NASA Langley Team to Study Weather During Eclipse Using Uncrewed Vehicles

NASA Langley Team to Study Weather During Eclipse Using Uncrewed Vehicles

3 min read

Preparations for Next Moonwalk Simulations Underway (and Underwater)

A six-person team of researchers from NASA’s Langley Research Center in Hampton, Virginia, will travel to Fort Drum, N.Y., to study changes in the Sun’s radiation as it reaches Earth before, during, and after the total solar eclipse April 8.

Weather sensors similar to what is used on daily weather balloons by the National Weather Service will be added to a specially modified Alta X Uncrewed Aircraft System (UAS) and flown to a maximum altitude of nearly two miles, higher than the team has ever flown the UAS. The UAS will provide vertical modeling of temperature, relative humidity, pressure, and wind to test an alternative data collection to using traditional weather balloons in the troposphere. The troposphere is the lowest layer of Earth’s atmosphere where most types of clouds are found and where weather occurs.

Jake Revesz, an electronic systems engineer at NASA Langley Research Center, is pictured here prepping a UAS for flight. Jake is kneeling on pavement working with the drone. He is wearing a t-shirt, khakis, and a hard hat.
Jake Revesz, electronic systems engineer, prepping the UAS for flight.
NASA/Jen Fowler

“UAS hold promise for rapid deployment into the lower troposphere with repeated measurements for higher temporal resolution at lower cost,” said Jennifer Fowler, principal investigator and mission commander, “Typically, atmospheric data collection from instruments on board aircraft is done using balloons as the platform that, once released, are not recovered. UAS allow for the opportunity to conduct repeated profiles since the radiosonde is recovered after each flight.”

‘Forcing events’ in weather are events that drive some type of sudden change. Examples of forcing events are volcanic eruptions, wildland fires, and solar eclipses. The predictability of an eclipse, compared to other forcing events, presents a perfect opportunity for scientists to study the impact on the planetary boundary layer, the lowest part of the troposphere, in a natural experiment. Experiments with weather balloons use instruments, called dropsondes, that collect data about the atmosphere as they float to earth. Radiosondes are dropsondes attached to aircraft.

“The configuration [of instruments] that we’re using, a radiosonde integrated with a 3D sonic anemometer, flown on a multi-rotor aircraft, to my knowledge, has never been done before,” explained Tyler Willhite, airborne sensor operator, “The radiosonde is designed for balloon launches. So, the fact that we’re flying it on a drone is very different. Low altitude sounding data is critical to fill knowledge gaps that currently exist in the atmospheric boundary layer. We also have the ability to have a large variety of data outputs that can be streamed in real-time. This is something that other weather payloads are somewhat limited in.”

NASA’s team will work closely with collaborators from the World Meteorological Organization, National Center for Atmospheric Research, and the University of Albany who will launch weather balloons to gather measurements during the same timeframe.

“During our eclipse mission we will also be participating in the World Meteorological Organization’s world-wide flight campaign. We will gather data in real-time throughout the eclipse and the days beforehand, send those to the WMO to input into their models for more updated and accurate forecast measurements,” said Willhite, “That is the main goal of all this data is to be inputted into models for more updated and accurate forecasts.”

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Apr 05, 2024

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Julia L. Bradshaw

NASA Selects University Teams to Compete in 2024 RASC-AL Competition

NASA Selects University Teams to Compete in 2024 RASC-AL Competition

5 min read

Preparations for Next Moonwalk Simulations Underway (and Underwater)

Fourteen undergraduate and graduate teams from across the country were selected as finalists to compete in one of NASA’s longest running student challenges — the Revolutionary Aerospace Systems Concepts – Academic Linkage (RASC-AL) competition. The competition fuels innovation and challenges undergraduate and graduate teams to develop new concepts to improve our ability to operate on the Moon, Mars and beyond. Finalists will travel to Cocoa Beach, Florida next June to present their proposed concepts to a panel of NASA and aerospace industry leaders. 

