From Surf Wiki (app.surf) — the open knowledge base
Inertial Upper Stage
Space launch system
Space launch system
| Field | Value |
|---|---|
| image | Artist picture-Ulysses after deployment.jpg |
| imsize | 270 |
| caption | Painting of *Ulysses* deploying from the Space Shuttle |
| name | Inertial Upper Stage |
| manufacturer | Boeing |
| United Technologies | |
| country-origin | United States |
| rockets | Space Shuttle |
| Titan 34D | |
| Titan IV | |
| derivatives | TOS |
| height | 5.2 m |
| diameter | 2.8 m |
| mass | 14,700 kg |
| status | Retired |
| launches | 24 |
| success | 21 |
| fail | 2 |
| noburn | 1 |
| first | 30 October 1982 |
| last | 14 February 2004 |
| stagedata | |
| stageno | First |
| type | stage |
| length | 3.15 m |
| diameter | 2.34 m |
| gross | 10,400 kg |
| propmass | 9,700 kg |
| engines | Orbus-21 |
| thrust | 190 kN |
| SI | 295.5 isp |
| burntime | up to 150 seconds |
| fuel | Solid |
| stageno | Second |
| type | stage |
| length | 1.98 m |
| diameter | 1.60 m |
| gross | 3,000 kg |
| propmass | 2,700 kg |
| engines | Orbus-6 |
| thrust | 80 kN |
| SI | 289.1 isp |
| fuel | Solid |
United Technologies |country-origin = United States Titan 34D Titan IV
The Inertial Upper Stage (IUS), originally designated the Interim Upper Stage, was a two-stage, solid-fueled space launch system developed by Boeing for the United States Air Force beginning in 1976 for raising payloads from low Earth orbit to higher orbits or interplanetary trajectories following launch aboard a Titan 34D or Titan IV rocket as its upper stage, or from the payload bay of the Space Shuttle as a space tug.
Development
During the development of the Space Shuttle, NASA, with support from the Air Force, wanted an upper stage that could be used on the Shuttle to deliver payloads from low earth orbit to higher energy orbits such as GTO or GEO or to escape velocity for planetary probes. The candidates were the Centaur, propelled by liquid hydrogen and liquid oxygen, the Transtage, propelled by hypergolic storable propellants Aerozine-50 and dinitrogen tetroxide (), and the Interim Upper Stage, using solid propellant. The US Department of Defense (DoD) reported that Transtage could support all defense needs but could not meet NASA's scientific requirements, the IUS could support most defense needs and some science missions, while the Centaur could meet all needs of both the Air Force and NASA. Development began on both the Centaur and the IUS, and a second stage was added to the IUS design which could be used either as an apogee kick motor for inserting payloads directly into geostationary orbit or to increase the payload mass brought to escape velocity.
Boeing was the primary contractor for the IUS while Chemical Systems Division of United Technologies built the IUS solid rocket motors.
When launched from the Space Shuttle, the IUS could deliver up to 2,270 kg directly to GEO or up to 4,940 kg to GTO.
The first launch of the IUS was in 1982 on a Titan 34D rocket from the Cape Canaveral Air Force Station shortly before the STS-6 Space Shuttle mission.
Development of the Shuttle-Centaur was halted after the Challenger disaster, and the Interim Upper Stage became the Inertial Upper Stage.
Design
The solid rocket motor on both stages had a steerable nozzle for thrust vectoring. The second stage had hydrazine reaction control jets for attitude control whilst coasting, and for separation from payload. Depending on mission, one, two or three 120 lb tanks of hydrazine could be fitted.
Applications
On Titan launches, the Titan booster would launch the IUS, carrying the payload into low Earth orbit where it was separated from the Titan and ignited its first stage, which carried it into an elliptical "transfer" orbit to a higher altitude.
On Shuttle launches, the orbiter's payload bay was opened, the IUS and its payload raised (by the IUS Airborne Support Equipment (ASE)) to a 50-52° angle, and released. After the Shuttle separated from the payload to a safe distance, the IUS first stage ignited and, as on a Titan booster mission, entered a "transfer orbit".
Upon reaching apogee in the transfer orbit, the first stage and interstage structure were jettisoned. The second stage then fired to circularize the orbit, after which it released the satellite and, using its attitude control jets, began a retrograde maneuver to enter a lower orbit to avoid any possibility of collision with its payload.
In addition to the communication and reconnaissance missions described above, which placed the payload into stationary (24-hour) orbit, the IUS was also used to boost spacecraft towards planetary trajectories. For these missions, the second IUS stage was separated and ignited immediately after first stage burnout. Igniting the second stage at low altitude (and thus, high orbital speed) provided the extra velocity the spacecraft needed to escape from Earth orbit (see Oberth effect). IUS could not impart as much velocity to its payload as Centaur would have been able to: while Centaur could have launched Galileo directly on a two-year trip to Jupiter, the IUS required a six-year voyage with multiple gravity assists.
The final flight of the IUS occurred in February 2004.
