Claims
- 1. In a nuclear boiling water reactor (BWR) facility wherein housed within a sealed annular drywell is a reactor pressure vessel (RPV) which contains a nuclear core and a condensible heat transfer fluid for circulation in heat transfer relationship with said core, and which is fluid communicable in an emergency situation with said drywell for passage thereinto of gaseous phase heat transfer fluid and any noncondensibles in said RPV; an annular sealed wetwell which houses said drywell; and a pressure suppression pool of liquid which is disposed in said wetwell and is connected to said drywell by submerged vents, an improved emergency cooling system which comprises:
- (a) a containment condenser
- (i) having an inlet in fluid communication with said drywell for receiving condensible gaseous phase heat transfer fluid and noncondensibles therefrom for the condensation of at least a portion of said heat transfer fluid;
- (ii) a first outlet in fluid communication with said RPV for the return to said RPV of the condensed portion of said heat transfer fluid; and
- (iii) a second outlet in fluid communication with said drywell for passage to said drywell of the noncondensed balance of said heat transfer fluid and said noncondensibles; and
- (b) a water pool in heat transfer relationship with said containment condenser for conducting heat away from said containment condenser.
- 2. The improved emergency cooling system of claim 1, wherein said containment condenser additionally comprises:
- (iv) a shroud defining a plenum which is in fluid communication with said first outlet;
- (v) a steam dome;
- (vi) and a plurality of tubes running from said steam dome to said plenum for passage therethrough of said gaseous phase heat transfer fluid and said noncondensibles from said drywell, said tubes having annular centers and inner surfaces, at least a portion of said heat transfer fluid condensing in said tubes and flowing through said tubes along said inner surfaces.
- 3. The improved emergency emergency cooling system of claim 2, wherein said tubes are disposed at an angle of from between about 20.degree. and 40.degree. with respect to vertical.
- 4. The improved emergency cooling system of claim 2, wherein said tubes are disposed vertically.
- 5. The improved emergency cooling system of claim 2, wherein said tubes are linear.
- 6. The improved emergency cooling system of claim 2, wherein said tubes are helical coils.
- 7. The improved emergency cooling system of claim 2, wherein the length of said plenum is about twice the length of said tubes.
- 8. The improved emergency cooling system of claim 4, wherein flowtrips are incorporated into said tubes for dropletizing the condensed portion of said heat transfer fluid flowing through said tubes along said inner surfaces and for directing the droplets produced by said dropletizing to said annular centers of said tubes.
- 9. The improved emergency cooling system of claim 8, wherein said flowtrips are fins which extend inwardly from said inner surfaces of said tubes.
- 10. The improved emergency cooling system of claim 8, wherein said flowtrips are a plurality of V-shaped flutes terminating a cylindrical channel circumscribed into said inner surfaces of said tubes.
- 11. The improved emergency cooling system of claim 3, wherein flowtrips are incorporated into said tubes adjacent said shroud for dropletizing the condensed portion of said heat transfer fluid flowing through said tubes along said inner surfaces.
- 12. The improved emergency cooling system of claim 11, wherein said flowtrips are fins which extend inwardly from said inner surfaces of said tubes.
- 13. The improved emergency cooling system of claim 11, wherein said flowtrips are a plurality of V-shaped flutes terminating a cylindrical channel circumscribed into said inner surfaces of said tubes.
- 14. The improved emergency cooling system of claim 1, wherein said heat transfer fluid and said noncondensibles are passed from said RPV to the drywell and then through said containment condenser by negative pressure differentials.
- 15. A method for removing heat from a reactor pressure vessel (RPV) in emergency cooling situations, said RPV being part of a nuclear boiling water reactor (BWR) facility wherein housed within a sealed annular drywell is said reactor pressure vessel (RPV) which contains a nuclear core and a condensible heat transfer fluid for circulation in heat transfer relationship with said core, and which is fluid communicable in an emergency situation with said drywell for passage thereinto of gaseous phase heat transfer fluid and any noncondensibles in said RPV; an annular sealed wetwell which houses said drywell; and a pressure suppression pool of liquid which is disposed in said wetwell and is connected to said drywell by submerged vents, which comprises:
- (a) passing at least a portion of said heat transfer fluid and said noncondensibles from said RPV into said drywell for mixing with heat transfer fluid and noncondensibles from a later step of the method;
- (b) passing the mixed heat transfer fluids and noncondensibles from said drywell through a containment condenser for condensing at least a portion of the heat transfer fluid;
- (c) passing the condensed heat transfer fluid of step (b) from said containment condenser to said RPV;
- (d) passing the noncondensed balance of the heat transfer fluid and the noncondensibles of step (b) into said drywell for mixing in step (a) with said heat transfer fluid and said noncondensibles from said RPV.
- 16. The method of claim 15 wherein said containment condenser is provided to comprise:
- a shroud defining a plenum which is in fluid communication with said RPV;
- a steam dome;
- and a plurality of tubes running from said stream dome to said plenum for passage therethrough in step (b) of said mixed heat transfer fluids and noncondensibles from said drywell, said tubes having annular centers and inner surfaces, at least a portion of the heat transfer fluid condensing in said tubes and flowing through said tubes along said inner surfaces.
- 17. The method of claim 16, wherein said tubes are disposed at an angle of from between about 20.degree. and 40.degree. with respect to vertical.
- 18. The method of claim 16, wherein said tubes are disposed vertically.
- 19. The method of claim 16, wherein said tubes are provided to be linear.
- 20. The method of claim 16, wherein said tubes are provided as helical coils.
- 21. The method of claim 16, wherein the length of said plenum is provided to be about twice the length of said tubes.
- 22. The method of claim 18, wherein flowtrips are incorporated into said tubes for dropletizing the condensed portion of the heat transfer fluid flowing through said tubes along said inner surfaces and for directing the droplets produced by said dropletizing to said annular centers of said tubes.
- 23. The method of claim 22, wherein said flowtrips are provided as fins which extend inwardly from said inner surfaces of said tubes.
- 24. The method of claim 22, wherein said flowtrips are a plurality of V-shaped flutes terminating a cylindrical channel circumscribed into said inner surfaces of said tubes.
- 25. The method of claim 17, wherein flowtrips are incorporated into said tubes adjacent said shroud for dropletizing the condensed portion of the heat transfer fluid flowing through said tubes along said inner surfaces.
- 26. The method of claim 25, wherein said flowtrips are provided as fins which extend inwardly from said inner surfaces of said tubes.
- 27. The method of claim 25, wherein said flowtrips are a plurality of V-shaped flutes terminating a cylindrical channel circumscribed into said inner surfaces of said tubes.
- 28. The method of claim 15 wherein in step (a), said heat transfer fluid and said noncondensibles from said RPV are passed into said drywell by negative pressure differentials.
- 29. The method of claim 15 wherein in step (b), said mixed heat transfer fluids and noncondensibles are passed from said drywell into said containment condenser by negative pressure differentials.
- 30. The method of claim 15 wherein a water pool is disposed in a heat transfer relationship with said containment condenser for conducting heat from said containment condenser.
BACKGROUND OF THE INVENTION
The Government has rights in this invention under contract No. DE-AC03-90SF18494.
US Referenced Citations (3)