Claims
- 1. In a method for generating a spatially-limited convective reaction system between a reaction agent and a molten metal bath, the improvement comprising the step of:
- forming and applying liquid droplets, in a freely falling stream, as a liquid reaction agent so that at least a portion of the droplets penetrate into the surface of the molten bath to interact with the molten metal.
- 2. In a method for generating a spatially-limited convective reaction system between a reaction agent and a molten bath comprising molten slag, the improvement comprising the step of:
- blowing, in a freely falling stream, a liquid reaction agent as liquid droplets so that at least a portion of the droplets penetrate into the molten slag to interact therewith.
- 3. In a method for generating a spatially-limited convective reaction system between a reaction agent and a molten bath comprising molten slag, the improvement comprising the steps of:
- blowing, in a freely falling stream, a liquid reaction agent as liquid droplets so that at least a portion of the droplets penetrate into the molten slag; and
- guiding the freely falling stream by blowing a jacket gas about the stream.
- 4. In a method for generating a spatially-limited convective reaction system between a reaction agent and a molten metal bath, the improvement comprising the steps of:
- atomizing a liquid reaction agent into at least one stream of fine droplets;
- flowing a jacket gas about the stream of liquid reaction agent droplets; and
- applying, in a freely falling stream, the gas-jacketed stream of liquid reaction agent droplets so that at least a portion of the droplets penetrate into the molten metal bath to interact with the molten metal.
- 5. In a method for generating a spatially-limited convective reaction system between a reaction agent and a molten metal bath, the improvement comprising the steps of:
- atomizing a liquid hydrocarbon, as a liquid reaction agent, into at least one stream of fine droplets; and
- applying, in a freely falling steam, the stream of atomized fine droplets so that at least a portion of the droplets penetrate into the surface of the molten metal bath to interact with the molten metal.
- 6. The improved method of claim 5, wherein the step of atomizing a liquid hydrocarbon is further defined as:
- atomizing propane.
- 7. The improved method of claim 6, and further comprising the step of:
- flowing a water stream as a jacket about the stream of propane droplets to create a highly-reducing, reformed gas mixture upon incidence with the molten metal bath.
- 8. The improved method of claim 1, wherein the step of applying is further defined as:
- atomizing the liquid reaction agent into substreams of fine droplets; and
- concentrating the substreams into an essentially closed stream in which the droplets have substantially parallel flight paths and substantially equal velocities.
- 9. The improved method of claim 8, wherein the step of applying a further defined as:
- imparting a sufficiently high kinetic energy to the droplets that a part thereof penetrate into the molten bath.
- 10. The improved method of claim 9, wherein the step of concentrating is further defined as:
- guiding the substreams through a confining guide pipe.
- 11. The improved method of claim 1, and further comprising the step of:
- flowing a jacket gas about the stream of liquid reaction agent.
- 12. The improved method of claim 11, wherein the step of flowing a jacket gas is further defined as:
- flowing the jacket gas at a velocity approximately equal to the velocity of the liquid reaction agent.
- 13. The improved method of claim 11, wherein the step of flowing a jacket gas is further defined as:
- flowing the jacket gas at a velocity which is greater than the velocity of the liquid reaction agent.
- 14. The improved method of claim 1, wherein the step of applying is further defined as:
- applying a liquid reaction agent including liquid hydrocarbons.
- 15. The improved method of claim 11, wherein the steps of applying a liquid reaction agent and flowing a jacket gas are further defined as:
- applying a low boiling point liquid reaction agent; and
- flowing a water stream as the jacket gas.
- 16. The improved method of claim 11, wherein the steps of applying a liquid reaction medium and flowing a jacket gas are further defined as:
- applying propane as the liquid reaction agent; and
- flowing a water stream as the jacket gas.
- 17. The improved method of claim 1, wherein the step of applying is further defined as:
- forcing the liquid reaction agent through a nozzle to create a pressure in front of the nozzle in the range between 1 and 25 bar.
- 18. The improved method of claim 1, wherein the step of applying is further defined as:
- forcing the liquid reaction agent through a nozzle to create a pressure in front of the nozzle of approximately 15 bar.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2924761 |
Jun 1979 |
DEX |
|
Parent Case Info
This is a continuation of application Ser. No. 144,274, filed 4/28/80.
US Referenced Citations (5)
Continuations (1)
|
Number |
Date |
Country |
Parent |
144274 |
Apr 1980 |
|