{"id":14552,"date":"2025-09-30T12:02:07","date_gmt":"2025-09-30T16:02:07","guid":{"rendered":"https:\/\/zobi.alcowep.com\/bourtagshdrevxnls658739\/making-high-fidelity-fluxgate-cores-for-space-science-and-space-weather-missions\/"},"modified":"2025-09-30T12:02:07","modified_gmt":"2025-09-30T16:02:07","slug":"making-high-fidelity-fluxgate-cores-for-space-science-and-space-weather-missions","status":"publish","type":"post","link":"https:\/\/zobi.alcowep.com\/bourtagshdrevxnls658739\/making-high-fidelity-fluxgate-cores-for-space-science-and-space-weather-missions\/","title":{"rendered":"Making High Fidelity Fluxgate Cores for Space Science and Space Weather Missions"},"content":{"rendered":"<h2 style=\"text-align: center;\">Making High Fidelity Fluxgate Cores for Space Science and Space Weather Missions<\/h2>\n<p><!-- no image --><\/p>\n<p><strong><em>A NASA-sponsored team at the University of Iowa (UI) is restoring and advancing the nation\u2019s capability to make high-fidelity magnetic field measurements needed to investigate space weather that can impact our communication and power grids on Earth and our assets in space.<\/em><\/strong><\/p>\n<p>Fluxgate magnetometers are widely-used space science and space weather instruments, but they depend on a legacy component\u2014a ferromagnetic core\u2014that was developed and manufactured for the U.S. Navy using technology that has been subsequently lost to the civilian community.<\/p>\n<p>The UI team manufactures new fluxgate cores using a method that does not rely on legacy processes or materials and then integrates these cores into modern spaceflight magnetometers. The ferromagnetic cores are produced starting from base metal powders that are melted into custom alloys, rolled into thin foils, formed into the desired geometry of the fluxgate core, and artificially aged using heat to optimize their magnetic properties. The resulting cores are integrated into a complete fluxgate sensor ready for spaceflight applications.<\/p>\n<p>Designing, prototyping, and manufacturing the cores, sensors, and paired electronics in house allows the team to explore new sensor geometries that are compatible with different missions. Most recently, the UI team developed a new core to be used in the Space Weather Iowa Magnetometer (SWIM). While the SWIM core is based on a core previously developed for the <a href=\"https:\/\/science.nasa.gov\/science-research\/science-enabling-technology\/technology-highlights\/rediscovering-the-lost-art-of-fluxgate-magnetometer-cores\/\" rel=\"noopener\">MAGnetometers for Innovation and Capability (MAGIC) Tesseract sensor<\/a> that recently launched on NASA\u2019s <a href=\"https:\/\/science.nasa.gov\/blogs\/tracers\/\" rel=\"noopener\">TRACERS (Tandem Reconnection and Cusp Electrodynamics Reconnaissance Satellites) mission<\/a> the SWIM core is miniaturized and retains the same level of performance. The first flight opportunity for the SWIM fluxgate is on the University of Oslo\u2019s ICI-5bis sounding rocket mission that is scheduled to launch in winter 2025\/2026 from the Andoya Space Sub-Orbital range in Norway.<\/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 \"><a href=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=4032&#038;h=3024&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" rel=\"noopener\"><img decoding=\"async\" width=\"4032\" height=\"3024\" src=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=4032&#038;h=3024&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" class=\"attachment-2048x2048 size-2048x2048\" alt=\"Four individuals working in a laboratory surrounded by various types of hardware on tables.\" block_context=\"nasa-block\" loading=\"lazy\" srcset=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=4032&#038;h=3024&#038;fit=crop&#038;crop=faces%2Cfocalpoint 4032w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=300&#038;h=225&#038;fit=crop&#038;crop=faces%2Cfocalpoint 300w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=768&#038;h=576&#038;fit=crop&#038;crop=faces%2Cfocalpoint 768w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=1024&#038;h=768&#038;fit=crop&#038;crop=faces%2Cfocalpoint 1024w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=1536&#038;h=1152&#038;fit=crop&#038;crop=faces%2Cfocalpoint 1536w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=2048&#038;h=1536&#038;fit=crop&#038;crop=faces%2Cfocalpoint 2048w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=400&#038;h=300&#038;fit=crop&#038;crop=faces%2Cfocalpoint 400w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=600&#038;h=450&#038;fit=crop&#038;crop=faces%2Cfocalpoint 600w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=900&#038;h=675&#038;fit=crop&#038;crop=faces%2Cfocalpoint 900w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=1200&#038;h=900&#038;fit=crop&#038;crop=faces%2Cfocalpoint 1200w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/ICI5b_Integration.jpeg?w=2000&#038;h=1500&#038;fit=crop&#038;crop=faces%2Cfocalpoint 2000w\" sizes=\"auto, (max-width: 4032px) 100vw, 4032px\"><\/a><\/figure><figcaption class=\"hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">Integration of the SWIM sensor for the ICI-5bis Suborbital Sounding Rocket.