Filters
Results 1 - 1 of 1
Results 1 - 1 of 1.
Search took: 0.018 seconds
Tanaka, M.; Kobayashi, J.; Isozaki, T.; Nishimura, M.; Kamide, H.
Proceedings of the 5th ASME/JSME thermal engineering joint conference1999
Proceedings of the 5th ASME/JSME thermal engineering joint conference1999
AbstractAbstract
[en] An experimental investigation was conducted on convective heat transfer to a local blockage in a simulated subchannel of a Liquid Metal-cooled Fast Breeder Reactor. The experiment was performed with a 4-subchannel geometry water test facility. A porous blockage is located at the center subchannel and is surrounded by three unplugged subchannels. The blockages used in this study were solid metal, a porous blockage consisting of metal spheres, and a porous blockage with plates covering the side or top faces of the blockage to intentionally prevent either the axial and/or the lateral flows through the blockage. In the experiment, the heat flux provided by an electrical heater were set at 50(kW/m2) and 20(kW/m2) while the Reynolds number was varied from 3.5 x 103 to 8.6 x 103. Temperature measurements of the water were made inside/outside the blockage. Finally, velocity profiles outside the blockage were measured with a Laser Doppler Velocimeter (LDV) and an Ultrasound Velocity Profile monitor (UVP). Normalized temperature inside the blockage revealed that the influence of buoyancy was negligibly small, and that the temperature depended on the flow rate and the configurations of the blockage. Comparison of temperature and velocity profiles between the blockage types as shown in Fig. A-1, showed that both lateral and axial flow influenced the heat removal from inside the upper part of the porous blockage, as well as the heater surface contacting the blockage. Father, lateral flow had a strong influence on the peak temperature inside the blockage than axial flow. The heat transfer characteristics showed that the predominant mode of heat was not conduction, but convection via lateral flow through the blockage and axial flow through the upper region of the blockage under higher flow rate conditions
Primary Subject
Secondary Subject
Source
Japan Nuclear Cycle Development Inst., Oarai, Ibaraki (Japan); [3600 p.]; 1999; p. 8; American Society of Mechanical Engineers; New York, NY (United States); 5. ASME/JSME Thermal Engineering Joint Conference; San Diego, CA (United States); 14-19 Mar 1999; Available from American Society of Mechanical Engineers, Three Park Avenue, New York, NY 10016 (US); $500.00; Paper AJTE99.6434
Record Type
Book
Literature Type
Conference
Country of publication
Reference NumberReference Number
INIS VolumeINIS Volume
INIS IssueINIS Issue