QZS-4 (Michibiki No. 4) – H-2A (F36) – Танэгасима – 09.10.2017, 22:02 UTC

Автор triage, 20.08.2017 14:32:40

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che wi

Ещё ссылки на предстоящие трансляции:

вывоз —
пуск —

tnt22

Прогноз погоды на вывоз 2017-10-09 - благоприятный
Цитировать マゲシマン つば九郎に会えた!!‏ @mageshiman1025 9 ч. назад

10月9日夕刻のH-ⅡAF36機体移動時の天候はまぁまぁ。 #H2AF36 #QZS4 種子島宇宙センター週間気象情報 http://space.jaxa.jp/tnsc/tn-weather/data/weekly.gif ...

tnt22

Предварительный прогноз погоды на 2017-10-10 - облачно
Цитировать なりたまさひろ‏ @naritamasahiro 2 ч. назад

わかんないや ! #H2AF36 #QZS4

tnt22

Прогноз погоды на 2017-10-10 - погода улучшается...
Цитировать マゲシマン つば九郎に会えた!!‏ @mageshiman1025 6 ч. назад

9日夕方から10日午前中は回復傾向で晴れ間も出そう。 何もなければいいけれど・・・。 #H2AF36 #QZS4

tnt22

#24
О трансляции JAXA запуска КА QZS-4
Цитировать準天頂衛星「みちびき4号機」/H-IIAロケット36号機打ち上げ中継

JAXA | 宇宙航空研究開発機構

Запланировано на 10 окт. 2017 г.

準天頂衛星「みちびき4号機」/H-IIAロケット36号機打ち上げライブ中継
The live broadcast of the MICHIBIKI No. 4/H-IIA F36 launch
Launch Date: Oct. 10, 2017(JST)
Launch Time: about 7:00 a.m.


tnt22

Прогноз погоды на 2017-10-10 - облачно
Цитировать なりたまさひろ‏ @naritamasahiro 32 мин. назад

雲はありそうだけど、何とかなるっぽい ? #H2AF36 #QZS4


tnt22

#27
На брифинге объявлены дата и время старта
Цитировать ネコビデオ ビジュアル ソリューションズ‏ @nvslive 3 ч. назад

【三菱重工14時発表】H-2Aロケット36号機を10107137秒に打上げ予定 #nvslive #H2AF36
2017-10-10 07:01:37 JST --> 2017-10-09 22:01:37 UTC, 2017-10-10 01:01:37 ДМВ




tnt22

Прогноз погоды
Цитировать 真之介0113‏ @shinnosuke0113 5 ч. назад

これは問題なさそうだ #H2AF36
и свежие данные на брифинге

tnt22

Запуск метеозонда над Танегасимой перед брифингом
Цитировать JAXAウェブ‏Подлинная учетная запись @JAXA_jp 5 ч. назад

今朝、JAXA種子島宇宙センターからゾンデ放球が行われました。 「みちびき4号機」(準天頂衛星)を搭載したH-IIAロケット36号機は、打ち上げに向けて順調に準備が行われています。 10/10(火)は早起きして、ライブ中継を見よう! https://www.youtube.com/watch?v=JCOtOVcvDMk ...
Спойлер
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tnt22

#33
Официальное объявление о времени пуска QZS-4 от JAXA (на японском)

http://www.jaxa.jp/press/2017/10/20171008_h2af36_j.html

То же от Mitsubishi Heavy Industries, Ltd

http://mhi.co.jp/notice/notice_171008.html

tnt22

http://global.jaxa.jp/press/2017/10/20171008_h2af36.html
Цитировать
Launch Time of H-IIA Launch Vehicle No. 36
Encapsulating MICHIBIKI No. 4
October 8, 2017 (JST)

Mitsubishi Heavy Industries, Ltd.
National Research and Development Agency
Japan Aerospace Exploration Agency (JAXA)
Mitsubishi Heavy Industries, Ltd. and JAXA set the time of launch of H-IIA Launch Vehicle No. 36 (H-IIA F36) which encapsulates MICHIBIKI No. 4, Quasi-Zenith Satellite System. The details are as follows:

