DocumentCode :
1098425
Title :
Double-Evaporator Thermosiphon for Cooling 100 kWh Class Superconductor Flywheel Energy Storage System Bearings
Author :
Jung, Seyong ; Lee, Jisung ; Park, Byungjun ; Jeong, Sangkwon ; Ko, Junseok ; Lee, Jeonghyun ; Han, Younghee ; Lee, Jeongphil ; Park, Byungchul ; Kim, Hyerim ; Sung, Taehyun
Author_Institution :
Supercond. & Applic. Group, Korea Electr. Power Res. Inst., Daejeon, South Korea
Volume :
19
Issue :
3
fYear :
2009
fDate :
6/1/2009 12:00:00 AM
Firstpage :
2103
Lastpage :
2106
Abstract :
This paper presents an idea for a thermosiphon that uniquely implements two integrated evaporators to cool two HTS (High Temperature Superconductor) bulk sets in different locations, simultaneously. A so-called double-evaporator thermosiphon was designed, fabricated and tested using nitrogen as the working fluid under sub-atmospheric pressure conditions. The operating target temperature was approximately 65 K. To confirm the feasibility of the double-evaporator thermosiphon, experiments during the cool down process and steady state operation were extensively conducted on the double-evaporator thermosiphon (Ltot = 1075 mm, do = 160 mm). The double-evaporator thermosiphon worked successfully at steady state operation. The results showed that it had a maximum total temperature difference between the condenser and the evaporator of 1.3 K and a temperature difference between the two evaporators of 0.6 K at a heat flow of 87 W. This thermosiphon was designed for actual application to a 100 kWh SFES (Superconducting Flywheel Energy Storage) system. The potential impact of superior heat transfer characteristics of the double-evaporator thermosiphon is discussed in the paper.
Keywords :
flywheels; high-temperature superconductors; double-evaporator thermosiphon; energy 100 kWh; heat transfer; high temperature superconductor; superconductor flywheel energy storage system bearings; temperature 0.6 K; temperature 1.3 K; total temperature difference; Double-evaporator thermosiphon; steady state operation; superconductor flywheel energy storage;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2009.2020573
Filename :
5109621
Link To Document :
بازگشت