Membrane module protection

Information

  • Patent Grant
  • 9764288
  • Patent Number
    9,764,288
  • Date Filed
    Friday, March 15, 2013
    12 years ago
  • Date Issued
    Tuesday, September 19, 2017
    8 years ago
Abstract
In accordance with aspects and embodiments, a filtration system is provided comprising a membrane module comprising an upper header and a lower header, a plurality of hollow fiber membranes having an upper end potted in the upper header and a lower end potted in the lower head, a cage at least partially surrounding the plurality of hollow fiber membranes, and a screen in contact with and surrounding the cage, the filtration system further comprising an aeration cap coupled to the lower header of the membrane module. The screen may protect the hollow fiber membranes from damage from coarse contaminants contained in the feed liquid, may improve module integrity, and may improve the efficiency of the filtration system.
Description
FIELD OF TECHNOLOGY

The present disclosure relates to filtration systems having one or more membrane modules comprising hollow fiber permeable membranes mounted therein, and more particularly, to the protection of said membranes and enhancement of module and system performance.


BACKGROUND

During membrane filtration processes, a feed liquid containing undesirable contaminants is forced through the pores of a membrane. The contaminants contained in the feed liquid do not pass through the pores of the membrane and accumulate on the outside of the membranes in the membrane module. Those particles cause membrane fouling and can clog membrane modules, making them less efficient. Liquid backwash, air scouring and chemical cleaning are common means to remove foulants from the module. However, the membranes in the modules still often suffer from packing by fibrous materials or damage by sharp objects contained within the feed liquid. Fibrous materials or trash may contact the membranes and may become caught around bundles or groups of membranes. In particular, when membranes are used for the pretreatment seawater, sharp shells from sea water often contact the membranes and cause damage to them.


Different methods have been proposed to protect the membrane modules from damage by materials and objects contained within a feed liquid. Pre-screening feed liquid is a common method employed to protect membrane modules from damage by materials in the feed liquid having a size greater than the pores of the membrane fibers. For example, in membrane bioreactors, a pre-treatment screen with perforated mesh is sometimes inserted between the biological tank and the membrane tank to protect the membranes and modules. In this arrangement however, a large pre-treatment screen has to be used and special aerators need to be installed to clean the pre-treatment screen. The large size of the screen and special aerators required to clean the screen present obstacles to efficiently operating such a bioreactor system.


Another method of protecting membranes includes holding a bundle of capillaries together with an open sleeve or casing. Coarse materials that may be contained in a feed liquid, such as hair, are filtered by the sleeve so that these materials can not intrude into the inner section of the membrane bundle. However, the method neglects to remove particles that are smaller than the sleeve opening. Small particles can pass through the open sleeve, move towards the membrane surface and inner fiber bundles, and agglomerate around and inside the membrane fiber bundles. It is difficult for these materials to be removed out of the open sleeve. Gradually these materials accumulate inside the membrane bundle and on the inner surface of the sleeve and the bundles eventually become packed with these materials. The accumulation of these materials can also cause membrane damage. The inability to effectively remove these materials when using an open sleeve configuration presents an obstacle to efficient filtration.


SUMMARY

In accordance with aspects and embodiments, a filtration system is provided comprising a membrane module comprising an upper header, a lower header, a plurality of hollow fiber membranes having an upper end potted in the upper header and a lower end potted in the lower header, a cage at least partially surrounding the plurality of hollow fiber membranes, and a screen in contact with and surrounding the cage, the filtration system further comprising an aeration cap coupled to the lower header of the membrane module.


In accordance with aspects and embodiments, a method of retrofitting a filtration system comprising at least one membrane module having hollow fiber membranes and a cage surrounding the hollow fiber membranes is provided, the method comprising positioning a screen around the cage of the membrane module.


In accordance with aspects and embodiments, a method of facilitating retrofitting a filtration system comprising at least one membrane module having hollow fiber membranes and a cage surrounding the hollow fiber membranes is provided, the method comprising providing a screen, and providing instructions to position the screen around the cage of the membrane module.





BRIEF DESCRIPTION OF THE DRAWINGS

Various aspects of at least one embodiment are discussed below with reference to the accompanying figures, which are not intended to be drawn to scale. The figures are included to provide illustration and a further understanding of the various aspects and embodiments, and are incorporated in and constitute a part of this specification, but are not intended as a definition of the limits of the invention. Where technical features in the figures, detailed description or any claim are followed by references signs, the reference signs have been included for the sole purpose of increasing the intelligibility of the figures and description. In the figures, each identical or nearly identical component that is illustrated in various figures is represented by a like numeral. For purposes of clarity, not every component may be labeled in every figure. In the figures:



FIG. 1A is a cross-sectional view of a filtration system in accordance with one or more embodiments;



FIG. 1B is a cross-sectional view of a filtration system in accordance with one or more embodiments;



FIG. 2 is a cross-sectional view of a conical guide in accordance with one or more embodiments;



FIG. 3 is a cross-sectional view of a membrane module in accordance with one or more embodiments;



FIG. 4 is a cross-sectional view of a filtration system in accordance with one or more embodiments;



FIGS. 5A-5C are perspective views of modified aeration caps in accordance with one or more embodiments;



FIG. 6A is a cross-sectional view of a filtration system in accordance with one or more embodiments;



FIG. 6B is a cross-sectional view of a filtration system in accordance with one or more embodiments;



FIG. 7 is a cross-sectional view of a filtration system in accordance one or more embodiments;



FIG. 8 is a cross-sectional view of a filtration system in accordance with one or more embodiments;



FIG. 9 is a cross-sectional view of a filtration system in accordance with one or more embodiments;



FIG. 10A is a cross-sectional view of membranes in accordance with one or more embodiments;



FIG. 10B an exploded cross-sectional view of membranes in accordance with one or more embodiments;



FIG. 11 presents a cross-sectional view of the filtration system used in the accompanying Examples described herein in accordance with one or more embodiments;



FIG. 12 presents data discussed in accompanying Example 1 in accordance with one or more embodiment;



FIGS. 13-15 present data discussed in accompanying Example 3 in accordance with one or more embodiments;



FIG. 16-19 present data discussed in accompanying Example 5 in accordance with one or more embodiments; and



FIG. 20 presents data discussed in accompanying Example 6 in accordance with one or more embodiments.





DETAILED DESCRIPTION

In accordance with aspects and embodiments of the present disclosure, a filtration system having an improved membrane module is disclosed. The modules of the present disclosure may advantageously protect membranes contained within a membrane module from coarse contaminants in a feed. The modules disclosed may thus improve the integrity of membranes and enhance the usable lifespan of a module. Aspects and embodiments of the present invention may improve the efficiency with which a filtration system having the improved modules of the present disclosure operates. This enhanced efficiency may reduce the cost of operating a filtration system.


A filtration system may comprise a plurality of membrane modules. Each module may have an upper header and a lower header, also referred to herein as an upper potting head or lower potting head, and a plurality of membranes positioned therebetween. The membranes may be porous membranes, and more specifically, may be hollow fiber membranes. The membranes may be potted in at least one of the upper header and the lower header. The membranes may be surrounded by a cage connect to, or disposed between, the headers that may maintain or assist in maintaining the membranes in close proximity to one another and the cage may also prevent excessive movement during filtration. The cage may be secured to the module at the upper potting head and the lower potting head. The cage may have an upper end potted in the upper potting head and a lower end potted in the lower potting head. The membranes, for example the hollow fiber membranes, may be closed at one end, or may, in the alternative, be open at both ends. The membrane modules may be disposed in one or more vessels. Liquid to be filtered, for example feed liquid containing or comprising contaminants, may be fed to the vessels. The feed liquid may comprise contaminants such as trash, foreign objects, and undesirable particles that are unsuitable for the filtrate's intended use. The contaminants may comprise coarse particles or sharp objects. A transmembrane pressure may be applied to the membrane module, causing the feed liquid to pass through the pores of hollow fiber membranes. A filtrate is collected from inside the membrane lumens. Contaminants larger than the membrane pore sizes do not pass through the membranes. These contaminants may become lodged in the membrane pores or accumulate on or around the membranes.


Contaminants in the feed liquid, such as coarse particles or sharp objects, may damage the hollow fiber membranes, reduce membrane integrity, and may reduce the usable lifespan of the membrane module. Aspects and embodiments of the present invention may protect the hollow fiber membranes disposed within a membrane module from coarse contaminants in the feed and may preserve and maintain membrane integrity for a period longer than experienced by an unprotected module.


The modules of the present disclosure may comprise a fine screen, referred to herein simply as a screen. The screen may protect the membranes in the module. The screen may be close-fitting around the module, and the modules of the present disclosure may be referred to as wrapped modules, or screen-wrapped modules.


For example and referring to FIGS. 1A and 1B, membrane module 4 comprises an array, bundle, or plurality of hollow fiber membranes 5 extending longitudinally between upper potting head 6 and lower potting head 7. Referring to FIG. 1B, membrane module 4 may have cage 14 that holds membrane fibers 9 in close proximity to one another and prevents excess movement during filtration. The cage may be constructed of polyethelyene or polypropylene. The cage may have a series of horizontal and vertical bars that form a grid-like structure around membranes 5. Cage 14 may have openings in the range of about from 1 mm2 to about 100 mm2. Screen 8 surrounds cage 14 and membranes 5. Screen 8 provides a screening of feed liquid entering module 4 and may be said to be wrapped around module 4. Each of membranes 5 comprise a plurality of fibers 9 that are sealed at lower potting head 7 and are open at upper potting head 6 to allow for the removal of filtrate from the lumens of fibers 9. In use, module 4 is disposed in a filtration system and arranged vertically in a vessel, such as a feed tank. During filtration, filtrate is withdrawn from the upper potting head 6 and filtrate collection chamber 11 through suction applied to the open ends of the membrane lumens. The suction produces a pressure differential across the membrane walls resulting in feed liquid being drawn from the feed tank through the screen 8 and cage 14 and into contact with the hollow fiber membranes 9.


Screen 8 can be formed of any material suitable to wrap module 4, provide enhanced protection of membranes 5 of module 4, and improve a filtration system efficiency. The screen may be a self-supporting, rigid, hard material, or, the screen may be a flexible material. In accordance with some embodiments, the screen may be comprised of a fine mesh or fabric, such as cotton or nylon. In accordance with other embodiments, the screen may be comprised of polymeric materials, and may, for example, be polytetrafluorethylene (PTFE). The screen may be fabricated to fit the membrane module, and in some embodiments, may be in close proximity to, or in contact with, at least one of cage 14 and membranes 5. For example, screen 8 may comprise a flexible material fabricated to slide over and around a membrane module. The screen may have a seam that runs vertically along the module. Screen 8 may be formed to have similar characteristics of a sock and may be fabricated to fit module 4 tightly.


Screen 8 may have a cross-sectional area that is nearly identical to that of module 4. Screen 8 may be shaped similarly to module 4 and may have at least one open end, and may be installed by sliding an open end of screen 8 over and around module 4. A guide may be used to assist in placing screen 8 on module 4. Referring to FIG. 2, conical guide 60 may be used to facilitate placement of screen 8 around membrane module 4. Conical guide 60 may fit over upper potting head 6 and filtration collection chamber 11 such that screen 8 can be easily slid over module 4.


Screen 8 may mate with module 4. As used herein, the term “mate” or “mating” may describe any manner of connecting or joining two or more components together. The term “mate” or “mating” may describe any mechanical, thermal, or chemical process that connects or joins two or more components together. In the examples disclosed herein, the term “mate” or “mating” may mean welding, soldering, molding, adhering, snapping, interlocking, fastening or otherwise connecting two components. In certain examples, screen 8 and module 4 may be mated by being fastened together with the assistance of another component, thereby forming a connection. Module 4 may, for example, comprise protrusions, grooves, or other structural features that facilitate mating, fitting, and securing screen 8 to module 4. Screen 8 may mate with and be secured to module 4 by fasteners, such as cable ties.


Referring to FIG. 3, module 4 comprises groove 15 positioned at the upper end of the module and below the upper potting head. Screen 8 is positioned below groove 15 and secured by fastener 16. Groove 15 and fastener 16 prevent upward vertical movement of screen 8. A similar groove and fastener may be positioned at the lower end of the module to prevent downward vertical movement. Module 4 may comprise additional grooves and screen 8 may be secured by additional fasteners. Alternative configurations of protrusion, fasteners, and other mating features, may be used to secure screen 8 to module 5 and these features be located in any configuration and in any location on module 4. Alternatively, screen 8 may be self-securing such that when screen 8 is positioned around module 4, screen 8 secures to the module without the necessity of further securing devices.


