Английская Википедия:Assembly of the International Space Station

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Шаблон:Short description Шаблон:Use dmy dates

Файл:ISS-assembly-animation.gif
Animation of the assembly of the International Space Station

The process of assembling the International Space Station (ISS) has been under way since the 1990s. Zarya, the first ISS module, was launched by a Proton rocket on 20 November 1998. The STS-88 Space Shuttle mission followed two weeks after Zarya was launched, bringing Unity, the first of three node modules, and connecting it to Zarya. This bare 2-module core of the ISS remained uncrewed for the next one and a half years, until in July 2000 the Russian module Zvezda was launched by a Proton rocket, allowing a maximum crew of three astronauts or cosmonauts to be on the ISS permanently.

The ISS has a pressurized volume of approximately Шаблон:Convert, a mass of approximately Шаблон:Convert, approximately 100 kilowatts of power output, a truss Шаблон:Convert long, modules Шаблон:Convert long, and a crew of seven.[1] Building the complete station required more than 40 assembly flights. As of 2020, 36 Space Shuttle flights delivered ISS elements. Other assembly flights consisted of modules lifted by the Falcon 9, Russian Proton rocket or, in the case of Pirs and Poisk, the Soyuz-U rocket.

Some of the larger modules include:

Logistics

Файл:ISSMockupHouston.JPG
International Space Station mockup at Johnson Space Center in Houston, Texas.

The space station is located in orbit around the Earth at an altitude of approximately Шаблон:Convert, a type of orbit usually termed low Earth orbit (the actual height varies over time by several kilometers due to atmospheric drag and reboosts). It orbits Earth in a period of about 90 minutes; by August 2007 it had completed more than 50,000 orbits since launch of Zarya on 20 November 1998.

A total of 14 main pressurized modules were scheduled to be part of the ISS by its completion date in 2010.[2] A number of smaller pressurized sections will be adjunct to them (Soyuz spacecraft (permanently 2 as lifeboats – 6 months rotations), Progress transporters (2 or more), the Quest and Pirs airlocks, as well as periodically the H-II Transfer Vehicle).

The US Orbital Segment was completed in 2011 after the installation of the Alpha Magnetic Spectrometer during the STS-134 mission. The Russian Orbital Segment assembly has been on an indefinite hiatus since the installation of the Rassvet module in 2010 during the STS-132 mission. The Rassvet module on the ISS right now was originally supposed to be the on-ground dynamic testing mock-up of the now-cancelled Science Power Platform. The Nauka science laboratory module contains new crew quarters, life support equipment that can produce oxygen and water, and a new galley. The Nauka was originally supposed to be delivered to the ISS in 2007 but cost overruns and quality control problems delayed it for over a decade. The Nauka module finally launched in July 2021 and docked to the nadir port of Zvezda module after several days of free flight [3] followed by the Prichal which launched on 24 November 2021.

There are plans to add 2 or 3 more modules that would attach to Prichal during the mid-2020s. Adding more Russian modules will help the Zvezda module greatly because Zvezda's originally installed central command computers no longer work (three ThinkPad laptops are now the Zvezda's central command computers) and its Elektron oxygen generators are not replaceable and failed again for a short time in 2020 after multiple malfunctions throughout their history.[4] In Russian modules all the hardware is launched with the equipment permanently installed. It is impossible to replace hardware like in the US Orbital Segment with its very wide 51 inch (105 cm) hatch openings between modules. This potential problem with the Zvezda was made apparent when in October 2020 the toilet, oven, and Elektron all malfunctioned at the same time and the cosmonauts onboard had to make emergency repairs.[5]

The ISS, when completed, will consist of a set of communicating pressurized modules connected to a truss, on which four large pairs of photovoltaic modules (solar panels) are attached. The pressurized modules and the truss are perpendicular: the truss spanning from starboard to port and the habitable zone extending on the aft-forward axis. Although during the construction the station attitude may vary, when all four photovoltaic modules are in their definitive position the aft-forward axis will be parallel to the velocity vector.[6]

In addition to the assembly and utilization flights, approximately 30 Progress spacecraft flights are required to provide logistics until 2010. Experimental equipment, fuel and consumables are and will be delivered by all vehicles visiting the ISS: the SpaceX Dragon, the Russian Progress, the European ATV and the Japanese HTV, and space station downmass will be carried back to Earth facilities on the Dragon.[7]

Columbia disaster and changes in construction plans

Файл:Close-up STS-107 Launch - GPN-2003-00080.jpg
Columbia lifting off on its final mission.

