Mixing chamber
Abstract
A membrane module (5) including a plurality of porous membranes (6) extending in an array and mounted, at least at one end, in a header (8). The header (8) has a number of distribution apertures (11) for distributing a fluid into the module (5) and along a surface or surfaces of the membranes (6). An elongate chamber (10) having one open end (13) and another end is in fluid communication with the distribution apertures (11) for distributing the fluid to the distribution apertures (11).

Term
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Expired 5 December 2023, 2.8 years ago.
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31 claims: 7 independent, 24 dependent
- 1A membrane module (5) comprising:a plurality of porous membranes (6) mounted, at least at one end, in a header (8), said header (8) having a number of distribution apertures (11) for distributing a fluid into said module (5), an open ended mixing chamber (10) constructed and arranged to provide a cleaning mixture by mixing together liquid and gas bubbles, said chamber (10) having an open base in fluid communication with a source of feed liquid;said chamber (10) constructed and arranged to promote upward flow of feed liquid therethrough;characterized by a gas source (12) positioned within the open-ended mixing chamber (10), the gas source (12) constructed and arranged to introduce gas into the open-ended mixing chamber (10) in a downward direction from above the open base;and means for flowing said cleaning mixture along the surface of said membranes to dislodge fouling materials therefrom.
- 5A membrane module according to any one of the preceding claims wherein the chamber is enclosed on all sides.
- 8A membrane module according to any one of the preceding claims wherein the chamber (10) has a plurality of sides positioned to form a skirt directly beneath a header (8) or plurality of headers.
- 9An assembly of membrane modules (5) including a plurality of porous membranes (6) extending in an array and mounted, at least at one end, in a plurality of respective headers (8), said headers (8) being configured to provide a number of distribution apertures (11) therebetween for distributing a cleaning fluid into said assembly of membrane modules (5) and along a surface or surfaces of said membranes (6), characterized by a chamber (10) positioned below said headers (8), said chamber (10) constructed and arranged to promote upward flow of feed liquid therethrough, said chamber (10) including:an open base end in fluid communication with a source of feed liquid;a second end in fluid communication with said distribution apertures (11);and a gas inlet constructed and arranged to introduce gas into said chamber in a downward direction from above the open base end, said chamber configured to mix gas and liquid to produce said cleaning fluid and further configured to distribute said cleaning fluid to said distribution apertures.
- 18An assembly of membrane modules according to any one of the preceding claims including a T-piece or baffle (30) located at the gas inlet for deflecting the gas away from the source of feed liquid.
- 26A membrane bioreactor including a tank having means for the introduction of feed thereto, means for forming activated sludge within said tank, a membrane module or an assembly according to any one of the preceding claims positioned within said tank so as to be immersed in said sludge and said membrane module provided with means for withdrawing filtrate from at least one end of said fibre membranes.
- 27A membrane bioreactor according to claim 27 wherein a further source of aeration is provided within the tank to assist microorganism activity.
- 30A method of removing a fouling material from a plurality of porous hollow fiber membranes (6) extending longitudinally in an array to form a membrane module (5) and mounted, at least at one end, in a header (8), said header (8) having a number of distribution apertures (11) for distributing a cleaning fluid into said module (5), the method comprising the steps of:providing a chamber (10) constructed and arranged to promote upward flow of feed liquid therethrough, said chamber (10) including: an open base end in fluid communication with a source of feed liquid;a second end in fluid communication with said distribution apertures (11);and a gas inlet constructed and arranged to introduce gas into said chamber in a downward direction from above the open base end, said chamber configured to mix gas and liquid to produce said cleaning fluid;and flowing said cleaning fluid from the chamber (10) into a base of the membrane module (5), whereby an upward flow of the cleaning fluid through the distribution apertures and across surfaces of the hollow fiber membranes (6) is obtained, and whereby fouling materials are dislodged from the surfaces of the porous hollow fiber membranes (6).
Independent claims17
53 paragraphs in 5 sections, as filed
TECHNICAL FIELD
0001The present invention relates to apparatus and related methods for use of a chamber in association with membrane filtration modules to provide improved fluid distribution and flow into the associated modules.
