{"id":10743,"date":"2024-04-23T12:02:44","date_gmt":"2024-04-23T16:02:44","guid":{"rendered":"https:\/\/zobi.alcowep.com\/bourtagshdrevxnls658739\/pushing-the-limits-of-sub-kilowatt-electric-propulsion-technology-to-enable-planetary-exploration-and-commercial-mission-concepts\/"},"modified":"2024-04-23T12:02:44","modified_gmt":"2024-04-23T16:02:44","slug":"pushing-the-limits-of-sub-kilowatt-electric-propulsion-technology-to-enable-planetary-exploration-and-commercial-mission-concepts","status":"publish","type":"post","link":"https:\/\/zobi.alcowep.com\/bourtagshdrevxnls658739\/pushing-the-limits-of-sub-kilowatt-electric-propulsion-technology-to-enable-planetary-exploration-and-commercial-mission-concepts\/","title":{"rendered":"Pushing the Limits of Sub-Kilowatt Electric Propulsion Technology to Enable Planetary Exploration and Commercial Mission Concepts"},"content":{"rendered":"<h2 style=\"text-align: center;\">Pushing the Limits of Sub-Kilowatt Electric Propulsion Technology to Enable Planetary Exploration and Commercial Mission Concepts<\/h2>\n<p><!-- no image --><\/p>\n<div class=\"hds-article-hero-header nasa-gb-align-full bg-carbon-90 width-full maxw-full color-mode-dark hds-module hds-module-full wp-block-nasa-blocks-article-hero-header\">\n<div class=\"hds-cover-wrapper width-full maxw-full minh-tablet grid-container minh-tablet flex-column padding-0\">\n<div class=\"hds-foreground-wrapper display-flex flex-direction-column\">\n<div class=\"grid-container grid-container-block margin-top-auto width-full maxw-desktop-lg padding-y-9 padding-x-3 desktop:padding-x-0 z-400\">\n<div class=\"z-400 grid-col-12 tablet:grid-col-12 desktop:grid-col-7 z-400\">\n<div class=\"margin-0\">\n<div class=\"label color-spacesuit-white margin-bottom-2\">6 Min Read<\/div>\n<h1 class=\"heading-41 line-height-md color-spacesuit-white-important\">\n\t\t\t\t\t\t\t\tPushing the Limits of Sub-Kilowatt Electric Propulsion Technology to Enable Planetary Exploration and Commercial Mission Concepts\t\t\t\t\t\t\t<\/h1>\n<\/div>\n<\/div>\n<div class=\"grid-col-12 tablet:grid-col-12 desktop:grid-col-5\"><\/div>\n<div class=\"skrim-overlay skrim-left mobile-skrim-top z-200\"><\/div>\n<figure class=\"hds-media-background  \"><img loading=\"lazy\" decoding=\"async\" width=\"1536\" height=\"1025\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?w=1536\" class=\"attachment-1536x1536 size-1536x1536\" alt=\"A cylindrical metal device with an azimuthal white channel mounted to a metal support structure inside a much larger metal chamber. A blue glow lights up the azimuthal chamber and a blue plume radiates light to the right of the thruster.\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg 6016w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=300,200 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=768,513 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=1024,684 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=1536,1025 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=2048,1367 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=400,267 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=600,401 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=900,601 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=1200,801 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=2000,1335 2000w\" sizes=\"auto, (max-width: 1536px) 100vw, 1536px\"><\/figure>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"padding-y-3 padding-x-3\">\n<div class=\"grid-container grid-container-block padding-x-0\"><figcaption class=\"hds-caption maxw-mobile\">\n<div class=\"hds-caption-text p-sm margin-0 color-carbon-30\">\n<div><figcaption>Northrop Grumman NGHT-1X engineering model Hall-effect thruster operating in Glenn Research Center Vacuum Facility 8. The design of the NGHT-1X is based on the NASA-H71M Hall-effect thruster. <\/figcaption><\/div>\n<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<p>NASA has developed an advanced propulsion technology to facilitate future planetary exploration missions using small spacecraft. Not only will this technology enable new types of planetary science missions, one of NASA\u2019s commercial partners is already preparing to use it for another purpose\u2014to extend the lifetimes of spacecraft that are already in orbit. Identifying the opportunity for industry to use this new technology not only advances NASA\u2019s goal of technology commercialization, it could potentially create a path for NASA to acquire this important technology from industry for use in future planetary missions.