WO1997007272A1 - Fibrous webs having enhanced electret properties - Google Patents

Fibrous webs having enhanced electret properties Download PDF

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Publication number
WO1997007272A1
WO1997007272A1 PCT/US1996/011878 US9611878W WO9707272A1 WO 1997007272 A1 WO1997007272 A1 WO 1997007272A1 US 9611878 W US9611878 W US 9611878W WO 9707272 A1 WO9707272 A1 WO 9707272A1
Authority
WO
WIPO (PCT)
Prior art keywords
web
thermoplastic resin
compound
alkyl group
pentene
Prior art date
Application number
PCT/US1996/011878
Other languages
French (fr)
Inventor
Alan D. Rousseau
Marvin E. Jones
Seyed A. Angadjivand
Original Assignee
Minnesota Mining And Manufacturing Company
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
Application filed by Minnesota Mining And Manufacturing Company filed Critical Minnesota Mining And Manufacturing Company
Priority to BR9610200A priority Critical patent/BR9610200A/en
Priority to AU66481/96A priority patent/AU700461B2/en
Priority to JP50928597A priority patent/JP4069195B2/en
Priority to DE69627670T priority patent/DE69627670T2/en
Priority to MX9800828A priority patent/MX9800828A/en
Priority to EP96926091A priority patent/EP0845058B1/en
Publication of WO1997007272A1 publication Critical patent/WO1997007272A1/en

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Classifications

    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04HMAKING TEXTILE FABRICS, e.g. FROM FIBRES OR FILAMENTARY MATERIAL; FABRICS MADE BY SUCH PROCESSES OR APPARATUS, e.g. FELTS, NON-WOVEN FABRICS; COTTON-WOOL; WADDING ; NON-WOVEN FABRICS FROM STAPLE FIBRES, FILAMENTS OR YARNS, BONDED WITH AT LEAST ONE WEB-LIKE MATERIAL DURING THEIR CONSOLIDATION
    • D04H1/00Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres
    • D04H1/40Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties
    • D04H1/42Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties characterised by the use of certain kinds of fibres insofar as this use has no preponderant influence on the consolidation of the fleece
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D39/00Filtering material for liquid or gaseous fluids
    • B01D39/08Filter cloth, i.e. woven, knitted or interlaced material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D39/00Filtering material for liquid or gaseous fluids
    • B01D39/14Other self-supporting filtering material ; Other filtering material
    • B01D39/16Other self-supporting filtering material ; Other filtering material of organic material, e.g. synthetic fibres
    • B01D39/1607Other self-supporting filtering material ; Other filtering material of organic material, e.g. synthetic fibres the material being fibrous
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D39/00Filtering material for liquid or gaseous fluids
    • B01D39/14Other self-supporting filtering material ; Other filtering material
    • B01D39/16Other self-supporting filtering material ; Other filtering material of organic material, e.g. synthetic fibres
    • B01D39/1607Other self-supporting filtering material ; Other filtering material of organic material, e.g. synthetic fibres the material being fibrous
    • B01D39/1623Other self-supporting filtering material ; Other filtering material of organic material, e.g. synthetic fibres the material being fibrous of synthetic origin
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D39/00Filtering material for liquid or gaseous fluids
    • B01D39/14Other self-supporting filtering material ; Other filtering material
    • B01D39/16Other self-supporting filtering material ; Other filtering material of organic material, e.g. synthetic fibres
    • B01D39/1607Other self-supporting filtering material ; Other filtering material of organic material, e.g. synthetic fibres the material being fibrous
    • B01D39/1623Other self-supporting filtering material ; Other filtering material of organic material, e.g. synthetic fibres the material being fibrous of synthetic origin
    • B01D39/163Other self-supporting filtering material ; Other filtering material of organic material, e.g. synthetic fibres the material being fibrous of synthetic origin sintered or bonded
    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01FCHEMICAL FEATURES IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS; APPARATUS SPECIALLY ADAPTED FOR THE MANUFACTURE OF CARBON FILAMENTS
    • D01F1/00General methods for the manufacture of artificial filaments or the like
    • D01F1/02Addition of substances to the spinning solution or to the melt
    • D01F1/10Other agents for modifying properties
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06MTREATMENT, NOT PROVIDED FOR ELSEWHERE IN CLASS D06, OF FIBRES, THREADS, YARNS, FABRICS, FEATHERS OR FIBROUS GOODS MADE FROM SUCH MATERIALS
    • D06M10/00Physical treatment of fibres, threads, yarns, fabrics, or fibrous goods made from such materials, e.g. ultrasonic, corona discharge, irradiation, electric currents, or magnetic fields; Physical treatment combined with treatment with chemical compounds or elements
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/02Types of fibres, filaments or particles, self-supporting or supported materials
    • B01D2239/0216Bicomponent or multicomponent fibres
    • B01D2239/0225Side-by-side
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/02Types of fibres, filaments or particles, self-supporting or supported materials
    • B01D2239/0216Bicomponent or multicomponent fibres
    • B01D2239/0233Island-in-sea
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/04Additives and treatments of the filtering material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/04Additives and treatments of the filtering material
    • B01D2239/0435Electret
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/06Filter cloth, e.g. knitted, woven non-woven; self-supported material
    • B01D2239/0604Arrangement of the fibres in the filtering material
    • B01D2239/0613Woven
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/06Filter cloth, e.g. knitted, woven non-woven; self-supported material
    • B01D2239/0604Arrangement of the fibres in the filtering material
    • B01D2239/0636Two or more types of fibres present in the filter material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/06Filter cloth, e.g. knitted, woven non-woven; self-supported material
    • B01D2239/0604Arrangement of the fibres in the filtering material
    • B01D2239/064The fibres being mixed
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/06Filter cloth, e.g. knitted, woven non-woven; self-supported material
    • B01D2239/065More than one layer present in the filtering material
    • B01D2239/0654Support layers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/06Filter cloth, e.g. knitted, woven non-woven; self-supported material
    • B01D2239/065More than one layer present in the filtering material
    • B01D2239/0663The layers being joined by hydro-entangling
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/10Filtering material manufacturing
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/12Special parameters characterising the filtering material
    • B01D2239/1233Fibre diameter
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/12Special parameters characterising the filtering material
    • B01D2239/1291Other parameters
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/16Controlling the light source by timing means
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S55/00Gas separation
    • Y10S55/05Methods of making filter
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S55/00Gas separation
    • Y10S55/39Electrets separator
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/24Structurally defined web or sheet [e.g., overall dimension, etc.]
    • Y10T428/24802Discontinuous or differential coating, impregnation or bond [e.g., artwork, printing, retouched photograph, etc.]
    • Y10T428/24826Spot bonds connect components
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T442/00Fabric [woven, knitted, or nonwoven textile or cloth, etc.]
    • Y10T442/20Coated or impregnated woven, knit, or nonwoven fabric which is not [a] associated with another preformed layer or fiber layer or, [b] with respect to woven and knit, characterized, respectively, by a particular or differential weave or knit, wherein the coating or impregnation is neither a foamed material nor a free metal or alloy layer
    • Y10T442/2418Coating or impregnation increases electrical conductivity or anti-static quality

Definitions

  • This invention provides fibrous webs capable of having enhanced electret properties, electret webs having such properties, compositions for preparing same, methods of preparing such webs and compositions and compounds useful in such webs and methods.
  • the webs and compositions include blends of electret-forming polymers and electret property enhancing additives, the webs being charged by a process which includes impingement of jets of water or a stream of water droplets onto the web.
  • the electret webs are particularly useful in filtration materials, for example for respirators or room or vehicle air filtration, and in other electrostatic aerosol filtration applications.
  • melt-blown microfiber webs continue to be in widespread use for filtering particulate contaminants, for example, as face masks and as water filters, and for other purposes, such as sorbent webs for removal of oil from water, as acoustic insulation and as thermal insulation.
  • the aerosol filtration efficiency of nonwoven fibrous webs can be improved by imparting an electrical charge to the fibers, forming an electret material.
  • a number of methods are known for forming such electret materials. Such methods include, for example, bombarding melt-blown fibers as they issue from the die orifices, as the fibers are formed, with electrically charged particles such as electrons or ions, charging fibers by means of a corona discharge after fiber formation or imparting a charge to a fiber mat by means of carding and/or needle tacking (tribocharging).
  • tribocharging tribocharging
  • nonwoven fibrous webs useful for filtration purposes have been prepared by fibrillating films of polyolefin to form a fibrous material. Such fibrillated materials may be charged as the film, for example, by corona discharge and then fibrillated, collected and processed into a filter.
  • Resins used in preparing the filtration material are generally required to be substantially free of materials which could increase the electrical conductivity or otherwise interfere with the ability of the fibers to accept and hold electrostatic charge.
  • certain polystyrene-type polymers have better properties if they have not more than 1% by weight of electron-donor impurities and not more than 0.5% by weight of electron-acceptor impurities.
  • an electret material for a dust filter which is a blend of an insulating polymer with a fatty acid metal salt in an amount of not less than 100 ppm in terms of the metal with charging carried out by a conventional procedure such as rubbing or corona charge treatment.
  • polypropylene including blends and copolymers, electret materials containing at least one stabilizer selected from hindered amines, nitrogen-containing hindered phenols, and metal-containing hindered phenols.
