Claims
- 1. In a process for improving the sulphur yield of a complex producing sulfur from a sour gas containing H.sub.2 S, the complex comprising (1) a sulfur plant into which the sour gas is introduced together with a controlled quantity of a gas containing free oxygen and in which a controlled oxidation of the H.sub.2 S in the sour gas by means of the oxygen in the gas containing free oxygen is performed to produce sulphur and at the exit of which there is discharged a residual gas containing steam and, in an overall quantity of approximately between 0.2 and 6% by volume, sulphur compounds comprising H.sub.2 S, SO.sub.2 and at least one of the derivatives COS and CS.sub.2, (2) an oxidation and hydrolysis unit in which the residual gas originating from the sulphur plant is brought into contact with a catalyst for hydrolysis of the compounds: COS and CS.sub.2 to H.sub.2 S while operating at a sufficient temperature to produce a hydrolyzed residual gas containing H.sub.2 and SO.sub.2 and substantially free from COS and CS.sub.2 and finally (3) a purification unit through which the residual gas originating from the oxidation and hydrolysis unit is passed after the temperature of the said gas has been brought to the value required for its passage through the purification unit and while maintaining the molar ratio H.sub.2 S:SO.sub.2 in the residual gas entering the purification unit at a value substantially equal to 2:1, and the compounds H.sub.2 S and SO.sub.2 which it contains being made to react together to form sulphur and to obtain a purified residual gas at the exit of the purification unit, the improvement which comprises (a) maintaining the H.sub.2 S:SO.sub.2 molar ratio in the residual gas originating from the sulphur plant and entering the oxidation and hydrolysis unit at a value equal to or higher than 2:1 by varying the ratio of the flow rates of sour gas and of gas containing free oxygen which are introduced into the sulphur plant; (b) introducing a second gas stream containing free oxygen into the gas stream from the sulfur plant entering the oxidation and hydrolysis unit and oxidizing H.sub.2 S to SO.sub.2 and sulphur in the unit by contacting the gas stream with a catalyst for oxidation of the H.sub.2 S; and (c) maintaining the H.sub.2 S:SO.sub.2 molar ratio in the residual gas entering the purification unit at a value substantially equal to 2:1 by varying the flow rate of the gas stream containing free oxygen introduced into the oxidation and hydrolysis unit.
- 2. Process according to claim 1, wherein the reactions of oxidation of H.sub.2 S and of hydrolysis of the compounds COS and CS.sub.2 in the oxidation and hydrolysis unit are carried out at temperatures of between 180.degree. C. and 700.degree. C.
- 3. Process according to claim 1 wherein the residence time of the reaction mixture containing the residual gas originating from the sulphur plant and the second gas stream containing free oxygen in contact with the catalyst present in the oxidation and hydrolysis unit, expressed under normal conditions of pressure and temperature, ranges from 0.5 to 10 seconds and more particularly from 1 to 6 seconds.
- 4. Process according to claim 1, wherein the residual gas originating from the sulphur plant and the second gas stream containing free oxygen are delivered to the oxidation and hydrolysis unit either separately or in the form of a mixture.
- 5. Process according to claim 1, wherein the oxidation and hydrolysis unit contains a catalyst for simultaneously promoting oxidation of H.sub.2 S with oxygen to SO.sub.2 and hydrolysis of the compounds COS and CS.sub.2 to H.sub.2 S.
- 6. Process according to claim 5, wherein the catalyst present in the oxidation and hydrolysis unit contains at least 50% by weight of an activated alumina.
- 7. Process according to claim 6, wherein the said catalyst consists of an activated alumina.
- 8. Process according to claim 6 wherein the alumina-based catalyst present in the oxidation and hydrolysis unit has a specific surface, determined by the BET method, ranging from 5 m.sup.2 /g to 400 m.sup.2 /g
- 9. A process according to claim 5, wherein the catalyst present in the oxidation and hydrolysis unit is selected from the group consisting of a) catalysts resulting from the combination of at least one compound of a metal chosen from Fe, Ni, Co, Cu, Zn, Cr and Mo with an alumina and/or silica support and b) catalysts resulting from the combination of at least one compound of a metal chosen from Fe, Cu, Cd, Zn, Cr, Mo, W, V, Co, Ni and Bi with a silica and/or titanium oxide support or a support comprising a heat stabilized activated alumina and c) catalysts resulting from the combination of at least one compound of a metal selected from Fe, Cu, Cd, Zn, Cr, Mo, W, V, Co, Ni and Bi and at least one compound of a noble metal selected from the group consisting of Pd, Pt, Ir and Rh with a silica and/or titanium oxide support or heat-stabilized activated alumina.
- 10. Process according to claim 5, wherein the catalyst present in the oxidation and hydrolysis unit contains titanium oxide.
- 11. Process according to claim 5, wherein the catalyst present in the oxidation and hydrolysis unit contains titanium oxide and a sulphate of an alkaline-earth metal chosen from Ca, Sr, Ba and Mg.
- 12. Process according to claim 11, wherein the weight proportion of titanium oxide, expressed as TiO.sub.2, to the weight proportion of alkaline-earth metal sulphate in the catalyst, in the calcined state, ranges from 99:1 to 60:40.
