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Simulation experiments on the radial pool growth in gas-releasing melting system. [PWR; BWR]

Rouyentan Farhadieh, R. Purviance, Neil N. Carlson

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Abstract

Following an HCDA, molten core-debris can contact the concrete foundation of the reactor building resulting in a molten UO/sub 2//concrete interaction and considerable gas release. The released gas can pressurize the containment building potentially leading to radiological releases. Furthermore, directional growth of the molten core-debris pool can reduce the reactor building structural integrity. To implement design changes that insure structural integrity, an understanding of the thermal-hydraulic and mass-transfer process associated with such a growth is most desirable. Owing to the complex nature of the combined heat, mass, and hydrodynamic processes associated with the two-dimensional problem of gas release and melting, the downward and radial penetration problems have been investigated separately. The present experimental study addresses the question of sideward penetration of the molten core debris into a gas-releasing, meltable, miscible solid.

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Following an HCDA, molten core-debris can contact the concrete foundation of the reactor building resulting in a molten UO/sub 2//concrete interaction and considerable gas release. The released gas can pressurize the containment building potentially leading to radiological releases. Furthermore, directional growth of the molten core-debris pool can reduce the reactor building structural integrity. To implement design changes that insure structural integrity, an understanding of the thermal-hydraulic and mass-transfer process associated with such a growth is most desirable. Owing to the complex nature of the combined heat, mass, and hydrodynamic processes associated with the two-dimensional problem of gas release and melting, the downward and radial penetration problems have been investigated separately. The present experimental study addresses the question of sideward penetration of the molten core debris into a gas-releasing, meltable, miscible solid.

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Available abstract

Following an HCDA, molten core-debris can contact the concrete foundation of the reactor building resulting in a molten UO/sub 2//concrete interaction and considerable gas release. The released gas can pressurize the containment building potentially leading to radiological releases. Furthermore, directional growth of the molten core-debris pool can reduce the reactor building structural integrity. To implement design changes that insure structural integrity, an understanding of the thermal-hydraulic and mass-transfer process associated with such a growth is most desirable. Owing to the complex nature of the combined heat, mass, and hydrodynamic processes associated with the two-dimensional problem of gas release and melting, the downward and radial penetration problems have been investigated separately. The present experimental study addresses the question of sideward penetration of the molten core debris into a gas-releasing, meltable, miscible solid.

Key concepts: Corium, Nuclear engineering, Debris, Heat transfer, Mass transfer, Containment (computer programming), Cabin pressurization, Penetration (warfare)

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Simulation experiments on the radial pool growth in gas-releasing melting system. [PWR; BWR] — Research Paper | ScholarLens