Claims
- 1. A process for providing nitrogen gas to a customer at a variable flow rate, but at a purity which is at least equal to P.sub.0 whatever the flow rate of said nitrogen gas, said process comprising providing a first source of high purity nitrogen gas having a purity which is greater than P.sub.1, with P.sub.1 >P.sub.0, and a second source of low purity nitrogen gas having a purity which is dependent upon its flow rate, said purity of said low purity nitrogen gas being lower than P.sub.0 when the flow rate thereof is about maximum flow rate and greater than P.sub.0 at lower flow rates, measuring the purity of the low purity nitrogen gas, comparing the measured purity of the low purity nitrogen gas to P.sub.0, and
- when the measured purity of the low purity nitrogen gas is less than P.sub.0, mixing the high purity nitrogen gas with the low purity nitrogen gas and delivering to the customer a gas mixture whose purity is greater than or at least equal to P.sub.0, and
- when the measured purity of the low purity nitrogen gas is greater than P.sub.0, directly delivering the low purity nitrogen gas to the customer, the flow rate of the nitrogen gas is adjusted as a function of need thereof.
- 2. The process according to claim 1, wherein the second source of low purity nitrogen gas comprises a nitrogen membrane fed by a pressurized source of nitrogen containing gas.
- 3. The process according to claim 2, wherein the pressurized source of nitrogen containing gas is an air compressor.
- 4. The process according to claim 1, wherein P.sub.0 has a value of about 0.01% O.sub.2 to about 10% O.sub.2.
- 5. The process according to claim 4, wherein P.sub.0 has a value of about 0.01% O.sub.2 to about 3% O.sub.2.
- 6. The process according to claim 1, wherein P.sub.1 has a value of about 0.1% O.sub.2 to about 3% O.sub.2.
- 7. The process according to claim 1, wherein Fm.sub.1 has a value of about 1 to about 10,000 Nm.sup.3 /h.
- 8. The process according to claim 7, wherein Fm.sub.1 has a value of about 10 to about 2,000 Nm.sup.3 /h.
- 9. The process according to claim 1, wherein Fm.sub.2 has a value of about 1 to about 10,000 Nm.sup.3 /h.
- 10. The process according to claim 9, wherein Fm.sub.2 has a value of about 5 to about 1,000 Nm.sup.3 /h.
- 11. A membrane nitrogen generator adapted to deliver a flow rate of nitrogen gas having a purity which is at least equal to P.sub.0, comprising:
- (a) a source of compressed nitrogen-containing gas having a purity lower than P.sub.0, said source having a maximum flow rate Fm.sub.1 ;
- (b) varying means in fluid connection with said source of compressed nitrogen-containing gas which is adapted to vary the flow rate of said source between Fm.sub.1 and zero;
- (c) a nitrogen membrane in fluid connection with said source of compressed nitrogen-containing gas which membrane comprises a plurality of shell-fed hollow fibers forming a bundle which is suitable for operating in a countercurrent mode, and which is encased in a substantially cylindrical shell forming altogether a module, and which is capable of delivering a low purity nitrogen gas which is enriched in nitrogen compared to said source and a nitrogen-depleted gas which is depleted in nitrogen compared to said source, said low purity nitrogen gas having a purity P.sub.1 which increases when the flow rate of said nitrogen-containing gas source feeding the membrane decreases, said purity P.sub.1 being lower than P.sub.0 at said maximum flow rate Fm.sub.1 ;
- (d) a source of high purity compressed nitrogen gas having a purity which is greater than P.sub.0 delivering a high purity nitrogen gas having flow rate control means to control its flow rate from zero to a maximum flow rate value Fm.sup.2 ;
- (e) mixing means adapted to mix said low purity nitrogen gas and said high purity nitrogen gas and delivering a nitrogen gas mixture; and
- (f) purity control means adapted to measure the purity of the nitrogen gas mixture and to generate a signal to the flow rate control means to increase the flow rate of the high purity nitrogen gas when the measured purity of said nitrogen gas mixture is smaller than or equal to P.sub.0 and to decrease the flow rate of the high purity nitrogen gas when the measured purity of said nitrogen gas mixture is greater than P.sub.0.
