Published 2007 | Version v1
Miscellaneous Open

Thermal features of spallation window targets

  • 1. E. T. S. Ingenieros Industriales, Madrid (Spain)

Description

Subcritical nuclear reactors have been proposed for a number of applications, from energy production to fertile-to-fissile conversion, and to transmutation of long-lived radio nuclei into stable or much shorter-lived nuclei. The main advantage of subcritical reactors is their large reactivity margin for not to attain prompt-supercritical power surges. On the contrary, subcritical reactors present some economic drawbacks and technical complexities that deserve suitable attention in the Research and Development phase. Namely, they need a very intense neutron source in order to keep the neutron flux and the reactor power at the required level. The most intense neutron source seems to be based on the proton-induced (or deuteron-induced) spallation reaction in heavy nuclei targets, which present very demanding thermal features that must be properly limited. Those limits pose upper bounds to the neutron yield of the target. In turn, the limits depend on the features of the impinging particle beam and the material composition and geometry of the target. Although the potential design window for spallation targets is rather wide, the analysis presented in this paper identifies specific topics that must properly be covered in the detailed project of a spallation source, in order to avoid unacceptable temperatures and mechanical stresses in the most critical parts of the source. In this paper, some calculations are reported on solid targets (water cooled or helium cooled) and molten metals targets. It is seen that thermal-hydraulic and mechanical calculations of spallation targets are fundamental elements in the coherent design of this type of very intense neutron sources. This coherence implies the need of a suitable trade-off among the relevant beam parameters (proton energy, total intensity and cross-section shape) and the features of the target (structural materials, coolant characteristics and target geometry). The goal of maximizing the neutron yield has to be checked against the safety criteria regarding the source integrity, notably those depending on the thermal performance of the system

Files

38117050.pdf

Files (73.2 kB)

Name Size Download all
md5:7091c5bd2b9a1c6876ad92618cce1143
73.2 kB Preview Download
Part of:
ICENES 2007 Abstracts

Additional details

Publishing Information

Publisher
Gazi University
Imprint Place
Ankara (Turkey)
ISBN
978-975-01805-0-7
Imprint Title
ICENES 2007 Abstracts
Imprint Pagination
286 p.
Journal Page Range
p. 89
Report number
INIS-TR--0111

Conference

Title
13. International Conference on Emerging Nuclear Energy Systems
Dates
3-8 Jun 2007
Place
Istanbul (Turkey)

INIS

Country of Publication
Turkey
Country of Input or Organization
Turkey
INIS RN
38117050
Subject category
S43: PARTICLE ACCELERATORS;
Resource subtype / Literary indicator
Conference, Numerical Data
Descriptors DEI
ACCELERATORS; EXPERIMENTAL REACTORS; MATHEMATICAL SOLUTIONS; NUCLEAR REACTIONS; NUMERICAL DATA; SPALLATION; SUBCRITICAL ASSEMBLIES; TARGETS; THERMAL HYDRAULICS
Descriptors DEC
DATA; EXPERIMENTAL REACTORS; FLUID MECHANICS; HYDRAULICS; INFORMATION; MECHANICS; NUCLEAR REACTIONS; REACTORS; RESEARCH AND TEST REACTORS

Optional Information