[go: up one dir, main page]

WO2011133186A1 - Exchangeable media filter - Google Patents

Exchangeable media filter Download PDF

Info

Publication number
WO2011133186A1
WO2011133186A1 PCT/US2010/059515 US2010059515W WO2011133186A1 WO 2011133186 A1 WO2011133186 A1 WO 2011133186A1 US 2010059515 W US2010059515 W US 2010059515W WO 2011133186 A1 WO2011133186 A1 WO 2011133186A1
Authority
WO
WIPO (PCT)
Prior art keywords
filter
media
filter element
filter medium
bag
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2010/059515
Other languages
French (fr)
Inventor
Michael Mccague
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Watkins Manufacturing Corp
Original Assignee
Watkins Manufacturing Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from PCT/US2010/031945 external-priority patent/WO2011034639A1/en
Priority claimed from US12/879,967 external-priority patent/US8535524B2/en
Priority claimed from US12/948,507 external-priority patent/US8431021B2/en
Application filed by Watkins Manufacturing Corp filed Critical Watkins Manufacturing Corp
Publication of WO2011133186A1 publication Critical patent/WO2011133186A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D39/00Filtering material for liquid or gaseous fluids
    • B01D39/02Loose filtering material, e.g. loose fibres
    • B01D39/06Inorganic material, e.g. asbestos fibres, glass beads or fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D24/00Filters comprising loose filtering material, i.e. filtering material without any binder between the individual particles or fibres thereof
    • B01D24/02Filters comprising loose filtering material, i.e. filtering material without any binder between the individual particles or fibres thereof with the filter bed stationary during the filtration
    • B01D24/04Filters comprising loose filtering material, i.e. filtering material without any binder between the individual particles or fibres thereof with the filter bed stationary during the filtration the filtering material being clamped between pervious fixed walls
    • B01D24/042Filters comprising loose filtering material, i.e. filtering material without any binder between the individual particles or fibres thereof with the filter bed stationary during the filtration the filtering material being clamped between pervious fixed walls the filtering material being held in a flexible porous bag
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D24/00Filters comprising loose filtering material, i.e. filtering material without any binder between the individual particles or fibres thereof
    • B01D24/02Filters comprising loose filtering material, i.e. filtering material without any binder between the individual particles or fibres thereof with the filter bed stationary during the filtration
    • B01D24/04Filters comprising loose filtering material, i.e. filtering material without any binder between the individual particles or fibres thereof with the filter bed stationary during the filtration the filtering material being clamped between pervious fixed walls
    • B01D24/08Filters comprising loose filtering material, i.e. filtering material without any binder between the individual particles or fibres thereof with the filter bed stationary during the filtration the filtering material being clamped between pervious fixed walls the filtering material being supported by at least two pervious coaxial walls
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D39/00Filtering material for liquid or gaseous fluids
    • B01D39/02Loose filtering material, e.g. loose fibres
    • B01D39/04Organic material, e.g. cellulose, cotton
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/001Processes for the treatment of water whereby the filtration technique is of importance
    • C02F1/004Processes for the treatment of water whereby the filtration technique is of importance using large scale industrial sized filters
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2201/00Details relating to filtering apparatus
    • B01D2201/29Filter cartridge constructions
    • B01D2201/291End caps
    • B01D2201/293Making of end caps
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2201/00Details relating to filtering apparatus
    • B01D2201/29Filter cartridge constructions
    • B01D2201/291End caps
    • B01D2201/295End caps with projections extending in a radial outward direction, e.g. for use as a guide, spacing means
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2201/00Details relating to filtering apparatus
    • B01D2201/40Special measures for connecting different parts of the filter
    • B01D2201/4046Means for avoiding false mounting of different parts
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/50Treatment of water, waste water, or sewage by addition or application of a germicide or by oligodynamic treatment
    • C02F1/505Treatment of water, waste water, or sewage by addition or application of a germicide or by oligodynamic treatment by oligodynamic treatment
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F2103/00Nature of the water, waste water, sewage or sludge to be treated
    • C02F2103/42Nature of the water, waste water, sewage or sludge to be treated from bathing facilities, e.g. swimming pools

