Validation of general purpose mathematical efficiency modeling with ISOCS - 15579
Creators
- 1. Canberra Industries Inc. (United States)
- 2. Canberra UK Ltd (United Kingdom)
- 3. Consultant (Russian Federation)
Description
Gamma spectroscopy is a commonly used method for radioactive waste characterization and activity determination in in-situ objects. The gamma rays emitted by radionuclides in the waste container matrix are highly penetrating and can be measured using one or more gamma ray detectors, thus allowing for a passive nondestructive assay. One problem is that a source based calibration of full energy peak efficiency can be difficult or impractical because of the large size and/or an unusual shape of the sample geometry. One attractive solution is to use mathematical efficiency modeling to calculate the full energy peak efficiency. The In-Situ Object Calibration Software (ISOCS) has successfully been used for more than a decade for mathematical efficiency modeling of template based geometries. Templates include the most common objects in waste characterization and D and D, including but not limited to: boxes, drums, and pipes with hotspots, beams, tanks and walls. Scenarios exist where these templates cannot model the desired measurement geometry. Canberra has developed a general purpose version of ISOCS where primitive objects can be combined into practically any geometry. The primitive objects are right circular cylinder, right elliptical cylinder, right circular cone, right elliptical cone, sphere, spheroid, ellipsoid, box (rectangular parallelepiped), torus, and beaker (any cylindrical symmetric object). Multiple primitive objects can be combined using the priority scheme and cut by planes into almost any desired shape. In addition, multiple objects can be defined in the same scene, for example cylinders next to each other or a pipe and a box. Collimators can be constructed as easily as in template based ISOCS. The ray tracing algorithm in ISOCS has been extended to support the new primitive objects for attenuation calculation between the radioactive source and the detector end cap. The new version uses the same vacuum efficiency response, or characterization, in the energy range 10 - 7000 keV of individual detectors to be able to calculate the efficiency as accurately as possible. MCNP has been shown to be able to calculate detection efficiencies for any geometry and the new version of ISOCS have been validated to MCNP. The vacuum efficiency is based on an MCNP model and this model was the base for constructing an identical model in MCNP as in ISOCS. The calculated efficiencies from the two codes have been compared and the agreement is within 3% except for the lowest energies for one geometry. (authors)
Availability note (English)
Available from: WM Symposia, Inc., PO Box 27646, 85285-7646 Tempe, AZ (US)Additional details
Identifiers
Publishing Information
- Imprint Pagination
- 12 p.
- Report number
- INIS-US--19-WM-15579
Conference
- Title
- Annual Waste Management Symposium
- Acronym
- WM2015
- Dates
- 15-19 Mar 2015
- Place
- Phoenix, AZ (United States)
INIS
- Country of Publication
- United States
- Country of Input or Organization
- France
- INIS RN
- 50069489
- Subject category
- S12: MANAGEMENT OF RADIOACTIVE WASTES, AND NON-RADIOACTIVE WASTES FROM NUCLEAR FACILITIES;
- Resource subtype / Literary indicator
- Conference, Non-conventional Literature
- Descriptors DEI
- ATTENUATION; CALIBRATION; COMPUTER CODES; COMPUTERIZED SIMULATION; CYLINDRICAL CONFIGURATION; DETECTION; EFFICIENCY; GAMMA RADIATION; GAMMA SPECTROSCOPY; GEOMETRY; KEV RANGE; PIPES; RADIATION SOURCES; RADIOACTIVE WASTES; RADIOISOTOPES; SPHERES; SPHEROIDS; TANKS; VALIDATION; WALLS
- Descriptors DEC
- CONFIGURATION; CONTAINERS; ELECTROMAGNETIC RADIATION; ENERGY RANGE; IONIZING RADIATIONS; ISOTOPES; MATERIALS; MATHEMATICS; RADIATIONS; RADIOACTIVE MATERIALS; SIMULATION; SPECTROSCOPY; TESTING; TUBES; WASTES
Optional Information
- Notes
- 5 refs.; available online at: http://archive.wmsym.org/2015/index.html