<\/p>\n<h3 class=\"wp-block-heading\">The New Technology<\/h3>\n<p>Planetary science missions using small spacecraft will be required to perform challenging propulsive maneuvers\u2014such as achieving planetary escape velocities, orbit capture, and more\u2014that require a velocity change (delta-v) capability well in excess of typical commercial needs and the current state-of-the-art. Therefore, the #1 enabling technology for these small spacecraft missions is an electric propulsion system that can execute these high-delta-v maneuvers. The propulsion system must operate using low power (sub-kilowatt) and have high-propellant throughput (i.e., the capability to use a high total mass of propellant over its lifetime) to enable the impulse required to execute these maneuvers.<\/p>\n<p>After many years of research and development, researchers at NASA Glenn Research Center (GRC) have created a small spacecraft electric propulsion system to meet these needs\u2014the <a href=\"https:\/\/ntrs.nasa.gov\/api\/citations\/20220009248\/downloads\/2022%20IEPC%20-%20Benavides%20-%20Final.pdf\" rel=\"noopener\">NASA-H71M<\/a> sub-kilowatt Hall-effect thruster. In addition, the <a href=\"https:\/\/technology.nasa.gov\/patent\/LEW-TOPS-162\" rel=\"noopener\">successful commercialization<\/a> of this new thruster will soon provide at least one such solution to enable the next generation of small spacecraft science missions requiring up to an amazing 8 km\/s of delta-v. This technical feat was accomplished by the miniaturization of many advanced <a href=\"https:\/\/www.nasa.gov\/tdm\/solar-electric-propulsion\/\">high-power solar electric propulsion<\/a> technologies developed over the last decade for applications such as the Power and Propulsion Element of <a href=\"https:\/\/www.nasa.gov\/mission\/gateway\/\">Gateway<\/a>, humanity\u2019s first space station around the Moon.<\/p>\n<div class=\"hds-media hds-module wp-block-image\">\n<div class=\"margin-left-auto margin-right-auto nasa-block-align-inline\">\n<div class=\"hds-media-wrapper margin-left-auto margin-right-auto\">\n<figure class=\"hds-media-inner hds-cover-wrapper hds-media-ratio-fit \"><img loading=\"lazy\" decoding=\"async\" width=\"2048\" height=\"970\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?w=2048\" class=\"attachment-2048x2048 size-2048x2048\" alt=\"At left, a cylindrical metal device with an azimuthal white channel mounted on a metal support structure. On the right, an engineer touches the metal support structure with his left hand while closely watching how the metal device responds to a slight push.\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png 6333w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=300,142 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=768,364 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=1024,485 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=1536,728 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=2048,970 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=400,189 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=600,284 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=900,426 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=1200,568 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/electric-propulsion1.png?resize=2000,947 2000w\" sizes=\"auto, (max-width: 2048px) 100vw, 2048px\"><\/figure><figcaption class=\"hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">Left: NASA-H71M Hall-effect thruster on the Glenn Research Center Vacuum Facility 8 thrust stand. Right: Dr. Jonathan Mackey tuning the thrust stand prior to closing and pumping down the test facility.