Claims
- 1. A process for the removal of H.sub.2 S from a sour gaseous stream comprising:
- (A) in a contact zone, contacting said stream with an aqueous alkaline solution comprising an H.sub.2 S-selective absorbent, an alkali and at least one polyvalent metal chelate to produce hydrosulfide and/or sulfide,
- (1) all of said polyvalent metal in said chelate being present in a lower valence state, or
- (2) said polyvalent metal in said chelate being present in a mixture of lower valence state and higher valence state polyvalent metal chelates, said mixture containing said lower valence state polyvalent metal chelate in an amount which is greater than about five times the amount of said higher valence state polyvalent metal chelate, and thereafter
- (B) in an oxidation zone contacting said aqueous alkaline solution with an amount of said higher valence state polyvalent metal chelate comprising at least an amount effective to oxidize said hydrosulfide and/or sulfide present to sulfur without substantial oxidative degradation of said higher valence state polyvalent metal chelate.
- 2. A process of claim 1 further comprising:
- contacting said stream in a contact zone with an aqueous alkaline solution comprising an hydrogen sulfide selective absorbent and a mixture of a lower valence polyvalent metal chelate and a higher valence state polyvalent metal chelate to produce absorbed hydrogen sulfide, hydrosulfide and/or sulfide and sulfur, wherein said lower valence state polyvalent metal chelate is present in said mixture in a major amount and the amount of said lower valence polyvalent metal chelate in said mixture is greater than about 5 times the amount of said higher valence state polyvalent metal chelate and wherein said H.sub.2 S selective absorbent present in said aqueous alkaline solution is a physical solvent for H.sub.2.
- 3. The process of claim 2 wherein said H.sub.2 S selective absorbent is selected from the group consisting of tripotassium phosphate, tributyl phosphate, tetrahydrothiophene dioxide, dimethyldithhiodipropionate, N-methyl-2-pyrrolidone, N-methyl-pyrrolidone, N-formylmorpholine, N-formyldimethylmorpholine, N,N-dimethylformamide, sulfolane, propylene carbonate, dialkyl ethers of polyethylene glycols, and dimethyl or diethyl glycine salts and wherein said process is continuous and comprises:
- (A) feeding said aqueous alkaline solution from said oxidation zone to a sulfur recovery zone,
- (B) removing from said aqueous alkaline solution at least a portion of said sulfur and thereafter
- (C) feeding said aqueous alkaline solution comprising a mixture of a lower valence state polyvalent metal chelate, a higher valence state polyvalent metal chelate and a lean H.sub.2 S selective absorbent to said contact zone.
- 4. The process of claim 3 wherein said effective amount of said higher valence state polyvalent metal chelate in said oxidation zone is at least the stoichiometric amount required to oxidize said absorbed hydrogen sulfide, hydrosulfide and/or sulfide to sulfur.
- 5. The process of claim 3 wherein the amount of said higher valence polyvalent metal chelate fed to said contact zone is an amount up to or equal to or greater than about the stoichiometric amount required to convert said H.sub.2 S present in said sour gaseous stream to sulfur and wherein said polyvalent metal chelate is a coordination complex in which said polyvalent metal forms a chelate with at least one of an acid selected from the group consisting of an amino carboxylic acid, an amino polycarboxylic acid, a polyamino carboxylic acid, and a polyamino polycarboxylic acid.
- 6. The process of claim 4 wherein said contact zone and said oxidation zone are in the same vessel, said oxygen containing gas is air and wherein said sour gaseous stream is selected from natural gas, a hydrocarbon stream, synthesis gases, process gases and fuel gases.
- 7. The process of claim 6 wherein said amino polycarboxylic acid is represented by the formula:
- (A).sub.3-n N--B.sub.n
- wherein n is two or three; B is a lower alkyl carboxylic acid group; and A is a lower alkyl or hydroxyalkyl group.
- 8. The process of claim 6 wherein said polyamino polycarboxylic acid is represented by the formula: ##STR3## wherein X is selected from a lower alkyl carboxylic acid group, a lower alkyl group, a hydroxyalkyl group, and ##STR4## and wherein two to four of the X groups are lower alkyl carboxylic acid groups, zero to two of the X groups are lower alkyl groups, hydroxyalkyl groups, or ##STR5## and R is a divalent organic group.
- 9. The process of claim 7 wherein said amino carboxylic acid is selected from the group consisting of amino acetic acids (1) derived from ammonia or 2-hydroxy alkyl amines, or (2) derived from ethylene diamine, diethylene triamine, 1,2-propylene diamine, or 1,3-propylene diamine, or (3) derived from amino acetic acid derivatives of cyclic 1,2-diamines.
- 10. The process of claim 9 wherein said amino polycarboxylic acid is selected from the group consisting of nitrilo triacetic acid, and 2-hydroxyethyl ethylenediamine tetraacetic acid and ethylene diamine tetraacetic acid.
- 11. The process of claim 10 wherein said metal forming said coordination complex with said amino polycarboxylic acid is selected from the group consisting of iron, manganese, copper, nickel, chromium, cobalt, tin, vanadium, platinum, palladium, molybdenum, and mixtures thereof.
- 12. The process of claim 11 wherein said metal is iron.
Parent Case Info
This application is a continuation-in-part of copending application Ser. No. 857,863, filed May 1, 1986 pending.
US Referenced Citations (9)
Foreign Referenced Citations (2)
| Number |
Date |
Country |
| 186235 |
Jul 1986 |
EPX |
| 999800 |
Jul 1965 |
GBX |
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
857863 |
May 1986 |
|