BACKGROUND OF THE INVENTION
0002The importance of membranes for treatment of waste water is growing rapidly. It is now well known that membrane processes can be used as an effective tertiary treatment of sewage and provide quality effluent. However, the capital and operating cost can be prohibitive. With the arrival of submerged membrane processes where the membrane modules are immersed in a large feed tank and filtrate is collected through suction applied to the filtrate side of the membrane, membrane bioreactors combining biological and physical processes in one stage promise to be more compact, efficient and economic. Due to their versatility, the size of membrane bioreactors can range from household (such as septic tank systems) to the community and large-scale sewage treatment.
0003The success of a membrane filtration process largely depends on employing an effective and efficient membrane cleaning method. Commonly used physical cleaning methods include backwash (backpulse, backflush) using a liquid permeate or a gas, membrane surface scrubbing or scouring using a gas in the form of bubbles in a liquid. Examples of the second type of method is illustrated in United States Patent no <patcit id="pcit0001" dnum="US5192456A"><text>5,192,456 to Ishida et al</text></patcit>, United States Patent No. <patcit id="pcit0002" dnum="US5248424A"><text>5,248,424 to Cote et al</text></patcit>, United States Patent No. <patcit id="pcit0003" dnum="US5639373A"><text>5,639,373 to Henshaw et al</text></patcit>, United States Patent No. <patcit id="pcit0004" dnum="US5783083A"><text>5,783,083 to Henshaw et al</text></patcit> and our <patcit id="pcit0005" dnum="WO9828066A"><text>PCT Application No. WO98/28066</text></patcit>.
0004In the examples referred to above, a gas is injected, usually by means of a pressurised blower, into a liquid system where a membrane module is submerged to form gas bubbles. The bubbles so formed then travel upwards to scrub the membrane surface to remove the fouling substances formed on the membrane surface. The shear force produced largely relies on the initial gas bubble velocity, bubble size and the resultant of forces applied to the bubbles. The fluid transfer in this approach is limited to the effectiveness of the gas lifting mechanism. To enhance the scrubbing effect, more gas has to be supplied. However, this method has several disadvantages: it consumes large amounts of energy, possibly forms mist or froth flow reducing effective membrane filtration area, and may be destructive to membranes. Moreover, in an environment of high concentration of solids, the gas distribution system may gradually become blocked by dehydrated solids or simply be blocked when the gas flow accidentally ceases.
0005For most capillary membrane modules, the membranes are flexible in the middle (longitudinal direction) of the modules but tend to be tighter and less flexible towards to both potted heads. When such modules are used in an environment containing high concentrations of suspended solids, solids are easily trapped within the membrane bundle, especially in the proximity of two potted heads. The methods to reduce the accumulation of solids include the improvement of module configurations and flow distribution when gas scrubbing is used to clean the membranes.
0006Our earlier International Application No. <patcit id="pcit0006" dnum="WO0018498A"><text>WO 00/18498</text></patcit> describes the use of a mixture of gas and liquid to effectively clean the surface of membranes. The arrangements and methods described herein provided another simple way of achieving effective scouring of membrane surfaces.
DISCLOSURE OF THE INVENTION
0007The present invention, at least in its embodiments, seeks to overcome or least ameliorate some of the disadvantages of the prior art or at least provide the public with a useful alternative.
0008According to one aspect of the present invention there is provided a membrane module comprising: <ul id="ul0001" list-style="none" compact="compact"><li>a plurality of porous membranes mounted, at least at one end, in a header, said header having a number of distribution apertures for distributing a fluid into said module, an open ended mixing chamber constructed and arranged to provide a cleaning mixture by mixing together liquid and gas bubbles, said chamber having open base in fluid communication with a source of feed liquid; said chamber constructed and arranged to promote upward flow of feed liquid therethrough; characterized by a gas source positioned within the open-ended mixing chamber, the gas source constructed and arranged to introduce gas into the open-ended mixing chamber in a downward direction from above the open base; and means for flowing said cleaning mixture along the surface of said membranes to dislodge fouling materials therefrom.</li></ul>
0009In an alternative aspect, the present invention provides an assembly of membrane modules including a plurality of porous membranes extending in an array and mounted, at least at one end, in a plurality of respective headers, said headers being configured to provide a number of distribution apertures' therebetween for distributing a cleaning fluid into said assembly of membrane modules and along a surface or surfaces of said membranes, characterized by a chamber positioned below said headers, said chamber constructed and arranged to promote upward flow of feed liquid therethrough, said chamber including: an open base end in fluid communication with a source of feed liquid; a second end in fluid communication with said distribution apertures; and a gas inlet constructed and arranged to introduce gas into said chamber in a downward direction from above the open base end, said chamber configured to mix gas and liquid to produce said cleaning fluid and further configured to distribute said cleaning fluid to said distribution apertures.