Definitions

  • the subject disclosure relates to pools and spas and more particularly to improved methods and apparatus for filtering contaminants from pools and spas.
  • Portable spas have become quite popular as a result of their ease of use and multiplicity of features such as varied jet and seating configurations.
  • One area where the inventor has recognized that ease of use could be enhanced is the area of maintaining proper water chemistry and sanitation.
  • the filter element comprises a sintered plastic outer cylinder of a first diameter and a sintered plastic inner cylinder of a second diameter less than the first diameter.
  • the inner cylinder is positioned coaxially with respect to the outer cylinder to define an annular interior chamber.
  • a selected granular filter medium or media may then be placed in the annular chamber to combat one or more particular contaminants in the spa water.
  • a donut shaped bag containing selected filter media is placed in the annular chamber.
  • the inner cylinder may be a suitable plastic mesh material and the bag may be adapted to hook over the inner cylinder.
  • Another embodiment comprises a filter element positioned in a filter compartment and comprising a plastic mesh outer cylinder of a first diameter and having a top and a bottom and a plastic mesh inner cylinder of a second diameter less than said first diameter; the inner cylinder being positioned coaxially with respect to the outer cylinder to define an annular interior chamber.
  • a filter element of annular cross-section is disposed in the chamber and has a top cap having one or more keyed landings formed thereon and a bottom cap having one or more keyed landings formed thereon.
  • Top and bottom filter caps are shaped to respectively mate with and close the top and bottom of the filter and to respectively mate and interlock with the one or more keyed landings of the filter element.
  • the apparatus further includes a plurality of vertically disposed mesh compartments interlinked in a ring and disposed within the filter element, said compartments being filled with a selected filter medium or filter media.
  • FIG. 1 is a schematic side sectional view of a portable spa
  • FIG. 2 is a perspective view of an exchangeable media filter according to an illustrative embodiment
  • Fig. 3 is a side sectional view of the filter of Fig. 2 taken at 3-3 of Fig. 2;
  • Fig. 4 is a side sectional view of an alternate embodiment.
  • Fig. 5 is a side sectional view of an alternate embodiment;
  • Fig. 6 is a side sectional view of an embodiment employing a resin filled bag
  • Fig. 7 is a perspective view illustrating a mesh structure forming an inner cylinder in one embodiment
  • Fig. 8 is a top view of a resin filled bag with a top hook feature
  • Fig. 9 is a side sectional view of the bag of Fig. 8;
  • Fig. 10 is a side sectional view of a media filter embodiment employing the bag of Figs 8 and 9;
  • Fig. 1 1 is an exploded perspective view of another media filter embodiment
  • Fig. 12 is a perspective view of the filter of Fig. 1 1 in an assembled state without media present between the mesh cylinders of the filter;
  • Fig. 13 is a perspective view of an end cap of the embodiment of Fig. 1 1 ;
  • Fig. 14 is a perspective view of the filter of Fig. 1 in an assembled state
  • Fig. 15 is a perspective view of a baffled filter media bag embodiment
  • Fig. 16 is a top view of the bag of Fig. 15;
  • Fig. 17 is a side view of an inner panel of the bag of Fig. 15;
  • Fig. 18 is a side view of an outer panel of the bag of Fig. 15;
  • Fig. 19 is a perspective view of a baffled media bag disposed within a spun bonded filter element
  • Fig. 20 is an exploded perspective view of a filter and stand pipe assembly embodiment
  • FIG. 21 is a perspective view of another filter embodiment
  • Fig. 22 is a perspective view of the filter element of the embodiment of Fig.
  • Fig. 23 is a perspective view of a top cap for the filter embodiment of Fig.
  • Fig. 1 shows a first embodiment of a portable spa 1 1 containing an exchangeable media filter element 15.
  • the spa 1 1 includes a water circulation, purification and heating system, which includes a filter compartment or "filter bucket" 13.
  • spa water 29 passes through a circulation pipe 16 to a circulation pump 19.
  • a "T" junction 21 may be provided to supply water to a water feature such as a waterfall.
  • the circulation pump 19 further pumps the spa water through a "no fault" heater 22, with which are associated a regulating sensor 23 and a hi-limit sensor 25.
  • An ozone generator and associated injector or other water purification apparatus 27 is also positioned in the return flow path to the spa 1 1, which may comprise an 8 to 10 foot contact chamber 29 and a spa inlet 31 where a circulation return jet is created.
  • a secondary drain 33 may also be provided.
  • An electronic control unit 17 controls the pump 19 and ozone generator 27, as well as other accessories which may be provided as part of the spa 1 1 .
  • the filter bucket 13 may be a conventional filter bucket traditionally manufactured as part of the original spa equipment.
  • the filter 15 includes inner and outer co-axially mounted annular filter cylinders 43, 44 with a top cap 50 and a bottom cap 52.
  • the cylinders 43, 44 are formed of sintered plastic, such as, for example, polypropylene or polyethylene.
  • Other materials for the cylinders 43, 44 may include, for example, and without limitation, PTFE (poly tetrafluoroethylene), PVDF (poly vinylidene fluoride), EVA (ethyl vinyl acetate) Nylon, thermoplastic polyurethane.
  • the top and bottom caps 50, 52 may be formed, for example, of plastisol, polyurethane, PVC, ABS, or Noryl, polypro, polyethylene, or chemically/thermally set plastic resin elastomer.
  • Presently preferred thicknesses Wi, W 2 for each of the cylinders range from ⁇ " to 1 ⁇ 2" with an exemplary thickness of Vg" for both Wi and W 2 .
  • Porosity of the cylinders may range from 25 to 150 microns, with 100 microns being a typical porosity.
  • the filter 15 is cylindrical, other geometrical shapes, such as square or star- shaped could be employed.
  • Various heights and outer diameters may also be employed, including diameters of conventional filter elements such as, for example, 8 to 20 inches tall and 5 to 12 inches in outer diameter.
