[go: up one dir, main page]

WO1997011834A1 - Method of corona treating a hydrophobic sheet material - Google Patents

Method of corona treating a hydrophobic sheet material Download PDF

Info

Publication number
WO1997011834A1
WO1997011834A1 PCT/US1996/013227 US9613227W WO9711834A1 WO 1997011834 A1 WO1997011834 A1 WO 1997011834A1 US 9613227 W US9613227 W US 9613227W WO 9711834 A1 WO9711834 A1 WO 9711834A1
Authority
WO
WIPO (PCT)
Prior art keywords
sheet material
corona discharge
treated
nonwoven web
layers
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/US1996/013227
Other languages
French (fr)
Inventor
David Lewis Myers
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.)
Kimberly Clark Worldwide Inc
Kimberly Clark Corp
Original Assignee
Kimberly Clark Worldwide Inc
Kimberly Clark 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 US08/645,435 external-priority patent/US5688465A/en
Application filed by Kimberly Clark Worldwide Inc, Kimberly Clark Corp filed Critical Kimberly Clark Worldwide Inc
Priority to AU67251/96A priority Critical patent/AU6725196A/en
Publication of WO1997011834A1 publication Critical patent/WO1997011834A1/en
Priority to MXPA/A/1998/001521A priority patent/MXPA98001521A/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • 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
    • D06M10/02Physical 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 ultrasonic or sonic; Corona discharge
    • D06M10/025Corona discharge or low temperature plasma
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C59/00Surface shaping of articles, e.g. embossing; Apparatus therefor
    • B29C59/10Surface shaping of articles, e.g. embossing; Apparatus therefor by electric discharge treatment
    • 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
    • D06M2200/00Functionality of the treatment composition and/or properties imparted to the textile material

