Claims
- 1. A method for removing fluorine gas from a selected environment, comprising the steps of:
(a) contacting the fluorine gas from the environment with a selected quantity of water, thereby to generate an acidic solution of hydrofluoric acid; and (b) contacting said acidic solution of hydrofluoric acid with an ion-exchange resin having an active state operative to exchange selected ions therein for fluoride ions in said acidic solution when in contact therewith.
- 2. A method according to claim 1 wherein the step of contacting the fluorine gas with said selected quantity of water includes contacting a continuous stream of water with a continuous stream of fluorine gas.
- 3. A method according to claim 1 wherein the step of contacting the fluorine gas with said selected quantity of water is accomplished by injecting said fluorine gas into said water.
- 4. A method according to claim 1 wherein the selected environment includes silica particles, and including the step of filtering said solution of hydrofluoric acid through a porous strong base anion resin thereby to remove silica particles disposed in said solution.
- 5. A method according to claim 1 wherein the step of contacting said solution with said ion-exchange resin is accomplished by passing said solution of hydrofluoric acid through a resin vessel in which said ion-exchange resin is disposed.
- 6. A method according to claim 1 wherein said ion-exchange resin is selected from the group consisting of weak-base anion exchange resins and strong base anion exchange resins.
- 7. A method according to claim 6 wherein said ion-exchange resin is selected from the group consisting of crosslinked poly-4-vinylpyridine resins and derivatives of crosslinked poly-4-vinylpyridine resins.
- 8. A method according to claim 7 wherein said ion-exchange resin is selected from the group consisting of Reillex™ 402 and ReilleX™ 425.
- 9. A method according to claim 1 including the step of doping said ion-exchange resin with an electron donor catalyst.
- 10. A method according to claim 9 wherein said catalyst is selected from the group consisting of palladium or titanium.
- 11. A method according to claim 9 wherein the step of doping is accomplished by contacting said ion-exchange resin with a salt of said catalyst and thereafter contacting said ion-exchange resin with an oxidizing agent.
- 12. A method according to claim 1 wherein said ion-exchange resin is capable of chemically shifting between said active state and an exhausted state operative to exchange the fluoride ions in said ion-exchange resin for the selected ions contained in a regenerant solution when in contact therewith, and including the step of regenerating said ion-exchange resin by contacting said ion-exchange resin with the regenerant solution thereby to form a selected regenerant waste product containing the fluoride ions.
- 13. A method according to claim 12 wherein said regenerant solution is an ammonium hydroxide solution.
- 14. A method according to claim 12 including the step of rinsing said ion-exchange resin with a rinse solution after the step of regenerating said ion-exchange resin.
- 15. A method according to claim 14 wherein said rinse solution is de-ionized water.
- 16. A method according to claim 14 including the step of replenishing said regenerant solution with said rinse solution after the step of rinsing said ion-exchange resin.
- 17. A method according to claim 12 including the step of collecting said regenerant waste product in a storage vessel.
- 18. A method according to claim 1 including the step of cooling said solution of hydrofluoric acid prior to the step of contacting said solution of hydrofluoric acid with said ion-exchange resin.
- 19. A method according to claim 18 wherein the step of cooling is accomplished by contacting said solution of hydrofluoric acid with a heat-exchange apparatus.
- 20. A method according to claim 1 including the step of adding a reducing agent to said solution of hydrofluoric acid prior to the step of contacting said solution of hydrofluoric acid with said ion-exchange resin.
- 21. An apparatus for use in removing fluorine from a selected environment, comprising:
(a) an inlet in communication with the selected environment and operative to provide fluorine gas therefrom; (b) a conduit in communication with said inlet and adapted to receive fluorine gas therefrom, said conduit operative to transport an aqueous solution therethrough; (c) a resin vessel in fluid communication with said conduit and operative to receive the aqueous solution therefrom; and (d) an ion-exchange resin disposed in said resin vessel and adapted to contact said aqueous solution, said ion-exchange resin having an active state operative to exchange selected ions therein for fluoride ions in said aqueous solution at an acidic pH when in contact therewith.