  • the respective filter elements 43, 44 define an annular hollow inner chamber 47.
  • the annular chamber 47 constitutes a space which is filled with a selected granulated or beaded medium or combination of granulated or beaded media.
  • Such media may include, for example, and without limitation:
  • the top cap 50 After filling the chamber 47, the top cap 50 is fixed in place to close the unit.
  • water flows radially from the outside larger diameter cylinder 43 to the inner cylinder 44, at a flow rate of e.g. 1-10 gallons per minute, thus bringing the water in contact with the active media.
  • An advantage of the illustrative embodiment is that cylinders containing different filter media can be added or exchanged after the spa has been filled with water in response to occurrence of a problem with a particular type of contaminant.
  • TDS total dissolved solids
  • a filter constructed according to the illustrative embodiments serves to extend the life of the water, reduce the number of water changes and save water by removing the accumulated TDS from the water.
  • TDS include: toxic metals such as lead, iron, copper, manganese, minerals, calcium, magnesium, sodium, chloride, soaps, detergents, foaming agents, oils, suntan lotions, cyanuric acid, ammonia, pesticides, pharmaceuticals, organic acids, beer/wine, components of human sweat and waste, chlorinated by-products, humic acid, urine, body fluids, and tannins.
  • a screw-on cap is provided on a filter like that of Fig. 1 , enabling a user to change the media.
  • the filter is removed from the spa, the top is unscrewed, and the media is replaced.
  • the media may be limited to consumer friendly media like carbon, resin beads, and zeolites.
  • such an embodiment may comprise two cylinders 143, 144 with a potted bottom cap 152.
  • a ring 155 with internal threads 157 is provided, which is seated and bonded to the top of the outer cylinder 143.
  • the top cap 150 has external threads 159, which permits the top cap 150 to be screwed onto the top of the filter 140 until an internal sealing surface 161 on an inner ring 163 of the top cap 150 contacts and seals with the inner cylinder 144.
  • a press-fit or friction fit, rather than screw- on, cap is provided on a filter like that of Fig. 2.
  • a filter like that of Fig. 2.
  • such an embodiment may comprise two cylinders 243, 244 with a potted bottom cap 252.
  • the top cap 250 has a grooved surface 259, defining a groove 246, which is dimensioned to press fittingly engage surface 243.
  • the internal sealing surface 261 on an inner ring 263 of the top cap 250 may also contact and press-fittingly seal with the inner cylinder 244.
  • Fig. 6 illustrates an embodiment wherein the filter media 260 is contained within a donut-shaped or annular cross-sectioned bag 261 formed of a suitable water permeable, porous material.
  • a suitable water permeable, porous material may comprise, for example, polypropylene, polyester, cotton, rayon, polyethylene, nylon, PTFE (Teflon), polyacrylonitrile, or acrylic.
  • the fabric type may be woven, nonwoven, felt, or mesh of a thickness of, for example, 0.01" - 0.25".
  • Illustrative porosities range from 10 microns to 500 microns.
  • the inner cylinder 144 may comprise a plastic net/mesh material 263 as shown in Fig. 7, such as, for example, part No. 2370 as manufactured by Industrial Netting, Minneapolis, Minnesota.
  • the donut bag 261 may have a fabric flange, flap, or hook 267 formed as a part thereof or attached thereto for purposes of slipping over the top rim or edge of an inner filter core. Thereafter, a top cap can be installed to hold the bag 260 in place, as illustrated in Fig. 10.
  • an inner core or cylinder 244 of reduced height may be employed to accommodate the thickness of the fabric hook 267.
  • both an inner cylinder 31 1 and an outer cylinder 313 may comprise a plastic net or mesh material such as Part No. 2370 as manufactured by Industrial Netting, Minneapolis, Minnesota.
  • the plastic mesh or net may comprise expanded or extruded plastic heated or ultra welded to form a rigid to semi-rigid mesh network.
  • the mesh network comprises openings of a uniform shape and size, for example, square, diamond, or rectangular. In one specific embodiment, the openings are square and 0, 150 inches on a side.
  • Exemplary diameters for the inner and outer cylinders 31 1, 312 may be 1 1 ⁇ 2 to 3 inches and 5 to 10 inches respectively with 21 ⁇ 2 inches and 6 inches being the dimensions of an exemplary embodiment. Such dimensions of course may vary in various embodiments.
  • the inner cylinder 31 1 may be extruded as a single seamless tube, whereas the outer cylinder 312 is extruded as a flat sheet and is then rolled and sealed along a vertical edge.
  • the filter of Figs 1 1 -14 further includes a top cap 315 and a bottom cap 317, which may be identical components in one embodiment.
  • the caps 315, 317 each include a central circular opening, an inner circular channel 319 of rectangular cross- section and an outer circular channel 321 of rectangular cross-section, each of a width of, for example, 0.1 to 0.2 inches.
  • the cylinders 31 1 , 313 are preferably potted into the bottom cap 317, while the top cap 315 press-fits or friction-fits into place. In other embodiments, the cylinders 31 1, 313 could be glued or snap fitted or otherwise attached to the end caps.
  • the inner circular channel 3 19 of the caps 315, 317 is formed of two concentric cylinders 323, 325 with the inner cylinder 323 having a height greater than the outer cylinder 325 in order to assist with alignment of parts during assembly.
  • the outer channel 321 is defined between concentric cylinders 327, 329 where the inner cylinder 329 has a greater height for same purpose.
  • the end caps 315, 317 may be molded or otherwise fabricated of a suitable plastic such as, for example, ABS, PVC, acetyl, Delrin, polypropylene, polyethylene, polyurethane and/or plastisol.
  • Various filter media may be placed within the annular cavity defined between the inner and outer cylinders 31 1, 313.
  • One such medium may be a spun bonded depth filter 316.
