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Experimental Characterization of Additively Manufactured Nickel-Titanium Shape Memory Alloy Heat PipesShape memory alloys (SMA) have been identified for use in spacecraft components as replacement for conventional deployment mechanisms. They may be used in thermal management components such as radiators to create self-deploying radiators. One SMA, NiTi, has also been developed for additive manufacturing processes. Heat pipes are a common way to create highly effective and lightweight spaceflight radiators, and heat pipes can also be made from NiTi and related alloys. The wick is the critical element of a functioning heat pipe, and recent progress over the past years has led to the development of additively manufactured heat pipe wicks in various materials. The combination of these efforts is the focus of this project: creating an additively manufactured, shape memory alloy self-deploying heat pipe radiator. This paper will focus on the experimental characterization of these additively manufactured NiTi heat pipes. The heat pipe coupons were additively manufactured by direct metal laser sintering (DMLS), with an integral liquid cooled condenser. Heat is input to the heat pipe via a thin film heater. Thermocouples were spot welded to the heat pipes to measure temperature at several axial locations. The heat pipes were tested with two working fluids: water and ethanol. Ethanol is not an ideal working fluid for heat pipes but is useful in characterizing them because it wets well to a wide variety of surfaces. Water is in general a superior working fluid for heat pipes, but its contact angle and therefore wicking performance strongly depends on the surface chemistry of the surface it is in contact with. A particular measurement of interest in this test is the evaporator to condenser thermal conductance, which will be compared in the full paper to recently published correlations for additively manufactured heat pipes. Experimental results for two straight geometry and one bellows geometry heat pipe will be presented. The bellows geometry is of interest for condenser of the self-deploying radiator design.
Document ID
20260007809
Acquisition Source
Glenn Research Center
Document Type
Presentation
Authors
William Sixel
(Glenn Research Center Cleveland, United States)
Bilal Bomani
(Glenn Research Center Cleveland, United States)
Tomé Seichi da Nóbrega Guenka
(Pennsylvania State University State College, United States)
Christopher Greer
(Pennsylvania State University State College, United States)
Ryan Overdorff
(3D Systems (United States) Rock Hill, United States)
Date Acquired
August 13, 2026
Subject Category
Fluid Mechanics and Thermodynamics
Meeting Information
Meeting: Thermal and Fluids Analysis Workshop (TFAWS 2026)
Location: Huntsville, AL
Country: US
Start Date: August 31, 2026
End Date: September 4, 2026
Sponsors: National Aeronautics and Space Administration
Funding Number(s)
WBS: 875293.08.04.01.22
CONTRACT_GRANT: 80NSSC23M0234
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
Single Expert
Keywords
Additive manufacturing
shape memory alloys
heat pipes
porous media
capillary fluidics
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