Screen 8 has apertures that are sized to reject debris and contaminants that are present in a feed liquid entering the membrane module. Screen 8 may comprise apertures having any geometry, including apertures that are square, rectangular, circular, oblong, and polygonal. The apertures of screen 8 may be formed in a piece of woven material, or the apertures of screen apertures 8 may be the void space between the threads of a woven material, itself. Though aperture size within a screen may vary, screen 8 may have an average aperture size, where average aperture size is defined by the average diameter or width of apertures, in the range of from about 1 μm to about 100 μm, from about 10 μm to about 350 μm, and most preferably, in a range of from about 30 μm to about 150 μm.


Contaminants having an aperture size greater than the aperture size of screen 8 will be rejected by screen 8. Particles having an aperture size equal to screen 8 may lodge in the apertures of the screen. Larger contaminant particles may also accumulate on the outer surface of the screen and block apertures.


Contaminants that have a size less than the aperture size of screen 8 will pass through screen 8 during filtration and contact the hollow fiber membranes. Contaminants having a size greater than the pores of fibers 9 will then be rejected by the hollow fiber membranes. Contaminants that pass through screen 8 and are rejected by membrane fibers 9 may build up on the membrane fibers and accumulate in the space between screen 8 and membranes 5. Contaminant accumulation on screen 8, accumulation on membrane fibers 9, and contaminant build up in the space between screen 8 and membranes 5 may need to be removed to maintain module efficiency.


The build-up of contaminants on screen 8 and membranes 5 may present an obstacle to efficient filtration. Screen 8 and membranes 5 may require cleaning to remove contaminant build up. In accordance with aspects and embodiments, cleaning membranes 5 may also efficiently, effectively, and simultaneously clean screen 8.


To remove contaminants from screen 8 and membranes 5, a gas, typically air, may be introduced into the bottom of membrane module 4 to produce gas bubbles. The bubbles may scrub the solids accumulated on the membrane surfaces and also may result in the vibration and scouring of screen 8. Cleaning chemicals such as chlorine may be added to the gas providing the bubbles to further assist in the cleaning process. This process, which may be referred to as a gas bubble aeration cleaning process, may be used in conjunction with backwashing regimes, including liquid backwashing, pressurized gas backwashing, and combinations of both, as well as with chemical cleaning and dosing arrangements.


Referring back to FIGS. 1A and 1B, membrane module 4 has a plenum chamber 17. Lower potting head 7 has a number of holes 10 uniformly distributed therein to enable gas or air to be supplied therethrough from a feed line 12 and plenum chamber 17 located below the aeration holes 10. Plenum chamber 17 may be an aeration cap fitted below the lower potting head 7. Membrane fibers 9 are fixed uniformly within upper potting head 6 and lower potting head 7 and aeration holes 10 are formed uniformly relative to each membrane fiber 9 so as to provide, in use, a uniform distribution of gas bubbles between the fibers.


The gas bubble cleaning process may be used in conjunction with a backwash, and may be used continually during filtration to clean the modules. Membrane modules may be continuously aerated during filtration, and aeration may continuously dislodge contaminants from the membranes. Continuously aerating module 4 may thus reduce the build-up of contaminants on screen 8 and membranes 5 and enhance filtration efficiency.


Continuous aeration of the module may however increase operating costs. In continuously aerated non-wrapped modules, for example, in modules without screen 8, aeration contributes substantially to operating cost. In a wrapped module however, there is a pressure drop across screen 8 in addition to the pressure drop experienced across membranes 5. Screen 8 thus may increase the transmembrane pressure in module 4. Aeration flow rates in a screen-wrapped module may be reduced by up to about 40% at a constant transmembrane pressure as compared to comparable non-wrapped modules. The transmembrane pressure increase in module 4 may allow the aeration flow rate to module 4 to be reduced without reducing the filtration efficiency of the module. Using screen-wrapped modules may enable reduced aeration flow rates, which may result in substantial cost savings as compared to filtration systems using traditional, unwrapped, modules.


Solids removed in the cleaning process may be intermittently or continuously removed. Solids may be removed by a drain-down of the module or may be removed during filtration. Removing solids during filtration, however, requires an egress in the module or filtration system to allow the free-flow of contaminants accumulated between screen 8 and membranes 5 out of the system. A modified aeration cap or opening in screen 8 may be used to facilitate the egress of contaminants from the module.


For example and referring to FIG. 4, plenum chamber 17 includes opening 50 formed beneath feed line 12. During filtration, feed liquid enters the membrane module primarily through screen 8, and to a lesser extent through opening 50. The feed liquid is then applied to fibers 9 in the usual manner. Concentrate comprising rejected contaminants and trash accumulated within the module 4, between membranes 5 and screen 8, is able to egress via opening 50, either of its own accord under gravitational influence, or by virtue of gas bubble scouring, backwashing flows, drain down of the tank, or the like.


Opening 50 of plenum chamber 17 may be an orifice in a modified aeration cap and may have a variety of configurations to allow accumulated contaminants to flow out of the module. Opening 50 may have any shape, and may be circular, rectangular, or comprise a plurality of orifices. The orifices that comprise an opening may have any shape. An aeration cap may, for example, be modified to have a single opening, or may, for example, have an opening comprising a plurality of orifices. Referring to FIG. 5A, modified aeration cap 17 may be substantially unsealed and may for example, have an opening 50A that is equal to or greater than the cross-sectional area of the aeration cap, and may for example, be about 200 mm in diameter. Referring to FIG. 5B, modified aeration cap 17 may, in the alternative, have an orifice 50B that is substantially less than the diameter of the aeration cap. For example, orifice 50B may be less than about 200 mm, and may have a diameter, for example, of between about 25 mm to about 75 mm. Further and referring to FIG. 5C, modified aeration cap 17 may have an opening 50C comprising a plurality of orifices and for example, may comprise two orifices. The orifices in plurality of orifices may each have a diameter in the range of about 5 mm to about 20 mm. In certain embodiments, orifices 50C of modified aeration cap 5C may be about 8 mm. The opening in a modified aeration cap may be positioned in the center of the aeration cap or may be positioned off-center.


When using a modified aeration cap, feed liquid in the filtration system may enter the membrane module through the aeration cap opening. Flow that enters through the modified aeration cap may be referred to as bypass flow because it bypasses the screen surrounding the module. The percentage of bypass flow is generally dependent on the size of the aeration cap opening and the material and aperture size of the screen. Larger openings allow for more feed liquid to enter the module than smaller openings. Certain materials, such as cotton, cause a higher percentage of feed to bypass the screen, whereas other materials, such as a screen comprising nylon with a similar aperture size to that of a screen comprising cotton, cause less bypass flow. Further, when screens having larger average aperture sizes are used in conjunction with a modified aeration cap, the module experiences less bypass flow.


Modifications may be made to a feed entry port, such as an opening in the aeration cap or plenum chamber, to reduce any decreases in effectiveness that may result from bypass flow through the feed entry port. Bypass flow, in general, may decreases the effectiveness of wrapping module 4 with screen 8 due to the ingress of coarse contaminant matter through opening 50. Any loss in efficiency as a result of bypass flow, however, may generally be balanced by advantages stemming from the free flow of concentrate and waste, including coarse contaminant matter capable of damaging membranes 5, outwardly through opening 50. Modifications to a feed entry port may further mitigate possible negative effects of bypass flow.


For example, referring to FIGS. 6A and 6B, a selectively operable screen 25 may be provided across feed entry port 26. Feed liquid enters membrane module 4 through port 26 and flows through screen 25 into membrane module 4, where it is applied to membranes 9 in the usual manner. When concentrate and other waste has accumulated within module 4, screen 25 is opened, as shown in FIG. 6B, to allow the free flow of concentrate and waste out of module 4 through port 26. It will be appreciated that a similar effect could be achieved by having an inflow path which is screened and an outflow path which is unscreened. Similarly, portions of screen 8 could be provided with selectively operable openings to provide a similarly advantageous operation.


In the alternative and referring to FIG. 7, a non-return valve 27 may be positioned upstream of feed entry port 26. Non-return valve 27 may provide for flow of waste out of module 4 and prevent feed from entering the module through feed entry port 26. A non-return valve 27 may eliminate up to about 100% of bypass flow.


In other embodiments, the bottom of module 4 may be sealed and the screen surrounding the module may be positioned or modified to allow the egress of accumulated contaminants out of the module. For example and referring to FIG. 8, module 4 has screen 8 surrounding membranes 5. Screen 8 is spaced from the periphery of module 4 while extending the full length of module 4. Screen 8 is attached to lower potting head 7 but open at its upper end 18 adjacent upper potting head 6 to define opening 19. In use, feed liquid flows through screen 8 into contact with the membranes 5. Concentrate produced during filtration, gas bubble scouring, and backwash flows out of module 4 through opening 19.


In the alternative, an opening may be formed between the top of a screen and the bottom of an upper potting head to provide a path for contaminants to escape. For example and referring to FIG. 3, screen 8 does not extend fully to upper potting head 6 and gap or opening 20 is provided between end 18 of screen 8 and upper potting head 6. Opening 20 again allows concentrate to flow out of module 4. Alternatively, gap or opening 20 may be formed in screen 8, itself, but may have a larger aperture size than the average size screen apertures to allow concentrate to flow out of the module 4 through opening 20 in screen 8.



FIGS. 10A and 10B show an embodiment where fiber membrane mats 21 are used in the module. In this arrangement, each mat 21 is provided with co-extensive protection screens 22 and 23 which are provided on each side of each mat 21 and extend between upper potting head 6 and lower potting head 7. As best shown in FIG. 10B, screens 22 and 23 are open adjacent edges 24 of the mats 21 to allow outward flow of concentrate.


Existing water treatment systems may be retrofitted by providing and implementing the modifications discussed herein in accordance with one or more embodiments. For example, an existing filtration system comprising membrane modules may be retrofitted with one or more of the enhancements and modifications discussed herein. The modifications and enhancements may be used individually, or in combination. For example, one or more modules of an existing filtration system may be retrofitted with a modified aeration cap in accordance with aspects and embodiments, may be retrofitting with screen according to aspects and embodiments, or may be retrofitted with both.


Improved and modified filtration systems of the present disclosure may be able to produce a filtrate at a lower energy than traditional filtration systems by providing and implanting the modifications discussed herein in accordance with one or more embodiments, for example, by enabling lower aeration rates to be provided to the system while maintaining a constant transmembrane pressure. In addition, aspects and embodiments disclosed may improve the usable lifespan of membrane modules and maintain module integrity, reducing the overall capital cost of operating and maintaining a filtration system employing membrane modules.


The function and advantages of these and other embodiments can be further understood from the examples below, which illustrate the benefits and/or advantages of the one or more systems, methods, and techniques but do not exemplify the full scope of the invention.


EXAMPLES Bench studies were conducted using Siemens Memcor® S10 VAB modules. The properties of a standard S10 VAB module are shown in Table 1.











TABLE 1





Fiber Diameter





(Inner Diameter/


Outer Diameter)
Fiber Length
Fiber Count
Surface Area







600 μm/800 μm
1.05 m
10560
27.87 m2









As shown in FIG. 11, an S10 VAB module 4 having membranes 5 and cage 14 was wrapped with screen 8. Different material screens having a variety of average aperture sizes were tested. The screens were manufactured to be fit around module 4 with the assistance of a conical guide. The screens fit module 4 tightly and featured a longitudinal seam and had cuffs at both ends that housed cable ties. The cable ties were used to fasten the screen to the module. To prevent vertical movement of the screen, grooves were machined into the module to facilitate fastening the screens to the module and to prevent screen movement during filtration. The different screens tested are presented in Table 2.










TABLE 2





Average Screen Aperture Size



(μm)
Screen Material
















48
Nylon


64
Nylon


90
Nylon


50
Cotton


150
Cotton


38
Polytetrafluoroethylene (PTFE)









In order to investigate the increase in transmembrane pressure caused by wrapping module 4 with screen 8, pressure transducers were installed on the aeration discharge of the modules so that the back pressure during backwash sequences could be measured and recorded. Trials were conducted using sealed and modified aeration caps. The modified aeration caps tested are shown in FIGS. 5A-5C. Modified aeration caps 17 having openings 50 were installed in on screen-wrapped modules to create a channel for solids-laden backwash waste from within the screen enclosed area to escape. A modified aeration cap having a three inch orifice, also referred to as an unsealed cap (FIG. 5A), a modified aeration cap having a one inch orifice (FIG. 5B), and a modified aeration cap having two 8 mm orifices (FIG. 5C), were tested. Different screens were also investigated in conjunction with modified aeration caps to determine the impact of average screen aperture size and screen material on bypass flow.