Launch Date :October 10, 2017
Launch Time : 7:01:37 a.m. (JST)
Reserved Launch Period :October 11 through November 30, 2017 (*)
(*) Launch time during the reserved launch period will vary.

tnt22


tnt22

NOTAMs
ЦитироватьRJJJ

J6868/17 - REF AIP SUP 121/17 ITEM 1,2,3
ROCKET H-2A-F36 WILL BE LAUNCHED
LAUNCHING DATE/TIME : 2200 ON 09 OCT 2017. SFC - UNL, 05 OCT 07:04 2017 UNTIL
09 OCT 22:31 2017 ESTIMATED. CREATED: 05 OCT 07:05 2017
 
ЦитироватьKZAK

A4178/17 - THE JAPAN AEROSPACE EXPLORATION AGENCY (JAXA) HAS PLANNED A
ROCKET LAUNCH. DEBRIS FROM THIS LAUNCH WILL FALL WI AN AREA DEFINED
AS 2622N15400E TO 2806N15429E TO 2559N16201E TO 2415N16132E TO POINT
OF ORIGIN. IN THE INTEREST OF SAFETY ALL NON-PARTICIPATING AIR
TRAFFIC ARE ADVISED TO AVOID THE NOTAMED AREA.  IFR AIRCRAFT UNDER
ATC JURISDICTION SHOULD ANTICIPATE CLEARANCE AROUND THE NOTAMED
AREA. SFC - UNL, 10 OCT 22:00 2017 UNTIL 10 OCT 23:00 2017. CREATED: 05 OCT
16:32 2017
 
Зоны полностью совпадают с указанными в #11

tnt22

NOTMAR
ЦитироватьHYDROPAC 3403/2017 (81,97)

WESTERN NORTH PACIFIC.
PHILIPPINE SEA.
JAPAN.
DNC 12.
1. HAZARDOUS OPERATIONS, ROCKET LAUNCHING:
   A. 092200Z TO 092214Z OCT IN AREA BOUND BY
   30-20-10N 132-43-16E, 30-26-10N 132-51-56E,
   30-20-00N 133-50-00E, 29-52-00N 133-47-00E,
   29-59-00N 132-41-00E.
   B. 092206Z TO 092231Z OCT IN AREA BOUND BY
   30-17-00N 137-44-00E, 29-57-44N 140-16-16E,
   29-52-12N 140-21-25E, 29-00-00N 140-15-00E,
   29-20-00N 137-37-00E.
   C. 092209Z TO 092236Z OCT IN AREA BOUND BY
   28-06-00N 154-29-00E, 25-59-00N 162-01-00E,
   24-15-00N 161-32-00E, 26-22-00N 154-00-00E.
2. CANCEL THIS MSG 092336Z OCT 17.

( 051321Z OCT 2017 )
Зоны полностью совпадают с указанными в #11

tnt22

Вывоз РН H-IIA F36 запланирован на 2017-10-09 17:00 JST
Цитировать 柴田孔明‏ @koumeiShibata 9 мин. назад

H-IIAロケット36号機の機体移動は明日(2017年10月9日)の17時頃です。天候が良ければ、まだ十分に明るいと思います。
2017-10-09 08:00 UTC, 2017-10-09 11:00 ДМВ

tnt22

http://spaceflight101.com/h-iia-qzs-4/qzs-4-h-iia-launch-preview/
ЦитироватьFinal QZSS Navigation Augmentation Constellation Member to Launch Monday Night on H-IIA
October 8, 2017

Japan's Quasi-Zenith Satellite System, designed to improve the availability & accuracy of satellite navigation over the island nation, will reach full strength on Monday when the fourth and last planned QZSS satellite takes flight atop an H-IIA rocket blasting off fr om the picturesque Tanegashima Space Center.

Michibiki-4 will complete the four-satellite constellation expected to deliver fully operational navigation augmentation starting next year with a future enhancement coming via the launch of additional satellites in the next decade.
Спойлер

File Photo of an H-IIA Rocket – Credit: JAXA

The 53-meter tall H-IIA rocket is targeting an instantaneous liftoff time at 22:01:37 UTC on Monday, 7:01 a.m. local time, thundering off fr om its sea-side launch pad to dispatch the 4,000-Kilogram QZS-4 satellite into a highly elliptical transfer orbit. After separating fr om the rocket, QZS-4 will take a precise position in a specialized orbit, operating in a three-shift pattern alongside two other QZSS craft with each at high elevation over the Japanese Islands eight hours per day.


