{"id":39015,"date":"2016-07-03T18:33:33","date_gmt":"2016-07-03T10:33:33","guid":{"rendered":"https:\/\/wp-productionenv-bjg9h2g2bgg5b8aa.southeastasia-01.azurewebsites.net\/news\/juno-successfully-completes-orbital-insertion-burn-to-arrive-at-jupiter\/"},"modified":"2016-07-03T18:33:33","modified_gmt":"2016-07-03T10:33:33","slug":"juno-successfully-completes-orbital-insertion-burn-to-arrive-at-jupiter","status":"publish","type":"post","link":"https:\/\/starpath.global\/news\/juno-successfully-completes-orbital-insertion-burn-to-arrive-at-jupiter\/","title":{"rendered":"Juno successfully completes orbital insertion burn to arrive at Jupiter"},"content":{"rendered":"<p><b><\/b>After a near five year cruise through the solar system, NASA\u2019s Juno spacecraft has become the second craft to permanently enter orbit of the largest planet in our solar system. &nbsp;The mission to Jupiter is anticipated to last 20 months in a polar orbit orientation to study Jupiter\u2019s formation, composition, gravity field, magnetic field, and polar magnetosphere.<\/p>\n<\/p>\n<p><b>Mission background:<\/b><\/p>\n<p>Originally proposed in fiscal year 2003, the Juno mission is part of NASA\u2019s New Frontiers program and was designed as a follow-on mission to examine elements of the Jovian system that the Galileo mission of the 1990s either could not examine or returned intriguing results of.<\/p>\n<p><img fetchpriority=\"high\" decoding=\"async\" class=\"size-medium wp-image-45798 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.42.28-350x293.png\" alt=\"Screen Shot 2016-07-02 at 14.42.28\" width=\"350\" height=\"293\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.42.28-350x293.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.42.28-419x350.png 419w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.42.28-768x642.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.42.28-1170x978.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.42.28.png 1416w\" sizes=\"(max-width: 350px) 100vw, 350px\">Under its original proposal, the name Juno was chosen to compliment the god Jupiter in Greco-Roman mythology as Juno was Jupiter\u2019s wife and was able to see behind the veil of secrecy Jupiter cast around himself to reveal his true nature. <\/p>\n<p>Like this connection to Greco-Roman mythology, the Juno spacecraft is designed to peer through the veil of Jupiter\u2019s clouds to examine the internal characteristics of the largest planet in our solar system, with the hope of illuminating information on how Jupiter formed as well as whether or not it has a rocky core and the amount of water present in its deep atmosphere.<\/p>\n<p>Upon its official selection as a mission, Juno was tasked with 7 primary mission objectives, including a determination of the ratio of oxygen to hydrogen in Jupiter\u2019s atmosphere.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45816 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.02.30-350x217.png\" alt=\"Screen Shot 2016-07-02 at 15.02.30\" width=\"350\" height=\"217\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.02.30-350x217.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.02.30-564x350.png 564w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.02.30-768x476.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.02.30.png 906w\" sizes=\"(max-width: 350px) 100vw, 350px\">This mission objective will help measure the abundance of water in Jupiter and help solidify some of the prevailing theories as to the initial formation of the planet 4.5 billion years ago and how its formation is linked to the overall formation of the solar system. <\/p>\n<p>SpaceX<path d=\"M7.59009 18.59L9.00009 20L17.0001 12L9.00009 4L7.59009 5.41L14.1701 12\" style=\"animation: initial !important; background: initial !important; border: 0px !important; box-shadow: none !important; color: inherit !important; cursor: inherit !important; direction: inherit !important; display: inline !important; fill: currentcolor !important; filter: initial !important; float: none !important; margin: 0px !important; opacity: initial !important; outline: 0px !important; overflow: initial !important; padding: 0px !important; stroke: initial !important; transform: initial !important; vertical-align: initial !important; visibility: inherit !important;\"><\/path>SpaceX launch tickets<path d=\"M7.59009 18.59L9.00009 20L17.0001 12L9.00009 4L7.59009 5.41L14.1701 12\" style=\"animation: initial !important; background: initial !important; border: 0px !important; box-shadow: none !important; color: inherit !important; cursor: inherit !important; direction: inherit !important; display: inline !important; fill: currentcolor !important; filter: initial !important; float: none !important; margin: 0px !important; opacity: initial !important; outline: 0px !important; overflow: initial !important; padding: 0px !important; stroke: initial !important; transform: initial !important; vertical-align: initial !important; visibility: inherit !important;\"><\/path>Space Shuttle models<path d=\"M7.59009 18.59L9.00009 20L17.0001 12L9.00009 4L7.59009 5.41L14.1701 