{"id":38615,"date":"2017-12-14T20:28:34","date_gmt":"2017-12-14T12:28:34","guid":{"rendered":"https:\/\/wp-productionenv-bjg9h2g2bgg5b8aa.southeastasia-01.azurewebsites.net\/news\/flight-proven-falcon-9-launches-previously-flown-dragon-to-iss\/"},"modified":"2017-12-14T20:28:34","modified_gmt":"2017-12-14T12:28:34","slug":"flight-proven-falcon-9-launches-previously-flown-dragon-to-iss","status":"publish","type":"post","link":"https:\/\/starpath.global\/news\/flight-proven-falcon-9-launches-previously-flown-dragon-to-iss\/","title":{"rendered":"Flight proven Falcon 9 launches previously flown Dragon to ISS"},"content":{"rendered":"<p>SpaceX launched a flight-proven Falcon 9 rocket Friday, deploying a Dragon spacecraft on the CRS-13 resupply mission to the International Space Station. The launch was conducted at the returning Space Launch Complex 40 (SLC-40) at the Cape Canaveral Air Force Station, lifting off at 10:36 Eastern time (15:36 UTC).<\/p>\n<p>SpaceX CRS-13 Launch:<\/p>\n<p>The launch was&nbsp;the first for SpaceX since their successful deployment of Koreasat-5A on 30 October. Northrup Grumman\u2019s Zuma mission, which had been scheduled for launch in November, has been delayed until early January&nbsp;(NET \u2013 No Earlier Than \u2013 January 4) following concerns over the rocket\u2019s payload fairing.<\/p>\n<p>At nearly 46 days, the gap between the Koreasat launch and this latest mission was the longest time between two SpaceX launches this year. It was the seventeenth Falcon launch of 2017, with one further mission planned later this month for Iridium, at Vandenberg Air Force Base.<\/p>\n<p>SpaceX\u2019s Dragon spacecraft does not require a payload fairing, although SpaceX officials noted the fairing issue has now been cleared.<\/p>\n<p><img fetchpriority=\"high\" decoding=\"async\" class=\"alignleft size-medium wp-image-53453\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_004350-350x220.jpg\" alt=\"\" width=\"350\" height=\"220\">CRS-13 is Dragon\u2019s fifteenth flight overall and its fourteenth mission to deliver cargo to the International Space Station. For this launch, both the Dragon spacecraft and the first stage of the Falcon 9 rocket are re-used from previous missions. This marks the second time a Dragon spacecraft has been re-flown and the fourth flight of a re-used \u2013 or \u201cflight-proven\u201d \u2013 first stage, although it is the first time Dragon had flown atop a re-used booster.<\/p>\n<p>The first stage for the launch is Core 1035. A Block III booster, Core 1035 was previously part of the Falcon 9 rocket that launched another Dragon mission, CRS-11, in June.<\/p>\n<h4 class=\"widget-title penci-border-arrow\">See Also<\/h4>\n<ul>\n<li>CRS-13 UPDATES<\/li>\n<li>SpaceX Missions Section<\/li>\n<li>L2 SpaceX Section<\/li>\n<li>Click here to Join L2<\/li>\n<\/ul>\n<p>CRS-13 is the first NASA mission to fly aboard a flight-proven Falcon 9 and the first NASA mission to launch on a re-used rocket since the Space Shuttle was retired in 2011.<\/p>\n<p>NASA\u2019s approval for the use of a flight-proven booster for the launch came following a thorough internal review and was conditional on the rocket having only been used for one previous low Earth orbit (LEO) mission.<\/p>\n<p>     (adsbygoogle = window.adsbygoogle || []).push({});<\/p>\n<p>To date, all of the boosters that SpaceX has reflown were first flown on LEO launches and have only made a single reflight.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53454\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_004448-350x252.jpg\" alt=\"\" width=\"350\" height=\"252\">The Dragon spacecraft itself, C108, was previously flown in 2015 for the CRS-6 mission.<\/p>\n<p>Launched on 14 April 2015 atop a Falcon 9 v1.1 rocket, Dragon spent almost 37 days in orbit \u2013 34 of those berthed at the space station \u2013 before returning to Earth on 21 May for a successful water recovery off the coast of California.<\/p>\n<p>C108 is the second Dragon to be reflown \u2013 capsule C106 was used for 2014\u2019s CRS-4 mission before returning to space as CRS-11 earlier this year, atop the same first stage that will be used to launch CRS-13.<\/p>\n<p>Developed under NASA\u2019s Commercial Orbital Transportation Systems (COTS) project, Dragon first flew in December 2010. It is one of two US unmanned cargo vehicles used for resupply and logistics missions to the outpost under NASA\u2019s Commercial Resupply Services (CRS) program, alongside Orbital ATK\u2019s Cygnus.