Definitions

  • the present invention relates to a sheet matenal. such as a porous sheet matenal
  • Polymers are used extensively to make a vanety of products which include blown and cast films, extruded sheets, injection molded articles foams blow molded articles, extruded pipe, monofilaments and fibrous materials such as nonwoven webs
  • Some of the polymers such as polyolefins have no functionality (t e reactive groups) and are naturally hydrophobic and for many uses these properties are either a positive attribute or at least not a disadvantage
  • polystyrene foams There are a number of uses for polymers however where their hydro- phobic/nonfunctional nature either limits their usefulness or requires some effort to modify the surface characteristics of the shaped articles made therefrom
  • polyolefins such as polyethylene and polypropylene are used to manufacture polymeric fabrics which are employed in the construction of such disposable absorbent articles as diapers feminine care products incontinence products training pants wipes and the like
  • polymeric fabrics often are nonwoven webs prepared by for example such processes as meltblowmg coforming and spunbonding Frequently such polymenc fabrics need to be wettable by water Wettability can be obtained by spraying or otherwise coating (i e surface treating or topically treating) the fabric with a surfactant solution during or after its formation and then drying the web
  • topically applied surfactants are nonionic surfactants such as polyethoxylated octylphenols and condensation products of propylene oxide with propylene glycol, by way of illustration only These surfactants are effective in rende ⁇ ng normally hydrophobic polymenc fabrics wettable However the surfactant is readily removed from the fabric, often after only a single exposure to an aqueous liquid
  • Hydrophobic polymers also have been rendered wettable by passing the porous hydrophobic sheet material through a corona discharge field
  • a corona discharge field also has been used to improve ink adhesion on a surface of a film; to improve the adhesion of one film to another or to introduce functional or ionic groups on the surfaces of the fibers of filter media, films, and the like.
  • a film has been rendered porous or more porous by exposing the film to a corona discharge field. Because arcing is an intrinsic phenomenon associated with a corona discharge field, localized arcing is a frequent and common occurrence. However, localized arcing results in the formation of pinholes in the material being treated. This result often is either desired or not a disadvantage. Localized arcing is a problem, though, when porous materials are utilized and it is desired that the porosity of the material not be altered by the corona discharge treatment.
  • the present invention addresses some of the difficulties and problems discussed above by providing a method of preventing localized arcing to ground during treatment of a sheet material in a corona discharge field generated by a corona discharge apparatus having at least two electrodes, which method involves passing the sheet material to be treated through the corona discharge field, in which the sheet material to be treated is electrically isolated from the electrodes.
  • the sheet material to be treated is passed through the corona discharge field as a layer of a multilayered composite having at least three layers, in which at least one of the layers is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode.
  • the method may be employed to treat a hydrophobic sheet material having a porosity, in which case the hydrophobic sheet material is passed through a corona discharge field generated by a corona discharge apparatus having a bare metal electrode and a dielectric covered electrode under conditions adapted to render the porous sheet wettable.
  • the hydrophobic sheet material is a layer of a multilayered composite having at least three layers, in which at least one layer is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode and one of the at least three layers is a nonconductive, nonporous sheet material.
  • the at least one layer which is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode also may be nonporous.
  • the sheet material may be any sheet material capable of being treated in a corona discharge field.
  • the sheet material may be nonporous or porous.
  • the sheet material may be a film.
  • the sheet material may be a fibrous web.
  • the fibrous web may be woven or nonwoven. Examples of nonwoven fibrous webs include meltblown, coformed, and spunbonded nonwoven webs.
  • the sheet material may be made of any desired material which is capable of being treated in a corona discharge field.
  • the sheet material may be made from a synthetic polymer, such as a polyolefin. Particularly desired polyolefins include polypropylene and polyethylene.
  • corona discharge field is employed with its usual meaning. Such field may be generated by any means known to those having ordinary skill in the art.
  • nonconductive with reference to a sheet material is used herein to mean that the sheet material will not conduct electricity.
  • wettable means wettable by water, e.g.. the spontaneous absorption of water by a porous material such as a nonwoven web.
  • the present invention provides a method of preventing localized arcing to ground during treatment of a sheet material in a corona discharge field generated by a corona discharge apparatus having at least two electrodes.
  • the method involves passing the sheet material to be treated through the corona discharge field, in which the sheet material to be treated is electrically isolated from the electrodes.
  • the sheet material may be any sheet material capable of being treated in a corona discharge field.
  • the sheet material may be nonporous or porous.
  • the sheet material may be a film.
  • the sheet material may be a fibrous web.
  • the fibrous web may be woven or nonwoven. Examples of nonwoven fibrous webs include, by way of illustration only, meltblown. coformed. spunbonded.
  • meltblowing references include, by way of example, U.S. Patent Nos.
  • (c) spunbonding references include, among others.
  • the sheet material may be made of any desired material which is capable of being treated in a corona discharge field.
  • the sheet material typically may be made from a synthetic polymer, which may be a thermosetting or thermoplas ⁇ tic polymer.
  • thermosetting polymers include, by way of illustration only, alkyd resins, such as phthalic anhydride-glycerol resins, maleic acid-glycerol resins, adipic acid-glycerol resins, and phthalic anhydride-pentaerythritol resins: allylic resins, in which such monomers as diallyl phthalate. diallyl isophthalate diallyl maleate. and diallyl chlorendate serve as nonvolatile cross-linking agents in polyester compounds; amino resins, such as aniline-formaldehyde resins, ethylene urea-formaldehyde resins, dicyan- diamide-formaldehyde resins.
  • alkyd resins such as phthalic anhydride-glycerol resins, maleic acid-glycerol resins, adipic acid-glycerol resins, and phthalic anhydride-pentaerythritol resins: allylic resins, in
  • thermoplastic polymers include, by way of illustration only, end- capped polyacetals, such as poly(oxymethylene) or polyformaldehyde. poly(trichloroacetaldehyde), poly(n-valeraldehyde), poly (acetaldehyde).
  • acrylic polymers such as polyacrylamide, poly (acrylic acid), poly (methacrylic acid), poly (ethyl acrylate), poly (methyl methacrylate), polyacrylonitrile.
  • fluorocarbon polymers such as poly(tetrafluoroethylene), perfluorinated ethylene-propylene copolymers, ethylene- tetrafluoroethylene copolymers, poly (chlorotrifluoroethylene), ethylene- chlorotrifluoroethylene copolymers, polyfvinylidene fluoride), polyfvinyl fluoride), and the like; polyamides, such as poly(6-aminocaproic acid) or poly(e-caprolactam), poly- (hexamethylene adipamide). poly(hexamethylene sebacamide), poly( l 1 -amino- undecanoic acid), and the like; polyaramides.
  • fluorocarbon polymers such as poly(tetrafluoroethylene), perfluorinated ethylene-propylene copolymers, ethylene- tetrafluoroethylene copolymers, poly (chlorotrifluoroethylene), ethylene- chlorotrifluoroethylene copolymers, poly
  • parylenes such as poly-p-xylylene, poly(chloro-p_-xylylene), and the like: polyaryl ethers, such as poly(oxy-2.6-dimethyl-l ,4-phenylene) or poly(p_-phenylene oxide), and the like: polyaryl sulfones, such as poly (oxy- l ,4-phenylenesulfonyl-l ,4-phenyleneoxy-1.4-phenylene- isopropylidene- 1 ,4-phenylene) , poly (sulfonyl- 1 ,4-phenyleneoxy- 1 ,4-phenylenesulfonyl- 4,4'-biphenylene), and the like: polycarbonates, such as poly (bisphenol A) or poly(carbonyldioxy-
  • polystyrenes copolymers of the foregoing, such as acrylonitrile-butadiene-styrene (ABS) copolymers, and the like; and the like.
  • the sheet material may be made of a synthetic hydrophobic polymer.
  • Hydrophobic polymers in general give contact angles with water of at least about 60° and typically have surface free energies of less than about 45 dynes cm- 1 (mjoule rrv 2 ).
  • Examples of such polymers include, by way of illustration only, aromatic polyesters, polyolefins, polytetrafluoroethylene, poly (methyl methacry ⁇ late), poly(vinyl ⁇ dene fluoride), polyamides, and polystyrenes.
  • Aromatic polyesters include, by way of example only, poly(ethylene terephthalate), polyftetramethylene terephthalate), poly (cyclohexane- 1 ,4-dimethylene terephthalate), and thermotropic liquid crystalline such as the copolymers of hydroxybenzoic acid and hydroxynaphthoic acid.
  • polyolefins examples include, again by way of illustration only, polyethylene. polypropylene, poly( l-butene), poly(2-butene). poly( l-pentene), poly(2-pentene), poly(3-methyl-l -pentene), poly(4-methyl-l -pentene). and the like In addition, such term is meant to include blends of two or more polyolefins and random and block copolymers prepared from two or more different unsaturated monomers. Because of their commercial importance the most preferred polyolefins are polyethylene and polypropylene
  • Polyamides include, by way of example only. poly(6-am ⁇ nocapro ⁇ c acid) (nylon 6), poly(hexamethylene sebacamide) (nylon 6 10) and polyfoctamethylene suberamide) (nylon 8,8)
  • both electrodes may be covered with a dielectnc sleeve.
  • one electrode may be covered with a dielectric sleeve and one electrode may be covered with a nonconductive film which may be renewable.
  • the sheet material to be treated may be passed through the corona discharge field as a layer of a multilayered composite having at least three layers, in which at least one of the layers is a nonconductive sheet matenal situated between the sheet material to be treated and the bare metal electrode.
