Claims
- 1. Apparatus for carrying out a process between first and second immiscible fluids comprising first and second channels constructed to define primary flow paths for permitting parallel and co-current fluid flow of the respective first and second fluids therethrough white inhibiting mixing of the fluids, portions of said channels being disposed close to or adjacent one another and constructed to communicate with one another to define a region, where a stable interface is formed between the fluids, and secondary flow inducing means, which is operable, in use, to induce at least one of the fluids to flow in a secondary direction perpendicular to the direction of the primary flow path at said region.
- 2. Apparatus according to claim 1 wherein the secondary flow inducing means comprises constructing at least one of the channels to extend around a curve at said region.
- 3. Apparatus according to claim 2 wherein both of the first and second channels are curved at said region.
- 4. Apparatus according to claim 1 wherein the secondary flow inducing means comprises flow deflectors positioned within at least one of the channels.
- 5. Apparatus according to claim 4, wherein a foraminated membrane is provided at the interface between the fluids, and said flow deflectors are provided on one or more sides of the membrane.
- 6. Apparatus according to claim 1 wherein the, or each channel is a spiral channel defining a spiral primary flow path.
- 7. Apparatus according to claim 6 wherein a foraminated membrane is provided at the interface between the fluids, and flow deflectors are provided on one or more sides of the membrane.
- 8. Apparatus according to claim 1 wherein a secondary flow is induced in a first direction in the first fluid and a secondary flow is induced in the second fluid in a different direction to the first direction.
- 9. Apparatus according to claim 1 wherein a foraminated membrane is provided at the interface between the first and second fluids.
- 10. Apparatus according to claim 1, wherein said primary flow paths of said first and second immiscible fluids at said stable interface are essentially laminar.
- 11. Apparatus for carrying out a process between first and second immiscible fluids, comprising first and second channels constructed to define respectively first and second primary flow paths for permitting parallel and co-current fluid flow of the respective first and second immiscible fluids therethrough while inhibiting mixing of the fluids, portions of the channels being disposed close to or adjacent one another and constructed to communicate with one another to define a region where, in use, a stable interface is formed between the first and second fluids, at least the first channel at said region being curved so that, in use, the fluid flow therein has a curved trajectory in a direction along the primary flow path which generates a secondary circulation of the fluid in a direction perpendicular to the direction of the primary flow path.
- 12. Apparatus according to claim 11 wherein the, or each channel is a spiral channel defining a spiral primary flow path.
- 13. Apparatus according to claim 11 wherein the flow rates Q of each of the fluids are between 6.75 E-07 and 1.35 E-05 kg/s, and the flow rate Q is given by:Q=Kl4ΔP/μL, where ΔP is the pressure drop along a unit length, L, of the flow paths, μ is the viscosity of the fluid, l, is the width of the flow path and K is a constant.
- 14. Apparatus according to claim 11 wherein a secondary flow is induced in a first direction in the first fluid and a secondary flow is induced in the second fluid in a different direction to the first direction.
- 15. Apparatus according to claim 11 wherein a foraminated membrane is provided at the interface between the first and second fluids.
- 16. Apparatus for carrying out a process between first and second immiscible fluids, comprising a stacked structure of adjacent plates, each adjacent pair of plates defining one or more pairs of first and second channels defining primary flow paths for permitting fluid flow of the respective first and second immiscible fluids therethrough, portions of the channels being disposed close to or adjacent one another and constructed to communicate with one another to define a region where, in use, a stable interface is formed between the first and second fluids, and wherein at least the, or each first channel is curved at said region so that, in use, the fluid flow therein has a curved trajectory in a direction along the primary flow path and generates a secondary circulation of the fluid in a direction perpendicular to the direction of the flow path.
- 17. Apparatus according to any one of claims 1-6, 11 or 16 wherein the flow rates Q of each of the fluids are between 6.75 E-07 and 1.35 E-05 kg/s, and the flow rate Q is given by:Q=Kl4ΔP/μL, where ΔP is the pressure drop along a unit length, L, of the flow paths, μ is the viscosity of the fluid, l, is the width of the flow path and K is a constant.