  • the electret may further contain an additional stabilizer selected from phenol-, sulfur-, and phosphorous-containing stabilizers and/or an ultraviolet light absorber with charging being carried out in a high voltage field at room temperature.
  • Electret filters prepared from a resin whose angle of contact upon wetting with pure water is no less than 95° or has been adjusted to no less than 95° by addition of silicone oil have been disclosed.
  • the electret resin may optionally contain other additives, including heat stabilizers, weathering agents, anti-blocking agents, and inorganic or organic fillers. Charging may be carried out in various ways. Further disclosed are electret filter media with a melt processable fluorochemical additive having a melting point of at least 25°C and a molecular weight of about 500 to
  • Charging involves subjecting the material to corona discharge or pulsed high voltage.
  • the present invention provides a method of making a fibrous electret material comprising the steps of (1) forming a fibrous web of nonconductive thermoplastic fibers from a blend of nonconductive thermoplastic resin and an additive which is (a) a thermally stable organic compound or oligomer containing at least one perfluorinated moiety, said compound or oligomer preferably having a fluorine content of at least about 18 percent by weight or (b) a thermally stable organic triazine compound or oligomer containing at least one nitrogen atom in addition to those in the triazine group or (c) a combination thereof; (2) impinging jets of water or a stream of water droplets onto the web at a pressure sufficient to provide the web with filtration enhancing electret charge; and (3) drying the web.
  • an additive which is (a) a thermally stable organic compound or oligomer containing at least one perfluorinated moiety, said compound or oligomer preferably having a fluorine content of at least about 18 percent by weight
  • the present invention further provides a composition comprising a blend of a thermoplastic resin and at least one compound or oligomer which is
  • Rf is a perfluorinated moiety preferably having about 3 to 20 carbon atoms, more preferably about 6 to 12 carbon atoms and which may contain one or more catenary ether oxygen atoms
  • Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof
  • R is an alkyl group preferably having 1 to 4 carbon atoms
  • R 1 is a perfluoroalkyl group preferably having 1 to 4 carbon atoms
  • R 2 is an alkyl group which may be straight chain or branched and preferably having 4 to 10 carbon atoms
  • n is a number of from 2 to 40, preferably 2 to 20, more preferably 4 to 10.
  • the present invention in another aspect, provides fibrous webs comprising a blend of a thermoplastic resin and at least one compound or oligomer which is
  • R f is a perfluorinated moiety preferably having about 3 to 20 carbon atoms, more preferably about 6 to 12 carbon atoms and which may contain one or more catenary ether oxygen atoms
  • Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof,
  • R is an alkyl group preferably having 1 to 4 carbon atoms
  • R 1 is a perfluoroalkyl group preferably having 1 to 4 carbon atoms
  • R 2 is an alkyl group which may be straight chain or branched and preferably having 4 to 10 carbon atoms
  • n is a number of from 2 to 40, preferably 2 to 20, more preferably 4 to 10.
  • the present invention still further provides electret filter media comprising a fibrous web of a blend of a thermoplastic resin and at least one compound or oligomer which is
  • R f is a perfluorinated moiety preferably having about 3 to 20 carbon atoms, more preferably about 6 to 12 carbon atoms and which may contain one or more catenary ether oxygen atoms
  • Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof
  • R is an alkyl group preferably having 1 to 4 carbon atoms
  • R 1 is a perfluoroalkyl group preferably having 1 to 4 carbon atoms
  • R 2 is an alkyl group which may be straight chain or branched and preferably having 4 to 10 carbon atoms
  • n is a number of from 2 to 40, preferably 2 to 20, more preferably 4 to 10, said web having sufficient charge to exhibit improved filtration efficiency over a web having no compound or oligomer.
  • the fibrous electret material prepared according to the method of the present invention exhibits greater charge when charged by impingement of jets of water or streams of water droplets than do comparable webs not containing the additive. This provides improved filtration properties.
  • Such materials are useful, for example, as respirator filters, vehicle ventilation filters, air conditioner filters, and other air filters.
  • respirators the presence of the additive provides decreased breathing resistance and reduced weight and bulk without decreasing the filtration efficiency, or improved filtration efficiency without increasing the breathing resistance, weight, and bulk.
  • respirators are described, for example, in U.S. Pat. No. 4,536,440 and U.S. application Serial No. 08/079,234 which are incorporated herein by reference.
  • FIG. 1 is a side view of an apparatus useful in making the nonwoven microfiber web used in the method of the present invention.
  • FIG. 2 is a perspective view of a water jet spray apparatus useful in the present invention.
  • FIG. 3 is a perspective view of a nebulizer useful in the present invention.
  • FIG. 4 is a perspective view of a pump action sprayer useful in the present invention.
  • Thermoplastic resins useful in the present invention include any one of
  • thermoplastic nonconductive polymer capable of having a high quantity of trapped charge when formed into a fibrous web treated by impingement of jets of water or a stream of water droplets.
  • Polymers capable of acquiring a trapped charge include polyolefins such as polypropylene, polyethylene, and poly-4-methyl-1-pentene; polyvinyl chloride; polystyrene; polycarbonates; and polyesters.
  • Preferred materials include polypropylene, poly-4-methyl-1-pentene, blends thereof or copolymers formed from at least one of propylene and 4-methyl-1-pentene.
  • One class of suitable additive materials is organic materials that contain at least one perfluorinated moiety and have a fluorine content of at least 18% by weight. These materials must be thermally stable at the extrusion temperature of the polymeric resin in order to withstand processing without undesirable degradation or volatilization. Usually molecular weights of 500 or greater are sufficient to avoid excessive volatilization.
  • Such compounds include, for example, short-chain tetrafluoroethylene telomers, fluoroaliphatic alkanes having the formula C x F 2x+2 wherein x is from about 20 to 30, ,
  • R f is a perfluorinated moiety preferably having about 3 to 20 carbon atoms, more preferably about 6 to 12 carbon atoms and which may contain one or more catenary ether oxygen atoms
  • Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof, and R is an alkyl group preferably having 1 to 4 carbon atoms
  • R 1 is a
  • perfluoroalkyl group preferably having 1 to 4 carbon atoms, and R 4 is , or ,
  • Another class of suitable additive materials is organic triazine compounds or oligomers with at least one additional nitrogen-containing group. Again, they must be thermally stable at the extrusion temperature of the polymeric resin such that undesirable degradation or volatilization do not occur. Those compounds or oligomers having a molecular weight of usually at least 500 generally are not lost by volatilization. Such compounds or oligomers include
  • R 2 is an alkyl group which may be straight chain or branched and preferably having 4 to 10 carbon atoms and n is a number of from 2 to 40, preferably 2 to 20, more preferably 4 to 10.
  • the fluorochemical additive or the triazine-based additive is preferably present in amounts of about 0.1 to 10 weight percent, more preferably about 0.2 to 5 weight percent, most preferably about 0.5 to 2 weight percent.
  • the blend of the thermoplastic resin and the additive can be prepared by well-known methods.
  • the resin and the additive can be preblended and pelletized, then the pellets can be melt extruded.
  • the additive can be blended with the resin in the extruder and then melt extruded.
  • Useful extrusion conditions are generally those which are suitable for extruding the resin without the additive.
  • the blended mixture may be processed into a fibrous filter web by any known technique.
  • Melt blown microfibers useful in the present invention can be prepared as described in Van A. Wente, "Superfine Thermoplastic Fibers," Industrial Engineering Chemistry, vol. 48, pp. 1342-1346 and in Report No. 4364 of the Naval Research Laboratories, published May 25, 1954, entitled “Manufacture of Super Fine Organic Fibers” by Van A. Wente et al.
  • the resin used to form the fibers useful in the present invention preferably is a thermoplastic nonconductive, i.e., having a resistivity greater than 10 14 ohm ⁇ cm, resin capable of having a high quantity of trapped charge. That the resin is capable of having a high quantity of trapped charge can be determined by measuring the filtration performance of the web prior to the impingement of jets of water or a stream of water droplets, treating the web by such impingement and drying and again determining filtration performance. An increase in performance is indicative of trapped charge.
  • Preferred resins include polypropylene, poly(4-methyl-1-pentene), blends thereof or copolymers formed from at least one of propylene and 4-methyl-1-pentene.
  • the resin should be substantially free from materials such as antistatic agents which could increase the electrical conductivity or otherwise interfere with the ability of the fibers to accept and hold electrostatic charges.
  • the fibers can be of a single resin, formed of a resin blend, e.g., polypropylene and poly(4-methyl-1-pentene), or formed of two resins in layered or core/sheath configurations.
  • a resin blend e.g., polypropylene and poly(4-methyl-1-pentene)
  • Blown microfibers for fibrous electret filters of the invention typically have an effective fiber diameter of from about 3 to 30 micrometers preferably from about 7 to 15 micrometers, as calculated according to the method set forth in Davies, C.N., "The Separation of Airborne Dust and Particles," Institution of Mechanical Engineers, London, Proceedings 1B, 1952.
  • Staple fibers may also be present in the web.
  • the presence of staple fibers generally provides a more lofty, less dense web than a web of only blown microfibers.
  • no more than about 90 weight percent staple fibers are present, more preferably no more than about 70 weight percent.
  • Such webs containing staple fiber are disclosed in U.S. Pat. No. 4,118,531 (Hauser) which is incorporated herein by reference.