  • the nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode also may be nonporous.
  • the method may be employed to treat a hydrophobic sheet matenal having a porosity, in which case the hydrophobic sheet material is passed through a corona discharge field generated by a corona discharge apparatus having a bare metal electrode and a dielectric covered electrode under conditions adapted to render the porous sheet wettable.
  • the hydrophobic sheet material is a layer of a multilayered composite having at least three layers, in which at least one layer is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode and one of the at least three layers is a nonconductive, nonporous sheet material.
  • the at least one layer which is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode also may be nonporous.
  • Polypropylene film 2-mil (about 0.05-mm) thickness (Type XP715S/P. Lot #46805, Edison Plastics Co., Newport News. Virginia).
  • Polyethylene Film 1-mil (about 0.025-mm) thickness (standard linear low density polyethylene film).
  • Polytetrafluoroethylene film 2-mil (about 0.05-mm) thickness (Fisher Scientific, Atlanta, Georgia).
  • Celgard® 2500 Microporous polypropylene film Hoechst Celanese. Charlotte, North Carolina.
  • Manila Paperboard 1 1-mil (about 0.3-mm) thickness (No. 2-152C Smead Inc., Hastings, Minnesota). The paperboard is believed to be porous, although no tests were run to verify or define such porosity.
  • Aluminum Foil 1-mil (about 0.025-mm) thickness (Reynolds Metals Company, Richmond, Virginia).
  • a corona discharge field was generated by means ot a Corotec Laboratory Corona Treating Station (Corotec Corporation, Collinsville. Connecticut) equipped with a CXC-5 power supply.
  • the Corotec Laboratory Corona Treating Station generated a high voltage alternating current corona discharge.
  • the voltage of the discharge peak to peak
  • the frequency ranged from 19 kHz to 20 kHz.
  • the treater utilized two horizontally positioned, counter-rotating aluminum rolls as the electrodes.
  • the bottom roll was grounded and its surface was covered by a 2-mm thick dielectric sleeve.
  • the top roll was bare aluminum metal. The nip point formed by the two rolls provided a minimum gap of 2 mm.
  • the actual gap between the electrodes du ng Ihe treatment of a material was the sum of the thicknesses of Ihe materials being passed through the gap and the 2-mm thick dielectric cover on the Iower electrode
  • the line speed was fixed at 12 fl/min (about 6 cm/sec)
  • the power dissipated in the gap during corona discharge was indicated by an integral power meter
  • the corona energy density was a quantitative measure of power dissipated across the width of the electrodes per unit area of material being treated This is simply expressed by dividing the output power of the power supply by the width of the anode (fl) and the line speed (ft/s) Energy density was assumed to be a cumulative function of the number of passes through the discharge Typically materials were passed through the discharge from 1 to 10 times Table 1 lists energy density per pass for typical output power used in the examples
  • a critical surface tension of wetting was determined for each sample treated using a Wetting Tension Test kit Model STT 1 1 - 1 (Pillar Technologies Inc . Hartland. Wisconsin Michigan?) The critical surface tension of wetting was taken as the surface tension of the Pillar test kit fluid which was spontaneously absorbed into a porous substrates
  • the Wetting Tension Kit conforms to ASTM Standard D2578-67 Surface Analysis
  • the surfaces of treated samples were analyzed by electron spectroscopy for chemical analysis (ESCA) All analyses were carried out with a Surface Science Instruments M-Probe ESCA Spectrometer Spectral collections were performed with monochromatic aluminum x-ray excitation of an 800 square micrometer area of each sample. Differential charging of samples was compensated for by using a low energy (1 eV) flux of electrons from an electron flood gun.
  • ESCA electron spectroscopy for chemical analysis
  • Samples of 0.5 ounce per square yard or osy (about 17 grams per square meter or gsm) polypropylene meltblown nonwoven webs were corona discharge treated at corona energy densities per pass ranging from 500 to 2500 watt sec ft 2 (about 5.38 to 26.9 kjoule rrr 2 ).
  • Each meltblown sample was mounted as a multilayered structure in which 1 to 5 layers of material were overlayed or stacked to form a composite sample for corona treatment. No adhesive was applied between layers of the laminates: thus. after corona discharge treatment, the layers were easily separable.
  • the multilayered composites are referred to or described layer by layer. beginning with the layer closest to the top or bare metal electrode of the Treating Station and ending with the layer closest to the bottom electrode of the treater. i.e., the electrode covered with the dielectric sleeve. While in the examples a maximum of five layers were used, this number of layers should not be construed as limiting in any way either the spirit or the scope of the invention.
  • the multilayered composite were corona discharge treated by feeding the materials through the nip formed between the upper and Iower electrodes of the Treating Station.
  • the severity of treatment was varied by increasing the corona output power and by increasing the number of passes through the discharge field at a fixed corona energy density.
  • Table 2 The numerous composite configurations examined are summarized in Table 2. Included in Table 2 are data indicating the observance of pinholes in the corona treated material and the critical surface tension for wetting (CSTW) of the treated meltblown nonwoven web for each configuration examined.
  • the CSTW was evaluated on both the top and bottom sides of each fabric. In no case was the CSTW of the top side (the side closest to the bare metal electrode of the Treating Station) found to be different from that observed on the bottom side (the side closest to the dielectric- covered electrode of the Treating Station). All samples were passed through the corona discharge field a total of ten times at a fixed corona energy density of 1500 watt sec ft- 2 (about 16.2 kjoule i ⁇ v 2 ). The following abbreviations are employed in all tables:
  • MB Polypropylene meltblown nonwoven web
  • MPB Manila paperboard
  • the effect of output power of the corona treater on the CSTW and the surface composition of the meltblown nonwoven web was evaluated using the MPB/MB/PPF configuration described above.
  • the surface composition was determined by ESCA analysis of the nonwoven web after treatment and is herein expressed as the ratio of the atomic percent of oxygen to that of carbon (O/C ratio). In all cases the samples were passed through the corona discharge field a total of five limes. The results are summarized in Table 4.
  • both the surface O/C ratio and the CSTW increased with increasing corona power. Except for the O/C ratio at 400 watts or joule sec 1 , the increases in both the O/C ratio and CSTW appear to be roughly linear at output power rating increases above 100 watts or joule sec 1 .
  • Effect of Corona Treatment Severity The effect of corona treatment severity (time) was evaluated by increasing the number of passes through a corona discharge field at fixed power. In this case the corona power was set at 300 watts or joule sec ', corresponding to a corona energy density of 1500 watt sec fl 2 (about 16.2 kjoule m 2 ) per pass. The results are summarized in Table 5.
  • the CSTW increased with the number of passes through the corona field, although fewer than about five passes had little apparent effect on the CSTW value.
  • the surface O/C ratio appeared to reach a maximum after about 5 passes.
  • the corona treatment of the polypropylene meltblown nonwoven web was examined as a function of the electrical conductivity of the film layer used in the preparation of the multilayered composite.
  • a 1-mil (about 0.025-mm) thick aluminum foil was used as a conductive film and several polymer films were evaluated as dielectric film layers.
  • the corona treatment conditions were 1500 watt sec ft- 2 (about 16.2 (kjoule r ⁇ v 2 ) per pass and 10 passes.
  • Conductive Film Three samples of the meltblown nonwoven web were treated in multilayered composites which included an aluminum foil conductive film layer. In the first, a section of the meltblown web was mounted on manila paperboard with poly ⁇ propylene film covering one half and aluminum foil the other.
  • the sample was constructed such that, as the sample passed through the corona field, half of the electrode pair would "see” the polypropylene film and the other half would "see” the aluminum foil.
  • the juncture between the two types of film was parallel to the direction of motion of the composite through the corona discharge apparatus.
  • both sides of the meltblown nonwoven web had a CSTW value of 60 dynes cm- 1 (mjoule r ⁇ 2 ). while only the aluminum foil side had pinholes.
  • a third sample was prepared wherein a second polypropylene film layer was added between the manila paperboard and the nonwoven web. In this case, no pin holes were observed in either the aluminum foil covered or polypropylene film covered sides, and the CSTW value was the same on each side.
  • nonconductive films used as layers in multilayered composites included polytetrafluoroethylene (PTFE), polyethylene (PE). and Celgard® 2500 microporous polypropylene.
  • PTFE polytetrafluoroethylene
  • PE polyethylene
  • Celgard® 2500 microporous polypropylene The sample configuration was MPB/MB/Nonconduc- tive Film.
  • the corona discharge treatment of microporous films was demonstrated using sample of Celgard® 2500 microporous polypropylene film.
  • the microporous film was treated in a manner similar to that described in Example 1.
  • the corona treatment conditions were 1500 watt sec ft- 2 per pass and 10 passes.
  • the Celgard film was treated either by itself or as a multilayered composite with PP film. PE film, and PTFE film.
  • Treatment of the Celgard® 2500 microporous polypropylene film by itself produced a material with pinholes over greater than 90 percent of its surface.
  • the broad applicability of the multilayered composite approach to controlling pinhole formation during corona treatment of nonwoven webs was further demonstrated by examining higher basis weight polypropylene meltblown webs and a series of nonwoven webs made from polyethylene.
  • the corona treatment conditions were 1500 watt sec ft 2 per pass and 10 passes.
  • the MPB/Nonwoven Web/PPF sample configuration was used for each nonwoven web.
  • the nonwoven webs studied were as follows: A - 1.0 osy (about 34 gsm) polypropylene meltblown nonwoven web.