  • Such a filter may be formed, for example, of polyethylene, polypropylene, or nylon, and may be resin coated and sized to fit in between the inner and outer cylinder 31 1 , 313.
  • porous bags of various suitable media described above may be formed as illustrated generally in Figs 6, 9 and 10 and inserted into the annular cavity.
  • a spun bonded element such as element 3 16 and a porous filter media bag may both be used at the same time to achieve advantageous results.
  • a cylindrical spun bonded filter element may be positioned concentrically with a porous bag 351 , as shown in Fig. 19.
  • the alternative fabric bag 351 is illustrated in detail in Figs. 15-17.
  • the bag 351 includes inner and outer rectangular fabric components 353, 355, which are suitably sewn together to form a baffled structure 361, which includes a plurality of vertical compartments 363 arranged in a circle. The bottom of each compartment 363 is first sewn shut, and each compartment 363 is then filled with a suitable medium or combination of media and thereafter sewn shut.
  • vertical stitching along lines 362 (Fig. 18,) is used to form the baffled compartments 363.
  • the bag may be formed by ultra sonic or heat welding.
  • Suitable fabric materials for the bag may be the same as those for bag 261 of Fig. 6.
  • Suitable media for the bag may comprise silver media beads of various compositions, as well as various other media listed or discussed above.
  • Various embodiments of the filters according to Figs. 1 1-18 are designed such that the inner cylinder 31 1 fits down and around a conventional filter stand pipe 368 having a threaded top end such that a threaded cap or plug 367 may be attached to the end of the stand pipe 367 to hold the filter element 313 and its top cap 315 in place.
  • Fig. 20 where the cylindrical portion 366 of a threaded plug 365 plugs through the central opening 314 of a filter top cap 31 5.
  • the interior of the cylinder 366 has threads which mate with those at the top end of the stand pipe 368, allowing the cap 365 to be screwed onto the stand pipe 367.
  • the circular flange portion 367 of the plug 365 comes into flush abutment against the top surface of the top cap 315 thereby further securing the top cap 315 in position.
  • Figs. 21-24 illustrate another embodiment similar to those illustrated in Figs. 12-20.
  • the embodiment of Figs. 21 -24 employs inner and outer concentric cylinders 371 , 373 of plastic net or mesh material.
  • An outer removable filter element 375 of annular cross-section is positioned concentrically within the annular cavity formed by the inner and outer cylinders 371 , 373.
  • This filter 375 may comprise various filter materials, but in one embodiment may be a cleanable paper filter or a cleanable porous sintered plastic filter element.
  • the outer filter element 375 is shaped and dimensioned so as to create an annular space 377 between the outer filter element 375 and the inner plastic mesh cylinder 373.
  • This annular space 377 may be filled with one or more of the various filter media discussed above, including various bagged media.
  • generally rectangular vertically disposed porous plastic mesh compartments 378 (Fig. 25) filled with a filter media or medias may be disposed in the annular space 377.
  • Such plastic compartments 378 may be interlinked or attached together in a ring in one embodiment.
  • the filter medium in the compartments 378 may be a silver based medium.
  • Such compartments 378 may have diamond shaped openings or openings of other shapes in various embodiments.
  • the outer filter element 375 has top and bottom caps 381, 383. These caps may be formed of plastic or other suitable material and are attached to the filter element 375 with adhesive, or cast or molded directly on to the filter element, for example, by molding directly on to the filter element 375 with a chemically set or thermally set material.
  • the caps 381 , 383 may be identically shaped. Each cap 381 , 383 has three vertically extending wedge shaped projections or keyed landings 385 formed thereon and equally spaced around their circular perimeter.
  • the keyed landings 385 are keyed to mesh, interfit and interlock with mating landings or projections 387, 389 formed on respective top and bottom filter caps 391, 393. Such landings provide registration, alignment and positioning of the filter element 375.
  • One or more such landings shaped to provide a meshing and/or interlocking function could be used in various embodiments.
  • the caps 381 , 383 may be molded or otherwise fabricated of a suitable plastic such as, for example, ABS, PVC, acetyl, Delrin, polypropylene, polyethylene, polyurethane and/or plastisol.
  • the top cap 391 and a bottom cap 393 may be identical components in one embodiment shaped to respectively close the top and bottom of the filter.
  • the caps 391 , 393 each include a central circular opening 390, an inner circular channel 419 of rectangular cross-section and an outer circular channel 427 of rectangular cross-section, each of a width of, for example, 0.1 to 0.2 inches.
  • the cylinders 371 , 373 are preferably potted into the bottom cap 393, while the top cap 391 press-fits or friction-fits into place. In other embodiments, the cylinders 371 , 373 could be glued or snap fitted or otherwise attached to suitable end caps.
  • the inner circular channel 419 of the caps 391, 393 is formed of two concentric cylinders 423, 425 with the inner cylinder 425 having a height greater than the outer cylinder 423 in order to assist with alignment of parts during assembly.
  • the outer channel 427 is defined between concentric cylinders 424, 429 where the inner cylinder 429 has a greater height for the same purpose.
  • the end caps 391 , 393 may be molded or otherwise fabricated of a suitable plastic such as, for example, ABS, PVC, acetyl, Delrin, polypropylene, polyethylene, polyurethane and/or plastisol.
  • exemplary diameters for the inner and outer cylinders 31 1 , 312 may be 1 1 ⁇ 2 to 3 inches and 5 to 10 inches respectively with 21 ⁇ 2 inches and 6 inches being the dimensions of an exemplary embodiment. Such dimensions of course may vary in various embodiments.
  • the inner cylinder 371 may be extruded as a single seamless tube, whereas the outer cylinder 373 is extruded as a flat sheet and is then rolled and sealed along a vertical edge.