Disaster and consequences

Файл:Mplm in shuttle.jpg
10 March 2001 – The Leonardo Multi-Purpose Logistics Module rests in Space Shuttle DiscoveryШаблон:'s payload bay during STS-102.

After the Space Shuttle Columbia disaster on 1 February 2003, there was some uncertainty over the future of the ISS. The subsequent two and a half-year suspension of the U.S. Space Shuttle program, followed by problems with resuming flight operations in 2005, were major obstacles.Шаблон:Citation needed

The Space Shuttle program resumed flight on 26 July 2005, with the STS-114 mission of Discovery. This mission to the ISS was intended both to test new safety measures implemented since the Columbia disaster and deliver supplies to the station. Although the mission succeeded safely, it was not without risk; foam was shed by the external tank, leading NASA to announce future missions would be grounded until this issue was resolved.Шаблон:Citation needed

Between the Columbia disaster and the resumption of Shuttle launches, crew exchanges were carried out solely using the Russian Soyuz spacecraft. Starting with Expedition 7, two-astronaut caretaker crews were launched in contrast to the previously launched crews of three. Because the ISS had not been visited by a shuttle for an extended period, a larger than planned amount of waste accumulated, temporarily hindering station operations in 2004. However Progress transports and the STS-114 shuttle flight took care of this problem.Шаблон:Citation needed

Changes in construction plans

Файл:STS-116 spacewalk 1.jpg
Construction of the International Space Station over New Zealand.

Many changes were made to the originally planned ISS, even before the Columbia disaster. Modules and other structures were cancelled or replaced, and the number of Shuttle flights to the ISS was reduced from previously planned numbers. However, more than 80% of the hardware intended to be part of the ISS in the late 1990s was orbited and is now part of the ISS's configuration.Шаблон:Citation needed

During the shuttle stand-down, construction of the ISS was halted and the science conducted aboard was limited due to the crew size of two, adding to earlier delays due to Shuttle problems and the Russian space agency's budget constraints.Шаблон:Citation needed

In March 2006, a meeting of the heads of the five participating space agencies accepted the new ISS construction schedule that planned to complete the ISS by 2010.[8]

As of May 2009, a crew of six has been established following 12 Shuttle construction flights after the second "Return to Flight" mission STS-121. Requirements for stepping up the crew size included enhanced environmental support on the ISS, a second Soyuz permanently docked on the station to function as a second 'lifeboat', more frequent Progress flights to provide double the amount of consumables, more fuel for orbit raising maneuvers, and a sufficient supply line of experimental equipment.Шаблон:Citation needed As of November 2020, the crew capacity has increased to seven due to the launch of Crew Dragon by SpaceX, which can carry 4 astronauts to the ISS.

Later additions included the Bigelow Expandable Activity Module (BEAM) in 2016, and numerous Russian components are planned as part of the in-orbit construction of OPSEK.Шаблон:Citation needed

Assembly sequence

Файл:ISS configuration 2022-12 en.svg
ISS elements
Файл:Iss after installation of all roll out solar arrays.jpg
Structure of the International Space Station in mid-June 2023, after the installation of six iROSAs

The ISS is made up of 16 pressurized modules: six Russian modules (Zarya, Zvezda, Poisk, Rassvet, Nauka, and Prichal), eight US modules (BEAM,[9] Leonardo, Harmony, Quest, Tranquility, Unity, Cupola, and Destiny), one Japanese module (Kibō) and one European module (Columbus).

