TY - JOUR
T1 - Thermo-electric characteristics analysis of thermionic energy conversion in space nuclear reactors
AU - Zhao, Haocheng
AU - Wang, Chenglong
AU - Qiu, Suizheng
AU - Tian, Wenxi
AU - Su, Guanghui
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2025/2/15
Y1 - 2025/2/15
N2 - Among static energy conversion technologies, thermionic energy converters have emerged as the preeminent choice for space nuclear reactor applications, distinguished by their high efficiency, compact architecture, and exceptional operational reliability. A comprehensive system analysis code, developed in C++, has been employed to integrate a thermionic electron emission model, an electric circuit model, and a thermionic conversion efficiency model. Through this code, thermionic characteristics for both single components and multiple components configured in series and parallel have been calculated, with validation indicating an error margin of less than 0.2 A/cm2. The performance characteristics of an individual thermionic fuel element have been rigorously evaluated, and comprehensive sensitivity analyses have been conducted on both emitter and collector temperatures. Under steady-state conditions, a maximum power output of 9.32 kW has been demonstrated by series-connected elements, while parallel-connected configurations have achieved 752 W. Notably, in scenarios involving the loss of a heat sink, it has been observed that maintaining the operating voltage of parallel-connected elements below a specific threshold during the incident results in enhanced power output, thereby facilitating core cooling. This study provides critical insights into the optimization of design and performance for thermionic energy conversion elements in space nuclear reactor applications.
AB - Among static energy conversion technologies, thermionic energy converters have emerged as the preeminent choice for space nuclear reactor applications, distinguished by their high efficiency, compact architecture, and exceptional operational reliability. A comprehensive system analysis code, developed in C++, has been employed to integrate a thermionic electron emission model, an electric circuit model, and a thermionic conversion efficiency model. Through this code, thermionic characteristics for both single components and multiple components configured in series and parallel have been calculated, with validation indicating an error margin of less than 0.2 A/cm2. The performance characteristics of an individual thermionic fuel element have been rigorously evaluated, and comprehensive sensitivity analyses have been conducted on both emitter and collector temperatures. Under steady-state conditions, a maximum power output of 9.32 kW has been demonstrated by series-connected elements, while parallel-connected configurations have achieved 752 W. Notably, in scenarios involving the loss of a heat sink, it has been observed that maintaining the operating voltage of parallel-connected elements below a specific threshold during the incident results in enhanced power output, thereby facilitating core cooling. This study provides critical insights into the optimization of design and performance for thermionic energy conversion elements in space nuclear reactor applications.
KW - Circuit analysis
KW - Space nuclear reactor
KW - TOPAZ-II
KW - Thermionic energy conversion
KW - Thermo-electric efficiency
UR - https://www.scopus.com/pages/publications/85210529086
U2 - 10.1016/j.applthermaleng.2024.124997
DO - 10.1016/j.applthermaleng.2024.124997
M3 - 文章
AN - SCOPUS:85210529086
SN - 1359-4311
VL - 261
JO - Applied Thermal Engineering
JF - Applied Thermal Engineering
M1 - 124997
ER -