Image: Mitsubishi Electric

2017 has been a busy year for Japan's QZSS program, aiming to have all satellites in orbit by the end of the year for final operational checkouts before declaring the system open for business in mid-2018. QZS-2 lifted off on June 1st and joined the first satellite in what is known as a Tundra orbit that offers optimized coverage over Japan.

QZS-1 has been in orbit since September 2010 to serve as the program's pathfinder mission, demonstrating the twofold navigation enhancement provided by the system. QZS-3, the heaviest in the group, took flight on August 19 and is the lone geostationary member of the constellation, hovering in a constant position in the sky to add a navigation beacon for the entire Asia-Pacific Region.

Monday's launch of the last member of the baseline constellation marks the culmination of 15 years of work. QZSS was initiated in 2002 with the overall objective of increasing the availability of GPS navigation services, particularly in Japan's urban canyons wh ere tall buildings block out the signals of all GPS satellites that are not particularly high in the sky, potentially causing interruptions in service if less than four satellites are visible.


Increasing Coverage in Japan's Urban Canyons – Image: JAXA

To accomplish this, QZSS was initially designed as a three-satellite constellation that allows one satellite to be at very high elevation at any given time, essentially adding a GPS-compatible satellite to increase the odds of sufficient satellites being visible for users. QZS-3, as the GEO member of the constellation, was added later to deliver augmentation over the broader Asia-Pacific Region, aiding air traffic control, marine services and scientific applications.

The QZSS satellites deliver two types of signals – GPS-compatible navigation signals that can be processed by any GPS receiver as a standard member of the constellation, and GPS augmentation messages that require specialized receivers to more accurately calculate a user's position.

The GPS augmentation approach employed by QZSS is similar to that of the U.S. Wide Area Augmentation System, utilizing a number of ground stations to measure variability in GPS signals – caused by clock errors on the satellites or signal distortion in Earth's ionosphere. Correction messages are generated on the ground and immediately sent to the QZSS satellites which relay them in real-time for use by augmentation-enabled receivers to improve location accuracy to one meter or better.

>> QZSS Satellite & Constellation Overview


QZS-4 in Launch Configuration – Photo: QZSS Project

QZSS takes a unique spot in the satellite spectrum in that it is designed to augment another satellite constellation but moves beyond acting as a bent-pipe relay of ground-generated augmentation signals and in-fact delivers navigation signals of its own. The QZSS constellation will also be capable of augmentation for the European Galileo navigation constellation that will become operational before the end of the decade.

The QZS-1 satellite served as a critical demonstrator for the program, undergoing extensive signals characterization and testing after being lifted into orbit. Studies showed that GPS accuracy was improved by a factor of 2.5 through the augmentation code transmitted by the satellite. These results prompted JAXA to order three DS-2000-based satellites from Mitsubishi Electric in 2013 for a total of $526 million in order to establish the operational QZSS constellation for 24/7 augmentation services.

A carbon copy of QZS-2, the Michibiki-4 satellites stands 6.2 meters tall and weighs in at four metric tons, comprising a 1,180-Kilogram satellite platform, 370kg navigation payload and 2,450kg of maneuvering propellant. At the heart of the satellite sits a pair of redundant Rubidium Atomic Clocks that provide the ultra-stable timing needed in the generation of regular GPS navigation messages. Japan received clearance from the U.S. in 2006 to use the GPS navigation bands as well as the L1-SAIF augmentation signal architecture.


H-IIA Assembly – Photo: MHI

Called up for the launch of QZS-4 will be Japan's trusted H-IIA rocket, making its fifth flight of the year and breaking its previous best mark for the number of missions in a calendar year. In the H-IIA 202 configuration used on Monday, the vehicle consists of a two-stage stack four meters in diameter plus a pair of SRB-A3 Solid Rocket Boosters to do most of the heavy-lifting in the first minute and a half of the flight. H-IIA 202 has a launch mass of 285 metric tons and can lift 4,100 Kilograms into a Geostationary Transfer Orbit.