Landscapes

  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Hydrology & Water Resources (AREA)
  • Engineering & Computer Science (AREA)
  • Environmental & Geological Engineering (AREA)
  • Water Supply & Treatment (AREA)
  • Organic Chemistry (AREA)
  • Geology (AREA)
  • Inorganic Chemistry (AREA)
  • Filtering Materials (AREA)
  • Filtration Of Liquid (AREA)

Abstract

A filter element for positioning in a filter compartment of a spa includes a plastic mesh outer cylinder and a plastic mesh inner cylinder, the inner cylinder being positioned coaxially with respect to the outer cylinder to define an annular interior chamber with a filter element of annular cross-section disposed in the chamber and having keyed landings formed on the top and bottom thereof, which respectively mate and interlock with one or more keyed landings on top and bottom caps of the filter element. The apparatus may further include a plurality of vertically disposed mesh compartments interlinked in a ring and disposed within the filter element, the compartments being filled with a selected filter medium or filter media.

Description

EXCHANGEABLE MEDIA FILTER
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. Patent Application serial number 12/879,967 filed September 10, 2010, which is a continuation-in-part of U.S. Patent Application serial number 12/762,632 filed April 19, 2010, which claims priority to U.S. Provisional Patent application number 61/242,749 filed September 15, 2009, the contents of which are each hereby incorporated herein by reference in their entirety.
BACKGROUND OF THE INVENTION
Field of Invention
[0002] The subject disclosure relates to pools and spas and more particularly to improved methods and apparatus for filtering contaminants from pools and spas.
Description of Related Art
[0003] Portable spas have become quite popular as a result of their ease of use and multiplicity of features such as varied jet and seating configurations. One area where the inventor has recognized that ease of use could be enhanced is the area of maintaining proper water chemistry and sanitation.
SUMMARY
[0004] The following is a summary description of illustrative embodiments of the invention. It is provided as a preface to assist those skilled in the art to more rapidly assimilate the detailed design discussion which ensues and is not intended in any way to limit the scope of the claims which are appended hereto in order to particularly point out the invention.
[0005] In an illustrative embodiment, water chemistry and sanitation are improved by installing a novel filter element in a filter compartment of a portable spa or tub In one embodiment, the filter element comprises a sintered plastic outer cylinder of a first diameter and a sintered plastic inner cylinder of a second diameter less than the first diameter. The inner cylinder is positioned coaxially with respect to the outer cylinder to define an annular interior chamber. A selected granular filter medium or media may then be placed in the annular chamber to combat one or more particular contaminants in the spa water.
[0006] In an alternative embodiment, a donut shaped bag containing selected filter media is placed in the annular chamber. In such an embodiment, the inner cylinder may be a suitable plastic mesh material and the bag may be adapted to hook over the inner cylinder.
[0007] Another embodiment comprises a filter element positioned in a filter compartment and comprising a plastic mesh outer cylinder of a first diameter and having a top and a bottom and a plastic mesh inner cylinder of a second diameter less than said first diameter; the inner cylinder being positioned coaxially with respect to the outer cylinder to define an annular interior chamber.
[0008] A filter element of annular cross-section is disposed in the chamber and has a top cap having one or more keyed landings formed thereon and a bottom cap having one or more keyed landings formed thereon. Top and bottom filter caps are shaped to respectively mate with and close the top and bottom of the filter and to respectively mate and interlock with the one or more keyed landings of the filter element. In one such embodiment, the apparatus further includes a plurality of vertically disposed mesh compartments interlinked in a ring and disposed within the filter element, said compartments being filled with a selected filter medium or filter media. BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Fig. 1 is a schematic side sectional view of a portable spa;
[0010] Fig. 2 is a perspective view of an exchangeable media filter according to an illustrative embodiment;
[0011] Fig. 3 is a side sectional view of the filter of Fig. 2 taken at 3-3 of Fig. 2; [0012] Fig. 4 is a side sectional view of an alternate embodiment. [0013] Fig. 5 is a side sectional view of an alternate embodiment;
[0014] Fig. 6 is a side sectional view of an embodiment employing a resin filled bag; [0015] Fig. 7 is a perspective view illustrating a mesh structure forming an inner cylinder in one embodiment;
[0016] Fig. 8 is a top view of a resin filled bag with a top hook feature;
[0017] Fig. 9 is a side sectional view of the bag of Fig. 8; [0018] Fig. 10 is a side sectional view of a media filter embodiment employing the bag of Figs 8 and 9;
[0019] Fig. 1 1 is an exploded perspective view of another media filter embodiment;
[0020] Fig. 12 is a perspective view of the filter of Fig. 1 1 in an assembled state without media present between the mesh cylinders of the filter;
[0021] Fig. 13 is a perspective view of an end cap of the embodiment of Fig. 1 1 ;
[0022] Fig. 14 is a perspective view of the filter of Fig. 1 in an assembled state;
[0023] Fig. 15 is a perspective view of a baffled filter media bag embodiment;
[0024] Fig. 16 is a top view of the bag of Fig. 15; [0025] Fig. 17 is a side view of an inner panel of the bag of Fig. 15;
[0026] Fig. 18 is a side view of an outer panel of the bag of Fig. 15;
[0027] Fig. 19 is a perspective view of a baffled media bag disposed within a spun bonded filter element;
[0028] Fig. 20 is an exploded perspective view of a filter and stand pipe assembly embodiment;
[0029] Fig. 21 is a perspective view of another filter embodiment;
[0030] Fig. 22 is a perspective view of the filter element of the embodiment of Fig.
21 ; [0031] Fig. 23 is a perspective view of a top cap for the filter embodiment of Fig.
21 ;
[0032] Fig. 24 is a perspective view of a bottom cap for the embodiment of Fig. 21 ; and [0033] Fig. 25 is a top perspective view illustrating mesh filter compartments disposed in the filter embodiment of Fig. 21.
DETAILED DESCRIPTION
[0034] Fig. 1 shows a first embodiment of a portable spa 1 1 containing an exchangeable media filter element 15. The spa 1 1 includes a water circulation, purification and heating system, which includes a filter compartment or "filter bucket" 13. In the system of Fig. 1 , spa water 29 passes through a circulation pipe 16 to a circulation pump 19. A "T" junction 21 may be provided to supply water to a water feature such as a waterfall.
[0035] The circulation pump 19 further pumps the spa water through a "no fault" heater 22, with which are associated a regulating sensor 23 and a hi-limit sensor 25. An ozone generator and associated injector or other water purification apparatus 27 is also positioned in the return flow path to the spa 1 1, which may comprise an 8 to 10 foot contact chamber 29 and a spa inlet 31 where a circulation return jet is created. A secondary drain 33 may also be provided. An electronic control unit 17 controls the pump 19 and ozone generator 27, as well as other accessories which may be provided as part of the spa 1 1 . In one embodiment, the filter bucket 13 may be a conventional filter bucket traditionally manufactured as part of the original spa equipment.