  • Sorbent particulate material such as activated carbon or alumina may also be included in the web. Such particles may be present in amounts up to about 80 volume percent of the contents of the web. Such particle-loaded webs are described, for example, in U.S. Pat. No. 3,971,373 (Braun), U.S. Pat. No.
  • the electret filter media prepared according to the method of the present invention preferably has a basis weight in the range of about 10 to 500 g/m 2 , more preferably about 10 to 100 g/m 2 .
  • the basis weight can be controlled, for example, by changing either the collector speed or the die throughput.
  • the thickness of the filter media is preferably about 0.25 to 20 mm, more preferably about 0.5 to 2 mm.
  • the electret filter media and the resin from which it is produced should not be subjected to any unnecessary treatment which might increase its electrical conductivity, e.g., exposure to gamma rays, ultraviolet irradiation, pyrolysis, oxidation, etc.
  • Nonwoven microfiber webs useful in the present invention may be prepared using an apparatus as shown in FIG. 1.
  • Such an apparatus includes a die
  • staple fibers When staple fibers are present in the web, they may be introduced through use of a lickerin roll 32 disposed above the microfiber blowing apparatus as shown in FIG. 1.
  • a web 27 of staple fibers typically a loose, nonwoven web such as prepared on a garnet or RANDO-WEBBER apparatus, is propelled along table 28 under drive roll 29 where the leading edge engages against the lickerin roll 32.
  • the lickerin roll 32 picks off fibers from the leading edge of web 27 separating the fibers from one another.
  • the picked fibers are conveyed in an air stream through an inclined trough or duct 30 and into the stream of blown microfibers where they become mixed with the blown microfibers.
  • particulate matter When particulate matter is to be introduced into the web it may be added using a loading mechanism similar to duct 30.
  • Hydrocharging of the web is carried out by impinging jets of water or a stream of water droplets onto the web at a pressure sufficient to provide the web with filtration enhancing electret charge.
  • the pressure necessary to achieve optimum results will vary depending on the type of sprayer used, the type of polymer from which the web is formed, the type and concentration of additives to the polymer, the thickness and density of the web and whether pretreatment such as corona surface treatment was carried out prior to hydrocharging. Generally, pressures in the range of about 10 to 500 psi (69 to 3450 kPa) are suitable.
  • the water used to provide the water droplets is relatively pure. Distilled or deionized water is preferable to tap water.
  • jets of water or stream of water droplets can be provided by any suitable spray means.
  • Apparatus useful for hydraulically entangling fibers are generally useful in the method of the present invention, although operation is carried out at lower pressures in hydrocharging than generally used in
  • FIG. 2 An example of a suitable spray means is shown in FIG. 2 where fibrous web 10 is transported on support means 11.
  • the transport means may be in the form of a belt, preferably porous, such as a mesh screen or fabric.
  • Orifices 12 in water jet head 13 provide the water spray, with a pump (not shown) providing the water pressure.
  • Water jets 12 impinge on web 10 at impingement points 12'.
  • a vacuum is provided beneath a porous support to aid in passage of the spray through the web and to reduce drying energy requirements.
  • spray means suitable for use in the method of the present invention include nebulizers such as that shown in FIG. 3 wherein water provided through water line 14 and pressurized air provided through air line 15 are supplied to a nozzle 16 to provide a spray mist to impact web 10 and pump action sprayers such as that shown in FIG. 4 where a pump handle 17 forces water provided by water supply means 18 through nozzle 19 to provide a spray mist in addition to other known spray means.
  • annealing i.e., heating for a sufficient time at a sufficient temperature to cause the fluorinated additive to bloom to the surface of the fibers.
  • about 1 to 10 minutes at about 140°C is sufficient for polypropylene filter media although shorter times may be used at higher temperatures and longer times may be required at lower temperatures.
  • Dioctyl phthalate (DOP) 0.3 micrometer diameter particles at a concentration of between 70 and 110 mg/m 3 are generated using a TSI No. 212 sprayer with four orifices and 30 psi (207 kPa) clean air. The particles are forced through a sample of filter media which is 11.45 cm in diameter at a rate of 42.5
  • the penetration and pressure drop are used to calculate a quality factor "QF" from the natural log (In) of the DOP penetration by the following formula:
  • N-(perfluorooctylsulfonyl)-piperazine (34.1 g, 60 mmol), triethylamine (6.7 g, 66 mmol) and chloroform (200 mL) were added to a 3-neck round bottom 500 mL flask equipped with a nitrogen inlet and a magnetic stirrer and the mixture was stirred.
  • Phthaloyl dichloride (95%, 6.4 g, 30 mmol) was added dropwise as a chloroform solution. After the addition was complete, the reaction mixture was stirred under nitrogen atmosphere for 30 minutes. The reaction product was washed with deionized water several times, allowed to air dry and then was oven dried at 105°C for three hours.
  • the solid product was ground to form a powder and one part was added to four parts refluxing solvent (95% ethanol/5% water) and refluxed for about ten minutes. The solvent was removed by filtration. The resulting additive was dried at 71°C. The solid product had a melting point of 191°C.
  • the structure of the additive
  • the fluorochemical additive was blended at a level of 1%.
  • the extrusion temperature was about 280 to 300°C and the extruder was a BRABENDERTM conical twin screw extruder (available from Brabender Instruments, Inc.) operating at a rate of about 3.2 to 4.5 kg/hr (7-10 1b/hr).
  • a melt blown microfiber web was formed having a basis weight of 52 g/m 2 , an effective fiber diameter of 5.8 ⁇ m and a thickness of 1.4 mm.
  • Comparative Example C1 a sample was prepared from the same lot of polypropylene at the same time but contained no additive (beyond any present from the manufacturer).
  • the web had a basis weight of 52 g/m 2 , an effective fiber diameter of 7.7 ⁇ m and a thickness of 0.9 mm.
  • Fluorotelomer (provided as VYDAXTM, 20% dispersion of the telomer in trichlorotrifluoroethylene, available from E. I. Du Pont De Nemours & Co., Inc.) was isolated to yield a waxy short-chain telomer of tetrafluoroethylene with a molecular weight of about 3700 and a melting point of about 300°C.
  • Microfiber web was prepared and tested as in Example 1 except the fluorotelomer additive was used.
  • the basis weight was 54 g/m 2
  • the effective fiber diameter was 6.2 ⁇ m
  • the thickness was 1.4 mm
  • the pressure drop was 4.06
  • the quality factor was 1.18.
  • Microfiber webs were prepared and tested as in Example 1 and
  • Comparative Example C1 except the polypropylene used was ESCORENE PP- 3495G, available from Exxon Corp., the extrusion temperature was 240 to 260°C and
  • Example 3 which can be prepared as described in Example 4 of U.S. Pat. No. 3,094,547 (Heine), which is incorporated herein by reference, was used as the additive in Example 3. The results are set forth in Table 2.
  • Example 4 and 5 Comparative Examples C4 and C5 microfiber webs were prepared as in Example 1 and Comparative Example C1 except the polypropylene used was ESCORENE PP-3495G, available from Exxon Corp., the extrusion temperature was 240 to 260°C and the above-described additive was used.
  • Example 5 and Comparative Example C5 samples of the webs of Example 4 and Comparative Example C4 were annealed at 140°C for 10 minutes. The webs were tested for pressure drop and penetration and the quality factors were calculated. The pressure drop and quality factors are set forth in Table 3.
  • Example 5 of U.S. Pat. No. 5,099,026 (Howells) which is incorporated herein by reference.
  • the solid product was ground to form a powder and one part was added to four parts refluxing solvent (95% ethanol/5% water) and refluxed for about ten minutes.
  • the resulting slurry was cooled and the solid filtered and dried at 71°C.
  • the resulting solid additive had a melting point of 197°C as determined by differential scanning calorimetry.
  • Example 1 Two lots of webs were prepared as in Example 1 and Comparative Example C1 except the above-described additive was used.
  • Examples 6 and 7 and Comparative Examples C6 and C7 were prepared from Lot 1.
  • Examples 8 and 9 and Comparative Examples C8 and C9 were prepared from Lot 2.
  • the basis weight, effective fiber diameter and thickness were determined and are set forth in Table 4.
  • the webs of Examples 6 and 8 and Comparative Examples C6 and C8 were annealed as in Example 5. Samples of each web were tested for penetration and pressure drop and the quality factors were determined. The pressure drop and quality factor for each web are set forth in Table 4.
  • Example 10 a web was prepared as in Example 1 using a perfluorinated alkane, C 24 F 50 mood available from Aldrich Chemical Co. as the additive.
  • a perfluorinated alkane C 24 F 50 pattern available from Aldrich Chemical Co. as the additive.
  • Example 11 Comparative Example C10, a similar web was prepared without additive.
  • Example 11 and Comparative Example C11 the webs of Example 10 and
  • Comparative Example C10 were annealed as in Example 5.
  • the basis weight, effective fiber diameter and thickness were determined for each web and are set forth in Table 5.
  • the pressure drop and penetration were measured and the quality factor was determined.
  • the pressure drop and quality factor are set forth in Table 5.