<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<h3 class=\"wp-block-heading\">Benefits of This Technology for Planetary Exploration<\/h3>\n<p>Small spacecraft using the NASA-H71M electric propulsion technology will be able to independently maneuver from low-Earth orbit (LEO) to the Moon or even from a geosynchronous transfer orbit (GTO) to Mars. This capability is especially remarkable because commercial launch opportunities to LEO and GTO have become routine, and the excess launch capacity of such missions is often sold at low cost to deploy secondary spacecraft. The ability to conduct missions that originate from these near-Earth orbits can greatly increase the cadence and lower the cost of lunar and Mars science missions.<\/p>\n<p>This propulsion capability will also increase the reach of secondary spacecraft, which have been historically limited to scientific targets that align with the primary mission\u2019s launch trajectory. This new technology will enable secondary missions to substantially deviate from the primary mission\u2019s trajectory, which will facilitate exploration of a wider range of scientific targets.<\/p>\n<p>In addition, these secondary spacecraft science missions would typically have only a short period of time to collect data during a high-speed flyby of a distant body. This greater propulsive capability will allow deceleration and orbital insertion at planetoids for long-term scientific study.<\/p>\n<p>Furthermore, small spacecraft outfitted with such significant propulsive capability will be better equipped to manage late-stage changes to the primary mission\u2019s launch trajectory. Such changes are frequently a top risk for small spacecraft science missions with limited onboard propulsive capability that depend on the initial launch trajectory to reach their science target.<\/p>\n<h3 class=\"wp-block-heading\">Commercial Applications<\/h3>\n<p>The megaconstellations of small spacecraft now forming in low-Earth orbits have made low-power Hall-effect thrusters the most abundant <a href=\"https:\/\/www.nasa.gov\/smallsat-institute\/sst-soa\/in-space_propulsion\/\">electric propulsion system<\/a> used in space today. These systems use propellant very efficiently, which allows for orbit insertion, de-orbiting, and many years of collision avoidance and re-phasing. However, the cost-conscious design of these commercial electric propulsion systems has inevitably limited their lifetime capability to typically less than a few thousand hours of operation and these systems can only process about 10% or less of a small spacecraft\u2019s initial mass in propellant.<\/p>\n<p>By contrast, planetary science missions benefiting from the NASA-H71M electric propulsion system technology could operate for 15,000 hours and process over 30% of the small spacecraft\u2019s initial mass in propellant. This game-changing capability is well beyond the needs of most commercial LEO missions and comes at a cost premium that makes commercialization for such applications unlikely. Therefore, NASA sought and continues to seek partnerships with companies developing innovative commercial small spacecraft mission concepts with unusually large propellant throughput requirements.<\/p>\n<p>One partner that will soon use the licensed NASA electric propulsion technology in a commercial small spacecraft application is SpaceLogistics, a wholly owned subsidiary of Northrop Grumman. The Mission Extension Pod (MEP) satellite servicing vehicle is equipped with a pair of Northrop Grumman NGHT-1X Hall-effect thrusters, whose design is based on the NASA-H71M. The small spacecraft\u2019s large propulsive capability will allow it to reach geosynchronous Earth orbit (GEO) where it will be mounted on a far larger satellite.