- 22. An apparatus according to claim 21 wherein said inlet includes an injector operative to inject the fluorine gas into said conduit.
- 23. An apparatus according to claim 22 wherein said injector is selected from the group consisting of a vacuum pump and an eductor.
- 24. An apparatus according to claim 21 wherein said resin vessel receives said aqueous solution in a fluid compartment thereof, said resin vessel further including a chamber proximate to said fluid compartment and sized and adapted to permit a gas disposed in said aqueous solution to separate therefrom and enter said chamber.
- 25. An apparatus according to claim 24 wherein said chamber is in communication with a scrubber operative to receive the gas from said chamber.
- 26. An apparatus according to claim 21 wherein said ion-exchange resin is selected from the group consisting of weak-base anion exchange resins and strong base anion exchange resins.
- 27. An apparatus according to claim 26 wherein said ion-exchange resin is selected from the group consisting of crosslinked poly-4-vinylpyridine resins and derivatives of crosslinked poly-4-vinylpyridine resins.
- 28. An apparatus according to claim 27 wherein said ion-exchange resin is selected from the group consisting of Reillex™ 402 and Reillex™ 425.
- 29. An apparatus according to claim 28 wherein said ion-exchange resin is doped with an electron donor catalyst.
- 30. An apparatus according to claim 29 wherein said catalyst is selected from the group consisting of palladium or titanium.
- 31. An apparatus according to claim 21, wherein said ion-exchange resin is capable of chemically shifting between said active state and an exhausted state operative to exchange the fluoride ions in said ion-exchange resin for the selected ions contained in a regenerant solution when in contact therewith, said apparatus including a regenerant source vessel adapted to receive the regenerant solution, said regenerant source vessel in fluid communication with said resin vessel and operative to selectively provide the regenerant solution to said resin vessel.
- 32. An apparatus according to claim 31 wherein said regenerant source vessel is operative to selectively provide an ammonium hydroxide solution to said resin vessel.
- 33. An apparatus according to claim 31 including a rinse solution source in fluid communication with said resin vessel and operative to selectively provide a rinse solution to said resin vessel.
- 34. An apparatus according to claim 33 wherein said rinse solution source is operative to provide de-ionized water to said resin vessel.
- 35. An apparatus according to claim 31 including a regenerant waste outlet in fluid communication with said resin vessel and adapted to receive therefrom a regenerant waste solution containing fluoride ions.
- 36. An apparatus according to claim 35 including a regenerant waste vessel in fluid communication with said regenerant waste outlet and sized and adapted to receive a selected quantity of the regenerant waste solution.
- 37. An apparatus according to claim 21 including a heat-exchange apparatus proximate to said conduit and operative to transfer thermal energy away from said conduit.
- 38. An apparatus according to claim 21 including a reducing agent source in communication with said conduit and operative to selectively introduce a reducing agent into said conduit.
- 39. An apparatus according to claim 38 wherein said reducing agent source is operative to inject said reducing agent into said conduit via a positive displacement metering pump.