<\/p>\n<p>These are to be joined by Sierra Nevada Corporation\u2019s Dream Chaser Cargo System (DCCS) in 2020 under the second phase of the program. SpaceX is also developing a manned version of Dragon to fly commercial crew missions to the space station; this is expected to fly next year.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53456\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_004615-350x303.jpg\" alt=\"\" width=\"350\" height=\"303\">Dragon consists of a pressurized capsule and an unpressurized trunk section. The trunk houses vehicle systems, such as solar panels to power Dragon, and provides a space for externally-mounted cargo to be carried.<\/p>\n<p>The capsule contains pressurized cargo for the space station and houses in its nose the Common Berthing Mechanism (CBM) that will be used to attach it to the station.<\/p>\n<p>The capsule is designed to be recovered, while the trunk is discarded at the end of its mission and burns up in the atmosphere.<\/p>\n<p>CRS-13 is the same capsule that flew on CRS-6, with a new trunk. The spacecraft\u2019s heat shield has also been replaced.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53455\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_004527-350x237.jpg\" alt=\"\" width=\"350\" height=\"237\"><\/p>\n<p>Dragon is carrying 2,205 kilograms (4,861 lb) of cargo to the space station. This includes 490 kilograms (1,080 lb) of supplies and provisions for the crew, 711 kilograms (1,568 lb) of scientific equipment and experiments, 189 kilograms (417 lb) of space station hardware, five kilograms (11 lb) of computer equipment and 165 kilograms (364 lb) of hardware to support extra-vehicular activities (EVAs), or spacewalks, from the station.<\/p>\n<p>Two unpressurized payloads, with a combined mass of 645 kilograms (1,422 lb) are contained within Dragon\u2019s Trunk.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53458\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_004721-350x259.jpg\" alt=\"\" width=\"350\" height=\"259\">The Space Debris Sensor (SDS) will be mounted to the outside of the Columbus laboratory. With a surface area of one square meter (11 square feet), it will detect impacts from small pieces of orbital debris measuring as small as 50 microns across.<\/p>\n<p>The sensor \u2013 a prototype for a follow-up mission to be placed into a higher orbit \u2013 will operate at the station for at least two years, recording the velocity and size of objects that impact it.<\/p>\n<p>The Total and Spectral Solar Irradiance Sensor (TSIS) will be mounted on the station\u2019s ExPRESS Logistics Carrier 3 (ELC-3) platform, which is attached to the station\u2019s P3 port truss segment.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53459\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_004806-350x256.jpg\" alt=\"\" width=\"350\" height=\"256\">TSIS will make measurements of the amount of energy received from the Sun: the total solar irradiance (TSI) is the total amount of energy received from the sun, while the spectral solar irradiance (SSI) measures energy received at specific wavelengths.<\/p>\n<p>Understanding the amount of energy Earth receives from the sun helps scientists to monitor Earth\u2019s radiation budget, while measuring specific wavelengths helps to characterize how the sun affects Earth\u2019s atmosphere and climate.<\/p>\n<p>TSIS provides a replacement for solar irradiance sensors aboard NASA\u2019s aging Solar Radiation and Climate Experiment (SORCE) satellite, which launched in January 2003 aboard a Pegasus-XL rocket.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53461\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_004935-350x237.jpg\" alt=\"\" width=\"350\" height=\"237\"><\/p>\n<p>SORCE was originally designed to operate for five years but its mission has been extended to allow irradiance measurements to continue until a replacement is established in orbit. NASA intended for the Glory satellite to take over these measurements, however it was lost in a March 2011 launch failure, when the payload fairing of its Taurus-XL rocket failed to separate.<\/p>\n<p>Another sensor, Total Solar Irradiance Calibration Transfer Experiment (TCTE) was launched aboard the US Air Force\u2019s STPSat-3 spacecraft in 2013 to ensure continuity of measurements until TSIS is in service.<\/p>\n<p>The TSIS instrument was commissioned for the National Oceanic and Atmospheric Administration\u2019s (NOAA\u2019s) NPOESS-C1 satellite. After the NPOESS program was canceled in 2010, TSIS became part of the JPSS Free Flyer satellite, complementing the Joint Polar Satellite System (JPSS) developed in place of NPOESS. The JPSS Free Flyer was also canceled.