Landscapes

  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Plasma & Fusion (AREA)
  • Textile Engineering (AREA)
  • Treatments Of Macromolecular Shaped Articles (AREA)
  • Chemical Or Physical Treatment Of Fibers (AREA)

Abstract

A method of preventing localized arcing to ground during treatment of a sheet material in a corona discharge field generated by a corona discharge apparatus having at least two electrodes, which method involves passing the sheet material to be treated through the corona discharge field, in which the sheet material to be treated is electrically isolated from the electrodes. When the corona discharge apparatus has a bare metal electrode and a dielectric-covered electrode, the sheet material to be treated is passed through the corona discharge field as a layer of a multilayered composite having at least three layers, in which at least one of the layers is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode. The method may be employed to treat a hydrophobic sheet material having a porosity, in which case the hydrophobic sheet material is passed through a corona discharge field generated by a corona discharge apparatus having a bare metal electrode and a dielectric covered electrode under conditions adapted to render the porous sheet wettable. The hydrophobic sheet material is a layer of a multilayered composite having at least three layers, in which at least one layer is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode and one of the at least three layers is a nonconductive, nonporous sheet material.

Description

METHOD OF CORONA TREATING A HYDROPHOBIC SHEET MATERIAL
Background of the Invention
The present invention relates to a sheet matenal. such as a porous sheet matenal
Polymers are used extensively to make a vanety of products which include blown and cast films, extruded sheets, injection molded articles foams blow molded articles, extruded pipe, monofilaments and fibrous materials such as nonwoven webs Some of the polymers such as polyolefins have no functionality (t e reactive groups) and are naturally hydrophobic and for many uses these properties are either a positive attribute or at least not a disadvantage
There are a number of uses for polymers however where their hydro- phobic/nonfunctional nature either limits their usefulness or requires some effort to modify the surface characteristics of the shaped articles made therefrom By way of example polyolefins such as polyethylene and polypropylene are used to manufacture polymeric fabrics which are employed in the construction of such disposable absorbent articles as diapers feminine care products incontinence products training pants wipes and the like Such polymeric fabrics often are nonwoven webs prepared by for example such processes as meltblowmg coforming and spunbonding Frequently such polymenc fabrics need to be wettable by water Wettability can be obtained by spraying or otherwise coating (i e surface treating or topically treating) the fabric with a surfactant solution during or after its formation and then drying the web
Some of the more common topically applied surfactants are nonionic surfactants such as polyethoxylated octylphenols and condensation products of propylene oxide with propylene glycol, by way of illustration only These surfactants are effective in rendeπng normally hydrophobic polymenc fabrics wettable However the surfactant is readily removed from the fabric, often after only a single exposure to an aqueous liquid
Hydrophobic polymers also have been rendered wettable by passing the porous hydrophobic sheet material through a corona discharge field A corona discharge field also has been used to improve ink adhesion on a surface of a film; to improve the adhesion of one film to another or to introduce functional or ionic groups on the surfaces of the fibers of filter media, films, and the like. In some cases, a film has been rendered porous or more porous by exposing the film to a corona discharge field. Because arcing is an intrinsic phenomenon associated with a corona discharge field, localized arcing is a frequent and common occurrence. However, localized arcing results in the formation of pinholes in the material being treated. This result often is either desired or not a disadvantage. Localized arcing is a problem, though, when porous materials are utilized and it is desired that the porosity of the material not be altered by the corona discharge treatment.
Notwithstanding past improvements in rendering a polymeric fibrous material wettable or introducing functional or ionic groups on the surfaces of the fibers of filter media and films, there still are opportunities for improvements in these areas. This is particularly true where it is desired to treat a porous sheet material in a corona discharge field without altering the porosity of the sheet material.
Summary of the Invention
The present invention addresses some of the difficulties and problems discussed above by providing a method of preventing localized arcing to ground during treatment of a sheet material in a corona discharge field generated by a corona discharge apparatus having at least two electrodes, which method involves passing the sheet material to be treated through the corona discharge field, in which the sheet material to be treated is electrically isolated from the electrodes.
When the corona discharge apparatus has a bare metal electrode and a dielectric-covered electrode, the sheet material to be treated is passed through the corona discharge field as a layer of a multilayered composite having at least three layers, in which at least one of the layers is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode.
The method may be employed to treat a hydrophobic sheet material having a porosity, in which case the hydrophobic sheet material is passed through a corona discharge field generated by a corona discharge apparatus having a bare metal electrode and a dielectric covered electrode under conditions adapted to render the porous sheet wettable. The hydrophobic sheet material is a layer of a multilayered composite having at least three layers, in which at least one layer is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode and one of the at least three layers is a nonconductive, nonporous sheet material. For example, the at least one layer which is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode also may be nonporous.
In general, the sheet material may be any sheet material capable of being treated in a corona discharge field. The sheet material may be nonporous or porous. For example, the sheet material may be a film. As another example, the sheet material may be a fibrous web. The fibrous web may be woven or nonwoven. Examples of nonwoven fibrous webs include meltblown, coformed, and spunbonded nonwoven webs. The sheet material may be made of any desired material which is capable of being treated in a corona discharge field. For example, the sheet material may be made from a synthetic polymer, such as a polyolefin. Particularly desired polyolefins include polypropylene and polyethylene.
Detailed Description of the Invention
As used herein, the term "corona discharge field" is employed with its usual meaning. Such field may be generated by any means known to those having ordinary skill in the art. The term "nonconductive" with reference to a sheet material is used herein to mean that the sheet material will not conduct electricity.
As used herein, the term "wettable" means wettable by water, e.g.. the spontaneous absorption of water by a porous material such as a nonwoven web.
As stated earlier, the present invention provides a method of preventing localized arcing to ground during treatment of a sheet material in a corona discharge field generated by a corona discharge apparatus having at least two electrodes. The method involves passing the sheet material to be treated through the corona discharge field, in which the sheet material to be treated is electrically isolated from the electrodes. The sheet material may be any sheet material capable of being treated in a corona discharge field. The sheet material may be nonporous or porous. For example, the sheet material may be a film. As another example, the sheet material may be a fibrous web. The fibrous web may be woven or nonwoven. Examples of nonwoven fibrous webs include, by way of illustration only, meltblown. coformed. spunbonded. air-laid, wet-laid, and bonded carded nonwoven webs. A nonwoven web desirably will be formed by such well-known processes as meltblowing, cofoiming. spunbonding. and the like. By way of illustration only, such processes are exemplified by the following references, each of which is incorporated herein by reference: (a) meltblowing references include, by way of example, U.S. Patent Nos.
3.016.599 to R. W. Perry, Jr.. 3.704, 198 to J. S. Prentice. 3.755,527 to J. P. Keller et al.. 3,849.241 to R. R. Butin et al.. 3,978, 185 to R. R. Butin et al.. and 4.663.220 to T. J. Wisneski et al. See, also, V. A. Wente, "Superfine Thermoplastic Fibers", Industrial and Engineering Chemistry, Vol. 48, No. 8, pp. 1342-1346 ( 1956); V. A. Wente et al.. "Manufacture of Superfine Organic Fibers", Navy Research Laboratory, Washington. D.C, NRL Report 4364 ( 1 1 1437). dated May 25, 1954. United States Department of Commerce, Office of Technical Services: and Robert R. Butin and Dwight T. Lohkamp. "Melt Blowing - A One- Step Web Process for New Nonwoven Products", Journal of the Technical Association of the Pulp and Paper Industry, Vol. 56. No.4. pp. 74-77 ( 1973); (b) coforming references (i.e.. references disclosing a meltblowing process in which fibers or particles are commingled with the meltblown fibers as they are formed) include U.S. Patent Nos. 4, 100.324 to R. A. Anderson et al. and 4.1 18,531 to E. R. Hauser; and
(c) spunbonding references include, among others. U.S. Patent Nos. 3,341.394 to Kinney. 3.655.862 to Dorschner et al.. 3,692.618 to Dorschner et al.. 3,705,068 to Dobo et al., 3,802.817 to Matsuki et al.. 3,853.651 to Porte. 4.064,605 to Akiyama et al., 4,091.140 to Harmon, 4, 100,319 to Schwartz, 4,340.563 to Appel and Mor an. 4,405.297 to Appel and Morman, 4,434,204 to Hartman et al.. 4.627,81 1 to Greiser and Wagner, and 4.644.045 to Fowells. The sheet material may be made of any desired material which is capable of being treated in a corona discharge field. For example, the sheet material typically may be made from a synthetic polymer, which may be a thermosetting or thermoplas¬ tic polymer.