The 2024 finalist teams are: 

AI-Powered Self-Replicating Probe Theme: 

  • Clarkson University with Khalifa University and the Royal Melbourne Institute of Technology (RMIT) 
    • AUTONOMY: Augmented Unmanned Technology Operating in Navigating Objects of Mining Yield 
    • Advisors: Dr. Michael Bazzocchi (Clarkson), Dr. Roberto Sabatini (Khalifa), Dr. Alessandro Gardi (Khalifa), Dr. Anna Bourmistrova (RMIT) 
  • Stanford University with the University of Waterloo 
    • Modular Self-Assembling Robotic Architecture (MARA) 
    • Advisors: Prof. Anton Ermakov (Stanford), Prof. William Melek (Waterloo) 
  • University of Texas, Austin 
    • AETHER: Autonomous Exploration Through Extraterrestrial Regions 
    • Advisor: Prof. Adam Nokes 
  • Virginia Polytechnic Institute and State University 
    • Project Draupnir 
    • Advisor: Dr. Kevin Shinpaugh 

Large-Scale Lunar Crater Prospector Theme: 

  • Iowa State University 
    • Sub-Surface Condensation Analysis Rover for Crater Exploration (SCARCE) 
    • Advisor: Dr. Matthew Nelson 
  • South Dakota State University
    • POSEID-N: Prospecting Observation System for Exploration, Investigation, Discovery, and Navigation 
    • Advisor: Dr. Todd Letcher 
  • Tulane University 
    • S.P.I.D.E.R: South Pole Ice Drilling and Exploration Rover 
    • Advisors: Dr. Matt Barrios 
  • University of Maryland 
    • SITIS: Subsurface Ice and Terrain In-situ Surveyor 
    • Advisor: Dr. David Akin 
  • University of Texas, Austin 
    • VENOM: Volatile Examining luNar prOspectors and Mothership 
    • Advisor: Prof. Adam Nokes 

Long-Duration Mars Simulation at the Moon Theme: 

  • Massachusetts Institute of Technology (MIT) with the Swiss Federal Institute of Technology – Lausanne (ISAE) and National Higher French Institute of Aeronautics and Space (EPFL) 
    • MARTEMIS: Mars Architecture Research using Taguchi Experiments on the Moon with International Solidarity 
    • Advisors: Prof. Jeffrey Hoffman (MIT), Madelyn Hoying (MIT), Dr. George Lordos (MIT), Dr. Olivier de Weck (MIT), Dr. Alexandros Lordos (University of Cyprus), Vsevolo Peysakhovich (ISAE), Dr. Andreas Osterwalder (EPFL), Dr. Martin Heyne (Intuitive Machines), Dr. Alexander Miller (Blue Origin) 
  • University of Maryland 
    • Moon-2-Mars 
    • Advisors: Dr. David Akin, Charles Hanner 

Sustained Lunar Evolution Theme: 

  • University of Illinois, Urbana-Champaign (UIUC) with Barrios Technology 
    • THEIA: Trans-lunar Hub for Exploration, ISRU, and Advancement 
    • Advisors: Dr. Victoria Coverstone (UIUC), Dr. Robyn Woollands (UIUC), Alec Auster (Barrios Technology) 
  • University of Maryland
    • TILE: Terrapin Infrastructure for Lunar Evolution 
    • Advisors: Dr. Jarred Young, Christopher Kingsley 
  • University of Puerto Rico, Mayagüez 
    • POLARIS: Permanent-Outpost Lunar Architecture for Research and Innovative Services 
    • Advisors: Dr. Bárbara Calcagno, Dr. Gustavo Gutiérrez

For the 2024 competition, teams were asked to submit a two-minute video and detailed seven-to-nine-page proposal addressing one of four themes related to leveraging innovation to improve our ability to operate on the Moon, Mars and beyond. They included: Long-Duration Mars Simulation at the Moon, Sustained Lunar Evolution, AI-Powered Self-Replicating Probes – an Evolutionary Approach, and Large-Scale Lunar Crater Prospector. A steering committee of NASA personnel and industry experts selected the finalists based on a review of competitive proposals. 

