Claims
- 1. A process for the removal of H.sub.2 S from an H.sub.2 S-containing gaseous stream comprising
- contacting the H.sub.2 S-containing gaseous stream with aqueous reactant solution in a contacting zone, at a temperature below the melting point of sulfur, the reactant solution containing ammonium ferric nitrilotriacetate chelate and ammonium ferrous nitrilotriacetate chelate, the ratio of the ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate chelate in the reactant solution being from about 0.2 to about 6, at least about 0.1 percent, molar basis, with respect to said ammonium ferric and ammonium ferrous nitrilotriacetate chelates, of aqueous ammonia, a total iron content of from about 0.5 percent to about 7 percent by weight, based on the weight of the solution and iron, and a total concentration of sodium and potassium ions present in the reactant solution less than that sufficient to precipitate sodium and potassium ferrous nitrilotriacetate chelate, and having a pH of from about 5 to about 8.5, under conditions to convert H.sub.2 S, producing a gaseous stream having reduced H.sub.2 S content and an aqueous admixture containing solid sulfur and additonal ammonium ferrous nitrilotriacetate chelate in solution.
- 2. The process of claim 1 wherein the aqueous admixture is regenerated for reuse by contacting said aqueous admixture with oxygen in a regeneration zone under conditions to convert ammonium ferrous nitrilotriacetate chelate to ammonium ferric nitrilotriacetate chelate, and producing regenerated aqueous reactant solution having a ratio of ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate of from about 0.5 to about 6; and
- the regenerated aqueous reactant solution is passed to the contacting zone for use as aqueous reactant solution therein.
- 3. The process of claim 2 wherein sulfur is removed at a locus in the process.
- 4. A process for the removal of H.sub.2 S from a sour gaseous stream comprising
- (a) contacting the sour gaseous stream with aqueous reactant solution in a contacting zone at a temperature below the melting point of sulfur, the reactant solution containing ammonium ferric nitrilotriacetate chelate and ammonium ferrous nitrilotriacetate chelate, the ratio of the ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate chelate in the reactant solution being from about 0.2 to about 6, at least about 0.1 percent, molar basis, with respect to said ammonium ferric and ammonium ferrous nitrilotriacetate chelates, of aqueous ammonia, a total iron content of from about 0.5 percent to about 7 percent by weight, based on the weight of the solution and iron, and a total concentration of sodium and potassium ions present in the reactant solution less than that sufficient to precipitate sodium and potassium ferrous nitrilotriacetate chelate, and having a pH of from about 5 to about 8.5, under conditions to convert H.sub.2 S, producing a gaseous stream having reduced H.sub.2 S content, and an aqueous admixture containing solid sulfur and additional ammonium ferrous nitrilotriacetate chelate in solution;
- (b) regenerating aqueous admixture by contacting said aqueous admixture with oxygen under conditions to convert ammonium ferrous nitrilotriacetate chelate to ammonium ferric nitrilotriacetate chelate, and producing regenerated aqueous reactant solution having a ratio of ammonium ferric nitrilotriacetate chelate to ammonium ferrous chelate of from about 0.5 to about 6; and
- (c) passing the regenerated aqueous reactant solution to the contacting zone for use as aqueous reactant solution therein.
- 5. The process of claim 4 wherein sulfur is removed at a locus in the process.
- 6. A process for the removal of H.sub.2 S from a sour gaseous stream comprising
- (a) contacting the sour gaseous stream with aqueous reactant solution in a contacting zone at a temperature below the melting point of sulfur, the reactant solution containing ammonium ferric nitrilotriacetate chelate and ammonium ferrous nitrilotriacetate chelate, the ratio of the ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate chelate in the reactant solution being from about 0.2 to about 6, at least about 0.1 percent, molar basis, with respect to said ammonium ferric and ammonium ferrous nitrilotriacetate chelates, of aqueous ammonia, a total iron content of from about 0.5 percent to about 7 percent by weight, based on the weight of the solution and iron, and a total concentration of sodium and potassium ions present in the reactant solution less than that sufficient to precipitate sodium and potassium ferrous nitrilotriacetate chelate, and having a pH of from about 5 to about 8.5, under conditions to convert H.sub.2 S, producing a gaseous stream having reduced H.sub.2 S content, and an aqueous admixture containing solid sulfur and additional ammonium ferrous nitrilotriacetate chelate in solution;
- (b) removing aqueous admixture from the contacting zone and removing sulfur from at least a portion of said admixture;
- (c) regenerating aqueous admixture by contacting said aqueous admixture with oxygen in a regeneration zone under conditions to convert ammonium ferrous nitrilotriacetate chelate to ammonium ferric nitrilotriacetate chelate, and producing regenerated aqueous reactant solution having a ratio of ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate of from about 0.5 to about 6;
- (d) passing regenerated aqueous reactant solution to the contacting zone for use as aqueous reactant solution therein.