0010In one form of the invention, the fluid may be a mixture of air and feel liquid.
0011The term liquid as used herein will be familiar to those skilled in the art as encompassing the range of other materials usually considered as liquid feeds, such as suspensions which contain suspended solids or inorganic matter in liquids, suspensions of biomass in water, water which is turbid and the like, or mixtures of these.
0012Preferably, the chamber is elongate, that is, preferably, the length of said chamber is greater than that required to provide a static head, when the membrane is immersed in a liquid and gas introduced into the chamber, equivalent to the head loss for the gas to flow to said distribution apertures. That is, the length of the chamber should be sufficient that all gas flows from the supply source or manifold through the distribution apertures rather than the open end of the chamber.
0013While the term mixing chamber is used, it would also be possible to describe the chamber as a mixing junction.
0014In some embodiments, the chamber is enclosed on all sides. However, if the chamber is sufficiently dimensioned, it may not be necessary for the sides to be enclosed By way of example only, if the membrane module or an array of modules is in the form of a linear array, with a plurality of headers, then it may be sufficient just for the chamber to be enclosed along the two longest sides. Preferably, the membrane module is in the form of an extended linear array wherein the chamber has enclosed long sides. More preferably, the membrane module is in the form of an extended linear array wherein the chamber has unenclosed short sides.
0015In yet a further alternative, the chamber may have sides but no top. In such a case, the sides of the chamber are positioned to substantially form a skirt below the header or group of headers. In such a case, the sides of the chamber may not be parallel, but, for example, may slope inwardly towards the header.
0016The chamber can be of any shape as desired to contain any configuration of membrane modules. In preferred embodiments, the header or headers are mounted in a clover shaped manifold. The clover manifold is so called because when viewed from above, the manifold has the shape of a clover leaf. While the invention is described with reference to this one preferred embodiment, it will be understood that the manifold can be configured to have any desired footprint, for example, it may be linear, rectangular, square, hexagonal etc.
0017Preferably, said chamber is elongate with one end open and the other end in fluid communication with the membrane module..
0018According to another aspect, the present invention provides a method of removing a fouling material from a plurality of porous hollow fiber membranes extending longitudinally in an array to form a membrane module and mounted, at least at one end, in a header, said header having a number of distribution apertures for distributing a cleaning fluid into said module, the method comprising the steps of: providing a chamber constructed and arranged to promote upward flow of feed liquid therethrough, said chamber including: an open base end in fluid communication with a source of feed liquid; a second end in fluid communication with said distribution apertures; and a gas inlet constructed and arranged to introduce gas into said chamber in a downward direction from above the open base end, said chamber configured to mix gas and liquid to produce said cleaning fluid; and flowing said cleaning fluid from the chamber into a base of the membrane module, whereby an upward flow of the cleaning fluid through the distribution apertures and across surfaces of the hollow fiber membranes is obtained, and whereby fouling materials are dislodged from the surfaces of the porous hollow fiber membranes.
0019For preference, the step of forming a mixture includes entraining the gas bubbles into a liquid stream. Preferably, the gas bubbles are entrained into said liquid stream by means of the chamber. For further preference, the gas bubbles are entrained or injected into said liquid stream by means of devices which forcibly mix gas into a liquid flow to produce a mixture of liquid and bubbles, such devices including a jet, nozzle, ejector, educator, injector or the like. The gas used may include air, oxygen, gaseous chlorine or ozone. Air is the most economical for the purposes of scrubbing and/or aeration. Gaseous chlorine may be used for scrubbing, disinfection and enhancing the cleaning efficiency by chemical reaction at the membrane surface. The use of ozone, besides the similar effects mentioned for gaseous chlorine, has additional features, such as oxidising DBP (disinfection by-product) precursors and converting non-biodegradable NOM's (natural organic matters) to biodegradable dissolved organic carbon.
0020It is generally preferred if the air entering the mixing chamber is deflected away from the source of the liquid which is entering the mixing chamber. Preferably, the air entering the mixing chamber is deflected, for example, by way of a T-piece or baffle. The liquid preferably enters the mixing chamber by way of a nozzle.
