Claims
- 1. A process for removing hydrogen sulfide and ammonia from a reducing gas containing hydrogen sulfide and ammonia, which comprises contacting said reducing gas containing hydrogen sulfide and ammonia with a first removing agent at a temperature in the range of 450.degree.-700.degree. C., said first removing agent including at least one of nickel and nickel oxides or at least one of iron and iron oxides and being capable of converting hydrogen sulfide in the reducing gas to nickel sulfide or iron sulfide but being substantially incapable of decomposing ammonia at a temperature in the range of 450.degree.-700.degree. C., thereby converting hydrogen sulfide contained to nickel sulfide or iron sulfide and removing hydrogen sulfide from the gas, and removing less than 10% of the ammonia from the reducing gas, then contacting the reducing gas with a second removing agent at a temperature greater than 700.degree. C., said second removing agent including at least one of nickel and oxides and nitrides of nickel or at least one of iron and oxides and nitrides of iron and being capable of decomposing ammonia at a temperature greater than 700.degree. C., thereby decomposing ammonia and removing ammonia contained from the reducing gas.
- 2. A process according to claim 1, wherein the first removing agent includes at least one of nickel, nickel oxide, and dinickel trioxide, or at least one of iron, ferrous oxide, and ferric oxide, and the second removing agent includes at least one of nickel, nickel monoxide, dinickel trioxide, and nickel nitride, or at least one of iron, ferrous oxide, ferric oxide, and iron nitride.
- 3. A process according to claim 1, wherein said reducing gas is a synthetic fuel gas produced by gasification of a fossil fuel.
- 4. A process according to claim 1, wherein the reducing gas is contacted with said second removing agent at a temperature greater than 700.degree. C. and up to and including 900.degree. C.
- 5. A process according to claim 1, wherein, in removing said ammonia, the at least one of nickel and iron and oxides of nickel and oxides of iron is converted to nickel nitride or iron nitride, respectively.
- 6. A process for removing hydrogen sulfide and ammonia from a reducing gas containing hydrogen sulfide and ammonia, which comprises contacting said reducing gas containing hydrogen sulfide and ammonia with a first removing agent at a temperature in the range of 450.degree.-700.degree. C., said first removing agent including at least one of nickel and oxides of nickel or at least one of iron and oxides of iron and being capable of converting hydrogen sulfide contained in the reducing gas to nickel sulfide or iron sulfide but being substantially incapable of decomposing ammonia at a temperature in the range of 450.degree.-700.degree. C, thereby converting hydrogen sulfide contained to nickel sulfide or iron sulfide and removing hydrogen sulfide from the reducing gas, and removing less than 10% of the ammonia from the reducing gas, and then contacting the reducing gas with a second removing agent at a temperature greater than 700.degree. C., said second removing agent including at least one of nickel and oxides and nitrides of nickel or at least one of iron and oxides and nitrides of iron and being capable of decomposing ammonia at a temperature greater than 700.degree. C., thereby decomposing ammonia in the reducing gas and removing ammonia contained from the reducing gas, converting said ammonia to nickel nitride or iron nitride, regenerating the nickel sulfide or iron sulfide resulting from the removal of the hydrogen sulfide by oxidation and reusing the regenerated first removing agent in the removal of hydrogen sulfide from the reducing gas, and regenerating nickel nitride or iron nitride resulting from the removal of ammonia and reusing the regenerated second removing agent in the removal of ammonia from the reducing gas.
- 7. A process according to claim 6, wherein nickel nitride or iron nitride is regenerated by oxidation of said nickel nitride or iron nitride.
- 8. A process according to claim 6, wherein nickel nitride or iron nitride is regenerated by reduction of said nickel nitride or iron nitride.
- 9. A process according to claim 6, wherein the reducing gas is contacted with the second removing agent at a temperature greater than 700.degree. C. and up to and including 900.degree. C.
- 10. A process according to claim 6, wherein the reducing gas is a synthetic fuel gas produced by gasification of a fossil fuel.
