Metrological traceability method for atomic absolute gravimeters

被引:12
|
作者
Zhu, Dong [1 ]
Zhou, Yin [1 ]
Wu, Bin [1 ]
Weng, Kanxing [1 ]
Wang, Kainan [1 ]
Cheng, Bing [1 ]
Lin, Qiang [1 ]
机构
[1] Zhejiang Univ Technol, Coll Sci, Zhejiang Prov Key Lab Quantum Precis Measurement, Hangzhou 310023, Peoples R China
基金
中国国家自然科学基金;
关键词
FIELD;
D O I
10.1364/AO.430370
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Cold atomic gravimeters are attracting more and more attention and activity in the area of gravity measurement and comparison, and the corresponding methods for measurement and traceability need to be explored. Based on two self-developed cold atomic gravimeters, research on the comparison and traceability methods of absolute gravity measurement was carried out. The entire gravity measurement traceability process is divided into two stages: the preliminary traceability in the laboratory and the formal traceability in the absolute gravity reference station. Through comparison of two atomic gravimeters (ZAG-E and ZAG-B) in the laboratory, the degree of equivalence D-D and the normalized deviation E-n of ZAG-E are obtained, which are -2.7 +/- 7.6 mu Gal (k = 2) and -0.3599, respectively. Relative to the absolute gravity reference at the National Institute of Metrology (NIM) in China, D-D and E-n of ZAG-E are 0.5 +/- 12.0 mu Gal (k = 2) and 0.0417, respectively. |E-n| <= 1 in the two traceability stages, so the results of two traceability stages are acceptable, which indicates the consistency of the comparisons is good. Finally, the absolute gravity measurement value of ZAG-E is traced to the SI units, ensuring its accuracy. A gravity traceability method for atomic gravimeters is given and is very beneficial for the applications of atomic gravimeters in metrology and other fields. (C) 2021 Optical Society of America
引用
收藏
页码:7910 / 7920
页数:11
相关论文
共 50 条
  • [21] The design of modern absolute gravimeters based on atomic interferometers with cold atoms and prospects of their development in Ukraine
    Negriyko, A. M.
    Neyezhmakov, P., I
    Vinnichenko, O., I
    Yatsenko, L. P.
    UKRAINIAN METROLOGICAL JOURNAL, 2018, (03): : 35 - 41
  • [22] Metrological and legal traceability of time signals
    Matsakis, Demetrios
    Levine, Judah
    Lombardi, Michael A.
    PROCEEDINGS OF THE 49TH ANNUAL PRECISE TIME AND TIME INTERVAL SYSTEMS AND APPLICATIONS MEETING, 2018, : 59 - 71
  • [23] Metrological traceability of holmium oxide solution
    Goncalves, D. E. F.
    Gomes, J. F. S.
    Alvarenga, A. P. D.
    Borges, P. P.
    Araujo, T. O.
    9TH BRAZILIAN CONGRESS ON METROLOGY (METROLOGIA 2017), 2018, 975
  • [24] Metrological traceability is not always a straight line
    Priel, Marc
    Amarouche, Soraya
    Fisicaro, Paola
    ACCREDITATION AND QUALITY ASSURANCE, 2009, 14 (11) : 593 - 599
  • [25] The evolving role of commutability in metrological traceability
    Miller, W. Greg
    Greenberg, Neil
    Budd, Jeffry
    Delatour, Vincent
    CLINICA CHIMICA ACTA, 2021, 514 : 84 - 89
  • [27] Metrological traceability is not always a straight line
    Marc Priel
    Soraya Amarouche
    Paola Fisicaro
    Accreditation and Quality Assurance, 2009, 14 : 593 - 599
  • [28] Standard samples and metrological traceability in chemistry
    I. E. Dobrovinskii
    Inorganic Materials, 2009, 45 : 1648 - 1651
  • [29] A metrological traceability system for microflowrate measurement
    Yang, C. -T.
    Lin, W. -T.
    Yang, F. -R.
    Feng, C. -C.
    MICRO-ELECTRO-MECHANICAL SYSTEMS - 2005, 2005, 7 : 53 - 57
  • [30] Standard samples and metrological traceability in chemistry
    Dobrovinskii, I. E.
    INORGANIC MATERIALS, 2009, 45 (14) : 1648 - 1651