Examples of thermosetting polymers include, by way of illustration only, alkyd resins, such as phthalic anhydride-glycerol resins, maleic acid-glycerol resins, adipic acid-glycerol resins, and phthalic anhydride-pentaerythritol resins: allylic resins, in which such monomers as diallyl phthalate. diallyl isophthalate diallyl maleate. and diallyl chlorendate serve as nonvolatile cross-linking agents in polyester compounds; amino resins, such as aniline-formaldehyde resins, ethylene urea-formaldehyde resins, dicyan- diamide-formaldehyde resins. melamine-formaldehyde resins. sulfonamide- formaldehyde resins, and urea-formaldehyde resins: epoxy resins, such as cross-linked epichlorohydrin-bisphenol A resins; phenolic resins, such as phenol-formaldehyde resins, including Novolacs and resols; and thermosetting polyesters, silicones, and urethanes. Examples of thermoplastic polymers include, by way of illustration only, end- capped polyacetals, such as poly(oxymethylene) or polyformaldehyde. poly(trichloroacetaldehyde), poly(n-valeraldehyde), poly (acetaldehyde). po¬ ly (propionaldehyde), and the like; acrylic polymers, such as polyacrylamide, poly (acrylic acid), poly (methacrylic acid), poly (ethyl acrylate), poly (methyl methacrylate), polyacrylonitrile. and the like: fluorocarbon polymers, such as poly(tetrafluoroethylene), perfluorinated ethylene-propylene copolymers, ethylene- tetrafluoroethylene copolymers, poly (chlorotrifluoroethylene), ethylene- chlorotrifluoroethylene copolymers, polyfvinylidene fluoride), polyfvinyl fluoride), and the like; polyamides, such as poly(6-aminocaproic acid) or poly(e-caprolactam), poly- (hexamethylene adipamide). poly(hexamethylene sebacamide), poly( l 1 -amino- undecanoic acid), and the like; polyaramides. such as poly(imino-1.3-phenylenei- minoisophthaloyl) or poly(m-phenylene isophthalamide), and the like: parylenes. such as poly-p-xylylene, poly(chloro-p_-xylylene), and the like: polyaryl ethers, such as poly(oxy-2.6-dimethyl-l ,4-phenylene) or poly(p_-phenylene oxide), and the like: polyaryl sulfones, such as poly (oxy- l ,4-phenylenesulfonyl-l ,4-phenyleneoxy-1.4-phenylene- isopropylidene- 1 ,4-phenylene) , poly (sulfonyl- 1 ,4-phenyleneoxy- 1 ,4-phenylenesulfonyl- 4,4'-biphenylene), and the like: polycarbonates, such as poly (bisphenol A) or poly(carbonyldioxy-l ,4-phenyleneisopropylidene-1.4-phenylene), and the like; polyesters, such as poly (ethylene terephthalate). poly (tetramethylene terephthalate), poly (cyclohexylene- 1 ,4-dimethylene terephthalate) or poly(oxymethylene-1 ,4- cyclohexylenemethyleneoxyterephthaloyl), and the like; polyaryl sulfides. such as poly(p_-phenylene sulfide) or poly (thio- 1 ,4-phenylene), and the like; polyimides, such as poly(pyromellitimido-1.4-phenylene), and the like; polyolefins, such as polyethylene, polypropylene, poiy( l -butene), poly(2-butene), poly( l-pentene), poly(2-pentene), poly(3-methyl-l -pentene), poly(4-methyl-l-pentene), and the like; vinyl polymers, such as poly(vinyl acetate), polyfvinylidene chloride), polyfvinyl chloride), and the like; diene polymers, such as l ,2-poly-1.3-butadiene. 1.4-poly-l ,3-butadiene. polyisoprene, polychloroprene, and the like; polystyrenes: copolymers of the foregoing, such as acrylonitrile-butadiene-styrene (ABS) copolymers, and the like; and the like.
In some embodiments, the sheet material may be made of a synthetic hydrophobic polymer. Hydrophobic polymers in general give contact angles with water of at least about 60° and typically have surface free energies of less than about 45 dynes cm-1 (mjoule rrv2). Examples of such polymers include, by way of illustration only, aromatic polyesters, polyolefins, polytetrafluoroethylene, poly (methyl methacry¬ late), poly(vinylιdene fluoride), polyamides, and polystyrenes. Aromatic polyesters include, by way of example only, poly(ethylene terephthalate), polyftetramethylene terephthalate), poly (cyclohexane- 1 ,4-dimethylene terephthalate), and thermotropic liquid crystalline such as the copolymers of hydroxybenzoic acid and hydroxynaphthoic acid.
Examples of polyolefins include, again by way of illustration only, polyethylene. polypropylene, poly( l-butene), poly(2-butene). poly( l-pentene), poly(2-pentene), poly(3-methyl-l -pentene), poly(4-methyl-l -pentene). and the like In addition, such term is meant to include blends of two or more polyolefins and random and block copolymers prepared from two or more different unsaturated monomers. Because of their commercial importance the most preferred polyolefins are polyethylene and polypropylene
Polyamides include, by way of example only. poly(6-amιnocaproιc acid) (nylon 6), poly(hexamethylene sebacamide) (nylon 6 10) and polyfoctamethylene suberamide) (nylon 8,8)
As already stated the sheet material to be treated must be electπcally isolated from the electrodes of the corona discharge apparatus. This may be accomplished by any means For example, both electrodes may be covered with a dielectnc sleeve. As another example, one electrode may be covered with a dielectric sleeve and one electrode may be covered with a nonconductive film which may be renewable. Other means will be readily apparent to those having ordinary skill in the art When the corona discharge apparatus has a bare metal electrode and a dielectric-covered electrode, the sheet material to be treated may be passed through the corona discharge field as a layer of a multilayered composite having at least three layers, in which at least one of the layers is a nonconductive sheet matenal situated between the sheet material to be treated and the bare metal electrode. If desired, the nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode also may be nonporous.
The method may be employed to treat a hydrophobic sheet matenal having a porosity, in which case the hydrophobic sheet material is passed through a corona discharge field generated by a corona discharge apparatus having a bare metal electrode and a dielectric covered electrode under conditions adapted to render the porous sheet wettable. The hydrophobic sheet material is a layer of a multilayered composite having at least three layers, in which at least one layer is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode and one of the at least three layers is a nonconductive, nonporous sheet material. For example, the at least one layer which is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode also may be nonporous.
The present invention is further described by the examples which follow. Such examples, however, are not to be construed as limiting in any way either the spirit or the scope of the present invention. Materials
In the examples, the following materials were used:
Polypropylene film: 2-mil (about 0.05-mm) thickness (Type XP715S/P. Lot #46805, Edison Plastics Co., Newport News. Virginia). Polyethylene Film: 1-mil (about 0.025-mm) thickness (standard linear low density polyethylene film).
Polytetrafluoroethylene film: 2-mil (about 0.05-mm) thickness (Fisher Scientific, Atlanta, Georgia).
Celgard® 2500 Microporous polypropylene film: Hoechst Celanese. Charlotte, North Carolina.
Manila Paperboard: 1 1-mil (about 0.3-mm) thickness (No. 2-152C Smead Inc., Hastings, Minnesota). The paperboard is believed to be porous, although no tests were run to verify or define such porosity.
Aluminum Foil: 1-mil (about 0.025-mm) thickness (Reynolds Metals Company, Richmond, Virginia).
Corona Discharge Treater
A corona discharge field was generated by means ot a Corotec Laboratory Corona Treating Station (Corotec Corporation, Collinsville. Connecticut) equipped with a CXC-5 power supply. The Corotec Laboratory Corona Treating Station generated a high voltage alternating current corona discharge. The voltage of the discharge (peak to peak) ranged from 7 kV to 10 kV and the frequency ranged from 19 kHz to 20 kHz. The treater utilized two horizontally positioned, counter-rotating aluminum rolls as the electrodes. The bottom roll was grounded and its surface was covered by a 2-mm thick dielectric sleeve. The top roll was bare aluminum metal. The nip point formed by the two rolls provided a minimum gap of 2 mm. The actual gap between the electrodes du ng Ihe treatment of a material was the sum of the thicknesses of Ihe materials being passed through the gap and the 2-mm thick dielectric cover on the Iower electrode The line speed was fixed at 12 fl/min (about 6 cm/sec) The power dissipated in the gap during corona discharge was indicated by an integral power meter
The corona energy density was a quantitative measure of power dissipated across the width of the electrodes per unit area of material being treated This is simply expressed by dividing the output power of the power supply by the width of the anode (fl) and the line speed (ft/s) Energy density was assumed to be a cumulative function of the number of passes through the discharge Typically materials were passed through the discharge from 1 to 10 times Table 1 lists energy density per pass for typical output power used in the examples
Table 1 Corona Energy Densities
Output Powera Energy Densitvb 100 500 ( 5. 38 )
200 1000 ( 10. 8 ) 300 1500 ( 16. 2 )
400 2000 ( 21. 5 )
500 2500 ( 26. 9 ) aln watts or |oule sec ' •-In watt sec ft 2 (kjoule m -*)
Critical Surface Tension of Wetting
A critical surface tension of wetting was determined for each sample treated using a Wetting Tension Test kit Model STT 1 1 - 1 (Pillar Technologies Inc . Hartland. Wisconsin Michigan?) The critical surface tension of wetting was taken as the surface tension of the Pillar test kit fluid which was spontaneously absorbed into a porous substrates The Wetting Tension Kit conforms to ASTM Standard D2578-67 Surface Analysis
The surfaces of treated samples were analyzed by electron spectroscopy for chemical analysis (ESCA) All analyses were carried out with a Surface Science Instruments M-Probe ESCA Spectrometer Spectral collections were performed with monochromatic aluminum x-ray excitation of an 800 square micrometer area of each sample. Differential charging of samples was compensated for by using a low energy (1 eV) flux of electrons from an electron flood gun.
Example 1
Corona Discharge Treatment of Polypropylene Meltblown Nonwoven Webs
Samples of 0.5 ounce per square yard or osy (about 17 grams per square meter or gsm) polypropylene meltblown nonwoven webs were corona discharge treated at corona energy densities per pass ranging from 500 to 2500 watt sec ft 2 (about 5.38 to 26.9 kjoule rrr2). Each meltblown sample was mounted as a multilayered structure in which 1 to 5 layers of material were overlayed or stacked to form a composite sample for corona treatment. No adhesive was applied between layers of the laminates: thus. after corona discharge treatment, the layers were easily separable.
