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    Home»Space»Lasers, Gas Blasts, and Hidden Water: How Perseverance Cracked Mars’ Stubborn Rock
    Space

    Lasers, Gas Blasts, and Hidden Water: How Perseverance Cracked Mars’ Stubborn Rock

    By Jet Propulsion LaboratoryJuly 6, 2025No Comments8 Mins Read
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    Mars 2020 SuperCam Laser Zapping
    Illustration of the Mars Perseverance Rover using its SuperCam instrument to laser zap a rock in order to test what it’s made of. Credit: NASA

    NASA’s Perseverance rover recently battled a difficult Mars rock nicknamed “Kenmore.”

    Using powerful tools like a nitrogen gas blaster and a laser-shooting camera, the rover revealed that the rock contained signs of water-rich clay, shiny feldspar, and even a rare mineral never seen on Mars before. Despite the rock’s resistance—vibrating and breaking apart—Perseverance pushed through and gathered valuable clues about Mars’ past.

    Boring Beneath Mars Dust

    NASA’s Perseverance rover is doing more than just drilling into Mars; it’s also grinding into rocks to uncover the secrets hidden just beneath their dusty surfaces.

    On June 3, the rover used its abrasion tool to wear down a section of rock and clear away the debris. Once the freshly exposed surface was revealed, Perseverance began studying it with a powerful suite of scientific instruments. The rock, nicknamed “Kenmore” by the team, became the 30th target to undergo this kind of close-up investigation. The process began with creating a circular abrasion patch about two inches (five centimeters) wide.

    Perseverance Rock Abrasion Tool Marks
    This close-up view of an abrasion showing distinctive “tool marks” created by the Perseverance’s abrading bit was acquired on June 5. The image was taken from approximately 2.76 inches (7 centimeters) away by the rover’s WATSON imager. Credit: NASA/JPL-Caltech/MSSS

    “Kenmore was a weird, uncooperative rock,” said Perseverance’s deputy project scientist, Ken Farley from Caltech in Pasadena, California. “Visually, it looked fine — the sort of rock we could get a good abrasion on and perhaps, if the science was right, perform a sample collection. But during abrasion, it vibrated all over the place and small chunks broke off. Fortunately, we managed to get just far enough below the surface to move forward with an analysis.”

    By removing the outer, weathered layer of rock, scientists can get a clearer view of its true composition and history. Creating a smooth, clean surface also helps the rover’s instruments make more accurate measurements, bringing us closer to understanding the story written in Mars’ ancient stone.

    Before drilling into the rocky outcrop nicknamed “Kenmore,” as seen here, Perseverance abraded the rock to determine whether it was worthy of drilling. The eight images that make up this video were taken approximately one minute apart. Credit: NASA/JPL-Caltech

    Super-Charged Grinding Tools

    NASA’s Mars Exploration Rovers, Spirit and Opportunity, each carried a diamond-dust-tipped grinder called the Rock Abrasion Tool (RAT) that spun at 3,000 revolutions per minute as the rover’s robotic arm pushed it deeper into the rock. Two wire brushes then swept the resulting debris, or tailings, out of the way. The agency’s Curiosity rover carries a Dust Removal Tool, whose wire bristles sweep dust from the rock’s surface before the rover drills into the rock. Perseverance, meanwhile, relies on a purpose-built abrading bit, and it clears the tailings with a device that surpasses wire brushes: the gaseous Dust Removal Tool, or gDRT.

    Perseverance’s Gold Colored Abrading Bit
    Perseverance’s gold-colored abrading bit takes center stage in this image of the rover’s drill taken by the Mastcam-Z instrument on Aug. 2, 2021, the 160th day of the mission to Mars. Credit: NASA/JPL-Caltech/ASU/MSSS

    “We use Perseverance’s gDRT to fire a 12-pounds-per-square-inch (about 83 kilopascals) puff of nitrogen at the tailings and dust that cover a freshly abraded rock,” said Kyle Kaplan, a robotic engineer at NASA’s Jet Propulsion Laboratory in Southern California. “Five puffs per abrasion — one to vent the tanks and four to clear the abrasion. And gDRT has a long way to go. Since landing at Jezero Crater over four years ago, we’ve puffed 169 times. There are roughly 800 puffs remaining in the tank.” The gDRT offers a key advantage over a brushing approach: It avoids any terrestrial contaminants that might be on a brush from getting on the Martian rock being studied.

