Published 2007 | Version v1
Miscellaneous

Evaluation of various fuel cycles to control inventories of plutonium and minor in advanced fuel cycles

  • 1. Tennessee Univ., Nuclear Engineering Dept., Knoxville, TN (United States)
  • 2. Argonne National Laboratory, Argonne, IL (United States)

Description

Inventories of Plutonium and minor actinides are important factors in determination of the risk associated with the use of nuclear energy. This includes the potential of exceeding release limits from a repository and the potential for proliferation. The amount of these materials in any given fleet of reactors is determined in large part by the choice of fuel cycle and by the types of reactors selected for operation. Most of the US reactor fleet will need to be replaced within the next 30 years and additional reactors will need to be added if the contribution of power from nuclear energy is expanded. In order to minimize risk and to make judicious use of repository space, inventories of all radionuclides will need to be effectively managed. Use of hard-spectrum reactors to burn excess Plutonium and other actinides is technologically feasible and is most likely less costly than any other options for minimizing various risks. Calculations for the inventories of several categories of radionuclides indicate that introduction of a modest fraction of fast reactors into the US reactor fleet is effective in stabilizing the growth of problematic radioisotopes. Results are obtained from the DANESS (Dynamic Analysis of Nuclear Energy System Strategies)1,2 Code and from the solution of algebraic equations that define steady state inventories. There are various different possible fuel cycle scenarios to utilize in the implementation of fast, thermal and intermediate spectrum reactors into the U.S. fleet. Results include various combinations of reactor types and fuel with varying times of implementations. Mass flows with uncertainties for equilibrium cycles will also be reported. Time-dependent scenarios are modeled with the DANESS code, and algebraic equations for various fuel cycles are derived. Uncertainties are obtained using Monte Carlo simulations based on estimates of parameters in the models. (authors)

Availability note (English)

Available from: SFEN, 5 rue des Morillons, 75015 Paris (France)

Additional details

Publishing Information

Imprint Pagination
10 p.
Report number
INIS-FR--08-0654

Conference

Title
ICAPP 2007 - International congress on advances in nuclear power plants. The nuclear renaissance at work
Dates
13-18 May 2007
Place
Nice Acropolis (France)

INIS

Country of Publication
France
Country of Input or Organization
France
INIS RN
39069956
Subject category
S11: NUCLEAR FUEL CYCLE AND FUEL MATERIALS;
Resource subtype / Literary indicator
Conference, Non-conventional Literature
Descriptors DEI
ACTINIDE BURNER REACTORS; COMPUTERIZED SIMULATION; D CODES; EQUILIBRIUM; MINIMIZATION; PLUTONIUM RECYCLE; RADIOACTIVE WASTE MANAGEMENT
Descriptors DEC
COMPUTER CODES; EPITHERMAL REACTORS; FAST REACTORS; FUEL CYCLE; MANAGEMENT; OPTIMIZATION; REACTORS; SIMULATION; WASTE MANAGEMENT