The multilayered composites are referred to or described layer by layer. beginning with the layer closest to the top or bare metal electrode of the Treating Station and ending with the layer closest to the bottom electrode of the treater. i.e., the electrode covered with the dielectric sleeve. While in the examples a maximum of five layers were used, this number of layers should not be construed as limiting in any way either the spirit or the scope of the invention.
The multilayered composite were corona discharge treated by feeding the materials through the nip formed between the upper and Iower electrodes of the Treating Station. The severity of treatment was varied by increasing the corona output power and by increasing the number of passes through the discharge field at a fixed corona energy density.
The numerous composite configurations examined are summarized in Table 2. Included in Table 2 are data indicating the observance of pinholes in the corona treated material and the critical surface tension for wetting (CSTW) of the treated meltblown nonwoven web for each configuration examined. The CSTW was evaluated on both the top and bottom sides of each fabric. In no case was the CSTW of the top side (the side closest to the bare metal electrode of the Treating Station) found to be different from that observed on the bottom side (the side closest to the dielectric- covered electrode of the Treating Station). All samples were passed through the corona discharge field a total of ten times at a fixed corona energy density of 1500 watt sec ft-2 (about 16.2 kjoule iτv2). The following abbreviations are employed in all tables:
PPF = Polypropylene film
MB = Polypropylene meltblown nonwoven web MPB = Manila paperboard
Table 2
Summary of Results for Corona Treatment of Nonwoven Webs in Multilayeied Composites
Composite Description Pinholes CSTW° Wettable
MB Yes 58 No
MB/PPF Yes 72 Yes
PPF/MB Yes 72 Yes
MB/PPF/PPF Yes 72 Yes
PPF/MB/PPF No 72 Yes
PPF/PPF/MB Yes 72 Yes
MB/MPB Yes 58 No
MPB/MB Yes 12 Yes
MB/MPB/MPB Yes 60 No
MPB/MB/MPB No 58 No
MPB/MPB/MB No 62 No
MB/PPF/MPB Yes^ 72 Yes
MPB/PPF/MB No 72 Yes
MB/MPB/PPF Yes 72 Yes
PPF/MPB/MB No 72 Yes
PPF/MB/MPB No 72 Yes
MPB/MB/PPF No 72 Yes
Table 2, Continued
Composite Description Pinholes CSTW° Wettable PPF/MB/PPF/MPB No 60 No
MPB/PPF/MB/PPF No 60 No
°Critical surface tension of wetting in dynes cm-' (mjoule rτv2). bVery few. cVery large.
From the series of experiments summarized in Table 2, several conclusion can be drawn:
(a) isolation of the meltblown nonwoven web from the upper bare electrode was essential to prevent pinholes from forming in the web; (b) hole sizes appeared to be controlled by the material which acts as a carrier sheet for the nonwoven web:
(c) the total composite thickness had a pronounced effect on the wettability of the treated nonwoven web: and
(d) the optimal sample configuration which yields a pinhole-free and water- wettable material was MPB/MB/PPF, i.e.. maniia paperboard/meltblown nonwoven web/polypropylene film. Treatment Sidedness
The results of ESCA determinations on the surfaces of meltblown nonwoven web samples corona treated in the PPF/MB/MPB and MPB/MB/PPF configurations are summarized in Table 3. Each sample was corona treated at a corona energy density of 1500 Watt sec ft 2 (about 16.2 kjoule rrv2) per pass for 10 passes.
Table 3
ESCA Analyses of Corona Treated
Meltblown Nonwoven Webs
Element Atomic Percent
Sample Carbon Oxvaen
Control0 I QQ _
PPF/MB/MPB (top) g8 > 5 11. 5
PPF/MB/MPB (bottom) 89. 5 10.5
MPB/MB/PPF (top) 88. 7 11. 3
MPB/MB/PPF (bottom) 90. 3 9.7 aNoncorona treated MB.
The surface analysis data summarized in Table 3 illustrate quantitatively the lack of sidedness to the nonwoven web following corona treatment in the multilayered composite configuration.
Effect of Corona Power
The effect of output power of the corona treater on the CSTW and the surface composition of the meltblown nonwoven web was evaluated using the MPB/MB/PPF configuration described above. The surface composition was determined by ESCA analysis of the nonwoven web after treatment and is herein expressed as the ratio of the atomic percent of oxygen to that of carbon (O/C ratio). In all cases the samples were passed through the corona discharge field a total of five limes. The results are summarized in Table 4.
Table 4 Summary of the Effect of Output Power
Corona Power0 O/C Ratiob CSTWC Wettable
100 9. 0 56 No
200 11 . 5 56 No
300 12. 6 60 No
400 17.6 62 No
500 14. 5 62 No aln watts or joule sec 1. bThe calculated O/C ratio times 100. °Critical surface tension of wetting in dynes cm-' (mjoule nrv2).
As can be seen from Ihe table, both the surface O/C ratio and the CSTW increased with increasing corona power. Except for the O/C ratio at 400 watts or joule sec 1, the increases in both the O/C ratio and CSTW appear to be roughly linear at output power rating increases above 100 watts or joule sec 1. Effect of Corona Treatment Severity The effect of corona treatment severity (time) was evaluated by increasing the number of passes through a corona discharge field at fixed power. In this case the corona power was set at 300 watts or joule sec ', corresponding to a corona energy density of 1500 watt sec fl 2 (about 16.2 kjoule m 2) per pass. The results are summarized in Table 5.
Table 5 Summary of the Effect of Number of Passes
Number Passes O/C Ratio0 CSTWb Wettable
1 6.5 56 No
3 12.8 56 No
5 16.8 60 No
8 17.1 64 No
10 15.9 72 Yes °The calculated O/C ratio times 100.
"Critical surface tension of wetting in dynes crrv1 (mjoule nτ2).
According to the data in the table, the CSTW increased with the number of passes through the corona field, although fewer than about five passes had little apparent effect on the CSTW value. The surface O/C ratio, however, appeared to reach a maximum after about 5 passes.
Example 2 Conductive versus Dielectric Film Layers in the Multilayered Composite
The corona treatment of the polypropylene meltblown nonwoven web was examined as a function of the electrical conductivity of the film layer used in the preparation of the multilayered composite. A 1-mil (about 0.025-mm) thick aluminum foil was used as a conductive film and several polymer films were evaluated as dielectric film layers. The corona treatment conditions were 1500 watt sec ft-2 (about 16.2 (kjoule rτv2) per pass and 10 passes. Conductive Film Three samples of the meltblown nonwoven web were treated in multilayered composites which included an aluminum foil conductive film layer. In the first, a section of the meltblown web was mounted on manila paperboard with poly¬ propylene film covering one half and aluminum foil the other. The sample was constructed such that, as the sample passed through the corona field, half of the electrode pair would "see" the polypropylene film and the other half would "see" the aluminum foil. Thus, the juncture between the two types of film was parallel to the direction of motion of the composite through the corona discharge apparatus.
After treatment, both sides of the meltblown nonwoven web had a CSTW value of 60 dynes cm-1 (mjoule rττ2). while only the aluminum foil side had pinholes. A second experiment in which the same sample configuration was used except that the sample was constructed such that the aluminum foil and polypropylene film halves were treated sequentially. The results were the same. A third sample was prepared wherein a second polypropylene film layer was added between the manila paperboard and the nonwoven web. In this case, no pin holes were observed in either the aluminum foil covered or polypropylene film covered sides, and the CSTW value was the same on each side.
Nonconductive Film
Other examples of nonconductive films used as layers in multilayered composites included polytetrafluoroethylene (PTFE), polyethylene (PE). and Celgard® 2500 microporous polypropylene. The sample configuration was MPB/MB/Nonconduc- tive Film.
No pinholes were observed in nonwoven webs treated using composites constructed with the PTFE or the PE film. Both samples had CTSW values of 72 dynes cm-1 (mjoule rrv2). Corona treatment of the sample utilizing the Celgard® 2500 microporous polypropylene yielded a nonwoven web which was badly pinholed. In addition, the treatment uniformity was poor. Some areas had a CSTW value of 72 dynes cm-1 (mjoule rτv2). while others had a CSTW value of 60 dynes cm-' (mjoule nv2). This illustrates the need for a nonporous nonconductive film layer in the multilayered composite subjected to the corona discharge field in order to prevent the formation of pinholes in the nonwoven web while producing a web which is wettable.
Example 3 Corona Discharge Treatment of Microporous Film
The corona discharge treatment of microporous films was demonstrated using sample of Celgard® 2500 microporous polypropylene film. The microporous film was treated in a manner similar to that described in Example 1. The corona treatment conditions were 1500 watt sec ft-2 per pass and 10 passes. The Celgard film was treated either by itself or as a multilayered composite with PP film. PE film, and PTFE film. Treatment of the Celgard® 2500 microporous polypropylene film by itself produced a material with pinholes over greater than 90 percent of its surface. The introduction of a nonconductive film such as PP film on top of the Celgard film prevented pinhole formation and yielded a material with a CSTW value of 72 dynes cm-' (mjoule rrr2). Identical results were obtained when treating with either the PTFE or PE films as covers. Example 4
Corona Discharge Treatment of Nonwoven Webs
The broad applicability of the multilayered composite approach to controlling pinhole formation during corona treatment of nonwoven webs was further demonstrated by examining higher basis weight polypropylene meltblown webs and a series of nonwoven webs made from polyethylene. The corona treatment conditions were 1500 watt sec ft 2 per pass and 10 passes. The MPB/Nonwoven Web/PPF sample configuration was used for each nonwoven web. The nonwoven webs studied were as follows: A - 1.0 osy (about 34 gsm) polypropylene meltblown nonwoven web.
B - 1.0 osy (about 34 gsm) polypropylene spunbonded nonwoven web.
C - 1 .6 osy (about 54 gsm) polyethylene meltblown nonwoven web.
D - 6 osy (about 204 gsm) polyethylene meltblown nonwoven web. The results of these studies are summarized in Table 6.
Table 6 Corona Treatment of Various Nonwoven Webs
Sample Pinholes CSTW° Wettable
A Wό 62 NO
B No 58 No
C No 72 Yes
D No 58 No
°Critical surface tension of wetting in dynes cm-' (mjoule nrv2) .
While the specification has been described in detail with respect to specific embodiments thereof, it will be appreciated that those skilled in Ihe art. upon attaining an understanding of the foregoing, may readily conceive of alterations to. variations of, and equivalents to these embodiments.

