US20130216829A1 - Method and apparatus for making an improved high surface area fiber - Google Patents

Method and apparatus for making an improved high surface area fiber Download PDF

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Publication number
US20130216829A1
US20130216829A1 US13/850,362 US201313850362A US2013216829A1 US 20130216829 A1 US20130216829 A1 US 20130216829A1 US 201313850362 A US201313850362 A US 201313850362A US 2013216829 A1 US2013216829 A1 US 2013216829A1
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Prior art keywords
fiber
winged
cross
middle region
micrometers
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US13/850,362
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Behnam Pourdeyhimi
Walter Chappas
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North Carolina State University
Allasso Industries Inc
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North Carolina State University
Allasso Industries Inc
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Application filed by North Carolina State University, Allasso Industries Inc filed Critical North Carolina State University
Priority to US13/850,362 priority Critical patent/US20130216829A1/en
Publication of US20130216829A1 publication Critical patent/US20130216829A1/en
Assigned to NORTH CAROLINA STATE UNIVERSITY, ALLASSO INDUSTRIES, INC. reassignment NORTH CAROLINA STATE UNIVERSITY ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: CHAPPAS, WALTER, POURDEYHIMI, BEHNAM
Abandoned legal-status Critical Current

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    • D02G3/22Yarns or threads characterised by constructional features, e.g. blending, filament/fibre
    • D02G3/34Yarns or threads having slubs, knops, spirals, loops, tufts, or other irregular or decorative effects, i.e. effect yarns
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Definitions

  • the present invention relates generally to high surface area fibers and textiles made from the same. Further, the present invention relates to high surface area fibers made from a bicomponent fiber extrusion process.
  • Fibers capable of absorbing and filtering liquids or particles are known in the art. Fiber surfaces are often treated chemically or physically to enhance their ability to hold liquids or particles. For instance, in order to increase the surface area of a fiber the surfaces are made rough to create grooves and channels. Some absorbent fibers known in the art are treated with hydrophobic or hydrophilic chemicals, which affects fluid flow.
  • FIG. 1 is a cross-sectional view of the 4DG fiber, also known as surface capillary fibers.
  • the prior art fiber of FIG. 1 discloses one set of at least three arms that project from one side of the spine to define a first set of grooves, and a second set of at least three arms that project from a second side of the spine to define a second set of grooves.
  • the arms and grooves of the prior art fiber have an irregular geometry so as to create grooves that are deep and narrow enough to transport fluids along the length of the fiber by capillary action.
  • the prior art fiber of FIG. 1 has a large denier which limits its use in certain applications for which nano-fibers are required.
  • the 4DG fiber seeks to increase the depth of the grooves by providing a fiber with a specific cross-sectional geometry.
  • many such fibers cannot be spun to fiber diameters less than about 50 to 60 microns, thereby restricting their potential applications.
  • the minimum denier attainable with the 4DG fiber is approximately 3.
  • the arms due to the large grooves between the arms of the fiber, the arms often break during the spinning process.
  • Such fibers have a limited number of arms and grooves resulting in a relatively low surface to volume ratio, which restricts the amount of fluid that can be absorbed.
  • the arms can easily interlock during fabric formation resulting in dense and compressed materials, which diminishes its filtration and absorption properties.
  • Such fibers utilize multiple legs, typically 8, to form deep channels on the surface.
  • the surface of these fibers can be treated with appropriate treatments that accommodate and facilitate fluid flow more readily and are therefore useful for fluid movement.
  • Many of these fibers have a higher degree of bulk density and are therefore suitable for insulation applications. Since the arms can capture and trap particles, they are further useful for filtration applications or for surface treatments to activate the surface.
  • Fibers with surface grooves are produced using special spinnerets as single component fibers.
  • the fibers are extruded and melted, delivering the molten polymer through spin beams and the spinneret capillaries to form the desired shape.
  • the fibers are then quenched upon the exit from the spinneret and drawn subsequently to form a stronger and finer fiber.
  • Most fibers used today are between 1 and 3 denier per filament, however most fibers with the increased surface areas as discussed above are currently typically available in 6 denier or larger. Fibers with deniers of 6 or larger are extremely coarse, more difficult to process, and are therefore, limited in their use.
  • the present invention discloses a fiber with an increased surface area and multiple surface channels, while maintaining a similar denier.
  • An embodiment of the present invention includes a method of making a high surface area fiber that includes co-extruding an internal fiber and a dissolvable external sheath through at least one plate. The resulting fiber is then washed with a solvent to remove the dissolvable external sheath. The resulting fiber has a longitudinal axis and a cross-section, the cross-section having a middle region and between 16 and 32 projections extending from the middle region.
  • Another embodiment of the present invention also includes a method of making a high surface area fiber that includes co-extruding an internal fiber and a dissolvable external sheath through at least one plate. The resulting fiber is then washed with a solvent to remove the dissolvable external sheath. The resulting fiber has a longitudinal axis and a cross-section, the cross-section having a middle region and a plurality of projections extending from the middle region, the plurality of projections defining a plurality of channels that have a width between 200 nanometers and 500 nanometers.
  • Yet another embodiment of the present invention includes a method of making a high surface area fiber that includes co-extruding an internal fiber and a dissolvable external sheath through at least one plate. The resulting fiber is then washed with a solvent to remove the dissolvable external sheath. The resulting fiber has a longitudinal axis and a cross-section, the cross-section having a middle region and a plurality of projections extending from the middle region, and has a specific surface area of at least 80,000 square centimeters per gram.
  • the present invention provides a high surface area fiber made from a bicomponent extrusion process for woven and non-woven applications.
  • FIG. 1 is a cross-sectional perspective view of a prior art fiber.
  • FIG. 2 is a cross-sectional view of a fiber with an external sheath, in accordance with one embodiment of the present invention.
  • FIG. 3 is a cross-sectional view of a single fiber, in accordance with one embodiment of the present invention.
  • FIG. 4 is a cross-sectional view of a fiber without the external sheath, in accordance with one embodiment of the present invention.
  • FIG. 5 is a cross-sectional view of the fiber having a circular configuration, in accordance with one embodiment of the present invention.
  • FIG. 6 is a cross-sectional view of a non-woven fabric, in accordance with one embodiment of the present invention.
  • FIG. 7 is a cross-sectional view of a non-woven fabric of the prior art.
  • FIG. 8 is a graph comparing the denier per filament versus the specific surface areas for a round fiber, a 4DG fiber, and a fiber of the present invention.
  • FIGS. 2-4 disclose a cross-section of the fiber of the present invention generally designated by the reference numeral 10 .
  • the fiber 10 generally comprises an internal fiber 12 and an external sheath 14 .
  • the fiber 10 is generally constructed from two different polymer compositions that can be extruded in an oval cross-section, which allows for high processability.
  • the cross-section can be circular or other shapes as desired. The extrusion process and the method of making the fiber 10 of the present invention are described in greater detail below.
  • the cross-section of the internal fiber 12 has a generally winged-shape, or amoeba-like shape.
  • the internal fiber 12 has a middle region 16 , which is the longitudinal axis 17 that runs down the center of the internal fiber 12 .
  • the longitudinal axis 17 has a plurality of projections 18 that extend from the longitudinal axis 17 , which are depicted in FIGS. 2-4 .
  • the plurality of projections extend along the periphery of the longitudinal axis 17 .
  • Alternative cross-sectional shapes such as but not limited to a circular-shape or the like, would have the middle region 16 formed as a hub where the projections extend from the hub.
  • the plurality of projections are uniformly spaced.
  • the plurality of projections 18 increase the surface areas and surface capillaries for a single fiber.
  • the plurality of projections 18 define a plurality of channels 20 , as shown in FIG. 4 .
  • the plurality of channels 20 are uniformly spaced.
  • the channels 20 create a surface capillary portion along the length of the fiber 10 that facilitates the absorption of liquids within the fiber 10 .