0021For reference, the membranes comprise porous hollow fibres, the fibres being fixed at each end in a header, the lower header having one or more holes formed therein through which mixture of gas/liquid is introduced from the mixing chamber. The holes can be circular, elliptical or in the form of a slot.
0022Preferably, the membranes comprise porous hollow fibres, the fibres being fixed at each end in a plurality of headers, the lower headers being configured to provide a number of distribution apertures therebetween through which mixture of gas/liquid is introduced from the mixing chamber.
0023The fibres are normally sealed at the lower end and open at their upper end to allow removal of filtrate, however, in some arrangements, the fibres may be open at both ends to allow removal of filtrate from one or both ends. It will be appreciated that the cleaning process described is equally applicable to other forms of membrane such flat or plate membranes.
0024Alternatively, the membranes may be flat sheet or curtain like hollow fibre modules, with apertures in the header configured parallel to the flat sheet
0025In yet a further alternative embodiment, a plurality of headers without apertures may be used, provided these are spaced such that the gaps between the headers define an aperture or apertures for the fluid and gas bubbles to scrub the membranes.
0026In an example of this alternative aspect, the membrane module includes a plurality of porous membranes extending in an array and potted in headers. Said modules are mounted in such a way that said headers are configured to provide a number of distribution apertures therebetween for distributing a fluid into said modules and along surfaces of said membranes, a chamber having one open end and another end in fluid communication with said distribution apertures for distributing said fluid to said distribution apertures.
0027Particularly in the case of flat-sheet membranes or curtain-like hollow fiber modules, where there are no apertures are in the lower header, apertures or passages for fluid and gas bubbles can be formed by mounting modules in close proximity leaving a gap or gaps between modules.
0028A mixing chamber can enclose several modules in an array.
0029According to yet a further aspect, the present invention provides a membrane bioreactor including a tank having means for the introduction of feed thereto, means for forming activated sludge within said tank, a membrane module or an assembly according to the above aspects positioned within said tank so as to be immersed in said sludge and said membrane module provided with means for withdrawing filtrate from at least one end of said fibre membranes.
0030The liquid used may be the feed to the membrane module. The fibres and/or fibre bundles may cross over one another between the potting heads though it is desirable that they do not.
0031Preferably, the fibres within the module have a packing density (as defined above) of between about 5 to about 70% and, more preferably, between about 8 to about 55%.
0032For preference, said holes have a diameter in the range of about 1 to 40 mm and more preferably in the range of about 1.5 to about 25 mm. In the case of a slot or row of holes, the width of slots are chosen to be equivalent to the diameter of the above holes..
0033Typically, the fibre inner diameter ranges from about 0.1 mm to about 5 mm and is preferably in the range of about 0.25 mm to about 2 mm. The fibres wall thickness is dependent on materials used and strength required versus filtration efficiency. Typically wall thickness is between 0.05 to 2 mm and more often between 0.1 mm to 1 mm.
0034For preference, the membrane modules of the present invention include a deflector within said mixing chamber configured to deflect gas away from the source of the liquid. It is also preferred if the membrane modules of the present invention include a nozzle whereby liquid is introduced into the mixing chamber.
0035A membrane bioreactor of the type described in the above aspect may be operated by introducing feed to said tank, applying a vacuum to said fibres to withdraw filtrate therefrom while periodically or continuously supplying a cleaning mixture of gas bubbles and liquid formed in a mixing chamber through said openings to within said module such that, in use, said cleaning mixtures flows along the surface of said membrane fibres to dislodge fouling materials therefrom.
0036If required, a further source of aeration may be provided within the tank to assist microorganism activity and to reduce anoxic zone. For preference, the membrane module is suspended vertically within the tank and said further source of aeration may be provided beneath the suspended module. Preferably, the further source of aeration comprises a group of air permeable tubes or discs. The membrane module may be operated with or without backwash depending on the flux. A high mixed liquor of suspended solids (5,000 to 20,000 ppm) in the bioreactor has been shown to significantly reduce residence time and improve filtrate quality. The combined use of aeration for both degradation of organic substances and membrane cleaning has been shown to enable constant filtrate flow without significant increases in transmembrane pressure while establishing high concentration of MLSS. The use of partitioned fibre bundles enables higher packing densities to be achieved without significantly compromising the gas scouring process. This provides for higher filtration efficiencies to be gained.
