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16.851 Satellite Engineering (MIT) 16.851 Satellite Engineering (MIT)

Description

Satellite Engineering introduces students to subsystem design in engineering spacecraft. The course presents characteristic subsystems, such as power, structure, communication and control, and analyzes the engineering trades necessary to integrate subsystems successfully into a satellite. Discussions of spacecraft operating environment and orbital mechanics help students to understand the functional requirements and key design parameters for satellite systems. Satellite Engineering introduces students to subsystem design in engineering spacecraft. The course presents characteristic subsystems, such as power, structure, communication and control, and analyzes the engineering trades necessary to integrate subsystems successfully into a satellite. Discussions of spacecraft operating environment and orbital mechanics help students to understand the functional requirements and key design parameters for satellite systems.

Subjects

satellites | satellites | satellite engineering | satellite engineering | subsystems | subsystems | satellite design | satellite design | launch systems | launch systems | space environment | space environment | payloads | payloads | orbital mechanics | orbital mechanics | spacecraft mission design | spacecraft mission design | spacecraft | spacecraft | attitude determination | attitude determination | attitude control | attitude control | propulsion | propulsion | thermal systems | thermal systems | ground systems | ground systems | optics | optics | autonomy | autonomy | integrated concurrent engineering | integrated concurrent engineering | power subsystems | power subsystems | GPS | GPS | navigation | navigation | avionics | avionics | ISS operations | ISS operations | satellite tool kit | satellite tool kit | STK | STK

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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Soaring Spaceward Soaring Spaceward

Description

Subjects

aviation | aviation | satellite | satellite | nasa | nasa | goes | goes | rocket | rocket | boeing | boeing | capecanaveral | capecanaveral | itt | itt | aerospace | aerospace | spaceflight | spaceflight | ula | ula | rocketlaunch | rocketlaunch | nationalaeronauticsandspaceadministration | nationalaeronauticsandspaceadministration | deltaiv | deltaiv | lc37b | lc37b | weathersatellite | weathersatellite | lc37 | lc37 | deltarocket | deltarocket | deltaivrocket | deltaivrocket | launchcomplex37 | launchcomplex37 | unitedlaunchalliance | unitedlaunchalliance | slc37 | slc37 | boeingids | boeingids | boeingintegrateddefensesystems | boeingintegrateddefensesystems | goeso | goeso | geostationaryoperationalenvironmentalsatellite | geostationaryoperationalenvironmentalsatellite | boeingdeltaiv | boeingdeltaiv | launchcomplex37b | launchcomplex37b | goes14 | goes14 | slc37b | slc37b | boeingdeltaivrocket | boeingdeltaivrocket | deltaivmedium | deltaivmedium | deltaivm | deltaivm | ittcorporation | ittcorporation | spacelaunchcomplex37 | spacelaunchcomplex37 | spacelaunchcomplex37b | spacelaunchcomplex37b

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Nimbus-A, Weather Satellite Nimbus-A, Weather Satellite

Description

Subjects

weathersatellite | weathersatellite | nimbusameteorologicalsatellite | nimbusameteorologicalsatellite | thoragenab | thoragenab

License

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Artist's conception of the deployment of ACTS Artist's conception of the deployment of ACTS

Description

Subjects

acts | acts | communicationsatellites | communicationsatellites | advancedcommunicationtechnologysatellite | advancedcommunicationtechnologysatellite

License

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Communication Technology Satellite Communication Technology Satellite

Description

Subjects

cts | cts | communicationsatellite | communicationsatellite | communicationtechnologysatellite | communicationtechnologysatellite

License

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16.851 Satellite Engineering (MIT)

Description

Satellite Engineering introduces students to subsystem design in engineering spacecraft. The course presents characteristic subsystems, such as power, structure, communication and control, and analyzes the engineering trades necessary to integrate subsystems successfully into a satellite. Discussions of spacecraft operating environment and orbital mechanics help students to understand the functional requirements and key design parameters for satellite systems.