- 40. An apparatus for use in removing fluorine from a selected environment, comprising:
(a) an inlet in communication with the selected environment and operative to provide fluorine gas therefrom; (b) a conduit in communication with said inlet and adapted to receive fluorine gas therefrom, said conduit operative to transport an aqueous solution therethrough; (c) a first resin vessel in fluid communication with said conduit and selectively operative to receive the aqueous solution therefrom; (d) a first ion-exchange resin disposed in said first resin vessel and adapted to contact said aqueous solution, said first ion-exchange resin having an active state operative to exchange selected ions therein for fluoride ions in said aqueous solution when in contact therewith and an exhausted state operative to exchange the fluoride ions in said ion-exchange resin for the selected ions contained in a regenerant solution when in contact therewith. (e) a second resin vessel in fluid communication with said conduit and selectively operative to receive the aqueous solution therefrom; (f) a second ion-exchange resin disposed in said second resin vessel and adapted to contact said aqueous solution, said ion-exchange resin having an active state operative to exchange selected ions therein for fluoride ions in said aqueous solution when in contact therewith and an exhausted state operative to exchange the fluoride ions in said ion-exchange resin for the selected ions contained in the regenerant solution when in contact therewith; (g) a rinse solution source in fluid communication with said first resin vessel and said second resin vessel and operative to selectively provide a rinse solution respectively to said first resin vessel and said second resin vessel; (h) a regenerant source vessel adapted to receive the regenerant solution, said regenerant source vessel in fluid communication with said first resin vessel and said second resin vessel and operative to selectively provide the regenerant solution respectively to said first resin vessel and said second resin vessel; (i) a regenerant waste outlet in fluid communication with said first resin vessel and said second resin vessel and adapted to selectively receive from said respective first and second resin vessels a regenerant waste solution containing fluoride ions; (j) a valve system comprising a plurality of valves associated with a plurality of fluid pathways interconnecting selected ones of said inlet, said conduit, said first resin vessel, said second resin vessel, said regenerant source vessel, said rinse solution source and said regenerant waste outlet, whereby said valve system defines a first fluid pathway permitting fluid flow through said conduit and through said first resin vessel, a second fluid pathway permitting fluid flow from said regenerant source vessel through said second resin vessel and through said regenerant waste outlet, a third fluid pathway permitting fluid flow from said rinse solution source through said second ion-exchange resin and to said regenerant source vessel, a fourth fluid pathway permitting fluid flow through said conduit and through said second resin vessel, a fifth fluid pathway permitting fluid flow from said regenerant source vessel through said first resin vessel and through said regenerant waste outlet, a sixth fluid pathway permitting fluid flow from said rinse solution source through said first ion-exchange resin and to said regenerant source vessel, whereby in a first valve state fluid may flow along said first fluid pathway and said second fluid pathway, in a second valve state fluid may flow along said first fluid pathway and said third fluid pathway, in a third valve state fluid may flow along said fourth fluid pathway and said fifth fluid pathway, and in a fourth valve state fluid may flow along said fourth fluid pathway and said sixth fluid pathway.
- 41. An apparatus according to claim 40 wherein said valve system includes a fifth valve state whereby fluid may flow only along said first fluid pathway, and a sixth valve state whereby fluid may flow only along said fourth fluid pathway.
- 42. An apparatus according to claim 40 including a controller operative to move said valve system into its respective states.
- 43. An apparatus according to claim 42 including a pH monitor operative to generate a signal when said pH monitor measures a target pH value of the aqueous solution, said controller being operative to move said valve system into its respective states in response to said signal.
- 44. An apparatus for use in removing fluorine from a selected environment, comprising:
(a) a resin vessel; (b) an inlet in communication with the selected environment and said resin vessel, said inlet operative to provide fluorine gas therefrom to said resin vessel; (c) an ion-exchange resin disposed in said resin vessel, said ion-exchange resin containing a selected volume percentage of water and having an active state operative to exchange selected ions therein for fluoride ions generated by contact of said fluorine gas with said ion-exchange resin.
- 45. An apparatus according to claim 44 including a heat-exchange apparatus proximate to said resin vessel and operative to transfer thermal energy away from said conduit.
- 46. An apparatus according to claim 45 wherein said heat-exchange apparatus includes a cooling jacket sized and adapted to contact a major portion of an outer surface of said resin vessel.
- 47. An apparatus according to claim 44 wherein said ion-change resin is resistant to oxidation by fluorine gas.
