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Environment Reality workstation technology (helmet & gloves)
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Virtual Environment Reality workstation technology (helmet & gloves)
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Virtual Environment Reality workstation helmet and gloves
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Virtual Environment Reality workstation technology (helmet & gloves)
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Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Virtual Intelligent Planetary Exploration Rover, VIPER Mobility Platform Testing
Virtual Intelligent Planetary Exploration Rover, VIPER Mobili...
Marsokhod Virtual Control Room with Butler Hines and Dr Carol Stoker
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Telepresence Virtual Reality (Mars)
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Telepresence Virtual Reality (Mars)
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Telepresence Virtual Reality (Mars)
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Telepresence Virtual Reality (Mars Surface)
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Telepresence Virtual Reality (Mars Surface)
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Telepresence Virtual Reality (Mars Surface)
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Telepresence Virtual Reality (Mars Surface)
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Telepresence Virtual Reality (Mars Surface)
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Virtual Reality Application for Neuroscience Research Biocomputation in the study of space motion sickness and balance (inner ear)
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Virtual Reality Application for Neuroscience Research Biocomputation in the study of space motion sickness and balance (inner ear)
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The Virtual Reality Lab at Johnson Space Center in Houston provides real-time graphics and motion simulators to replicate the space environment. Commercial Crew Astronaut Suni Williams practices spacewalking in preparation for a mission to the International Space Station in 2019. Williams is assigned to Boeing’s first operational mission after the company’s test flight with crew.
CCP Astronauts Practice Spacewalking
The Virtual Reality Lab at Johnson Space Center in Houston provides real-time graphics and motion simulators to replicate the space environment. Commercial Crew Astronaut Mike Hopkins practices spacewalking in preparation for a mission to the International Space Station. Hopkins is assigned to SpaceX’s first operational mission after the company’s test flight with crew.
CCP Astronauts Practice Spacewalking
Virtual Wind Tunnel, Shuttle composite with Steve Bryson
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Computer Automatic Virtual Environment, CAVE Tours to Mark the 30th Anniversary of the Graphics and Visualization Lab, GVIS
Computer Automatic Virtual Environment, CAVE Tours to Mark the 3
NASA’s Virtual Glovebox (VGX) was developed to allow astronauts on Earth to train for complex biology research tasks in space.  The astronauts may reach into the virtual environment, naturally manipulating specimens, tools, equipment, and accessories in a simulated microgravity environment as they would do in space.  Such virtual reality technology also provides engineers and space operations staff with rapid prototyping, planning, and human performance modeling capabilities.  Other Earth based applications being explored for this technology include biomedical procedural training and training for disarming bio-terrorism weapons.
Space Science
Virtual Environment Telepresence workstation, simulated Mars Exploration group Lewis Hitchner (seated) Cindy Fergouson, Dr Michael McGreevy (standing)
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Virtual Environment for (facial) ) reconstructive surgery, Dr Ross and Rei Cheng work with the 3d glasses as they maneuver the skull and tissue for the facial reconstructive surgery
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Virtual Environment Telepresence workstation, simulated Mars Exploration group: Lewis Hitchner, (seated) Cindy Fergouson, & Dr Michael McGreevy (standing)
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Telepresence Virtual Reality (Mars) Underwater, TROV (Telepresence Controlled REmote Vehicle)
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Virtual Reality (VR) can provide cost effective methods to design and evaluate components and systems for maintenance and refurbishment operations. Marshall SPace Flight Center (MSFC) is begirning to utilize VR for design analysis in the X-34 experimental reusable space vehicle. Analysts at MSFC's Computer Applications and Virtual Environments (CAVE) used Head Mounted Displays (HMD) (pictured), spatial trackers and gesture inputs as a means to animate or inhabit a properly sized virtual human model. These models are used in a VR scenario as a way to determine functionality of space and maintenance requirements for the virtual X-34. The primary functions of the virtual X-34 mockup is to support operations development and design analysis for engine removal, the engine compartment and the aft fuselage. This capability provides general visualization support to engineers and designers at MSFC and to the System Design Freeze Review at Orbital Sciences Corporation (OSC).
Around Marshall
During Avaiation Day, 2018, a Participant uses a Microsoft HoloLens Virtual Reality Headset to view a NASA Created Immersive Visualization
During Avaiation Day, 2018, a Participant uses a Microsoft HoloLens Virtual Reality Headset to view a NASA Created Immersive Visualization
Commercial Crew Astronaut Suni Williams practices spacewalking in the Virtual Reality Lab at Johnson Space Center in Houston. The training provides real-time graphics and motion simulators to replicate the space environment. NASA’s Commercial Crew Program is working with Boeing and SpaceX to return human spaceflight launches to the United States in 2019. Williams is assigned to Boeing’s first operational mission after the company’s test flight with crew.