H-IIA's lengthy launch countdown will begin with the vehicle's rollout to Launch Pad 1 around 8 UTC on Monday. Covering its first 500 meters toward orbit, H-IIA will be centered on the pad and connected to various commodity lines before undergoing power-up for an initial set of checkouts while teams close out the facility.

Propellant loading is expected to pick up seven hours and 45 minutes before launch to fill the two-stage rocket with 120 metric tons of -183°C Liquid Oxygen and -253°C Liquid Hydrogen. Once at flight level, the tanks will enter stable replenish for another pre-flight testing campaign that will set the stage for the automated countdown sequence.

>> H-IIA 202 Launch Vehicle Overview

Computers will be handed control of the count at X-4.5 minutes to take H-IIA through the final preparatory steps, notably the pressurization of its four tanks, the transition to internal power and the activation of the Flight Control System. H-IIA will begin breathing fire at X-5.2 seconds when the LE-7A engine will start its ignition sequence to soar to a thrust of nearly 100 metric ton force under close watch by the rocket's flight computers.


QZS-2 takes flight – Photo: JAXA

Upon completion of engine monitoring, when clocks strike zero, H-IIA will fire up the twin boosters and leap off the pad with a total thrust of 600 metric-ton-force. H-IIA will climb vertically for only a handful of seconds before initiating its pitch and roll program to begin racing downrange across the Pacific Ocean.

Unlike a typical geostationary delivery that aims to reduce orbital inclination, H-IIA will be targeting a higher inclination than its launch site as the QZS constellation satellites operate in an orbit inclined 40 to 44 degrees to either side of the equator.

The SRB-A3 boosters feature a special configuration with a shorter burn time, but higher thrust – optimized for a high-energy mission profile. Each delivers some 255 metric-ton-force of thrust over the course of a 98-second burn to help accelerate H-IIA to a speed of 1.5 Kilometers per second. Separation of the boosters – triggered by their declining chamber pressures – will be commanded one minute and 48 seconds into the flight when the vehicle will be 54 Kilometers in altitude.

With the 15-meter boosters swinging outward along their thrust struts, H-IIA will from then on rely on its LE-7A engine alone, burning 260 Kilograms of cryogenics per second to deliver 109,300-Kilogram force of thrust when heading into the upper reaches of Earth's atmosphere. The protective payload fairing will split open and drop away four minutes and ten seconds into the flight when H-IIA crosses 151 Kilometers in altitude wh ere aerodynamic forces are no longer a danger to the delicate satellite structure.

Per the nominal mission plan, the first stage will shut down six minutes and 38 seconds into the flight, having boosted the vehicle to a speed of 5.2 Kilometers per second. Eight seconds later, the separation of the 37-meter long core stage will be commanded through loaded springs, expected some 239 Kilometers in altitude.


Image: JAXA/Spaceflight101

The second stage will fire up its LE-5B engine six seconds after staging, generating 13,970kgf of thrust for a burn of five minutes and 42 seconds to lift the stack into a preliminary parking orbit. At the conclusion of the first propulsive flight phase, H-IIA will enter a coast phase of exactly 12 minutes to continue on its south-easterly trek and set up the proper injection conditions for the second upper stage burn.

Re-start of the LE-5B is expected 24 minutes and 34 seconds into the mission on a burn of precisely three minutes, tasked with raising the vehicle's speed by 2.5 Kilometers per second. H-IIA is aiming for a Tundra Transfer Orbit of 250 by 36,140 Kilometers at an inclination of 31.9 degrees from wh ere it will be up to the satellite to maneuver into its operational slot between the first two QZS craft, flying in an orbit of 32,600 by 38,900 Kilometers with the high point over Japan. This orbital setup allows each satellite to dwell over the Japanese territory for a large part of its orbit.

Loaded springs will send QZS-4 on its way 28 minutes and 24 seconds after launch to check off H-IIA's 36th mission and also mark the completion of QZSS deployment after a fast-paced four months of activities.
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