Claims
- 1. In a multiphase vapor generator having a boiler surface, means for moving a fluid to be vaporized in heat transfer contact with the boiler surface progressively along a flow path between spaced inlet and outlet means, and means for heating the boiler surface to temperatures higher than the vaporization temperature of the fluid, whereby the fluid initially is in the liquid phase at the inlet means and ultimately is in the superheated vapor phase at the outlet means and is in a multiphase mixture phase therebetween increasing from 0% to 100% vapor in moving downstream along the flow path, the improved combination comprising injection means located proximate the boiler surface and in the flow path of the fluid at a location relative to the vapor percent of the multiphase mixture just upstream from where departure from nucleate boiling of the fluid at the boiler surface normally would occur, and means for discharging some of the same fluid as superheated vapor from the injection means in sufficient quantities to increase the vapor percent of the multiphase mixture of the fluid in the flow path and upstream of the injection means by between 5% and 30% vapor almost instantaneously, operable thereby to convert directly from nucleate boiling heating to stable combined convective and film boiling heating without any unstable departure from nucleate boiling.
- 2. A multiphase vapor generator combination according to claim 1 wherein, said boiler surface is on the inside of a tube and the fluid flows axially within the tube, and wherein said injection means is located within the tube and discharges the superheated vapor into the tube.
- 3. A multiphase vapor generator combination according to claim 2, wherein said injection means is provided as a part of a second tube axially fitted within the boiler surface tube.
- 4. A multiphase vapor generator combination according to claim 3, wherein said second tube also extends exteriorly of the boiler surface tube, and means including a compressor for directing the superheated vapor into the second tube at a location exteriorly of the boiler surface tube.
- 5. A multiphase vapor generator combination according to claim 4, wherein said injection means are in the form of nozzle openings in the second tube adapted to discharge the superheated vapor into the boiler surface tube.
- 6. A multiphase vapor generator combination according to claim 5, wherein the nozzle openings are located near the upsteam end of the boiler surface tube relative to the direction of the fluid flow through the boiler surface tube.
- 7. A multiphase vapor generator combination according to claim 6, wherein in the range of 25-50% of the fluid flow along the flow path over the boiler surface and downstream of the injection means is comprised of the fluid discharged from the injection means.
- 8. A multiphase vapor generator combination according to claim 6, further including a thermal liner in the boiler surface tube disposed between the boiler surface itself and the injection means effective to prevent direct discharging of the superheated vapor onto the boiler surface.
- 9. A multiphase vapor generator combination according to claim 1, wherein in the range of 25-50% of the fluid flow along the flow path over the boiler surface and downstream of the injection means is comprised of the fluid discharged from the injection means.
- 10. A multiphase vapor generator combination according to claim 9, wherein said boiler surface is on the inside of a tube and the fluid flows axially within the tube, and wherein said injection means is located within the tube and discharges the superheated vapor into the tube.
- 11. A multiphase vapor generator combination according to claim 10, further including a thermal liner in the boiler surface tube disposed between the boiler surface itself and the injection means effective to prevent direct discharging of the superheated vapor onto the boiler surface.
- 12. A multiphase vapor generator combination according to claim 10, wherein said injection means is provided as part of a second tube axially fitted within the boiler surface tube.
- 13. A multiphase vapor generator combination according to claim 12, wherein said second tube also extends exteriorly of the boiler surface tube, and means including a compressor for directing the superheated vapor into the second tube at a location exteriorly of the boiler surface tube.
- 14. A multiphase vapor generator combination according to claim 13, wherein said injection means are in the form of nozzle openings in the second tube adapted to discharge the superheated vapor into the boiler surface tube.
- 15. For use in a multiphase vapor generator having a boiler surface heated to temperatures higher than the vaporization temperature of a fluid to be vaporized, and means for moving the fluid along a flow path over the boiler surface whereupon the fluid starts in the liquid phase and progressively changes from the liquid phase through a multiphase mixture ranging from 0% to 100% vapor and finally ends in the superheated vapor phase, a method for converting from stable nucleate boiling heating to stable combined convective and film boiling heating without any unstable departure from nucleate boiling of the fluid as it moves along the boiler surface, comprising the step of injecting some of the same fluid as superheated vapor into the fluid moving along the flow path at a location proximate the boiler surface and in the region of the multiphase mixture near but upstream of where departure from nucleate boiling normally would occur, and in sufficient quantities to increase the multiphase mixture of the moving fluid by between 5% and 30% vapor almost instantaneously.
CONTRACTUAL ORIGIN OF THE INVENTION
The United States Government has rights in this invention pursuant to Contract No. W-31-109-ENG-38 between the U.S. Department of Energy and the University of Chicago representing Argonne National Laboratory.
US Referenced Citations (5)