At least one Russian pressurized module (Pirs) is deorbited till now.[10]

Although not permanently docked with the ISS, Multi-Purpose Logistics Modules (MPLMs) formed part of the ISS during some Shuttle missions. An MPLM was attached to Harmony (initially to Unity) and was used for resupply and logistics flights.Шаблон:Citation needed

Spacecraft attached to the ISS also extend the pressurized volume. At least one Soyuz spacecraft is always docked as a 'lifeboat' and is replaced every six months by a new Soyuz as part of crew rotation. Table below shows the sequence in which these components were added to the ISS.[11] Decommissioned and deorbited Modules are shown in gray. Шаблон:Import style

Element Assembly
flight
Launch
date
Launch
vehicle
Length Diameter Mass Isolated View Station View
Zarya (FGB) 1A/R 1998-11-20 Proton-K Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:Zarya from STS-88.jpg Файл:Zarya from STS-88.jpg
Unity (Node 1) 2A 1998-12-04 Шаблон:OV (STS-88) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:ISS Unity module.jpg Файл:Sts088-703-019e.jpg
PMA-1 Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:PMA-3 arrives in SSPF.jpg
PMA-2 Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:PMA-3 arrives in SSPF.jpg
Zvezda (Service Module) 1R 2000-07-12 Proton-K Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:View of the bottom of Zvezda.jpg Файл:Unity-Zarya-Zvezda STS-106.jpg
Z1 Truss 3A 2000-10-11 Шаблон:OV (STS-92) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:ISS Unity and Z1 truss structure from STS-92.jpg Файл:S97e5009.jpg
PMA-3 Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:PMA-3 arrives in SSPF.jpg
P6 Truss & Solar Arrays 4A 2000-11-30 Шаблон:OV (STS-97) Шаблон:Cvt Шаблон:Cvt deployed Шаблон:Cvt Файл:STS-97 ISS.jpg Файл:STS-97 ISS.jpg
Destiny (US Laboratory) 5A 2001-02-07 Шаблон:OV (STS-98) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:ISS Destiny Lab.jpg Файл:Sts098-312-0020.jpg
ESP-1 5A.1 2001-03-08 Шаблон:OV (STS-102) Файл:STS-102 External Storage Platform 1 crop.jpg Файл:S102e5350.jpg
Canadarm2 (SSRMS) 6A 2001-04-19 Шаблон:OV (STS-100) Файл:STS-114 Steve Robinson on Canadarm2.jpg Файл:S100e5958 cropped.jpg
Quest (Joint Airlock) 7A 2001-07-12 Шаблон:OV (STS-104) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:ISS Quest airlock.jpg Файл:ISS on 20 August 2001.jpg
Pirs (Docking Compartment) 4R 2001-09-14 Soyuz-U (Progress M-SO1) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:Pirs docking module taken by STS-108.jpg Файл:S108e5628.jpg
S0 Truss[12] 8A 2002-04-08 Шаблон:OV (STS-110) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:S0 Truss lifted from Shuttles cargo bay.jpg Файл:International Space Station.jpg
Mobile Base System UF2 2002-06-05 Шаблон:OV (STS-111) Файл:STS-111 Installation of Mobile Base System.jpg Файл:Sts111-711-005.jpg
S1 Truss 9A 2002-10-07 Шаблон:OV (STS-112) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:ISS S1 Truss.jpg Файл:S112e05823.jpg
P1 Truss 11A 2002-11-23 Шаблон:OV (STS-113) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:ISS Truss structure.jpg Файл:ISS Mission STS-113.jpg
ESP-2 LF1 2005-07-26 Шаблон:OV (STS-114) Файл:STS-114 External Storage Platform 2 crop.jpg Файл:ISS Aug2005.jpg
P3/P4 Truss & Solar Arrays[13] 12A 2006-09-09 Шаблон:OV (STS-115) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:STS-115 EVA 2 on Day 5.jpg Файл:STS-115 ISS after undocking.jpg
P5 Truss[14] 12A.1 2006-12-09 Шаблон:OV (STS-116) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:STS-116 - ISS P5 Truss awaits installation (NASA ISS014-E-09479).jpg Файл:ISS after STS-116 in December 2006.jpg
S3/S4 Truss & Solar Arrays 13A 2007-06-08 Шаблон:OV (STS-117) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:S3-S4 Truss Installed 2.jpg Файл:ISS after STS-117 in June 2007.jpg
S5 Truss 13A.1 2007-08-08 Шаблон:OV (STS-118) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:STS-116 - P5 Truss hand-off to ISS (NASA S116-E-05765).jpg Файл:ISS after STS-118 in August 2007.jpg
ESP-3 Файл:STS-118 ESP-3 on RMS.jpg
Harmony (Node 2) 10A 2007-10-23 Шаблон:OV (STS-120) 7.2 m