BRIEF DESCRIPTION OF THE DRAWINGS
0037Preferred embodiments of the invention will now be described, by way of example only, with reference to the accompanying drawings in which:- <ul id="ul0002" list-style="none"><li><figref idref="f0001">Figure 1</figref> shows a pictorial side elevation of a chamber and membrane modules according to an embodiment of the invention;</li><li><figref idref="f0002">Figure 2</figref> shows a pictorial side elevation of a chamber and membrane modules according to a second embodiment of the invention;</li><li><figref idref="f0003">Figure 3</figref> shows a pictorial side elevation of a chamber and membrane modules which is provided for exemplary purposes only and is not an embodiment of the present invention.</li><li><figref idref="f0004">Figure 4</figref> shows a pictorial side elevation of a chamber and membrane modules which is provided for exemplary purposes only and is not an embodiment of the present invention.</li><li>Figure-5 shows a pictorial side elevation of a chamber and membrane modules according to a third embodiment of the invention; and</li><li><figref idref="f0006">Figure 6</figref> shows a schematic side elevation of a chamber and membrane module which is provided for exemplary purposes only and does not constitute an embodiment of the present invention.</li><li><figref idref="f0007">Figure 7</figref> shows a pictorial side elevation of a chamber and membrane modules according to another embodiment of the invention.</li><li><figref idref="f0008">Figure 8a</figref> shows a preferred embodiment of the deflector for use in mixing chambers of the present invention.</li><li><figref idref="f0008">Figure 8b</figref> shows a further referred embodiment of the deflector for use in mixing chambers of the present invention.</li><li><figref idref="f0009">Figure 9</figref> shows an extended chamber and linear array of modules which is provided for exemplary purposes only and is not an embodiment of the present invention.</li></ul>
PREFERRED EMBODIMENTS OF THE INVENTION
0038Referring to the drawings, the embodiments of the invention will be described in relation to a membrane module of the type disclosed in our earlier <patcit id="pcit0007" dnum="WO982806A"><text>PCT application Nos. WO98/2806</text></patcit> and <patcit id="pcit0008" dnum="WO0018498A"><text>WO00/18498</text></patcit> however, it will be appreciated that the invention is equally applicable to other forms of membrane module.
0039As shown in <figref idref="f0001">Figure 1</figref>, the membrane module 5 typically comprises fibre, tubular or flat sheet form membranes 6 potted into a pot 7 which is supported by a header 8. The membranes are typically encased in a support structure (not shown). In the embodiment shown, the headers 8 are coupled to a clover type manifold 9 which in turn is connected to an open ended elongate chamber 10 positioned below the manifold 9. The membrane module is typically immersed in a feed tank and either one or both ends of the membranes may be used for the permeate collection. The bottom of each membrane module 5 has a number of through apertures 11 in the pot 7 to distribute a mixture of gas and liquid feed past the membrane surfaces. The gas inlet is not illustrated.
0040<figref idref="f0002">Figure 2</figref> shows an embodiment where the chamber 10 is used to produce a liquid/gas bubble mixture by providing a source of gas 12 within the chamber 10 and flowing feed liquid through the chamber 10 to mix with a gas flow or gas bubbles produced from the gas source 12. In this embodiment the gas is fed from above through the clover manifold 9 as the membrane modules are typically suspended vertically in a feed tank.
0041The chamber 10 is open at its base 13 and liquid is flowed from a pipe 14 upwardly through the chamber 10 to mix with gas provided from a source 12 within the chamber 10. If necessary, a non-return valve (not shown) or the like may be attached to the gas source 12 to prevent the liquid phase entering the gas manifold.
0042The two fluids are mixed within the chamber 10 before being fed and uniformly distributed into the membrane modules 5 via the distribution apertures 11. The chamber 10 may be directly connected to a gas source 12 and/or liquid or as a capture and mixing device.
0043Referring to <figref idref="f0003">Figure 3</figref>, the chamber is shown in its application as a device to capture gas and/or liquid flow injected beneath it at its base 13. The fluid flow energy is therefore concentrated in the chamber 10 before distribution into the membrane modules 5. In this arrangement the chamber 10 is again open-ended at its base 13 but gas or liquid is provided from a source, in this case a pipe 14, below the open end and the chamber is used to capture the upward flow of these fluids for communication to the distribution apertures 11. This arrangement is provided for exemplary purposes only and does not constitute an embodiment of the present invention.