  • the channels 20 allow particles, such as debris and dirt, to be picked-up and retained within the fiber 10 .
  • the fiber of the present invention has a plurality of longitudinal capillary channels 21 that extend along the length of the fiber as shown in FIG. 3 .
  • the present invention also drastically increases the surface area of the cross-section of the internal fiber 12 due to the plurality of projections 18 .
  • the increased surface area created by the internal fiber 12 depends on the number of segments that are used during the manufacturing of the fiber 10 , which is discussed in detail below.
  • the channels 20 are nano-sized, having a width of about 200 nanometers.
  • the channels 20 could be between 200 nanometers to 1000 nanometers.
  • the width of the channels 20 can be modified to fit different applications.
  • the nano-sized channels of the present invention allow the fiber 10 to be used in applications where micro-filtration or micro-absorption is necessary. For example, certain filtration mechanisms require a channel size of about 300 nanometers.
  • the present invention can be used to create a textile fabric having fibers with different channel sizes.
  • a textile fabric such as a filter could comprise fiber bundles having 200 nanometer channels and 500 nanometer channels.
  • the channels have a width of about 200 nanometers there are about 32 projections 18 extending from the middle section 16 .
  • the internal fiber 12 is a thermoplastic polymer known in the art. Any number of thermoplastic polymers can be used, such as but not limited to, polypropylene, polyester, nylon, polyethylene, thermoplastic urethanes (TPU), copolyesters, or liquid crystalline polymers.
  • thermoplastic polymers such as but not limited to, polypropylene, polyester, nylon, polyethylene, thermoplastic urethanes (TPU), copolyesters, or liquid crystalline polymers.
  • the cross-section of the fiber is highly flexible and has a solid interior.
  • the interior, or middle region part of the internal fiber is a void.
  • the void in the center forms an added channel for fluid flow.
  • FIG. 5 shows a cross-section of a fiber of the present invention missing the middle region 16 of the internal fiber 12 .
  • the middle region 16 of the internal fiber 12 can be formed into a circular configuration during the extrusion process.
  • This void allows the internal fiber 12 to be more rigid and have more bending resistance because of the void in the center. Additionally, the void in the center forms an added channel for fluid flow. A fiber with a circular cross section with a void will have a lower tendency to bend over itself.
  • FIG. 2 shows a cross-sectional view of the fiber 10 with the external sheath 14 .
  • the external sheath 14 is a dissolvable thermoplastic, such as but not limited to, polyactide (PLA), co-polyester (PETG), polyvinyl alcohol (PVA), or ethylene-vinyl alcohol copolymer (EVOH). It is contemplated that any number of dissolvable thermoplastics known in the art may be used as the external sheath 14 in connection with the present invention.
  • the external sheath 14 encompasses the internal fiber 12 as shown in FIG. 2 .
  • One aspect of the present invention is increasing the surface area of the fiber, while maintaining the denier of the fiber between 1 and 3.
  • the denier of the fiber is about 1.0 to about 2.0.
  • the denier of the fiber can range from about 1.0 to about 20.0.
  • Denier is the unit used to measure the fineness of yarns, and is equal to the mass in grams of 9,000 meters of yarn.
  • the specific surface area for a one (1) denier fiber is about 28,000 and about 200,000 cm2/g.
  • the specific surface area in terms of cm2/g of a fiber is measured by the following equation:
  • the specific surface area of the preferred embodiment of the present invention is about 57-60 times greater than a typical 4DG fiber known in the art. As shown in FIG. 8 , the specific surface area of a fiber of the present invention is significantly greater than a traditional round fiber or a typical 4DG fiber having the same denier. For example, a round fiber with a denier of 3 has a specific surface area of 1653 cm2/g. A 4DG fiber with a denier of 3 has a specific surface area of 4900 cm2/g. In contrast, a fiber of the present invention with a denier of 3 has a specific surface area of over about 80,000 cm2/g. In one embodiment of the present invention, the cross-section of the internal fiber has a specific surface area of about 140,000 cm2/g or higher.
  • the present invention achieves a large specific surface area because of the unique geometry of the plurality of projections and the plurality of channels. While the preferred embodiment of the present invention has a fiber denier of about 1.0 to about 2.0, the above comparison was chosen because the 4DG fiber is not capable of being produced with a denier below 3.
  • the internal fiber 12 has a cross-sectional length of about 20 micrometers and a cross-sectional width of about 10 micrometers, which yields a fiber having a denier of about 1.5. Denier refers to the linear density of the fiber and is the weight in grams for a fiber measuring 9,000 meters.
  • the internal fiber 12 has a cross-sectional length of about 10 micrometers and the width of about 10 micrometers.
  • the internal fiber 12 of the present invention may have a cross-sectional length of about 1 micrometer to about 100 micrometers and a cross-sectional length of about 1 micrometer to about 100 micrometers.
  • the fiber could have a denier of 3 or more, which would provide larger fiber with significantly large surface areas.
  • the method of making the fiber of the present invention uses extrusion techniques known in the art.
  • bicomponent fibers are formed by coextruding or, extruding two polymers from the same spinneret with both polymers contained in the same filament or fiber.
  • the extrusion process forces thick, viscous polymers through a spinneret to form semi-solid fibers.
  • the extrusion system will form the fibers as described by directing and channeling the two polymers appropriately, resulting in a more uniform shape.
  • the number of holes on the plates correspond to the number of segments present in the fiber.
  • These filaments are then solidified.
  • the preferred embodiment of the present invention uses melt spinning to form the fibers, however other methods known in the art can be used.
  • a segmented pie extrusion system can be used to form fibers with projections extending from the longitudinal axis by a careful selection of the two polymers and control of the extrusion process.
  • the method of making the preferred embodiment begins by extruding a bicomponent fiber comprising a thermoplastic polymer, the internal fiber, and a dissolvable thermoplastic polymer, the external sheath.
  • the bicomponent fiber is extruded through a spinneret having any number of desired holes and cross-sectional shapes.
  • the cross-section of the spinneret is oval for high processability, alternatively a round cross-section can also be used, or other desired shapes.
  • the final cross-sectional shape of the fiber is determined by the number of segments formed from the extrusion process.
  • the segments resemble pie-pieces, called a “segmented-pie” bicomponent fiber.
  • Typical fibers of the prior art are formed from 16 segments, however in order to achieve the high surface area cross-section of the present invention, the fiber must have at least 4 segments.
  • the extruded bicomponent fiber has at least 4 segments.
  • the winged-shape cross-section of the internal fiber yields extremely high surface areas because it is formed from a bicomponent fiber having 64 segments.
  • a caterpillar-like shape, as shown in FIGS. 2-4 was an unexpected result generated by a 64 segmented-pie extrusion. It is difficult to form a bicomponent fiber having more than 24 segments and the prior art fibers are limited in the number of segments they can have.
  • One way to control the shape and the size of the segments is by changing the temperature, viscosity, or pressure of the bicomponent fiber during the extrusion process. Melt spinning allows fibers to be extruded from the spinneret in different cross-sectional shapes, such as round, trilobal, pentagonal, octagonal, and other shapes.
  • the bicomponent segments of one embodiment of the present invention resemble a segmented pie having anywhere up to 64 pie segments.
  • the segments alternate between the internal fiber and the dissolvable external sheath. It is important that the segments alternate because once the external sheath is washed and removed, the remaining segments define the plurality of projections that form the basis for absorption and filtration. The number of projections is directly proportional to the total surface area generated. Therefore, fibers with precise and pre-determined surfaces can be formed.
  • the bicomponent fiber after the bicomponent fiber is extruded and melt spun, can be formed into a textile product.
  • the textile product comprises fiber media that is made of a bicomponent fiber.
  • the bicomponent fiber can be bonded together to form a nonwoven fabric, such as a filter.
  • the bicomponent fiber can be formed into a woven fabric, such as a garment.
  • One of the advantages of the present invention is that the external sheath does not have to be removed until after the textile media is made. This enhances handling of the fiber and reduces costs associated with manufacturing.