<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<p>Fluxgate magnetometers sense the magnetic field by detecting the electromagnetic force (EMF) induced by the changing magnetic flux. Current is driven into the drive winding (the interior winding on the fluxgate core) creating a magnetic field. When the ferromagnetic material in the cores experiences the magnetic field, its relative permeability (the intrinsic magnetic property of the metal within the core) changes. As the relative permeability changes, a voltage is induced in the sense winding (the outer winding on the core). By knowing the amount of current driven into the core and the voltage that was induced in the sense winding, we can understand the magnetic field that the sensor is experiencing. Most in-space magnetometers are not located onboard the main body of the spacecraft; instead, they are placed on booms to ensure that the magnetic fields produced by the electronics and magnetic materials onboard the spacecraft do not interfere with the sensor.<\/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-none \"><a href=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=12034&#038;h=6034&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" rel=\"noopener\"><img decoding=\"async\" width=\"12034\" height=\"6034\" src=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=12034&#038;h=6034&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" class=\"attachment-2048x2048 size-2048x2048\" alt=\"Various colored lines depicting noise values over frequency on a grid background\" block_context=\"nasa-block\" loading=\"lazy\" srcset=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=12034&#038;h=6034&#038;fit=crop&#038;crop=faces%2Cfocalpoint 12034w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=300&#038;h=150&#038;fit=crop&#038;crop=faces%2Cfocalpoint 300w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=768&#038;h=385&#038;fit=crop&#038;crop=faces%2Cfocalpoint 768w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=1024&#038;h=513&#038;fit=crop&#038;crop=faces%2Cfocalpoint 1024w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=1536&#038;h=770&#038;fit=crop&#038;crop=faces%2Cfocalpoint 1536w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=2048&#038;h=1027&#038;fit=crop&#038;crop=faces%2Cfocalpoint 2048w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=400&#038;h=201&#038;fit=crop&#038;crop=faces%2Cfocalpoint 400w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=600&#038;h=301&#038;fit=crop&#038;crop=faces%2Cfocalpoint 600w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=900&#038;h=451&#038;fit=crop&#038;crop=faces%2Cfocalpoint 900w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=1200&#038;h=602&#038;fit=crop&#038;crop=faces%2Cfocalpoint 1200w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Noise_Plot_SWIM_Sensor-01.png?w=2000&#038;h=1003&#038;fit=crop&#038;crop=faces%2Cfocalpoint 2000w\" sizes=\"auto, (max-width: 12034px) 100vw, 12034px\"><\/a><\/figure><figcaption class=\"hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">Example noise plot of a SWIM fluxgate core showing <5 pT\/\u221aHz at 1 Hz noise performance.<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<p>The manufacturing process for these new cores is now well documented and ~90% of the cores produced have a noise floor that is comparable or better than previous legacy cores. Consequently, UI can reliably mass-produce cores for the SWIM payload and potential future follow-on missions.\u00a0<\/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 \"><a href=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Mag%20Composite-01.png?w=2677&#038;h=1074&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" rel=\"noopener\"><img decoding=\"async\" width=\"2677\" height=\"1074\" src=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Mag%20Composite-01.png?w=2677&#038;h=1074&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" class=\"attachment-2048x2048 size-2048x2048\" alt=\"Two copper wire-wrapped cube sensor designs highlighting the difference in sensor geometry\" block_context=\"nasa-block\" loading=\"lazy\"><\/a><\/figure><figcaption class=\"hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">The Tesseract sensor from the MAGIC payload on the TRACERS mission (Left). The SWIM sensor (Right) is more compact, simpler to assemble, and provides equal or better performance in the relevant figures of merit (mass, power, volume, magnetic noise, offset, etc.)<\/div>\n<div class=\"hds-credits\">Credit: NASA GSFC<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<p>The new SWIM magnetometer design reflects three significant changes compared to the previous MAGIC instrument. The sensor has been simplified and shrunk. Its power consumption has been reduced without sacrificing measurement performance. Both these changes aid its accommodation on a magnetometer boom. In addition, the topology of the paired electronics in each magnetometer channel has been redesigned, which allows use of lower-performance parts that tolerate a higher radiation exposure.