  • the slurry was then cooled to 63 °C and 50 g acetic anhydride and 34 g pyridine were added. An additional 75 g N,N-dimethylformamide was added to dilute the slurry and aid stirring. Heating was continued for three hours. To aid in separation of the product from the slurry, 165 g tetrahydrofuran and acetone were added to result in 1010 g dilute slurry.
  • Example 12 a web was prepared as in Example 1 using this additive.
  • Comparative Example C12 a similar web was prepared without additive.
  • Example 13 and Comparative Example C13 the webs of Example 12 and
  • Comparative Example C12 were annealed as in Example 5.
  • the basis weight, effective fiber diameter and thickness were determined for each web and are set forth in Table 6.
  • the pressure drop and penetration were measured and the quality factor was determined.
  • the pressure drop and quality factor are set forth in Table 6.
  • Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the above-described additive was used. The results are set forth in Table 7.
  • Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the above-described additive was used. The results are set forth in Table 8.
  • Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the polypropylene used was ESCORENE PP-3495G, available from Exxon Corp., the extrusion temperature was 240 to 260°C and the above additive was used. The results are set forth in Table 9.
  • Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the above-described additive was used. The results are set forth in Table 10.
  • Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the above-described additive was used. The results are set forth in Table 11.
  • Example 19 a web was prepared as in Example 1 except this additive was used , the polypropylene used was ESCORENE PP-3495G, available from Exxon Corp., and the extrusion temperature was 240 to 260°C.
  • Comparative Example C19 a similar web was prepared without additive.
  • Example 20 and Comparative Example C20 the webs of Example 19 and Comparative Example C19 were annealed as in Example 5. The basis weight, effective fiber diameter and thickness were determined for each web and are set forth in Table 12. The pressure drop and penetration were measured and the quality factor was determined. The pressure drop and quality factor are set forth in Table 12.
  • Microfiber webs were prepared and tested as in Example 1 and
  • Comparative Example 1 except 0.5 weight percent CHIMASSORBTM 944FL, having a molecular weight greater than 2500 available from Ciba Geigy Corp. and having the structure
  • N.N'-di-(cyclohexyl)-hexamethylene-diamine was prepared as described in U.S. Pat. No. 3,519,603.
  • 2-(tert.-octylamino)-4,6-dichloro- 1,3,5-triazine was prepared as described in U.S. Pat. No. 4,297,492.
  • this diamine was reacted with this dichlorotriazine as described in U.S. Pat. No.
  • Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except 0.5 weight percent additive was used in Example 22. The results are set forth in Table 14.
  • a triazine product was prepared following the procedure of Example 22 except n-octylamine was used in place of tert.-octylamine in the preparation of the dichlorotriazine intermediate.
  • the resulting additive had the structure
  • Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except 0.5 weight percent additive was used in Example 23. The results are set forth in Table 15.
  • Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1, except 0.5 weight percent CYASORBTM UV3346, available from American Cyanamid Corp. and having the structure
  • Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1, except 0.5 weight percent CHIMASSORBTM 119, available from Ciba Geigy Corp. and having the structure wherein R 3 is

Abstract

The present invention relates to a method of making a fibrous electret material which includes the steps of (1) forming a fibrous web of nonconductive thermoplastic fibers from a blend of nonconductive thermoplastic resin and an additive which is (a) a thermally stable organic compound or oligomer containing at least one perfluorinated moiety or (b) a thermally stable organic triazine compound or oligomer containing at least one nitrogen atom in addition to those in the triazine group or (c) a combination thereof; (2) impinging jets of water or a stream of water droplets onto the web at a pressure sufficient to provide the web with filtration enhancing electret charge; and (3) drying the web.

Description

FIBROUS WEBS HAVING ENHANCED ELECTRET PROPERTIES
FIELD OF THE INVENTION
This invention provides fibrous webs capable of having enhanced electret properties, electret webs having such properties, compositions for preparing same, methods of preparing such webs and compositions and compounds useful in such webs and methods. The webs and compositions include blends of electret-forming polymers and electret property enhancing additives, the webs being charged by a process which includes impingement of jets of water or a stream of water droplets onto the web. The electret webs are particularly useful in filtration materials, for example for respirators or room or vehicle air filtration, and in other electrostatic aerosol filtration applications.
BACKGROUND OF THE INVENTION
For many years nonwoven fibrous webs have been used for filtration and other purposes. Some of such webs have been made from polypropylene using melt-blowing techniques of the type described in Report No. 4364 of the Naval Research Laboratories, published May 25, 1954, entitled "Manufacture of Super Fine Organic Fibers" by Van A. Wente et al. Such melt-blown microfiber webs continue to be in widespread use for filtering particulate contaminants, for example, as face masks and as water filters, and for other purposes, such as sorbent webs for removal of oil from water, as acoustic insulation and as thermal insulation.
The aerosol filtration efficiency of nonwoven fibrous webs can be improved by imparting an electrical charge to the fibers, forming an electret material. A number of methods are known for forming such electret materials. Such methods include, for example, bombarding melt-blown fibers as they issue from the die orifices, as the fibers are formed, with electrically charged particles such as electrons or ions, charging fibers by means of a corona discharge after fiber formation or imparting a charge to a fiber mat by means of carding and/or needle tacking (tribocharging). Recently, a method in which jets of water or a stream of water droplets impinge on a nonwoven web at a pressure sufficient to provide filtration enhancing electret charge has been described.
Other types of nonwoven fibrous webs useful for filtration purposes have been prepared by fibrillating films of polyolefin to form a fibrous material. Such fibrillated materials may be charged as the film, for example, by corona discharge and then fibrillated, collected and processed into a filter.
Resins used in preparing the filtration material are generally required to be substantially free of materials which could increase the electrical conductivity or otherwise interfere with the ability of the fibers to accept and hold electrostatic charge. For example, certain polystyrene-type polymers have better properties if they have not more than 1% by weight of electron-donor impurities and not more than 0.5% by weight of electron-acceptor impurities.
Additives, however, are known which provide improved electret properties when blended with the resin. Electret materials prepared by compounding 4-methyl-1-pentene polymer with at least one compound selected from
compounds which have a phenol group, compounds of higher aliphatic carboxylic acids and metal salts thereof, compounds of ester thiocarboxylates, phosphorus acid group containing compounds, and ester group containing compounds and providing a charge by exposure to high voltage have been disclosed. Also disclosed is an electret material for a dust filter which is a blend of an insulating polymer with a fatty acid metal salt in an amount of not less than 100 ppm in terms of the metal with charging carried out by a conventional procedure such as rubbing or corona charge treatment.
Also known are polypropylene, including blends and copolymers, electret materials containing at least one stabilizer selected from hindered amines, nitrogen-containing hindered phenols, and metal-containing hindered phenols. The electret may further contain an additional stabilizer selected from phenol-, sulfur-, and phosphorous-containing stabilizers and/or an ultraviolet light absorber with charging being carried out in a high voltage field at room temperature.
Electret filters prepared from a resin whose angle of contact upon wetting with pure water is no less than 95° or has been adjusted to no less than 95° by addition of silicone oil have been disclosed. The electret resin may optionally contain other additives, including heat stabilizers, weathering agents, anti-blocking agents, and inorganic or organic fillers. Charging may be carried out in various ways. Further disclosed are electret filter media with a melt processable fluorochemical additive having a melting point of at least 25°C and a molecular weight of about 500 to
2500. Charging involves subjecting the material to corona discharge or pulsed high voltage.
SUMMARY OF THE INVENTION
The present invention provides a method of making a fibrous electret material comprising the steps of (1) forming a fibrous web of nonconductive thermoplastic fibers from a blend of nonconductive thermoplastic resin and an additive which is (a) a thermally stable organic compound or oligomer containing at least one perfluorinated moiety, said compound or oligomer preferably having a fluorine content of at least about 18 percent by weight or (b) a thermally stable organic triazine compound or oligomer containing at least one nitrogen atom in addition to those in the triazine group or (c) a combination thereof; (2) impinging jets of water or a stream of water droplets onto the web at a pressure sufficient to provide the web with filtration enhancing electret charge; and (3) drying the web.
The present invention further provides a composition comprising a blend of a thermoplastic resin and at least one compound or oligomer which is
Figure imgf000005_0001
-
Figure imgf000006_0001
or
Figure imgf000006_0002
wherein Rf is a perfluorinated moiety preferably having about 3 to 20 carbon atoms, more preferably about 6 to 12 carbon atoms and which may contain one or more catenary ether oxygen atoms, Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof, R is an alkyl group preferably having 1 to 4 carbon atoms, R1 is a perfluoroalkyl group preferably having 1 to 4 carbon atoms, R2 is an alkyl group which may be straight chain or branched and preferably having 4 to 10 carbon atoms and n is a number of from 2 to 40, preferably 2 to 20, more preferably 4 to 10.
The present invention, in another aspect, provides fibrous webs comprising a blend of a thermoplastic resin and at least one compound or oligomer which is
Figure imgf000007_0001
Figure imgf000008_0001
or
Figure imgf000008_0002
wherein Rf is a perfluorinated moiety preferably having about 3 to 20 carbon atoms, more preferably about 6 to 12 carbon atoms and which may contain one or more catenary ether oxygen atoms, Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof,
R is an alkyl group preferably having 1 to 4 carbon atoms, R1 is a perfluoroalkyl group preferably having 1 to 4 carbon atoms, R2 is an alkyl group which may be straight chain or branched and preferably having 4 to 10 carbon atoms and n is a number of from 2 to 40, preferably 2 to 20, more preferably 4 to 10.
