Конференція MC&FPGA

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Digital System for Customs Inspection of Baggage in High Security Areas

DOI: 10.35598/mcfpga.2021.015

Digital System for Customs Inspection of Baggage in High Security Areas
Victoria Bulaga

III International Scientific and Practical Conference Theoretical and Applied Aspects of Device Development on Microcontrollers and FPGAs (MC&FPGA), Kharkiv, Ukraine, 2021, pp. 43-46.

Abstract
This article discusses the development of a three-energy digital system for customs inspection of luggage and hand luggage in airports and high-security areas, which will provide not only easy monitoring of luggage and hand luggage, but also security screening. The peculiarity of such a system is the use of scintillation crystals in the control systems of customs baggage inspection. And also the scheme of three-energy digital radiographic system has been developed, which gives the possibility of fast and safe luggage monitoring.

Keywords: digital customs control system, scintillation crystals, detector, security, controlled area.

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References

  1. O. Melnyk, M. Adamiv and A. Todoshchuk, “Conceptual Principles of Reforming the Сustoms System of Ukraine in Terms of European Integration”, Ekonomika ta derzhava, no. 11, p. 39, 2018. doi: 10.32702/2306-6806.2018.11.39.
  2. I. Nestoryshen and V. Turzhanskyi, “Profiling Customs Risks in the Customs Security System of Ukraine”, The Collection of Scientific Works of Kirovohrad National Technical University. Economic Sciences, no. 33, pp. 9-16, 2018. doi: 10.32515/2413-340x.2018.33.9-16.
  3. L. Kyyda, “The Adaptation of Customs Legislation to the International Standards of the Simplified Customs Control of Citizens When Crossing the Customs Border of Ukraine”, Public Policy and Ecnomic Development, no. 2, pp. 93-98, 2014. doi: 10.14746/pped.2014.2.14.
  4. J. BIRKS, “Scintillation Counters”, Soil Science, vol. 77, no. 2, p. 171, 1954. doi: 10.1097/00010694-195402000-00024.
  5. H. Heney, “A.N.S.W. Experiment in Technique Demonstration”, Australian Journal of Social Work, vol. 5, no. 2, pp. 4-6, 1951. doi: 10.1080/03124075108522453.
  6. L. Bignell et al., “Measurement of radiation damage of water-based liquid scintillator and liquid scintillator”, Journal of Instrumentation, vol. 10, no. 10, pp. P10027-P10027, 2015. doi: 10.1088/1748-0221/10/10/p10027.
  7. F. Pönisch et al., “Liquid scintillator for 2D dosimetry for high-energy photon beams”, Medical Physics, vol. 36, no. 5, pp. 1478-1485, 2009. doi: 10.1118/1.3106390.
  8. L. Archambault et al., “Verification of proton range, position, and intensity in IMPT with a 3D liquid scintillator detector system”, Medical Physics, vol. 39, no. 3, pp. 1239-1246, 2012. doi: 10.1118/1.3681948.
  9. L. Oberauer, “Liquid Scintillator Detectors”, Nuclear Physics B – Proceedings Supplements, vol. 235-236, pp. 198-204, 2013. doi: 10.1016/j.nuclphysbps.2013.04.011.
  10. L. Lança and A. Silva, “Digital radiography detectors – A technical overview: Part 1”, Radiography, vol. 15, no. 1, pp. 58-62, 2009. doi: 10.1016/j.radi.2008.02.004.
  11. L. Lança and A. Silva, “Digital radiography detectors – A technical overview: Part 2”, Radiography, vol. 15, no. 2, pp. 134-138, 2009. doi: 10.1016/j.radi.2008.02.005.
  12. S. Schweizer and J. Johnson, “Fluorozirconate-based glass ceramic X-ray detectors for digital radiography”, Radiation Measurements, vol. 42, no. 4-5, pp. 632-637, 2007. doi: 10.1016/j.radmeas.2007.01.056.
  13. A. Chavaillaz, A. Schwaninger, S. Michel and J. Sauer, “Automation in visual inspection tasks: X-ray luggage screening supported by a system of direct, indirect or adaptable cueing with low and high system reliability”, Ergonomics, vol. 61, no. 10, pp. 1395-1408, 2018. doi: 10.1080/00140139.2018.1481231.
  14. M. Vendel, S. Dangal, J. Coppens, S. Hiemstra-van Mastrigt and P. Vink, “Effects of a hand luggage guiding system on airplane boarding time and passenger experience”, International Journal of Aviation, Aeronautics, and Aerospace, 2019. doi: 10.15394/ijaaa.2019.1333.
  15. F. Bohapov, “Simulation of X-Ray Television System Output Signal Based on CMOS-Matrixes”, Electronic and Acoustic Engineering, vol. 3, no. 4, pp. 53-58, 2020. doi: 10.20535/2617-0965.2020.3.4.200608.