In order to quantify the amount of flow bypassing screens 8 through the openings 50 of modified aeration caps 17, screen-wrapped S10V modules were used to filter feed liquid in a tank that provided enough room for a submerged magnetic flow meter to be mounted underneath the modified aeration caps. Referring to FIG. 11, module 4 was fitted with a magnetic flow meter 45 and placed in a vessel 40. Feed liquid (not shown) was introduced into vessel 40 and filtered by module 4. Bypass flow entered through opening 50 and was measured by meter 45.


Example 1
Impact of Screen Aperture Size and Screen Material on Bypass Flow

Bypass flow was measured for in a filtration system comprising a screen-wrapped module equipped with a modified aeration cap having two 8 mm orifices (See FIG. 5C). Bypass flow data was collected for modules wrapped with 48 μm and 64 μm nylon screens and 50 μm and 150 μm cotton screens. Each module was operated at a filtration interval of 20 minutes. The modules were also tested with a PVC insert between the wrapped module and the tank to simulate scaled-up, field, conditions. Bypass flow data, shown in FIG. 12, was collected in terms of the average bypass flow through the modified aeration cap as a percentage of the total flow to the module.


The data indicates that the amount of bypass flow decreases with an increase in the average screen aperture size for the same material. The data further reveals that the use of a cotton screen is disadvantageous with regard to bypass flow as the 50 μm cotton screen produces a much higher bypass flow percentage compared to the 48 μm nylon screen. This difference may be attributable to the difference in the way the threads are woven in the different screen materials.


Example 2
Impact of Average Screen Aperture Size on Hydraulic Performance

The impact of average screen aperture size on hydraulic performance was analyzed by measuring the permeability, flux, and fouling rate of the module. Modules were run at a flux of between 50 and 60 liters per square meter per hour (LMH) and a filtration interval of 20 minutes. Data was first collected on an S10 module wrapped with a 64 μm nylon screen. The wrapped module was run for a period of 55 days. Permeability was measured at 20° C. as a function of LMH/Bar, flux was measured in terms of LMH, and the fouling rate was measured as a function of the feed fouling index (FFI).


FFI characterizes the fouling nature of feed liquid and monitors the performance of a filtration unit. The FFI of a stream measures the fouling rate of the feed normalized to 20° C. and the calculation is an estimate of the rate of increase in resistance when a given volume of feed is filtered per unit area of membrane. The standard engineering units defined for FFI are m−2. However, in practice, the resulting value is a large number. FFI is therefore generally divided by 1012, which typically gives values in the range of approximately 1-100.


The formula used by to calculate FFI is:






FFI
=



(


R
2

-

R
1


)

×
N
×
A
×
1000


V

(


R
1



R
2


)







Where:

    • FFI=Feed Fouling Index (FFI units or m−2×1012)
    • R1=Initial Resistance for the filtration interval (R units or m−1×1012)
    • R2=Final Resistance for the filtration interval, calculated just before backwash (R units or m−1×1012)
    • N=Number of Filtration Modules that are filtering
    • A=Nominal surface area of each Filtration Module (m2)
    • V=The total volume of filtrate produced between R1 and R2 (litres).


After collecting data, the screen was replaced with a 48 μm screen and data was collected for an additional 35 days. Permeability, which was observed as stable at about 160 LMH/Bar for the seven days before 64 μm screen was replaced with the 48 μm screen.


After the 64 μm screen was replaced with the screen having smaller aperture sizes, the permeability decreased from 160 LMH/Bar to about 105 LMH/Bar over the next 7 days, whereas turbidity in the feed liquid remained stable. Over the first seven days after the switch, the FFI also more than doubled. Hydraulic performance deteriorated and the fouling rate increased with the use of the smaller, 48 μm screen, evidencing the impact of average aperture size on module performance. This testing demonstrates that utilizing a screen with a larger average aperture size may enhance module performance as compared to using screens with smaller average aperture sizes.


Example 3
Impact of Aeration Cap Design-Sealed vs. Unsealed Caps

An S10 screen-wrapped module wrapped with a nylon screen having an average pore size of about 90 μm was run with a sealed aeration cap and an unsealed aeration cap. The unsealed aeration cap had an orifice of about three inches. Filtration data was collected using both the sealed and unsealed cap at various aeration flow rates.


Data was collected on the turbidity of the feed liquid in nephelometric turbidity units (NTU), and data was also collected on the module flux and the feed fouling index (FFI) at a variety of aeration flow rates using both a sealed and unsealed cap. This data is presented in FIG. 13. The screen-wrapped modules were run at a flux of about 60 LMH to about 70 LMH. The unsealed cap module showed reasonable hydraulic performance as a function of permeability. The permeability values ranged from about 140 LMH/bar to 65 LMH/bar. When the unsealed cap was replaced with a sealed cap, FFI rapidly increased. It was concluded that use of an unsealed cap leads to a more stable hydraulic performance as compared to a sealed cap. When using an unsealed cap, solids-laden backwash waste from the membrane fibers may escape through the channel created by the hole in the aeration cap, whereas in the sealed cap, waste cannot escape from the module.


Referring to FIG. 14, it was observed that when using a sealed aeration cap, increases in backwash aeration flow rate enhanced module performance. Better flux and lower feed fouling indices were observed. When using the sealed cap, hydraulic performance increased with aeration flow rate and deteriorated with decreases in aeration flow rate. This indicated that the backwash was more efficient when the aeration flow rate was higher.


Referring now to FIG. 15, it was further observed that when the module was fitted with an unsealed aeration cap, there was little discernible change in module performance when the aeration flow rate was reduced. The aeration flow rate was lowered from 10 m3/h to 6 m3/h without any measurable deterioration in hydraulic performance. The data indicated that the backwash remained equally efficient when the aeration flow rate was reduced. Thus by using a modified aeration cap that allows for waste to escape during backwash, aeration flow rates may be reduced without deterioration in module performance. Notably, the cost of providing an aeration flow to a module comprises a significant portion of the total cost required to run the filtration system. Based on this testing, it was found that the ability to reduce the aeration flow rate without deterioration in performance when using a screen may result in a more economic operation of modules and may result in a more economic operation of filtration systems comprising wrapped modules.


Example 4
Impact of Aeration Cap Design-Unsealed Cap vs. Modified Caps

An S10 screen-wrapped module wrapped with a nylon screen having an average pore size of about 64 μm was tested to assess the impact of using an unsealed aeration cap with a three inch orifice as compared to using a modified aeration cap having two 8 mm orifices. The data collected indicated that replacing the unsealed cap with the modified cap improved hydraulic performance. The modified cap caused a higher back pressure during backwash aeration. The enhanced performance of the modified cap may be attributable, in part, to less aeration air circumventing the module though the smaller bypass orifice area. The higher back pressure during backwash aeration provided for a more effective backwash and thus more effective solids removal. In addition, the higher back pressure may have been more effective at removing solids accumulation on the outer surface of the screen. Further, the enhanced performance may also be attributable to a lower bypass flow through the modified aeration cap. It was found that the smaller bypass area reduced bypass flow and provided for less solids entering the module through the aeration cap and bypassing the screen.


Example 5
Efficacy of Maintenance Washes

A module wrapped with a 38 μm PTFE screen was used to investigate the effectiveness of regular maintenance washes on mitigating bypass flow through modified aeration cap orifices. The trial was run for 45 days and bypass flow was measured as a percentage of total flux. Feed liquid turbidity and module permeability data was also collected. Maintenance washes were performed at varied frequencies to assess their efficacy in reducing bypass flow.


At the start of the trial, the bypass flow of was 9%. The module was run for six days without undergoing a maintenance wash. On day 6, the bypass flow rate was measured and determined to have increased to 57%. Between day 6 and day 20, four maintenance washes were performed along with two shutdown periods. Maintenance washes were performed with 300 ppm of chlorine and were carried out on days 6, 9, 15 and 18. On day 20, the amount of bypass flow was 16%. This data is shown in FIG. 16.


Still referring to FIG. 16, beginning on day 20 through day 23, maintenance washes were performed daily. The data indicated that daily maintenance washes reduced bypass flow to around 11%, and when maintenance washes were then performed every other day, bypass flow was reduced to about to around 14%. In both cases, the bypass flow percentage directly after a maintenance wash was around 10%.


Maintenance washes were then performed on day 26 and day 30. The data from this test is shown in FIG. 17. The three day break after previous maintenance washes yielded bypass flow of around 12% directly after the wash and an average bypass flow of about 19%. A maintenance wash was then performed on day 36. The five day break after the previous maintenance wash again yielded bypass flow of around 12% directly after the wash and an average bypass flow of about 19%. A large spike in feed turbidity caused a bypass flow measure of over 30% during the three-day cleaning tests.


Referring to FIGS. 18 and 19, the trial indicated that daily maintenance washes were able to reduce the amount of bypass flow before a maintenance wash to approximately the level of bypass flow afterwards, which indicated that maintenance washes were able to maintain screen fouling at a permanently low level. Maintenance washes performed every second day also kept the amount of bypass flow at a constant level, though at a slightly higher constant than if washes were performed daily. However, when maintenance washes were performed every second day, the amount of bypass flow during one filtration cycle increased from around 10% to around 17%, whereas the increase observed in screens cleaned daily was less dramatic.


Example 6
Integrity of Screen-Wrapped vs. Control Modules

The impact of screen-wrapping on module integrity was evaluated by wrapping a module with a nylon screen and running the wrapped module and an unwrapped control module simultaneously. Pressure decay tests were performed every 12 hours at a pressure of 100 kPa for both the control and the screen wrapped module for about 45 days. The data from this trial is presented in FIG. 20. The integrity of the wrapped module remained stable throughout the 45 day trial however the control module exhibited fiber damage in the last five days of the trial. This testing indicated that wrapping modules 4 with screen 8 may maintain the integrity of the module for a time period longer than experienced by a comparable, unwrapped module.


Through testing, it was determined that wrapping module 4 with screen 8 increased the module resistance and transmembrane pressure. Screen 8 also prevented aeration air from escaping through the screen and into the membrane tank as it normally would in an unwrapped module. The inability of aeration air to escape increased the air flow per cross-sectional module area in comparison to an unwrapped module and consequently, pressure within the screen-wrapped area between screen 8 and membranes 5 increased. The increase enabled the aeration flow rate to be reduced without reducing filtration performance.


Using aeration caps with orifices for solid-ladden backwash to escape from the module increased hydraulic performance. Using modified aeration caps with lesser sized orifices further improved module performance. It was observed that when using a modified aeration cap in place of an unsealed aeration cap, the back pressure in the system increased, which indicated that system operating costs could be reduced when using screen-wrapped modules because aeration flow rate, and thus the cost of providing aeration to the module, could while maintaining a constant transmembrane pressure.


The presence of bypass flow through modified aeration caps, however, necessarily decreased the overall efficacy of wrapping the membrane module because fiber damaging particles, meant to be rejected by the screen, could enter the module and contact the membranes. Thus it may be advantageous to install a non-return valve below modified aeration caps to prevent feed liquid from entering the module area between the screen and the membranes.


It is to be appreciated that embodiments of the systems, apparatuses and methods discussed herein are not limited in application to the details of construction and the arrangement of the apparatus components and system operations as set forth in the above description or illustrated in the accompanying drawings. The apparatuses, systems and methods are capable of implementation in other embodiments and of being practiced or of being carried out in various ways. Examples of specific implementations are provided herein for illustrative purposes only and are not intended to be limiting. In particular, systems, apparatuses and features discussed in connection with any one or more embodiments are not intended to be excluded from a similar role in any other embodiment.


Also, the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. Any references to embodiments or elements or acts of the apparatus and methods herein referred to in the singular may also embrace embodiments including a plurality of these elements, and any references in plural to any embodiment or element or act herein may also embrace embodiments including only a single element. The use herein of “including,” “comprising,” “having,” “containing,” “involving,” and variations thereof is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Any references to positional or spatial orientation are intended for convenience of description, not to limit the present apparatus and methods or their components.