\u00a0 Once installed, the MEP will serve as a \u201cpropulsion jet pack\u201d to extend the life of its host spacecraft for at least six years.<\/p>\n<p>Northrop Grumman is currently conducting a long duration wear test (LDWT) of the NGHT-1X in GRC\u2019s Vacuum Facility 11 to demonstrate its full lifetime operational capability. The LDWT is funded by Northrop Grumman through a fully reimbursable Space Act Agreement. The first MEP spacecraft are expected to launch in 2025, where they will extend the life of three GEO communication satellites.<\/p>\n<p>Collaborating with U.S. industry to find small spacecraft applications with propulsive requirements similar to future NASA planetary science missions not only supports U.S. industry in remaining a global leader in commercial space systems but creates new commercial opportunities for NASA to acquire these important technologies as planetary missions require them.<\/p>\n<div class=\"hds-media hds-module wp-block-image\">\n<div class=\"margin-left-auto margin-right-auto nasa-block-align-inline\">\n<div class=\"hds-media-wrapper margin-left-auto margin-right-auto\">\n<figure class=\"hds-media-inner hds-cover-wrapper hds-media-ratio-fit \"><img loading=\"lazy\" decoding=\"async\" width=\"2048\" height=\"1367\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?w=2048\" class=\"attachment-2048x2048 size-2048x2048\" alt=\"A cylindrical metal device with an azimuthal white channel mounted to a metal support structure inside a much larger metal chamber. A blue glow lights up the azimuthal chamber and a blue plume radiates light to the right of the thruster.\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg 6016w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=300,200 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=768,513 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=1024,684 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=1536,1025 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=2048,1367 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=400,267 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=600,401 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=900,601 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=1200,801 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/em1-bol-performance.jpg?resize=2000,1335 2000w\" sizes=\"auto, (max-width: 2048px) 100vw, 2048px\"><\/figure><figcaption class=\"hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">Northrop Grumman NGHT-1X engineering model Hall-effect thruster operating in Glenn Research Center Vacuum Facility 8. The design of the NGHT-1X is based on the NASA-H71M Hall-effect thruster. <\/div>\n<div class=\"hds-credits\">Credit: Northrop Grumman<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<p>NASA continues to mature the H71M electric propulsion technologies to expand the range of data and documentation available to U.S. industry for the purpose of developing similarly advanced and highly capable low-power electric propulsion devices.<\/p>\n<h3 class=\"wp-block-heading\">Project Lead<\/h3>\n<p>Dr. Gabriel F. Benavides, NASA Glenn Research Center (GRC)<\/p>\n<h3 class=\"wp-block-heading\">Sponsoring Organizations<\/h3>\n<p>Planetary Science Division \u2013 Planetary Exploration Science Technology Office (PESTO); Space Operations Mission Directorate \u2013 Commercial Space Capabilities Office (CSCO); Space Technology Mission Directorate \u2013 Game Changing Development (GCD) program; Space Technology Mission Directorate \u2013 Small Spacecraft Technology (SST) program<\/p>\n<div class=\"nasa-gb-align-full width-full maxw-full padding-x-3 padding-y-0 article_a hds-module hds-module-full wp-block-nasa-blocks-credits-and-details\">\n<section class=\"padding-x-0 padding-top-5 padding-bottom-2 desktop:padding-top-7 desktop:padding-bottom-9\">\n<div class=\"grid-row grid-container maxw-widescreen padding-0\">\n<div class=\"grid-col-12 desktop:grid-col-2 padding-right-4 margin-bottom-5 desktop:margin-bottom-0\">\n<div class=\"padding-top-3 border-top-1px