Claims

WHAT IS CLAIMED IS:
1. A method of preventing localized arcing to ground during treatment of a sheet material in a corona discharge field generated by a corona discharge apparatus having at least two electrodes, which method comprises: passing the sheet material to be treated through the corona discharge field, in which the sheet material to be treated is electrically isolated from said electrodes.
2. The method of claim 1 , in which the sheet material is a film.
3. The method of claim 1 , in which the sheet material is a fibrous web.
4. The method of claim 3, in which the fibrous web is a nonwoven web.
5. A method of preventing localized arcing to ground during treatment of a sheet material in a corona discharge field generated by a corona discharge apparatus having a bare metal electrode and a dielectric-covered electrode, which method comprises: passing the sheet material to be treated through the corona discharge field as a layer of a multilayered composite having at least three layers, in which at least one of the layers is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode.
6. The method of claim 5, in which the sheet material is a film.
7. The method of claim 5. in which the sheet material is porous.
8. The method of claim 7. in which the sheet material is a fibrous web.
9. The method of claim 8, in which the fibrous web is a nonwoven web.
10. The method of claim 9, in which the nonwoven web is a meltblown nonwoven web.
1 1. The method of claim 9, in which the nonwoven web is a spunbonded nonwoven web.
12. The method of claim 9, in which the nonwoven web is a polyolefin nonwoven web.
13. The method of claim 12, in which the polyolefin is polypropylene or polyethylene.
14. A method of treating a hydrophobic sheet material having a porosity which comprises: passing the porous hydrophobic sheet material: through a corona discharge field generated by a corona discharge apparatus having a bare metal electrode and a dielectric covered electrode; under conditions adapted to render the porous sheet wettable: and as a layer of a multilayered composite having at least three layers, in which at least one layer is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode and one of the at least three layers is a nonconductive, nonporous sheet material; thereby preventing the porosity of the hydrophobic sheet material from being altered.
15. The method of claim 14. in which the sheet material is a film.
16. The method of claim 14. in which the sheet material is porous.
17. The method of claim 16, in which the sheet material is a fibrous web.
18. The method of claim 1 7, in which the fibrous web is a nonwoven web.
19. The method of claim 18, in which the nonwoven web is a meltblown nonwoven web.
20. The method of claim 18. in which the nonwoven web is a spunbonded nonwoven web.
21. The method of claim 18. in which the nonwoven web is a polyolefin nonwoven web.
22. The method of claim 21. in which the polyolefin is polypropylene or polyethylene.
23. The method of claim 14. in which the at least one layer which is a nonconductive sheet material situated between the sheet material to be treated and the bare metal electrode also is nonporous.
PCT/US1996/013227 1995-09-29 1996-08-16 Method of corona treating a hydrophobic sheet material Ceased WO1997011834A1 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
AU67251/96A AU6725196A (en) 1995-09-29 1996-08-16 Method of corona treating a hydrophobic sheet material
MXPA/A/1998/001521A MXPA98001521A (en) 1995-09-29 1998-02-25 Method of treatment with crown of a hidrofob leaf material

