Academic literature on the topic 'Radiation hazard'

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Journal articles on the topic "Radiation hazard"

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Misra, Anurag. "Possible Health Hazard of 5G BDMA/MIMO Radiation." International Journal of Science and Research (IJSR) 13, no. 2 (2024): 1236–37. http://dx.doi.org/10.21275/sr24214114026.

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Tripathi, Ramesh. "Radiation and Health Hazard." Himalayan Physics 1 (July 28, 2011): 85–88. http://dx.doi.org/10.3126/hj.v1i0.5188.

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Vera, Raul. "Cesium: Another radiation hazard?" International Journal of Radiation Oncology*Biology*Physics 11, no. 5 (1985): 1060. http://dx.doi.org/10.1016/0360-3016(85)90135-x.

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Wan, Raymond CW, Wai W. Chau, Chi Y. Tso, et al. "Occupational hazard of fluoroscopy: An invisible threat to orthopaedic surgeons." Journal of Orthopaedics, Trauma and Rehabilitation 28 (January 2021): 221049172110355. http://dx.doi.org/10.1177/22104917211035547.

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The use of fluoroscopy is widespread within different medical specialties. Improper protection may cause significant radiation hazard to medical personnel. To evaluate the concepts on radiation safety and fluoroscopy use among orthopaedic surgeons and to reflect our current training on this issue, a survey was distributed to perform an audit in our department, an academic unit. Twenty-eight orthopaedic surgeons replied. Amongst our participants, 96.4% used a lead apron at all times. Only 33% used a thyroid shield, 67% never used radiation goggles and 96% never used radiation protection gloves.
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Menyajlo, A. N., S. Yu Chekin, K. A. Tumanov, A. M. Korelo, and V. K. Ivanov. "Determining the time to reach radiological equivalence of radioactive waste and natural uranium raw materials in the closed nuclear fuel cycle with fast reactors and with account of the main factors of uncertainty in the calculation of radiation risks." "Radiation and Risk" Bulletin of the National Radiation and Epidemiological Registry 32, no. 2 (2023): 5–21. http://dx.doi.org/10.21870/0131-3878-2023-32-2-5-21.

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One of the most important problems in the large-scale development of nuclear energy is the management and disposal of radioactive waste (RW). The potential biological hazard of RW for human health considerably exceeds the health hazard from uranium feedstock. Due to the natural processes of radioactive decay, the potential biological hazard of RW decreases over time. However, long-term storage and disposal of long-lived RW leads to an increase in the health and environmental hazard of nuclear energy. Recently, to reduce the hazard effects, the novel ap-proach based on the principle that hazard
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Baba Mohammadi, S., Y. Heydarizade, and M. R. Rezaie. "Measurement of the radiation hazards and distribution of natural radioactive elements in the Graduate University of Advanced Technology." Journal of Instrumentation 18, no. 05 (2023): T05002. http://dx.doi.org/10.1088/1748-0221/18/05/t05002.

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Abstract The radiation hazards in each region depend on its surface distribution and activity of 232Th, 137Cs, 40K, and 238U radioactive elements. Due to the presence of personnel, professors, and students in the Graduate University of Advanced Technology (KGUT) environment, it is important to investigate the dose received due to 232Th, 137Cs, 40K, and 238U elements in the soil of this area. For this purpose, first, 44 soil samples were collected from different areas of the university, and the specific activity of 232Th, 137Cs, 40K, and 238U elements was obtained with the CsI (Tl) scintillatio
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Seker, S. Selim, and Aissa Babaaddoun. "Discrete Bio-Hazard Model of EM Radiation for Crowded People." Journal of Electrical Electronics Engineering 3, no. 6 (2024): 01–08. http://dx.doi.org/10.33140/jeee.03.06.02.