  • FIG. 6 shows a non-woven fabric of the present invention and illustrates how the winged-shaped fibers assemble together. As shown in FIG.
  • the fibers can be compressed closely together to form bundles without interlocking when they are placed adjacent to each other due to the geometry of the fiber and the size of the channels. Additionally, because the textile fabric can be constructed when the external sheath is still on, the sheath further prevents the fibers from interlocking with one another.
  • FIG. 7 shows a prior art fabric in which the fibers interlock. Because the fibers of the present invention do not interlock like other fibers known in the prior art, the effectiveness of the channels of the present invention is not compromised and remains available for absorption or filtration. The external component can be removed after the final product is formed. Therefore, the fibers of the present invention and their projections cannot interlock.
  • the fabric is washed with a solvent such as, but not limited to, NaOH, acids or in the case of water dispersible polymers such as Exceval, water is used in order to remove the soluble external sheath.
  • a solvent such as, but not limited to, NaOH, acids or in the case of water dispersible polymers such as Exceval, water is used in order to remove the soluble external sheath.
  • the bicomponent fiber can be washed prior to forming the textile product if desired.
  • the fibers can be bonded by using several different techniques including thermal, chemical, or mechanical bonding.
  • the nonwoven fabric is formed by using hydroentanglement, which is a mechanism used to entangle and bond fibers using hydrodynamic forces.
  • nonwovens can be created by needle punching which mechanically orientates and interlocks the fibers of a spunbound or carded web. Needle punching is achieved with thousands of barbed felting needles repeatedly passing into and out of the web. Needle punching and hydroentanglement form a dense structure so that when the external sheath is removed, the wings will release in place forming a structure with high permeability. The ultimate application of the fabric will determine which bonding technique should be utilized.
  • the nonwoven fabric can be made using spunbound fibers that are randomly interlocked fibers, but not woven. If the non-woven fabric is needed to filter smaller particles, then it can be made from melt blown fibers, which uses high velocity air or another appropriate force to bind the fibers together.
  • filaments can be extruded, and said filaments can be crimped and cut into staple fibers from which a web can be formed and then bonded by one or more of the methods described above to form a nonwoven. Same staple or filament fibers can be used to form woven, knitted or braided structures as well.
  • staple nonwoven fabrics can be constructed by spinning the bicomponent fiber and cutting the length of the fiber into short segments and put into bales. The bales are then spread in a uniform web by a wetlaid process or carding, and are subsequently bonded by thermo-mechanical means as known in the art
  • the fiber of the present invention can also be used to manufacture traditional woven fabrics for use in garments and the like. Because the fibers of the present invention are strong, they can be. used in traditional knitting and braiding techniques without compromising the integrity of the fiber.
  • the present invention discloses a high surface area fiber with a small denier that can be used in application for both woven and non-woven fabrics.
  • the fibers of the present invention have higher thermal insulation capabilities than traditional fibers known in the art, and form improved filtration mediums.
  • the fibers of the present invention are stronger, more flexible, and more breathable.
  • the winged-shaped fibers are compression resilient, the channels are not obstructed and have greater capillary/wicking abilities, as well as absorption capabilities. Additionally, these fibers have the ability to capture nano-sized particles.
  • the fibers of the present invention are strong and have shear resistance, the fibers can withstand high pressures and can be used in liquid filtrations as well as demanding aerosol filtration applications requiring high pressure. As such, the present invention provides for a high-efficiency low-pressure drop filter constructed from woven or nonwoven fabrics or fibers.
  • the present invention can be used in traditional woven applications, such as wicking garments, thermally insulating garments, comfort garments, sportswear and camping wear.
  • the present invention can be used in non-woven fabrics to produce filter media to filter liquids or air for cleaning rooms.
  • the present invention can be used with traditional round fibers to yield multi-layer fibers that can be combined using a spinneret or combined later in the manufacturing process. Combining or sandwiching the fibers of the present invention with traditional round fibers allows a single product to have multiple physical properties, and is cost effective.
  • the present invention can also be used for improved wipe materials.
  • wipes are primed with liquids before use, such as in baby wipes.
  • the present invention allows the ability to create a wipe product that will pick up dirt and dust particles without leaving behind any particles because the liquid in the channels of the fibers remains there while still dissolving and aiding the clean-up process.
  • the present invention can be used for hygiene and acoustic materials, thermal insulation, geotextile materials, construction materials, and compressive performance materials such as seat cushions and mattresses.

Abstract

The present invention is directed to a high surface area fiber and method for making the same. The fiber includes a co-extruded internal fiber and an external sheath that is washed with a solvent to remove the dissolvable external sheath, the resulting fiber having a longitudinal axis and a cross-section, the cross-section having a middle region and projections extending from the middle region.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application is a continuation of U.S. patent application Ser. No. 13/359,619, filed Jan. 27, 2012, which is a divisional application of U.S. patent application Ser. No. 11/592,370 filed Nov. 3, 2006, now U.S. Pat. No. 8,129,019, issued Mar. 6, 2012, which is incorporated herein by reference.
  • DESCRIPTION
  • 1. Field of the Invention
  • The present invention relates generally to high surface area fibers and textiles made from the same. Further, the present invention relates to high surface area fibers made from a bicomponent fiber extrusion process.
  • 2. Description of the Prior Art
  • Fibers capable of absorbing and filtering liquids or particles are known in the art. Fiber surfaces are often treated chemically or physically to enhance their ability to hold liquids or particles. For instance, in order to increase the surface area of a fiber the surfaces are made rough to create grooves and channels. Some absorbent fibers known in the art are treated with hydrophobic or hydrophilic chemicals, which affects fluid flow.
  • One such fiber that is used for absorption is the 4DG fiber developed by and commercially available from Eastman Chemical Company. Referring to the drawing of FIG. 1 is a cross-sectional view of the 4DG fiber, also known as surface capillary fibers. The prior art fiber of FIG. 1 discloses one set of at least three arms that project from one side of the spine to define a first set of grooves, and a second set of at least three arms that project from a second side of the spine to define a second set of grooves. The arms and grooves of the prior art fiber have an irregular geometry so as to create grooves that are deep and narrow enough to transport fluids along the length of the fiber by capillary action. Additionally, the prior art fiber of FIG. 1 has a large denier which limits its use in certain applications for which nano-fibers are required.
  • The 4DG fiber seeks to increase the depth of the grooves by providing a fiber with a specific cross-sectional geometry. However, there are several disadvantages to the 4DG fiber and other fibers having a similar configuration. Many such fibers cannot be spun to fiber diameters less than about 50 to 60 microns, thereby restricting their potential applications. The minimum denier attainable with the 4DG fiber is approximately 3. Furthermore, due to the large grooves between the arms of the fiber, the arms often break during the spinning process. Such fibers have a limited number of arms and grooves resulting in a relatively low surface to volume ratio, which restricts the amount of fluid that can be absorbed. Finally, due to the size and geometry of the 4DG fiber, the arms can easily interlock during fabric formation resulting in dense and compressed materials, which diminishes its filtration and absorption properties.
  • There have been many attempts in the past to create special fibers with deep grooves or channels on the surface to promote surface capillary properties. Such fibers utilize multiple legs, typically 8, to form deep channels on the surface. The surface of these fibers can be treated with appropriate treatments that accommodate and facilitate fluid flow more readily and are therefore useful for fluid movement. Many of these fibers have a higher degree of bulk density and are therefore suitable for insulation applications. Since the arms can capture and trap particles, they are further useful for filtration applications or for surface treatments to activate the surface.
  • Fibers with surface grooves are produced using special spinnerets as single component fibers. The fibers are extruded and melted, delivering the molten polymer through spin beams and the spinneret capillaries to form the desired shape. The fibers are then quenched upon the exit from the spinneret and drawn subsequently to form a stronger and finer fiber. However, because of the deep grooves or arms of the fibers, the fibers cannot be made into normal fiber sizes that are preferred and used by the industry. Most fibers used today are between 1 and 3 denier per filament, however most fibers with the increased surface areas as discussed above are currently typically available in 6 denier or larger. Fibers with deniers of 6 or larger are extremely coarse, more difficult to process, and are therefore, limited in their use.