- 11. A process for removing hydrogen sulfide and ammonia from a hot synthetic fuel gas synthesized by gasification of a fossil fuel, comprising the steps of:
- (a) contacting a hot synthetic fuel gas containing hydrogen sulfide and ammonia with a first removing agent including at least one of nickel, nickel monoxide and dinickel trioxide, or at least one of iron, ferrous oxide and ferric oxide, at a temperature in the range of 450.degree.-700.degree. C., said first removing agent being capable of converting the hydrogen sulfide contained in the reducing gas to nickel sulfide or iron sulfide but being substantially incapable of decomposing ammonia at a temperature in the range of 450.degree.-700.degree. C., thereby converting hydrogen sulfide contained to nickel sulfide or iron sulfide, respectively, removing hydrogen sulfide from the fuel gas, and removing less than 10% of the ammonia from the fuel gas;
- (b) contacting the hot synthetic fuel gas of step (a) with a second removing agent including at least one of nickel, nickel monoxide, dinickel trioxide, and nickel nitride, or at least one of iron, ferrous oxide, ferric oxide and iron nitride, at a temperature greater than 700.degree. C., said second removing agent being capable of decomposing ammonia at temperatures greater than 700.degree. C., thereby decomposing the ammonia contained in the fuel gas and removing the ammonia from the hot synthetic fuel gas, whereby at least a part of said second removing agent, after said decomposing, is nickel nitride or iron nitride; and
- (c) regenerating the nickel sulfide or iron sulfide of step (a) by oxidation and recycling the resulting nickel oxide or iron oxide for reuse according to step (a); and
- (d) regenerating nickel nitride or iron nitride resulting from step (b) to the second removing agent and recycling the regenerated second removing agent for reuse in step (b).
- 12. A process according to claim 11, wherein the first removing agent of step (a) is at least one of iron, ferrous oxide or ferric oxide.
- 13. A process according to claim 12, wherein the first removing agent is ferrous oxide or ferric oxide.
- 14. A process according to claim 11, wherein the second removing agent of step (b) is at least one of nickel, nickel monoxide, dinickel trioxide, and nickel nitride.
- 15. A process according to claim 14, wherein the second removing agent is at least one of nickel, nickel oxide and nickel nitride.
- 16. A process according to claim 14, wherein the nickel nitride resulting from step (b) is regenerated by reducing the nickel nitride by contacting the nickel nitride with a hydrogen-rich reducing gas at a temperature of at least 450.degree. C. and a high pressure.
- 17. A process according to claim 16, wherein the hydrogen-rich reducing gas is formed by contacting a portion of the hydrogen sulfide-free and ammonia-free synthetic fuel gas with steam, thereby reforming methane and converting carbon monoxide fractions of the synthetic fuel gas, whereby a hydrogen-rich reducing gas is obtained.
- 18. A process according to claim 14, wherein the nickel nitride resulting from step (b) is regenerated by oxidizing the nickel nitride in an oxygen-containing gas at a high temperature.
- 19. A process according to claim 18, wherein the oxygen-containing gas is air.
- 20. A process according to claim 11, wherein the regeneration of nickel nitride according to step (d) is by oxidation of nickel nitride to nickel oxide.
- 21. A process according to claim 11, wherein the regeneration of nickel nitride according to step (d) is by reduction of nickel nitride to nickel.
- 22. A process according to claim 11, wherein the hot synthetic fuel gas of step (a) is contacted with said second removing agent at a temperature greater than 700.degree. C. and up to and including 900.degree. C.
- 23. A process for removing hydrogen sulfide and ammonia from a hot synthetic fuel gas synthesized by gasification of a fossil fuel, comprising the steps of:
- (a) feeding a hot synthetic fuel gas containing hydrogen sulfide and ammonia so that said fuel gas contacts a first removing agent including at least one of nickel, nickel monoxide and dinickel trioxide, or at least one of iron, ferrous oxide and ferric oxide, at a temperature in the range of 450.degree.-700.degree. C., said first removing agent being capable of converting the hydrogen sulfide contained in the reducing gas to nickel sulfide or iron sulfide but being substantially incapable of decomposing ammonia at a temperature in the range of 450.degree.-700.degree. C., thereby converting hydrogen sulfide contained to nickel sulfide or iron sulfide, respectively, removing hydrogen sulfide from the fuel gas, and removing less than 10% of the ammonia from the fuel gas;
- (b) when the conversion of hydrogen sulfide is decreased when contacting said first removing agent, switching the feed of said hot synthetic fuel gas containing hydrogen sulfide and ammonia so that the fuel gas contacts another first removing agent including at least one of nickel, nickel monoxide and dinickel trioxide, or at least one of iron, ferrous oxide and ferric oxide, at a temperature in the range of 450.degree. C.-700.degree. C., said another first removing agent being capable of converting the hydrogen sulfide contained in the reducing gas to nickel sulfide or iron sulfide but being substantially incapable of decomposing ammonia at a temperature in the range of 450.degree.-700.degree. C., thereby converting hydrogen sulfide contained to nickel sulfide or iron sulfide, respectively, removing hydrogen sulfide from the fuel gas, and removing less than 10% of the ammonia from the fuel gas;
