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Passive Set-Point Thermal Control Skin for Spacecraft
Completed
TRL 4 (started at 2, targeting 4)
Description
Current manned and unmanned spacecraft require sophisticated thermal control technologies to keep systems at temperatures within their proper operating range. Future manned and unmanned missions to the moon, mars, and other destinations will require new technologies to maintain spacecraft temperature near a set-point while under variable heat loads and thermal environments under increasingly stringent size, weight and power constraints. Passive components, such as coatings with variable emissivity, can greatly extend and expand NASA mission capabilities. Physical Sciences Inc. will develop a passive thermal control skin (TCS) with a constant emissivity from 8 C to 30 C and an infrared turndown ratio of greater than 8 between 8 C and -10 C. The TCS will control both the infrared emissivity as a function of thermal load while maintaining a low solar absorptivity at all radiator temperatures.
Benefits
The proposed passive skin can significantly reduce the SWaP of spacecraft thermal control systems. For manned missions, the set-point can be near room temperature to reduce the work required by active thermal management components, removing the need for dual-loop thermal control systems. For unmanned missions, the passive skin can be designed such that the temperature set-point is at either the high or low end of the operating range of the craft electronics, depending on the various requirements, heat loads and thermal environments of the mission. Our innovation directly addresses the need within NASA Technology Roadmap Area 14; specifically 14.2.3.7 (Variable Emissivity Radiator), which has been called out as a need for NASA?s planned, crewed Asteroid Redirect Mission (ARM), and more generally, NASA?s preparation to send a crewed spacecraft to Mars.
The passive set-point thermal control skin (TCS) has potential applications on commercial satellites. Satellites orbiting the earth, when in direct sunlight, have some of their surfaces receiving solar radiation, while the other surfaces only see deep space. As the satellite warms and heat is distributed throughout the satellite, more of the TCS enters its "emissive" state, improving the self-cooling ability of the satellite. PSI?s TCS would maximize the passive cooling ability of these satellites, freeing up power for other satellite functionality.
Details
| Technology area | Thermal Management Systems > Thermal Control Components and Systems > Heat Rejection and Storage |
| Program | Small Business Innovation Research/Small Business Tech Transfer (SBIR/STTR) |
| Lead organization | Physical Sciences, Inc., Andover, MA |
| Start date | 2018-04-11 |
| End date | 2021-06-12 |
Project contacts
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