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53462\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_005023-350x241.jpg\" alt=\"\" width=\"350\" height=\"241\">The launch took place from Space Launch Complex 40 (SLC-40) at the Cape Canaveral Air Force Station (CCAFS).<\/p>\n<p>It was the first launch from this complex since a Falcon 9 exploded during a static fire test on 1 September last year, two days ahead of the planned launch of Spacecom\u2019s Amos-6 satellite. Both the Falcon 9 and Amos 6 were destroyed in the accident, which was traced to the structural failure of a composite overwrapped pressure vessel (COPV) in the second stage oxidizer tank.<\/p>\n<p>The last launch from SLC-40 occurred two and a half weeks earlier, successfully deploying JCSAT-16.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53463\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_005133-350x240.jpg\" alt=\"\" width=\"350\" height=\"240\">While repairs have been underway at Complex 40, Falcon 9 has been launching from Launch Complex 39A (LC-39A) at the nearby Kennedy Space Center. With SLC-40 now returned to service, SpaceX can complete work at LC-39A to enable the maiden flight of its Falcon Heavy rocket, currently scheduled for January.<\/p>\n<p>In preparation for the launch, the Falcon 9 conducted a successful static fire last Wednesday. With the test complete, Falcon was returned to its hangar and mated with the Dragon spacecraft. The launch was delayed when SpaceX engineers noticed debris\/contamination inside the second stage, which had to be cleaned out.<\/p>\n<p>During the launch campaign, fuelling began with the loading of RP-1 propellant seventy minutes before liftoff. Liquid oxygen was loaded into the vehicle from the T-35-minute mark in the countdown. This combination of fuel and oxidizer is used on both of the Falcon 9\u2019s two stages, with the liquid oxygen supercooled to increase the density at which it can be stored in the rocket\u2019s tanks.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53464\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_010737-350x234.jpg\" alt=\"\" width=\"350\" height=\"234\">The rocket flew in the Falcon 9 v1.2 configuration, with a Block III first stage. In addition to using supercold oxidizer, this version of the rocket is stretched compared to the original Falcon 9 and uses an octagonal arrangement \u2013 or OctaWeb \u2013 of first stage engines as opposed to the square layout used on early flights.<\/p>\n<p>Fuelling continued until about a minute before Falcon 9 was scheduled to lift off, at which point its tanks were pressurized. The nine Merlin-1D first stage engines fired three seconds before launch, with liftoff occurring at the zero mark in the countdown.<\/p>\n<p>The engines that powered Core 1035\u2019s launch are the same nine that were used during its first flight in June.<\/p>\n<p>Seventy-eight seconds into the flight, Falcon passed through the area of maximum dynamic pressure, or Max-Q. The first stage powered the rocket for the first two minutes and 21 seconds of its flight before main engine cutoff, or MECO. Four seconds after MECO the stage separated. The second stage\u2019s single Merlin-1D Vacuum engine ignited eight seconds after stage separation, beginning a six-minute, 27-second burn.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53465\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_010814-350x238.jpg\" alt=\"\" width=\"350\" height=\"238\">While the second stage powered Dragon towards orbit, Core 1035 began its descent back towards Earth for its second landing at Cape Canaveral\u2019s Landing Zone 1 (LZ-1).<\/p>\n<p>Built on the site of a former Atlas launch pad at Launch Complex 13, Landing Zone 1 is used for land-based recovery of Falcon 9 first stages. It is used for low Earth orbit launches from the East coast, while geosynchronous launches \u2013 where possible \u2013 target landings aboard an Autonomous Spaceport Drone Ship (ASDS) downrange.<\/p>\n<p>Core 1035 was the first flight-proven booster to attempt a landing at LZ-1 \u2013 all previous reflown cores have made a geosynchronous launch as their second mission with their second landings using the ASDS.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53466\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_010910-350x212.jpg\" alt=\"\" width=\"350\" height=\"212\">To reach LZ-1, Core 1035 made a series of three burns. The first of these, the boostback burn, began about thirteen seconds after it separated. This burn neutralizes the stage\u2019s downrange motion and changes its course back towards Florida.