border-color-carbon-black\">\n<div 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\">\n<div class=\"margin-bottom-2\">\n<h2 class=\"heading-14\">Related Terms<\/h2>\n<\/div>\n<ul class=\"article-tags\">\n<li class=\"article-tag\"><a href=\"https:\/\/science.nasa.gov\/planetary-science\/\" rel=\"noopener\">Planetary Science<\/a><\/li>\n<li class=\"article-tag\"><a href=\"https:\/\/science.nasa.gov\/planetary-science\/\" rel=\"noopener\">Planetary Science Division<\/a><\/li>\n<li class=\"article-tag\"><a href=\"https:\/\/science.nasa.gov\/technology\" rel=\"noopener\">Science-enabling Technology<\/a><\/li>\n<li class=\"article-tag\"><a href=\"https:\/\/www.nasa.gov\/directorates\/space-operations\/\">Space Operations Mission Directorate<\/a><\/li>\n<li class=\"article-tag\"><a href=\"https:\/\/www.nasa.gov\/space-technology-mission-directorate\/\">Space Technology Mission Directorate<\/a><\/li>\n<li class=\"article-tag\"><a href=\"https:\/\/science.nasa.gov\/technology-highlights\/\" rel=\"noopener\">Technology Highlights<\/a><\/li>\n<\/ul>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<\/div>\n<div class=\"nasa-gb-align-full width-full maxw-full padding-x-3 padding-y-0 hds-module hds-module-full wp-block-nasa-blocks-related-articles\">\n<section class=\"hds-related-articles padding-x-0 padding-y-3 desktop:padding-top-7 desktop:padding-bottom-9\">\n<div class=\"w-100 grid-row grid-container maxw-widescreen padding-0 text-align-left\">\n<div class=\"margin-bottom-4\">\n<h2 class=\"width-full w-full maxw-full\">Explore More<\/h2>\n<\/div>\n<\/div>\n<div class=\"grid-row grid-container maxw-widescreen padding-0\">\n<div class=\"grid-col-12 desktop:grid-col-4 margin-bottom-4 desktop:margin-bottom-0 desktop:padding-right-3\">\n\t\t\t\t\t\t<a href=\"https:\/\/science.nasa.gov\/solar-system\/planets\/mars\/why-is-methane-seeping-on-mars-nasa-scientists-have-new-ideas\/\" class=\"color-carbon-black\" rel=\"noopener\"><\/p>\n<div class=\"margin-bottom-2\">\n<div class=\"hds-cover-wrapper cover-hover-zoom bg-carbon-black minh-mobile\">\n<figure class=\"hds-media-background  \"><img loading=\"lazy\" decoding=\"async\" width=\"300\" height=\"169\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/04\/44525-pia23374-16.webp?w=300\" class=\"attachment-medium size-medium\" alt=\"\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/44525-pia23374-16.webp 1400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/44525-pia23374-16.webp?resize=300,169 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/44525-pia23374-16.webp?resize=768,432 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/44525-pia23374-16.webp?resize=1024,576 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/44525-pia23374-16.webp?resize=400,225 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/44525-pia23374-16.webp?resize=600,338 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/44525-pia23374-16.webp?resize=900,507 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/44525-pia23374-16.webp?resize=1200,675 1200w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\"><\/figure>\n<\/div>\n<\/div>\n<div class=\"padding-right-0 desktop:padding-right-10\">\n<div class=\"subheading margin-bottom-1\">5 min read<\/div>\n<div class=\"margin-bottom-1\">\n<h3 class=\"related-article-title\">Why is Methane Seeping on Mars? NASA Scientists Have New Ideas<\/h3>\n<\/div>\n<div class=\"display-flex flex-align-center label related-article-label margin-bottom-1 color-carbon-60\">\n\t\t\t\t\t\t\t\t\t<span class=\"display-flex flex-align-center margin-right-2\"><br \/>\n\t\t\t\t\t\t\t\t\t\t<svg version=\"1.1\" class=\"square-2 margin-right-1\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\" xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\" x=\"0px\" y=\"0px\" width=\"16px\" height=\"16px\" viewbox=\"0 0 16 16\" xml:space=\"preserve\"><g><g><path d=\"M8,0C3.5,0-0.1,3.7,0,8.2C0.1,12.5,3.6,16,8,16c4.4,0,8-3.6,8-8C16,3.5,12.4,0,8,0z M8,15.2 C4,15.2,0.8,12,0.8,8C0.8,4,4,0.8,8,0.8c3.9,0,7.2,3.2,7.2,7.1C15.2,11.9,12,15.2,8,15.2z\"><\/path><path