<\/p>\n<p><strong>Reduced Sensor size:<\/strong> The compact SWIM design reduces the sensor size by ~30% compared to the MAGIC sensor, with further reduction to the sensor mass likely as the mechanical design is optimized. The MAGIC Tesseract design used six cores whereas the SWIM sensor utilizes three smaller cores of the same geometry. Mass is a major performance driver for deployable boom design and vehicle dynamics. The SWIM sensor can also be manufactured with a lightweight carbon-composite cover (or the cover can be omitted) to achieve a sensor mass of ~110 g, which would enable the sensor to be easily accommodated on small satellite booms.<\/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 \"><a href=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Goddard%20Calibration.JPG?w=3776&#038;h=2520&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" rel=\"noopener\"><img decoding=\"async\" width=\"3776\" height=\"2520\" src=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/science-enabling-technology\/technology-highlights\/2025\/Goddard%20Calibration.JPG?w=3776&#038;h=2520&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" class=\"attachment-2048x2048 size-2048x2048\" alt=\"A sensor in a black box on a green table in a calibration facility\" block_context=\"nasa-block\" loading=\"lazy\"><\/a><\/figure><figcaption class=\"hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">SWIM sensor magnetic calibration at the Goddard Space Flight Center.<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<p><strong>Reduced Power consumption:<\/strong> Using three smaller cores with improved metallurgy instead of six large racetrack cores reduced the power consumption of the SWIM sensor by a factor of two compared to the MAGIC sensor. Although this power reduction is modest compared to the total consumption of the instrument, it positively impacts the capability for boom deployment. Significant reduction in heat dissipation at the sensor minimizes the spot-heating of the deployable boom and reduces thermal gradients that can drive boom deformation\/rotation, which impacts the pointing knowledge at the sensor. These improvements to the sensor have been achieved without impacting the measurement fidelity. In fact, prototype miniaturized SWIM race-track cores are outperforming the previous MAGIC cores due to their improved metallurgy.<\/p>\n<p><strong>Updated Electronics Topology:<\/strong> The MAGIC electronics use a traditional analog demodulator fluxgate and magnetic feedback design. This design requires high-performance components to be able to resolve small variations in large ambient magnetic fields. There are radiation limitations to these high-performance components making it difficult for the MAGIC design to operate in a high-radiation environment. To mitigate these issues, the SWIM design employs digital demodulation instead of analog demodulation and provides magnetic feedback via temperature-compensated, digital, pulse-width-modulation. This update to the electronics enables SWIM to potentially be used in long-duration and\/or high-reliability operational applications such as radiation belt missions or planetary missions with long cruise phases.<\/p>\n<p>The SWIM fluxgate design allows for more future applications in a variety of environments without sacrificing the performance seen on the MAGIC sensors. The UI team is looking forward to multiple upcoming flight opportunities for SWIM, including on the Observing Cusp High-altitude Reconnection and Electrodynamics (OCHRE) and ICI5bis sounding rockets.<\/p>\n<p><strong>Project Lead(s):<\/strong><strong> <\/strong>Dr. David Miles, University of Iowa<\/p>\n<p><strong>Sponsoring Organization(s): <\/strong>Heliophysics Strategic Technology Office (HESTO)<strong><\/strong><\/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 alignfull 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 class=\"margin-bottom-2\">\n<h2 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652H392c0-134-111-244-244-244V307c189 0 345 156 345 345zm71 0c0-228-188-416-416-416V132c285 0 520 235 520 520z\"><\/path><circle cx=\"219\" cy=\"581\" r=\"71\"><\/circle><\/svg><br \/>\n\t\t\t\t\t\t\t<\/a>\n\t\t\t\t\t\t<\/li>\n<\/ul>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"grid-col-12 desktop:grid-col-5 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 class=\"margin-bottom-2\">\n<h2 class=\"heading-14\">Details<\/h2>\n<\/div>\n<div class=\"grid-row margin-bottom-3\">\n<div class=\"grid-col-4\">\n<div class=\"subheading\">Last Updated<\/div>\n<\/div>\n<div class=\"grid-col-8\">Sep 30, 2025<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"grid-col-12 desktop:grid-col-5 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 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\/heliophysics\/\" rel=\"noopener\">Heliophysics<\/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:\/\/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 alignfull 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 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srcset=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/hpd\/geospace\/1514px-earth_in_ultraviolet_from_the_moon_s72-40821.jpg?w=400&#038;h=400&#038;fit=crop&#038;crop=faces%2Cfocalpoint 