[0036] An exchangeable media filter 15 according to an illustrative embodiment is shown in Figs. 2 and 3. The filter 15 includes inner and outer co-axially mounted annular filter cylinders 43, 44 with a top cap 50 and a bottom cap 52. The cylinders 43, 44 are formed of sintered plastic, such as, for example, polypropylene or polyethylene. Other materials for the cylinders 43, 44 may include, for example, and without limitation, PTFE (poly tetrafluoroethylene), PVDF (poly vinylidene fluoride), EVA (ethyl vinyl acetate) Nylon, thermoplastic polyurethane. The top and bottom caps 50, 52 may be formed, for example, of plastisol, polyurethane, PVC, ABS, or Noryl, polypro, polyethylene, or chemically/thermally set plastic resin elastomer.
[0037] Presently preferred thicknesses Wi, W2 for each of the cylinders range from Άβ" to ½" with an exemplary thickness of Vg" for both Wi and W2. Porosity of the cylinders may range from 25 to 150 microns, with 100 microns being a typical porosity. While the filter 15 is cylindrical, other geometrical shapes, such as square or star- shaped could be employed. Various heights and outer diameters may also be employed, including diameters of conventional filter elements such as, for example, 8 to 20 inches tall and 5 to 12 inches in outer diameter. [0038] The respective filter elements 43, 44 define an annular hollow inner chamber 47. The annular chamber 47 constitutes a space which is filled with a selected granulated or beaded medium or combination of granulated or beaded media. Such media may include, for example, and without limitation:
Ion exchange resin
De-ionization resin
Zeolite
Activated carbon
Silver based media
Ceramic
Solid sanitizer (chlorine/bromine)
[0039] After filling the chamber 47, the top cap 50 is fixed in place to close the unit. In operation, water flows radially from the outside larger diameter cylinder 43 to the inner cylinder 44, at a flow rate of e.g. 1-10 gallons per minute, thus bringing the water in contact with the active media. An advantage of the illustrative embodiment is that cylinders containing different filter media can be added or exchanged after the spa has been filled with water in response to occurrence of a problem with a particular type of contaminant.
[0040] in use, when a spa is filled with water, there is an amount of contamination already in the water. Through usage, chemical addition, evaporation, and water addition; waste and other toxic elements can build up in the water. Traditionally, it is recommended to change the water when the total dissolved solids (TDS) exceed 1500 ppm, or based on a days of use measure; for example, according to the formula [(Spa size in gallons)/3] (times) (number of bathers per day) = the number of days before water change is needed.
[0041] A filter constructed according to the illustrative embodiments serves to extend the life of the water, reduce the number of water changes and save water by removing the accumulated TDS from the water. Such TDS include: toxic metals such as lead, iron, copper, manganese, minerals, calcium, magnesium, sodium, chloride, soaps, detergents, foaming agents, oils, suntan lotions, cyanuric acid, ammonia, pesticides, pharmaceuticals, organic acids, beer/wine, components of human sweat and waste, chlorinated by-products, humic acid, urine, body fluids, and tannins.
[0042] In an alternative embodiment, a screw-on cap is provided on a filter like that of Fig. 1 , enabling a user to change the media. In such case, the filter is removed from the spa, the top is unscrewed, and the media is replaced. In some embodiments the media may be limited to consumer friendly media like carbon, resin beads, and zeolites. As illustrated in Fig. 4, such an embodiment may comprise two cylinders 143, 144 with a potted bottom cap 152. A ring 155 with internal threads 157 is provided, which is seated and bonded to the top of the outer cylinder 143. The top cap 150 has external threads 159, which permits the top cap 150 to be screwed onto the top of the filter 140 until an internal sealing surface 161 on an inner ring 163 of the top cap 150 contacts and seals with the inner cylinder 144.
[0043] In an alternative embodiment, a press-fit or friction fit, rather than screw- on, cap is provided on a filter like that of Fig. 2. As illustrated in Fig. 5, such an embodiment may comprise two cylinders 243, 244 with a potted bottom cap 252. The top cap 250 has a grooved surface 259, defining a groove 246, which is dimensioned to press fittingly engage surface 243. The internal sealing surface 261 on an inner ring 263 of the top cap 250 may also contact and press-fittingly seal with the inner cylinder 244.
[0044] Fig. 6 illustrates an embodiment wherein the filter media 260 is contained within a donut-shaped or annular cross-sectioned bag 261 formed of a suitable water permeable, porous material. Such material may comprise, for example, polypropylene, polyester, cotton, rayon, polyethylene, nylon, PTFE (Teflon), polyacrylonitrile, or acrylic. In various embodiments, the fabric type may be woven, nonwoven, felt, or mesh of a thickness of, for example, 0.01" - 0.25". Illustrative porosities range from 10 microns to 500 microns.
[0045] In an embodiment such as Fig. 6, the inner cylinder 144 may comprise a plastic net/mesh material 263 as shown in Fig. 7, such as, for example, part No. 2370 as manufactured by Industrial Netting, Minneapolis, Minnesota. Additionally, in one embodiment, shown in Figs 8 and 9, the donut bag 261 may have a fabric flange, flap, or hook 267 formed as a part thereof or attached thereto for purposes of slipping over the top rim or edge of an inner filter core. Thereafter, a top cap can be installed to hold the bag 260 in place, as illustrated in Fig. 10. In one embodiment, an inner core or cylinder 244 of reduced height may be employed to accommodate the thickness of the fabric hook 267.
[0046] In another embodiment of a filter 310 illustrated in Figs 1 1-14, both an inner cylinder 31 1 and an outer cylinder 313 may comprise a plastic net or mesh material such as Part No. 2370 as manufactured by Industrial Netting, Minneapolis, Minnesota. In general the plastic mesh or net may comprise expanded or extruded plastic heated or ultra welded to form a rigid to semi-rigid mesh network. In various embodiments, the mesh network comprises openings of a uniform shape and size, for example, square, diamond, or rectangular. In one specific embodiment, the openings are square and 0, 150 inches on a side.
[0047] Exemplary diameters for the inner and outer cylinders 31 1, 312 may be 1 ½ to 3 inches and 5 to 10 inches respectively with 2½ inches and 6 inches being the dimensions of an exemplary embodiment. Such dimensions of course may vary in various embodiments. In one embodiment, the inner cylinder 31 1 may be extruded as a single seamless tube, whereas the outer cylinder 312 is extruded as a flat sheet and is then rolled and sealed along a vertical edge.
[0048] The filter of Figs 1 1 -14 further includes a top cap 315 and a bottom cap 317, which may be identical components in one embodiment. The caps 315, 317 each include a central circular opening, an inner circular channel 319 of rectangular cross- section and an outer circular channel 321 of rectangular cross-section, each of a width of, for example, 0.1 to 0.2 inches. The cylinders 31 1 , 313 are preferably potted into the bottom cap 317, while the top cap 315 press-fits or friction-fits into place. In other embodiments, the cylinders 31 1, 313 could be glued or snap fitted or otherwise attached to the end caps.