<\/p>\n<p>The stage then coasted to the apogee \u2013 or highest point \u2013 of its trajectory before falling back towards Earth. An entry burn began about six minutes and seven seconds into the flight, slowing the stage to protect it from heating as it reenters Earth\u2019s atmosphere.<\/p>\n<p>The final landing burn, using a single engine, began as the booster approached the landing site. Touchdown came around seven minutes, 46 seconds mission elapsed time.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53467\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_010948-350x269.jpg\" alt=\"\" width=\"350\" height=\"269\">Second stage engine cutoff, or SECO, occurred nine minutes after liftoff. This marked the end of the second stage\u2019s powered flight. Sixty seconds later Dragon separated to begin its mission, deploying its solar arrays a further minute after separation. Two hours and twenty minutes into the mission, the spacecraft will open its guidance, navigation and control (GNC) bay door.<\/p>\n<p>Dragon will arrive at the International Space Station on Sunday. Astronauts Mark Vande Hei and Joe Acaba will use the station\u2019s CanadArm2 arm to capture the spacecraft and maneuver it to the nadir \u2013 Earth-side \u2013 port of the Harmony module where it will be berthed until January.<\/p>\n<p>When it is time for Dragon to depart the space station, CanadArm2 will be used to unberth and release it. Dragon will be deorbited, with the capsule expected to parachute into the Pacific Ocean for recovery while the trunk section will burn up in the atmosphere.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-53468\" src=\"https:\/\/www.nasaspaceflight.com\/wp-content\/uploads\/2017\/12\/NSF_20171212_011056-350x243.jpg\" alt=\"\" width=\"350\" height=\"243\">The launch marked the forty-fifth flight of the Falcon 9 rocket and the fiftieth orbital launch overall for SpaceX.<\/p>\n<p>It was the seventeenth and penultimate Falcon 9 mission planned for 2017, with the rocket\u2019s last mission of the year expected to fly out of California\u2019s Vandenberg Air Force Base in the evening of 22 December local time (23 December UTC) with ten Iridium communications satellites.<\/p>\n<p>Falcon\u2019s next East coast launch will take place in early January with the enigmatic Zuma payload. Dragon\u2019s next mission, CRS-14, is slated for March.<\/p>\n<p>CRS-13 was the first of two spacecraft launching to the International Space Station this week. On Sunday Russia will launch Soyuz MS-07 from the Baikonur Cosmodrome with three members of the outpost\u2019s Expedition 54 and 55 crews.<\/p>\n<p>The Falcon 9 launch was to be one of three planned worldwide for Tuesday. However, the plans soon changed.<\/p>\n<p>First, Falcon 9 was stood down to allow for work to correct a contamination issue in her second stage, which pushed the launch back to the final opportunity in this current window. Also, Rocket Lab is still waiting to conduct the second test flight of their Electron rocket, named Still Testing, from New Zealand.<\/p>\n<p>However, Arianespace did launch an Ariane 5ES rocket carrying four Galileo navigation satellites from Kourou, French Guiana.<\/p>\n<p>(Images: NASA, SpaceX, L2 imagery:&nbsp;Brady Kennison&nbsp;and Chris Gebhardt for NASASpaceFlight.com). (Click here to join L2)<\/p>\n","protected":false},"excerpt":{"rendered":"<p>SpaceX launched a flight-proven Falcon 9 rocket Friday, deploying a Dragon spacecraft on the CRS-13 resupply mission to the International Space Station. The launch was conducted at the returning Space Launch Complex 40 (SLC-40) at the Cape Canaveral Air Force Station, lifting off at 10:36 Eastern time (15:36 UTC). SpaceX CRS-13 Launch: The launch was&nbsp;the [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"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":[2304,479,233,675,316],"class_list":["post-38615","post","type-post","status-publish","format-standard","hentry","category-news","tag-crs","tag-falcon-9","tag-iss","tag-slc-40","tag-spacex"],"acf":[],"_links":{"self":[{"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/posts\/38615"}],"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=38615"}],"version-history":[{"count":0,"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/posts\/38615\/revisions"}],"wp:attachment":[{"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/media?parent=38615"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/categories?post=38615"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/starpath.global\/blog\/wp-json\/wp\/v2\/tags?post=38615"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}