Determination of the thermal noise limit in test of weak equivalence principle with a rotating torsion pendulum

被引:0
|
作者
占文泽 [1 ]
罗杰 [1 ]
邵成刚 [2 ]
郑第 [3 ]
殷蔚明 [1 ]
王典洪 [1 ]
机构
[1] School of Mechanical Engineering and Electronic Information,China University of Geosciences
[2] MOE Key Laboratory of Fundamental Physical Quantities Measurement School of Physics,Huazhong University of Science and Technology
[3] Wuhan Juzheng Environmental Science & Technology Co. Ltd
基金
中国国家自然科学基金;
关键词
weak equivalence principle; torsion pendulum; thermal noise limit; internal damping;
D O I
暂无
中图分类号
O314 [引力理论];
学科分类号
摘要
Thermal noise is one of the most fundamental limits to the sensitivity in weak equivalence principle test with a rotating torsion pendulum. Velocity damping and internal damping are two of many contributions at the thermal noise, and which one mainly limits the torsion pendulum in low frequency is difficult to be verified by experiment. Based on the conventional method of fast Fourier transform, we propose a developed method to determine the thermal noise limit and then obtain the precise power spectrum density of the pendulum motion signal. The experiment result verifies that the thermal noise is mainly contributed by the internal damping in the fiber in the low frequency torsion pendulum experiment with a high vacuum. Quantitative data analysis shows that the basic noise level in the experiment is about one to two times of the theoretical value of internal damping thermal noise.
引用
收藏
页码:60 / 65
页数:6
相关论文
共 50 条
  • [21] ON THE EXPERIMENTAL TEST OF THE WEAK EQUIVALENCE PRINCIPLE FOR A NEUTRON
    POKOTILOVSKII, YN
    PHYSICS OF ATOMIC NUCLEI, 1994, 57 (03) : 390 - 394
  • [22] BEAM BALANCE TEST OF WEAK EQUIVALENCE PRINCIPLE
    SPEAKE, CC
    QUINN, TJ
    NATURE, 1986, 321 (6070) : 567 - 568
  • [23] A weak equivalence principle test on a suborbital rocket
    Reasenberg, Robert D.
    Phillips, James D.
    CLASSICAL AND QUANTUM GRAVITY, 2010, 27 (09)
  • [24] TEST OF THE WEAK EQUIVALENCE PRINCIPLE FOR NEUTRINOS AND PHOTONS
    KRAUSS, LM
    TREMAINE, S
    PHYSICAL REVIEW LETTERS, 1988, 60 (03) : 176 - 177
  • [25] WEAK EQUIVALENCE PRINCIPLE TEST ON A SOUNDING ROCKET
    Phillips, J. D.
    Patla, B. R.
    Popescu, E. M.
    Rocco, E.
    Thapa, R.
    Reasenberg, R. D.
    Lorenzini, E. C.
    PROCEEDINGS OF THE FIFTH MEETING ON CPT AND LORENTZ SYMMETRY, 2011, : 204 - 208
  • [26] A proposal for a test of Weak Equivalence Principle with improved accuracy using a cryogenic differential accelerometer installed on a pendulum
    Iafolla, V. A.
    Fiorenza, E.
    Lefevre, C.
    Lucchesi, D. M.
    Lucente, M.
    Magnafico, C.
    Nozzoli, S.
    Peron, R.
    Santoli, F.
    Lorenzini, E. C.
    Milyukov, V.
    Shapiro, I. I.
    Glashow, S.
    ADVANCES IN SPACE RESEARCH, 2016, 57 (02) : 715 - 723
  • [27] A proposal for a test of Weak Equivalence Principle with improved accuracy using a cryogenic differential accelerometer installed on a pendulum
    Iafolla, Valerio
    Fiorenza, Emiliano
    Lefevre, Carlo
    Lucchesi, David M.
    Lucente, Marco
    Magnafico, Carmelo
    Nozzoli, Sergio
    Peron, Roberto
    Santoli, Francesco
    Lorenzini, Enrico C.
    Milyukov, Vadim
    Shapiro, Irwin I.
    Glashow, Sheldon
    2015 2ND IEEE INTERNATIONAL WORKSHOP ON METROLOGY FOR AEROSPACE (METROAEROSPACE), 2015, : 61 - 65
  • [28] Weak equivalence principle and nonrelativistic limit of general dispersion relations
    Hohmann, Manuel
    Pfeifer, Christian
    Wagner, Fabian
    PHYSICAL REVIEW D, 2024, 110 (10)
  • [29] Effect of gravity gradient in weak equivalence principle test
    徐家豪
    邵成刚
    罗杰
    刘祺
    邾琳
    赵慧慧
    Chinese Physics B, 2017, (08) : 65 - 69
  • [30] Effect of gravity gradient in weak equivalence principle test
    Xu, Jia-Hao
    Shao, Cheng-Gang
    Luo, Jie
    Liu, Qi
    Zhu, Lin
    Zhao, Hui-Hui
    CHINESE PHYSICS B, 2017, 26 (08)