Alternate passive spent fuel pool cooling systems and methods
The present invention relates to passive cooling systems and methods for cooling a spent fuel pool in a nuclear power plant in the absence of onsite and offsite power, e.g., in a station blackout event. The systems include a gap formed along the periphery of the spent fuel pool, a heat sink, one or more thermal conductive members, a water supply system for delivering water to at least partially fill the gap and conduct heat generated from the spent fuel pool through the gap to at least one thermal conductive member for transporting heat to the heat sink, and a thermal switch mechanism for activating and deactivating the water supply system. In particular, the passive spent fuel pool cooling systems and methods of the invention are useful when the active spent fuel pool cooling system is unavailable or inoperable.
1. A method of passively cooling a spent fuel pool in a nuclear power plant absent of onsite and offsite power, wherein the spent fuel pool has an inner wall and an outer wall, the method comprising:
spacing the inner wall and the outer wall of the spent fuel pool a distance apart substantially along a periphery of the spent fuel pool forming a gap,
wherein, the gap contains air to impede a flow of heat from the spent fuel pool when passive cooling is deactivated;
providing a heat sink;
providing one or more conductive members having a first end and a second end;
connecting the first end of the one or more conductive members to the gap and the second end to the heat sink; and
activating passive cooling of the spent fuel pool, comprising:
adding water to substantially fill the gap;
conducting heat generated from the spent fuel pool through the gap; and
transporting the heat from the gap through the one or more conductive members to the heat sink.
2. The method of claim 1 , wherein adding water to substantially fill the gap, comprises:
obtaining a water source;
connecting a discharge header to the water source;
discharging water from the water source into the discharge header; and
discharging the water from the discharge header into the gap.
3. The method of claim 2 , further comprising installing in the discharge header a flow control valve having an open position and a closed position.
4. The method of claim 2 , further comprising locating the discharge header at the top or near the top of the gap.
5. The method of claim 1 , further comprising partitioning the gap into a plurality of channels.
6. The method of claim 5 , further comprising installing in each of said plurality of channels a discharge header.