The present invention still further provides electret filter media comprising a fibrous web of a blend of a thermoplastic resin and at least one compound or oligomer which is
Figure imgf000009_0001
or
Figure imgf000010_0001
wherein Rf is a perfluorinated moiety preferably having about 3 to 20 carbon atoms, more preferably about 6 to 12 carbon atoms and which may contain one or more catenary ether oxygen atoms, Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof, R is an alkyl group preferably having 1 to 4 carbon atoms, R1 is a perfluoroalkyl group preferably having 1 to 4 carbon atoms, R2 is an alkyl group which may be straight chain or branched and preferably having 4 to 10 carbon atoms and n is a number of from 2 to 40, preferably 2 to 20, more preferably 4 to 10, said web having sufficient charge to exhibit improved filtration efficiency over a web having no compound or oligomer.
The fibrous electret material prepared according to the method of the present invention exhibits greater charge when charged by impingement of jets of water or streams of water droplets than do comparable webs not containing the additive. This provides improved filtration properties. Such materials are useful, for example, as respirator filters, vehicle ventilation filters, air conditioner filters, and other air filters. In the case of respirators the presence of the additive provides decreased breathing resistance and reduced weight and bulk without decreasing the filtration efficiency, or improved filtration efficiency without increasing the breathing resistance, weight, and bulk. Such respirators are described, for example, in U.S. Pat. No. 4,536,440 and U.S. application Serial No. 08/079,234 which are incorporated herein by reference. BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a side view of an apparatus useful in making the nonwoven microfiber web used in the method of the present invention.
FIG. 2 is a perspective view of a water jet spray apparatus useful in the present invention.
FIG. 3 is a perspective view of a nebulizer useful in the present invention.
FIG. 4 is a perspective view of a pump action sprayer useful in the present invention.
DETAILED DESCRIPTION OF THE INVENTION
Thermoplastic resins useful in the present invention include any
thermoplastic nonconductive polymer capable of having a high quantity of trapped charge when formed into a fibrous web treated by impingement of jets of water or a stream of water droplets. Polymers capable of acquiring a trapped charge include polyolefins such as polypropylene, polyethylene, and poly-4-methyl-1-pentene; polyvinyl chloride; polystyrene; polycarbonates; and polyesters. Preferred materials include polypropylene, poly-4-methyl-1-pentene, blends thereof or copolymers formed from at least one of propylene and 4-methyl-1-pentene.
One class of suitable additive materials is organic materials that contain at least one perfluorinated moiety and have a fluorine content of at least 18% by weight. These materials must be thermally stable at the extrusion temperature of the polymeric resin in order to withstand processing without undesirable degradation or volatilization. Usually molecular weights of 500 or greater are sufficient to avoid excessive volatilization. Such compounds include, for example, short-chain tetrafluoroethylene telomers, fluoroaliphatic alkanes having the formula CxF2x+2 wherein x is from about 20 to 30, ,
Figure imgf000011_0001
Figure imgf000012_0001
or
Figure imgf000013_0002
wherein Rf is a perfluorinated moiety preferably having about 3 to 20 carbon atoms, more preferably about 6 to 12 carbon atoms and which may contain one or more catenary ether oxygen atoms, Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof, and R is an alkyl group preferably having 1 to 4 carbon atoms, R1 is a
perfluoroalkyl group preferably having 1 to 4 carbon atoms, and R4 is , or ,
Figure imgf000013_0003
Figure imgf000013_0004
where x is 2 to 12.
Another class of suitable additive materials is organic triazine compounds or oligomers with at least one additional nitrogen-containing group. Again, they must be thermally stable at the extrusion temperature of the polymeric resin such that undesirable degradation or volatilization do not occur. Those compounds or oligomers having a molecular weight of usually at least 500 generally are not lost by volatilization. Such compounds or oligomers include
Figure imgf000014_0001
Figure imgf000014_0002
or
Figure imgf000014_0003
wherein R3 is
Figure imgf000015_0001
wherein R2 is an alkyl group which may be straight chain or branched and preferably having 4 to 10 carbon atoms and n is a number of from 2 to 40, preferably 2 to 20, more preferably 4 to 10.
The fluorochemical additive or the triazine-based additive is preferably present in amounts of about 0.1 to 10 weight percent, more preferably about 0.2 to 5 weight percent, most preferably about 0.5 to 2 weight percent.
The blend of the thermoplastic resin and the additive can be prepared by well-known methods. The resin and the additive can be preblended and pelletized, then the pellets can be melt extruded. Alternatively, the additive can be blended with the resin in the extruder and then melt extruded. Useful extrusion conditions are generally those which are suitable for extruding the resin without the additive. The blended mixture may be processed into a fibrous filter web by any known technique.
Melt blown microfibers useful in the present invention can be prepared as described in Van A. Wente, "Superfine Thermoplastic Fibers," Industrial Engineering Chemistry, vol. 48, pp. 1342-1346 and in Report No. 4364 of the Naval Research Laboratories, published May 25, 1954, entitled "Manufacture of Super Fine Organic Fibers" by Van A. Wente et al.
The resin used to form the fibers useful in the present invention preferably is a thermoplastic nonconductive, i.e., having a resistivity greater than 1014 ohm·cm, resin capable of having a high quantity of trapped charge. That the resin is capable of having a high quantity of trapped charge can be determined by measuring the filtration performance of the web prior to the impingement of jets of water or a stream of water droplets, treating the web by such impingement and drying and again determining filtration performance. An increase in performance is indicative of trapped charge. This can be confirmed by subjecting the treated web to a charge destroying means such as exposure to X-ray radiation, alcohol such as isopropanol, or heat at a temperature about 30°C below the melting point to near the melting point, and again measuring the performance which is then similar to an untreated, i.e., not subjected to water impingement, web.
Preferred resins include polypropylene, poly(4-methyl-1-pentene), blends thereof or copolymers formed from at least one of propylene and 4-methyl-1-pentene. The resin should be substantially free from materials such as antistatic agents which could increase the electrical conductivity or otherwise interfere with the ability of the fibers to accept and hold electrostatic charges.
The fibers can be of a single resin, formed of a resin blend, e.g., polypropylene and poly(4-methyl-1-pentene), or formed of two resins in layered or core/sheath configurations.
Blown microfibers for fibrous electret filters of the invention typically have an effective fiber diameter of from about 3 to 30 micrometers preferably from about 7 to 15 micrometers, as calculated according to the method set forth in Davies, C.N., "The Separation of Airborne Dust and Particles," Institution of Mechanical Engineers, London, Proceedings 1B, 1952.
Staple fibers may also be present in the web. The presence of staple fibers generally provides a more lofty, less dense web than a web of only blown microfibers. Preferably, no more than about 90 weight percent staple fibers are present, more preferably no more than about 70 weight percent. Such webs containing staple fiber are disclosed in U.S. Pat. No. 4,118,531 (Hauser) which is incorporated herein by reference.
Sorbent particulate material such as activated carbon or alumina may also be included in the web. Such particles may be present in amounts up to about 80 volume percent of the contents of the web. Such particle-loaded webs are described, for example, in U.S. Pat. No. 3,971,373 (Braun), U.S. Pat. No.
4,100,324 (Anderson) and U.S. Pat. No. 4,429,001 (Kolpin et al.), which are incorporated herein by reference.
The electret filter media prepared according to the method of the present invention preferably has a basis weight in the range of about 10 to 500 g/m2, more preferably about 10 to 100 g/m2. In making melt-blown microfiber webs, the basis weight can be controlled, for example, by changing either the collector speed or the die throughput. The thickness of the filter media is preferably about 0.25 to 20 mm, more preferably about 0.5 to 2 mm. The electret filter media and the resin from which it is produced should not be subjected to any unnecessary treatment which might increase its electrical conductivity, e.g., exposure to gamma rays, ultraviolet irradiation, pyrolysis, oxidation, etc.
Nonwoven microfiber webs useful in the present invention may be prepared using an apparatus as shown in FIG. 1. Such an apparatus includes a die
20 which has an extrusion chamber 21 through which liquified fiber-forming material is advanced; die orifices 22 arranged in line across the forward end of the die and through which the fiber-forming material is extruded; and cooperating gas orifices 23 through which a gas, typically heated air, is forced at high velocity. The high velocity gaseous stream draws out and attenuates the extruded fiber-forming material, whereupon the fiber-forming material solidifies as microfibers during travel to a collector 24 to form web 25.
When staple fibers are present in the web, they may be introduced through use of a lickerin roll 32 disposed above the microfiber blowing apparatus as shown in FIG. 1. A web 27 of staple fibers, typically a loose, nonwoven web such as prepared on a garnet or RANDO-WEBBER apparatus, is propelled along table 28 under drive roll 29 where the leading edge engages against the lickerin roll 32. The lickerin roll 32 picks off fibers from the leading edge of web 27 separating the fibers from one another. The picked fibers are conveyed in an air stream through an inclined trough or duct 30 and into the stream of blown microfibers where they become mixed with the blown microfibers. When particulate matter is to be introduced into the web it may be added using a loading mechanism similar to duct 30.