Subjects

satellites | satellite engineering | subsystems | satellite design | launch systems | space environment | payloads | orbital mechanics | spacecraft mission design | spacecraft | attitude determination | attitude control | propulsion | thermal systems | ground systems | optics | autonomy | integrated concurrent engineering | power subsystems | GPS | navigation | avionics | ISS operations | satellite tool kit | STK

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see https://ocw.mit.edu/terms/index.htm

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16.83X Space Systems Engineering (MIT) 16.83X Space Systems Engineering (MIT)

Description

Space Systems Engineering (16.83X) is the astronautical capstone course option in the Department of Aeronautics and Astronautics.  Between Spring 2002 and Spring 2003, the course was offered in a 3-semester format, using a Conceive, Design, Implement and Operate (C-D-I-O) teaching model. 16.83X is shorthand for the three course numbers: 16.83, 16.831, and 16.832. The first semester (16.83) is the Conceive-Design phase of the project, which results in a detailed system design, but precedes assembly.  The second semester (16.831) is the Implement phase, and involves building the students' system.  The final semester (16.832) is the Operate phase, in which the system is tested and readied to perform in its intended environment. This year's project obj Space Systems Engineering (16.83X) is the astronautical capstone course option in the Department of Aeronautics and Astronautics.  Between Spring 2002 and Spring 2003, the course was offered in a 3-semester format, using a Conceive, Design, Implement and Operate (C-D-I-O) teaching model. 16.83X is shorthand for the three course numbers: 16.83, 16.831, and 16.832. The first semester (16.83) is the Conceive-Design phase of the project, which results in a detailed system design, but precedes assembly.  The second semester (16.831) is the Implement phase, and involves building the students' system.  The final semester (16.832) is the Operate phase, in which the system is tested and readied to perform in its intended environment. This year's project obj

Subjects

space systems engineering | space systems engineering | CDIO | CDIO | conceive | conceive | design | design | implement | implement | operate | operate | trajectory analysis | trajectory analysis | entry dynamics | entry dynamics | propulsion | propulsion | power | power | structural design | structural design | avionics | avionics | thermal control | thermal control | environmental control | environmental control | human factors | human factors | support systems | support systems | weight estimates | weight estimates | cost estimates | cost estimates | student projects | student projects | integrated vehicle design | integrated vehicle design | team communication | team communication | electromagnetic formation flight | electromagnetic formation flight | satellites | satellites | TARR preparation | TARR preparation | subsystem design | subsystem design | subsystem prototyping | subsystem prototyping | trade analysis and requirements review | trade analysis and requirements review

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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12.540 Principles of the Global Positioning System (MIT) 12.540 Principles of the Global Positioning System (MIT)

Description

The aim of this course is to introduce the principles of the Global Positioning System and to demonstrate its application to various aspects of Earth Sciences. The specific content of the course depends each year on the interests of the students in the class. In some cases, the class interests are towards the geophysical applications of GPS and we concentrate on high precision(millimeter level) positioning on regional and global scales. In other cases, the interests have been more toward engineering applications of kinematic positioning with GPS in which case the concentration is on positioning with slightly less accuracy but being able to do so for a moving object. In all cases, we concentrate on the fundamen The aim of this course is to introduce the principles of the Global Positioning System and to demonstrate its application to various aspects of Earth Sciences. The specific content of the course depends each year on the interests of the students in the class. In some cases, the class interests are towards the geophysical applications of GPS and we concentrate on high precision(millimeter level) positioning on regional and global scales. In other cases, the interests have been more toward engineering applications of kinematic positioning with GPS in which case the concentration is on positioning with slightly less accuracy but being able to do so for a moving object. In all cases, we concentrate on the fundamen

Subjects

Global Positioning System | Global Positioning System | Earth Sciences | Earth Sciences | geophysical applications | geophysical applications | GPS | GPS | engineering applications | engineering applications | kinematic positioning | kinematic positioning | precision | precision | accuracy | accuracy | moving objects | moving objects | coordinate | coordinate | time | time | systems | systems | satellite | satellite | geodetic | geodetic | orbital | orbital | motions | motions | pseudo ranges | pseudo ranges | carrier phases | carrier phases | stochastic | stochastic | mathematics | mathematics | models | models | data | data | analysis | analysis | estimation | estimation

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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16.346 Astrodynamics (MIT) 16.346 Astrodynamics (MIT)