- 18. Apparatus according to claim 17 wherein a foraminated membrane is provided at the interface between the fluids, and flow deflectors are provided on one or more sides of the membrane.
- 19. Apparatus according to claim 16 wherein the stacked structure of plates is held together by the application of a compressive force.
- 20. Apparatus according to claim 19 wherein a foraminated membrane is provided at the interface between the fluids, and flow deflectors are provided on one or more sides of the membrane.
- 21. Apparatus according to claim 16 wherein the, or each channel is a spiral channel defining a spiral primary flow path.
- 22. Apparatus according to claim 16 wherein the flow rates Q of each of the fluids are between 6.75 E-07 and 1.35 E-05 kg/s, and the flow rate Q is given by:Q=Kl4ΔP/μL, where ΔP is the pressure drop along a unit length, L, of the flow paths, μ is the viscosity of the fluid, l, is the width of the flow path and K is a constant.
- 23. Apparatus according to claim 16 wherein a secondary flow is induced in a first direction in the first fluid and a secondary flow is induced in the second fluid in a different direction to the first direction.
- 24. Apparatus according to claim 16 wherein a foraminated membrane is provided at the interface between the first and second fluids.
- 25. A method of carrying out a process between first and second immiscible fluids, the method comprising: the steps of:a) providing first and second flow paths having portions disposed adjacent to or close to one another and communicating with one another to define a region where, in use, the fluids can contact one another; b) flowing the first and second immiscible fluids along respective said first and second primary flow paths such that, at least in said region, the flow of both fluids is essentially laminar and, a stable interface is formed between the fluids; c) simultaneously causing at least one of the fluids to flow in a direction perpendicular to the primary path flow; d) permitting significant transfer of a desired component of at least one of the fluids to the other fluid at said interface between the fluids by diffusive transport within the fluids without mixing of the fluids; and e) flowing the fluids away from the interface region in their respective flow paths.
- 26. A method according to claim 25 wherein the step (c) is achieved by causing the flow of fluid to flow along a primary flow path that extends around a curve.
- 27. A method according to claim 26 wherein the curve is a spiral.
- 28. A method according to claim 27 wherein the flow rates Q of the fluids are each between 6.75 E-07 and 1.35 E-05 kg/s, and the flow rate Q is given by:Q=l4ΔP/μL, where ΔP is the pressure drop along a unit length, L, of the flow paths, μ is the viscosity of the fluid, and, L, is the width of the flow path.
- 29. A method according to claim 26 wherein the flow rates Q of the fluids are each between 6.75 E-07 and 1.35 E-05 kg/s, and the flow rate Q is given by:Q=l4ΔP/μL, where ΔP is the pressure drop along a unit length, L, of the flow paths, μ is the viscosity of the fluid, and, L, is the width of the flow path.
- 30. A method according to claim 25 wherein the step (c) is achieved by using angled flow deflectors positioned within the, or each, channel.
- 31. A method according to claim 25 wherein the flow rates Q of the fluids are each between 6.75 E-07 and 1.35 E-05 kg/s, and the flow rate Q is given by:Q=l4ΔP/μL, where ΔP is the pressure drop along a unit length, L, of the flow paths, μ is the viscosity of the fluid, and, L, is the width of the flow path.
Priority Claims (1)
Number |
Date |
Country |
Kind |
9608129 |
Apr 1996 |
GB |
|
Parent Case Info
This application is a 371 of application PCT/GB97/01027, filed on Apr. 15, 1997
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
102e Date |
371c Date |
PCT/GB97/01027 |
|
WO |
00 |
4/29/1999 |
4/29/1999 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO97/39814 |
10/30/1997 |
WO |
A |
US Referenced Citations (14)
Foreign Referenced Citations (3)
Number |
Date |
Country |
1289913 |
Aug 1962 |
FR |
2196831 |
Mar 1974 |
FR |
WO 9612541 |
May 1996 |
WO |