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This study investigates the behaviour of electromagnetic (EM) waves in densely populated environments using a Multicomponent Discrete Propagation Model (MCDM). Our analysis focuses on four critical parameters: Specific Absorption Rate (SAR), Electrical Field, Skin Depth, and Effective Radiated Power (ERP) by working on crowd densities and frequencies relevant to mobile technologies. This study is the first to employ a Propagation Model for such an analysis, offering a novel approach. Through comprehensive simulations, we explore how variations in electrical field strengths impact SAR, skin dep
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Hambling, David. "New radiation hazard to flights." New Scientist 233, no. 3112 (2017): 12. http://dx.doi.org/10.1016/s0262-4079(17)30253-1.

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Vasilenko, I. Ya. "Radiation hazard of iodine radioisotopes." Soviet Atomic Energy 63, no. 4 (1987): 751–56. http://dx.doi.org/10.1007/bf01123563.

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Rahman, Md Hafizur. "Radiation Hazard, Safety, Control and Protection." Faridpur Medical College Journal 14, no. 2 (2020): 100–103. http://dx.doi.org/10.3329/fmcj.v14i2.48188.

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The field of Radiology and Nuclear medicine has advanced from era of X-rays to today's modern imaging techniques, most of which use the ionizing radiation. With the benefits of better diagnosis and treatment, it has caused manifold increase in radiation exposure to the patients and the radiology and nuclear medicine personnel. Many studies done till date have clearly documented the harmful effects of ionizing radiation from radiation exposure, especially cancer. This is more important in paediatric population as their tissues are more radiosensitive, and they have more years to live. Diagnosti
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Dissertations / Theses on the topic "Radiation hazard"

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Poon, Wai-lun, and 潘偉麟. "Radiation hazard of multidetector computer tomography: a public health issue." Thesis, The University of Hong Kong (Pokfulam, Hong Kong), 2010. http://hub.hku.hk/bib/B45173692.

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Chalyy, D., and I. Zhidenko. "Fiber-optical temperature sensors for operation in radiation-hazard conditions." Thesis, XII Міжнародна науково-практична конференція молодих вчених, курсантів та студентів «Проблеми та перспективи розвитку системи безпеки життєдіяльності». – Л., 2017. – С.29, 2017. http://hdl.handle.net/123456789/3978.

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Koh, W. J. "Radiation hazard evaluation for a high power mobile electromagnetic radiation weapon using the numerical electromagnetic code." Thesis, Monterey, California: U.S. Naval Postgraduate School, 1987. http://hdl.handle.net/10945/22448.

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Tehrani, Mehran. "Next Generation Multifunctional Composites for Impact, Vibration and Electromagnetic Radiation Hazard Mitigation." Diss., Virginia Tech, 2012. http://hdl.handle.net/10919/49547.

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For many decades, fiber reinforced polymers (FRPs) have been extensively utilized in load-bearing structures. Their formability and superior in-plane mechanical properties have made them a viable replacement for conventional structural materials.  A major drawback to FRPs is their weak interlaminar properties (e.g., interlaminar fracture toughness). The need for lightweight multifunctional structures has become vital for many applications and hence alleviating the out-of-plane mechanical (i.e., quasi-static, vibration, and impact) and electrical properties of FRPs while retaining minimal weigh
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Ebersbach, Harald. "Radiation Exposure Modelling Strategies for Wire Antenna Arrays." Thesis, Griffith University, 2008. http://hdl.handle.net/10072/366269.

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This thesis presents a computationally efficient software system to determine the minimum safety distances for human exposure to radio frequency radiation from wire antenna systems. Based on classical analytical methods and original code, a system was developed to calculate the occupational and general public safety zones from electromagnetic radiation emanating from wire antenna systems, according to maximum human exposure limits set by radio frequency communication standards. Isolated dipole and multi-element, Yagi-Uda style wire antenna arrays were considered in free space, as well as anten
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Štěpánek, Jaroslav. "Fotobiologická bezpečnost světelných zdrojů a osvětlovacích soustav." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2014. http://www.nusl.cz/ntk/nusl-220697.