(24 ft)

4.4 m

(14 ft)

14,300 kg (31,500 lb) Файл:Harmony Relocation.jpg Файл:ISS after STS-120 in November 2007.jpg
Relocation of
P6 Truss
Шаблон:Cvt Шаблон:Cvt deployed Шаблон:Cvt Файл:S6 Truss Transfer (STS-119).jpg
Columbus (European Laboratory)[15] 1E 2008-02-07 Шаблон:OV (STS-122) 7 m

(23 ft)

4.5 m

(15 ft)

12,800 kg (28,219 lb) Файл:Columbus module - cropped.jpg Файл:STS-122 ISS Flyaround.jpg
Dextre (SPDM) 1J/A 2008-03-11 Шаблон:OV (STS-123) Файл:S123 Dextre01.jpg Файл:STS-123 ISS Flyaround cropped.jpg
Experiment Logistics Module (ELM) 4.21 m (13.8 ft) 4.39 m (14.4 ft) 8,386 kg (18,488 lb) Файл:Kibo ELM-PS on ISS.jpg
JEM Pressurized Module (JEM-PM)[16][17] 1J 2008-05-31 Шаблон:OV (STS-124) 11.19 m (36.7 ft) 4.39 m (14.4 ft) 15,900 kg (35,100 lb) Файл:STS-124 Kibo.jpg Файл:ISS after STS-124 06 2008.jpg
JEM Remote Manipulator System (JEMRMS)
S6 Truss & Solar Arrays 15A 2009-03-15 Шаблон:OV (STS-119) Шаблон:Cvt Шаблон:Cvt deployed Шаблон:Cvt Файл:S6 Truss Transfer (STS-119).jpg Файл:ISS March 2009.jpg
Kibo Exposed Facility (JEM-EF) 2J/A 2009-07-15 Шаблон:OV (STS-127) Файл:STS-127 JEM-EF.jpg Файл:ISS & Endeavour Shadow STS-127 2.jpg
Poisk (MRM-2)[18][19] 5R 2009-11-10 Soyuz-U (Progress M-MIM2) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:Poisk.Jpeg Файл:STS-129 Atlantis approaches below the ISS.jpg
ELC-1 ULF3 2009-11-16 Шаблон:OV (STS-129) Шаблон:Cvt Файл:ELC2 STS 129.JPG Файл:ISS ULF3 STS-129.jpg
ELC-2 Шаблон:Cvt Файл:ELC2 STS 129.JPG
Tranquility (Node 3) 20A 2010-02-08 Шаблон:OV (STS-130) 6.706 m (22.00 ft) 4.48 m (14.7 ft) 19,000 kg (42,000 lb) Файл:Tranquility-node3.JPG Файл:ISSpoststs130.jpg
Cupola Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:Exterior of Cupola - Exp28.jpg
Rassvet (MRM-1)[20] ULF4 2010-05-14 Шаблон:OV (STS-132) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:STS-132 ISS-23 Rassvet Pirs and Progress M-05M.jpg Файл:International Space Station after undocking of STS-132.jpg
Nauka Science Airlock
Nauka RTOd Radiator
ERA portable workpost
Leonardo (PMM) ULF5 2011-02-24 Шаблон:OV (STS-133) 6.6 m

(22 ft)