- (c) while the hot synthetic fuel gas contacts said another first removing agent, regenerating the nickel sulfide or iron sulfide resulting in step (a) by oxidizing said nickel sulfide or iron sulfide;
- (d) when the conversion of hydrogen sulfide is decreased when contacting said another first removing agent, switching the feed of said hot synthetic fuel gas containing hydrogen sulfide and ammonia so that said hot synthetic fuel gas contacts said first removing agent;
- (e) while the hot synthetic fuel gas contacts said first removing agent, regenerating the nickel sulfide or iron sulfide resulting from step (b) by oxidizing said nickel sulfide or iron sulfide;
- (f) feeding the hot synthetic fuel gas which has contacted said first or said another first removing agent so that the fuel gas contacts a second removing agent including at least one of nickel, nickel monoxide, dinickel trioxide, and nickel nitride, or at least one of iron, ferrous oxide, ferric oxide and iron nitride, at a temperature greater than 700.degree. C., said second removing agent being capable of decomposing ammonia at temperatures greater than 700.degree. C., thereby decomposing ammonia contained in the fuel gas and removing ammonia contained from the hot synthetic fuel gas, whereby at least a part of said second removing agent, after the decomposing, is nickel nitride or iron nitride;
- (g) when the removal of ammonia when contacting said second removing agent is decreased, switching the feed of the fuel gas so that the fuel gas contacts another second removing agent including at least one of nickel, nickel monoxide, dinickel trioxide, and nickel nitride, or at least one of iron, ferrous oxide, ferric oxide and iron nitride, at a temperature greater than 700.degree. C., said another second removing agent being capable of decomposing ammonia at temperatures greater than 700.degree. C., thereby continuing to decompose ammonia contained in the fuel gas and remove ammonia contained from the hot fuel gas, whereby at least a part of said another second removing agent, after the decomposing, is nickel nitride or iron nitride;
- (h) while the hot fuel gas contacts said another second removing agent, regenerating said second removing agent;
- (i) when the removal of ammonia when contacting said another second removing agent is decreased, switching the feed of the fuel gas so that the fuel gas contacts said second removing agent; and
- (j) while the fuel gas contacts said second removing agent, regenerating said another second removing agent.
- 24. A process according to claim 23, wherein said second and said another second removing agents are regenerated by reducing nickel nitride or iron nitride resulting after contact of said second and said another second removing agents with the fuel gas by contacting the nickel nitride or iron nitride with a hydrogen-rich reducing gas at a temperature of at least 450.degree. C. and a high pressure.
- 25. A process according to claim 24, wherein said hydrogen-rich reducing gas is formed by contacting a portion of the synthetic fuel gas, after removal of hydrogen sulfide and ammonia, with steam, thereby reforming methane and converting carbon monoxide fractions of the synthetic fuel gas, whereby a hydrogen-rich reducing gas is obtained.
- 26. A process according to claim 23, wherein said second and said another second removing agents are regenerated by oxidizing nickel nitride or iron nitride resulting after contact of said second and said another second removing agent with said fuel gas by contacting the nickel nitride or iron nitride with an oxygen-containing gas at a high temperature.
- 27. A process according to claim 23, wherein, before feeding the hot synthetic fuel gas which has contacted said first or said another first removing agent so that it contacts the second or another second removing agent, the hot synthetic fuel gas is passed through heating means, whereby it is heated to a temperature so that it contacts the second or another second removing agent at a temperature greater than 700.degree. C.
- 28. A process according to claim 23, wherein the hot synthetic fuel gas contacts said second or said another second removing agent at a temperature greater than 700.degree. C. and up to and including 900.degree. C.
- 29. A process according to any one of claims 1, 6, 11 or 23, wherein said first removing agent includes nickel or iron, and wherein said nickel or iron is formed on a support.
- 30. A process according to claim 29, wherein said second removing agent includes nickel or iron, and wherein said nickel or iron is formed on a support.
- 31. A process according to any one of claims 1, 6, 11 or 23, wherein said second removing agent includes nickel or iron, and wherein said nickel or iron is formed on a support.
- 32. A process according to claim 23, wherein said first and another first removing agents include nickel or iron, and wherein said nickel or iron is formed on a support.
- 33. A process according to claim 23 or 32, wherein said second and another second removing agents include nickel or iron, and wherein said nickel or iron is formed on a support.
Priority Claims (2)
Number |
Date |
Country |
Kind |
51-19902 |
Feb 1976 |
JPX |
|
51-19931 |
Feb 1976 |
JPX |
|
Parent Case Info
This is a continuation-in-part application of U.S. Ser. No. 771,911, filed Feb. 25, 1977, and now abandoned.
US Referenced Citations (7)
Non-Patent Literature Citations (1)
Entry |
Jacobson, "Encyclopedia of Chemical Reactions" vol. IV, Reinhold Publishing Co., New York, 1951, p. 103. |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
771911 |
Feb 1977 |
|