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The thesis deals with the problems of the photobiological lamp and lamps systems safety. It is divided into theoretical and practical parts. The theoretical part touches the basic knowledge concerning the eye and vision, eye and skin diseases caused by excessive exposure to non-ionizing radiation. And besides that there are described the sources of light causing the possible exposure and further more it includes the methodology of measurement and evaluation of photobiological safety. The practical part investigates a measurement of the spectrum of light sources. The measured data are evaluated
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吳楚儀 and Chor-yi Ng. "Radiation hazards of building materials." Thesis, The University of Hong Kong (Pokfulam, Hong Kong), 1991. http://hub.hku.hk/bib/B3121051X.

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Ng, Chor-yi. "Radiation hazards of building materials /." [Hong Kong] : University of Hong Kong, 1991. http://sunzi.lib.hku.hk/hkuto/record.jsp?B13263286.

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Henzelová, Iveta. "Analýza a hodnocení rizik při výstavbě stínících konstrukcí lékařských ozařovačů." Master's thesis, Vysoké učení technické v Brně. Ústav soudního inženýrství, 2015. http://www.nusl.cz/ntk/nusl-233132.

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The thesis focuses on the analysis and evaluation of the potential risks in the design and implementation of shielding structures against the effects of ionizing radiation. The rocedure of calculation and design optimization, according to the current wording of the Atomic Act and related regulations, is mentioned only marginally. According to DIN EN 31010: 2011 Risk Management - Risk Assessment Technique risk assessment were made by risk analysis. risk analysis. Risk management identified these methods - Analysis of the Causes and Consequences (Ishikawa diagram), Analysis Failure Mode and Effe
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Winters, D. T. "A numerical investigation of shipboard HF induced radiation hazards." Thesis, National Library of Canada = Bibliothèque nationale du Canada, 1997. http://www.collectionscanada.ca/obj/s4/f2/dsk2/ftp04/mq22785.pdf.

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Books on the topic "Radiation hazard"

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Miroshnichenko, Leonty I. Radiation Hazard in Space. Springer Netherlands, 2003. http://dx.doi.org/10.1007/978-94-017-0301-7.

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Miroshnichenko, Leonty I. Radiation Hazard in Space. Springer Netherlands, 2003.

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Misagi, Leo. The radiation hazard in mining. U.S. Dept. of Labor, Mine Safety and Health Administration, National Mine Health and Safety Academy, 1996.

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Galang, Jemellie. A Green laser pointer hazard. U.S. Dept. of Commerce, National Institute of Standards and Technology, 2010.

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Koh, W. J. Radiation hazard evaluation for a high power mobile electromagnetic radiation weapon using the numerical electromagnetic code. Naval Postgraduate School, 1987.

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D, Babb Phillip, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Program., eds. Hazard calculations of diffuse reflected laser radiation for the SELENE program. National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Program, 1993.

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Simon, Best, ed. Electromagnetic man: Health and hazard in the electrical environment. St. Martin's Press, 1989.

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U, Hwu Shian, and United States. National Aeronautics and Space Administration., eds. Computer analysis of electromagnetic field exposure hazard for space station astronauts during extravehicular activity. American Institute of Aeronautics and Astronautics, 1995.

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(Organization), IPHECA, ed. Health consequences of the Chernobyl accident: Results of the IPHECA pilot projects and related national programmes, summary report. World Health Organization, 1995.

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Smith, Cyril W. Electromagnetic man: Health and hazard in theelectrical environment. St. Martin's Press, 1989.

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Book chapters on the topic "Radiation hazard"

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Weik, Martin H. "radiation hazard." In Computer Science and Communications Dictionary. Springer US, 2000. http://dx.doi.org/10.1007/1-4020-0613-6_15332.

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Weik, Martin H. "electromagnetic radiation hazard." In Computer Science and Communications Dictionary. Springer US, 2000. http://dx.doi.org/10.1007/1-4020-0613-6_5937.

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Martin, Alan, and Samuel A. Harbison. "The external radiation hazard." In An Introduction to Radiation Protection. Springer US, 1996. http://dx.doi.org/10.1007/978-1-4899-4543-3_8.

