TY - GEN
T1 - EFFECT OF INNER FIN TUBE STRUCTURE ON COMPREHENSIVE PERFORMANCE OF SUPERCRITICAL CARBON DIOXIDE AND LEAD BISMUTH EUTECTIC HEAT EXCHANGER
AU - Shuhan, Liu
AU - Ji’an, Liu
AU - Qingjiang, Liu
AU - Xianliang, Lei
N1 - Publisher Copyright:
© 2023 by ASME.
PY - 2023
Y1 - 2023
N2 - In the combined system of lead cooled fast reactor (LFR) and supercritical carbon dioxide (S-CO2) Brayton cycle, the intermediate heat exchanger plays a key role in the whole power system. However, the existing heat exchanger can not meet the trend of miniaturization of lead cooled fast reactor. Considering the thermo-physical properties and heat transfer behaviors in both S-CO2 and liquid lead bismuth eutectic (LBE) are significantly different, an asymmetric compact coupled heat exchanger learning from Honeycomb structure is proposed. Through numerical simulation, it is found that the thermal resistance mainly exists in the cold side. In order to enhance the heat transfer at the S-CO2 side, the fin tube is adopted at the cold side. The results show that the heat transfer performance and friction factor of the heat exchanger increase with the increase of fin height, width and number of fins due to the increase of heat transfer area. When the fin height is increased, PEC gradually increases at low inlet velocity, and then decreases at high inlet velocity; When the fin width is increased, PEC increases first and then decreases at low inlet velocity, and decreases gradually at high inlet velocity; With the increase of the number of fins, PEC showed an increasing trend at different inlet velocities.
AB - In the combined system of lead cooled fast reactor (LFR) and supercritical carbon dioxide (S-CO2) Brayton cycle, the intermediate heat exchanger plays a key role in the whole power system. However, the existing heat exchanger can not meet the trend of miniaturization of lead cooled fast reactor. Considering the thermo-physical properties and heat transfer behaviors in both S-CO2 and liquid lead bismuth eutectic (LBE) are significantly different, an asymmetric compact coupled heat exchanger learning from Honeycomb structure is proposed. Through numerical simulation, it is found that the thermal resistance mainly exists in the cold side. In order to enhance the heat transfer at the S-CO2 side, the fin tube is adopted at the cold side. The results show that the heat transfer performance and friction factor of the heat exchanger increase with the increase of fin height, width and number of fins due to the increase of heat transfer area. When the fin height is increased, PEC gradually increases at low inlet velocity, and then decreases at high inlet velocity; When the fin width is increased, PEC increases first and then decreases at low inlet velocity, and decreases gradually at high inlet velocity; With the increase of the number of fins, PEC showed an increasing trend at different inlet velocities.
KW - Heat exchange enhancement
KW - Microchannel heat exchanger
KW - Supercritical carbon dioxide
KW - lead bismuth eutectic
UR - https://www.scopus.com/pages/publications/85177567606
U2 - 10.1115/HT2023-107565
DO - 10.1115/HT2023-107565
M3 - 会议稿件
AN - SCOPUS:85177567606
T3 - Proceedings of ASME 2023 Heat Transfer Summer Conference, HT 2023
BT - Proceedings of ASME 2023 Heat Transfer Summer Conference, HT 2023
PB - American Society of Mechanical Engineers (ASME)
T2 - ASME 2023 Heat Transfer Summer Conference, HT 2023
Y2 - 10 July 2023 through 12 July 2023
ER -