Thermophysical Properties of Lithium Nitrate Trihydrate from (253 to 353) K

2012 ◽  
Vol 57 (5) ◽  
pp. 1404-1411 ◽  
Author(s):  
Patrick J. Shamberger ◽  
Timothy Reid
2020 ◽  
Vol 179 ◽  
pp. 115476
Author(s):  
Achutha Tamraparni ◽  
Patrick J. Shamberger ◽  
Jonathan R. Felts

Author(s):  
Patrick J. Shamberger ◽  
Daniel E. Forero

Thermal energy storage (TES) materials absorb transient pulses of heat, allowing for rapid storage of low-quality thermal energy for later use, and effective temperature regulation as part of a thermal management system. This paper describes recent development of salt hydrate-based TES composites at the Air Force Research Laboratory. Salt hydrates are known to be susceptible to undercooling and chemical segregation, and their bulk thermal conductivities remain too low for rapid heat transfer. Here, we discuss recent progress towards solving these challenges in the composite system lithium nitrate trihydrate/graphitic foam. This system takes advantage of both the high volumetric thermal energy storage density of lithium nitrate trihydrate and the high thermal conductivity of graphitic foams. We demonstrate a new stable nucleation agent specific to lithium nitrate trihydrate which decreases undercooling by up to ∼70% relative to previously described nucleation agents. Furthermore, we demonstrate the compatibility of lithium nitrate trihydrate and graphitic foam with the addition of a commercial nonionic silicone polyether surfactant. Finally, we show that thermal conductivity across water-graphite interfaces is optimized by tuning the surfactant concentration. These advances demonstrate a promising route to synthesizing high energy density, high thermal conductivity TES composites.


2012 ◽  
Vol 116 (9) ◽  
pp. 2147-2153 ◽  
Author(s):  
Francesco Muniz-Miranda ◽  
Marco Pagliai ◽  
Gianni Cardini ◽  
Roberto Righini

2011 ◽  
Vol 2 (13) ◽  
pp. 1633-1638 ◽  
Author(s):  
Jasper C. Werhahn ◽  
Stanislav Pandelov ◽  
Sotiris S. Xantheas ◽  
Hristo Iglev

2017 ◽  
Vol 5 (24) ◽  
pp. 12474-12482 ◽  
Author(s):  
Parvin Karimineghlani ◽  
Emily Emmons ◽  
Micah J. Green ◽  
Patrick Shamberger ◽  
Svetlana A. Sukhishvili

A temperature-responsive PVA gel is achieved that reversibly holds fluid lithium nitrate trihydrate and releases it in response to temperature for easy gelling in-place and later removal from heat-exchange modules.


Author(s):  
Kevin Coscia ◽  
Sudhakar Neti ◽  
Alparslan Oztekin ◽  
Spencer Nelle ◽  
Satish Mohapatra ◽  
...  

The present work comprises of thermophysical properties of nitrate-based binary heat transfer fluids of various compositions. For various nitrate mixtures, specific heat, latent heat of fusion, and viscosity as a function of shear rate are reported at various temperatures. Phase diagrams have also been constructed for these binary mixtures using differential scanning calorimetry. It was found that the contribution of the lithium nitrate on the binary mixtures had the largest increase in specific heat. As with most fluids, viscosity significantly decreases with temperature. The latent heat of the binary mixtures cannot be determined by using simple mass-averaging. The results presented in this work are expected to make a significant impact on the development of economical and industrially viable nitrate mixtures for solar power applications.


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