  • Traditional single component round fibers are commonly used in the art. The cross-sectional design of a single component round fiber is typically a circle. One problem with single component round fibers is that in order to increase the surface area of the fiber per mass, the cross-sectional area also has to be reduced, requiring significant reduction in diameter to produce higher surface areas.
  • There is a need for a fiber with an increased surface area, at least 2 to 3 times the surface area of typical fibers known in the art, and with deep grooves or channels on the surface to promote surface capillary properties while maintaining a normal fiber size as used in the industry. The present invention discloses a fiber with an increased surface area and multiple surface channels, while maintaining a similar denier.
  • The present invention is provided to solve the problems discussed above and other problems, and to provide advantages and aspects not provided by prior fibers of this type. A full discussion of the features and advantages of the present invention is deferred to the following detailed description, which proceeds with reference to the accompanying drawings.
  • SUMMARY OF THE INVENTION
  • An embodiment of the present invention includes a method of making a high surface area fiber that includes co-extruding an internal fiber and a dissolvable external sheath through at least one plate. The resulting fiber is then washed with a solvent to remove the dissolvable external sheath. The resulting fiber has a longitudinal axis and a cross-section, the cross-section having a middle region and between 16 and 32 projections extending from the middle region.
  • Another embodiment of the present invention also includes a method of making a high surface area fiber that includes co-extruding an internal fiber and a dissolvable external sheath through at least one plate. The resulting fiber is then washed with a solvent to remove the dissolvable external sheath. The resulting fiber has a longitudinal axis and a cross-section, the cross-section having a middle region and a plurality of projections extending from the middle region, the plurality of projections defining a plurality of channels that have a width between 200 nanometers and 500 nanometers.
  • Yet another embodiment of the present invention includes a method of making a high surface area fiber that includes co-extruding an internal fiber and a dissolvable external sheath through at least one plate. The resulting fiber is then washed with a solvent to remove the dissolvable external sheath. The resulting fiber has a longitudinal axis and a cross-section, the cross-section having a middle region and a plurality of projections extending from the middle region, and has a specific surface area of at least 80,000 square centimeters per gram.
  • Thus, the present invention provides a high surface area fiber made from a bicomponent extrusion process for woven and non-woven applications.
  • These and other aspects of the present invention will become apparent to those skilled in the art after a reading of the following description of the preferred embodiment when considered with the drawings, as they support the claimed invention.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a cross-sectional perspective view of a prior art fiber.
  • FIG. 2 is a cross-sectional view of a fiber with an external sheath, in accordance with one embodiment of the present invention.
  • FIG. 3 is a cross-sectional view of a single fiber, in accordance with one embodiment of the present invention.
  • FIG. 4 is a cross-sectional view of a fiber without the external sheath, in accordance with one embodiment of the present invention.
  • FIG. 5 is a cross-sectional view of the fiber having a circular configuration, in accordance with one embodiment of the present invention.
  • FIG. 6 is a cross-sectional view of a non-woven fabric, in accordance with one embodiment of the present invention.
  • FIG. 7 is a cross-sectional view of a non-woven fabric of the prior art.
  • FIG. 8 is a graph comparing the denier per filament versus the specific surface areas for a round fiber, a 4DG fiber, and a fiber of the present invention.
  • DETAILED DESCRIPTION
  • In the following description, like reference characters designate like or corresponding parts throughout the several views. Also in the following description, it is to be understood that such terms as “forward,” “rearward,” “front,” “back,” “right,” “left,” “upwardly,” “downwardly,” and the like are words of convenience and are not to be construed as limiting terms. Referring now to the drawings in general, the illustrations are for the purpose of describing a preferred embodiment of the invention and are not intended to limit the invention thereto.
  • Referring to the drawings, FIGS. 2-4 disclose a cross-section of the fiber of the present invention generally designated by the reference numeral 10. As shown in FIG. 2, the fiber 10 generally comprises an internal fiber 12 and an external sheath 14. The fiber 10 is generally constructed from two different polymer compositions that can be extruded in an oval cross-section, which allows for high processability. Alternatively, the cross-section can be circular or other shapes as desired. The extrusion process and the method of making the fiber 10 of the present invention are described in greater detail below.
  • As further shown in FIGS. 2-4, the cross-section of the internal fiber 12 has a generally winged-shape, or amoeba-like shape. The internal fiber 12 has a middle region 16, which is the longitudinal axis 17 that runs down the center of the internal fiber 12. The longitudinal axis 17 has a plurality of projections 18 that extend from the longitudinal axis 17, which are depicted in FIGS. 2-4. In the preferred embodiment, the plurality of projections extend along the periphery of the longitudinal axis 17. Alternative cross-sectional shapes, such as but not limited to a circular-shape or the like, would have the middle region 16 formed as a hub where the projections extend from the hub. In one embodiment, the plurality of projections are uniformly spaced. The plurality of projections 18 increase the surface areas and surface capillaries for a single fiber. In the preferred embodiment, the plurality of projections 18 define a plurality of channels 20, as shown in FIG. 4. In one embodiment, the plurality of channels 20 are uniformly spaced. The channels 20 create a surface capillary portion along the length of the fiber 10 that facilitates the absorption of liquids within the fiber 10. Additionally, the channels 20 allow particles, such as debris and dirt, to be picked-up and retained within the fiber 10. Thus, the fiber of the present invention has a plurality of longitudinal capillary channels 21 that extend along the length of the fiber as shown in FIG. 3. The present invention also drastically increases the surface area of the cross-section of the internal fiber 12 due to the plurality of projections 18. The increased surface area created by the internal fiber 12 depends on the number of segments that are used during the manufacturing of the fiber 10, which is discussed in detail below.
  • Preferably, the channels 20 are nano-sized, having a width of about 200 nanometers. Alternatively, the channels 20 could be between 200 nanometers to 1000 nanometers. The width of the channels 20 can be modified to fit different applications. The nano-sized channels of the present invention allow the fiber 10 to be used in applications where micro-filtration or micro-absorption is necessary. For example, certain filtration mechanisms require a channel size of about 300 nanometers. Because the channel size for each fiber can be regulated, the present invention can be used to create a textile fabric having fibers with different channel sizes. For example, a textile fabric such as a filter could comprise fiber bundles having 200 nanometer channels and 500 nanometer channels. In one embodiment if the channels have a width of about 200 nanometers there are about 32 projections 18 extending from the middle section 16.
  • In the preferred embodiment of the present invention, the internal fiber 12 is a thermoplastic polymer known in the art. Any number of thermoplastic polymers can be used, such as but not limited to, polypropylene, polyester, nylon, polyethylene, thermoplastic urethanes (TPU), copolyesters, or liquid crystalline polymers.
  • In the preferred embodiment the cross-section of the fiber is highly flexible and has a solid interior. Alternatively, in one embodiment, the interior, or middle region part of the internal fiber is a void. The void in the center forms an added channel for fluid flow. FIG. 5 shows a cross-section of a fiber of the present invention missing the middle region 16 of the internal fiber 12.
  • Alternatively, in another embodiment, the middle region 16 of the internal fiber 12 can be formed into a circular configuration during the extrusion process. This void allows the internal fiber 12 to be more rigid and have more bending resistance because of the void in the center. Additionally, the void in the center forms an added channel for fluid flow. A fiber with a circular cross section with a void will have a lower tendency to bend over itself.
  • FIG. 2 shows a cross-sectional view of the fiber 10 with the external sheath 14. In the preferred embodiment the external sheath 14 is a dissolvable thermoplastic, such as but not limited to, polyactide (PLA), co-polyester (PETG), polyvinyl alcohol (PVA), or ethylene-vinyl alcohol copolymer (EVOH). It is contemplated that any number of dissolvable thermoplastics known in the art may be used as the external sheath 14 in connection with the present invention. In the preferred embodiment the external sheath 14 encompasses the internal fiber 12 as shown in FIG. 2.
