Frequency-temperature effect of hydrogen maser: Theoretical analysis and temperature control optimization

被引:3
|
作者
Liu, Shanmin [1 ,2 ,3 ]
Wu, Xiaoguang [1 ]
Hu, Haitao [4 ]
Chen, Xin [2 ,3 ]
Wang, Fan [3 ]
Wang, Wei [1 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, Nanjing 210016, Peoples R China
[2] Chinese Acad Sci, Key Lab Microsatellites, Shanghai 201203, Peoples R China
[3] Shanghai Engn Ctr Microsatellites, Shanghai 201203, Peoples R China
[4] Shanghai Jiao Tong Univ, Shanghai 200240, Peoples R China
来源
REVIEW OF SCIENTIFIC INSTRUMENTS | 2020年 / 91卷 / 07期
基金
中国国家自然科学基金;
关键词
WALL SHIFT;
D O I
10.1063/5.0008072
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The internal temperature environment of a hydrogen maser (H maser) is one of the main factors, which limit the frequency stability of hydrogen atomic clocks (HACs). In the present study, the thermodynamic interactions between the atomic transition frequency and the cavity-bulb assembly affecting the H maser were investigated, and the cavity-pulling effect and the bulb wall frequency shift effect induced by the change in temperature were quantitatively analyzed and calculated. Moreover, the effect of the temperature gradient on the temperature sensitivity of the frequency stability (i.e., the frequency-temperature effect) was qualitatively analyzed. The precision temperature control system was optimized based on the HAC temperature stability requirement through the simulation of the temperature field for different heating pattern methods. The optimization effect was verified experimentally, and the results show that after optimizing the design, the temperature stability is improved from +/- 0.005 K to +/- 0.001 K, and the frequency deviation is decreased from 3 x 10(-15) to 1 x 10(-15). The research results may provide theoretical and practical references for improving the frequency stability and accuracy of HACs. Published under license by AIP Publishing.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Hydrogen maser magnetron cavity with low frequency-temperature coefficient
    Van der Beken, E.
    Leonard, D.
    Bastin, T.
    METROLOGIA, 2022, 59 (03)
  • [2] A study on the frequency-temperature coefficient of a microwave cavity in a passive hydrogen maser
    Chen, Haibo
    Li, Jing
    Liu, Yaxuan
    Gao, Lianshan
    METROLOGIA, 2012, 49 (06) : 816 - 820
  • [3] Research on frequency-temperature compensated sapphire-SrTiO3 loaded cavity for hydrogen maser
    Wang Nuanrang~(1
    2.Beijing Inst
    Journal of Systems Engineering and Electronics, 2009, 20 (04) : 711 - 717
  • [4] Research on frequency-temperature compensated sapphire-SrTiO3 loaded cavity for hydrogen maser
    Wang Nuanrang
    Zhou Tiezhong
    Gao Lianshan
    Yang Chuntao
    Feng Keming
    JOURNAL OF SYSTEMS ENGINEERING AND ELECTRONICS, 2009, 20 (04) : 711 - 717
  • [5] ANALYSIS OF FREQUENCY-TEMPERATURE CHARACTERISTICS OF QUARTZ RESONATORS
    ALTSHULL.GB
    PARFENOV, BG
    TELECOMMUNICATIONS AND RADIO ENGINEER-USSR, 1967, (08): : 118 - &
  • [6] Frequency-temperature compensated sapphire loaded cavity for compact hydrogen masers
    Wang, Nuan Rang
    Yang, Ren Fu
    Zhou, Tie Zhong
    Gao, Lian Shan
    METROLOGIA, 2008, 45 (05) : 534 - 538
  • [7] Frequency-temperature response of a new multiferroic
    Kumar, Nawnit
    Patri, Sunanda K.
    Choudhary, Ram N. P.
    PROCESSING AND APPLICATION OF CERAMICS, 2014, 8 (03) : 121 - 125
  • [8] FREQUENCY-TEMPERATURE RELATIONSHIPS FOR RELAXATIONS IN POLYMERS
    STARKWEATHER, HW
    THERMOCHIMICA ACTA, 1993, 226 : 1 - 5
  • [9] Frequency-temperature characteristics of the Langasite resonators
    Mateescu, I
    Zelenka, J
    Nosek, J
    Johnson, G
    PROCEEDINGS OF THE 2001 IEEE INTERNATIONAL FREQUENCY CONTROL SYMPOSIUM & PDA EXHIBITION, 2001, : 263 - 267
  • [10] A generalized frequency-temperature viscoelastic model
    Moreira, R. A. S.
    Corte-Real, J. D.
    Dias Rodrigues, J.
    SHOCK AND VIBRATION, 2010, 17 (4-5) : 407 - 418