Gas sparger for an immersed membrane
11219866 · 2022-01-11
Assignee
Inventors
- Jeffrey Ronald Cumin (Hamilton, CA)
- Henry Behmann (Puslinch, CA)
- Yongseck Hong (Burlington, CA)
- Reid Bayly (East York, CA)
Cpc classification
Y02W10/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D2313/26
PERFORMING OPERATIONS; TRANSPORTING
B01F23/231265
PERFORMING OPERATIONS; TRANSPORTING
B01D65/08
PERFORMING OPERATIONS; TRANSPORTING
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23123
PERFORMING OPERATIONS; TRANSPORTING
B01D65/00
PERFORMING OPERATIONS; TRANSPORTING
B01D2315/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D61/00
PERFORMING OPERATIONS; TRANSPORTING
B01D65/00
PERFORMING OPERATIONS; TRANSPORTING
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A gas sparger produces an intermittent flow of bubbles even if provided with a continuous gas flow. The sparger has a housing to collect a pocket of gas and a conduit to release some of the gas from the pocket when the pocket reaches a sufficient size. Optionally, a cover over an outlet from the conduit may break up or distribute the released gas. A large sparger for use with a commercial membrane module can comprise a plurality of smaller units.
Claims
1. A membrane filtration unit comprising a gas sparger and a module comprising membranes, the module intended for immersed suction driven operation, wherein the module is elongated in plan view, the gas sparger being adapted to contain a series of gas pockets in a line parallel with the module, each of the pockets being associated with a conduit, wherein each conduit defines a closed channel extending from a first opening inside of an associated one of the gas pockets downwards to a low point and then vertically upwards to a second opening above the first opening and outside of the associated gas pocket and wherein gas pockets associated with different conduits are fluidly separated from each other.
2. The membrane filtration unit of claim 1 having a distribution pipe extending generally along the length of the gas sparger and having gas outlets associated with the gas pockets.
3. The membrane filtration unit of claim 2 wherein the distribution pipe is located near the bottom of the sparger.
4. The membrane filtration unit of claim 1 wherein the conduits are J-shaped.
5. The membrane filtration unit of claim 1 further comprising a cover with a plurality of holes over the second openings of the conduits.
6. The membrane filtration unit of claim 1 wherein the second openings have an area of 1-10 square cm.
7. The membrane filtration unit of claim 1 wherein the second openings have an area of 3-6 square cm.
8. The membrane filtration unit of claim 6 wherein the cross-sectional area of the pockets of gas are larger than the area of the second openings by a factor of 10 or more.
9. The membrane filtration unit of claim 8 wherein the cross-sectional area of the pockets of gas are larger than the area of the second openings by a factor in the range of 20-35.
10. The membrane filtration unit of claim 1 comprising a cover over one on the second openings, wherein the volume contained within the cover is 33% or less of the volume of the air pocket associated with the second opening.
11. The membrane filtration unit of claim 1 wherein the sparger is 770 mm long, plus or minus 50%, and the module has a length about the same length as the sparger.
12. The membrane filtration unit of claim 11 wherein the sparger is 85 mm wide, plus or minus 50%.
13. The membrane filtration unit of claim 12 wherein a plurality of the modules are arranged side by side separated by vertical gaps between adjacent modules.
14. A process for gas sparging a module having membranes immersed in a liquid, the process comprising the steps of, immersing the module in the liquid, wherein the module is elongated in plan view, providing a flow of a gas to a series of gas pockets arranged in a line parallel with the module, each of the gas pockets being associated with a conduit wherein gas pockets associated with different conduits are fluidly separated from each other, wherein each conduit defines a closed channel extending from a first opening inside of the associated gas pocket downwards to a low point and then vertically upwards to a second opening above the first opening and outside of the associated gas pocket, wherein the flow of gas is at a rate sufficient to cause a burst of gas to emerge from the second openings of the conduits at least once every 30 seconds.