Flights
| Serial number | Launch date | Launch vehicle | Payload | Remarks | Image | |||
|---|---|---|---|---|---|---|---|---|
| 2 | 1982-10-30 | Titan 34D | DSCS II F-16/III A-1 | Mission successful despite telemetry loss for most of the flight. | ||||
| 1 | 1983-04-04 | Space Shuttle | ||||||
| (STS-6) | TDRS-A (TDRS-1) | The second stage tumbled due to a thruster motor problem, resulting in an incorrect orbit. The Boeing staff that was monitoring the flight was able to separate the tumbling IUS from the satellite so it could be maneuvered into its final orbit. | [[File:STS-6 TDRS-A deploy preparations.jpg | 60px]] | ||||
| 11 | 1985-01-24 | Space Shuttle | ||||||
| (STS-51-C) | USA-8 (Magnum) | last=Krebs | first=Gunter D. | title=Orion 1, 2 (Magnum 1, 2) | publisher=Gunter's Space Page. | access-date=December 5, 2022 | url=https://space.skyrocket.de/doc_sdat/orion-1_nro.htm}} | |
| 12 | 1985-10-03 | Space Shuttle | ||||||
| (STS-51-J) | USA-11/12 (DSCS) | DoD payload. Declassified in 1998. | [[File:DSCS-III STS-51-J.jpg | frameless | 78x78px]] | |||
| 3 | 1986-01-28 | Space Shuttle | ||||||
| TDRS-B | Destroyed during launch | |||||||
| 7 | 1988-09-29 | Space Shuttle | ||||||
| (STS-26) | TDRS-C (TDRS-3) | [[File:TDRS-C ASE.jpg | 60px]] | |||||
| 9 | 1989-03-13 | Space Shuttle | ||||||
| (STS-29) | TDRS-D (TDRS-4) | |||||||
| 18 | 1989-05-04 | Space Shuttle | ||||||
| (STS-30) | *Magellan* | Probe to Venus. Only one tank of hydrazine. | [[File:Magellan Overhead.jpg | 60px]] | ||||
| 8 | 1989-06-14 | Titan IV (402) A | USA-39 (DSP) | |||||
| 19 | 1989-10-18 | Space Shuttle | ||||||
| (STS-34) | *Galileo* | Probe to Jupiter | [[File:STS034-71-000AK - STS-34 Galileo spacecraft IUS deployment sequence in OV-104's payload bay - 1989.jpg | 60px]] | ||||
| 5 | 1989-11-23 | Space Shuttle | ||||||
| (STS-33) | USA-48 (Magnum) | Classified DoD payload | ||||||
| 17 | 1990-10-06 | Space Shuttle | ||||||
| (STS-41) | *Ulysses* on PAM-S | Probe to the polar regions of the Sun | [[File:STS-41 Ulysses deployment.jpg | 60px]] | ||||
| 6 | 1990-11-13 | Titan IV (402) A | USA-65 (DSP) | |||||
| 15 | 1991-08-02 | Space Shuttle | ||||||
| (STS-43) | TDRS-E (TDRS-5) | [[File:TDRS-E deployment from STS-43.jpg | 60px]] | |||||
| 14 | 1991-11-24 | Space Shuttle | ||||||
| (STS-44) | USA-75 (DSP) | |||||||
| 13 | 1993-01-13 | Space Shuttle | ||||||
| (STS-54) | TDRS-F (TDRS-6) | [[File:1993 s54 TDRS-F.jpg | 60px]] | |||||
| 20 | 1994-12-22 | Titan IV (402) A | USA-107 (DSP) | |||||
| 26 | 1995-07-13 | Space Shuttle | ||||||
| (STS-70) | TDRS-G (TDRS-7) | |||||||
| 4 | 1997-02-23 | Titan IV (402) B | USA-130 (DSP) | |||||
| 21 | 1999-04-09 | Titan IV (402) B | USA-142 (DSP) | IUS first and second stages failed to separate, payload placed into useless orbit | ||||
| 27 | 1999-07-23 | Space Shuttle | ||||||
| (STS-93) | Chandra X-ray Observatory | Last launch of a payload using IUS on a Space Shuttle. | [[File:Chandra X-ray Observatory inside the Space Shuttle payload bay.jpg | 60px]] | ||||
| 22 | 2000-05-08 | Titan IV (402) B | USA-149 (DSP) | |||||
| 16 | 2001-08-06 | Titan IV (402) B | USA-159 (DSP) | |||||
| 10 | 2004-02-14 | Titan IV (402) B | USA-176 (DSP) |
Gallery
File:1988 s26 TDRS-C.jpg|TDRS-C in Space Shuttle ''Discovery'''s payload bay File:1988 s26TDRS-C Released.jpg|Release of TDRS-C File:Ulysses sits atop the PAM-S and IUS combination.jpg|Ulysses used a PAM-S and IUS combination File:Inertial Upper Stage mockup.jpg|An Inertial Upper Stage at the Museum of Flight in Seattle
References
References
- "Inertial Upper Stage".
- "Inertial Upper Stage". Boeing.
- "Inertial Upper Stage".
- (1 November 1982). "Boeing launches two satellites". The Bulletin.
- "Taming liquid hydrogen: the Centaur upper stage rocket".
- "Titan IV Inertial Upper Stage (IUS)".
- "SPACE TRANSPORTATION SYSTEM PAYLOADS".
- "The Cape, Chapter 2, Section 6, TITAN 34D Military Space Operations and".
- (April 1989). "STS-30 PRESS KIT".
- "Taming liquid hydrogen : the Centaur upper stage rocket".
- Krebs, Gunter. "IUS". Gunter's Space Page.
- Krebs, Gunter D.. "Orion 1, 2 (Magnum 1, 2)". Gunter's Space Page..
- Mars, Kelli. (2020-10-02). "35 Years Ago: STS-51J – First Flight of Space Shuttle Atlantis".
- "Tracking and Data Relay Satellite System (TDRSS)". NASA Space Communications.
This article was imported from Wikipedia and is available under the Creative Commons Attribution-ShareAlike 4.0 License. Content has been adapted to SurfDoc format. Original contributors can be found on the article history page.
Ask Mako anything about Inertial Upper Stage — get instant answers, deeper analysis, and related topics.
Research with MakoFree with your Surf account
Create a free account to save articles, ask Mako questions, and organize your research.
Sign up freeThis content may have been generated or modified by AI. CloudSurf Software LLC is not responsible for the accuracy, completeness, or reliability of AI-generated content. Always verify important information from primary sources.
Report