COMPOSITE FABRIC, METHOD FOR FORMING COMPOSITE FABRIC, AND USE OF A COMPOSITE MATTER FABRIC
20210071355 ยท 2021-03-11
Inventors
- Scott N. Sheftel (Tucson, AZ, US)
- Jeffry B. Skiba (Chandler, AZ, US)
- Stanley N. Sheftel (Akron, OH, US)
Cpc classification
H01M4/62
ELECTRICITY
A61N1/0452
HUMAN NECESSITIES
B29C48/21
PERFORMING OPERATIONS; TRANSPORTING
D06M2101/20
TEXTILES; PAPER
D06M11/83
TEXTILES; PAPER
D06M11/74
TEXTILES; PAPER
Y02E60/10
GENERAL 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
A61N1/0496
HUMAN NECESSITIES
B29C48/16
PERFORMING OPERATIONS; TRANSPORTING
B29C48/022
PERFORMING OPERATIONS; TRANSPORTING
International classification
D06M11/74
TEXTILES; PAPER
B29C48/00
PERFORMING OPERATIONS; TRANSPORTING
B29C48/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A cloth article formed of a thermoplastic or thermosetting material containing particles of metal disbursed there through. More particularly, there is disclosed a fiber material formed of a thermoplastic or thermosetting material containing particles of metal dispersed intermittently within the fiber material during fiber formation, wherein the particles of metal are exposed at least in part on a surface of the fiber material, wherein the fiber material also includes carbon fiber nanotubes added to the fiber material, and wherein the fiber material is woven into a fabric and the fabric is formed into a cloth article.
Claims
1. A cloth article formed of a reinforced fabric material formed of polyethylene fibers containing particles of metal and carbon fiber nanotubes dispersed intermittently within the polyethylene fibers during fiber formation, wherein the particles of metal are selected from the group consisting of elemental zinc particles, zinc oxide particles, wherein the particles have a size range of 1-200 microns, and wherein the particles comprise between 40-60 volume % of the polyethylene fibers, and are exposed at least in part on a surface of the polyethylene fibers, wherein the reinforced fabric material is formed by co-extruding polyethylene fibers with a core fiber formed of a different thermoplastic material or with a thermosetting material, wherein the polyethylene fibers contain particles of metal exposed on a surface of the polyethylene fibers wherein the cloth article is configured to be in direct contact with the skin of a user, at least in part, wherein the particles are arranged so that the fabric in contact with the skin of the wearer forms a plurality of half-calls of an air-zinc battery, and wherein the cloth article is selected from a group consisting of socks, gloves, headbands, caps, scarves, face masks, respirators, hats, t-shirts, leggings, tights, underwear, underarm and under bra inserts bras, and compression clothing and elastic bandages and wraps, sheets and pillowcases, towels and drapes, in which the particles of metal exposed at least in part on the surface of the polyethylene fibers contact the skin of the user.
2. The cloth article of claim 1, wherein the particles of metal have a particle size range of 1-100 microns.
3. The cloth article of claim 1, wherein the reinforced fabric material comprises polyethylene fiber sections containing the particles of metal and polyethylene fiber sections devoid of particles of metal.
4. The cloth article of claim 1, wherein the reinforced fabric material further includes a drug carried by/on the carbon fiber nanotubes.
5. The cloth article of claim 1, wherein the particles of metal have a particle size range of 2-100 microns.
6. The cloth article of claim 1, wherein the particles of metal have a particle size range of 2-10 microns.
7. The cloth article of claim 2, wherein the particles of metal have a particle size range of 1-10 microns.
8. The cloth article of claim 2, wherein the particles of metal have a particle size range of 5-6 microns.
9. The cloth article of claim 1, wherein the zinc particles are arranged in a plurality of evenly spaced lines.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Further features and advantages of the present invention will be seen from the following detailed description, taken in conjunction with the accompanying drawings, wherein like numerals depict like parts, and wherein:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE INVENTION
[0027] In the following description, the term metal particles may include elemental metal particles of metals capable of forming metal-air electrochemical cells, and oxides and salts thereof. Preferred are zinc metal particles and oxides and salts thereof, although other metals and oxides and salts thereof may be used including aluminum, iron, copper, or magnesium.