Having described above several aspects of at least one embodiment, it is to be appreciated that various alterations, modifications, and improvements will readily occur to those skilled in the art. Such alterations, modifications, and improvements are intended to be part of this disclosure and are intended to be within the scope of the invention. Accordingly, the foregoing description and drawings are by way of example only.

Claims
  • 1. A filtration system comprising: A membrane module comprising: An upper header;A lower header;A plurality of hollow fiber membranes having upper ends potted in the upper header and lower ends potted in the lower header;A liquid permeable cage at least partially surrounding the plurality of hollow fiber membranes; andA liquid permeable screen in contact with and surrounding the cage;An aeration cap coupled to the lower header of the membrane module;A non-return valve in fluid communication with the aeration cap, the non-return valve configured to provide for flow of waste out of the module and to prevent any feed liquid from entering an area between the screen and the membranes; andWherein the membrane module includes a groove positioned at an upper end of the membrane module below the upper header, the screen being positioned below the groove and secured by a fastener, the groove and the fastener configured to prevent upward vertical movement of the screen.
  • 2. The filtration system of claim 1, wherein the screen has an average aperture size in a range of from about 10 μm to about 500 μm.
  • 3. The filtration system of claim 2, wherein the screen has an average aperture size in a range of from about 30 μm to about 150 μm.
  • 4. The filtration system of claim 3, wherein the screen comprises a material capable of self-securing to at least one of the cage, the upper header, and the lower header.
  • 5. The filtration system of claim 4, wherein the screen comprises a material selected from the group consisting of nylon, cotton, and polytetrafluoroethylene (PTFE).
  • 6. The filtration system of claim 2, wherein the average aperture size of the screen is smaller than an average opening size of the cage.
  • 7. The filtration system of claim 1, wherein the aeration cap comprises an area that defines an opening.
  • 8. The filtration system of claim 7, wherein the area has a diameter in a range of from about 25 mm to about 200 mm.
  • 9. The filtration system of claim 7, wherein the area has a plurality of openings.
  • 10. The filtration system of claim 9, wherein the plurality of openings each have a diameter in a range of about 5 mm to about 20 mm.
  • 11. The filtration system module of claim 1, wherein the membrane module is constructed and arranged to provide a reduction in an aeration flow rate at a constant transmembrane pressure as compared to a filtration system without a screen in contact with and surrounding the cage.
  • 12. The filtration system of claim 1, wherein the screen extends only partially along lengths of the membranes.
  • 13. A filtration system comprising: a membrane module comprising: an upper header;a lower header;a plurality of hollow fiber membranes having upper ends potted in the upper header and lower ends potted in the lower header;a liquid-permeable cage at least partially surrounding the plurality of hollow fiber membranes; anda liquid-permeable screen in contact with and surrounding the cage; andan aeration cap coupled to the lower header of the membrane module, an opening being defined in the aeration cap; anda selectively operable screen coupled to the aeration cap, the selectively operable screen configured to open from a closed position covering at least a portion of the opening to an open position in which the selectively operable screen remains coupled to the aeration cap to allow flow of waste out of the membrane module.
  • 14. The filtration system of claim 13, wherein the screen is coupled to at least one of the cage, the upper header, and the lower header.
  • 15. The filtration system of claim 14, wherein at least one of the cage, the upper header, and the lower header comprises a mating component to facilitate coupling of the screen to the cage.
  • 16. The filtration system of claimed 13, wherein the screen is self-securing around the cage without use of securing devices.
  • 17. The filtration system of claim 13, wherein the screen is secured to the module with a cable tie.
  • 18. The filtration system of claim 13, wherein the screen is spaced from a periphery of the membrane module and extends a full length of the membrane module, the screen being open at an upper end thereof adjacent the upper header and defining an opening between the periphery of the membrane module and the upper end of the screen at a position along the membrane module corresponding to the upper end of the screen.
  • 19. The filtration system of claim 13, wherein an opening is defined between a top of the screen and a bottom of the upper header.
Priority Claims (1)
Number Date Country Kind
2007901821 Apr 2007 AU national
CROSS-RELATED APPLICATIONS

This application claims priority under 35 U.S.C. §120 to U.S. patent application Ser. No. 12/594,376, filed on Oct. 2, 2009, titled “MEMBRANE MODULE PROTECTION,” which is a national stage application and claims the benefit under 35 U.S.C. §371 of International Application No. PCT/AU08/00491, filed Apr. 4, 2008, which claims priority to Australian Provisional Patent Application No. 2007901821, filed Apr. 4, 2007, titled “MEMBRANE MODULE PROTECTION,” each of which is incorporated herein by reference in their entirety for all purposes.