  • One aspect of the present invention is increasing the surface area of the fiber, while maintaining the denier of the fiber between 1 and 3. In the preferred embodiment, the denier of the fiber is about 1.0 to about 2.0. However, alternatively, the denier of the fiber can range from about 1.0 to about 20.0.
  • Denier is the unit used to measure the fineness of yarns, and is equal to the mass in grams of 9,000 meters of yarn. In the preferred embodiment of the present invention, the specific surface area for a one (1) denier fiber is about 28,000 and about 200,000 cm2/g. The specific surface area in terms of cm2/g of a fiber is measured by the following equation:
  • Specific Surface Area = ? ( 4 π L ρ × Denier ) Where ? = Shape Factor = P 2 4 π ? where L = Length , K 9 × 10 ? cm ρ = Density , K 1.38 g cm ? Denier = Linear Density P = Perimeter A = Cross Sectional Area ? indicates text missing or illegible when filed
  • The specific surface area of the preferred embodiment of the present invention is about 57-60 times greater than a typical 4DG fiber known in the art. As shown in FIG. 8, the specific surface area of a fiber of the present invention is significantly greater than a traditional round fiber or a typical 4DG fiber having the same denier. For example, a round fiber with a denier of 3 has a specific surface area of 1653 cm2/g. A 4DG fiber with a denier of 3 has a specific surface area of 4900 cm2/g. In contrast, a fiber of the present invention with a denier of 3 has a specific surface area of over about 80,000 cm2/g. In one embodiment of the present invention, the cross-section of the internal fiber has a specific surface area of about 140,000 cm2/g or higher. The present invention achieves a large specific surface area because of the unique geometry of the plurality of projections and the plurality of channels. While the preferred embodiment of the present invention has a fiber denier of about 1.0 to about 2.0, the above comparison was chosen because the 4DG fiber is not capable of being produced with a denier below 3.
  • In the preferred embodiment, the internal fiber 12 has a cross-sectional length of about 20 micrometers and a cross-sectional width of about 10 micrometers, which yields a fiber having a denier of about 1.5. Denier refers to the linear density of the fiber and is the weight in grams for a fiber measuring 9,000 meters. In another embodiment, the internal fiber 12 has a cross-sectional length of about 10 micrometers and the width of about 10 micrometers. The internal fiber 12 of the present invention may have a cross-sectional length of about 1 micrometer to about 100 micrometers and a cross-sectional length of about 1 micrometer to about 100 micrometers. Alternatively, in another embodiment of the present invention the fiber could have a denier of 3 or more, which would provide larger fiber with significantly large surface areas.
  • The method of making the fiber of the present invention uses extrusion techniques known in the art. Typically, bicomponent fibers are formed by coextruding or, extruding two polymers from the same spinneret with both polymers contained in the same filament or fiber. The extrusion process forces thick, viscous polymers through a spinneret to form semi-solid fibers. In the preferred embodiment of the present invention, the extrusion system will form the fibers as described by directing and channeling the two polymers appropriately, resulting in a more uniform shape. The number of holes on the plates correspond to the number of segments present in the fiber. These filaments are then solidified. The preferred embodiment of the present invention uses melt spinning to form the fibers, however other methods known in the art can be used. For example, a segmented pie extrusion system can be used to form fibers with projections extending from the longitudinal axis by a careful selection of the two polymers and control of the extrusion process.
  • The method of making the preferred embodiment begins by extruding a bicomponent fiber comprising a thermoplastic polymer, the internal fiber, and a dissolvable thermoplastic polymer, the external sheath. The bicomponent fiber is extruded through a spinneret having any number of desired holes and cross-sectional shapes. In the preferred embodiment the cross-section of the spinneret is oval for high processability, alternatively a round cross-section can also be used, or other desired shapes.
  • Alternatively, the final cross-sectional shape of the fiber, the winged-shape as discussed above, is determined by the number of segments formed from the extrusion process. The segments resemble pie-pieces, called a “segmented-pie” bicomponent fiber. Typical fibers of the prior art are formed from 16 segments, however in order to achieve the high surface area cross-section of the present invention, the fiber must have at least 4 segments.
  • In one embodiment of the present invention, the extruded bicomponent fiber has at least 4 segments. Alternatively, in another embodiment of the present invention the winged-shape cross-section of the internal fiber yields extremely high surface areas because it is formed from a bicomponent fiber having 64 segments. A caterpillar-like shape, as shown in FIGS. 2-4, was an unexpected result generated by a 64 segmented-pie extrusion. It is difficult to form a bicomponent fiber having more than 24 segments and the prior art fibers are limited in the number of segments they can have.
  • One way to control the shape and the size of the segments is by changing the temperature, viscosity, or pressure of the bicomponent fiber during the extrusion process. Melt spinning allows fibers to be extruded from the spinneret in different cross-sectional shapes, such as round, trilobal, pentagonal, octagonal, and other shapes. The bicomponent segments of one embodiment of the present invention resemble a segmented pie having anywhere up to 64 pie segments. In the preferred embodiment the segments alternate between the internal fiber and the dissolvable external sheath. It is important that the segments alternate because once the external sheath is washed and removed, the remaining segments define the plurality of projections that form the basis for absorption and filtration. The number of projections is directly proportional to the total surface area generated. Therefore, fibers with precise and pre-determined surfaces can be formed.
  • In a preferred embodiment, after the bicomponent fiber is extruded and melt spun, the bicomponent fiber can be formed into a textile product. Alternatively, the textile product comprises fiber media that is made of a bicomponent fiber. The bicomponent fiber can be bonded together to form a nonwoven fabric, such as a filter. Alternatively, the bicomponent fiber can be formed into a woven fabric, such as a garment. One of the advantages of the present invention is that the external sheath does not have to be removed until after the textile media is made. This enhances handling of the fiber and reduces costs associated with manufacturing. FIG. 6 shows a non-woven fabric of the present invention and illustrates how the winged-shaped fibers assemble together. As shown in FIG. 6, the fibers can be compressed closely together to form bundles without interlocking when they are placed adjacent to each other due to the geometry of the fiber and the size of the channels. Additionally, because the textile fabric can be constructed when the external sheath is still on, the sheath further prevents the fibers from interlocking with one another. FIG. 7 shows a prior art fabric in which the fibers interlock. Because the fibers of the present invention do not interlock like other fibers known in the prior art, the effectiveness of the channels of the present invention is not compromised and remains available for absorption or filtration. The external component can be removed after the final product is formed. Therefore, the fibers of the present invention and their projections cannot interlock.
  • Once the textile product is formed, the fabric is washed with a solvent such as, but not limited to, NaOH, acids or in the case of water dispersible polymers such as Exceval, water is used in order to remove the soluble external sheath. Alternatively, the bicomponent fiber can be washed prior to forming the textile product if desired.
  • In order to form the nonwoven fabric of the present invention, the fibers can be bonded by using several different techniques including thermal, chemical, or mechanical bonding. In one embodiment, the nonwoven fabric is formed by using hydroentanglement, which is a mechanism used to entangle and bond fibers using hydrodynamic forces. Alternatively, nonwovens can be created by needle punching which mechanically orientates and interlocks the fibers of a spunbound or carded web. Needle punching is achieved with thousands of barbed felting needles repeatedly passing into and out of the web. Needle punching and hydroentanglement form a dense structure so that when the external sheath is removed, the wings will release in place forming a structure with high permeability. The ultimate application of the fabric will determine which bonding technique should be utilized. For example, if the nonwoven fabric is to be used for filtering large particles, it can be made using spunbound fibers that are randomly interlocked fibers, but not woven. If the non-woven fabric is needed to filter smaller particles, then it can be made from melt blown fibers, which uses high velocity air or another appropriate force to bind the fibers together. Alternatively, filaments can be extruded, and said filaments can be crimped and cut into staple fibers from which a web can be formed and then bonded by one or more of the methods described above to form a nonwoven. Same staple or filament fibers can be used to form woven, knitted or braided structures as well.