- 7. A process for the removal of H.sub.2 S from a sour gaseous stream comprising
- (a) contacting the sour gases stream with aqueous reactant solution in a contacting zone at a temperature below the melting point of sulfur, the reactant solution containing ammonium ferric nitrilotriacetate chelate and ammonium ferrous nitrilotriacetate chelate, the ratio of the ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate chelate in the reactant solution being from about 0.5 to about 6, at least about 0.1 percent, molar basis, with respect to said ammonium ferric and ammonium ferrous nitrilotriacetate chelates, of aqueous ammonia, a total iron content of from about 1.0 percent to about 7 percent by weight, based on the weight of the solution and iron, and a total concentration of sodium and potasium ions present in the reactant solution less than that sufficient to precipitate sodium or potassium ferrous nitrilotriacetate chelate, and having a pH of from about 5 to about 8.5, under conditions to convert H.sub.2 S, producing a gaseous stream having reduced H.sub.2 S content, and aqueous admixture containing solid sulfer and additional ammonium ferrous nitrilotriacetate chelate in solution;
- (b) removing aqueous admixture from the contacting zone and removing sulfur from at least a portion of said admixture, producing an aqueous admixture having a reduced sulfur content;
- (c) regenerating aqueous admixture having a reduced sulfur content from step (b) by contacting said aqueous admixture with oxygen in a regeneration zone under conditions to convert ammonium ferrous nitrilotriacetate chelate to ammonium ferric nitrilotriacetate chelate, and producing regenerated aqueous reactant solution having a ratio of ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate of from about 0.5 to about 6;
- (d) passing regenerated aqueous reactant solution to the contacting zone for use as aqueous reactant solution therein.
- 8. The process of claim 7 wherein the stream from which the H.sub.2 S is removed is selected from naturally occurring gases, synthesis gases, process gases, and fuel gases.
- 9. The process of claim 7 wherein the sour gaseous stream is natural gas, a stream derived from the gasification of coal or a liquid hydrocarbon, or a stream comprising CO.sub.2.
- 10. A process for the removal of H.sub.2 S from a sour gaseous stream employing an aqueous reactant solution containing degradable iron chelates comprising
- (a) contacting the sour gaseous stream with aqueous reactant solution in a contacting zone at a temperature below the melting point of sulfur, the reactant solution containing ammonium ferric nitrilotriacetate chelate and ammonium ferrous nitrilotriacetate chelate, the ratio of the ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate chelate in the reactant solution being from about 0.5 to about 6, at least about 0.1 percent, molar basis, with respect to said ammonium ferric and ammonium ferrous nitrilotriacetate chelates, of aqueous ammonia, a total iron content of from about 1.0 percent to about 7 percent by weight, based on the weight of the solution and iron, and a total concentration of sodium and potassium ions present in the reactant solution less than that sufficient to precipitate sodium or potassium ferrous nitrilotriacetate chelate, and having a pH of from about 5 to about 8.5, under conditions to convert H.sub.2 S, producing a gaseous stream having a reduced H.sub.2 S content, and an aqueous admixture containing solid sulfur and an increased concentration of ferrous nitrilotriacetate chelate in solution;
- (b) removing aqueous admixture from the contacting zone and regenerating aqueous admixture by contacting admixture to be regenerated with oxygen in a regeneration zone under conditions to convert ferrous nitrilotriacetate chelate in the admixture to ferric nitrilotriacetate chelate, and producing regenerated aqueous reactant solution containing sulfur and having a ratio of ferric nitrilotriacetate chelate to ferrous nitrilotriacetate chelate of from 0.5 to 6;
- (c) removing regenerated aqueous reactant solution from the regeneration zone, and removing sulfur from at least a portion of said admixture, producing a regenerated reactant solution having reduced sulfur content;
- (d) passing regenerated reactant solution having reduced sulfur content from step (c) to the contacting zone for use as aqueous reactant solution therein.
- 11. The process of claim 4 wherein the stream from which the H.sub.2 S is removed is selected from naturally occurring gases, synthesis gases, process gases, and fuel gases.
- 12. The process of claim 6 wherein ammonium hydroxide or ammonium carbonate is added to maintain pH in the contacting zone in a range of from 5 to 8.5.
- 13. The process of claim 10 wherein ammonium hydroxide or ammonium carbonate is added to maintain pH in the contacting zone in a range of from 5 to 8.5.
- 14. The process of claim 4 wherein the pH is maintained from 6 to 8.5.