400w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/hpd\/geospace\/1514px-earth_in_ultraviolet_from_the_moon_s72-40821.jpg?w=150&#038;h=150&#038;fit=crop&#038;crop=faces%2Cfocalpoint 150w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/hpd\/geospace\/1514px-earth_in_ultraviolet_from_the_moon_s72-40821.jpg?w=300&#038;h=300&#038;fit=crop&#038;crop=faces%2Cfocalpoint 300w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/hpd\/geospace\/1514px-earth_in_ultraviolet_from_the_moon_s72-40821.jpg?w=50&#038;h=50&#038;fit=crop&#038;crop=faces%2Cfocalpoint 50w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/hpd\/geospace\/1514px-earth_in_ultraviolet_from_the_moon_s72-40821.jpg?w=100&#038;h=100&#038;fit=crop&#038;crop=faces%2Cfocalpoint 100w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/hpd\/geospace\/1514px-earth_in_ultraviolet_from_the_moon_s72-40821.jpg?w=200&#038;h=200&#038;fit=crop&#038;crop=faces%2Cfocalpoint 200w\" sizes=\"auto, (max-width: 400px) 100vw, 400px\"><\/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\">New NASA Mission to Reveal Earth\u2019s Invisible \u2018Halo\u2019<\/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\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 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\/nasas-imap-mission-to-study-boundaries-of-our-home-in-space\/\" 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 decoding=\"async\" width=\"2772\" height=\"2040\" src=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/ciencia\/sistema-solar\/2025\/IMAP-illustration.jpg?w=2772&#038;h=2040&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" class=\"attachment-medium size-medium\" alt=\"\" block_context=\"nasa-block\" loading=\"lazy\" srcset=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/ciencia\/sistema-solar\/2025\/IMAP-illustration.jpg?w=2772&#038;h=2040&#038;fit=crop&#038;crop=faces%2Cfocalpoint 2772w, 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2772px\"><\/figure>\n<\/div>\n<\/div>\n<div class=\"padding-right-0 desktop:padding-right-10\">\n<div class=\"subheading margin-bottom-1\">6 min read<\/div>\n<div class=\"margin-bottom-1\">\n<h3 class=\"related-article-title\">NASA\u2019s IMAP Mission to Study Boundaries of Our Home in Space<\/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\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 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\/heliophysics\/upcoming-launch-to-boost-nasas-study-of-suns-influence-across-space\/\" 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 decoding=\"async\" width=\"2772\" height=\"2040\" src=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/ciencia\/sistema-solar\/2025\/IMAP-illustration.jpg?w=2772&#038;h=2040&#038;fit=clip&#038;crop=faces%2Cfocalpoint\" class=\"attachment-medium size-medium\" alt=\"\" block_context=\"nasa-block\" loading=\"lazy\" srcset=\"https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/ciencia\/sistema-solar\/2025\/IMAP-illustration.jpg?w=2772&#038;h=2040&#038;fit=crop&#038;crop=faces%2Cfocalpoint 2772w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/ciencia\/sistema-solar\/2025\/IMAP-illustration.jpg?w=300&#038;h=221&#038;fit=crop&#038;crop=faces%2Cfocalpoint 300w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/ciencia\/sistema-solar\/2025\/IMAP-illustration.jpg?w=768&#038;h=565&#038;fit=crop&#038;crop=faces%2Cfocalpoint 768w, 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https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/ciencia\/sistema-solar\/2025\/IMAP-illustration.jpg?w=900&#038;h=662&#038;fit=crop&#038;crop=faces%2Cfocalpoint 900w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/ciencia\/sistema-solar\/2025\/IMAP-illustration.jpg?w=1200&#038;h=883&#038;fit=crop&#038;crop=faces%2Cfocalpoint 1200w, https:\/\/assets.science.nasa.gov\/dynamicimage\/assets\/science\/cds\/ciencia\/sistema-solar\/2025\/IMAP-illustration.jpg?w=2000&#038;h=1472&#038;fit=crop&#038;crop=faces%2Cfocalpoint 2000w\" sizes=\"auto, (max-width: 2772px) 100vw, 2772px\"><\/figure>\n<\/div>\n<\/div>\n<div class=\"padding-right-0 desktop:padding-right-10\">\n<div class=\"subheading margin-bottom-1\">6 min read<\/div>\n<div class=\"margin-bottom-1\">\n<h3 class=\"related-article-title\">Upcoming Launch to Boost NASA\u2019s Study of Sun\u2019s Influence Across Space<\/h3>\n<\/div>\n<div class=\"display-flex flex-align-center label 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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\">WPeMatico<\/a><\/small><\/p>\n<p><a  href=\"https:\/\/science.nasa.gov\/science-research\/heliophysics\/making-high-fidelity-fluxgate-cores-for-space-science-and-space-weather-missions\/\"  target=\"_blank\" rel=\"noopener\">Get The Details&#8230;<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p>A NASA-sponsored team at the University of Iowa (UI) is restoring and advancing the nation\u2019s capability to make high-fidelity magnetic field measurements needed to investigate space weather that can impact our communication and power grids on Earth and our assets in space. <a class=\"continue-reading-link\" href=\"https:\/\/zobi.alcowep.com\/bourtagshdrevxnls658739\/making-high-fidelity-fluxgate-cores-for-space-science-and-space-weather-missions\/\"> 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