Description

Includes audio/video content: AV selected lectures. This course covers the fundamentals of astrodynamics, focusing on the two-body orbital initial-value and boundary-value problems with applications to space vehicle navigation and guidance for lunar and planetary missions, including both powered flight and midcourse maneuvers. Other topics include celestial mechanics, Kepler's problem, Lambert's problem, orbit determination, multi-body methods, mission planning, and recursive algorithms for space navigation. Selected applications from the Apollo, Space Shuttle, and Mars exploration programs are also discussed. Includes audio/video content: AV selected lectures. This course covers the fundamentals of astrodynamics, focusing on the two-body orbital initial-value and boundary-value problems with applications to space vehicle navigation and guidance for lunar and planetary missions, including both powered flight and midcourse maneuvers. Other topics include celestial mechanics, Kepler's problem, Lambert's problem, orbit determination, multi-body methods, mission planning, and recursive algorithms for space navigation. Selected applications from the Apollo, Space Shuttle, and Mars exploration programs are also discussed.

Subjects

space navigation | space navigation | two body problem | two body problem | boundary value problem | boundary value problem | Kepler | Kepler | astrodynamics | astrodynamics | orbital transfer | orbital transfer | satellite | satellite | hyperbolic orbits | hyperbolic orbits | planetary flybys | planetary flybys | hypergeometric functions | hypergeometric functions | flight guidance | flight guidance | three body problem | three body problem | Clohessy-Wiltshire equation | Clohessy-Wiltshire equation | Hodograph plane | Hodograph plane | Battin-vaughan formulation | Battin-vaughan formulation | atmospheric drag | atmospheric drag | disturbing function | disturbing function

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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Melba Roy - Female Computer Melba Roy - Female Computer

Description

Subjects

women | women | nasa | nasa | echosatellite | echosatellite | melbaroy | melbaroy

License

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Sheila Scott Sheila Scott

Description

Subjects

women | women | aeronautics | aeronautics | 99s | 99s | irls | irls | sheilascott | sheilascott | ninetynines | ninetynines | vision:outdoor=0536 | vision:outdoor=0536 | interrogationrecordingandlocationsystem | interrogationrecordingandlocationsystem | nimbuscommunicationsatellites | nimbuscommunicationsatellites

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John Robinson Pierce, Communication Satellite Pioneer John Robinson Pierce, Communication Satellite Pioneer

Description

Subjects

echo | echo | att | att | communicationsatellite | communicationsatellite | johnrobinsonpierce | johnrobinsonpierce

License

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Echo - A Passive Communications Satellite Echo - A Passive Communications Satellite

Description

Subjects

langleyresearchcenter | langleyresearchcenter | echopassivecommunicationssatellite | echopassivecommunicationssatellite

License

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Satellites for Sale Satellites for Sale

Description

Subjects

satellite | satellite | astronaut | astronaut | nasa | nasa | 1984 | 1984

License

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Engineers checkout Early Bird-Communication Satellite Engineers checkout Early Bird-Communication Satellite

Description

Subjects

communicationsatellites | communicationsatellites

License

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Explorer XVII Satellite Explorer XVII Satellite

Description

Subjects

gsfc | gsfc | goddardspaceflightcenter | goddardspaceflightcenter | explorerxviiatmosphericsatellite | explorerxviiatmosphericsatellite

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Atlas Negative Collection Image Atlas Negative Collection Image

Description

Subjects

gd | gd | spacecraft | spacecraft | centaur | centaur | generaldynamics | generaldynamics | rocketbooster | rocketbooster | shuttlecentaur | shuttlecentaur | generaldynamicscentaurg | generaldynamicscentaurg | centaurg | centaurg | centaurbooster | centaurbooster | boosterstage | boosterstage | satellitebooster | satellitebooster

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Atlas Negative Collection Image Atlas Negative Collection Image

Description

Subjects

gd | gd | spacecraft | spacecraft | centaur | centaur | generaldynamics | generaldynamics | rocketbooster | rocketbooster | shuttlecentaur | shuttlecentaur | generaldynamicscentaurg | generaldynamicscentaurg | centaurg | centaurg | centaurbooster | centaurbooster | boosterstage | boosterstage | satellitebooster | satellitebooster