Hydrocharging of the web is carried out by impinging jets of water or a stream of water droplets onto the web at a pressure sufficient to provide the web with filtration enhancing electret charge. The pressure necessary to achieve optimum results will vary depending on the type of sprayer used, the type of polymer from which the web is formed, the type and concentration of additives to the polymer, the thickness and density of the web and whether pretreatment such as corona surface treatment was carried out prior to hydrocharging. Generally, pressures in the range of about 10 to 500 psi (69 to 3450 kPa) are suitable.
Preferably the water used to provide the water droplets is relatively pure. Distilled or deionized water is preferable to tap water.
The jets of water or stream of water droplets can be provided by any suitable spray means. Apparatus useful for hydraulically entangling fibers are generally useful in the method of the present invention, although operation is carried out at lower pressures in hydrocharging than generally used in
hydroentangling.
An example of a suitable spray means is shown in FIG. 2 where fibrous web 10 is transported on support means 11. The transport means may be in the form of a belt, preferably porous, such as a mesh screen or fabric. Orifices 12 in water jet head 13 provide the water spray, with a pump (not shown) providing the water pressure. Water jets 12 impinge on web 10 at impingement points 12'. Preferably, a vacuum is provided beneath a porous support to aid in passage of the spray through the web and to reduce drying energy requirements.
Further examples of spray means suitable for use in the method of the present invention include nebulizers such as that shown in FIG. 3 wherein water provided through water line 14 and pressurized air provided through air line 15 are supplied to a nozzle 16 to provide a spray mist to impact web 10 and pump action sprayers such as that shown in FIG. 4 where a pump handle 17 forces water provided by water supply means 18 through nozzle 19 to provide a spray mist in addition to other known spray means. The enhanced performance of the filter media observed with the use of the fluorinated additives can often be yet further enhanced by annealing, i.e., heating for a sufficient time at a sufficient temperature to cause the fluorinated additive to bloom to the surface of the fibers. Generally, about 1 to 10 minutes at about 140°C is sufficient for polypropylene filter media although shorter times may be used at higher temperatures and longer times may be required at lower temperatures.
EXAMPLES
The following examples should not be construed as limiting in any way either the spirit or scope of the present invention. In the examples, all percentages and parts are by weight unless otherwise noted.
The following test method was used to evaluate the webs prepared in the examples:
POP Penetration and Pressure Drop Test Method
Dioctyl phthalate (DOP) 0.3 micrometer diameter particles at a concentration of between 70 and 110 mg/m3 are generated using a TSI No. 212 sprayer with four orifices and 30 psi (207 kPa) clean air. The particles are forced through a sample of filter media which is 11.45 cm in diameter at a rate of 42.5
L/min, which is a face velocity of 6.9 centimeters per second. The sample is exposed to the aerosol for 30 seconds. The penetration is measured with an optical scattering chamber, Percent Penetration Meter Model TPA-8F available from Air Techniques Inc. The pressure drop is measured at a flow rate of 42.5 L/min and a face velocity of 6.9 cm/sec using an electronic manometer.
The penetration and pressure drop are used to calculate a quality factor "QF" from the natural log (In) of the DOP penetration by the following formula:
Figure imgf000019_0001
A higher QF value indicates better filtration performance. Decreased QF values effectively correlate with decreased filtration performance. Example 1 and Comparative Example C1
N-(perfluorooctylsulfonyl)-piperazine (34.1 g, 60 mmol), triethylamine (6.7 g, 66 mmol) and chloroform (200 mL) were added to a 3-neck round bottom 500 mL flask equipped with a nitrogen inlet and a magnetic stirrer and the mixture was stirred. Phthaloyl dichloride (95%, 6.4 g, 30 mmol) was added dropwise as a chloroform solution. After the addition was complete, the reaction mixture was stirred under nitrogen atmosphere for 30 minutes. The reaction product was washed with deionized water several times, allowed to air dry and then was oven dried at 105°C for three hours. The solid product was ground to form a powder and one part was added to four parts refluxing solvent (95% ethanol/5% water) and refluxed for about ten minutes. The solvent was removed by filtration. The resulting additive was dried at 71°C. The solid product had a melting point of 191°C. The structure of the additive,
Figure imgf000020_0001
was confirmed by NMR.
This additive was dry blended with polypropylene (ESCORENE PP-3505G, available from Exxon Corporation) and the blend was extruded as described in Van A. Wente, "Superfine Thermoplastic Fibers," Industrial
Engineering Chemistry, vol. 48, pp. 1342-1346. The fluorochemical additive was blended at a level of 1%. The extrusion temperature was about 280 to 300°C and the extruder was a BRABENDER™ conical twin screw extruder (available from Brabender Instruments, Inc.) operating at a rate of about 3.2 to 4.5 kg/hr (7-10 1b/hr). A melt blown microfiber web was formed having a basis weight of 52 g/m2, an effective fiber diameter of 5.8 μm and a thickness of 1.4 mm.
For Comparative Example C1, a sample was prepared from the same lot of polypropylene at the same time but contained no additive (beyond any present from the manufacturer). The web had a basis weight of 52 g/m2 , an effective fiber diameter of 7.7 μm and a thickness of 0.9 mm.
Samples of the webs were subjected to impingement of water jets provided by a hydroentangler (Laboratory Model, serial no. 101, available from Honeycomb Systems Corp.), similar to that shown in FIG. 1, which had a spray bar width of 24 in (0.6 m) with 40 spray orifices, each 0.005 in (0J3 mm) in diameter, per inch (2.5 cm) width at a water pressure of 690 kPa. Each sample passed beneath the spray bar at a rate of 3.5 m/min, and was treated once on each face, vacuum extracted and dried at 70°C for one hour. The treated samples were tested for DOP penetration and pressure drop and the quality factor was calculated. The pressure drop and quality factor (QF) are reported in Table 1.
Figure imgf000021_0001
Example 2
Fluorotelomer (provided as VYDAX™, 20% dispersion of the telomer in trichlorotrifluoroethylene, available from E. I. Du Pont De Nemours & Co., Inc.) was isolated to yield a waxy short-chain telomer of tetrafluoroethylene with a molecular weight of about 3700 and a melting point of about 300°C.
Microfiber web was prepared and tested as in Example 1 except the fluorotelomer additive was used. The basis weight was 54 g/m2, the effective fiber diameter was 6.2 μm, the thickness was 1.4 mm, the pressure drop was 4.06 and the quality factor was 1.18. Example 3 and Comparative Example C3
Microfiber webs were prepared and tested as in Example 1 and
Comparative Example C1 except the polypropylene used was ESCORENE PP- 3495G, available from Exxon Corp., the extrusion temperature was 240 to 260°C and
Figure imgf000022_0001
which can be prepared as described in Example 4 of U.S. Pat. No. 3,094,547 (Heine), which is incorporated herein by reference, was used as the additive in Example 3. The results are set forth in Table 2.
Figure imgf000022_0002
Examples 4 and 5 and Comparative Examples C4 and C5
To a stirred solution of perfluorooctylmethylamine (44.9 g, 0.100 mol) in 150 g N,N-dimethylformamide at 70°C was added 1 ,2,4,5-benzenetetracarboxylic dianhydride (10 9 g, 0.050 mol) over a period of three minutes An exotherm to 107°C was observed and the reaction mixture became turbid. The temperature was increased and the turbidity disappeared and after about 30 minutes a solid began forming. This slurry was heated at about 100°C for 22 hours, cooled to 55° C and acetic anhydride (35 g) and pyridine (25 g) were added. After three hours additional heating the slurry was cooled to room temperature, filtered, washed with N,N-dimethylformamide, then methanol, and the isolated solid was dried at 105°C to yield 44.7 g of white solid product. This additive had the structure
Figure imgf000023_0001
For Examples 4 and 5 Comparative Examples C4 and C5, microfiber webs were prepared as in Example 1 and Comparative Example C1 except the polypropylene used was ESCORENE PP-3495G, available from Exxon Corp., the extrusion temperature was 240 to 260°C and the above-described additive was used. For Example 5 and Comparative Example C5, samples of the webs of Example 4 and Comparative Example C4 were annealed at 140°C for 10 minutes. The webs were tested for pressure drop and penetration and the quality factors were calculated. The pressure drop and quality factors are set forth in Table 3.
Figure imgf000023_0002
Example 6-9 and Comparative Examples C6-C9
A compound having the formula
Figure imgf000024_0001
was prepared following the procedure of Example 5 of U.S. Pat. No. 5,099,026 (Howells) which is incorporated herein by reference. The solid product was ground to form a powder and one part was added to four parts refluxing solvent (95% ethanol/5% water) and refluxed for about ten minutes. The resulting slurry was cooled and the solid filtered and dried at 71°C. The resulting solid additive had a melting point of 197°C as determined by differential scanning calorimetry.
Two lots of webs were prepared as in Example 1 and Comparative Example C1 except the above-described additive was used. Examples 6 and 7 and Comparative Examples C6 and C7 were prepared from Lot 1. Examples 8 and 9 and Comparative Examples C8 and C9 were prepared from Lot 2. The basis weight, effective fiber diameter and thickness were determined and are set forth in Table 4. In Examples 7 and 9 and Comparative Examples C7 and C9, the webs of Examples 6 and 8 and Comparative Examples C6 and C8 were annealed as in Example 5. Samples of each web were tested for penetration and pressure drop and the quality factors were determined. The pressure drop and quality factor for each web are set forth in Table 4.