    Having collected data on abraded surfaces more than 30 times, the rover team has in-situ science (studying something in its original place or position) collection pretty much down. After gDRT blows the tailings away, the rover’s WATSON (Wide Angle Topographic Sensor for Operations and eNgineering) imager (which, like gDRT, is at the end of the rover’s arm) swoops in for close-up photos. Then, from its vantage point high on the rover’s mast, SuperCam fires thousands of individual pulses from its laser, each time using a spectrometer to determine the makeup of the plume of microscopic material liberated after every zap. SuperCam also employs a different spectrometer to analyze the visible and infrared light that bounces off the materials in the abraded area.

    This video captures a test of Perseverance’s Gaseous Dust Removal Tool (gDRT) in a vacuum chamber at NASA’s Jet Propulsion Laboratory in August 2020. The tool fires puffs of nitrogen gas at the tailings and dust that cover a rock after it has been abraded by the rover. Credit: NASA/JPL-Caltech

    Clays, Feldspar & Surprise Minerals

    “SuperCam made observations in the abrasion patch and of the powdered tailings next to the patch,” said SuperCam team member and “Crater Rim” campaign science lead, Cathy Quantin-Nataf of the University of Lyon in France. “The tailings showed us that this rock contains clay minerals, which contain water as hydroxide molecules bound with iron and magnesium — relatively typical of ancient Mars clay minerals. The abrasion spectra gave us the chemical composition of the rock, showing enhancements in iron and magnesium.”

    Later, the SHERLOC (Scanning Habitable Environments with Raman & Luminescence for Organics & Chemicals) and PIXL (Planetary Instrument for X-ray Lithochemistry) instruments took a crack at Kenmore, too. Along with supporting SuperCam’s discoveries that the rock contained clay, they detected feldspar (the mineral that makes much of the Moon brilliantly bright in sunlight). The PIXL instrument also detected a manganese hydroxide mineral in the abrasion — the first time this type of material has been identified during the mission.

    Perseverance Drills a Rock on Jezero Crater Rim
    The robotic arm on NASA’s Perseverance Mars rover uses its percussive drill on a rocky outcrop near the rim of Jezero Crater that the science team calls “Kenmore” on June 10, 2025, the 1,531st Martian day, or sol, of the mission. Before drilling, the team abraded the rock to determine it was worthy of drilling. Credit: NASA/JPL-Caltech

    From Kenmore to Future Missions

    With Kenmore data collection complete, the rover headed off to new territories to explore rocks — both cooperative and uncooperative — along the rim of Jezero Crater.

    “One thing you learn early working on Mars rover missions is that not all Mars rocks are created equal,” said Farley. “The data we obtain now from rocks like Kenmore will help future missions so they don’t have to think about weird, uncooperative rocks. Instead, they’ll have a much better idea whether you can easily drive over it, sample it, separate the hydrogen and oxygen contained inside for fuel, or if it would be suitable to use as construction material for a habitat.”

    Perseverance AutoNav Leads Way
    This annotated composite image shows the path NASA’s Perseverance Mars rover took through a dense section of boulders. It was acquired on June 29, 2023, the 838th day, or sol, of the mission, by one of the rover’s navigation cameras and was annotated using the Robot Sequencing and Visualization Program. The pale blue line indicates the course of the center of the rover’s front wheel hubs, while the darker blue lines show the paths taken by the bottom of the rover’s six wheels. Credit: NASA/JPL-Caltech

    Record-Breaking Rover Drive

    On June 19 (the 1,540th Martian day, or sol, of the mission), Perseverance bested its previous record for distance traveled in a single autonomous drive, trekking 1,348 feet (411 meters). That’s about 210 feet (64 meters) more than its previous record, set on April 3, 2023 (Sol 753). While planners map out the rover’s general routes, Perseverance can cut down driving time between areas of scientific interest by using its self-driving system, AutoNav.

    “Perseverance drove 4½ football fields and could have gone even farther, but that was where the science team wanted us to stop,” said Camden Miller, a rover driver for Perseverance at JPL. “And we absolutely nailed our stop target location. Every day operating on Mars, we learn more on how to get the most out of our rover. And what we learn today future Mars missions won’t have to learn tomorrow.”

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