US Referenced Citations (705)
Number Name Date Kind
256008 Leak Apr 1882 A
285321 Tams Sep 1883 A
403507 Bode May 1889 A
511995 Buckley Jan 1894 A
1997074 Novotny Apr 1935 A
2080783 Petersen May 1937 A
2105700 Ramage Jan 1938 A
2843038 Manspeaker Jul 1958 A
2926086 Chenicek et al. Feb 1960 A
3068655 Murray et al. Dec 1962 A
3139401 Hach Jun 1964 A
3183191 Hach May 1965 A
3191674 Richardson Jun 1965 A
3198636 Bouthilet Aug 1965 A
3228876 Mahon Jan 1966 A
3246761 Bryan et al. Apr 1966 A
3275554 Wagenaar Sep 1966 A
3421354 Strybel et al. Jan 1969 A
3442002 Geary et al. May 1969 A
3462362 Kollsman Aug 1969 A
3472168 Inoue et al. Oct 1969 A
3472765 Budd et al. Oct 1969 A
3492698 Geary et al. Feb 1970 A
3501798 Carraro Mar 1970 A
3505215 Bray Apr 1970 A
3556305 Shorr Jan 1971 A
3563860 Henderyckx Feb 1971 A
3591010 Pall et al. Jul 1971 A
3592450 Rippon Jul 1971 A
3625827 Wildi et al. Dec 1971 A
3628775 McConnell et al. Dec 1971 A
3654147 Levin Apr 1972 A
3679052 Asper Jul 1972 A
3689009 Terrell Sep 1972 A
3693406 Tobin, III Sep 1972 A
3700561 Ziffer Oct 1972 A
3700591 Higley Oct 1972 A
3708071 Crowley Jan 1973 A
3728256 Cooper Apr 1973 A
3763055 White et al. Oct 1973 A
3791631 Meyer Feb 1974 A
3795609 Hill et al. Mar 1974 A
3804258 Okuniewski et al. Apr 1974 A
3827566 Ponce Aug 1974 A
3843809 Luck Oct 1974 A
3876738 Marinaccio et al. Apr 1975 A
3912624 Jennings Oct 1975 A
3937015 Akado et al. Feb 1976 A
3955998 Clampitt et al. May 1976 A
3962095 Luppi Jun 1976 A
3968192 Hoffman, III et al. Jul 1976 A
3982095 Robinson Sep 1976 A
3992301 Shippey et al. Nov 1976 A
3993816 Baudet et al. Nov 1976 A
4016078 Clark Apr 1977 A
4049765 Yamazaki Sep 1977 A
4076656 White et al. Feb 1978 A
4082683 Galesloot Apr 1978 A
4105556 O'Amaddio et al. Aug 1978 A
4105731 Yamazaki Aug 1978 A
4107043 McKinney Aug 1978 A
4130622 Pawlak Dec 1978 A
4138460 Tigner Feb 1979 A
4157899 Wheaton Jun 1979 A
4169873 Lipert Oct 1979 A
4183890 Bollinger Jan 1980 A
4187263 Lipert Feb 1980 A
4188817 Steigelmann Feb 1980 A
4190411 Fujimoto Feb 1980 A
4190419 Bauer Feb 1980 A
4192750 Elfes et al. Mar 1980 A
4193780 Cotton, Jr. et al. Mar 1980 A
4203848 Grandine, II May 1980 A
4204961 Cusato, Jr. May 1980 A
4218324 Hartmann et al. Aug 1980 A
4226921 Tsang Oct 1980 A
4227295 Bodnar et al. Oct 1980 A
4230583 Chiolle et al. Oct 1980 A
4243525 Greenberg Jan 1981 A
4247498 Castro Jan 1981 A
4248648 Kopp Feb 1981 A
4253936 Leysen et al. Mar 1981 A
4271026 Chen et al. Jun 1981 A
4272379 Pollock Jun 1981 A
4302336 Kawaguchi et al. Nov 1981 A
4315819 King et al. Feb 1982 A
4323453 Zampini Apr 1982 A
4340479 Pall Jul 1982 A
4350592 Kronsbein Sep 1982 A
4353802 Hara et al. Oct 1982 A
4359359 Gerlach et al. Nov 1982 A
4367139 Graham Jan 1983 A
4367140 Wilson Jan 1983 A
4369605 Opersteny et al. Jan 1983 A
4371427 Holler et al. Feb 1983 A
4384474 Kowalski May 1983 A
4385150 Miyake et al. May 1983 A
4388189 Kawaguchi et al. Jun 1983 A
4389363 Molthop Jun 1983 A
4405688 Lowery et al. Sep 1983 A
4407975 Yamaguchi Oct 1983 A
4414113 LaTerra Nov 1983 A
4414172 Leason Nov 1983 A
4415452 Heil et al. Nov 1983 A
4431545 Pall et al. Feb 1984 A
4451369 Sekino et al. May 1984 A
4462855 Yankowsky et al. Jul 1984 A
4467001 Coplan et al. Aug 1984 A
4476015 Schmitt et al. Oct 1984 A
4476112 Aversano Oct 1984 A
4491522 Ishida et al. Jan 1985 A
4496470 Kapiloff et al. Jan 1985 A
4511471 Muller Apr 1985 A
4519909 Castro May 1985 A
4539940 Young Sep 1985 A
4540490 Shibata et al. Sep 1985 A
4545862 Gore et al. Oct 1985 A
4547289 Okano et al. Oct 1985 A
4609465 Miller Sep 1986 A
4610789 Barch Sep 1986 A
4614109 Hofmann Sep 1986 A
4623460 Kuzumoto et al. Nov 1986 A
4623670 Mutoh et al. Nov 1986 A
4629563 Wrasidlo Dec 1986 A
4632745 Giuffrida et al. Dec 1986 A
4636296 Kunz Jan 1987 A
4642182 Drori Feb 1987 A
4647377 Miura Mar 1987 A
4650586 Ellis, III Mar 1987 A
4650596 Schlueter et al. Mar 1987 A
4656865 Callan Apr 1987 A
4660411 Reid Apr 1987 A
4666543 Kawano May 1987 A
4670145 Edwards Jun 1987 A
4673507 Brown Jun 1987 A
4687561 Kunz Aug 1987 A
4687578 Stookey Aug 1987 A
4688511 Gerlach et al. Aug 1987 A
4689191 Beck et al. Aug 1987 A
4702830 Makino et al. Oct 1987 A
4702836 Mutoh et al. Oct 1987 A
4702840 Degen et al. Oct 1987 A
4707266 Degen et al. Nov 1987 A
4708799 Gerlach et al. Nov 1987 A
4718270 Storr Jan 1988 A
4744240 Reichelt May 1988 A
4749487 Lefebvre Jun 1988 A
4752421 Makino Jun 1988 A
4756875 Tajima et al. Jul 1988 A
4763612 Iwanami Aug 1988 A
4767539 Ford Aug 1988 A
4769140 van Dijk et al. Sep 1988 A
4774132 Joffee et al. Sep 1988 A
4775471 Nagai et al. Oct 1988 A
4779448 Gogins Oct 1988 A
4781831 Goldsmith Nov 1988 A
4784771 Wathen et al. Nov 1988 A
4793932 Ford et al. Dec 1988 A
4797187 Davis et al. Jan 1989 A
4797211 Ehrfeld et al. Jan 1989 A
4800019 Bikson et al. Jan 1989 A
4810384 Fabre Mar 1989 A
4812235 Seleman et al. Mar 1989 A
4816160 Ford et al. Mar 1989 A
4824563 Iwahori et al. Apr 1989 A
4828696 Makino et al. May 1989 A
4834998 Shrikhande May 1989 A
4839048 Reed et al. Jun 1989 A
4840227 Schmidt Jun 1989 A
4846970 Bertelsen et al. Jul 1989 A
4867883 Daigger et al. Sep 1989 A
4876006 Ohkubo et al. Oct 1989 A
4876012 Kopp et al. Oct 1989 A
4886601 Iwatsuka et al. Dec 1989 A
4888115 Marinaccio et al. Dec 1989 A
4889620 Schmit et al. Dec 1989 A
4904426 Lundgard et al. Feb 1990 A
4908114 Ayers Mar 1990 A
4911838 Tanaka Mar 1990 A
4919815 Copa et al. Apr 1990 A
4921610 Ford et al. May 1990 A
4931186 Ford et al. Jun 1990 A
4933084 Bandel et al. Jun 1990 A
4935143 Kopp et al. Jun 1990 A
4952317 Culkin Aug 1990 A
4963304 Im et al. Oct 1990 A
4966699 Sasaki et al. Oct 1990 A
4968430 Hildenbrand et al. Nov 1990 A
4968733 Muller et al. Nov 1990 A
4969997 Kluver et al. Nov 1990 A
4980066 Slegers Dec 1990 A
4988444 Applegate et al. Jan 1991 A
4990251 Spranger et al. Feb 1991 A
4999038 Lundberg Mar 1991 A
5002666 Matsumoto et al. Mar 1991 A
5005430 Kibler et al. Apr 1991 A
5015275 Beck et al. May 1991 A
5024762 Ford et al. Jun 1991 A
5034125 Karbachsch et al. Jul 1991 A
5043113 Kafchinski et al. Aug 1991 A
5059317 Marius et al. Oct 1991 A
5066375 Parsi et al. Nov 1991 A
5066401 Muller et al. Nov 1991 A
5066402 Anselme et al. Nov 1991 A
5069065 Sprunt et al. Dec 1991 A
5069353 Espenan Dec 1991 A
5075044 Augem Dec 1991 A
5075065 Effenberger et al. Dec 1991 A
5076925 Roesink et al. Dec 1991 A
5079272 Allegrezza, Jr. et al. Jan 1992 A
5080770 Culkin Jan 1992 A
5094750 Kopp et al. Mar 1992 A
5094867 Detering et al. Mar 1992 A
5098567 Nishiguchi Mar 1992 A
5102550 Pizzino et al. Apr 1992 A
5104535 Cote et al. Apr 1992 A
5104546 Filson et al. Apr 1992 A
H001045 Wilson May 1992 H
5135663 Newberth, III et al. Aug 1992 A
5137631 Eckman et al. Aug 1992 A
5138870 Lyssy Aug 1992 A
5147553 Waite Sep 1992 A
5151191 Sunaoka et al. Sep 1992 A
5151193 Grobe et al. Sep 1992 A
5156738 Maxson Oct 1992 A
5158721 Allegrezza, Jr. et al. Oct 1992 A
5169528 Karbachsch et al. Dec 1992 A
5169530 Schucker et al. Dec 1992 A
5180407 DeMarco Jan 1993 A
5182019 Cote et al. Jan 1993 A
5186821 Murphy Feb 1993 A
5192442 Piccirillo et al. Mar 1993 A
5192456 Ishida et al. Mar 1993 A
5192478 Caskey Mar 1993 A
5194149 Selbie et al. Mar 1993 A
5198116 Comstock et al. Mar 1993 A
5198162 Park et al. Mar 1993 A
5203405 Gentry et al. Apr 1993 A
5209852 Sunaoka et al. May 1993 A
5211823 Giuffrida et al. May 1993 A
5221478 Dhingra et al. Jun 1993 A
5227063 Langerak et al. Jul 1993 A
5244579 Horner et al. Sep 1993 A
5248424 Cote et al. Sep 1993 A
5262054 Wheeler Nov 1993 A
5269919 von Medlin Dec 1993 A
5271830 Faivre et al. Dec 1993 A
5275766 Gadkaree et al. Jan 1994 A
5286324 Kawai et al. Feb 1994 A
5290451 Koster et al. Mar 1994 A
5290457 Karbachsch et al. Mar 1994 A
5297420 Gilliland et al. Mar 1994 A
5316671 Murphy May 1994 A
5320760 Freund et al. Jun 1994 A
5353630 Soda et al. Oct 1994 A
5354470 Seita et al. Oct 1994 A
5358732 Seifter et al. Oct 1994 A
5361625 Ylvisaker Nov 1994 A
5364527 Zimmermann et al. Nov 1994 A
5364529 Morin et al. Nov 1994 A
5374353 Murphy Dec 1994 A
5389260 Hemp et al. Feb 1995 A
5393433 Espenan et al. Feb 1995 A
5396019 Sartori et al. Mar 1995 A
5401345 Park Mar 1995 A
5401401 Hickok et al. Mar 1995 A
5401405 McDougald Mar 1995 A
5403479 Smith et al. Apr 1995 A
5405528 Selbie et al. Apr 1995 A
5411663 Johnson May 1995 A
5417101 Weich May 1995 A
5419816 Sampson et al. May 1995 A
5425415 Master et al. Jun 1995 A
5451317 Ishida et al. Sep 1995 A
5458779 Odegaard Oct 1995 A
5468397 Barboza et al. Nov 1995 A
5470469 Eckman Nov 1995 A
5477731 Mouton Dec 1995 A
5479590 Lin Dec 1995 A
5480553 Yamamori et al. Jan 1996 A
5482625 Shimizu et al. Jan 1996 A
5484528 Yagi et al. Jan 1996 A
5490939 Gerigk et al. Feb 1996 A
5491023 Tsai et al. Feb 1996 A
5501798 Al-Samadi et al. Mar 1996 A
5525220 Yagi et al. Jun 1996 A
5531848 Brinda et al. Jul 1996 A
5531900 Raghavan et al. Jul 1996 A
5543002 Brinda et al. Aug 1996 A
5552047 Oshida et al. Sep 1996 A
5554283 Brinda et al. Sep 1996 A
5556591 Jallerat et al. Sep 1996 A
5575963 Soffer et al. Nov 1996 A
5597732 Bryan-Brown Jan 1997 A
5607593 Cote et al. Mar 1997 A
5626755 Keyser et al. May 1997 A
5629084 Moya May 1997 A
5633163 Cameron May 1997 A
5639373 Mahendran et al. Jun 1997 A
5643455 Kopp et al. Jul 1997 A
5647988 Kawanishi et al. Jul 1997 A
5670053 Collentro et al. Sep 1997 A
5677360 Yamamori et al. Oct 1997 A
5688460 Ruschke Nov 1997 A
5690830 Ohtani et al. Nov 1997 A
5733456 Okey et al. Mar 1998 A
5744037 Fujimura et al. Apr 1998 A
5747605 Breant et al. May 1998 A
5766479 Collentro et al. Jun 1998 A
D396046 Scheel et al. Jul 1998 S
5783083 Henshaw et al. Jul 1998 A
5786528 Dileo et al. Jul 1998 A
D396726 Sadr et al. Aug 1998 S
5814234 Bower et al. Sep 1998 A
D400890 Gambardella Nov 1998 S
5843069 Butler et al. Dec 1998 A