Figure imgf000025_0001
As can be seen from the data in Table 4, annealing the webs containing the additive significantly improved the filtration performance.
Examples 10 and 11 and Comparative Examples C10 and C 11
In Example 10, a web was prepared as in Example 1 using a perfluorinated alkane, C24F50„ available from Aldrich Chemical Co. as the additive. In
Comparative Example C10, a similar web was prepared without additive. In Example 11 and Comparative Example C11, the webs of Example 10 and
Comparative Example C10 were annealed as in Example 5. The basis weight, effective fiber diameter and thickness were determined for each web and are set forth in Table 5. The pressure drop and penetration were measured and the quality factor was determined. The pressure drop and quality factor are set forth in Table 5.
Figure imgf000026_0001
Examples 12 and 13 and Comparative Examples C12 and C13
To a stirred solution of 4-aminobenzotrifluoride (25.0 g, 0.155 mol) in 100 g N,N-dimethylformamide in a 500 mL flask at 55°C was added 1,2,4,5-benzenetetracarboxylic dianhydride (16.2 g, 0.077 mol) over a period of six minutes. An exotherm to 85°C was observed and the stirred solution was heated to 120°C for about four hours, during which time a viscous slurry formed. The slurry was diluted with 10 g of N,N-dimethylformamide and heating was continued for an additional 13 hours. The slurry was then cooled to 63 °C and 50 g acetic anhydride and 34 g pyridine were added. An additional 75 g N,N-dimethylformamide was added to dilute the slurry and aid stirring. Heating was continued for three hours. To aid in separation of the product from the slurry, 165 g tetrahydrofuran and acetone were added to result in 1010 g dilute slurry.
After settling had occurred the liquid was decanted and an addition 250 g acetone was added with stirring. Again after settling, the liquid was decanted and the solid dried at 106°C to give 24.7 g of the desired additive,
Figure imgf000027_0001
In Example 12, a web was prepared as in Example 1 using this additive. In Comparative Example C12, a similar web was prepared without additive. In Example 13 and Comparative Example C13, the webs of Example 12 and
Comparative Example C12 were annealed as in Example 5. The basis weight, effective fiber diameter and thickness were determined for each web and are set forth in Table 6. The pressure drop and penetration were measured and the quality factor was determined. The pressure drop and quality factor are set forth in Table 6.
Figure imgf000027_0002
Example 14 and Comparative Example C14
To a stirred solution of 2-aminobenzotrifluoride (48.3 g, 0.30 mol) in 175 g N,N-dimethylformamide in a 1-liter flask at 65°C was added 1,2,4,5-benzenetetracarboxylic dianhydride (32.7 g 0.150 mol) over a period of two minutes. An exotherm to 85°C was observed and the solution was heated to 98°C and stirred for about 17 hours after which time a solid had formed. The slurry was cooled to 53 °C and 90 g acetic anhydride and 67 g pyridine were added. The slurry was stirred with mild heating for about 3.5 hours. After cooling to room temperature, the slurry was filtered and the filter cake washed with N,N-dimethylformamide and then methanol. The wet solid was dried at 107°C for one hour to yield 37.2 grams of an off-white solid additive having the structure
Figure imgf000028_0001
Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the above-described additive was used. The results are set forth in Table 7.
Figure imgf000028_0002
Example 15 and Comparative Example C15
To a stirred solution of perfluorononylmethylamine (29.9 g, 0.060 mol, 92% pure) in 90 g N,N-dimethylformamide in a 500 mL flask at 60°C was added 4,4'-oxydiphthalic anhydride (8.8 g, 0.0284 mol) over a period of three minutes. A mild exotherm to 67°C was observed and the stirred solution was heated to about 92°C for about 16 hours, during which time a solid had formed. The slurry was cooled to 48°C and additional solid formed. To the stirred slurry were added 42 g acetic anhydride and 30 g pyridine and stirring was continued for about 4.5 hours. The slurry was then cooled to room temperature, filtered, and the isolated solid was washed with N,N-dimethylformamide and then methanol, and dried at 106°C to give 20.8 grams of a white solid additive having the structure.
Figure imgf000029_0001
Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the above-described additive was used. The results are set forth in Table 8.
Figure imgf000029_0002
Example 16 and Comparative Example C16
To a stirred mixture of C6F13 O C4F8CH2NH2 (30.0 g, 0.0531 mol, 73% pure) in 80 g N,N-dimethylformamide in a 250 mL flask at 63°C was added 4,4'-oxydiphthalic anhydride (6.17 g, 0.020 mol) over a period of five minutes. After heating for about 40 minutes a clear solution had formed. The solution was heated to 117°C and a small amount of an insoluble oil was removed and heating was continued for about 17.5 hours. The solution was cooled to 55° C, during which time solid had formed. Then, 35 g acetic anhydride and 25 g pyridine were added. An additional 15 g N,N-dimethylformamide were added to dilute the slurry and aid stirring. The resulting mixture was heated for about three hours. The slurry was cooled to room temperature and filtered and the isolated solid was washed with N,N-dimethylformamide, then methanol, and dried at 101°C to give 18.9 grams of a light-beige solid additive having the structure
Figure imgf000030_0001
Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the polypropylene used was ESCORENE PP-3495G, available from Exxon Corp., the extrusion temperature was 240 to 260°C and the above additive was used. The results are set forth in Table 9.
Figure imgf000030_0002
Example 17 and Comparative Example C17
To a stirred solution of 3-aminobenzotrifluoride (50.0 g, 0.310 mol) in 200 g N,N-dimethylformamide in a 1-liter flask at 60 C. was added 1,2,4,5-benzenetetracarboxylic dianhydride (33.8 g, 0.155 mol) over a period of three minutes. An exotherm to 86°C was observed and the stirred solution was heated to 91°C for 18 hours. Heating was reduced and a solid mass formed. To this mass was added 100 g acetic anhydride, 67 g pyridene and 100 g N,N-dimethyl formamide. The solid was broken up and slurry which formed was stirred with mild heating for about three hours. After cooling to room temperature, the slurry was filtered and the filter cake was restirred in 350 g N,N-dimethylformamide, filtered a second time and washed with N,N-dimethylformamide and then methanol. The isolated solid was dried at 104°C to give 44.0 grams of pale-yellow solid additive which had the structure
Figure imgf000031_0001
Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the above-described additive was used. The results are set forth in Table 10.
Figure imgf000031_0002
Example 18 and Comparative Example C18
To a stirred solution of aniline (16.8 g, 0.180 mol) in 150 g N,N-dimethylformamide in a 500 mL flask at 75°C was added 4,4'-(hexafluoroisopropylidene) diphthalic anhydride (40.0 g, 0.090 mol) over a period of three minutes. An exotherm to 97°C was observed and the solution was heated to about 130°C for about 18 hours. After cooling to 67°C, 66 g of acetic anhydride and 44 g pyridine were added and heating was continued for about 3.5 hours. The solution was concentrated to 64.8 g and the residue was dissolved in 200 g methanol. This solution was chilled to about -20°C and the solid that formed was isolated by filtration, washed with cold methanol and dried at 106°C to yield 11.0 grams of a buff-colored solid additive which had the structure
Figure imgf000032_0001
Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except the above-described additive was used. The results are set forth in Table 11.
Figure imgf000032_0002
Examples 19 and 20 and Comparative Examples C19 and C20
To a stirred solution of perfluorooctylmethylamine (22.4 g, 0.050 mol) in 75 g N,N-dimethylformamide in a 250 mL flask at 55°C was added 4,4'-oxydiphthalic anhydride (7.75 g 0.025 mol) over a period of five minutes. An exotherm to 75°C was observed and the solution was heated to 92°C for about 16 hours. A mass of solid which had formed was broken up and 25 g N,N-dimethylformamide were added to give a stirrable slurry. To this slurry which was maintained at 55°C were added 35 g acetic anhydride and 25 g pyridine and heating was continued for about 2.5 hours. After cooling to room temperature the slurry was filtered, washed with N,N-dimethylformamide, then methanol, and the isolated wet solid was dried at 104°C to give 22.6 g additive which had the structure
Figure imgf000033_0001
In Example 19, a web was prepared as in Example 1 except this additive was used , the polypropylene used was ESCORENE PP-3495G, available from Exxon Corp., and the extrusion temperature was 240 to 260°C. In Comparative Example C19, a similar web was prepared without additive. In Example 20 and Comparative Example C20, the webs of Example 19 and Comparative Example C19 were annealed as in Example 5. The basis weight, effective fiber diameter and thickness were determined for each web and are set forth in Table 12. The pressure drop and penetration were measured and the quality factor was determined. The pressure drop and quality factor are set forth in Table 12.
Figure imgf000033_0002
Example 21 and Comparative Example C21
Microfiber webs were prepared and tested as in Example 1 and
Comparative Example 1, except 0.5 weight percent CHIMASSORB™ 944FL, having a molecular weight greater than 2500 available from Ciba Geigy Corp. and having the structure
Figure imgf000034_0001
was used as the additive in Example 21. The results are set forth in Table 13.