[0028] The term fibers may comprise both natural and synthetic fibers, filaments and threads, although synthetic fibers are preferred, in particular, fibers formed of thermoplastic or thermosetting plastic materials.
[0029] As used herein metal filled fibers means fibers, having metal particles carried on or within the fibers, and in which the metal particles are at least in part exposed to air.
[0030] The present invention provides a method forming metal particle filled fibers suitable for weaving or knitting into cloth for use in treating hyperhidrosis or neuropathy, or other conditions according to our prior '761 and '172 patents, incorporated herein by reference, and other conditions as above discussed. More particularly, the present invention provides a method for producing metal particle containing fibers that are capable of standing up to washing (at least 20 washes) abrasion resistance, and have the ability to release ions when in contact with a patient's skin.
[0031] Referring to
[0032] Referring to
[0033] Referring to
[0034] The underbra insert fabric 110, as illustrated in the embodiment of
[0035] Preferably, but not necessarily, the fabric 110 comprises a woven textile, a non-woven textile, a fibrous mesh, a non-fibrous mesh, a textile mesh, or the like. In one embodiment, the fabric may comprise a polymeric film or a polymeric coating. In an embodiment, the fabric may be interwoven with elastic fibers, elastic bands, or metallic fibers. In certain embodiments, the fabric is electrically conductive or electrically non-conductive.
[0036] In certain embodiments, fabric 110 is permeable to ambient air. In certain embodiments, the plurality of individual metal deposition areas 120 comprise elemental zinc particles.
[0037] In one embodiment, the device includes a fastener configured to attach the device or the underbra insert 100 to the skin surface or to the surface of a cloth article. For example, referring again to
[0038] In an embodiment, the surface of the fabric 110 including the plurality of metal deposition areas 120 further comprises an adhesive for attachment of the fabric to the skin surface. In an embodiment, the fabric of the device is flexible and/or conformable to the skin surface. In certain embodiments, the fabric of the device is compressive to the skin surface, for example and without limitation, a sock, a glove, a headband, or an elastic bandage or wrap.
[0039] In an embodiment, the fabric of the device comprises a cloth article. For example, the fabric includes at least one member selected from the group consisting of a sock, a glove, a scarf, a headband, a cap, a hat, a face mask, a respirator, a t-shirt, a bra, an underarm or underbra insert, pants, sleeves, underwear (undergarment clothing in contact with the skin), or compression clothing such as ankle, arm or knee sleeves, shorts and shirts, or sheets and pillowcases, towels and drapes.
[0040] In certain embodiments, zinc is utilized as a powdered elemental crystal. In certain embodiments, the zinc utilized has a purity of about 99.99 percent however, zinc is available in other purities and particle sizes as defined by the user. In certain embodiments, the zinc comprises a 325 mesh size. As those skilled in the art will appreciate, particles passing through a 325 mesh are considered the fines.
[0041] In certain embodiments, the zinc particles are very uniform in size. In certain embodiments, the zinc particle size distribution is between about 4 microns to about 10 microns in diameter. These individual particle crystals approach the visible range and are easily seen as shiny crystals on the surface.
[0042] In certain embodiments, Applicants' socks comprise a woven fabric. In certain embodiments, Applicants' cloth articles are formed of a non-woven fabric. In certain embodiments, Applicants' cloth articles are formed of a braided fabric. In certain embodiments, Applicants' cloth articles comprise a polymeric fabric. In certain embodiments, Applicants' cloth articles are permeable to ambient oxygen.
[0043] The present invention is unique in that the zinc pattern grid creates a matrix of individual half-cells (anodes) for ion exchange with the skin. One-half cell of electrochemical reaction is the zinc impregnated fabric (the anode), and the other is the skin of the human or animal, supplying moisture and oxygen (the cathode) completing the circuit for microcurrent production. Alternatively, the oxygen may be supplied, in part, from ambient air.