CCP Astronauts Practice Spacewalking
Commercial Crew Astronaut Mike Hopkins practices spacewalking in the Virtual Reality Lab at Johnson Space Center in Houston. The training provides real-time graphics and motion simulators to replicate the space environment. NASA’s Commercial Crew Program is working with Boeing and SpaceX to return human spaceflight launches to the United States in 2019. Hopkins is assigned to SpaceX’s first operational mission after the company’s test flight with crew.
CCP Astronauts Practice Spacewalking
Virtual Reality (VR) can provide cost effective methods to design and evaluate components and systems for maintenance and refurbishment operations. Marshall Spce Flight Center (MSFC) is begirning to utilize VR for design analysis in the X-34 experimental reusable space vehicle. Analysts at MSFC's Computer Applications and Virtual Environments (CAVE) used Head Mounted Displays (HMD) (pictured), spatial trackers and gesture inputs as a means to animate or inhabit a properly sized virtual human model. These models are used in a VR scenario as a way to determine functionality of space and maintenance requirements for the virtual X-34. The primary functions of the virtual X-34 mockup is to support operations development and design analysis for engine removal, the engine compartment and the aft fuselage. This capability provides general visualization support to engineers and designers at MSFC and to the System Design Freeze Review at Orbital Sciences Corporation (OSC).
Around Marshall
Astronauts John M. Grunsfeld (left), STS-109 payload commander, and Nancy J. Currie, mission specialist, use the virtual reality lab at Johnson Space Center to train for upcoming duties aboard the Space Shuttle Columbia. This type of computer interface paired with virtual reality training hardware and software helps to prepare the entire team to perform its duties for the fourth Hubble Space Telescope Servicing mission. The most familiar form of virtual reality technology is some form of headpiece, which fits over your eyes and displays a three dimensional computerized image of another place. Turn your head left and right, and you see what would be to your sides; turn around, and you see what might be sneaking up on you. An important part of the technology is some type of data glove that you use to propel yourself through the virtual world. Currently, the medical community is using the new technologies in four major ways: To see parts of the body more accurately, for study, to make better diagnosis of disease and to plan surgery in more detail; to obtain a more accurate picture of a procedure during surgery; to perform more types of surgery with the most noninvasive, accurate methods possible; and to model interactions among molecules at a molecular level.
Space Shuttle Projects
jsc2024e005977 (9/14/2023) --- MIRA, Virtual Incision’s miniaturized robotic assisted surgery system, is pictured in position to reach simulated surgical tissue. Robotic Surgery Tech Demo uses MIRA on the International Space Station to perform a set of pre-programmed movements. Image courtesy of Virtual Incision.
Robotic Surgery Tech Demo
A person observes the computational Fluid Dynamics solution for cryogenic storage tank mixing inside the Glenn Reconfigurable User-interface and Virtual Reality Exploration on October 18, 2023. The GRUVE Lab provides a fully interactive virtual reality space in which to observe and analyze data and environments. Photo Credit: (NASA/Sara Lowthian-Hanna)
GRUVE Lab
jsc2024e076628 – Tess Caswell, a crew stand-in for the Artemis III Virtual Reality Mini-Simulation, executes a moonwalk in the Prototype Immersive Technology (PIT) lab at NASA’s Johnson Space Center in Houston. The simulation was a test of using VR as a training method for flight controllers and science teams’ collaboration on science-focused traverses on the lunar surface. Credit: NASA/Robert Markowitz
How NASA is Using Virtual Reality in Artemis Training -- jsc2024e076628
jsc2024e005981 (9/15/2023) --- The robotic surgery device is shown positioned inside the science locker, with the instrument arms and camera oriented toward the simulated surgical tissue on the experiment board. The unique small footprint makes it possible to transport the minibot anywhere, even to space. Robotic Surgery Tech Demo flies a special iteration of MIRA, Virtual Incision’s miniaturized robotic assisted surgery system. Image courtesy of Virtual Incision.
Robotic Surgery Tech Demo
jsc2024e005978 ()9/14/2023) --- MIRA, Virtual Incision’s miniaturized robotic assisted surgery system, is pictured in position to reach simulated surgical tissue. The minibot is able to view the working area with an articulating camera. Robotic Surgery Tech Demo uses MIRA to evaluate human remote control and perform pre-programmed movements. Image courtesy of Virtual Incision.
Robotic Surgery Tech Demo