  • In another embodiment of the present invention, staple nonwoven fabrics can be constructed by spinning the bicomponent fiber and cutting the length of the fiber into short segments and put into bales. The bales are then spread in a uniform web by a wetlaid process or carding, and are subsequently bonded by thermo-mechanical means as known in the art
  • The fiber of the present invention can also be used to manufacture traditional woven fabrics for use in garments and the like. Because the fibers of the present invention are strong, they can be. used in traditional knitting and braiding techniques without compromising the integrity of the fiber.
  • Although numerous fibers are known in the art, the present invention discloses a high surface area fiber with a small denier that can be used in application for both woven and non-woven fabrics. The fibers of the present invention have higher thermal insulation capabilities than traditional fibers known in the art, and form improved filtration mediums. Furthermore, the fibers of the present invention are stronger, more flexible, and more breathable. As discussed above, because the winged-shaped fibers are compression resilient, the channels are not obstructed and have greater capillary/wicking abilities, as well as absorption capabilities. Additionally, these fibers have the ability to capture nano-sized particles. Because the fibers of the present invention are strong and have shear resistance, the fibers can withstand high pressures and can be used in liquid filtrations as well as demanding aerosol filtration applications requiring high pressure. As such, the present invention provides for a high-efficiency low-pressure drop filter constructed from woven or nonwoven fabrics or fibers.
  • There are numerous applications of the present invention. In one example the present invention can be used in traditional woven applications, such as wicking garments, thermally insulating garments, comfort garments, sportswear and camping wear. In another example, the present invention can be used in non-woven fabrics to produce filter media to filter liquids or air for cleaning rooms. In yet another example, the present invention can be used with traditional round fibers to yield multi-layer fibers that can be combined using a spinneret or combined later in the manufacturing process. Combining or sandwiching the fibers of the present invention with traditional round fibers allows a single product to have multiple physical properties, and is cost effective.
  • The present invention can also be used for improved wipe materials. In typical applications wipes are primed with liquids before use, such as in baby wipes. However, the present invention allows the ability to create a wipe product that will pick up dirt and dust particles without leaving behind any particles because the liquid in the channels of the fibers remains there while still dissolving and aiding the clean-up process. Additionally, the present invention can be used for hygiene and acoustic materials, thermal insulation, geotextile materials, construction materials, and compressive performance materials such as seat cushions and mattresses.
  • Certain modifications and improvements will occur to those skilled in the art upon a reading of the foregoing description. The above-mentioned examples are provided to serve the purpose of clarifying the aspects of the invention and it will be apparent to one skilled in the art that they do not serve to limit the scope of the invention. All modifications and improvements have been deleted herein for the sake of conciseness and readability but are properly within the scope of the following claims.

Claims (26)

What is claimed is:
1-28. (canceled)
29. A winged fiber comprising:
an internal fiber having a cross-section and comprising a middle region, the middle region having between 16 projections and 32 projections extending from the middle region and along a periphery of the middle region;
wherein, the winged fiber has a denier in the range of 1-20 and a specific surface area between 28,000 cm2/g and 1,000,000 cm2/g.
30. The winged fiber according to claim 29 wherein the internal fiber comprises at least one thermoplastic polymer.
31. The winged fiber according to claim 29 wherein the middle region is hollow forming a hub with the projections extending outwardly therefrom.
32. The winged fiber according to claim 29 wherein the projections define channels between the projections, and wherein the channels have a channel width of between 200 nanometers and 1000 nanometers.
33. The winged fiber according to claim 29 wherein the winged fiber has a cross-sectional length of between 10 micrometers and 50 micrometers and a cross-sectional width between 5 micrometers and 50 micrometers and a shape factor of at least 10.
34. The winged fiber according to claim 29 wherein the winged fiber further comprises an external sheath, wherein the external sheath encompasses the internal fiber, and wherein the external sheath is dissolvable.
35. A winged fiber comprising:
an internal fiber having a cross-section comprising a middle region, the middle region having between 16 projections and 32 projections extending from the middle region and along a periphery of the middle region;
wherein, the winged fiber has a cross-sectional length between 10 micrometers and 50 micrometers and a cross-sectional width between 5 micrometers and 50 micrometers and a specific surface area between 28,000 cm2/g and 1,000,000 cm2/g.
36. The winged fiber according to claim 35 wherein the internal fiber comprises at least one thermoplastic polymer.
37. The winged fiber according to claim 35 wherein the middle region is hollow forming a hub with the projections extending outwardly therefrom.
38. The winged fiber according to claim 35 wherein the projections define channels between the projections, and wherein the channels have a channel width of between 200 nanometers and 1000 nanometers.
39. The winged fiber according to claim 35 wherein the winged fiber has a denier in the range of 1-20.
40. The winged fiber according to claim 35 wherein the winged fiber has a cross-sectional length of between 10 micrometers and 50 micrometers and a cross-sectional width between 5 micrometers and 50 micrometers and a shape factor of at least 10.
41. The winged fiber according to claim 35 wherein the winged fiber further comprises an external sheath, wherein the external sheath encompasses the internal fiber, and wherein the external sheath is dissolvable.
42. A winged fiber comprising:
an internal fiber having a cross-section comprising a middle region, the middle region having between 16 projections and 32 projections extending from the middle region and along a periphery of the middle region;
wherein, the winged fiber has a cross-sectional length of between 10 micrometers and 50 micrometers and a cross-sectional width between 5 micrometers and 50 micrometers and a shape factor of at least 10.
43. The winged fiber according to claim 42 wherein the internal fiber comprises at least one thermoplastic polymer.
44. The winged fiber according to claim 42 wherein the middle region is hollow forming a hub with the projections extending outwardly therefrom.
45. The winged fiber according to claim 42 wherein the projections define channels between the projections, and wherein the channels have a channel width of between 200 nanometers and 1000 nanometers.
46. The winged fiber according to claim 42 wherein the winged fiber has a denier in the range of 1-20 and a specific surface area between 28,000 cm2/g and 1,000,000 cm2/g.
47. The winged fiber according to claim 42 wherein the winged fiber further comprises an external sheath, wherein the external sheath encompasses the internal fiber, and wherein the external sheath is dissolvable.
48. A winged-fiber, the cross-section of the fiber comprising:
a middle region having between 16 projections and 32 projections and between 16 channels and 32 channels; wherein the projections extend from the middle region along the periphery of the middle region; and
wherein the projections define the channels, and wherein the channels have a channel width of between 200 nanometers and 1000 nanometers.
49. The winged fiber according to claim 48 wherein the middle region comprises at least one thermoplastic polymer.
50. The winged fiber according to claim 48 wherein the middle region is hollow forming a hub with the projections extending outwardly therefrom.
51. The winged fiber according to claim 48 wherein the winged fiber has a cross-sectional length of between 10 micrometers and 50 micrometers and a cross-sectional width between 5 micrometers and 50 micrometers and a shape factor of at least 10.
52. The winged fiber according to claim 48 wherein the winged fiber has a denier in the range of 1-20 and a specific surface area between 28,000 cm2/g and 1,000,000 cm2/g.
53. The winged fiber according to claim 48 wherein the winged fiber further comprises an external sheath, wherein the external sheath encompasses the middle region, and wherein the external sheath is dissolvable.