[0044] The chemistry of Zinc-air batteries is instructive. Such batteries are powered by oxidizing zinc with oxygen from the air. During discharge, zinc particles form a porous anode, which is saturated with an electrolyte, namely sweat. Oxygen from the air reacts at the cathode and forms hydroxyl ions which migrate into the zinc paste and form zinc hydroxide Zn(OH).sub.2, releasing electrons to travel to the cathode.
[0045] The chemical equations for the zinc-air battery formed using Applicants' zinc-coated socks and ambient oxygen include:
Anode: Zn+4OH.sup..fwdarw.Zn(OH).sub.4.sup.2+2e.sup.(E.sub.0=1.25 V)
Fluid: Zn(OH).sub.4.sup.2.fwdarw.ZnO+H.sub.2O+2OH.sup.
Cathode: O.sub.2+H.sub.2O+2e.sup..fwdarw.2OH.sup.(E.sub.0=0.34 V)
[0046] Overall, the zinc oxygen redox chemistry recited immediately hereinabove comprises an overall standard electrode potential of about 1.59 Volts.
[0047] There is a certain amount of gas exchange at the skin surface with a partial pressure of oxygen. The oxygen at the skin surface is a product of ambient oxygen in addition to oxygen diffusion from capillary blood flow. In certain embodiments, the zinc in contact with a patient's skin resulting from wearing, for example, our zinc-containing socks, in combination with sweat and transcutaneous oxygen complete the galvanic circuit described hereinabove.
[0048] The chemistry utilized by Applicants' zinc-coated cloth articles socks differs from a more conventional galvanic cell. A galvanic cell, or voltaic cell is an electrochemical cell that derives electrical energy from spontaneous redox reactions taking place within the cell. It generally consists of two different metals connected by a salt bridge, or individual half-cells separated by a porous membrane. In contrast, the chemistry of Applicants' zinc-air battery does not require use of a second metal. Applicants' method to treat hyperhidrosis utilizes elemental zinc particles disposed onto a fabric, where the elemental zinc particles are in contact with the skin. In certain embodiments, other than elemental zinc metal and zinc oxides formed therefrom, no other or additional metals or metal oxides are needed or are utilized in Applicants' method and device.
[0049] In certain embodiments, a method for treating hyperhidrosis includes disposing onto a skin surface a device including a fabric having elemental zinc particles disposed thereon. The fabric is configured to contact the skin and to generate an electric current and metal ions when oxidized by ambient oxygen. The generation of such an electric current results in reducing the amount of sweat disposed on the skin surface thereby providing a treatment for hyperhidrosis.
[0050] In certain embodiments, Applicants' method for treating hyperhidrosis includes generating an electric current on the skin surface resulting in a reduction of an amount of sweat released by the skin. For example, in a non-limiting embodiment, the method includes contacting a skin surface with elemental zinc particles disposed on at least a portion of the fabric or flexible substrate.
[0051] The method described herein may include any of the fabric and metal materials previously described with respect to the exemplary device described herein,
[0052] Various changes may be made in the above invention without departing from the spirit and scope. For example, the fibers may be co-extruded to have a center or core of the same or dissimilar polymer with the metal filled polymer on the outside of the fiber. Or, the metal filled polymer may be intermittently dispersed into discrete reservoirs within the fiber during fiber formation. And, we can overcome prior art limitations of fiber manufacturing with the addition of carbon fiber nanotubes (hollow-tubes) that can provide increased tensile strength as well as the antimicrobial nature of the hollow tubes. In addition we can add prior to fiber manufacturing additives such as carbon fiber nanotubes carrying drugs to target specific cells within the host. These fibers, once spun into threads or yarns and manufactured in to a fabric will contact the target tissue closely. Also, the amount of metal particles in the fibers may be adjusted to adjust the capacity or voltage of the air battery in the thread or yarn.