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Radiation methods in decision support system for food safety

terrorism and other food safety concerns. Washington. Federal Register (Vol. 68, Issue 197). 8. Torok, T. J., Tauxe, R. V., & Wise, R. P. (1987). A large community outbreak of Salmonella caused by intentional contamination of restaurant salad bars. J. Am. Med. Inf. Assoc., 278, 389-395. 9. Chmielewski, A. G., & Haji-Saeid, M. (2004) Radiation technologies: past, present and future. Radiat. Phys. Chem., 71, 17-21. DOI: 10.1016/j.radphyschem. 2004.05.040. 10. Henry, T. G. (2005). Inactivation of bio-terrorism agents in

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Ecological analysis of heavy metal and radioactivity potential of Holocene sediments in Iznik Lake

. Available from . 5. Degerlier, M. (2007). Determination of environmental natural radioactivity of Adana and surrounding area and finding annual effective dose equivalents of natural radiations . Unpublished Ph.D. Thesis, Cukurova University, Institute of Science and Technology, Department of Physics. 6. Kapdan, E., Taskin, H., Kam, E., Osmanlioglu, A. E., Karahan, G., & Bozkurt, A. (2011). A study of environmental radioactivity measurements for Cankiri, Turkey. Radiat. Prot. Dosim. , 150 (3), 398

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Beta-backscattering Thickness-meter Design and Evaluation with Fuzzy TOPSIS Method

References 1. Berry, R. W., Hall, P. M., & Harris, M. T. (1968). Thin film technology . New York: VanNostrand Reinhold. 2. Hurman, R. W. (1975). U.S. Patent No. 3,988,582A. Nucleonic Data Systems, Inc. 3. International Atomic Energy Agency. (2005). Technical data on nucleonic gauges . Vienna: IAEA. (IAEA–TECDOC-1459). 4. BAL SEAL Engineering (2003). Metal plating processes and methods of measuring surface hardness and thickness coatings . Amsterdam: Bal Seal Engineering. (TR-105). 5. Pocock, B. W. (1956). Application of beta-ray backscat

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Modeling minor actinide multiple recycling in a lead-cooled fast reactor to demonstrate a fuel cycle without long-lived nuclear waste

References 1. GIF. (2002). A Technology Roadmap for Generation IV Nuclear Energy Systems. U.S. DOE and the Generation IV International Forum. 2. GIF. (2006). The U.S. Generation IV Fast Reactors Strategy. U.S. DOE. (DOE/NE-0130). 3. Cinotti, L., Smith, C. F., Siennicki, J. J., & et al. (2007). The potential of the LFR and the ELSY project. Nice, France: ICAPP’07. 4. Döderlein, C., Cetnar, J., Grasso, G., & et al. (2013). Definition of the ELFR core and neutronic characterization. (Technical

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Operation modes of the FALCON ion source as a part of the AMS cluster tool

: Academic Press. 4. Haque, M. S., Naseem, H. A., & Brown, W. D. (1997). Post-deposition processing of low temperature PECVD silicon dioxide films for enhanced stress stability. Thin Solid Films , 308/309 , 68–73. DOI: 10.1016/S0040-6090(97)00542-7. 5. Bizyukov, A. A., Bizyukov, I. A., Girka, O. I., Sereda, K. N., Sleptsov, V. V., Gutkin, M., & Mishin, S. (2011). Ion beam system for nanotrimming of functional microelectronics layers. Problems of Atomic Science and Technology , Seria: Plasma Phys. , 1 (17), 110–112. 6. Mishin, S., Gutkin, M., Bizyukov

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Liquid micro pulsed plasma thruster

References 1. Barral, S., Kurzyna, J., Szelecka, A., Rachubiński, H., Remírez, E., Martín, R., Ortiz, P., Alonso, J., Bottinelli, S., Mabillard, Y., Zaldívar, A., Rangsten, P., & Koppel, C. (2014). First experimental characterization of a pulsed plasma thruster with non-volatile liquid propellant. In Proceedings of Space Propulsion Conference, 19–22 May 2014. Cologne, Germany. 2. Rezaeiha, A., & Schönherr, T. (2013). Overview of alternative propellants for use in PPT. In 29th International Symposium on Space Technology and Science ISTS, 2–9 June 2013

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A Novel Control-rod Drive Mechanism via Electromagnetic Levitation in MNSR

. , 85 , 655-661. 7. International Atomic Energy Agency. (1986). Technology and use of low power research reactors . Vienna: IAEA. (IAEA-TECDOC-384). 8. Tabadar, Z., Hadad, K., Nematollahi, M. R., Jabbari, M., Khaleghi, M., & Hashemi-Tilehnoee, M. (2012). Simulation of a control rod ejection accident in a VVER-1000/V446 using RELAP5/Mod3.2. Ann. Nucl. Energy , 45 , 106-114. 9. Ku, C. L., Li, T. H. S., & Guo, N. R. (2005). Design of a novel fuzzy sliding-mode control for magnetic ball levitation system. J. Intell. Robot. Syst. , 42 (3), 295-316. 10

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Monte Carlo study of medium-energy electron penetration in aluminium and silver

elastic-scattering cross-section database – Version 3.2. National Institute of Standards and Technology Standard Reference Data Program . Gaithersburg, MD: National Institute of Standards and Technology. 18. Liljequist, D. (1983). A simple calculation of inelastic mean free path and stopping power for 50 eV-50 keV electrons in solids. J. Phys. D-Appl. Phys., 16 , 1567–1582. 19. Gryzinski, M. (1965). Two-particle collisions. I. General relations for collisions in the laboratory system, two-particle collisions. II. Coulomb collisions in the laboratory system

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A calculation model for liquid-liquid extraction of protactinium by 2,6-dimethyl-4-heptanol

References 1. King, J.C. (1987). The impact of separation science and technology on some key technological challenges facing society. In R. Price (Ed.), Separation and purification: Critical needs and opportunities. Washington, D. C., USA: National Academy Press. 2. Nuclear Energy Agency with Working Party on Nuclear Criticality Safety and Expert Group on Assay Data of Spent Nuclar Fuel. (2011). Spent nuclear fuel assay data for isotopic validation. Organisation for Economic Co-operation and Development. NEA. 3

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Investigation of 99Mo potential production via UO2SO4 liquid target irradiation in a 5 MW nuclear research reactor

Monte Carlo serpent analysis of the HOR research reactor and its medical isotope production capabilities using uranium salts. Thesis, Delft University of Technology, The Netherlands. 9. Micklich, B. J. (2015). Remanent activation in the mini-SHINE experiments. In 3rd International Workshop on Accelerator Radiation Induced Activation (ARIA’15), 15–17 April 2015, Knoxville, Tennessee, USA (36 pp.). Available from . 10. May, I

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