This paper describes a novel thermal control system for the Warm Electronics Box (WEB) on board a small lunar surface lander intended to support science activities anywhere on the lunar surface for an extended duration of up to 6 years. Virtually all lander electronics, which collectively dissipate about 60 W in the reference mission, are contained within the WEB. These devices must be maintained below 323 K (with a goal of 303 K) during the nearly 15‐earth‐day lunar day, when surface temperatures can reach 390K, and above 263 K during the nearly 15‐earth‐day lunar night, when surface temperatures can reach 100 K. Because of the large temperature swing from lunar day‐to‐night, a novel thermal switching system was required that would be able to provide high conductance from the WEB to the radiator(s) during the hot lunar day and low (or negligible) conductance during the cold lunar night. The concept that was developed consists of ammonia variable conductance heat pipes (VCHPs) to collect heat from WEB components and a polymer wick propylene loop heat pipe (LHP) to transport the collected heat to the radiator(s). The VCHPs autonomously maximize transport when the WEB is warm and autonomously shut down when the WEB gets cold. The LHP autonomously shuts down when the VCHPs shut down. When the environment transitions from lunar night to day, the VCHPs and LHP autonomously turn back on. Out of 26 analyzed systems, this novel arrangement was able to best achieve the combined goals of zero control power, autonomous operation, long life, low complexity, low ΔT, and landed tilt tolerance.
Skip Nav Destination
,
,
,
,
,
Article navigation
28 January 2010
SPACE, PROPULSION & ENERGY SCIENCES INTERNATIONAL FORMUM SPESIF‐2010: 14th Conference on Thermophysics Applications in Microgravity 7th Symposium on New Frontiers in Space Propulsion Sciences 2nd Symposium on Astrosociology 1st Symposium on High Frequency Gravitational Waves
23–25 February 2010
Huntsville (Alabama)
Research Article|
January 28 2010
Two‐Phase Thermal Switching System for a Small, Extended Duration Lunar Surface Science Platform
D. C. Bugby;
D. C. Bugby
aATK Space, 5050 Powder Mill Road, Beltsville, MD 20705
Search for other works by this author on:
J. T. Farmer;
J. T. Farmer
bNASA Marshall Space Flight Center, MFSC, Huntsville, AL 35812
Search for other works by this author on:
B. F. O’Connor;
B. F. O’Connor
bNASA Marshall Space Flight Center, MFSC, Huntsville, AL 35812
Search for other works by this author on:
M. J. Wirzburger;
M. J. Wirzburger
cJohns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
Search for other works by this author on:
E. D. Abel;
E. D. Abel
cJohns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
Search for other works by this author on:
C. J. Stouffer
C. J. Stouffer
aATK Space, 5050 Powder Mill Road, Beltsville, MD 20705
Search for other works by this author on:
D. C. Bugby
a
J. T. Farmer
b
B. F. O’Connor
b
M. J. Wirzburger
c
E. D. Abel
c
C. J. Stouffer
a
aATK Space, 5050 Powder Mill Road, Beltsville, MD 20705
bNASA Marshall Space Flight Center, MFSC, Huntsville, AL 35812
cJohns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
AIP Conf. Proc. 1208, 76–83 (2010)
Citation
D. C. Bugby, J. T. Farmer, B. F. O’Connor, M. J. Wirzburger, E. D. Abel, C. J. Stouffer; Two‐Phase Thermal Switching System for a Small, Extended Duration Lunar Surface Science Platform. AIP Conf. Proc. 28 January 2010; 1208 (1): 76–83. https://doi.org/10.1063/1.3326291
Download citation file:
Pay-Per-View Access
$40.00
Sign In
You could not be signed in. Please check your credentials and make sure you have an active account and try again.
Citing articles via
The implementation of reflective assessment using Gibbs’ reflective cycle in assessing students’ writing skill
Lala Nurlatifah, Pupung Purnawarman, et al.
Effect of coupling agent type on the self-cleaning and anti-reflective behaviour of advance nanocoating for PV panels application
Taha Tareq Mohammed, Hadia Kadhim Judran, et al.
Inkjet- and flextrail-printing of silicon polymer-based inks for local passivating contacts
Zohreh Kiaee, Andreas Lösel, et al.
Related Content
Sodium VCHP with Carbon‐Carbon Radiator for Radioisotope Stirling Systems
AIP Conf. Proc. (January 2010)
Pressure Controlled Heat Pipe for Precise Temperature Control
AIP Conf. Proc. (January 2008)
Aluminum variable-conductive heat pipes of the communication satellites
AIP Conf. Proc. (January 1999)
Variable Conductance Heat Pipes for Radioisotope Stirling Systems
AIP Conf. Proc. (January 2008)
Variable Conductance Heat Pipe Radiators for Lunar and Martian Environments
AIP Conf. Proc. (March 2009)