[0049] The inner circular channel 3 19 of the caps 315, 317 is formed of two concentric cylinders 323, 325 with the inner cylinder 323 having a height greater than the outer cylinder 325 in order to assist with alignment of parts during assembly. Similarly, the outer channel 321 is defined between concentric cylinders 327, 329 where the inner cylinder 329 has a greater height for same purpose. The end caps 315, 317 may be molded or otherwise fabricated of a suitable plastic such as, for example, ABS, PVC, acetyl, Delrin, polypropylene, polyethylene, polyurethane and/or plastisol.
[0050] Various filter media may be placed within the annular cavity defined between the inner and outer cylinders 31 1, 313. One such medium may be a spun bonded depth filter 316. Such a filter may be formed, for example, of polyethylene, polypropylene, or nylon, and may be resin coated and sized to fit in between the inner and outer cylinder 31 1 , 313. In other embodiments, porous bags of various suitable media described above may be formed as illustrated generally in Figs 6, 9 and 10 and inserted into the annular cavity. In some embodiments, a spun bonded element such as element 3 16 and a porous filter media bag may both be used at the same time to achieve advantageous results. In one embodiment, a cylindrical spun bonded filter element may be positioned concentrically with a porous bag 351 , as shown in Fig. 19.
[0051] The alternative fabric bag 351 is illustrated in detail in Figs. 15-17. The bag 351 includes inner and outer rectangular fabric components 353, 355, which are suitably sewn together to form a baffled structure 361, which includes a plurality of vertical compartments 363 arranged in a circle. The bottom of each compartment 363 is first sewn shut, and each compartment 363 is then filled with a suitable medium or combination of media and thereafter sewn shut. In one embodiment, vertical stitching along lines 362 (Fig. 18,) is used to form the baffled compartments 363. In other embodiments, the bag may be formed by ultra sonic or heat welding.
[0052] Suitable fabric materials for the bag may be the same as those for bag 261 of Fig. 6. Suitable media for the bag may comprise silver media beads of various compositions, as well as various other media listed or discussed above. [0053] Various embodiments of the filters according to Figs. 1 1-18 are designed such that the inner cylinder 31 1 fits down and around a conventional filter stand pipe 368 having a threaded top end such that a threaded cap or plug 367 may be attached to the end of the stand pipe 367 to hold the filter element 313 and its top cap 315 in place. One such embodiment is shown in Fig. 20 where the cylindrical portion 366 of a threaded plug 365 plugs through the central opening 314 of a filter top cap 31 5. The interior of the cylinder 366 has threads which mate with those at the top end of the stand pipe 368, allowing the cap 365 to be screwed onto the stand pipe 367. As the cap 365 is screwed down onto the stand pipe 368, the circular flange portion 367 of the plug 365 comes into flush abutment against the top surface of the top cap 315 thereby further securing the top cap 315 in position. These and other mesh embodiments provide an easy-to-use filter wherein the filter elements can be easily removed for cleaning or replacement.
[0054] Figs. 21-24 illustrate another embodiment similar to those illustrated in Figs. 12-20. In particular, the embodiment of Figs. 21 -24 employs inner and outer concentric cylinders 371 , 373 of plastic net or mesh material. An outer removable filter element 375 of annular cross-section is positioned concentrically within the annular cavity formed by the inner and outer cylinders 371 , 373. This filter 375 may comprise various filter materials, but in one embodiment may be a cleanable paper filter or a cleanable porous sintered plastic filter element.
[0055] In one embodiment, the outer filter element 375 is shaped and dimensioned so as to create an annular space 377 between the outer filter element 375 and the inner plastic mesh cylinder 373. This annular space 377 may be filled with one or more of the various filter media discussed above, including various bagged media. In one embodiment, generally rectangular vertically disposed porous plastic mesh compartments 378 (Fig. 25) filled with a filter media or medias may be disposed in the annular space 377. Such plastic compartments 378 may be interlinked or attached together in a ring in one embodiment. In one such embodiment, the filter medium in the compartments 378 may be a silver based medium. Such compartments 378 may have diamond shaped openings or openings of other shapes in various embodiments.
[0056] As further illustrated in Figs. 21-24, in one embodiment, the outer filter element 375 has top and bottom caps 381, 383. These caps may be formed of plastic or other suitable material and are attached to the filter element 375 with adhesive, or cast or molded directly on to the filter element, for example, by molding directly on to the filter element 375 with a chemically set or thermally set material. In one illustrative embodiment, the caps 381 , 383 may be identically shaped. Each cap 381 , 383 has three vertically extending wedge shaped projections or keyed landings 385 formed thereon and equally spaced around their circular perimeter. The keyed landings 385 are keyed to mesh, interfit and interlock with mating landings or projections 387, 389 formed on respective top and bottom filter caps 391, 393. Such landings provide registration, alignment and positioning of the filter element 375. One or more such landings shaped to provide a meshing and/or interlocking function could be used in various embodiments. The caps 381 , 383 may be molded or otherwise fabricated of a suitable plastic such as, for example, ABS, PVC, acetyl, Delrin, polypropylene, polyethylene, polyurethane and/or plastisol.
[0057] As with the cap of Fig. 13, the top cap 391 and a bottom cap 393 may be identical components in one embodiment shaped to respectively close the top and bottom of the filter. The caps 391 , 393 each include a central circular opening 390, an inner circular channel 419 of rectangular cross-section and an outer circular channel 427 of rectangular cross-section, each of a width of, for example, 0.1 to 0.2 inches. The cylinders 371 , 373 are preferably potted into the bottom cap 393, while the top cap 391 press-fits or friction-fits into place. In other embodiments, the cylinders 371 , 373 could be glued or snap fitted or otherwise attached to suitable end caps.
[0058] The inner circular channel 419 of the caps 391, 393 is formed of two concentric cylinders 423, 425 with the inner cylinder 425 having a height greater than the outer cylinder 423 in order to assist with alignment of parts during assembly. Similarly, the outer channel 427 is defined between concentric cylinders 424, 429 where the inner cylinder 429 has a greater height for the same purpose. The end caps 391 , 393 may be molded or otherwise fabricated of a suitable plastic such as, for example, ABS, PVC, acetyl, Delrin, polypropylene, polyethylene, polyurethane and/or plastisol. [0059] As with the embodiments of Figs. 12-20, exemplary diameters for the inner and outer cylinders 31 1 , 312 may be 1 ½ to 3 inches and 5 to 10 inches respectively with 2½ inches and 6 inches being the dimensions of an exemplary embodiment. Such dimensions of course may vary in various embodiments. In one embodiment, the inner cylinder 371 may be extruded as a single seamless tube, whereas the outer cylinder 373 is extruded as a flat sheet and is then rolled and sealed along a vertical edge.
[0060] Those skilled in the art will appreciate that various adaptations and modifications of the just described embodiments can be configured without departing from the scope and spirit of the invention. Therefore, it is to be understood that, within the scope of the appended claims, the invention may be practiced other than as specifically described herein.