5846424 Khudenko Dec 1998 A
5846425 Whiteman Dec 1998 A
5871823 Anders et al. Feb 1999 A
5888401 Nguyen Mar 1999 A
5895521 Otsuka et al. Apr 1999 A
5895570 Liang Apr 1999 A
5906739 Osterland et al. May 1999 A
5906742 Wang et al. May 1999 A
5910250 Mahendran et al. Jun 1999 A
5914039 Mahendran et al. Jun 1999 A
5918264 Drummond et al. Jun 1999 A
5942113 Morimura Aug 1999 A
5944997 Pedersen et al. Aug 1999 A
5951878 Astrom Sep 1999 A
5958243 Lawrence et al. Sep 1999 A
5961830 Barnett Oct 1999 A
5968357 Doelle et al. Oct 1999 A
5988400 Karachevtcev et al. Nov 1999 A
5989428 Goronszy Nov 1999 A
5997745 Tonelli et al. Dec 1999 A
6001254 Espenan et al. Dec 1999 A
6007712 Tanaka et al. Dec 1999 A
6017451 Kopf Jan 2000 A
6024872 Mahendran et al. Feb 2000 A
6036030 Stone et al. Mar 2000 A
6039872 Wu et al. Mar 2000 A
6042677 Mahendran et al. Mar 2000 A
6045698 Cote et al. Apr 2000 A
6045899 Wang et al. Apr 2000 A
6048454 Jenkins Apr 2000 A
6048455 Janik Apr 2000 A
6066401 Stilburn May 2000 A
6071404 Tsui Jun 2000 A
6074718 Puglia et al. Jun 2000 A
6077435 Beck et al. Jun 2000 A
6083381 Connelly et al. Jul 2000 A
6083393 Wu et al. Jul 2000 A
6096213 Radovanovic et al. Aug 2000 A
6113782 Leonard Sep 2000 A
6120688 Daly et al. Sep 2000 A
6126819 Heine et al. Oct 2000 A
6146747 Wang et al. Nov 2000 A
6149817 Peterson et al. Nov 2000 A
6156200 Zha et al. Dec 2000 A
6159373 Beck et al. Dec 2000 A
6162020 Kondo Dec 2000 A
6171496 Patil Jan 2001 B1
6193890 Pedersen et al. Feb 2001 B1
6202475 Selbie et al. Mar 2001 B1
6214231 Cote et al. Apr 2001 B1
6214232 Baurmeister et al. Apr 2001 B1
6217770 Haney et al. Apr 2001 B1
6221247 Nemser et al. Apr 2001 B1
6224767 Fujiwara et al. May 2001 B1
6245239 Cote et al. Jun 2001 B1
6254773 Biltoft Jul 2001 B1
6264839 Mohr et al. Jul 2001 B1
6277512 Hamrock et al. Aug 2001 B1
6280626 Miyashita et al. Aug 2001 B1
6284135 Ookata Sep 2001 B1
6290756 Macheras et al. Sep 2001 B1
6294039 Mahendran et al. Sep 2001 B1
6299773 Takamura et al. Oct 2001 B1
6303026 Lindbo Oct 2001 B1
6303035 Cote et al. Oct 2001 B1
6315895 Summerton et al. Nov 2001 B1
6319411 Cote Nov 2001 B1
6322703 Taniguchi et al. Nov 2001 B1
6324898 Cote et al. Dec 2001 B1
6325928 Pedersen et al. Dec 2001 B1
6325938 Miyashita et al. Dec 2001 B1
6331248 Taniguchi et al. Dec 2001 B1
6337018 Mickols Jan 2002 B1
RE37549 Mahendran et al. Feb 2002 E
6349835 Saux et al. Feb 2002 B1
6354444 Mahendran et al. Mar 2002 B1
6361695 Husain et al. Mar 2002 B1
6368819 Gaddy et al. Apr 2002 B1
6372138 Cho et al. Apr 2002 B1
6375848 Cote et al. Apr 2002 B1
6383369 Elston May 2002 B2
6387189 Groschl et al. May 2002 B1
6402955 Ookata Jun 2002 B2
6406629 Husain et al. Jun 2002 B1
6423214 Lindbo Jul 2002 B1
6423784 Hamrock et al. Jul 2002 B1
6432310 Andou et al. Aug 2002 B1
6440303 Spriegel Aug 2002 B2
D462699 Johnson et al. Sep 2002 S
6444124 Onyeche et al. Sep 2002 B1
6468430 Kimura et al. Oct 2002 B1
6471869 Yanou et al. Oct 2002 B1
6485645 Husain et al. Nov 2002 B1
6495041 Taniguchi et al. Dec 2002 B2
6517723 Daigger et al. Feb 2003 B1
6524481 Zha et al. Feb 2003 B2
6524733 Nonobe Feb 2003 B1
6550747 Rabie et al. Apr 2003 B2
6555005 Zha et al. Apr 2003 B1
6562237 Olaopa May 2003 B1
6576136 De Moel et al. Jun 2003 B1
6592762 Smith Jul 2003 B2
D478913 Johnson et al. Aug 2003 S
6613222 Mikkelson et al. Sep 2003 B2
6620319 Behmann et al. Sep 2003 B2
6623643 Chisholm et al. Sep 2003 B2
6627082 Del Vecchio et al. Sep 2003 B2
6632358 Suga et al. Oct 2003 B1
6635179 Summerton et al. Oct 2003 B1
6641733 Zha et al. Nov 2003 B2
6645374 Cote et al. Nov 2003 B2
6656356 Gungerich et al. Dec 2003 B2
6682652 Mahendran et al. Jan 2004 B2
6685832 Mahendran et al. Feb 2004 B2
6696465 Dellaria et al. Feb 2004 B2
6702561 Stillig et al. Mar 2004 B2
6706185 Goel et al. Mar 2004 B2
6706189 Rabie et al. Mar 2004 B2
6708957 Cote et al. Mar 2004 B2
6712970 Trivedi Mar 2004 B1
6721529 Chen et al. Apr 2004 B2
6723242 Ohkata et al. Apr 2004 B1
6723758 Stone et al. Apr 2004 B2
6727305 Aranguiz Apr 2004 B1
6743362 Porteous et al. Jun 2004 B1
6755894 Bikson et al. Jun 2004 B2
6755970 Knappe et al. Jun 2004 B1
6758972 Vriens et al. Jul 2004 B2
6761826 Bender Jul 2004 B2
6770202 Kidd et al. Aug 2004 B1
6780466 Grangeon et al. Aug 2004 B2
6783008 Zha et al. Aug 2004 B2
6790347 Jeong et al. Sep 2004 B2
6790912 Blong Sep 2004 B2
6805806 Arnaud Oct 2004 B2
6808629 Wouters-Wasiak et al. Oct 2004 B2
6811696 Wang et al. Nov 2004 B2
6814861 Husain et al. Nov 2004 B2
6821420 Zha et al. Nov 2004 B2
6830782 Kanazawa Dec 2004 B2
6840251 Gill et al. Jan 2005 B2
6841070 Zha et al. Jan 2005 B2
6861466 Dadalas et al. Mar 2005 B2
6863816 Austin et al. Mar 2005 B2
6863817 Liu et al. Mar 2005 B2
6863818 Daigger et al. Mar 2005 B2
6863823 Cote Mar 2005 B2
6869534 McDowell et al. Mar 2005 B2
6872305 Johnson et al. Mar 2005 B2
6881343 Rabie et al. Apr 2005 B2
6884350 Muller Apr 2005 B2
6884375 Wang et al. Apr 2005 B2
6890435 Ji et al. May 2005 B2
6890645 Disse et al. May 2005 B2
6893568 Janson et al. May 2005 B1
6899812 Cote et al. May 2005 B2
6936085 DeMarco Aug 2005 B2
6946073 Daigger et al. Sep 2005 B2
6952258 Ebert et al. Oct 2005 B2
6955762 Gallagher et al. Oct 2005 B2
6962258 Zha et al. Nov 2005 B2
6964741 Mahendran et al. Nov 2005 B2
6969465 Zha et al. Nov 2005 B2
6974554 Cox et al. Dec 2005 B2
6994867 Hossainy et al. Feb 2006 B1
7005100 Lowell Feb 2006 B2
7014763 Johnson et al. Mar 2006 B2
7018530 Pollock Mar 2006 B2
7018533 Johnson et al. Mar 2006 B2
7022233 Chen Apr 2006 B2
7041728 Zipplies et al. May 2006 B2
7052610 Janson et al. May 2006 B2
7083733 Freydina et al. Aug 2006 B2
7087173 Cote et al. Aug 2006 B2
7122121 Ji Oct 2006 B1
7147777 Porteous Dec 2006 B1
7147778 DiMassimo et al. Dec 2006 B1
7160455 Taniguchi et al. Jan 2007 B2
7160463 Beck et al. Jan 2007 B2
7160464 Lee et al. Jan 2007 B2
7172699 Trivedi et al. Feb 2007 B1
7172701 Gaid et al. Feb 2007 B2
7186344 Hughes Mar 2007 B2
7208091 Pind et al. Apr 2007 B2
7223340 Zha et al. May 2007 B2
7226541 Muller et al. Jun 2007 B2
7247238 Mullette et al. Jul 2007 B2
7255788 Okazaki et al. Aug 2007 B2
7264716 Johnson et al. Sep 2007 B2
7279100 Devine Oct 2007 B2
7279215 Hester et al. Oct 2007 B2
7300022 Muller Nov 2007 B2
7314563 Cho et al. Jan 2008 B2
7329344 Jordan et al. Feb 2008 B2
7344645 Beck et al. Mar 2008 B2
7361274 Lazaredes Apr 2008 B2
7378024 Bartels et al. May 2008 B2
7387723 Jordan Jun 2008 B2
7404896 Muller Jul 2008 B2
7410584 Devine Aug 2008 B2
7455765 Elefritz et al. Nov 2008 B2
7481933 Barnes Jan 2009 B2
7507274 Tonkovich et al. Mar 2009 B2
7510655 Barnes Mar 2009 B2
7531042 Murkute et al. May 2009 B2
7563363 Kuzma Jul 2009 B2
7591950 Zha et al. Sep 2009 B2
7632439 Mullette et al. Dec 2009 B2
7648634 Probst Jan 2010 B2
7662212 Mullette et al. Feb 2010 B2
7708887 Johnson et al. May 2010 B2
7713413 Barnes May 2010 B2
7718057 Jordan et al. May 2010 B2
7718065 Jordan May 2010 B2
7722769 Jordan et al. May 2010 B2
7761826 Thanvantri et al. Jul 2010 B1
7819956 Muller Oct 2010 B2
7850851 Zha et al. Dec 2010 B2
7862719 McMahon et al. Jan 2011 B2
7931463 Cox et al. Apr 2011 B2
7938966 Johnson May 2011 B2
8197688 Sakashita et al. Jun 2012 B2
8679337 Ishibashi et al. Mar 2014 B2
20010035092 Hachimaki Nov 2001 A1
20010047962 Zha et al. Dec 2001 A1
20010052494 Cote et al. Dec 2001 A1
20020027111 Ando et al. Mar 2002 A1
20020070157 Yamada Jun 2002 A1
20020117444 Mikkelson et al. Aug 2002 A1
20020148767 Johnson et al. Oct 2002 A1
20020153313 Cote Oct 2002 A1
20020185435 Husain et al. Dec 2002 A1
20020189999 Espenan et al. Dec 2002 A1
20020195390 Zha et al. Dec 2002 A1
20030034286 Butler Feb 2003 A1
20030038080 Vriens et al. Feb 2003 A1
20030042199 Smith Mar 2003 A1
20030052055 Akamatsu et al. Mar 2003 A1
20030056919 Beck Mar 2003 A1
20030057155 Husain et al. Mar 2003 A1
20030062301 Merrie et al. Apr 2003 A1
20030075495 Dannstrom et al. Apr 2003 A1
20030075504 Zha et al. Apr 2003 A1
20030121855 Kopp Jul 2003 A1
20030127388 Ando et al. Jul 2003 A1
20030146153 Cote et al. Aug 2003 A1
20030150807 Bartels et al. Aug 2003 A1
20030159977 Tanny et al. Aug 2003 A1
20030159988 Daigger et al. Aug 2003 A1
20030178365 Zha et al. Sep 2003 A1
20030196955 Hughes Oct 2003 A1
20030226797 Phelps Dec 2003 A1
20030234221 Johnson et al. Dec 2003 A1
20040007523 Gabon et al. Jan 2004 A1
20040007525 Rabie et al. Jan 2004 A1
20040035770 Edwards et al. Feb 2004 A1
20040035779 Vossenkaul et al. Feb 2004 A1
20040045893 Watanabe et al. Mar 2004 A1
20040050791 Herczeg Mar 2004 A1
20040055974 Del Vecchio et al. Mar 2004 A1
20040084369 Zha et al. May 2004 A1
20040108268 Liu et al. Jun 2004 A1
20040112831 Rabie et al. Jun 2004 A1
20040118779 Rawson et al. Jun 2004 A1
20040129637 Husain et al. Jul 2004 A1
20040139992 Murkute et al. Jul 2004 A1
20040145076 Zha et al. Jul 2004 A1
20040149655 Petrucco et al. Aug 2004 A1
20040154671 Martins et al. Aug 2004 A1
20040168978 Gray Sep 2004 A1
20040168979 Zha et al. Sep 2004 A1
20040173525 Hunniford et al. Sep 2004 A1
20040178136 Taniguchi et al. Sep 2004 A1
20040178154 Zha et al. Sep 2004 A1
20040188339 Murkute et al. Sep 2004 A1
20040188341 Zha et al. Sep 2004 A1
20040211726 Baig et al. Oct 2004 A1
20040217053 Zha et al. Nov 2004 A1
20040222158 Husain et al. Nov 2004 A1
20040232076 Zha et al. Nov 2004 A1
20040238442 Johnson et al. Dec 2004 A1
20040245174 Takayama et al. Dec 2004 A1
20050000885 Stockbower Jan 2005 A1
20050006308 Cote et al. Jan 2005 A1
20050023219 Kirker et al. Feb 2005 A1
20050029185 Muller Feb 2005 A1
20050029186 Muller Feb 2005 A1
20050032982 Muller Feb 2005 A1
20050045557 Daigger et al. Mar 2005 A1
20050053878 Bruun et al. Mar 2005 A1
20050061725 Liu et al. Mar 2005 A1
20050077227 Kirker et al. Apr 2005 A1
20050092674 Mahendran et al. May 2005 A1
20050098494 Mullette et al. May 2005 A1