15. The process of claim 14 further comprising a step of dispersing the burst of gas over a larger horizontal area or breaking the burst of gas into bubbles or smaller bubbles.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION
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(7) The connector 14 is connected to one or more distribution pipes 18. Distribution pipes 18 extend generally along the length of the sparger 10 and have gas outlets 20 along their length. The size of the gas outlets 20 may be made sufficiently small relative to the gas flow rate so as to (a) create a head loss that encourages an even distribution of gas flow from the gas outlets 20 even if the distribution pipe 18 is not exactly level and (b) cause a sufficient velocity of gas flow through the gas outlets 20 to inhibit liquid entry into the distribution pipe 18. The Distribution pipes 18 may be located near the bottom of sparger 10 as shown or at other elevations. For example, distribution pipes 18 may be located along the top of housing 12, with the outlets 20 in an area that always contains a pocket of gas. Further optionally, different parts of the housing 12 may receive gas from separate gas tubes connected to a gas supply manifold located further away from the housing 12.
(8) The sparger 10 has a plurality of discharge conduits 22 along its length. Discharge conduits 22 have first outlets 24 in communication with an area inside and near the top of the housing 12, and second outlets 26 open to the outside of the housing 12. At least a portion of the conduit 22 extends downwards between the first opening 24 and the second opening 26. Another portion of conduit 22 extends upwards again before reaching the second opening 26. Gas leaving the housing 12 through the conduit 22 must pass through a low point in the conduit 22 between the first opening 24 and the second opening 26, as in the generally J or U shaped conduits 22 shown. Second opening 26 may have an area of 1 to 10 square cm or 3 to 6 square cm. The cross-sectional area of a pocket of gas in communication with a conduit 22 is preferably larger than the area of the second opening 26 by a factor of 10 or more, for example by a factor in the range of 20 to 35.
(9) Adjacent conduits 22 are preferably separated from each other, for example by dividers 28. The dividers 28 prevent one conduit 22 from depleting a pocket of gas in housing 12 to the extent that gas is rarely or never discharged from another one of the conduits 22. With solid dividers 28 extending to below the lowest expected extent of a gas pocket in housing 12 as shown, gas pockets associated with different conduits 22 are fluidly separated from each other. The sparger 10 acts as if it is a number of distinct smaller spargers. Over a period of operation, the timing of gas discharges from different conduits 22 in a sparger 10 may vary or scatter such that gas is not discharged from each conduit 22 at the same time. However, the pattern of gas discharge from an individual conduit appears to follow a generally regular cycle having a short burst of gas followed by a period in which gas is not discharged, or is discharged in only small amounts.
(10) A cover or distributor 30 may optionally be provided over the housing 12. Cover 30 receives gas from one or more discharge conduits 22 and discharges gas in the form of bubbles from holes 32 in the cover 30. Cover 30 may have a plurality of holes 32 per conduit 22 to disperse the gas flow over a larger horizontal area. The cover 30 may also break a burst of gas leaving conduit 22 into bubbles or smaller bubbles if desired. As shown, the cover 30 may have dividers generally aligned with dividers 18 in the housing 12 to keep a flow of bubbles near the conduit 22 that released the gas for those bubbles. Optionally, holes 32 may be distributed either along the length of the housing 12 or across the width of housing 12 or both to spread the flow of bubbles as desired for one or more immersed membrane modules intended to be scoured by the bubbles. A module may be located above the sparger 10 in a tank. Optionally, the tube sheet of a module having air passages through the tube sheet between the membranes can function as the cover 30.
(11) Cover 30 shown snaps over the housing 12 without making a gas tight seal with the top of housing 12. However, in the embodiment shown, the housing 12 and cover 30 both have a dome shape in cross section such that a gap between the cover 30 and housing 12 is located below the top of housing 12. With this arrangement, gas does not escape through the gap between the cover 30 and housing 12 at the gas flow rates tested by the inventors. The volume contained within cover 30 is preferably small, for example about 50% or less, or 33% or less, of the volume of an associated air pocket in housing 12. This tends to maintain the short burst characteristics of the gas leaving a conduit 22.
(12) The operation of a sparger 10 immersed in a liquid 34 is illustrated schematically in
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