Heat Transport and Power Conversion of the Kilopower Reactor Test

被引:2
|
作者
Gibson M.A. [1 ]
Poston D.I. [2 ]
McClure P.R. [2 ]
Sanzi J.L. [3 ]
Godfroy T.J. [3 ]
Briggs M.H. [1 ]
Wilson S.D. [1 ]
Schifer N.A. [1 ]
Chaiken M.F. [1 ]
Lugasy N. [3 ]
机构
[1] National Aeronautics and Space Administration, Glenn Research Center, Cleveland, OH
[2] Los Alamos National Laboratory, Los Alamos, NM
[3] Vantage Partners LLC, Cleveland, OH
关键词
Kilopower; Kilowatt Reactor Using Stirling TechnologY; space reactor; Stirling power conversion; uranium;
D O I
10.1080/00295450.2019.1709364
中图分类号
学科分类号
摘要
The Kilopower reactors have been designed to provide a steady-state thermal power range between 4 and 40 kW and to convert the heat generated to an electrical output of 1 to 10 kW(electric), providing an overall system efficiency of 25%. This range of thermal and electrical power has been derived from two basic designs: the small 1-kW(electric) design and the larger 10- kW(electric) electric design intended to support science and human exploration missions for surface and in-space power. The Kilowatt Reactor Using Stirling TechnologY (KRUSTY) experiment was built using the 1-kW(electric) Kilopower design to make the test affordable by using existing infrastructure and to complete it in a 3-year timeframe. The data from the smaller, lower-mass system could be extended to the larger 10-kW(electric) system, knowing that the materials and neutronic design are similar. Each of these designs use the same fuel, heat transport systems, and power conversion systems at the appropriate scale to produce the desired electrical output power for mission use. The heat transport system uses multiple heat pipes that operate passively and do not require any electrical pumps or other parasitic loads to cool the reactor core. This type of reactor cooling provides several layers of redundancy and makes it ideal for coupling a self-regulating reactor to a variable-output power conversion system. The power converters accept the reactor heat that has been delivered by the heat pipes and create the needed electrical power through their thermodynamic Stirling cycle and linear alternator. This paper provides details about the sodium heat pipes used in the experiment, the Stirling power converters that create the electricity, and the overall power system that make up the 1-kW(electric) Kilopower reactor. © 2020, © 2020 The Author(s). Published with license by Taylor & Francis Group, LLC.
引用
收藏
页码:31 / 42
页数:11
相关论文
共 50 条
  • [21] Study of Criticality Safety Issue of Kilopower Space Reactor during Launch Failure Accident
    An W.
    Guo J.
    Ge P.
    Gao J.
    Yuanzineng Kexue Jishu/Atomic Energy Science and Technology, 2021, 55 (03): : 447 - 453
  • [22] POWER CONVERSION FOR UWMAK-III FUSION REACTOR
    KUO, SC
    TRANSACTIONS OF THE AMERICAN NUCLEAR SOCIETY, 1975, 22 (NOV16): : 24 - 24
  • [23] EVALUATION OF HYDROGEN TRANSPORT BEHAVIOR IN THE POWER RISING TEST OF JAPANESE PROTOTYPE FAST BREEDER REACTOR MONJU
    Doi, Daisuke
    Nakagiri, Toshio
    PROCEEDINGS OF THE 20TH INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING AND THE ASME 2012 POWER CONFERENCE - 2012, VOL 1, 2012, : 309 - 314
  • [24] Power conversion from spherical tokamak test reactor with helium-cooled and water-cooled blanket
    Prajapati, Piyush
    Deshpande, Shishir
    FUSION ENGINEERING AND DESIGN, 2022, 176
  • [25] Reliability and loading-following studies of a heat pipe cooled, AMTEC conversion space reactor power system
    Ge Li
    Li Huaqia
    Shan Jianqiang
    ANNALS OF NUCLEAR ENERGY, 2019, 130 : 82 - 92
  • [26] HEAT EXCHANGE IN LMF POWER REACTOR SYSTEMS
    DWYER, OE
    NUCLEONICS, 1954, 12 (07): : 30 - 39
  • [27] EFFECT OF TRANSPORT PROCESSES ON CONVERSION IN A TRICKLE-BED REACTOR
    SYLVESTER, ND
    PITAYAGU.P
    AICHE JOURNAL, 1973, 19 (03) : 640 - 644
  • [28] HEAT TRANSPORT NEAR THE WALL OF A TOKAMAK REACTOR.
    Petrov, V.G.
    Tokar, M.Z.
    1978, 4 (04): : 462 - 463
  • [29] Heat Transfer Inside the Physical Vapor Transport Reactor
    Zhang, Zeyi
    Xu, Min
    Wang, Liqiu
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2016, 138 (10):
  • [30] Analysis on the Heat-Power Conversion and Coupling Characteristics of Combined Heat and Power Units
    Wang, Wei
    Sun, Yang
    Jing, Si-Tong
    Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2019, 40 (09): : 1976 - 1980