- 48. An apparatus for use in removing fluorine from a selected environment, comprising:
(a) an inlet in communication with the selected environment and operative to provide fluorine gas therefrom; (b) a scrubber in communication with said inlet and adapted to receive fluorine gas therefrom, said scrubber operative to contact said fluorine gas with water thereby to form an acidic solution of hydrofluoric acid; (c) a resin vessel in fluid communication with said scrubber and operative to receive said acidic solution therefrom; and (d) an ion-exchange resin disposed in said resin vessel and adapted to contact said acidic solution, said ion-exchange resin having an active state operative to exchange selected ions therein for fluoride ions in said acidic solution when in contact therewith.
- 49. A method according to claim 1 wherein said acidic solution of hydrofluoric acid is at a pH of between 5 and 7.
- 50. A method for removing fluoride from an acidic solution containing fluoride ions and silica particles, comprising:
(a) filtering said acidic solution through a porous strong base anion resin thereby to remove silica particles disposed in said acidic solution; and (b) contacting said acidic solution with a crosslinked poly-4-vinylpyridine resin or derivative thereof thereby to exchange selected ions therein for fluoride ions in said acidic solution.
- 51. A method according to claim 50 wherein said silica particles exist in said acidic solution as fluorosilicates, and wherein said porous strong base anion resin preferentially absorbs fluorosilicates over fluoride ions.
- 52. A method according to claim 50 wherein said porous strong base anion resin is in the chloride form prior to the step of filtering.
- 53. A method according to claim 50 wherein said crosslinked poly-4-vinylpyridine resin or derivative thereof is in the OH form prior to the step of contacting said acidic solution therewith.
- 54. A method for removing fluoride from an acidic solution containing fluoride ions, comprising:
(a) doping an ion-exchange resin with an electron donor catalyst, wherein said ion-exchange resin is one having an active state operative to exchange selected ions therein for fluoride ions in said acidic solution when in contact therewith; and (b) contacting said acidic solution with said ion-exchange resin.
- 55. A method according to claim 54 wherein said ion-exchange resin is a crosslinked poly-4-vinylpyridone resin or derivative thereof.
- 56. A method according to claim 54 wherein said catalyst is selected from palladium or titanium.
- 57. A method according to claim 54 wherein the step of doping is accomplished by contacting said ion-exchange resin with a salt of said catalyst and thereafter contacting said ion-exchange resin with an oxidizing agent.
- 58. A method for removing fluoride from an acidic solution containing fluoride ions and an agent selected from an oxidizing agent and a reducing agent, comprising contacting said acidic solution with an ion-exchange resin that includes a functional group resistant to attack by oxidizing and reducing agents, said ion-exchange resin having an active state operative to exchange selected ions therein for fluoride ions in said acidic solution when in contact therewith.
- 59. A method according to claim 58 wherein said ion-exchange resin includes pyridine functional groups.
- 60. A method according to claim 59 wherein said ion-exchange resin is selected from crosslinked poly-4-vinylpyridine resins and derivatives thereof.
- 61. A method according to claim 58 wherein said acidic solution contains an agent selected from OF2 and H2O2.
- 62. An apparatus according to claim 47 wherein said ion-exchange resin includes pyridine functional groups.
- 63. An apparatus according to claim 62 wherein said ion-exchange resin is selected from crosslinked poly-4-vinylpyridine resins and derivatives thereof.
- 64. A method for removing fluorine from a selected environment, comprising contacting an ion-exchange resin with fluorine gas, wherein said ion-exchange resin contains a selected volume percentage of water and has an active state operative to exchange selected ions therein for fluoride ions generated by contact of said fluorine gas with said ion-exchange resin.
- 65. A method according to claim 64 wherein said ion-exchange resin is resistant to oxidation by fluorine gas.
- 66. A method according to claim 65 wherein said ion-exchange resin includes pyridine functional groups.
- 67. A method according to claim 66 wherein said ion-exchange resin is selected from crosslinked poly-4-vinylpyridine resins and derivatives thereof.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/168,962, filed Dec. 3, 1999, and U.S. Provisional Application No. 60/177,827, filed Jan. 25, 2000.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US00/32726 |
12/1/2000 |
WO |
|