12\" style=\"animation: initial !important; background: initial !important; border: 0px !important; box-shadow: none !important; color: inherit !important; cursor: inherit !important; direction: inherit !important; display: inline !important; fill: currentcolor !important; filter: initial !important; float: none !important; margin: 0px !important; opacity: initial !important; outline: 0px !important; overflow: initial !important; padding: 0px !important; stroke: initial !important; transform: initial !important; vertical-align: initial !important; visibility: inherit !important;\"><\/path>\n<p>     (adsbygoogle = window.adsbygoogle || []).push({});<\/p>\n<p>Additionally, Juno is tasked with obtaining a better estimate of Jupiter\u2019s core mass, which will also help scientists understand how the planet formed. <\/p>\n<p>During its 20 month stay at Jupiter, Juno will also help map the planet\u2019s massive gravitational and magnetic fields to further reveal how Jupiter\u2019s mass is distributed throughout its interior as well as the origin and structure of its magnetic fields. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45820 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.07.34-350x242.png\" alt=\"Screen Shot 2016-07-02 at 15.07.34\" width=\"350\" height=\"242\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.07.34-350x242.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.07.34-505x350.png 505w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.07.34.png 618w\" sizes=\"(max-width: 350px) 100vw, 350px\">Moreover, Juno will create a global map of the variation in atmospheric composition, structure, cloud opacity, and temperature at pressures in excess of 100 bars.<\/p>\n<p>Another of Juno\u2019s objectives is to reveal more about the three-dimensional structure of Jupiter\u2019s polar magnetosphere and associated auroras while also measuring the Lense-Thirring precession.<\/p>\n<p>Lense-Thirring precession is an aspect of the general theory of relativity that is a relativistic correction to the precession of a gyroscope near a large rotating mass.<\/p>\n<p>Juno will attempt to measure this phenomenon that\u2019s caused by the angular momentum of Jupiter.<\/p>\n<p><b>Spacecraft design:<\/b><\/p>\n<p>To accomplish these mission objectives, Juno is outfitted with nine scientific instruments, including a Microwave radiometer, the Jovian Infrared Auroral Mapper, a Magnetometer, a Gravity Science suite of instruments, the Jovian Auroral Distribution Experiment, the Jovian Energetic particle Detector Instrument, a Radio and Plasma Wave Sensors, Ultraviolet Imaging Spectrograph, and JunoCam. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45803 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.27-350x240.png\" alt=\"Screen Shot 2016-07-02 at 14.44.27\" width=\"350\" height=\"240\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.27-350x240.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.27-509x350.png 509w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.27-768x528.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.27-1170x804.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.27.png 1406w\" sizes=\"(max-width: 350px) 100vw, 350px\">The microwave radiometer (MWR) carries six antennas mounted on two sides of the main body of the Juno spacecraft that are individually capable of performing electromagnetic wave measurements on frequencies in the microwave range of 600 MHz, 1.2 GHz, 2.4 GHz, 4.8 GHz, 9.6 GHz, and 22 GHz, respectively.<\/p>\n<p>With this range of frequency measurements, MWR will be able to measure the quantity of water and ammonia in the deep layers of Jupiter\u2019s atmosphere at depths of 500 to 600 kilometers and in atmospheric pressures of up to 200 bars. <\/p>\n<p>MWR measurements will also provide a temperature profile of Jupiter\u2019s atmosphere at different altitudes as well as a determination of how deep atmospheric circulation exists within the planet.<\/p>\n<p>Meanwhile, the Jovian Infrared Auroral Mapper (JIRAM) will provide images of Jovian auroras in the 3.4 \u03bcm wavelength in regions of the atmosphere that are specifically abundant in H3+ ions.<\/p>\n<h4 class=\"widget-title penci-border-arrow\">See Also<\/h4>\n<ul>\n<li>Juno Coverage<\/li>\n<li>L2 Atlas V\/Juno Processing<\/li>\n<li>Click here to Join L2<\/li>\n<\/ul>\n<p>JIRAM will also monitor the near infrared frequency ranges at depths between 50 and 75 kilometers during multiple surveys of the upper atmosphere.<\/p>\n<p>This monitoring will allow scientists to better understand how clouds with water flow beneath the surface of Jupiter as well as provide potential detections of methane, water vapor, ammonia, and phosphine within the upper layers of the planet\u2019s atmosphere.<\/p>\n<p>In combination with JIRAM, the Jovian Auroral Distribution Experiment (JADE) will allow for the detection of energetic particles in Jupiter\u2019s auroras and will measure the angular distribution, energy, and velocity vectors of ions and electrons at low energy present in the auroras. <\/p>\n<p>Conversely, the Jovian Energetic particle Detector Instrument (JEDI), will measure the angular distribution, energy, and velocity vectors of ions and electrons at high energy present in the polar magnetosphere of Jupiter. