Claims
- 1) a method of extending droplet half-life of liquid reagent droplets in a chemical reactor, the liquid droplets comprising at least one solvent and at least one solute in a droplet environment having a droplet environment temperature, wherein the droplet environment temperature is greater than the boiling point of the at least one solvent, comprising the step of:
a) increasing the relative vapor pressure of the at least one solvent in the droplet environment by injecting the solvent into the droplet environment at a predetermined location and at a predetermined rate such that the injected solvent disperses and evaporates in the reactor; thereby reducing the evaporation rate of the at least one solvent from the liquid droplets and increasing the half-life of the droplets.
- 2) The method of claim 1, further including the step of adjusting the solvent injection location and injection rate to retard reagent availability until the droplets reach the desired downstream reactor location.
- 3) The method of claim 1, further including the step of dispersing the at least one solvent in the droplet environment through the injection of high-velocity secondary air proximal to the solvent injection location.
- 4) The method of claim 3, wherein the high-velocity secondary air and solvent are injected in a co-axial manner.
- 5) The method of claim 3, wherein the high-velocity secondary air is injected in a coordinated, reinforcing, tangential manner.
- 6) A method of extending droplet half-life of liquid reagent droplets in a chemical reactor, the liquid droplets comprising at least one solvent and at least one solute in a droplet environment having a droplet environment temperature, wherein the droplet environment temperature is greater than the boiling point of the at least one solvent, comprising the step of:
a) increasing the relative vapor pressure of the at least one solvent in the droplet environment by injecting the solvent into the droplet environment at a predetermined location and at a predetermined rate such that the injected solvent disperses and evaporates in the reactor; b) dispersing the solvent with a high-velocity gas such that the injected solvent disperses and evaporates in the chemical reactor; thereby reducing the evaporation rate of the at least one solvent from the liquid droplets and increasing the half-life of the droplets.
- 7) The method of claim 6, further including the step of adjusting the solvent injection location and injection rate to retard reagent availability until the droplets reach the desired downstream reactor location.
- 8) The method of claim 6, wherein the high-velocity secondary air and solvent are injected in a co-axial manner.
- 9) The method of claim 6, wherein the high-velocity secondary air is injected in a coordinated, reinforcing, tangential manner.
- 10) A method of increasing the droplet half-life of water reagent droplets in a droplet environment having a droplet environment temperature within a combustion furnace having a combustion space, the water droplets comprising water and at least one reagent solute, the method comprising the steps of:
a) increasing the relative humidity of the droplets environment in the furnace through the injection of a humidifying agent; b) adjusting the injection location and injection rate of the humidifying agent to improve effectiveness of the reagent solute by increasing the efficiency of a reaction of the reagent within the furnace; thereby reducing the evaporation rate of the droplet and increasing the half-life of the droplets in the combustion furnace.
- 11) The method of claim 10, further including the step of reducing the droplet environment temperature by injecting a liquid humidifying agent.
- 12) The method of claim 10, further including the step of adjusting the humidification agent injection rate to retard reagent availability until the droplets reach the furnace location where the furnace temperature is less than about 2400 degrees F. (about 1300 degrees C.).
- 13) The method of claim 10, wherein the humidifying agent is selected from the group consisting of liquid water, steam and combinations thereof.
- 14) The method of claim 10, further including the step of dispersing the humidifying agent in the droplet environment through the injection of high-velocity secondary air.
- 15) The method of claim 14, wherein the high-velocity secondary air and humidifying agent are injected in a co-axial manner.
- 16) The method of claim 14, wherein the high-velocity secondary air is injected in a coordinated, reinforcing, tangential manner.
- 17) The method of claim 10, wherein the humidifying agent is injected at an injection point selected from the group consisting of prior to reagent droplet injection, proximal to reagent droplet injection, after reagent droplet injection, and combinations thereof.
- 18) The method of claim 10, wherein the water droplets contain at least one NOx-reducing reagent.
- 19) The method of claim 18, wherein the NOx-reducing reagent is selected from the group consisting of NH3-releasing reagents.
- 20) The method of claim 19, wherein the NOx-reducing reagent is urea.
- 21) The method of claim 20, wherein the urea is greater than about 20% aqueous urea w/w.
- 22) The method of claim 10, wherein the water droplets contain at least one SOx-reducing reagent.
- 23) The method of claim 22, wherein the SOx-reducing reagent is selected from the group consisting of bases.
- 24) The method of claim 23, wherein the SOx-reducing reagent is selected from the group consisting of alkaline carbonates, such as lime, limestone; hydrated lime; quick lime; soda, trona and combinations thereof.
- 25) The method of claim 10, further including the step of adjusting the humidification agent injection rate to retard reagent availability until the droplets are proximal to a catalyst.
- 26) A method for reducing NOx in a combustion furnace, the method steps comprising:
a) injecting water into the combustion space; b) injecting high-velocity air in the path of the injected water to disperse and evaporate the water; thereby humidifying and cooling a space in the combustion furnace to form a humidified space; c) injecting a NOx-reducing agent dissolved in water into the humidified space in the combustion furnace in a manner to form droplets, the droplets having an droplet environment and the droplet environment having a droplet environment temperature; wherein the humidification and cooling of the droplet environment extends the droplet half-life in the combustion furnace to permit the reagent to reach the desired reaction location in the furnace; thereby reducing the NOx emissions of the combustion furnace.
- 27) A method for reducing SOx in a combustion furnace, the method steps comprising:
a) injecting water into the combustion space; b) injecting high-velocity air in the path of the injected water to disperse and evaporate the water; thereby humidifying and cooling a space in the combustion furnace to provide a humidified and cooled space; c) injecting a SOx-reducing agent dissolved in water into the humidified space in the combustion furnace in a manner to form droplets, the droplets having a droplet environment; wherein the humidification and cooling of the droplet environment extends the droplet half-life in the combustion furnace to permit the reagent to reach the desired reaction location in the furnace; thereby reducing the SOx emissions of the combustion furnace.
Parent Case Info
[0001] This non-provisional utility patent application claims the benefit of one or more prior filed co-pending non-provisional applications; the present application is a Continuation-In-Part of application Ser. No. 10/459,789 and application Ser. No. 10/461,567, which are incorporated herein by reference in their entirety.
Continuation in Parts (2)
|
Number |
Date |
Country |
| Parent |
10461567 |
Jun 2003 |
US |
| Child |
10742260 |
Dec 2003 |
US |
| Parent |
10459789 |
Jun 2003 |
US |
| Child |
10742260 |
Dec 2003 |
US |