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Explorer 24 Explorer 24

Description

Subjects

langley | langley | explorer24 | explorer24 | echosatelliteballoon | echosatelliteballoon

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Atlas Negative Collection Image Atlas Negative Collection Image

Description

Subjects

gd | gd | spacecraft | spacecraft | centaur | centaur | generaldynamics | generaldynamics | rocketbooster | rocketbooster | shuttlecentaur | shuttlecentaur | generaldynamicscentaurg | generaldynamicscentaurg | centaurg | centaurg | centaurbooster | centaurbooster | boosterstage | boosterstage | satellitebooster | satellitebooster

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12.540 Principles of Global Positioning Systems (MIT) 12.540 Principles of Global Positioning Systems (MIT)

Description

The aim of this course is to introduce the principles of the Global Positioning System and to demonstrate its application to various aspects of Earth Sciences. The specific content of the course depends each year on the interests of the students in the class. In some cases, the class interests are towards the geophysical applications of GPS and we concentrate on high precision (millimeter level) positioning on regional and global scales. In other cases, the interests have been more toward engineering applications of kinematic positioning with GPS in which case the concentration is on positioning with slightly less accuracy but being able to do so for a moving object. In all cases, we concentrate on the fundamental issues so that students should gain an understanding of the basic limitation The aim of this course is to introduce the principles of the Global Positioning System and to demonstrate its application to various aspects of Earth Sciences. The specific content of the course depends each year on the interests of the students in the class. In some cases, the class interests are towards the geophysical applications of GPS and we concentrate on high precision (millimeter level) positioning on regional and global scales. In other cases, the interests have been more toward engineering applications of kinematic positioning with GPS in which case the concentration is on positioning with slightly less accuracy but being able to do so for a moving object. In all cases, we concentrate on the fundamental issues so that students should gain an understanding of the basic limitation

Subjects

Global Positioning System (GPS) | Global Positioning System (GPS) | kinematic positioning | kinematic positioning | geodetic systems | geodetic systems | satellite orbital motions | satellite orbital motions

License

Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htm

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Atlas Negative Collection Image Atlas Negative Collection Image

Description

Subjects

gd | gd | spacecraft | spacecraft | centaur | centaur | generaldynamics | generaldynamics | rocketbooster | rocketbooster | shuttlecentaur | shuttlecentaur | generaldynamicscentaurg | generaldynamicscentaurg | centaurg | centaurg | centaurbooster | centaurbooster | boosterstage | boosterstage | satellitebooster | satellitebooster

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Atlas Negative Collection Image Atlas Negative Collection Image

Description

Subjects

gd | gd | spacecraft | spacecraft | centaur | centaur | generaldynamics | generaldynamics | rocketbooster | rocketbooster | shuttlecentaur | shuttlecentaur | generaldynamicscentaurg | generaldynamicscentaurg | generaldynamicscentaurgprime | generaldynamicscentaurgprime | centaurg | centaurg | centaurgprime | centaurgprime | centaurbooster | centaurbooster | boosterstage | boosterstage | satellitebooster | satellitebooster

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Atlas Negative Collection Image Atlas Negative Collection Image

Description

Subjects

crane | crane | cranes | cranes | gd | gd | spacecraft | spacecraft | centaur | centaur | generaldynamics | generaldynamics | rocketbooster | rocketbooster | shuttlecentaur | shuttlecentaur | generaldynamicscentaurg | generaldynamicscentaurg | generaldynamicscentaurgprime | generaldynamicscentaurgprime | centaurg | centaurg | centaurgprime | centaurgprime | centaurbooster | centaurbooster | boosterstage | boosterstage | satellitebooster | satellitebooster

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Subjects

crane | crane | cranes | cranes | gd | gd | spacecraft | spacecraft | centaur | centaur | generaldynamics | generaldynamics | rocketbooster | rocketbooster | shuttlecentaur | shuttlecentaur | generaldynamicscentaurg | generaldynamicscentaurg | generaldynamicscentaurgprime | generaldynamicscentaurgprime | centaurg | centaurg | centaurgprime | centaurgprime | centaurbooster | centaurbooster | boosterstage | boosterstage | satellitebooster | satellitebooster

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