Figure imgf000034_0002
Example 22 and Comparative Example C22
First, N.N'-di-(cyclohexyl)-hexamethylene-diamine was prepared as described in U.S. Pat. No. 3,519,603. Next, 2-(tert.-octylamino)-4,6-dichloro- 1,3,5-triazine was prepared as described in U.S. Pat. No. 4,297,492. Finally, this diamine was reacted with this dichlorotriazine as described in U.S. Pat. No.
4,492,791 to produce a compound having the structure
Figure imgf000035_0001
Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except 0.5 weight percent additive was used in Example 22. The results are set forth in Table 14.
Figure imgf000035_0002
Example 23 and Comparative Example C23
A triazine product was prepared following the procedure of Example 22 except n-octylamine was used in place of tert.-octylamine in the preparation of the dichlorotriazine intermediate. The resulting additive had the structure
Figure imgf000036_0001
Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1 except 0.5 weight percent additive was used in Example 23. The results are set forth in Table 15.
Figure imgf000036_0002
Example 24 and Comparative Example C24
Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1, except 0.5 weight percent CYASORB™ UV3346, available from American Cyanamid Corp. and having the structure
Figure imgf000037_0001
was used as the additive in Example 24. The results are set forth in Table 16.
Figure imgf000037_0003
Example 25 and Comparative Example C25
Microfiber webs were prepared and tested as in Example 1 and Comparative Example C1, except 0.5 weight percent CHIMASSORB™ 119, available from Ciba Geigy Corp. and having the structure
Figure imgf000037_0002
wherein R3 is
Figure imgf000038_0001
was used as the additive in Example 25. The results are set forth in Table 17.
Figure imgf000038_0002
The various modifications and alterations of this invention will be apparent to those skilled in the art without departing from the scope and spirit of this invention and this invention should not be restricted to that set forth herein for illustrative purposes.

Claims

CLAIMS:
1. A method of making a fibrous electret material comprising the steps of (1) forming a fibrous web of nonconductive thermoplastic fibers from a blend of nonconductive thermoplastic resin and an additive which is (a) a thermally stable organic compound or oligomer containing at least one perfluorinated moiety or (b) a thermally stable organic triazine compound or oligomer containing at least one nitrogen atom in addition to those in the triazine group or (c) a combination thereof; (2) impinging jets of water or a stream of water droplets onto the web at a pressure sufficient to provide the web with filtration enhancing electret charge; and (3) drying the web.
2. The method of claim 1 wherein said thermoplastic resin is a polyolefin; polyvinyl chloride; polystyrene; polycarbonate; or polyester.
3. The method of claim 1 wherein said thermoplastic resin is
polypropylene, poly-4-methyl-1-pentene, blends thereof or copolymers formed from at least one of propylene and 4-methyl-1-pentene.
4. The method of claim 1 wherein said organic compound or oligomer containing at least one perfluorinated moiety is a short chain telomer of tetrafluoroethylene, fluoroaliphatic alkanes having the formula CxF2x+2 wherein x is from about 20 to 30,
Figure imgf000039_0001
Figure imgf000040_0001
or
Figure imgf000040_0002
wherein Rf is a perfluorinated moiety, Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof, R is an alkyl group, R1 is a perfluoroalkyl group, R2 is an alkyl group which may be straight chain or branched, and R4 is ύ
Figure imgf000041_0002
where x is 2 to 12, and n is a number of from 2 to 40.
5. The method of claim 1 wherein said compound or oligomer containing at least one perfluorinated moiety has a fluorine content of at least about 18 percent by weight.
6. The method of claim 1 wherein said organic compound or oligomer containing at least one perfluorinated moiety is a short-chain telomer of tetrafluoroethylene having a molecular weight of about 3700.
7. The method of claim 1 wherein said organic compound or oligomer containing at least one perfluorinated moiety is a compound represented by at least one of the following formulas:
Figure imgf000041_0001
Figure imgf000042_0001
Figure imgf000043_0001
and
Figure imgf000043_0002
8. The method of claim 1 wherein said triazine compound is selected from the group consisting of:
Figure imgf000043_0003
Figure imgf000044_0001
Figure imgf000044_0002
Figure imgf000044_0003
Figure imgf000045_0001
Figure imgf000045_0002
and
Figure imgf000045_0003
; wherein R2 is an alkyl group and n is a number from 2 to 40; and
wherein R3 is
Figure imgf000046_0001
9. A composition comprising a blend of a thermoplastic resin and at least one compound or oligomer which is
Figure imgf000046_0002
Figure imgf000047_0001
or
Figure imgf000047_0002
wherein Rf is a perfluorinated moiety which may contain one or more catenary ether oxygen atoms, Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof, R is an alkyl group, R1 is a perfluoroalkyl group, R2 is an alkyl group that may be straight chain or branched and n is a number from 2 to 40.
10. The composition of claim 9 wherein said thermoplastic resin is a polyolefin, polyvinyl chloride, polystyrene, polycarbonate, or polyester.
11. The composition of claim 9 wherein said thermoplastic resin is polypropylene, poly-4-methyl-1-pentene, blends thereof or copolymers formed from at least one of propylene and 4-methyl-1-pentene.
12. Fibrous webs comprising a blend of a thermoplastic resin and at least one compound or oligomer which is
Figure imgf000048_0001
Figure imgf000049_0001
or
Figure imgf000049_0002
wherein Rf is a perfluorinated moiety which may contain one or more catenary ether oxygen atoms, Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof, R is an alkyl group, R1 is a perfluoroalkyl group, R2 is an alkyl group which may be straight chain or branched and n is a number of from 2 to 40.
13. The fibrous web of claim 12 wherein said thermoplastic resin is a polyolefin, polyvinyl chloride, polystyrene, polycarbonate, or polyester.
14. The fibrous web of claim 12 wherein said thermoplastic resin is polypropylene, poly-4-methyl-1-pentene, blends thereof or copolymers formed from at least one of propylene and 4-methyl-1-pentene.
15. Electret filter media comprising a fibrous web of a blend of a thermoplastic resin and at least one compound or oligomer which is short-chain tetrafluoroethylene telomers, fluoroaliphatic alkanes having the formula CxF2x+2 wherein x is from about 20 to 30,
Figure imgf000050_0001
Figure imgf000051_0001
,
or
Figure imgf000051_0002
wherein Rf is a perfluorinated moiety which may contain one or more catenary ether oxygen atoms, Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof, R is an alkyl group, R1 is a perfluoroalkyl group, R2 is an alkyl group which may be straight chain or branched and n is a number of from 2 to 40, said web having sufficient charge to exhibit improved filtration efficiency over a web having no compound or oligomer.
16. The electret filter media of claim 15 wherein said thermoplastic resin is a polyolefin, polyvinyl chloride, polystyrene, polycarbonate, or polyester.
17. The electret filter media of claim 15 wherein said thermoplastic resin is polypropylene, poly-4-methyl-1-pentene, blends thereof or copolymers formed from at least one of propylene and 4-methyl-1-pentene.
18. A compound selected from the group consisting of: ,
Figure imgf000052_0001
,
Figure imgf000052_0002
,
Figure imgf000052_0003
, and
Figure imgf000052_0004
Figure imgf000052_0005
wherein Rf is a perfluorinated moiety which may contain one or more catenary ether oxygen atoms, Q is a linking group selected from alkylene groups having 1 or 2 carbon atoms, sulfonamido groups or combinations thereof, and R1 is a perfluoroalkyl group;
Figure imgf000053_0001
,
Figure imgf000053_0002
,
Figure imgf000053_0003
,
Figure imgf000053_0004
,
,
Figure imgf000053_0005
Figure imgf000054_0001
,
Figure imgf000054_0002
,
Figure imgf000054_0003
,
wherein R2 is an alkyl group that may be straight chain or branched, and n is a number from 2 to 40,
Figure imgf000055_0001
, and
Figure imgf000055_0002
.
19. A respirator having a filtering means comprising the electret filter media of claim 15.
20. A vehicle ventilation system wherein the filtration means comprises the electret filter media of claim 15.
PCT/US1996/011878 1995-08-14 1996-07-18 Fibrous webs having enhanced electret properties WO1997007272A1 (en)

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AU66481/96A AU700461B2 (en) 1995-08-14 1996-07-18 Fibrous webs having enhanced electret properties
JP50928597A JP4069195B2 (en) 1995-08-14 1996-07-18 Fiber web with enhanced electret properties
DE69627670T DE69627670T2 (en) 1995-08-14 1996-07-18 Nonwovens with improved electrical properties
MX9800828A MX9800828A (en) 1995-08-14 1996-07-18 Fibrous webs having enhanced electret properties.
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CA2227422A1 (en) 1997-02-27
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US5919847A (en) 1999-07-06
EP0845058A1 (en) 1998-06-03
JP4069195B2 (en) 2008-04-02
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EP0845058B1 (en) 2003-04-23
CN1192790A (en) 1998-09-09
US6268495B1 (en) 2001-07-31
AU700461B2 (en) 1999-01-07
US5968635A (en) 1999-10-19
BR9610200A (en) 1998-08-04
JPH11510862A (en) 1999-09-21
DE69627670T2 (en) 2004-04-08
US6002017A (en) 1999-12-14
DE69627670D1 (en) 2003-05-28
AU6648196A (en) 1997-03-12
CN1188559C (en) 2005-02-09
MX9800828A (en) 1998-04-30
US5908598A (en) 1999-06-01
US5976208A (en) 1999-11-02

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