d=\"M5.6,12c0.8-0.8,1.6-1.6,2.4-2.4c0.8,0.8,1.6,1.6,2.4,2.4c0-2.7,0-5.3,0-8C8.8,4,7.2,4,5.6,4 C5.6,6.7,5.6,9.3,5.6,12z\"><\/path><\/g><\/g><\/svg><br \/>\n\t\t\t\t\t\t\t\t\t\t<span>Article<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<span class=\"\"><br \/>\n\t\t\t\t\t\t\t\t\t\t23 hours ago\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t<\/div>\n<\/div>\n<p><\/a>\n\t\t\t\t\t<\/div>\n<div class=\"grid-col-12 desktop:grid-col-4 margin-bottom-4 desktop:margin-bottom-0 desktop:padding-right-3\">\n\t\t\t\t\t\t<a href=\"https:\/\/science.nasa.gov\/missions\/dragonfly\/nasas-dragonfly-rotorcraft-mission-to-saturns-moon-titan-confirmed\/\" class=\"color-carbon-black\" rel=\"noopener\"><\/p>\n<div class=\"margin-bottom-2\">\n<div class=\"hds-cover-wrapper cover-hover-zoom bg-carbon-black minh-mobile\">\n<figure class=\"hds-media-background  \"><img loading=\"lazy\" decoding=\"async\" width=\"300\" height=\"190\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?w=300\" class=\"attachment-medium size-medium\" alt=\"\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg 2400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=300,190 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=768,486 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=1024,649 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=1536,973 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=2048,1297 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=400,253 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=600,380 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=900,570 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=1200,760 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/dragonfly-inflight.jpg?resize=2000,1267 2000w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\"><\/figure>\n<\/div>\n<\/div>\n<div class=\"padding-right-0 desktop:padding-right-10\">\n<div class=\"subheading margin-bottom-1\">3 min read<\/div>\n<div class=\"margin-bottom-1\">\n<h3 class=\"related-article-title\">NASA\u2019s Dragonfly Rotorcraft Mission to Saturn\u2019s Moon Titan Confirmed<\/h3>\n<\/div>\n<div class=\"display-flex flex-align-center label related-article-label margin-bottom-1 color-carbon-60\">\n\t\t\t\t\t\t\t\t\t<span class=\"display-flex flex-align-center margin-right-2\"><br \/>\n\t\t\t\t\t\t\t\t\t\t<svg version=\"1.1\" class=\"square-2 margin-right-1\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\" xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\" x=\"0px\" y=\"0px\" width=\"16px\" height=\"16px\" viewbox=\"0 0 16 16\" xml:space=\"preserve\"><g><g><path d=\"M8,0C3.5,0-0.1,3.7,0,8.2C0.1,12.5,3.6,16,8,16c4.4,0,8-3.6,8-8C16,3.5,12.4,0,8,0z M8,15.2 C4,15.2,0.8,12,0.8,8C0.8,4,4,0.8,8,0.8c3.9,0,7.2,3.2,7.2,7.1C15.2,11.9,12,15.2,8,15.2z\"><\/path><path d=\"M5.6,12c0.8-0.8,1.6-1.6,2.4-2.4c0.8,0.8,1.6,1.6,2.4,2.4c0-2.7,0-5.3,0-8C8.8,4,7.2,4,5.6,4 C5.6,6.7,5.6,9.3,5.6,12z\"><\/path><\/g><\/g><\/svg><br \/>\n\t\t\t\t\t\t\t\t\t\t<span>Article<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<span class=\"\"><br \/>\n\t\t\t\t\t\t\t\t\t\t7 days ago\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t<\/div>\n<\/div>\n<p><\/a>\n\t\t\t\t\t<\/div>\n<div class=\"grid-col-12 desktop:grid-col-4 margin-bottom-4 desktop:margin-bottom-0 desktop:padding-right-3\">\n\t\t\t\t\t\t<a href=\"https:\/\/science.nasa.gov\/science-research\/science-enabling-technology\/making-ultra-fast-electron-measurements-in-multiple-directions-to-reveal-the-secrets-of-the-aurora\/\" class=\"color-carbon-black\" rel=\"noopener\"><\/p>\n<div class=\"margin-bottom-2\">\n<div class=\"hds-cover-wrapper cover-hover-zoom bg-carbon-black minh-mobile\">\n<figure class=\"hds-media-background  \"><img loading=\"lazy\" decoding=\"async\" width=\"300\" height=\"200\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?w=300\" class=\"attachment-medium size-medium\" alt=\"\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg 3379w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=300,200 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=768,512 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=1024,683 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=1536,1024 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=2048,1366 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=400,267 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=600,400 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=900,600 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=1200,800 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/04\/aurora-5.jpg?resize=2000,1334 2000w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\"><\/figure>\n<\/div>\n<\/div>\n<div class=\"padding-right-0 desktop:padding-right-10\">\n<div class=\"subheading margin-bottom-1\">3 min read<\/div>\n<div class=\"margin-bottom-1\">\n<h3 class=\"related-article-title\">Making Ultra-fast Electron Measurements in Multiple Directions to Reveal the Secrets of the Aurora<\/h3>\n<\/div>\n<p class=\"p-md color-carbon-60\">The energetic electrons that drive the aurora borealis (the northern lights) have a rich and\u2026<\/p>\n<div class=\"display-flex flex-align-center label related-article-label margin-bottom-1 color-carbon-60\">\n\t\t\t\t\t\t\t\t\t<span class=\"display-flex flex-align-center margin-right-2\"><br \/>\n\t\t\t\t\t\t\t\t\t\t<svg version=\"1.1\" class=\"square-2 margin-right-1\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\" xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\" x=\"0px\" y=\"0px\" width=\"16px\" height=\"16px\" viewbox=\"0 0 16 16\" xml:space=\"preserve\"><g><g><path d=\"M8,0C3.5,0-0.1,3.7,0,8.2C0.1,12.5,3.6,16,8,16c4.4,0,8-3.6,8-8C16,3.5,12.4,0,8,0z M8,15.2 C4,15.2,0.8,12,0.8,8C0.8,4,4,0.8,8,0.8c3.9,0,7.2,3.2,7.2,7.1C15.2,11.9,12,15.2,8,15.2z\"><\/path><path d=\"M5.6,12c0.8-0.8,1.6-1.6,2.4-2.4c0.8,0.8,1.6,1.6,2.4,2.4c0-2.7,0-5.3,0-8C8.8,4,7.2,4,5.6,4 C5.6,6.7,5.6,9.3,5.6,12z\"><\/path><\/g><\/g><\/svg><br \/>\n\t\t\t\t\t\t\t\t\t\t<span>Article<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<span class=\"\"><br \/>\n\t\t\t\t\t\t\t\t\t\t2 weeks ago\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t<\/div>\n<\/div>\n<p><\/a>\n\t\t\t\t\t<\/div>\n<\/div>\n<\/section>\n<\/div>\n<p class=\"wpematico_credit\"><small>Powered by <a href=\"http:\/\/www.wpematico.com\" target=\"_blank\" rel=\"noopener\">WPeMatico<\/a><\/small><\/p>\n<p><a href=\"https:\/\/science.nasa.gov\/science-research\/science-enabling-technology\/pushing-the-limits-of-sub-kilowatt-electric-propulsion-technology-to-enable-planetary-exploration-and-commercial-mission-concepts\/\" target=\"_blank\" rel=\"noopener\">Get The Details&#8230;<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p>NASA has developed an advanced propulsion technology to facilitate future planetary exploration missions using small spacecraft. Not only will this technology enable new types of planetary science missions, one of NASA\u2019s commercial partners is already preparing to use it for another purpose\u2014to extend the lifetimes of spacecraft that are already in orbit. Identifying the opportunity [\u2026] <a class=\"continue-reading-link\" href=\"https:\/\/zobi.alcowep.com\/bourtagshdrevxnls658739\/pushing-the-limits-of-sub-kilowatt-electric-propulsion-technology-to-enable-planetary-exploration-and-commercial-mission-concepts\/\"> Continue reading <span class=\"meta-nav\">&rarr; <\/span><\/a><\/p>\n<div class='heateorSssClear'><\/div><div  class='heateor_sss_sharing_container heateor_sss_horizontal_sharing' data-heateor-sss-href='https:\/\/zobi.alcowep.com\/bourtagshdrevxnls658739\/pushing-the-limits-of-sub-kilowatt-electric-propulsion-technology-to-enable-planetary-exploration-and-commercial-mission-concepts\/'><div class='heateor_sss_sharing_title' style=\"font-weight:bold\" >Spread the love<\/div><div class=\"heateor_sss_sharing_ul\"><a aria-label=\"Facebook\" class=\"heateor_sss_facebook\" 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