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Martin, Alan, and Samuel A. Harbison. "The internal radiation hazard." In An Introduction to Radiation Protection. Springer US, 1996. http://dx.doi.org/10.1007/978-1-4899-4543-3_9.

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Wood, Andrew. "Hazard Identification: Laboratory Investigation." In Non-ionizing Radiation Protection. John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781119284673.ch2.

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Miroshnichenko, Leonty I. "Radiation Conditions in Space." In Radiation Hazard in Space. Springer Netherlands, 2003. http://dx.doi.org/10.1007/978-94-017-0301-7_2.

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Miroshnichenko, Leonty I. "Introduction and Brief History." In Radiation Hazard in Space. Springer Netherlands, 2003. http://dx.doi.org/10.1007/978-94-017-0301-7_1.

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Miroshnichenko, Leonty I. "Physical Conditions in Space." In Radiation Hazard in Space. Springer Netherlands, 2003. http://dx.doi.org/10.1007/978-94-017-0301-7_3.

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Miroshnichenko, Leonty I. "Radiation Belts of the Earth." In Radiation Hazard in Space. Springer Netherlands, 2003. http://dx.doi.org/10.1007/978-94-017-0301-7_4.

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Miroshnichenko, Leonty I. "Dynamics of Galactic Cosmic Rays." In Radiation Hazard in Space. Springer Netherlands, 2003. http://dx.doi.org/10.1007/978-94-017-0301-7_5.

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Conference papers on the topic "Radiation hazard"

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Krzysztofik, Wojciech J. "Mobile Phone Radiation Hazard." In 2006_Wroclaw. IEEE, 2006. https://doi.org/10.23919/emc.2006.10852132.

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Rochalska, Małgorzata. "Electromagnetic Radiation Hazard in ARS." In EMC_2002_Wroclaw. IEEE, 2002. https://doi.org/10.23919/emc.2002.10842307.

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Rochalska, Małgorzata. "Electromagnetic Radiation Hazard in Ars." In EMC_2002_Wroclaw. IEEE, 2002. https://doi.org/10.23919/emc.2002.10842660.

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Klosok, Wojciech, and Hubert Trzaska. "EM Radiation Hazard in Residential Areas." In EMC_2000_Wroclaw. IEEE, 2000. https://doi.org/10.23919/emc.2000.10842094.

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Sarolic, Antonio, Borivoj Modlic, Vesna Roje, Dragan Poljak, and Petar Pavic. "Shipboard RF Equipment Radiation Measurements and Hazard Analysis." In 1992 International Symposium on Electromagnetic Compatibility. IEEE, 1992. https://doi.org/10.1109/isemc.2002.10792151.

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Sarolic, Antonio, Borivoj Modlic, Vesna Roje, Dragan Poljak, and Petar Pavic. "Shipboard RF Equipment Radiation Measurements and Hazard Analysis." In 2002_EMC-Europe_Sorrento. IEEE, 2002. https://doi.org/10.23919/emc.2002.10880020.

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Chen, Q., R. C. Huang, and B. C. Pan. "The Hazard of Electromagnetic Radiation and Discussion of Safety Thresholds." In 6th Symposium and Technical Exhibition on Electromagnetic Compatibility, Zurich. IEEE, 1985. https://doi.org/10.23919/emc.1985.10798860.

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Gulacsi, Eszter, and Olga Bannova. "Design Constraints and Improvements Associated with Radiation Hazard in Space Habitats." In IAF Human Spaceflight Symposium, Held at the 75th International Astronautical Congress (IAC 2024). International Astronautical Federation (IAF), 2024. https://doi.org/10.52202/078364-0041.

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Münter, K., and J. Glimm. "Performance Tests of Radiation Hazard Monitors at Frequencies below 30 MHz." In 8th International Zurich Symposium and Technical Exhibition on Electromagnetic Compatibility. IEEE, 1989. https://doi.org/10.23919/emc.1989.10779126.