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US13/359,619 Abandoned US20120148841A1 (en) 2006-11-03 2012-01-27 Method and Apparatus for Making an Improved High Surface Area Fiber
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20130133980A1 (en) * 2013-01-22 2013-05-30 Allasso Industries, Inc. Articles Containing Woven or Non-Woven Ultra-High Surface Area Macro Polymeric Fibers

Families Citing this family (74)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7892993B2 (en) 2003-06-19 2011-02-22 Eastman Chemical Company Water-dispersible and multicomponent fibers from sulfopolyesters
US20040260034A1 (en) 2003-06-19 2004-12-23 Haile William Alston Water-dispersible fibers and fibrous articles
US8513147B2 (en) 2003-06-19 2013-08-20 Eastman Chemical Company Nonwovens produced from multicomponent fibers
US20140115783A1 (en) * 2004-06-24 2014-05-01 Mmi-Ipco, Llc Thermal blankets
DE102006014236A1 (en) 2006-03-28 2007-10-04 Irema-Filter Gmbh Fleece material used as a pleated air filter in a motor vehicle comprises thinner fibers homogeneously incorporated into thicker fibers
US20080199698A1 (en) * 2007-02-16 2008-08-21 Sumitomo Chemical Company, Limited Method for producing liquid crystalline polyester fiber
EP2006431B1 (en) * 2007-06-19 2011-08-17 The Procter & Gamble Company Non-woven webs made from treated fibres
US8986432B2 (en) * 2007-11-09 2015-03-24 Hollingsworth & Vose Company Meltblown filter medium, related applications and uses
WO2009062009A2 (en) * 2007-11-09 2009-05-14 Hollingsworth & Vose Company Meltblown filter medium
WO2010022066A2 (en) * 2008-08-18 2010-02-25 Transhield Technology As Water vapor permeable shrinkable-fabric
DE202008012976U1 (en) * 2008-10-01 2010-03-11 Hengst Gmbh & Co.Kg Separator for separating liquid droplets from a gas stream
US8950587B2 (en) 2009-04-03 2015-02-10 Hollingsworth & Vose Company Filter media suitable for hydraulic applications
US8512519B2 (en) 2009-04-24 2013-08-20 Eastman Chemical Company Sulfopolyesters for paper strength and process
US20130196109A1 (en) 2009-11-24 2013-08-01 Mmi-Ipco, Llc Insulated Composite Fabric
US20110168622A1 (en) * 2010-01-12 2011-07-14 Purolator Filters Na Llc High Efficiency, High Capacity Filter Media
US8679218B2 (en) 2010-04-27 2014-03-25 Hollingsworth & Vose Company Filter media with a multi-layer structure
US20130122771A1 (en) * 2010-07-29 2013-05-16 Mitsui Chemicals, Inc. Non-woven fiber fabric, and production method and production device therefor
KR101871683B1 (en) 2010-07-30 2018-06-27 이엠디 밀리포어 코포레이션 Chromatogrphy media and method
US20120183861A1 (en) 2010-10-21 2012-07-19 Eastman Chemical Company Sulfopolyester binders
US10155186B2 (en) 2010-12-17 2018-12-18 Hollingsworth & Vose Company Fine fiber filter media and processes
US20120152821A1 (en) 2010-12-17 2012-06-21 Hollingsworth & Vose Company Fine fiber filter media and processes
US11180876B2 (en) 2011-03-18 2021-11-23 Donaldson Company, Inc. High temperature treated media
WO2013109375A1 (en) * 2012-01-17 2013-07-25 Mmi-Ipco, Llc Fabrics containing multi-groove fibers
US8840758B2 (en) 2012-01-31 2014-09-23 Eastman Chemical Company Processes to produce short cut microfibers
EP2811054B1 (en) * 2012-01-31 2022-06-29 Kuraray Co., Ltd. Composite fiber, method for producing polyurethane elastomer fabric, and polyurethane elastomer fabric
US9072991B2 (en) * 2012-04-24 2015-07-07 Southern Felt Company, Inc. Conductive filter media
JP6099330B2 (en) * 2012-08-02 2017-03-22 日本バイリーン株式会社 filter
EP2935665A2 (en) 2012-12-18 2015-10-28 SABIC Global Technologies B.V. High temperature melt integrity battery separators via spinning
SG11201505464QA (en) * 2013-01-31 2015-08-28 Emd Millipore Corp Chromatography media for purifying vaccines and viruses
WO2014120344A2 (en) * 2013-01-31 2014-08-07 Emd Millipore Corporation Disposable direct capture device
EP3903904A1 (en) 2013-03-15 2021-11-03 Donaldson Company, Inc. Filter media and elements
US9617685B2 (en) 2013-04-19 2017-04-11 Eastman Chemical Company Process for making paper and nonwoven articles comprising synthetic microfiber binders
DE102013008402A1 (en) * 2013-05-16 2014-11-20 Irema-Filter Gmbh Nonwoven fabric and process for producing the same
US9694306B2 (en) 2013-05-24 2017-07-04 Hollingsworth & Vose Company Filter media including polymer compositions and blends
US9474994B2 (en) 2013-06-17 2016-10-25 Donaldson Company, Inc. Filter media and elements
KR20160052725A (en) * 2013-09-13 2016-05-12 페더럴-모걸 파워트레인, 인코포레이티드 High surface area fiber and method of costruction thereof
EP3044354A2 (en) * 2013-09-13 2016-07-20 Federal-Mogul Powertrain, Inc. High surface area fiber and method of construction thereof
US10619268B2 (en) 2013-11-13 2020-04-14 Illinois Tool Works, Inc. Metal detectable fiber and articles formed from the same
US9605126B2 (en) 2013-12-17 2017-03-28 Eastman Chemical Company Ultrafiltration process for the recovery of concentrated sulfopolyester dispersion
US9598802B2 (en) 2013-12-17 2017-03-21 Eastman Chemical Company Ultrafiltration process for producing a sulfopolyester concentrate
US10106452B2 (en) 2014-02-14 2018-10-23 Superior Fibers, Llc System and method of continuous glass filament manufacture
US9446978B2 (en) 2014-02-14 2016-09-20 Charles Douglas Spitler System and method for continuous strand fiberglass media processing
US10351462B1 (en) 2014-02-14 2019-07-16 Superior Fibers, Llc Method of manufacturing fiberglass filtration media
US11542634B2 (en) 2014-07-25 2023-01-03 Illinois Tool Works Inc. Particle-filled fiber and articles formed from the same
US10753022B2 (en) 2014-07-25 2020-08-25 Illinois Tool Works, Inc. Particle-filled fiber and articles formed from the same
SG11201700030UA (en) * 2014-09-02 2017-02-27 Emd Millipore Corp High surface area fiber media with nano-fibrillated surface features
DE102014219449A1 (en) 2014-09-25 2016-03-31 Christine Haub Irrigation mat for providing fluids to the root area of plants and irrigation system
EP3223636B1 (en) 2014-11-25 2020-03-04 Swedish Match North Europe AB Oral pouched product
DE102014117506A1 (en) 2014-11-28 2016-06-02 Filta Co., Ltd Filter medium with large pleat spacing
WO2016093926A1 (en) 2014-12-08 2016-06-16 Emd Millipore Corporation Mixed bed ion exchange adsorber
US10343095B2 (en) 2014-12-19 2019-07-09 Hollingsworth & Vose Company Filter media comprising a pre-filter layer
WO2016104784A1 (en) * 2014-12-26 2016-06-30 株式会社クラレ Filter fiber, filter, and water treatment method
US9694510B2 (en) 2015-03-27 2017-07-04 Charles Douglas Spitler Skin stiffness characteristics and loft control production system and method with variable moisture content in input fiberglass media
EP3294435B1 (en) 2015-05-11 2019-11-20 Charles Douglas Spitler A preparation for fiberglass air filtration media
CN107847372A (en) * 2015-07-13 2018-03-27 阿文提特种材料公司 Have to active component affinity through handle non-woven fabric
TWI545332B (en) * 2015-09-10 2016-08-11 旺玖科技股份有限公司 Magneto-impedance sensor device and method for fafbicating the same
US10180415B2 (en) * 2015-09-15 2019-01-15 Illinois Tool Works Inc. Scrim substrate material with functional detectable additives for use with nonwoven fabric and composite material
US20180229407A1 (en) 2017-02-03 2018-08-16 Marhaygue, Llc Structural Composition and Method
MX2018006104A (en) 2015-11-17 2019-01-10 Marhaygue Llc Structural composition and method.