“Each year we come up with themes for the competition that NASA and the aerospace industry are invested in, because these are real challenges that we are facing, and every year we are impressed with the proposals we receive,” said Patrick Troutman, RASC-AL sponsor and lead for human exploration strategic assessments at NASA’s Langley Research Center in Hampton, Virginia. “We heard a lot of great ideas from the university community this year, but these 14 finalists really raised the bar and impressed us.” 

RASC-AL projects allow university students to incorporate their coursework into space exploration objectives in a team environment and help bridge strategic knowledge gaps associated with NASA’s vision. The competition emphasizes the importance of multidisciplinary teams.   

“It’s never an easy decision when it comes to choosing finalists, because we love working with university students across the board and appreciate how passionate they all are about aerospace, but these fourteen teams really went above and beyond in their approaches and we look forward to hearing more from them at the forum, ” said Dr. Christopher Jones, Chief Technologist for the Systems Analysis and Concepts Directorate at Langley, and RASC-AL sponsor and judge.  

For 2024, each finalist team receives a $6,500 stipend to further develop and present their concept at the RASC-AL Forum in Cocoa Beach, where they will present their findings to a judging panel of NASA and industry experts. The teams with the top two winning papers will be invited to present their design projects to industry experts at AIAA’s 2024 ASCEND Conference. 

RASC-AL is sponsored by the Strategies and Architectures Office within the Exploration Systems Development Mission Directorate at NASA Headquarters, and by the Space Mission Analysis Branch within the Systems Analysis and Concepts Directorate at Langley. It is administered by the National Institute of Aerospace

For more information about the RASC-AL competition, including complete theme and submission guidelines, visit: 
https://rascal.nianet.org 

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Apr 05, 2024

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Julia L. Bradshaw

Astronauts Protect Their Eyes with Eclipse Glasses

Astronauts Protect Their Eyes with Eclipse Glasses

Four men wearing red, rectangular eclipse glasses and blue jumpsuits look up at the Sun. They are on the rooftop of a building. The U.S. Capitol dome is visible behind them.
NASA/Aubrey Gemignani

While visiting NASA Headquarters in Washington on March 19, 2024, astronauts Stephen Bowen, left, Frank Rubio, Warren Hoburg, and UAE (United Arab Emirates) astronaut Sultan Alneyadi, right, posed for a photo wearing solar viewing glasses (“eclipse glasses”). Eclipse glasses with the ISO 12312-2 international standard or a safe handheld solar viewer are a must-have to look directly at the Sun during the eclipse before or after totality—the brief period where the Moon completely blocks the Sun’s face. Viewing any part of the bright Sun through a camera lens, binoculars, or a telescope without a special-purpose solar filter secured over the front of the optics will instantly cause severe eye injury.

NASA will have live coverage of the total solar eclipse, beginning at 1 p.m. EDT.

Image Credit: NASA/Aubrey Gemignani

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Monika Luabeya

NASA’s LRO Finds Photo Op as It Zips Past SKorea’s Danuri Moon Orbiter

NASA’s LRO Finds Photo Op as It Zips Past SKorea’s Danuri Moon Orbiter

NASA’s LRO (Lunar Reconnaissance Orbiter), which has been circling and studying the Moon for 15 years, captured several images of Korea Aerospace Research Institute’s Danuri lunar orbiter last month. The two spacecraft, traveling in nearly parallel orbits, zipped past each other in opposite directions between March 5 and 6, 2024.

grayscale view of lunar surface with a dark smudge in the center of the image
The dark spot centered in the bottom third of this image is the Korea Aerospace Research Institute’s Danuri orbiter, smudged because it was traveling quickly in the opposite direction of NASA’s LRO (Lunar Reconnaissance Orbiter) when LRO snapped the photo. At the time, Danuri was orbiting 5 miles, or 8 kilometers, below LRO’s orbit, and LRO was about 50 miles, or 80 kilometers, above the Moon’s surface. This image covers an area about 2 miles, or 3 kilometers, wide.
NASA/Goddard/Arizona State University

LRO’s narrow angle camera (one in a suite of cameras known as “LROC”) captured the images featured here during three orbits that happened to be close enough to Danuri’s to grab snapshots.