20050103722 Freydina et al. May 2005 A1
20050109692 Zha et al. May 2005 A1
20050115880 Pollock Jun 2005 A1
20050115899 Liu et al. Jun 2005 A1
20050121389 Janson et al. Jun 2005 A1
20050126963 Phagoo et al. Jun 2005 A1
20050139538 Lazaredes Jun 2005 A1
20050161389 Takeda et al. Jul 2005 A1
20050184008 Schacht et al. Aug 2005 A1
20050194305 Vido et al. Sep 2005 A1
20050194310 Yamamoto et al. Sep 2005 A1
20050194315 Adams et al. Sep 2005 A1
20050258098 Vincent et al. Nov 2005 A1
20060000775 Zha et al. Jan 2006 A1
20060021929 Mannheim et al. Feb 2006 A1
20060033222 Godfrey Feb 2006 A1
20060065596 Kent et al. Mar 2006 A1
20060081533 Khudenko Apr 2006 A1
20060091074 Pedersen et al. May 2006 A1
20060131234 Zha et al. Jun 2006 A1
20060145366 Thomas Jul 2006 A1
20060151373 Szabo et al. Jul 2006 A1
20060201876 Jordan Sep 2006 A1
20060201879 Den Boestert et al. Sep 2006 A1
20060249448 Fujishima et al. Nov 2006 A1
20060249449 Nakhla et al. Nov 2006 A1
20060261007 Zha et al. Nov 2006 A1
20060273007 Zha et al. Dec 2006 A1
20060273038 Syed et al. Dec 2006 A1
20070007205 Johnson et al. Jan 2007 A1
20070007207 Mahendran et al. Jan 2007 A1
20070007214 Zha et al. Jan 2007 A1
20070039888 Ginzburg et al. Feb 2007 A1
20070045183 Murphy Mar 2007 A1
20070051679 Adams et al. Mar 2007 A1
20070056904 Hogt et al. Mar 2007 A1
20070056905 Beck et al. Mar 2007 A1
20070075017 Kuzma Apr 2007 A1
20070075021 Johnson Apr 2007 A1
20070084791 Jordan et al. Apr 2007 A1
20070084795 Jordan Apr 2007 A1
20070095741 Berends May 2007 A1
20070102339 Cote et al. May 2007 A1
20070108125 Cho et al. May 2007 A1
20070131614 Knappe et al. Jun 2007 A1
20070138090 Jordan et al. Jun 2007 A1
20070163942 Tanaka Jul 2007 A1
20070170112 Elefritz et al. Jul 2007 A1
20070181496 Zuback Aug 2007 A1
20070227973 Zha et al. Oct 2007 A1
20080053923 Beck et al. Mar 2008 A1
20080093297 Gock et al. Apr 2008 A1
20080156745 Zha et al. Jul 2008 A1
20080179249 Beck et al. Jul 2008 A1
20080190846 Cox et al. Aug 2008 A1
20080203016 Johnson et al. Aug 2008 A1
20080203017 Zha et al. Aug 2008 A1
20080257822 Johnson Oct 2008 A1
20080277340 Hong et al. Nov 2008 A1
20090001018 Zha et al. Jan 2009 A1
20090194477 Hashimoto Aug 2009 A1
20090223895 Zha et al. Sep 2009 A1
20090255873 Biltoft et al. Oct 2009 A1
20100000941 Muller Jan 2010 A1
20100012585 Zha et al. Jan 2010 A1
20100025320 Johnson Feb 2010 A1
20100051545 Johnson et al. Mar 2010 A1
20100170847 Zha et al. Jul 2010 A1
20100200503 Zha et al. Aug 2010 A1
20100300968 Liu et al. Dec 2010 A1
20100326906 Barnes Dec 2010 A1
20110023913 Fulling Feb 2011 A1
20110049047 Cumin et al. Mar 2011 A1
20110049048 Benner et al. Mar 2011 A1
20110056522 Zauner et al. Mar 2011 A1
20110100907 Zha et al. May 2011 A1
20110114557 Johnson et al. May 2011 A2
20110127209 Rogers et al. Jun 2011 A1
20110132826 Muller et al. Jun 2011 A1
20110139715 Zha et al. Jun 2011 A1
20110147298 Kennedy et al. Jun 2011 A1
20110192783 Cox et al. Aug 2011 A1
20110198283 Zha et al. Aug 2011 A1
20120074053 Collignon et al. Mar 2012 A1
20120091602 Cumin et al. Apr 2012 A1
20120097601 Lee et al. Apr 2012 A1
20120103904 Morita May 2012 A1
20120187044 Zha et al. Jul 2012 A1
20120285885 James et al. Nov 2012 A1
20130037467 Biltoft et al. Feb 2013 A1
20130056426 Barnes Mar 2013 A1
20130153496 Zha et al. Jun 2013 A1
20130168307 Drivarbekk et al. Jul 2013 A1
20140174998 Aerts et al. Jun 2014 A1
20150136686 Chen May 2015 A1
Foreign Referenced Citations (450)
Number Date Country
3440084 Apr 1985 AU
5584786 Sep 1986 AU
7706687 Feb 1988 AU
762091 Jun 2003 AU
2004289373 May 2005 AU
2460207 Mar 2003 CA
2531764 Mar 2005 CA
86104888 Feb 1988 CN
1050770 Jan 1995 CN
2204898 Aug 1995 CN
2236049 Sep 1996 CN
1159769 Sep 1997 CN
1244814 Feb 2000 CN
1249698 Apr 2000 CN
1265636 Sep 2000 CN
1319032 Oct 2001 CN
1468140 Jan 2004 CN
1541757 Nov 2004 CN
1735452 Feb 2006 CN
101039739 Sep 2007 CN
101052457 Oct 2007 CN
101287538 Oct 2008 CN
3904544 Aug 1990 DE
4117281 Jan 1992 DE
4113420 Oct 1992 DE
4117422 Nov 1992 DE
4326603 Feb 1995 DE
19503060 Aug 1996 DE
19718028 Jun 1998 DE
29804927 Jun 1998 DE
29906389 Jun 1999 DE
10045227 Feb 2002 DE
10209170 Aug 2003 DE
202004012693 Oct 2004 DE
0038612 Oct 1981 EP
012557 Feb 1983 EP
0090383 Oct 1983 EP
126714 Nov 1984 EP
050447 Oct 1985 EP
194735 Sep 1986 EP
250337 Dec 1987 EP
327025 Aug 1989 EP
344633 Dec 1989 EP
090383 May 1990 EP
407900 Jan 1991 EP
463627 Jan 1992 EP
0464321 Jan 1992 EP
492942 Jul 1992 EP
518250 Dec 1992 EP
547575 Jun 1993 EP
280052 Jul 1994 EP
395133 Feb 1995 EP
662341 Jul 1995 EP
492446 Nov 1995 EP
430082 Jun 1996 EP
734758 Oct 1996 EP
763758 Mar 1997 EP
824956 Feb 1998 EP
848194 Jun 1998 EP
855214 Jul 1998 EP
627255 Jan 1999 EP
911073 Apr 1999 EP
920904 Jun 1999 EP
0937494 Aug 1999 EP
1034835 Sep 2000 EP
1052012 Nov 2000 EP
1156015 Nov 2001 EP
1300186 Apr 2003 EP
1349644 Oct 2003 EP
1350555 Oct 2003 EP
1236503 Aug 2004 EP
1445240 Aug 2004 EP
1466658 Oct 2004 EP
1659171 May 2006 EP
1420874 Jan 2011 EP
2620712 Mar 1989 FR
2674448 Oct 1992 FR
2699424 Jun 1994 FR
2762834 Nov 1998 FR
702911 Jan 1954 GB
996195 Jun 1965 GB
2253572 Sep 1992 GB
52-078677 Jul 1977 JP
53-5077 Jan 1978 JP
53108882 Sep 1978 JP
54162684 Dec 1979 JP
55099703 Jul 1980 JP
55129107 Oct 1980 JP
55129155 Oct 1980 JP
56021604 Feb 1981 JP
56118701 Sep 1981 JP
56121685 Sep 1981 JP
57190697 Nov 1982 JP
58088007 May 1983 JP
60019002 Jan 1985 JP
60206412 Oct 1985 JP
60260628 Dec 1985 JP
61097005 May 1986 JP
61097006 May 1986 JP
61107905 May 1986 JP
61167406 Jul 1986 JP
61167407 Jul 1986 JP
61171504 Aug 1986 JP
61192309 Aug 1986 JP
61222510 Oct 1986 JP
61242607 Oct 1986 JP
61249505 Nov 1986 JP
61257203 Nov 1986 JP
61263605 Nov 1986 JP
61291007 Dec 1986 JP
61293504 Dec 1986 JP
62004408 Jan 1987 JP
62068828 Mar 1987 JP
62114609 May 1987 JP
62140607 Jun 1987 JP
62144708 Jun 1987 JP
62163708 Jul 1987 JP
62179540 Aug 1987 JP
62237908 Oct 1987 JP
62250908 Oct 1987 JP
62187606 Nov 1987 JP
62262710 Nov 1987 JP
63-93307 Apr 1988 JP
63097634 Apr 1988 JP
63099246 Apr 1988 JP
63143905 Jun 1988 JP
63-1602 Jul 1988 JP
63171607 Jul 1988 JP
63180254 Jul 1988 JP
S63-38884 Oct 1988 JP
64-075542 Mar 1989 JP
1-501046 Apr 1989 JP
1111494 Apr 1989 JP
01151906 Jun 1989 JP
01-307409 Dec 1989 JP
02-017925 Jan 1990 JP
02017924 Jan 1990 JP
02026625 Jan 1990 JP
02031200 Feb 1990 JP
02040296 Feb 1990 JP
02107318 Apr 1990 JP
02126922 May 1990 JP
02144132 Jun 1990 JP
02164423 Jun 1990 JP
02174918 Jul 1990 JP
02241523 Sep 1990 JP
02277528 Nov 1990 JP
02284035 Nov 1990 JP
03018373 Jan 1991 JP
03028797 Feb 1991 JP
03-086529 Apr 1991 JP
03110445 May 1991 JP
04108518 Apr 1992 JP
04110023 Apr 1992 JP
4-190889 Jul 1992 JP
04187224 Jul 1992 JP
4-256425 Sep 1992 JP
04250898 Sep 1992 JP
04256424 Sep 1992 JP
04265128 Sep 1992 JP
04293527 Oct 1992 JP
04310223 Nov 1992 JP
04317793 Nov 1992 JP
04334530 Nov 1992 JP
04348252 Dec 1992 JP
05-4030 Jan 1993 JP
05023557 Feb 1993 JP
05096136 Apr 1993 JP
05137977 Jun 1993 JP
05157654 Jun 1993 JP
05161831 Jun 1993 JP
05184884 Jul 1993 JP
05279447 Oct 1993 JP
05285348 Nov 1993 JP
05305221 Nov 1993 JP
06-027215 Feb 1994 JP
06071120 Mar 1994 JP
06114240 Apr 1994 JP
06170364 Jun 1994 JP
06190250 Jul 1994 JP
06218237 Aug 1994 JP
06238273 Aug 1994 JP
06-292820 Oct 1994 JP
06277469 Oct 1994 JP
06285496 Oct 1994 JP
06343837 Dec 1994 JP
07000770 Jan 1995 JP
07024272 Jan 1995 JP
07047247 Feb 1995 JP
07068139 Mar 1995 JP
07136470 May 1995 JP
07136471 May 1995 JP
07155564 Jun 1995 JP
07155758 Jun 1995 JP
7-39921 Jul 1995 JP
07178323 Jul 1995 JP
07185268 Jul 1995 JP
07185270 Jul 1995 JP
07185271 Jul 1995 JP
07185272 Jul 1995 JP
07204635 Aug 1995 JP
07236819 Sep 1995 JP
07251043 Oct 1995 JP
07256253 Oct 1995 JP
07275665 Oct 1995 JP
07289860 Nov 1995 JP
07303895 Nov 1995 JP
07313973 Dec 1995 JP
08010585 Jan 1996 JP
8039089 Feb 1996 JP
08197053 Aug 1996 JP
08323161 Dec 1996 JP
08332357 Dec 1996 JP
09000890 Jan 1997 JP
09038470 Feb 1997 JP
09038648 Feb 1997 JP
09072993 Mar 1997 JP
09075689 Mar 1997 JP
09099227 Apr 1997 JP
09103655 Apr 1997 JP
09103661 Apr 1997 JP
9117647 May 1997 JP
9138298 May 1997 JP
09141063 Jun 1997 JP
09155345 Jun 1997 JP
09187628 Jul 1997 JP
09192458 Jul 1997 JP
09220569 Aug 1997 JP
09271641 Oct 1997 JP
09313902 Dec 1997 JP
09324067 Dec 1997 JP
10015365 Jan 1998 JP
10024222 Jan 1998 JP
10033955 Feb 1998 JP
10048466 Feb 1998 JP
10066972 Mar 1998 JP
10076144 Mar 1998 JP
10076264 Mar 1998 JP
10085562 Apr 1998 JP
10085565 Apr 1998 JP
10085566 Apr 1998 JP
10156149 Jun 1998 JP
10180048 Jul 1998 JP
10225685 Aug 1998 JP
10235168 Sep 1998 JP
10249171 Sep 1998 JP
10286441 Oct 1998 JP
10328538 Dec 1998 JP
11005023 Jan 1999 JP
11028339 Feb 1999 JP
11028467 Feb 1999 JP
11031025 Feb 1999 JP
11033365 Feb 1999 JP
11033367 Feb 1999 JP
11076769 Mar 1999 JP
11076770 Mar 1999 JP
11090189 Apr 1999 JP
11156166 Jun 1999 JP
11156360 Jun 1999 JP
11165200 Jun 1999 JP
11179171 Jul 1999 JP
11300177 Nov 1999 JP
11302438 Nov 1999 JP
11309351 Nov 1999 JP
11319501 Nov 1999 JP
11319507 Nov 1999 JP
11333265 Dec 1999 JP
2000000439 Jan 2000 JP
200051670 Feb 2000 JP
2000051669 Feb 2000 JP
2000061466 Feb 2000 JP
200079390 Mar 2000 JP
2000070684 Mar 2000 JP
2000093758 Apr 2000 JP
2000157845 Jun 2000 JP
2000157850 Jun 2000 JP
2000185220 Jul 2000 JP
2000189958 Jul 2000 JP
2000233020 Aug 2000 JP
2000237548 Sep 2000 JP
2000300968 Oct 2000 JP
2000317276 Nov 2000 JP
2000334276 Dec 2000 JP
2000342932 Dec 2000 JP
2001009246 Jan 2001 JP
2001070967 Mar 2001 JP
2001079366 Mar 2001 JP
2001079367 Mar 2001 JP
2001104760 Apr 2001 JP
2001120963 May 2001 JP
2001-510396 Jul 2001 JP
2001179059 Jul 2001 JP
2001179060 Jul 2001 JP
2001190937 Jul 2001 JP
2001190938 Jul 2001 JP
2001205055 Jul 2001 JP
2001212587 Aug 2001 JP
2001232160 Aug 2001 JP
2001-269546 Oct 2001 JP
2002011472 Jan 2002 JP