- 12. The membrane nitrogen generator according to claim 1, wherein the flow rate control means to control the flow rate of the source of high purity compressed nitrogen gas is an on/off valve.
- 13. The membrane nitrogen generator according to claim 11, wherein the source of high purity compressed nitrogen gas is a bulk storage means.
- 14. The membrane nitrogen generator according to claim 13, wherein said bulk storage means is a tank containing liquid nitrogen.
- 15. The membrane nitrogen generator according to claim 11, further comprising computer means connected to a variant means or the purity control means or both to manage control of said variant means or purity control means or both.
- 16. The membrane nitrogen generator according to claim 11, wherein said module comprises an input for feed gas from the nitrogen-containing gas source, a first output for the permeate gas which permeates through the walls of the fibers of the bundle and a second output for the non-permeate gas or gas mixture which does not permeate through the fibers, wherein said input and first output are located on the shell of the module.
- 17. A membrane nitrogen generator adapted to deliver a flow rate of nitrogen gas having a purity which is at least equal to P.sub.0, comprising:
- (a) a source of compressed nitrogen-containing gas having a purity lower than P.sub.0, said source having a maximum flow rate Fm.sub.1 ;
- (b) varying means in fluid connection with said source of compressed nitrogen-containing gas which is adapted to vary the flow rate of said source between Fm.sub.1 and zero;
- (c) a nitrogen membrane in fluid connection with said source of compressed nitrogen-containing gas and which is capable of delivering a low purity nitrogen gas which is enriched in nitrogen compared to said source and a nitrogen-depleted gas which is depleted in nitrogen compared to said source, said low purity nitrogen gas having a purity P.sub.1 which increases when the flow rate of said nitrogen containing gas source feeding the membrane decreases, said purity P.sub.1 being lower than P.sub.0 at said maximum flow rate Fm.sub.1 ;
- (d) a source of high purity compressed nitrogen gas having a purity which is greater than P.sub.0 delivering a high purity nitrogen gas having flow rate control means to control its flow rate from zero to a maximum flow rate value Fm.sup.2, said source of high purity compressed nitrogen gas comprising bulk storage means in fluid connection with said membrane nitrogen generator;
- (e) mixing means adapted to mix said low purity nitrogen gas and said high purity nitrogen gas and to deliver a nitrogen gas mixture; and
- (f) purity control means adapted to measure the purity of the nitrogen gas mixture and to generate a signal to the flow rate control means to increase the flow rate of the high purity nitrogen gas when the measured purity of said nitrogen gas mixture is smaller than or equal to P.sub.0 and to decrease the flow rate of the high purity nitrogen gas when the measured purity of said nitrogen gas mixture is greater than P.sub.0.
- 18. The membrane nitrogen generator according to claim 17, wherein the flow rate control means to control the flow rate of the source of high purity compressed nitrogen gas is an on/off valve.
- 19. The membrane nitrogen generator according to claim 17, wherein said bulk storage means is a tank containing liquid nitrogen.
- 20. The membrane nitrogen generator according to claim 17, wherein the nitrogen membrane comprises a plurality of hollow fibers forming a bundle which is encased in substantially cylindrical shell forming altogether a module.
- 21. The membrane nitrogen generator according to claim 17, further comprising computer means connected to the varying means or the purity control means or both to manage the control of said varying means or purity control means or both.
Parent Case Info
This is a continuation of application Ser. No. 07/935,167, filed on Aug. 26, 1992, now U.S. Pat. No. 5,266,101.
US Referenced Citations (19)
Continuations (1)
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Number |
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935167 |
Aug 1992 |
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