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Daun, Kevin, Frederik Bark, Davide Tateo, et al. "A Holistic Concept on AI Assistance for Robot-Supported Reconnaissance and Mitigation of Acute Radiation Hazard Situations." In 2024 IEEE International Symposium on Safety Security Rescue Robotics (SSRR). IEEE, 2024. https://doi.org/10.1109/ssrr62954.2024.10770059.

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Reports on the topic "Radiation hazard"

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Montgomery, Noel D. Radio Frequency Radiation Hazard Survey 141 Tactical Control System Ramey PR. Defense Technical Information Center, 1990. http://dx.doi.org/10.21236/ada225343.

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Garsa, Adam, Julie K. Jang, Sangita Baxi, et al. Radiation Therapy for Brain Metasases. Agency for Healthcare Research and Quality (AHRQ), 2021. http://dx.doi.org/10.23970/ahrqepccer242.

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Objective. This evidence report synthesizes the available evidence on radiation therapy for brain metastases. Data sources. We searched PubMed®, Embase®, Web of Science, Scopus, CINAHL®, clinicaltrials.gov, and published guidelines in July 2020; assessed independently submitted data; consulted with experts; and contacted authors. Review methods. The protocol was informed by Key Informants. The systematic review was supported by a Technical Expert Panel and is registered in PROSPERO (CRD42020168260). Two reviewers independently screened citations; data were abstracted by one reviewer and checke
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Askin, A., B. Buddemeier, M. Alai, and K. Yu. Centers for Disease Control and Prevention (CDC) Radiation Hazard Scale Data Product Review Feedback Report. Office of Scientific and Technical Information (OSTI), 2017. http://dx.doi.org/10.2172/1399754.

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Dillon, M., B. Buddemeier, and K. Yu. Centers for Disease Control and Prevention (CDC) Radiation Hazard Scale: Expanded Data Product Feedback Report. Office of Scientific and Technical Information (OSTI), 2021. http://dx.doi.org/10.2172/1883032.

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Sanders, Frank. Derivations of Relationships among Field Strength, Power in Transmitter-Receiver Circuits and Radiation Hazard Limits. Institute for Telecommunication Sciences, 2010. https://doi.org/10.70220/dj16zbn9.

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Baker, Michael. DTRS56-02-D-70036A Potential Impact Radius Formulae for Flammable Gases other than Natural Gas. Pipeline Research Council International, Inc. (PRCI), 2005. http://dx.doi.org/10.55274/r0012053.

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The original derivation of the PIR formula referenced in 49 CFR 192 is contained in the Gas Research Institute (GRI) report by C-FER Technologies (C-FER), "A Model for Sizing High Consequence Areas Associated with Natural Gas Pipelines" (Stephens 2000). It must be recognized that this formula was derived solely on the premise that thermal radiation from a jet/trench fire is the dominant hazard related to pipe rupture and subsequent ignition. Since natural gas is non-toxic and significantly lighter than air, this premise is valid. However, there are certain pipeline operators transporting flamm
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Cossairt, J. D., N. L. Grossman, and E. T. Marshall. Neutrino radiation hazards: A paper tiger. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/442224.

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Stapleton, Geoffrey, Stephen Musolino, Sayed Rokni, Marcia Torres, Olin van Dyck, and Kamran Vaziri. Control of prompt radiation hazards at accelerator facilities. Office of Scientific and Technical Information (OSTI), 1997. http://dx.doi.org/10.2172/954468.

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REDSTONE TEST CENTER REDSTONE ARSENAL AL. Electromagnetic Radiation Hazards Testing for Non-Ionizing Radio Frequency Transmitting Equipment. Defense Technical Information Center, 2012. http://dx.doi.org/10.21236/ada577863.

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Edelstein, N. M., D. K. Shuh, and J. B. Bucher. Hazards analysis for the E.O. Lawrence Berkeley National Laboratory x-ray absorption experiments to be performed at Stanford Synchrotron Radiation Laboratory. Office of Scientific and Technical Information (OSTI), 1995. http://dx.doi.org/10.2172/238580.

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