0044A similar arrangement is shown in <figref idref="f0004">Figure 4</figref>. In this arrangement, a venturi device 15 or the like is positioned at the base 13 of the chamber 10. The venturi device 15 intakes gas through inlet 16, mixes or entrains the gas with liquid flowing through feed inlet 17, forms gas bubbles and diffuses the liquid/gas mix into the chamber 10. The liquid/gas mixture passes upwardly from the chamber 10 into the lower header 8 and through the distribution apertures 11. Liquid feed is also drawn through the open end of the chamber 10 by liquid/gas flow from the venturi device 15. The entrained gas bubbles scrub membrane surfaces while travelling upwards along with the liquid flow. Either the liquid feed or the gas can be a continuous or intermittent injection depending on the system requirements. With a venturi device it is possible to create gas bubbles and aerate the system without a blower. The venturi device 15 can be a venturi tube, jet, nozzle, ejector, eductor, injector or the like. This arrangement is provided for exemplary purposes only and does not constitute an embodiment of the present invention.
0045Although the arrangements of <figref idref="f0003">Figures 3</figref> and <figref idref="f0004">4</figref> are shown with an open-ended chamber 10, it will be appreciated that a closed chamber may be used with gas and liquid being directly injected into the chamber.
0046The liquid commonly used to entrain the gas is the feed water, wastewater or mixed liquor to be filtered. Pumping such an operating liquid through a venturi or the like creates a vacuum to suck the gas into the liquid, or reduces the gas discharge pressure when a blower is used. By providing the gas in a flow of the liquid, the possibility of blockage of the distribution apertures 11 is substantially reduced.
0047The arrangement shown in the embodiment of <figref idref="f0005">Figure 5</figref> also serves to reduce the likelihood of blockage of the distribution apertures 11 by large particles. In this arrangement gas, typically air, is injected into the clover manifold 9 and the chamber 10 is lengthwise dimensioned to be greater than that required to provide a static head, when the membrane is immersed in a liquid and gas introduced into the chamber 10, equivalent to the head loss for the gas to flow to said distribution apertures 11. As can be seen from the figure, as gas enters from above it forces the liquid within the chamber 10 downwards until the gas flowing through the distribution apertures 11 equalizes the pressure within the chamber 10 and forms a liquid seal 18 to prevent gas passing outward through the lower open end 13 of the chamber 10. Such an arrangement has been found to prevent large particles within the feed liquid flowing into and blocking the distribution apertures 11. These large particles usually remain within the chamber 10 and settle under gravity following which they can be removed during the usual drain down of the feed tank.
0048<figref idref="f0006">Figure 6</figref> shows a similar arrangement to <figref idref="f0003">Figure 3</figref> but with a single membrane module 5. Chamber 10 again captures gas or liquid/gas flow from source 12 and distributes the flow to apertures 11 in pot 7. The flow then passes upwardly between the membranes 6. In the arrangement shown filtrate is withdrawn from the upper header 19 and a screen 20 is provided between the headers to support the membranes 6. This arrangement is provided for exemplary purposes only and does not constitute an embodiment of the present invention.
0049<figref idref="f0007">Figure 7</figref> shows a further embodiment of the invention in which gas or liquid/gas flow from source 12 is deflected within chamber 10 by means of a deflector 30. The deflector may be, for instance, a T-piece or more particularly a baffle. The deflector preferably functions to prevent the flow 12 from interfering with the flow of air or liquid from source 14. In the particular embodiment shown, the liquid flow into the chamber from 14 is via a nozzle 15. The deflector is shown attached to, and positioned adjacent to, air source 12, however, it could be attached to, and positioned adjacent to nozzle 15. Alternatively, it could be not directly attached to either air or gas source, but disposed intermediate the two.
0050The use of a nozzle is generally preferred over the use of a sparger. The nozzle is any device which gradually reduces the cross sectional area of the throat through which the gas or liquid passes. Nozzles have been found particularly advantageous because they can achieve high fluid velocities with relatively low energy losses. This in turn results in better mixing.
0051<figref idref="f0008">Figure 8</figref> shows one particular form of deflector according to the present invention.
0052<figref idref="f0009">Figure 9</figref> shows an arrangement which is suitable for scrubbing a linear array of modules. A plurality of arrays are connected to a mixing chamber 10 of extended length. The gas manifold 12 is disposed below the mixing chamber, and the liquid source 14 is disposed below the gas manifold. A nozzle 15 is preferably used. The liquid and gas are mixed in or below the chamber and exit via apertures 11, scrubbing fibres 6 as they move upwards. This arrangement is provided for exemplary purposes only and does not constitute an embodiment of the present invention.