- 13. Process according to claim 10, wherein the catalyst containing titanium oxide has a specific surface, measured by the BET method, of between 5 m.sup.2 /g and 400 m.sup.2 /g.
- 14. Process according to claim 1, wherein the H.sub.2 S:SO.sub.2 molar ratio in the residual gas originating from the sulphur plant and delivered to the oxidation and hydrolysis unit has a value higher than 2:1 which is proportionately higher the lower the H.sub.2 S content of the residual gas originating from the sulphur plant, and does not result, during the oxidation of H.sub.2 S in the oxidation and hydrolysis unit, in a temperature rise liable to damage the ,catalyst present in the said unit.
- 15. Process according to one of claim 1, wherein the maintenance of the H.sub.2 S:SO.sub.2 molar ratio at the desired value in the residual gas originating from the sulphur plant and delivered to the oxidation and hydrolysis unit is obtained by keeping constant the flow of sour gas introduced into the sulphur plant and by varying the flow of the gas containing free oxygen introduced into the said sulphur plant.
- 16. Process according to claim 15, wherein the maintenance of the said H.sub.2 S:SO.sub.2 molar ratio at the chosen value equal to or higher than 2:1 is obtained by analysing the residual gas originating from the sulphur plant and delivered to the oxidation and hydrolysis unit to determine its molar contents of H.sub.2 S and SO.sub.2 and by producing, starting with the said contents, a quantity representing the instantaneous value of the said H.sub.2 S:SO.sub.2 molar ratio and then by establishing a quantity representing the correction flow rate of the second gas containing free oxygen to bring the said instantaneous value to the chosen value and by employing the quantity thus determined to adjust the flow of the gas containing free oxygen which is introduced into the sulphur plant.
- 17. A process according to claim 1 wherein the maintenance of the H.sub.2 S:SO.sub.2 molar ratio at the value of 2:1 in the oxidized and hydrolyzed residual gas entering the purification unit is obtained by analyzing the residual gas to determine a molar content of H.sub.2 S and SO.sub.2 and producing a quantity representing the instantaneous value of the H.sub.2 S:SO.sub.2 molar ratio; generating a signal representative of a flow rate of the second gas stream containing free oxygen to bring the instantaneous value of the molar rate of H.sub.2 S:SO.sub.2 to the value of 2:1 and by employing the signal to adjust the flow of the free oxygen containing second gas stream introduced into the oxidation and hydrolysis unit.
- 18. Process according to claim 1, wherein the reactions of oxidation of H.sub.2 S and of hydrolysis of the compounds COS and CS.sub.2 in the oxidation and hydrolysis unit are carried out at temperatures of between 250.degree. C. and 400.degree. C.
- 19. Process according to claim 6 wherein the alumina-based catalyst present in the oxidation and hydrolysis unit has a specific surface, determined by the BET method, ranging from 40 m.sup.2 /g to 250 m.sup.2 /g.
- 20. Process according to claim 11, wherein the weight proportion of titanium oxide, expressed as TiO.sub.2, to the weight proportion of alkaline-earth metal sulphate in the catalyst, in the calcined state, ranges from 99:1 to 80:20.
- 21. Process according to claim 10, wherein the catalyst containing titanium oxide has a specific surface, measured by the BET method, of between 10 m.sup.2 /g and 250 m.sup.2 /g.
- 22. A process for producing sulfur from a sour gas containing H.sub.2 S, with an improved sulfur yield, which comprises:
- (a) continuously introducing the sour gas and a first quantity of a gas containing free oxygen into a sulfur plant to produce sulfur and a residual gas stream containing from about 0.2% to about 6% by volume sulfur compounds comprising H.sub.2 S, SO.sub.2, in a molar ratio not less than about 2 and at least one of COS and CS.sub.2 ;
- (b) continuously introducing the residual gas stream from the sulfur plant and a second quantity of a gas containing free oxygen into a catalytic oxidation and hydrolysis zone wherein the residual gas stream and the second quantity of the free oxygen containing gas are maintained at a temperature sufficient to hydrolyze the COS and CS.sub.2 in the residual gas stream and to oxidize a portion of the H.sub.2 S to SO.sub.2 and sulfur, to provide a hydrolyzed gas stream, substantially free of COS and CS.sub.2, and containing H.sub.2 S and SO.sub.2 in a molar ratio of substantially 2:1;
- (c) continuously cooling and introducing the hydrolyzed gas stream from the oxidation and hydrolysis zone into a purification zone wherein the H.sub.2 S and SO.sub.2 in the hydrolyzed gas stream are reacted in the presence of a catalyst to form sulfur and a purified residual gas stream.
Priority Claims (1)
Number |
Date |
Country |
Kind |
89 13704 |
Jan 1989 |
FRX |
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Parent Case Info
This application is a continuation of application Ser. No. 688,534, filed Jun. 14, 1991, now abandoned.
US Referenced Citations (13)
Foreign Referenced Citations (4)
Number |
Date |
Country |
0094751 |
Nov 1983 |
EPX |
2632626 |
Dec 1989 |
FRX |
2143225 |
Feb 1985 |
GBX |
2192871 |
Jan 1988 |
GBX |
Continuations (1)
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Number |
Date |
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Parent |
688534 |
Jun 1991 |
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