1998Journal of Propulsion and PowerRequires access

Status and Issues Related to In-Space Propulsion Systems

Robert L. Sackheim, D. C. Byers

Open publisher page 14 citations

Abstract

In-space propulsion is required for multiple, critical, postlaunch functions for most space missions. The propulsion functions are broadly classiŽ ed as insertion, on-orbit (including stationkeeping, repositioning, constellation management, etc.), and disposal/deorbit (if required). Orbit transfer represents a major additional element of in-space propulsion but only the onboard segment of in-space propulsion is treated herein. It is estimated that the mass of in-space propulsion will represent over 40% of the mass delivered by launchers and upper stages for all unmanned space missions over the next 10 years and, therefore, will exert a predominant in uence on the capability and competitiveness of future space systems. Technical advancements of in-space propulsion are underway and include demonstrations of higher-performance (speciŽ c impulse) chemical and electric rocket systems. This paper will brie y 1) review the stateof-the-art in-space propulsion, 2) discuss some new technologies in advanced development, and 3) present the impact of selected advanced technologies on space missions.

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What this paper is about

In-space propulsion is required for multiple, critical, postlaunch functions for most space missions. The propulsion functions are broadly classiŽ ed as insertion, on-orbit (including stationkeeping, repositioning, constellation management, etc.), and disposal/deorbit (if required). Orbit transfer represents a major additional element of in-space propulsion but only the onboard segment of in-space propulsion is treated herein. It is estimated that the mass of in-space propulsion will represent over 40% of the mass delivered by launchers and upper stages for all unmanned space missions over the next 10 years and, therefore, will exert a predominant in uence on the capability and competitiveness of future space systems. Technical advancements of in-space propulsion are underway and include demonstrations of higher-performance (speciŽ c impulse) chemical and electric rocket systems. This paper will brie y 1) review the stateof-the-art in-space propulsion, 2) discuss some new technologies in advanced development, and 3) present the impact of selected advanced technologies on space missions.

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Available abstract

In-space propulsion is required for multiple, critical, postlaunch functions for most space missions. The propulsion functions are broadly classiŽ ed as insertion, on-orbit (including stationkeeping, repositioning, constellation management, etc.), and disposal/deorbit (if required). Orbit transfer represents a major additional element of in-space propulsion but only the onboard segment of in-space propulsion is treated herein. It is estimated that the mass of in-space propulsion will represent over 40% of the mass delivered by launchers and upper stages for all unmanned space missions over the next 10 years and, therefore, will exert a predominant in uence on the capability and competitiveness of future space systems. Technical advancements of in-space propulsion are underway and include demonstrations of higher-performance (speciŽ c impulse) chemical and electric rocket systems. This paper will brie y 1) review the stateof-the-art in-space propulsion, 2) discuss some new technologies in advanced development, and 3) present the impact of selected advanced technologies on space missions.

Key concepts: In-space propulsion technologies, Propulsion, Aerospace engineering, Spacecraft propulsion, Specific impulse, Space exploration, Space (punctuation), Ion thruster

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