High-accuracy calibration of the HXDS flow proportional counter for AXAF at the PTB laboratory at BESSY

被引:12
|
作者
Auerhammer, JM [1 ]
Brandt, G [1 ]
Scholze, F [1 ]
Thomagel, R [1 ]
Ulm, G [1 ]
Wargelin, BJ [1 ]
McDermott, WC [1 ]
Norton, TJ [1 ]
Evans, IN [1 ]
Kellogg, EM [1 ]
机构
[1] Phys Tech Bundesanstalt, D-10587 Berlin, Germany
来源
关键词
proportional counters; detectors; calibration; x-rays; synchrotron radiation; primary detector standard;
D O I
10.1117/12.331242
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The Smithsonian Astrophysical Observatory uses the HRMA X-ray Detection System (HXDS) to calibrate the High-Resolution Mirror Assembly (HRMA) of the Advanced X-ray Astrophysics Facility AXAF. Apart from two high-purity-germanium solid-state detectors (SSDs) with good energy resolution and very high efficiency at higher energies, the detection sq stem comprises seven now proportional counters (FPCs) and one microchannel-plate High-Speed Imager. For the lower energy range, the FPCs are more appropriate. They have been calibrated at the radiometry laboratory of the Physikalisch-Technische Bundesanstalt, using the electron storage ring BESSY. For the determination of the absolute quantum efficiency two methods have been applied. First, the detector response was measured in the lower energy range 0.1 keV to 1.7 keV at several discrete energies using monochromatized radiation. The absolute photon flux has been determined by Si n-on-p photodiodes, calibrated against a cryogenic electrical-substitution radiometer used as primary detector standard. The second method uses the undispersed synchrotron radiation emitted by a bending magnet of the primary source standard BESSY, which can be calculated very accurately. Combining both measurements the determination of the detection efficiency over the entire desired spectral range (0.1 keV to 10 keV) was possible with a typical relative uncertainty around 1% to 2% in the central energy range (0.2 keV to 1.7 keV).
引用
收藏
页码:19 / 29
页数:11
相关论文
共 50 条
  • [31] High-accuracy radiometry in the EUV range at the PTB soft x-ray beamline
    Scholze, F
    Tümmler, J
    Ulm, G
    METROLOGIA, 2003, 40 (01) : S224 - S228
  • [32] LOG CONVERTERS SPEED HIGH-ACCURACY CALIBRATION OF OPERATIONAL DEVICES
    GHELFAN, P
    ELECTRONIC ENGINEERING, 1973, 45 (539): : 47 - 49
  • [33] High-accuracy automatic machine vision based calibration of micrometers
    Hemming, B.
    Fagerlund, A.
    Lassila, A.
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2007, 18 (05) : 1655 - 1660
  • [34] ROBUST PERFORMANCES CONTROL DESIGN FOR A HIGH-ACCURACY CALIBRATION DEVICE
    MILANESE, M
    FIORIO, G
    MALAN, S
    AUTOMATICA, 1993, 29 (01) : 147 - 156
  • [35] High-accuracy fully automatic calibration system for impulse balance
    Wang YunPeng
    Li XiaoGang
    Jiang ZongLin
    SCIENTIA SINICA-PHYSICA MECHANICA & ASTRONOMICA, 2020, 50 (06)
  • [36] A High-Accuracy Calibration Method for a Telecentric Structured Light System
    Chen, Chao
    Kong, Ya
    Wang, Huaiwen
    Zhang, Zonghua
    SENSORS, 2022, 22 (17)
  • [37] A method of high-accuracy radar calibration with ADS-B
    Institute of Electronic and Information Engineering Naval Aeronautical and Astronautical University, Yantai
    264001, China
    不详
    210039, China
    Hangkong Xuebao, 12 (3947-3956):
  • [38] A High-Accuracy Calibration Method for Temperature Dependent Photoluminescence Imaging
    Kristensen, Sissel Tind
    Nie, Shuai
    Wiig, Marie Syre
    Haug, Halvard
    Berthod, Charly
    Strandberg, Rune
    Hameiri, Ziv
    9TH INTERNATIONAL CONFERENCE ON CRYSTALLINE SILICON PHOTOVOLTAICS (SILICONPV 2019), 2019, 2147
  • [39] Calibration Method for Spatial Pose of Laser Beam with High-Accuracy
    Duan Xiaodeng
    Wu Bin
    Kang Jiehu
    ACTA OPTICA SINICA, 2019, 39 (08)
  • [40] Digital calibration methods for high-accuracy pipeline A/D converters
    Guo, JJ
    Law, WS
    Helms, W
    Allstot, D
    IMTC/O3: PROCEEDINGS OF THE 20TH IEEE INSTRUMENTATION AND MEASUREMENT TECHNOLOGY CONFERENCE, VOLS 1 AND 2, 2003, : 754 - 758