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
US453495P 1995-09-29 1995-09-29
US60/004,534 1995-09-29
US08/645,435 US5688465A (en) 1996-05-13 1996-05-13 Method of corona treating a hydrophobic sheet material
US08/645,435 1996-05-13

Publications (1)

Publication Number Publication Date
WO1997011834A1 true WO1997011834A1 (en) 1997-04-03

Family

ID=26673126

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US1996/013227 Ceased WO1997011834A1 (en) 1995-09-29 1996-08-16 Method of corona treating a hydrophobic sheet material

Country Status (3)

Country Link
AU (1) AU6725196A (en)
CA (1) CA2228606A1 (en)
WO (1) WO1997011834A1 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2005115063A1 (en) * 2004-05-20 2005-12-01 Universidade Do Minho Continuous and semi-continuous treatment of textile materials integrating corona discharge
US7700500B2 (en) 2002-12-23 2010-04-20 Kimberly-Clark Worldwide, Inc. Durable hydrophilic treatment for a biodegradable polymeric substrate

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3067119A (en) * 1960-02-11 1962-12-04 American Viscose Corp Surface treatment of films
DE1460636A1 (en) * 1962-08-16 1969-04-30 Robert Levaux Treatment process for textile materials and device for carrying out the process
US3779882A (en) * 1971-04-01 1973-12-18 Union Carbide Corp Electrode method for the surface treatment of thermoplastic materials
FR2337022A1 (en) * 1975-12-30 1977-07-29 Windmoeller & Hoelscher Treatment of fabrics to increase adhesion of ink or adhesive - with two HF HT electrodes both with dielectric (NL 4.7.77)
EP0060687A2 (en) * 1981-03-12 1982-09-22 JOHNSON & JOHNSON MEDICAL, INC. Method of making fibrous electrets
DE3115958A1 (en) * 1981-04-22 1982-12-16 Hahne, Ernst August, 4123 Allschwill Method of moistening a flexible base material, preferably in web form, and apparatus for carrying out the method
JPS58222118A (en) * 1982-06-17 1983-12-23 Mitsubishi Paper Mills Ltd Method and apparatus for corona discharge treatment
WO1984003193A1 (en) * 1983-02-04 1984-08-16 Minnesota Mining & Mfg Method and apparatus for manufacturing an electret filter medium

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3067119A (en) * 1960-02-11 1962-12-04 American Viscose Corp Surface treatment of films
DE1460636A1 (en) * 1962-08-16 1969-04-30 Robert Levaux Treatment process for textile materials and device for carrying out the process
US3779882A (en) * 1971-04-01 1973-12-18 Union Carbide Corp Electrode method for the surface treatment of thermoplastic materials
FR2337022A1 (en) * 1975-12-30 1977-07-29 Windmoeller & Hoelscher Treatment of fabrics to increase adhesion of ink or adhesive - with two HF HT electrodes both with dielectric (NL 4.7.77)
EP0060687A2 (en) * 1981-03-12 1982-09-22 JOHNSON & JOHNSON MEDICAL, INC. Method of making fibrous electrets
DE3115958A1 (en) * 1981-04-22 1982-12-16 Hahne, Ernst August, 4123 Allschwill Method of moistening a flexible base material, preferably in web form, and apparatus for carrying out the method
JPS58222118A (en) * 1982-06-17 1983-12-23 Mitsubishi Paper Mills Ltd Method and apparatus for corona discharge treatment
WO1984003193A1 (en) * 1983-02-04 1984-08-16 Minnesota Mining & Mfg Method and apparatus for manufacturing an electret filter medium

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
PATENT ABSTRACTS OF JAPAN vol. 008, no. 071 (C - 217) 3 April 1984 (1984-04-03) *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7700500B2 (en) 2002-12-23 2010-04-20 Kimberly-Clark Worldwide, Inc. Durable hydrophilic treatment for a biodegradable polymeric substrate
WO2005115063A1 (en) * 2004-05-20 2005-12-01 Universidade Do Minho Continuous and semi-continuous treatment of textile materials integrating corona discharge

Also Published As

Publication number Publication date
MX9801521A (en) 1998-05-31
CA2228606A1 (en) 1997-04-03
AU6725196A (en) 1997-04-17

Similar Documents

Publication Publication Date Title
AU2004281321B2 (en) Method and device for impregnating a fibrous web with a powder using an alternating electrostatic field
Huda et al. Composites from ground chicken quill and polypropylene
Tsai et al. Surface modification of fabrics using a one-atmosphere glow discharge plasma to improve fabric wettability
US6066286A (en) Method of sulfonating polymers
US5688465A (en) Method of corona treating a hydrophobic sheet material
US6239047B1 (en) Wettable soft polyolefin fibers and fabric
CA2067925A1 (en) Method for producing electret filter
US3459627A (en) Nonwoven fabric with columnar bonds
WO1997011834A1 (en) Method of corona treating a hydrophobic sheet material
KR970007341B1 (en) Self-supporting sheet-like article with superior antistatic characteristics
US20080156428A1 (en) Process For Bonding Substrates With Improved Microwave Absorbing Compositions
Zakaria et al. Enhancing the properties of textile fabrics using plasma technology
MXPA98001521A (en) Method of treatment with crown of a hidrofob leaf material
EP0924239A1 (en) Durable hydrophilic coating for textiles
Shishoo Plasma treatment—industrial applications and its impact on the C&L industry
EP0833978B1 (en) Modified polymeric material having improved wettability
CN112981931B (en) Method for improving performance of organic-inorganic composite material
US5645919A (en) Self-supporting sheet-like structure having at least one structured surface
KR20080006542A (en) Priming and Coating Process
WO1996037276A1 (en) Filter matrix
DE19517210B4 (en) Molded part and method for its production
Neznakomova et al. Non-woven composites intensification properties for air filters by plasma pre-treatment
AU717573B2 (en) Sulfonated polymers and method of sulfonating polymers
JPH05253416A (en) Method for manufacturing electret filter
Javid et al. Engineering of surface properties of polypropylene nonwovens through oxygen plasma for enhanced color yield of pigment prints

Legal Events

Date Code Title Description
AK Designated states

Kind code of ref document: A1

Designated state(s): AL AM AT AU AZ BB BG BR BY CA CH CN CZ DE DK EE ES FI GB GE HU IL IS JP KE KG KP KR KZ LK LR LS LT LU LV MD MG MK MN MW MX NO NZ PL PT RO RU SD SE SG SI SK TJ TM TR TT UA UG UZ VN AM AZ BY KG KZ MD RU TJ TM

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): KE LS MW SD SZ UG AT BE CH DE DK ES FI FR GB GR IE IT LU MC NL PT SE BF BJ CF CG CI CM GA GN

DFPE Request for preliminary examination filed prior to expiration of 19th month from priority date (pct application filed before 20040101)
121 Ep: the epo has been informed by wipo that ep was designated in this application
WWE Wipo information: entry into national phase

Ref document number: PA/a/1998/001521

Country of ref document: MX

ENP Entry into the national phase

Ref document number: 2228606

Country of ref document: CA

Ref country code: CA

Ref document number: 2228606

Kind code of ref document: A

Format of ref document f/p: F

REG Reference to national code

Ref country code: DE

Ref legal event code: 8642

122 Ep: pct application non-entry in european phase