Claims

1. Apparatus comprising:
a portable spa or tub;
a filter compartment in said spa or tub;
a filter element positioned in said filter compartment, the filter element comprising:
a plastic mesh outer cylinder of a first diameter and having a top and a bottom;
a plastic mesh inner cylinder of a second diameter less than said first diameter; the inner cylinder being positioned coaxially with respect to the outer cylinder to define an annular interior chamber;
a filter element of annular cross-section disposed in said chamber, the filter element having a top cap having one or more keyed landings formed thereon and a bottom cap having one or more keyed landings formed thereon; and
top and bottom filter caps shaped to respectively mate with the top and bottom of said outer cylinder and to respectively interlock with the one or more keyed landings of said filter element.
2. The apparatus of claim 1 wherein said filter element comprises a cleanable paper or porous plastic filter element.
3. The apparatus of claim 2 further including a plurality of vertically disposed mesh compartments interlinked in a ring and disposed within said filter element, said compartments being filled with a selected filter medium or filter media.
4. The apparatus of claim 3 wherein said filter medium or media comprises beads comprising a silver composition.
5. Apparatus comprising:
a portable spa or tub;
a filter compartment in said spa or tub;
a filter element positioned in said filter compartment, the filter element comprising: a plastic mesh outer cylinder of a first diameter;
a plastic mesh inner cylinder of a second diameter less than said first diameter; the inner cylinder being positioned coaxially with respect to the outer cylinder to define an annular interior chamber; and
a selected filter medium or combination of such media residing in said annular chamber.
6. The apparatus of claim 5 wherein said filter medium or media comprises a spun bonded filter medium.
7. The apparatus of claim 5 wherein said filter medium or media comprises a porous baffled bag containing a selected granular or beaded filter medium or combination of selected granular and/or beaded filter media, said bag residing in said annular chamber.
8. The apparatus of claim 6 wherein said filter medium or media further comprises a porous baffled bag containing a selected granular or beaded filter medium or combination of selected granular and/or beaded filter media, said bag residing in said annular chamber.
9. The apparatus of claim 7 wherein said filter medium comprises beads comprising a silver composition.
10. The apparatus of claim 8 wherein said porous baffled bag and said spun bonded filter medium are disposed concentrically with respect to one another.
1 1. The apparatus of claim 9 wherein said filter medium comprises at least one spun bonded filter element positioned concentrically with at least one porous bag filter, said bag containing a selected filter medium or media.
PCT/US2010/059515 2010-04-21 2010-12-08 Exchangeable media filter Ceased WO2011133186A1 (en)

Applications Claiming Priority (6)

Application Number Priority Date Filing Date Title
USPCT/US10/31945 2010-04-21
PCT/US2010/031945 WO2011034639A1 (en) 2009-09-15 2010-04-21 Exchangeable media filter
US12/879,967 US8535524B2 (en) 2009-09-15 2010-09-10 Exchangeable media filter
US12/879,967 2010-09-10
US12/948,507 2010-11-17
US12/948,507 US8431021B2 (en) 2009-09-15 2010-11-17 Exchangeable media filter

Publications (1)

Publication Number Publication Date
WO2011133186A1 true WO2011133186A1 (en) 2011-10-27

Family

ID=44834436

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2010/059515 Ceased WO2011133186A1 (en) 2010-04-21 2010-12-08 Exchangeable media filter

Country Status (1)

Country Link
WO (1) WO2011133186A1 (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2594532A1 (en) * 2011-11-21 2013-05-22 Martin Bergmann Umwelttechnik Method and arrangement for hygienisation of water in a swimming pool system or swimming or bathing area
WO2015140672A1 (en) * 2014-03-17 2015-09-24 B+M Textil Gmbh & Co. Kg Active substance carrier
EP4400192A1 (en) 2023-01-12 2024-07-17 Groupe Waterair S.A.S. Filter medium, support for a filter medium and filtration unit for a pool, in particular a swimming pool

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050161380A1 (en) * 2003-09-24 2005-07-28 Crawford William R.Iii Method and apparatus for remediation and prevention of fouling of recirculating water systems by detritus and other debris
US20050199551A1 (en) * 2004-03-10 2005-09-15 Gordon Robert R. Method and system for filtering sediment-bearing fluids
US20060027492A1 (en) * 2004-08-06 2006-02-09 Lin Mao C Filter mechanism
US20070017877A1 (en) * 2004-08-06 2007-01-25 Musson Andrew P Water treatment system, apparatus and method

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050161380A1 (en) * 2003-09-24 2005-07-28 Crawford William R.Iii Method and apparatus for remediation and prevention of fouling of recirculating water systems by detritus and other debris
US20050199551A1 (en) * 2004-03-10 2005-09-15 Gordon Robert R. Method and system for filtering sediment-bearing fluids
US20060027492A1 (en) * 2004-08-06 2006-02-09 Lin Mao C Filter mechanism
US20070017877A1 (en) * 2004-08-06 2007-01-25 Musson Andrew P Water treatment system, apparatus and method

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2594532A1 (en) * 2011-11-21 2013-05-22 Martin Bergmann Umwelttechnik Method and arrangement for hygienisation of water in a swimming pool system or swimming or bathing area
WO2015140672A1 (en) * 2014-03-17 2015-09-24 B+M Textil Gmbh & Co. Kg Active substance carrier
EP4400192A1 (en) 2023-01-12 2024-07-17 Groupe Waterair S.A.S. Filter medium, support for a filter medium and filtration unit for a pool, in particular a swimming pool
FR3144925A1 (en) * 2023-01-12 2024-07-19 Groupe Waterair Filter media, support for filter media and filtration unit for a pond, in particular a swimming pool

Similar Documents

Publication Publication Date Title
US8431021B2 (en) Exchangeable media filter
US8366922B2 (en) Exchangeable media filter
US8535524B2 (en) Exchangeable media filter
US6004458A (en) Filter/sanitizer
AU2003231002B2 (en) Encapsulated filter cartridge
EP0477954B1 (en) Iodine resin/carbon water purification system
US8623206B2 (en) Gravitational filter and liquid purification device
US7507338B2 (en) Universal water purifier unit assembly device
US20120187036A1 (en) Water Filter With Inwardly Sloping Top
US20040206682A1 (en) Filter assembly utilizing carbon block and pleated filter element
CN104902976B (en) Can backwashing fluid processing equipment and the external member for filtered fluid
WO2016138151A1 (en) Multi-layered composite filter media and pleated filter element constructed therefrom
EP1663440B1 (en) Non-collapsible dual filter element
US20130153480A1 (en) Water Filter With Inwardly Sloping Top
JPS60190206A (en) Water purifying filter
WO2011133186A1 (en) Exchangeable media filter
WO2011034639A1 (en) Exchangeable media filter
JP5026572B2 (en) Filter unit
KR20130002659A (en) Filter assembly
CN220223882U (en) Filter element and multi-layer stacked filter element device
CN107445317B (en) A liquid handling device
JP4615694B2 (en) Water purifier
JP2001212555A (en) Water cleaning cartridge
JP2003053333A (en) Water cleaner and method for forming activated carbon layer of water cleaner
TWI487560B (en) A filter with a combined filter

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 10850404

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 10850404

Country of ref document: EP

Kind code of ref document: A1