2002143849 May 2002 JP
2002177746 Jun 2002 JP
3302992 Jul 2002 JP
2002525197 Aug 2002 JP
2002527229 Aug 2002 JP
2002263407 Sep 2002 JP
2002-336663 Nov 2002 JP
2003024751 Jan 2003 JP
2003047830 Feb 2003 JP
2003053157 Feb 2003 JP
2003053160 Feb 2003 JP
200371254 Mar 2003 JP
2003062436 Mar 2003 JP
2003135935 May 2003 JP
2003190976 Jul 2003 JP
2003-265597 Sep 2003 JP
2003-275548 Sep 2003 JP
2003266072 Sep 2003 JP
2003275759 Sep 2003 JP
2003340250 Dec 2003 JP
2004008981 Jan 2004 JP
2004050011 Feb 2004 JP
2004073950 Mar 2004 JP
2004-230287 Aug 2004 JP
2004216263 Aug 2004 JP
2004230280 Aug 2004 JP
2004249168 Sep 2004 JP
2004322100 Nov 2004 JP
2004-536710 Dec 2004 JP
2004337730 Dec 2004 JP
2005-502467 Jan 2005 JP
2005-087887 Apr 2005 JP
2005144291 Jun 2005 JP
2005154551 Jun 2005 JP
2005279447 Oct 2005 JP
2006116495 May 2006 JP
2007547083 Aug 2010 JP
4833353 Dec 2011 JP
20-0232145 Jul 2001 KR
1020020067227 Aug 2002 KR
20-0295350 Nov 2002 KR
2002-0090967 Dec 2002 KR
2003-033812 May 2003 KR
2003-060625 Jul 2003 KR
20030066271 Aug 2003 KR
20030097167 Dec 2003 KR
2005-063478 Jun 2005 KR
1006390 Dec 1998 NL
1020491 Oct 2003 NL
1021197 Oct 2003 NL
20053769 Feb 2006 NO
510394 May 2003 NZ
537874 Feb 2007 NZ
216773 Dec 1993 TW
347343 Dec 1998 TW
8501449 Apr 1985 WO
8605116 Sep 1986 WO
8605705 Oct 1986 WO
8800494 Jan 1988 WO
8801529 Mar 1988 WO
8801895 Mar 1988 WO
8806200 Aug 1988 WO
8900880 Feb 1989 WO
9000434 Jan 1990 WO
9104783 Apr 1991 WO
9116124 Oct 1991 WO
9302779 Feb 1993 WO
9315827 Aug 1993 WO
9323152 Nov 1993 WO
9411094 May 1994 WO
9511736 May 1995 WO
9534424 Dec 1995 WO
9603202 Feb 1996 WO
9607470 Mar 1996 WO
9628236 Sep 1996 WO
9629142 Sep 1996 WO
9641676 Dec 1996 WO
9706880 Feb 1997 WO
9822204 May 1998 WO
9825694 Jun 1998 WO
9828066 Jul 1998 WO
9853902 Dec 1998 WO
9901207 Jan 1999 WO
9906326 Feb 1999 WO
9908773 Feb 1999 WO
99-55448 Nov 1999 WO
9959707 Nov 1999 WO
0018498 Apr 2000 WO
0021890 Apr 2000 WO
0030742 Jun 2000 WO
0100307 Jan 2001 WO
0105715 Jan 2001 WO
0108790 Feb 2001 WO
0119414 Mar 2001 WO
0132299 May 2001 WO
0136075 May 2001 WO
0143856 Jun 2001 WO
0145829 Jun 2001 WO
0204100 Jan 2002 WO
0226363 Apr 2002 WO
0230550 Apr 2002 WO
0240140 May 2002 WO
0247800 Jun 2002 WO
03000389 Jan 2003 WO
03013706 Feb 2003 WO
03024575 Mar 2003 WO
03053552 Jul 2003 WO
03057632 Jul 2003 WO
03059495 Jul 2003 WO
03068374 Aug 2003 WO
03095078 Nov 2003 WO
2004018084 Mar 2004 WO
2004024304 Mar 2004 WO
2004033078 Apr 2004 WO
2004050221 Jun 2004 WO
2004056458 Jul 2004 WO
2004078327 Sep 2004 WO
2004101120 Nov 2004 WO
2005005028 Jan 2005 WO
2005021140 Mar 2005 WO
2005028085 Mar 2005 WO
2005028086 Mar 2005 WO
2005037414 Apr 2005 WO
WO 2005037414 Apr 2005 WO
2005046849 May 2005 WO
2005070524 Aug 2005 WO
2005077499 Aug 2005 WO
2005082498 Sep 2005 WO
2005107929 Nov 2005 WO
2006017911 Feb 2006 WO
2006026814 Mar 2006 WO
2006029456 Mar 2006 WO
2006029465 Mar 2006 WO
2006047814 May 2006 WO
2006066319 Jun 2006 WO
2006066350 Jun 2006 WO
2006126833 Nov 2006 WO
2007022576 Mar 2007 WO
2007053528 May 2007 WO
2007065956 Jun 2007 WO
2007073080 Jun 2007 WO
2007135087 Nov 2007 WO
2008025077 Mar 2008 WO
2008034570 Mar 2008 WO
2008071516 Jun 2008 WO
2008141080 Nov 2008 WO
2008153818 Dec 2008 WO
2009030405 Mar 2009 WO
2013048801 Apr 2013 WO
2013049109 Apr 2013 WO
Non-Patent Literature Citations (45)
Entry
“Chemical Cleaning Definition”, Lenntech BV, Lenntech Water Treatment & Purification Holding B.V., Chemical Cleaning.
Almulla et al., “Developments in high recovery brackish water desalination plants as part of the solution to water problems,” Desalination, 153 (2002), pp. 237-243.
Anonymous, “Nonwoven Constructions of Dyneon™ THV and Dyneon™ HTE Fluorothermoplastics”, Research Disclosure Journal, Apr. 1999, RD 420013, 2 pages.
Australian First Examiner's Report dated Dec. 9, 2011 for Application No. 2008235254.
Chinese First Office Action dated Jul. 26, 2011 for Application No. 200880011059.3.
Chinese Second Office Action dated Jul. 3, 2012 for Application No. 200880011059.3.
Cote et al. “A New Immersed Membrane for Pretreatment to Reverse Osmosis,” Desalination, 139 (2001), pp. 229-236.
Cote et al., “Immersed Membranes Activated Sludge Process Applied to the Treatment of Municipal Wastewater,” Wat. Sci. Tech. 38(4-5) (1998), pp. 437-442.
Coulson et al., “Coulson and Richardson's Chemical Engineering,” 1999, vol. 1, pp. 358-364.
Crawford et al., American Water Works Association Membrane Technology Conference, “Procurement of Membrane Equipment: Differences Between Water Treatment and Membrane Bioreactor (MBR) Applications,” (2003).
Cui et al., “Airlift crossflow membrane filtration—a feasibility study with dextran ultrafiltration,” J. Membrane Sci. (1997) vol. 128, pp. 83-91.
Davis et al., Membrane Technology Conference, “Membrane Bioreactor Evaluation for Water Reuse in Seattle, Washington” (2003).
DeCarolis et al., Membrane Technology Conference, “Optimization of Various MBR Systems for Water Reclamation” (2003).
Delgrange-Vincent et al., “Neural networks for long term prediction of fouling and backwash efficiency in ultrafiltration for drinking water production,” Desalination 131 (2000) pp. 353-362.
Dow Chemical Company, “Filmtec Membranes—Cleaning Procedures for Filmtec FT30 Elements,” Tech Facts, Online, Jun. 30, 2000, XP002237568.
Husain, H. et al., “The ZENON experience with membrane bioreactors for municipal wastewater treatment,” MBR2: Membr. Bioreact. Wastewater Treat., 2nd Intl. Meeting; School of Water Sciences, Cranfield University, Cranfield, UK, Jun. 1999.
Japanese Office Action dated Feb. 7, 2012 for Application No. 2010-501332.
Johnson, “Recent Advances in Microfiltration for Drinking Water Treatment,” AWWA Annual Conference, Jun. 20-24, 1999, Chicago, Illinois, entire publication.
Jones, Craig, “Applications of Hydrogen Peroxide and Derivatives,” The Royal Society of Chemistry, Cambridge, UK 1999, Chapters 2 and 5.
Kaiya et al., “Water Purification Using Hollow Fiber Microfiltration Membranes,” 6th World Filtration Congress, Nagoya, 1993, pp. 813-816.
Kang et al. “Characteristics of microfiltration membranes in a membrane coupled sequencing batch reactor system,” Water Research, 37(5) Mar. 2003, pp. 1192-1197, Elsevier, Amsterdam, NL.
Lloyd, D.R. et al. “Microporous Membrane Formation Via Thermally Induced Phase Separation/Solid-Liquid Phase Separation,” Journal of Membrane Science, 52(3) (1990), pp. 239-261, Elsevier Scientific Publishing Company, Amsterdam, NL.
Lozier et al., “Demonstration Testing of ZenoGem and Reverse Osmosis for Indirect Potable Reuse Final Technical Report,” published by CH2M Hill, available from the National Technical Information Service, Operations Division, Jan. 2000, entire publication.
Mark et al., “Peroxides and Peroxy Compounds, Inorganic,” Kirk-Othmer Encyclopedia of Chemical Technology, Peroxides and Peroxy Compounds, Inorganic, To Piping Systems, New York, Wiley & Sons, Ed., Jan. 1, 1978, pp. 14-18.
MicroCTM—Carbon Source for Wastewater Denitrification. Information from Environmental Operating Solutions website including MSDS.
Nakayama, “Introduction to Fluid Mechanics,” Butterworth-Heinemann, Oxford, UK, 2000.
New Zealand Examination Report dated Mar. 24, 2011 for Application No. 579779.
Ramaswammy S. et al. “Fabrication of Ply (ECTFE) Membranes via Thermally Induced Phase Separation”, Journal of Membrane Science, (Dec. 1, 2002), pp. 175-180, vol. 210 No. 1, Scientific Publishing Company, Amsterdam, NL.
Rosenberger et al., “Filterability of activated sludge in membrane bioreactors,” Desalination, 151 (2002), pp. 195-200.
Supplementary European Search Report dated May 7, 2012 for Application No. EP 08 73 3323.
U.S. Appl. No. 60/278,007, filed Mar. 23, 2001.
Ueda et al., “Effects of Aeration on Suction Pressure in a Submerged Membrane Bioreactor,” Wat. Res. vol. 31, No. 3, 1997, pp. 489-494.
Water Encyclopedia, edited by Jay Lehr, published by John Wiley & Sons, Inc., Hoboken, New Jersey, 2005. Available at http://wwwmmrw.interscience.wiley.com/eow/.
Webster's Ninth New Collegiate Dictionary, Merriam-Webster Inc., Publishers, Springfield, Massachusetts, USA, Copyright 1986, p. 1298.
White et al., “Optimisation of intermittently operated microfiltration processes,” The Chemical Engineering Journal, 52 (1993), pp. 73-77.
Wikipedia, “Seawater,” available at http://en.wikipedia.org/wiki/Seawater, Jul. 15, 2007.
Yamamoto et al., “Direct Solid-Liquid Separation Using Hollow Fiber Membrane in an Activated Sludge Aeration Tank,” Water Science Technology, 21 (1989), pp. 43-54.
Yoon: “Important operational parameters of membrane bioreactor-sludge disintegration (MBR-SD) system for zero excess sludge production” Water Research, 37 (2003), pp. 1921-1931, Elsevier, Amsterdam, NL.
Zenon, “Proposal for ZeeWeed® Membrane Filtration Equipment System for the City of Westminster, Colorado, Proposal No. 479-99,” Mar. 2000, entire publication.
Schematic of 4″ Geyser Pump, Geyser Pump Tech. Co., Nov. 13, 2005.
Miller et al., “Side Stream Air Lift MBR Development and Successful Application of a New Generation of MBR,” Pollution Solutions Brochure, NORIT, The Netherlands, Apr. 2008.
Judd, “The MBR Book: Principles and Applications of Membrane Bioreactors in Water and Wastewater Treatment,” (2006), pp. 174-178.
EPA, Membrane Filtration Guidance Manual, Nov. 2005.
Lu, et al., “The Influence of Bubble Characteristic on the Performance of Submerged Hollow Fiber Membrane Module Used in Microfiltration,” Separation and Technology, 61 (2008), pp. 89-95.
Native Dynamics, Neutrium.com, “Pressure Loss from Pipe Entrances and Exits”, Jan. 3, 2013.
Related Publications (1)
Number Date Country
20130264251 A1 Oct 2013 US
Continuation in Parts (1)
Number Date Country
Parent 12594376 US
Child 13834568 US