Measurement of Wavy Surface Oscillations on Liquid Metal Lithium Jet for IFMIF Target

Author:

Sugiura Hirokazu1,Kanemura Takuji2,Yoshihashi-Suzuki Sachiko1,Kondo Hiroo2,Yoshikawa Tomohide3,Yamaoka Nobuo1,Ida Mizuho2,Nakamura Hiroo2,Matsushita Izuru4,Horiike Hiroshi1

Affiliation:

1. Graduate School of Engineering, Osaka University, Yamada-oka 2-1, Suita, Osaka 565-0871, Japan

2. Japan Atomic Energy Agency, 2-1 Shirakata Shirane, Tokai Mura, Ibaraki 319-1195, Japan

3. Chugoku Electric Power Co., Inc., 654-1 Kataku Kashima-tyo, Matue City 690-0393, Japan

4. Shinryo High Technologies Ltd., 4-22, Wadamiya-dori 5, Hyogoku, Kobe, Hyogo 652-0863, Japan

Abstract

Abstract The International Fusion Materials Irradiation Facility (IFMIF) has been conceived as a high-flux 14 MeV neutron source for testing candidate fusion reactor materials. In the current design, neutrons are generated by irradiating a target with a deuteron beam and high-speed free-surface flow of liquid metal lithium (Li) is adopted as the target. To reveal the stability of the Li flow, we have examined characteristics of surface waves at a location 175 nm downstream from a nozzle exit, which corresponds to the center of the beam irradiated region. In this study, the characteristics of surface waves just downstream of the nozzle exit were measured experimentally, since the initial growth of surface waves exerts a definite influence on the surface behavior of the Li flow in the downstream region. Experiments were carried out with a focus on surface oscillations of the Li flow using the lithium circulation loop at Osaka University. These oscillations are measured using an electro-contact probe apparatus, which can detect electrically a contact between the probe tip and the Li surface and provide local height data of surface waves. The apparatus was installed at a location 15 mm downstream from the nozzle exit and scanned the Li surface by moving along the liquid-depth direction. The experiments were performed for the velocity range of 3-15 m/s under argon gas atmosphere at a pressure of 0.13 MPa. The contact signal recorded in the experiment was used to analyze the characteristics of surface waves, and then the root-mean-square wave amplitude and the frequency of surface waves were calculated. It was found that the root-mean-square wave amplitudes of surface waves increased with a rise in the flow velocity, and reached approximately 0.18 mm at 14-15 m/s. And also, obtained frequencies were analyzed using a linear stability theory, and the variation of frequencies was examined with the mean flow velocity.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference22 articles.

1. IFMIF International Team, 2004, “IFMIF Comprehensive Design Report,” IEA online publication, http://www.iea.org/Textbase/thechno/thechnologies/fusion/IFMIF-CDR_partA.pdf and partB.pdf

2. IFMIF-CDA Team, 1996, “IFMIF International Fusion Materials Irradiation Facility Conceptual Design Activity Final Report,” ENEA Frascati Report No. RT/ERG/FUS/96/11.

3. IFMIF Team, 1999, “IFMIF International Fusion Materials Irradiation Facility Conceptual Design Evaluation Report,” FZK Report No. FZKA 6199.

4. Stability of the FMIT High Speed, Free Surface Liquid Jet Flowing Along a Curved Wall;Hassberger

5. Comparison Between Measured and Predicted Performance of a High Speed, Free Surface Liquid Jet Flowing Along a Curved Wall;Hassberger;Nucl. Technol./Fusion

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