4.57 m (15.0 ft) 4,082 kg (8,999 lb) Файл:STS-133 ISS-26 Permanent Multipurpose Module.jpg Файл:STS-133 International Space Station after undocking.jpg
ELC-4 Шаблон:Cvt Файл:ELC2 STS 129.JPG
AMS-02 ULF6 2011-05-16 Шаблон:OV (STS-134) Шаблон:Cvt Файл:Alpha Magnetic Spectrometer - 02.jpg Файл:STS-134 International Space Station after undocking.jpg
OBSS Файл:STS-120 OBSS repair.jpg
ELC-3 Шаблон:Cvt Файл:ELC2 STS 129.JPG
HRSGF CRS SpX-2 2013-03-13 Falcon 9 (SpaceX CRS-2)
BEAM[21] CRS SpX-8 2016-04-08 Falcon 9 (SpaceX CRS-8) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:Beam-instalation-space-station.jpg Файл:ISS-56 International Space Station fly-around (04).jpg
IDA-2[22][23] CRS SpX-9 2016-07-18 Falcon 9 (SpaceX CRS-9) Файл:IDA-2 upright.jpg
IDA-3[24] CRS SpX-18 2019-07-25 Falcon 9 (SpaceX CRS-18)
Bartolomeo[25] CRS SpX-20 2020-03-06 Falcon 9 (SpaceX CRS-20).
Nanoracks Bishop Airlock CRS SpX-21 2020-12-06 Falcon 9 (SpaceX CRS-21) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:Bishop Airlock Module.jpg
iROSA 1 and 2 CRS SpX-22 2021-06-03 Falcon 9 (SpaceX CRS-22) Шаблон:Cvt Файл:ISS-52 Roll Out Solar Array (ROSA) (4).jpg Файл:View of the ISS taken during Crew-2 flyaround (ISS066-E-080651).jpg
Nauka (MLM-U)[26] 3R 2021-07-21 Proton-M Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:Nauka Module as seen from Cupola during VKD-51 spacewalk.jpg Файл:View of the ISS taken during Crew-2 flyaround (ISS066-E-080300).jpg
European Robotic Arm Шаблон:Cvt Шаблон:Cvt
Nauka SSPA-GM temporary docking adapter
MLM Means of Attachment of Large payloads
(LCCS Part)
79P 2021-10-28 Soyuz 2.1a (Progress MS-18)
Prichal 6R 2021-11-24 Soyuz 2.1b (Progress M-UM) Шаблон:Cvt Шаблон:Cvt Шаблон:Cvt Файл:Russian Spacewalkers dwarfed by the Prichal module (cropped).jpg
MLM Means of Attachment of Large payloads
(SCCS Part)
82P 2022-10-26 Soyuz 2.1a (Progress MS-21)
iROSA 3 and 4 CRS SpX-26 2022-11-26 Falcon 9 (SpaceX CRS-26) Шаблон:Cvt Файл:ISS-52 Roll Out Solar Array (ROSA) (4).jpg
iROSA 5 and 6 CRS SpX-28 2023-06-05 Falcon 9 (SpaceX CRS-28) Шаблон:Cvt Файл:ISS-52 Roll Out Solar Array (ROSA) (4).jpg

Шаблон:Notelist

Future elements

  • In January 2021, NASA announced plans to upgrade the station's solar arrays by installing new arrays on top of all the station's eight existing arrays.[27] Six were delivered in three pairs, each pair aboard SpaceX CRS-22 in June 2021, SpaceX CRS-26 in November 2022 and SpaceX CRS-28 in June 2023.[28] Two more will be delivered in one pair aboard a future mission in 2025.[29]
  • Axiom Space plans on launching several modules to connect where PMA-2 is currently at as part of the commercial Axiom Station project. At the end of the ISS's life, Axiom Station could be detached from the ISS and continue in orbit as a commercial low orbit platform.[30]

Cancelled modules

Файл:ISS components.svg
Diagram of the planned ISS circa 1999

Unused modules

The following module was built, but has not been used in future plans for the ISS as of January 2021.

  • American Node 4 – Also known as the Docking Hub System (DHS),[34] would allow the station to have more docking ports for visiting vehicles and would allow inflatable habitats and technology demonstrations to be tested as part of the station.[35]

Cost

The ISS is credited as the most expensive item ever built, costing around $150 billion (USD),[36] making it more expensive than Skylab (costing US$2.2 billion) [37] and Mir (US$4.2 billion).[38]

See also

References

Шаблон:Reflist

External links

Media articles

Шаблон:ISS modules