- 15. The process of claim 10 wherein the pH is maintained from 6 to 8.5.
- 16. In a process for the removal of H.sub.2 S from an H.sub.2 S-containing gaseous stream by contacting the H.sub.2 S-containing gaseous stream with an aqueous reactant solution containing ferric nitrilotriacetate chelate and ferrous nitrilotriacetate chelate, whereby H.sub.2 S is oxidized to elemental sulfur and a portion of the ferric nitrilotriacetate chelate is reduced to ferrous nitriloacetate chelate, the improvement which comprises
- utilizing an aqueous reactant solution having a pH of from about 5 to about 8.5 and containing (1) ammonium ferric nitrilotriacetate chelate and ammonium ferrous nitrilotriacetate chelate in a ratio of from about 0.2 to about 6, the total iron content of the aqueous reactant solution being from about 0.5 percent to about 7 percent by weight, based on the weight of the iron and the solution; and (2) at least about 0.1 percent, molar basis, with respect to said ammonium ferric and ammonium ferrous nitrilotriacetate chelates, of aqueous ammonia, the concentration of sodium and potassium ions present in the aqueous reactant solution being less than the sufficient to precipitate sodium or potassium ferrous nitrilotriacetate chelate.
- 17. The improved process of claim 16 wherein the ratio of ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate chelate is from about 0.5 to about 6.
- 18. The improved process of claim 17 wherein the total iron content of the aqueous reactant solution is from about 1 to about 7 percent by weight.
- 19. The improved process of claim 16 wherein the pH of the aqueous reaction solution is 6.5 to about 8.5.
- 20. The improved process of claim 19 wherein the ratio of ammonium ferric nitrilotriacetate chelate to ammonium ferrous nitrilotriacetate is from about 0.5 to about 6.
- 21. The improved process of claim 16 where the pH is maintained by the addition of ammonium hydroxide or ammonium carbonate.
- 22. The process of claim 17 wherein the pH is maintained by the addition of ammonium hydroxide or ammonium carbonate.
- 23. The process of claim 18 wherein the pH is maintained by the addition of ammonium hydroxide or ammonium carbonate.
- 24. The process of claim 19 wherein the pH is maintained by the addition of ammonium hydroxide or ammonium carbonate.
- 25. The process of claim 20 wherein the pH is maintained by the addition of ammonium hydroxide or ammonium carbonate.
- 26. In a process for the removal of H.sub.2 S from an H.sub.2 S-containing gaseous stream by contacting the H.sub.2 S-containing gaseous stream with an aqueous reactant solution containing ferric nitrilotriacetate chelate and ferrous nitrilotriacetate chelate, whereby H.sub.2 S is oxidized to elemental sulfur and a portion of the ferric nitrilotriacetate chelate is reduced to ferrous nitrilotriacetate chelate, the improvement which comprises
- utilizing an aqueous reactant solution having a pH of from about 5 to about 8.5 and containing ammonium ferric nitrilotriacetate chelate and ammonium ferrous nitrilotriacetate chelate in a ratio of from about 0.2 to about 6, a total iron content of from about 0.5 percent to about 7 percent by weight, based on the weight of the solution and iron, and at least about 0.1 percent, molar basis, with respect to said ammonium ferric and ammonium ferrous nitrilotriacetate chelates, of aqueous ammonia, said reactant solution being at least substantially free from any precipitated sodium or potassium ferrous nitrilotriacetate chelate.
- 27. The improved process of claim 26, wherein the total iron content of the aqueous reactant solution is from about 1 to about 7 percent by weight.
- 28. The improved process of claim 27 wherein the pH of the aqueous reactant solution is from 6.5 to about 8.5.
- 29. The process of claim 26 wherein the pH is maintained while regenerating at from about 7 to about 8.5.
Parent Case Info
This is a continuation of application Ser. No. 769,196, filed 8/23/85, now abandoned.
US Referenced Citations (30)
Foreign Referenced Citations (4)
Number |
Date |
Country |
832323 |
Feb 1976 |
BEX |
6501178 |
Jul 1965 |
NLX |
999800 |
Mar 1965 |
GBX |
999799 |
Jul 1965 |
GBX |
Non-Patent Literature Citations (3)
Entry |
Chemical Abstracts, vol. 73, 38295v, Removing Hydrogen Sulfide from Gases Containing Oxygen, Matys et al. |
Levenspiel, Chemical Reaction Engineering, pp. 99-118 (May, 1967). |
Derwent Publication 68536-RD211031 Priority, Oct. 20, 1981, published 11-10-81. |
Continuations (1)
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Number |
Date |
Country |
Parent |
769196 |
Aug 1985 |
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