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45801 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.52-350x336.png\" alt=\"Screen Shot 2016-07-02 at 14.43.52\" width=\"350\" height=\"336\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.52-350x336.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.52-365x350.png 365w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.52-768x736.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.52-1170x1122.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.52.png 1508w\" sizes=\"(max-width: 350px) 100vw, 350px\">Moreover, the fourth component of the auroral experiment package is the radio and plasma wave sensor (Waves) which will identify regions of auroral currents that define Jupiter\u2019s radio emissions as well as the acceleration of auroral particles. <\/p>\n<p>This will be determined by a measurement of radio and plasma spectra in the auroral region.<\/p>\n<p>Last but not least, the fifth component of the auroral equipment package is the Ultraviolet Imaging Spectrograph (UVS), which will capture spectral images of UV auroral emissions in the polar magnetosphere and measure their wavelengths, positions, and arrival times during spectrograph viewing opportunities. <\/p>\n<p>For the expansive and encompassing investigation of Jupiter\u2019s magnetic field, Juno\u2019s magnetometer (MAG) instrument will be influential in mapping the magnetic field, determining the dynamics of Jupiter\u2019s interior, and determining the three-dimensional structure of the polar magnetosphere. <\/p>\n<p>To this end, the magnetometer instrument is composed of two experiments: the Flux Gate Magnetometer (FGM) and the Advanced Stellar Compass (ASC).<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45804 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.46-350x348.png\" alt=\"Screen Shot 2016-07-02 at 14.44.46\" width=\"350\" height=\"348\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.46-350x348.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.46-352x350.png 352w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.46-768x765.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.46.png 912w\" sizes=\"(max-width: 350px) 100vw, 350px\">The FGM will measure the strength and direction of magnetic field lines while the ASC determines the orientation of the magnetometer sensors.<\/p>\n<p>While MAG focuses on mapping Jupiter\u2019s massive magnetosphere, the Gravity Science (GS) instrument will be busy measuring the planet\u2019s gravity via radio waves.<\/p>\n<p>The GS experiment will help better determine the distribution of mass inside Jupiter and will help detect small gravity variations from Jupiter that create small changes in velocity on the relatively small Juno spacecraft.<\/p>\n<p>Moreover, GS will be able to detect the Doppler Effect on radio broadcasts from Juno to Earth in the Ka and X Band frequencies.<\/p>\n<p>Finally, the ninth and final instrument aboard the craft is JunoCam. <\/p>\n<p>A visible light camera and telescope, JunoCam is only expected to last seven orbits before it succumbs to the damaging radiation and magnetic environments of the planet. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45800 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.29-350x232.png\" alt=\"Screen Shot 2016-07-02 at 14.43.29\" width=\"350\" height=\"232\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.29-350x232.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.29-529x350.png 529w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.29-768x509.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.29-1170x775.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.29-780x516.png 780w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.29-585x390.png 585w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.29-263x175.png 263w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.29.png 1634w\" sizes=\"(max-width: 350px) 100vw, 350px\">During its seven orbits, however, it is anticipated that the camera will dramatically help with NASA\u2019s education and public outreach initiatives about the Juno mission and the importance of robotic exploration of the solar system.<\/p>\n<p>To power all of these instruments, Juno is equipped with three solar panels arranged in a symmetrical pattern around the spacecraft. <\/p>\n<p>Juno is the first mission to Jupiter to use solar panels instead of Radioisotope Thermoelectric Generators (RTGs), and advancements in solar cell technology in the past several decades made solar panels preferable to this mission given its operational distance of 5 AU from the sun and its overall objective and timescale.<\/p>\n<p>Use of solar panels on Juno make it the farthest solar-powered mission in the history of space exploration, as all other vehicles to travel to this distance have used RTG technology. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45796 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.41.59-350x231.png\" alt=\"Screen Shot 2016-07-02 at 14.41.59\" width=\"350\" height=\"231\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.41.59-350x231.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.41.59-531x350.png 531w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.41.59-768x506.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.41.59-1170x771.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.41.59-780x516.png 780w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.41.59-263x175.png 263w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.41.59.png 1466w\" sizes=\"(max-width: 350px) 100vw, 350px\">Given the distance and the fact that Juno will only receive approximately 4% as much sunlight as it would in orbit of Earth, each of its three solar panels is 2.7 m (9.8 ft) in width by 8.9 m (29 ft) in length for a total power generation capability at Jupiter of 486 W, dropping to 420 W at the end of the mission due to radiation degradation.<\/p>\n<p>For communications, the spacecraft will use the 70 meter antenna of the Deep Space Network with an X band direct link from an onboard computer operating at 50 Mbit\/s of instrument throughput.<\/p>\n<p>Additionally, attitude control for Juno is provided through a series of twelve thrusters in a monopropellant reaction control system while a bipropellant LEROS 1b main engine from Westcott, UK, provides the propulsion needed for all major post-launch burns.<\/p>\n<p><b>Launch and cruise to Jupiter:<\/b><\/p>\n<p>Initially planned to launch in 2009, the mission underwent a two-year launch delay due to funding constraints from the US federal government. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45817 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.04.15-350x234.png\" alt=\"Screen Shot 2016-07-02 at 15.04.15\" width=\"350\" height=\"234\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.04.15-350x234.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.04.15-524x350.png 524w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.04.15-768x513.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.04.15-1170x782.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.04.15-585x390.png 585w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.04.15-263x175.png 263w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.04.15.png 1434w\" sizes=\"(max-width: 350px) 100vw, 350px\">After final assembly and shipment to the Kennedy Space Center, Juno was encased in a five-meter payload fairing before being hoisted atop an Atlas V rocket at the Cape Canaveral Air Force Station.<\/p>\n<p>After a countdown delayed by a leak in ground equipment and a boat in the exclusion range, the Atlas V 551 thundered off SLC-41 on 5 August 2011 at 12:25 EDT to send Juno on its way.<\/p>\n<p>Following a propulsive combination of five strap on solid rocket boosters, an RD-180 engine, and a single-engine Centaur upper stage, Juno was delivered into an initial parking orbit of Earth, where the spacecraft remained for 30 minutes before the re-ignition of the Centaur upper stage for a nine minute firing sequence to place Juno on an Earth Escape Trajectory. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45809 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.47.29-350x270.png\" alt=\"Screen Shot 2016-07-02 at 14.47.29\" width=\"350\" height=\"270\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.47.29-350x270.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.47.29-453x350.png 453w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.47.29-768x593.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.47.29-1170x903.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.47.29.png 1544w\" sizes=\"(max-width: 350px) 100vw, 350px\">Once in this escape trajectory, the Centaur upper stage fired its reaction engines to impart a 1.4 RPM spin onto Juno.<\/p>\n<p>Then, 54 minutes after launch, Juno successfully separated from the Centaur upper stage and extended its solar panels \u2013 which reduced its overall spin rate by two-thirds.<\/p>\n<p>With its solar panels deployed, Juno began its five-year, 19 AU journey to Jupiter with an outbound-from-the-inner-solar-system trajectory. <\/p>\n<p>The probe crossed the orbital plane of Mars in early 2012 before performing two deep space maneuvers on 30 August and 3 September 2012 to begin a swing back into the inner solar system. <\/p>\n<p>Juno once again crossed the orbital distance of Mars in early 2013, before crossing the orbital plane of Earth and swinging closer to the Sun than its home planet before encountering Earth on 9 October 2013.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45818 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.05.49-350x303.png\" alt=\"Screen Shot 2016-07-02 at 15.05.49\" width=\"350\" height=\"303\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.05.49-350x303.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.05.49-405x350.png 405w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.05.49-768x664.