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Titlebook: Computer Techniques in Radiation Transport and Dosimetry; Walter R. Nelson,Theodore M. Jenkins Book 1980 Springer Science+Business Media N

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書目名稱Computer Techniques in Radiation Transport and Dosimetry
編輯Walter R. Nelson,Theodore M. Jenkins
視頻videohttp://file.papertrans.cn/234/233979/233979.mp4
叢書名稱Ettore Majorana International Science Series
圖書封面Titlebook: Computer Techniques in Radiation Transport and Dosimetry;  Walter R. Nelson,Theodore M. Jenkins Book 1980 Springer Science+Business Media N
描述In October 1978, a group of 41 scientists from 14 countries met in Erice, Sicily to attend the Second Course of the Interna- tional School of Radiation Damage and Protection "Ettore Majorana", the proceedings of which are contained in this book. The countries represented at the School were: Brazil, Canada, Federal Republic of Germany, Finland, German Democratic Republic, Hungary, India, Italy, Japan, Spain, Sweden, Switzerland, United States of America, and Yugoslavia. The School was officially sponsored by the Italian Health Physics Association, the Italian Ministry of Public Education, the Italian Ministry of Scientific and Technological Research, and the Sicilian Regional Government. In addition, administrative and tech- nical support was received from the Stanford Linear Accelerator Center and from CERN. The past 15 or so years have witnessed a significant develop- ment of computer methods in the science of radiation protection. The radiation transport codes associated with hadronic and electro- magnetic cascades, reactor shielding, unfolding techniques, and gamma ray spectrum analysis have reached the state-of-the-art level, and the Erice Course aimed at presenting as comprehe
出版日期Book 1980
關(guān)鍵詞Cross section; Gamma ray; Monte Carlo method; dosimetry; electron; hadron; high energy physics; neutron; rad
版次1
doihttps://doi.org/10.1007/978-1-4684-3608-2
isbn_softcover978-1-4684-3610-5
isbn_ebook978-1-4684-3608-2
copyrightSpringer Science+Business Media New York 1980
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https://doi.org/10.1007/BFb0040661 The discrete ordinate solution usually provides a rather complete description of the particle fluxes in all of phase space (spatial coordinates, x, y, z; angular direction, u., v., w.; time, t; energy, E; etc.) in contrast to the Monte Carlo solution which usually only provides information about ce
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Creative Writing: Can It Be Taught?,.. Some of these are:l) fusion reactor shielding., 2) accelerator breeder design. (electronuclear fuel production), 3) high energy nuclear instrumentation design. (uranium calorimeters), and 4) accelerator beam stop activation.. In the sections to follow,1) and 2) will be discussed. The reader is re
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https://doi.org/10.1007/978-3-030-91684-8 of radiation with matter; radiation production, protection and transport; radiation detectors and measurements; engineering design techniques; shielding materials properties; computer codes useful in research and design; and nuclear data compilations. The goals of RSIC are to function as a technica
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https://doi.org/10.1007/978-94-011-0037-3ncident particles. In the high energy domain, analogue calculations tend to be very slow. Their execution time per incident particle grows linearly with energy. For the most energetic electrons and photons produced at present day accelerators (> 100 GeV), one can barely manage to simulate showers in
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