Design status of the ESS cryogenic moderator system

被引:7
|
作者
Tatsumoto, H. [1 ]
Lyngh, D. [1 ]
Bessler, Y. [2 ]
Klaus, M. [3 ]
Hanusch, F. [2 ]
Arnold, P. [1 ]
Quack, H. [3 ]
机构
[1] European Spallat Source ESS ERIC, Odarslovsvagen 113, Lund, Sweden
[2] Forschungszentrum Julich, ZEA 1, D-52425 Julich, Germany
[3] Tech Univ Dresden, Inst Power Engn, D-01069 Dresden, Germany
来源
ADVANCES IN CRYOGENIC ENGINEERING | 2020年 / 755卷
关键词
D O I
10.1088/1757-899X/755/1/012101
中图分类号
O59 [应用物理学];
学科分类号
摘要
The Cryogenic Moderator System (CMS) has been designed to cool high-energy neutrons down to cold neutrons in two cryogenic hydrogen moderators (four ones in the future) by forced flow of subcooled liquid hydrogen at 17 K and 1.0 MPa. At 5 MW proton beam power, an estimated nuclear heating of 6.7 kW (17.3 kW in the future) is generated in the moderators. The subcooled liquid hydrogen is circulated by two pumps arranged in series with a mass flow rate of 1 kg/s to maintain the average temperature rise over each moderator below 3 K and is cooled through a plate fin heat exchanger by a helium refrigerator with a cooling capacity of 30.3 kW at 15 K. The ESS moderator vessels are optimized for maximum cold neutron brightness and pure para-hydrogen, requiring a para concentration of > 99.5 %. An ortho-para-hydrogen convertor is integrated into the loop along with an online para-hydrogen measurement system. The pressure fluctuation caused by unpredictable abrupt changes of nuclear heating will be mitigated using a pressure control buffer with a volume of 65 l.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Status of the ESS Cryogenic System
    Weisend, J. G., II
    Darve, C.
    Gallimore, S.
    Hees, W.
    Jurns, J.
    Kottig, T.
    Ladd, P.
    Molloy, S.
    Parker, T.
    Wang, X. L.
    ADVANCES IN CRYOGENIC ENGINEERING, 2014, 1573 : 633 - 638
  • [2] Cryogenic hydrogen Moderator infrastructure at ESS
    Bessler, Yannick
    Natour, Ghaleb
    JOURNAL OF NEUTRON RESEARCH, 2022, 24 (02) : 239 - 246
  • [3] Development status of the in-situ measurement system for ortho-to-parahydrogen fractions for the ESS cryogenic moderator system
    Tatsumoto, H.
    Sakamoto, Y.
    Hasegawa, T.
    Kobayashi, H.
    Shiro, Y.
    Horikawa, Y.
    Horvath, A.
    Sina, H.
    Hartl, M.
    Arnold, P.
    Kickulies, M.
    Bessler, Y.
    Teshigawara
    ADVANCES IN CRYOGENIC ENGINEERING: PROCEEDINGS OF THE CRYOGENIC ENGINEERING CONFERENCE, CEC 2023, 2024, 1301
  • [4] ESS Cryogenic System Process Design
    Arnold, P.
    Hees, W.
    Jurns, J.
    Su, X. T.
    Wang, X. L.
    Weisend, J. G., II
    ADVANCES IN CRYOGENIC ENGINEERING, 2015, 101
  • [5] Simulation of the cool-down process for the ESS cryogenic moderator system
    Tatsumoto, H.
    Horvath, A.
    Arnold, P.
    Boros, M.
    ADVANCES IN CRYOGENIC ENGINEERING: PROCEEDINGS OF THE CRYOGENIC ENGINEERING CONFERENCE, CEC 2023, 2024, 1301
  • [6] ESS Cryogenic Controls Design
    P. Arnold
    M. Boros
    P. Nilsson
    EPJ Techniques and Instrumentation, 8
  • [7] Development of an in-situ ortho-to-parahydrogen fraction measurement system for the ESS cryogenic moderator system
    Tatsumoto, Hideki
    Hasegawa, Takumi
    Sakamoto, Yuki
    Shiro, Yuki
    Horikawa, Yuka
    Kobayashi, Hiroaki
    Teshigawara, Makoto
    Sina, Hossein
    CRYOGENICS, 2024, 139
  • [8] Commissioning of the ESS large-scale 20 K helium refrigeration system for the cryogenic moderator system
    Tatsumoto, H.
    Arnold, P.
    Boros, M.
    Horvath, A.
    Segerup, M.
    Tereszkowski, P.
    Arriagada, J.
    Huber, R.
    ADVANCES IN CRYOGENIC ENGINEERING: PROCEEDINGS OF THE CRYOGENIC ENGINEERING CONFERENCE, CEC 2023, 2024, 1301
  • [9] ESS Cryogenic Controls Design
    Arnold, P.
    Boros, M.
    Nilsson, P.
    EPJ TECHNIQUES AND INSTRUMENTATION, 2021, 8 (01)
  • [10] Lifecycle of the ESS Moderator and Reflector System
    Kickulies, M.
    Bessler, Y.
    Lee, Y.
    Lyngh, D.
    22ND MEETING OF THE INTERNATIONAL COLLABORATION ON ADVANCED NEUTRON SOURCES (ICANS XXII), 2018, 1021