Due to the fast relative velocities between the two spacecraft (about 7,200 miles, or 1,500 kilometers, per hour), the LRO operations team at NASA’s Goddard Space Flight Center in Greenbelt, Maryland, needed exquisite timing in pointing LROC to the right place at the right time to catch a glimpse of Danuri, the Republic of Korea’s first spacecraft at the Moon. Danuri has been in lunar orbit since December 2022. Although LRO’s camera exposure time was very short, only 0.338 milliseconds, Danuri still appears smeared to 10 times its size in the opposite direction of travel because of the relative high travel velocities between the two spacecraft.

grayscale view of lunar surface with a smeared streak in the center of the image
At the first imaging opportunity, LRO was oriented down 43 degrees from its typical position of looking down at the lunar surface to capture Danuri (streaked across the middle) from 3 miles, or 5 kilometers, above it.
NASA/Goddard/Arizona State University
grayscale view of lunar surface with a smeared streak in the center of the image
During the next encounter, LRO was closer to Danuri, about 2.5 miles, or 4 kilometers, and oriented 25 degrees toward it.
NASA/Goddard/Arizona State University
two grayscale images of the cratered lunar surface; the left features a small black-and-white streak near its center; the right has a larger pixellated black-and-white feature
For the final photo, LRO was reoriented by 60 degrees to catch a glimpse of Danuri when it was 5 miles, or 8 kilometers, below it. This image pair was corrected for viewing geometry, and, on the right, the Danuri pixels were unsmeared and the image stretched to highlight the Korean spacecraft. The image was rotated 90 degrees so the surface would look like something a person would see looking out the window.
NASA/Goddard/Arizona State University
grayscale view of the lunar surface with several craters; a white box indicates the area of the image where LRO saw Danuri spacecraft
This image shows Danuri in the white box near the right-hand corner of the image. The large bowl-shaped crater visible in the upper left is 7.5 miles, or 12 kilometers, wide.
NASA/Goddard/Arizona State University
against the black backdrop of space, a fast-moving LRO spacecraft appears as a smeared streak with a bright-white center and gray on either side
Last spring, Danuri had an opportunity to photograph LRO. Its ShadowCam instrument, provided by NASA, snapped this photo of LRO as the Korean spacecraft passed about 11 miles (18 kilometers) above it on April 7, 2023. Based on the design of LRO’s narrow angle cameras, the ShadowCam was built to take high-resolution images of the Moon’s permanently shadowed regions, where frozen water is likely trapped. The relative velocity between the two spacecraft was about 7,000 miles, or 11,000 kilometers, per hour.
NASA/KARI/Arizona State University

LRO is managed by NASA’s Goddard Space Flight Center in Greenbelt, Maryland, for the Science Mission Directorate at NASA Headquarters in Washington. Launched on June 18, 2009, LRO has collected a treasure trove of data with its seven powerful instruments, making an invaluable contribution to our knowledge about the Moon. NASA is returning to the Moon with commercial and international partners to expand human presence in space and bring back new knowledge and opportunities.

By Mark Robinson, Arizona State University, Tempe, and Lonnie Shekhtman, NASA’s Goddard Space Flight Center, Greenbelt, Md.

Media Contact:
Nancy N. Jones
NASA’s Goddard Space Flight Center, Greenbelt, Md.

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Apr 05, 2024

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Rob Garner
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Nancy N. Jones
Location
Goddard Space Flight Center

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Rob Garner

Introduction to Spectrum

Introduction to Spectrum

You can’t see it. . .you can’t touch it. . .you can’t live without it. Use these downloadable activity sheets to enhance your lesson plan at school or at home. Scroll down for the downloadable files. Have fun!

Spectrum Infographic

Infographic featuring colorful images relevant to the electromagnetic spectrum.
Infographic featuring factoids about the electromagnetic spectrum.
NASA

Spectrum Crossword Puzzle

Crossword puzzle featuring terms relevant to the electromagnetic spectrum.
Crossword puzzle featuring terms relevant to the electromagnetic spectrum.
NASA

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Jermaine Walker