• Optical Instruments
  • Vol. 41, Issue 5, 76 (2019)
Tian TANG, Jie XU, Xin WANG, and Baozhong MU
Author Affiliations
  • School of Physics Science and Engineering, Tongji University, Shanghai 200092, China
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    DOI: 10.3969/j.issn.1005-5630.2019.05.012 Cite this Article
    Tian TANG, Jie XU, Xin WANG, Baozhong MU. Study of X-ray backscatter system based on flying-spot scanning[J]. Optical Instruments, 2019, 41(5): 76 Copy Citation Text show less

    Abstract

    A miniaturized, low-radiation X-ray flying-spot scanning backscattering system was developed around the precise and rapid investigation of trafficking contraband by vehicles. A chopper mechanism and a backscatter detector for miniaturized flying-spot scanning backscattering systems were designed. The X-ray backscatter imaging experiment was carried out by using the developed miniaturized flying-spot scanning system. The effects of X-ray energy and power on the imaging contrast and signal-to-noise ratio of the system were studied. The developed system has an imaging resolution of approximately 2 mm and is capable of clearly detecting drug mimics hidden in ceramic articles. The research of miniaturized X-ray backscattering system can provide reference for vehicle security problems and reduce radiation hazards in testing.
    ${h_1} \leqslant \phi $(1)

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    ${\rm{\alpha }} \leqslant {\alpha _{\rm{max}}}$(2)

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    ${\rm{\alpha }} = 2\arctan \frac{{{h_2}}}{{2d}}$(3)

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    $\varOmega = \frac{{a b}}{{{d^2}}}$(4)

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    $\Delta x = \frac{{a u}}{d}$(5)

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    $\Delta y = \frac{{b u}}{d}$(6)

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    $r \leqslant \dfrac{1}{2}{h_2} \frac{1}{{\tan \left( {\dfrac{1}{2} \dfrac{{360{\text{°}}}}{n}} \right)}}$(8)

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    ${S_1} = \pi \left( {{R^2} - {r^2}} \right)$(9)

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    ${m_1} = {\rho _1} {S_1} {t_1}$(10)

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    ${J_1} = \frac{{{m_1}}}{2}\left( {{R^2} + {r^2}} \right)$(11)

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    ${S_2} = \pi {R^2}$(12)

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    ${m_2} = {\rho _2} {S_2} {t_2}$(13)

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    ${J_2} = \frac{1}{2}{m_2}{R^2}$(14)

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    $J = {J_1} + {J_2}$(15)

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    $m = {m_1} + {m_2}$(16)

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