US10704167B2 (en) 2015-11-20 2020-07-07 Ecole Polytechnique Federale De Lausanne (Epfl) Fabrication method of functional micro/nano structures over large-area, flexible and high curvature surfaces, by drawing a fiber from a preform
US11141942B2 (en) 2016-02-10 2021-10-12 Ecole polytechnique fédérale de Lausanne (EPFL) Multi-material stretchable optical, electronic and optoelectronic fibers and ribbons composites via thermal drawing
WO2018025209A1 (en) 2016-08-02 2018-02-08 Fitesa Germany Gmbh System and process for preparing polylactic acid nonwoven fabrics
US11441251B2 (en) 2016-08-16 2022-09-13 Fitesa Germany Gmbh Nonwoven fabrics comprising polylactic acid having improved strength and toughness
US10091956B2 (en) * 2016-09-30 2018-10-09 Jutta M. Gietl Subsurface irrigation systems and methods
WO2019113348A1 (en) * 2017-12-07 2019-06-13 4C Air, Inc. Bicomponent or multicomponent fibers and methods of making the same
US10947664B2 (en) 2018-02-19 2021-03-16 Illinois Tool Works Inc. Metal detectable scouring pad
US10663410B2 (en) * 2018-08-31 2020-05-26 Rohde & Schwarz Gmbh & Co. Kg Method and system for determining a permittivity of a substance layer
CN109610019A (en) * 2018-11-12 2019-04-12 新凤鸣集团股份有限公司 A kind of production method having light fine-denier caterpillar section FDY fiber
US11579523B2 (en) 2019-02-08 2023-02-14 Ecole Polytechnique Federale De Lausanne (Epfl) Method and system for fabricating glass-based nanostructures on large-area planar substrates, fibers, and textiles
IT201900006409A1 (en) 2019-04-29 2020-10-29 Advanced Nonwovens Tech Srl Non-woven fabric for multi-tubular sheaths
US20210229004A1 (en) * 2020-01-23 2021-07-29 Jonell filtration Products, Inc. Tubular filter with nonwoven media and method
CN112410897B (en) * 2020-11-23 2021-10-29 华峰化学股份有限公司 Method for controlling cross-sectional shape of spandex fiber
TWI810864B (en) * 2022-03-25 2023-08-01 何建樺 Biocomposite fiber and method for manufacturing the same
DE102023101636B3 (en) 2023-01-24 2024-04-18 Alexandra Plewnia Process for producing a hydrophobic fiber, fiber, yarn and textile fabric

Family Cites Families (35)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2695835A (en) * 1949-12-13 1954-11-30 Du Pont Process for making rough surfaced filaments
DE2164422A1 (en) * 1970-12-24 1972-07-13 Asahi Kasei Kogaku Kogyo K.K., Osaka (Japan) Synthetic fiber and process for its manufacture
JPS56112535A (en) 1980-02-04 1981-09-04 Kuraray Co Knitted fabric with excellent water absorbability
JPS5898423A (en) 1981-12-01 1983-06-11 Toray Ind Inc Fiber with grooves on its surface and its production
US4950531A (en) * 1988-03-18 1990-08-21 Kimberly-Clark Corporation Nonwoven hydraulically entangled non-elastic web and method of formation thereof
JP2582877B2 (en) 1988-11-17 1997-02-19 東レ株式会社 Polyester shrinkage difference mixed yarn
US5972505A (en) 1989-04-04 1999-10-26 Eastman Chemical Company Fibers capable of spontaneously transporting fluids
US5352518A (en) * 1990-06-22 1994-10-04 Kanebo, Ltd. Composite elastic filament with rough surface, production thereof, and textile structure comprising the same
US5125818A (en) * 1991-02-05 1992-06-30 Basf Corporation Spinnerette for producing bi-component trilobal filaments
US5415925A (en) * 1992-06-10 1995-05-16 Fiberweb North America, Inc. Gamma structure composite nonwoven fabric comprising at least two nonwoven webs adhesively bonded by a lightweight adhesive web
JPH05239709A (en) 1992-02-24 1993-09-17 Toyobo Co Ltd Ultra-fine fiber having highly modified cross section
JPH0931781A (en) * 1995-05-16 1997-02-04 Kuraray Co Ltd Hollow twisted yarn, its production and fabric
JPH0929021A (en) * 1995-07-21 1997-02-04 Chisso Corp Filter
JPH0959847A (en) * 1995-08-21 1997-03-04 Toray Ind Inc Polyester water-resistant woven fabric and its production
US5861213A (en) * 1995-10-18 1999-01-19 Kuraray Co., Ltd. Fibrillatable fiber of a sea-islands structure
US6103376A (en) 1996-08-22 2000-08-15 Eastman Chemical Company Bundles of fibers useful for moving liquids at high fluxes and acquisition/distribution structures that use the bundles
US5977429A (en) 1996-08-22 1999-11-02 Eastman Chemical Company Synthetic polyester absorbent materials
US5948528A (en) * 1996-10-30 1999-09-07 Basf Corporation Process for modifying synthetic bicomponent fiber cross-sections and bicomponent fibers thereby produced
US5922462A (en) * 1997-02-19 1999-07-13 Basf Corporation Multiple domain fibers having surface roughened or mechanically modified inter-domain boundary and methods of making the same
US6284680B1 (en) * 1998-11-17 2001-09-04 Japan Vilene Company Nonwoven fabric containing fine fibers, and a filter material
US6322604B1 (en) * 1999-07-22 2001-11-27 Kimberly-Clark Worldwide, Inc Filtration media and articles incorporating the same
US6673442B2 (en) 2000-05-25 2004-01-06 E.I. Du Pont De Nemours And Company Multilobal polymer filaments and articles produced therefrom
US6450904B1 (en) * 2000-09-29 2002-09-17 Peter Yeh String for a racket
JP2002282627A (en) * 2001-03-28 2002-10-02 Asahi Glass Co Ltd Bag filter
CN100347355C (en) * 2001-06-15 2007-11-07 可乐丽股份有限公司 Composite fiber
US6726751B2 (en) * 2001-11-13 2004-04-27 Daniel E. Bause Accordion-pleated filter material and filter element incorporating same
US7166094B2 (en) * 2002-05-28 2007-01-23 Tyco Healthcare Retail Services Ag Multiple layer absorbent article
US6861142B1 (en) * 2002-06-06 2005-03-01 Hills, Inc. Controlling the dissolution of dissolvable polymer components in plural component fibers
JP3764132B2 (en) * 2002-07-22 2006-04-05 株式会社クラレ Special cross-section fiber
JP3756857B2 (en) * 2002-08-23 2006-03-15 株式会社クラレ Composite fiber
EP3023136A1 (en) * 2002-12-02 2016-05-25 Reemay, Inc. Multilayer nonwovens incorporating differential cross-sections
US6753082B1 (en) 2003-02-26 2004-06-22 Honeywell International Inc. Absorbent fibers
KR20140139634A (en) * 2004-11-05 2014-12-05 도날드슨 컴파니, 인코포레이티드 Filter medium and structure
US8057567B2 (en) * 2004-11-05 2011-11-15 Donaldson Company, Inc. Filter medium and breather filter structure
US7238423B2 (en) * 2004-12-20 2007-07-03 Kimberly-Clark Worldwide, Inc. Multicomponent fiber including elastic elements

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20130133980A1 (en) * 2013-01-22 2013-05-30 Allasso Industries, Inc. Articles Containing Woven or Non-Woven Ultra-High Surface Area Macro Polymeric Fibers
US9284663B2 (en) * 2013-01-22 2016-03-15 Allasso Industries, Inc. Articles containing woven or non-woven ultra-high surface area macro polymeric fibers

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