AUTOMATED RADIOLOGICAL MONITORING AT A RUSSIAN MINISTRY OF DEFENCE NAVAL SITE. [electronic resource]

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Bibliographic Details
Online Access: Online Access
Corporate Author: Brookhaven National Laboratory (Researcher)
Format: Government Document Electronic eBook
Language:English
Published: Washington, D.C. : Oak Ridge, Tenn. : United States. Dept. of Energy. Office of Energy Research ; distributed by the Office of Scientific and Technical Information, U.S. Dept. of Energy, 2001.
Subjects:

MARC

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245 0 0 |a AUTOMATED RADIOLOGICAL MONITORING AT A RUSSIAN MINISTRY OF DEFENCE NAVAL SITE.  |h [electronic resource] 
260 |a Washington, D.C. :  |b United States. Dept. of Energy. Office of Energy Research ;  |a Oak Ridge, Tenn. :  |b distributed by the Office of Scientific and Technical Information, U.S. Dept. of Energy,  |c 2001. 
300 |a 5 pages :  |b digital, PDF file. 
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500 |a WASTE MANAGEMENT 2001, TUCSON, AZ (US), 02/25/2001--03/01/2001. 
500 |a MOSKOWITZ,P.D.; GAVRILOV,S.; ENDREGARD,M.; BELIKOV,A.; KROSSHAVN,M.; EGORKIN,A.; SUNDLING,C.V.; POMERVILLE,J.; KISSELEV,V.; DANIYLAN,V.; SOKOLOVSKI,Y.; YOKSTAD,H. 
520 3 |a The Arctic Military Environmental Cooperation (AMEC) Program is a cooperative effort between the military establishments of the Kingdom of Norway, the Russian Federation, and the US. This paper discusses joint activities conducted over the past year among Norwegian, Russian, and US technical experts on a project to develop, demonstrate and implement automated radiological monitoring at Russian Navy facilities engaged in the dismantlement of nuclear-powered strategic ballistic missile launching submarines. Radiological monitoring is needed at these facilities to help protect workers engaged in the dismantlement program and the public living within the footprint of routine and accidental radiation exposure areas. By providing remote stand-alone monitoring, the Russian Navy will achieve added protection due to the defense-in-depth strategy afforded by local (at the site), regional (Kola) and national-level (Moscow) oversight. The system being implemented at the Polyaminsky Russian Naval Shipyard was developed from a working model tested at the Russian Institute for Nuclear Safety, Moscow, Russia. It includes Russian manufactured terrestrial and underwater gamma detectors, smart controllers for graded sampling, radio-modems for offsite transmission of the data, and a data fusion/display system: The data fusion/display system is derived from the Norwegian Picasso AMEC Environmental Monitoring software package. This computer package allows monitoring personnel to review the real-time and historical status of monitoring at specific sites and objects and to establish new monitoring protocols as required, for example, in an off-normal accident situation. Plans are being developed to implement the use of this system at most RF Naval sites handling spent nuclear fuel. 
536 |b AC02-98CH10886. 
536 |b NN333. 
650 7 |a Radiation Monitoring.  |2 local. 
650 7 |a Russian Federation.  |2 local. 
650 7 |a Automation.  |2 local. 
650 7 |a Data Transmission Systems.  |2 local. 
650 7 |a Demolition.  |2 local. 
650 7 |a Nuclear Ships.  |2 local. 
650 7 |a Radiation Monitors.  |2 local. 
650 7 |a Submarines.  |2 local. 
650 7 |a Radiation Protection.  |2 local. 
650 7 |a Spent Fuels.  |2 local. 
650 7 |a Gamma Detection.  |2 local. 
650 7 |a Military Facilities.  |2 local. 
650 7 |a Specific Nuclear Reactors And Associated Plants.  |2 edbsc. 
710 2 |a Brookhaven National Laboratory.  |4 res. 
710 1 |a United States.  |b Department of Energy.  |b Office of Energy Research.  |4 spn. 
710 1 |a United States.  |b Department of Energy.  |b Office of Scientific and Technical Information.  |4 dst. 
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