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Detection of Environment Ionization Radiation with GM Tube

Kripal Singh Gurjar, Rakesh Narvey

Abstract


For environmental ionizing radiation hazard monitoring applications, very sensitive detector electronics has been developed. Experiments were performed using International Standard beta and gamma sensitive Mica window type GM Tube LND-712 from LND Inc. USA and Russian fast GM Tube with Aluminium energy compensated shield. Both tubes were operated with regulated DC high voltage power supply in the range of 300V to 500V range using Matsusada Japan make 1kV 5W programmable regulated high voltage power supply. LND-712 GM Tube has operating range from 450V to 650V. LND-712 was operated at 500V which is the mid-range of the plateau response for this tube. It has a dead time of about 100us. Russian Tubes is low diameter and has lower operating voltage of 320V to 400V and also has less dead time of 50us. Peak pulse charge current for each event detected was 15uA for which pulse voltage of about 15V was formed across 1M load resistor. Pulse shape was found to be very stable and natural cosmic ray background event rate detected by the GM Tube in Gwalior was in the range of 50 to 120 counts per minute in about 5uR/hour cosmic ray background. GM Tubes were also tested with 660keV Gamma Cs-137 low activity Gamma radiation source. Radiation interaction with matter and energy transfer by the ionizing radiation within GM Tube, charge multiplication and charge collection leading to pulse shape formation will be discussed. Results obtained with the tested GM Tube, the designed circuit scheme and its performance on the test bench system will be presented.

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References


Knoll G. F. “Radiation Detection and Measurement”, 2000 ,3rd ed., John Wiley

Evans R. D. “The Atomic Nucleus,” 1955, McGraw-Hill

"Fundamental Quantities and Units for Ionizing Radiation (ICRU Report 85)". Journal of the ICRU 11 2011

.[4] Van Gemert A.G.M., Den Hartog H., Muller F.A. “Measurements on self-quenching Geiger-Mueller counters” Elsevier B.V.,1942, 9, 6, Pages 556–64.

Gas Filled Detectors, lecture note by HaoPeng at MacMaster University, Department of Medical Physics and Radiation Sciences, MED PHYS 4R06/6R03 - Radiation & Radioisotope Methodology

J Invest Dermatol. 2012 Feb 9.doi: 10.1038/jid.2011.476. Irradiation of Skin with Visible Light Induces Reactive Oxygen Species and Matrix-Degrading Enzymes. Liebel F, et al. PMID 22318388

Contribution of High Charge and Energy (HZE) Ions During Solar-Particle Event of September 29, 1989 Kim, Myung-HeeY.;

Particle Data Group Summary Data Table on Baryons. lbl.gov (2007).Retrieved on 2012-08-16.

"Health Risks from Exposure to Low Levels of Ionizing Radiation: BEIR VII Phase 2". Publication date 2006.National Academy of Science. Retrieved 2013-11-11.

Rutherford E and Geiger H "An electrical method of counting the number of α particles from radioactive substances," Proceedings of the Royal Society (London), 1908, A, 81, 546, pages 141–61.

Stallcup, James G. OSHA: Stallcup's High-voltage Telecommunications Regulations Simplified. US: Jones & Bartlett Learning, 2006., p. 133. ISBN 076374347X.

Abraham Pressman, Switching Power Supply Design. McGraw Hill: New York,

rd Ed. 2009.

Ravindra Ambatipudi, Low Cost Boost Converters Using LM3578A. National

Semiconductor Application Note 1066. November 1999.

“The 8051 Microcontroller and Embedded Systems” by Muhammad Ali Mazidi, Janice Mazidi, Janice GillispieMazidi.

Morris H. Shamos “GEIGER-MULLER COUNTER” United States Patent Office, Patent number: 2522902, Issue date: 19 Sep 1950.

Nunn A “The extinction of discharges in Geiger-Muller counters” Proceedings of the Physical Society, 1939, 51, 1.




DOI: https://doi.org/10.37628/ijmdic.v2i2.354

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