0053It will be appreciated that further embodiments and exemplifications of the invention are possible without departing from the scope of the invention described.
Contents5
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Every citation, both ways
| Document | Relation | Office |
|---|---|---|
| EP0662341A | Cites | European Patent Office (EPO) |
| EP1052012A | Cites | European Patent Office (EPO) |
| WO0018498A1 | Cites | World Intellectual Property Organization (WIPO) |
| WO9828066A1 | Cites | World Intellectual Property Organization (WIPO) |
| US5639373A | Cites | United States of America |
| US5910250A | Cites | United States of America |
| US2002153313A1 | Cites | United States of America |
| PATENT ABSTRACTS OF JAPAN vol. 017, no. 180 (C-1046), 8 April 1993 (1993-04-08) -& JP 04 334530 A (KUBOTA CORP), 20 November 1992 (1992-11-20) -& DATABASE WPI Section Ch, Week 199301 Derwent Publications Ltd., London, GB; Class D15, AN 1993-005613 XP002353751 & JP 04 334530 A (KUBOTA CORP) 20 November 1992 (1992-11-20) | Non-patent | – |
| PATENT ABSTRACTS OF JAPAN vol. 1998, no. 09, 31 July 1998 (1998-07-31) -& JP 10 085565 A (YAMADA KOGYO KK), 7 April 1998 (1998-04-07) -& DATABASE WPI Section Ch, Week 199824 Derwent Publications Ltd., London, GB; Class D15, AN 1998-265366 XP002353752 & JP 10 085565 A (YAMADA KOGYO KK) 7 April 1998 (1998-04-07) | Non-patent | – |
| DATABASE WPI Week 199511, Derwent Publications Ltd., London, GB; Class D15, AN 1995-077293, XP002996222 & JP 7 000 770 A (TOSHIBA KK) 06 January 1995 | Non-patent | – |
| DATABASE WPI Week 199721, Derwent Publications Ltd., London, GB; Class J01, AN 1997-232466, XP002996223 & JP 9 072 993 A (ORGANO CORP) 18 March 1997 | Non-patent | – |
23 members in 13 offices
Priority claims3
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| EP1567249A1 | European Patent Office (EPO) | A1 | |
| BR0316992A | Brazil | A | |
| EP1567249A4 | European Patent Office (EPO) | A4 | |
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| KR101083170B1 | Republic of Korea | B1 | |
| US8372282B2 | United States of America | B2 | |
| CA2508423C | Canada | C |
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| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Announcement of lapse in spainLapsedFD2A | FD2A | ES | |
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| Succession in titleGB9C | GB9C | HU | |
| Change of name, addressHC9C | HC9C | HU | |
| Amendments to the register in respect of changes of name or changes affecting rights (sect. 32/1977)REGISTERED BETWEEN 20140717 AND 20140723732E | 732E | GB | |
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| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
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| Filing of the translation of the text of european patentsAG4A | AG4A | HU | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
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| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Amendments to the register in respect of changes of name or changes affecting rights (sect. 32/1977)REGISTERED BETWEEN 20110915 AND 20110921732E | 732E | GB | |
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Numbers
- Publication
- 1567249
- Application
- 37672938
Titles3
- German
- MISCHKAMMER
- English
- MIXING CHAMBER
- French
- CHAMBRE DE MELANGE
Classification
- CPC, 10
- B01D65/08
- B01D61/18
- B01D63/02
- B01D63/04
- B01D65/02
- B01D2321/04
- B01D2321/185
- B01D2313/105
- B01D2313/32
- B01D2315/06
- IPC, 6
- B01D65 08
- B01D65 02
- B01D61 18
- B01D63 02
- C02F3 12
- B01D63 04
Designated states27
- Contracting states, 27
- Austria
- Belgium
- Bulgaria
- Switzerland
- Cyprus
- Czechia
- Germany
- Denmark
- Estonia
- Spain
- Finland
- France
- United Kingdom
- Greece
- Hungary
- Ireland
- Italy
- Liechtenstein
- Luxembourg
- Monaco
- Netherlands (Kingdom of the)
- Portugal
- Romania
- Sweden
and 3 moreShow fewer
- Slovenia
- Slovakia
- Türkiye