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.05.49-1170x1012.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-15.05.49.png 1434w\" sizes=\"(max-width: 350px) 100vw, 350px\">This encounter with Earth was a planned gravity assist flyby to impart extra velocity onto the spacecraft without the need for the craft to carry the propellant to obtain such a velocity change. <\/p>\n<p>The encounter with Earth increased Juno\u2019s speed by more than 3.9 km\/s (8,800 mph) and fine-tuned Juno\u2019s course toward Jupiter. <\/p>\n<p>Juno\u2019s control in science teams also used the Earth encounter as a rehearsal for the craft\u2019s arrival at Jupiter and as an opportunity to test some of the instruments and practice certain procedures before arrival in the Jovian system. <\/p>\n<p>After its encounter with Earth, Juno was placed into hibernation mode for much of its journey to Jupiter, with just a few wake up commands to ensure that all systems were functioning properly and to additionally fine-tune the craft\u2019s approach profile to Jupiter.<\/p>\n<p><b>Orbit insertion and planned mission:<\/b><\/p>\n<p>With fine-tuning complete, Juno crossed the termination shock into Jupiter\u2019s magnetosphere on 24 June and continued its cruise toward the lower density of the Jovian magnetosphere throughout 25 June. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45799 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.08-350x204.png\" alt=\"Screen Shot 2016-07-02 at 14.43.08\" width=\"350\" height=\"204\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.08-350x204.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.08-602x350.png 602w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.08-768x447.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.08-1170x681.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.43.08.png 1846w\" sizes=\"(max-width: 350px) 100vw, 350px\">On 30 June, NASA sent the ji4040 command to Juno at 15:15 EDT to place the spacecraft into autopilot mode for its arrival at Jupiter.<\/p>\n<p>The signal took 48 minutes to cover the 860 million km (534 million mile) distance between the Deep Space Network antenna in Goldstone, California, and the Juno spacecraft. <\/p>\n<p>\u201cJi4040 contains the command that starts the Jupiter Orbit insertion sequence,\u201d said Ed Hirst, mission manager of Juno from NASA\u2019s Jet Propulsion Laboratory in Pasadena, California. <\/p>\n<p>\u201cAfter the sequence executes, Juno is on autopilot. &nbsp;But that doesn\u2019t mean we get to go home. &nbsp;&nbsp;We are monitoring the spacecraft\u2019s activities 24\/7 and will do so until well after we are in orbit.\u201d<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-45856\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/2016-07-05-043256-350x189.jpg\" alt=\"2016-07-05-043256\" width=\"350\" height=\"189\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/2016-07-05-043256-350x189.jpg 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/2016-07-05-043256-630x340.jpg 630w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/2016-07-05-043256-768x414.jpg 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/2016-07-05-043256.jpg 905w\" sizes=\"(max-width: 350px) 100vw, 350px\">Arriving on 4 July 2016 after a journey of 2.8 billion km (1.74 billion miles), the NASA-led mission became the second interplanetary craft to arrive at its destination on the United States\u2019 Independence Day, with the first being the successful landing of the Pathfinder mission\u2019s Sojourner rover on Mars in 1997.<\/p>\n<p>With Juno in autopilot mode, the spacecraft\u2019s onboard computers began the 35-minute Jupiter Orbit Insertion (JOI) burn at 22:30 EDT \u2013 with confirmation of JOI burn commencement arriving through the Deep Space Network at 23:18:19 EDT after a travel time of 48 minutes 19 seconds across a distance of 869 million km (540 million miles).<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45810 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.02-350x186.png\" alt=\"Screen Shot 2016-07-02 at 14.52.02\" width=\"350\" height=\"186\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.02-350x186.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.02-630x335.png 630w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.02-768x408.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.02-1920x1021.png 1920w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.02-1170x622.png 1170w\" sizes=\"(max-width: 350px) 100vw, 350px\">Juno\u2019s computers completed the JOI burn at 23:05 EDT, with confirmation of a successful burn and insertion into Jupiter orbit arriving through the Deep Space Network at 23:53:19 EDT.<\/p>\n<p>This means, because of the distance the signals must travel, that confirmation of the JOI burn\u2019s commencement was actually received approximately 13 minutes after the burn itself concluded.<\/p>\n<p>With the burn is complete, Juno will settle into its initial 53-day orbit of Jupiter, which it will remain in for 106 days (two orbits) before performing another burn on 19 October to adjust its orbit to that of just 14 days. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45811 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.46-350x189.png\" alt=\"Screen Shot 2016-07-02 at 14.52.46\" width=\"350\" height=\"189\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.46-350x189.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.46-630x340.png 630w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.46-768x414.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.46-1920x1035.png 1920w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.52.46-1170x631.png 1170w\" sizes=\"(max-width: 350px) 100vw, 350px\">This 14 day primary science orbit is different than it was when Juno was launched. <\/p>\n<p>In 2011, the probe was initially targeting an 11 day primary science orbit trajectory. <\/p>\n<p>The orbit was changed to 14 days to allow Juno to build maps of Jupiter\u2019s magnetic and gravity fields to provide a global perspective of the planet earlier in the mission than originally planned.<\/p>\n<p>The original plan would have required 15 orbits to map these global forces, with 15 more orbits filling in gaps to make the map complete.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45802 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.08-350x214.png\" alt=\"Screen Shot 2016-07-02 at 14.44.08\" width=\"350\" height=\"214\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.08-350x214.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.08-572x350.png 572w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.08-180x110.png 180w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.08-768x470.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.08-1170x716.png 1170w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.44.08.png 1584w\" sizes=\"(max-width: 350px) 100vw, 350px\">In the revised plan, Juno will now obtain basic mapping coverage in just eight orbits, with a new level of detail added with each successive doubling of that number, at 16 and 32 orbits.<\/p>\n<p>The revised plan lengthens Juno\u2019s mission to 20 months instead of the original 15 and increases the number of orbits to 37 instead of 30.<\/p>\n<p>However, the extra time does not represent additional science for the mission.<\/p>\n<p>Instead, it will simply take Juno longer to collect the data it\u2019s tasked with measuring.<\/p>\n<p>After 37 orbits and 20 months at Jupiter, NASA plans to perform a final burn of Juno\u2019s engine to send the probe into a destructive entry of Jupiter\u2019s atmosphere on 20 February 2018.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-45815 alignleft\" src=\"\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.56.56-350x274.png\" alt=\"Screen Shot 2016-07-02 at 14.56.56\" width=\"350\" height=\"274\" srcset=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.56.56-350x274.png 350w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.56.56-447x350.png 447w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.56.56-768x602.png 768w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.56.56-1920x1504.png 1920w, https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2016\/07\/Screen-Shot-2016-07-02-at-14.56.56-1170x917.png 1170w\" sizes=\"(max-width: 350px) 100vw, 350px\">At that point, Juno will have travelled more than 560 million km (348 million miles) in Jovian orbit for a total distance travelled since launch of 3.39 billion km (2.106 billion miles).<\/p>\n<p>Like Cassini will have done at Saturn a few months prior, Juno will undergo a destructive end of mission plunge into Jupiter to protect the various Jovian moons that contain the possibility of harbouring life.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>After a near five year cruise through the solar system, NASA\u2019s Juno spacecraft has become the second craft to permanently enter orbit of the largest planet in our solar system. &nbsp;The mission to Jupiter is anticipated to last 20 months in a polar orbit orientation to study Jupiter\u2019s formation, composition, gravity field, magnetic field, and [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":30210,"comment_status":"","ping_status":"","sticky":false,"template":"","format":"standard","meta":{"_acf_changed":false,"inline_featured_image":false,"footnotes":"","_links_to":"","_links_to_target":""},"categories":[2],"tags":[1929],"class_list":["post-39015","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-news","tag-juno"],"acf":[],"_links":{"self":[{"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/posts\/39015"}],"collection":[{"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/comments?post=39015"}],"version-history":[{"count":0,"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/posts\/39015\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/media\/30210"}],"wp:attachment":[{"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/media?parent=39015"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/categories?post=39015"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/tags?post=39015"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}