The present disclosure relates to methods, systems and machines for forming random fiber webs. More particularly, it relates to machines, systems and methods for creating non-woven air-laid webs.
In general, various machines, systems and methods are known for making random fiber webs for random fiber articles that are used for various purposes. Cleaning and abrading apparatuses are partially formed of random fiber webs. Additionally, disposable absorbent products such as mortuary, veterinary and personal care absorbent products such as diapers, feminine pads, adult incontinence products, and training pants often include one or more layers of random fiber web materials, especially liquid absorbent fiber web materials.
Aspects of the present disclosure are directed toward machines, systems and methods of making non-woven air-laid webs. One known machine 10 for creating a non-woven air-laid web is shown in reference to
Unfortunately, the above described machine often has a non-uniform deposition of the fibers on the condenser 18. This has led to further costly processing steps to create a more uniform web deposition. For example, with the machine of
The present inventors have recognized machines which modify the machine of
The present inventors have also realized other components and machine embodiments that allow for an improved more uniform deposition of the fibers on the condenser. These components variously include the addition of a seal having a reverse orientation relative to a direction of rotation of the condenser, one or more ports in a housing of the machine that allow for viewing of the doffing of the fibers and/or lay-up of the fibers on the condenser, addition of a nose bar and/or nose bar extension that changes the doffing point of the fibers into the air stream, the addition of various air venting passages in the housing, a doffer plate and/or the lower slide plate configured to facilitate venting and/or air intake into and/or out of the air supply to name but a few. Further components and machines embodiments are disclosed herein and discussed with reference to the FIGURES.
Various embodiments are disclosed and include a method of forming a random fiber web using pneumatic fiber feeding system is disclosed. The method can optionally comprise: providing a plurality of moveable apparatuses including a lickerin and a feeder, the lickerin configured to remove a plurality of fibers from a fibrous mat delivered to adjacent the lickerin by the feeder; doffing the plurality of fibers from the lickerin at a doffing location within the system; communicating an air supply to entrain the plurality of fibers with the air supply after the doffing; and collecting the plurality of fibers from the air supply to form the random fiber web.
In another embodiment, a pneumatic fiber feeding system for forming a random fiber web is disclosed. The system can optionally comprise: a rotatable feed roll; a rotatable lickerin roll configured to remove a plurality of fibers from a fibrous mat delivered to adjacent the lickerin roll by the feed roll and configured to doff the plurality of fibers from the lickerin roll; a rotatable saber roll positioned adjacent the teed roll and the lickerin roll; a channel communicating an air supply to a space defined between the lickerin roll and the saber roll, the space including a doffing location where the doff of the plurality of fibers from the lickerin roll occurs; and a collector positioned to capture the plurality of fibers once doffed into the air supply, the plurality of fibers forming the random fiber web on the collector.
In another embodiment, a pneumatic fiber feeding system for forming a random fiber web is disclosed. The system can optionally comprise: a plurality of moveable apparatuses including a lickerin and a feeder, the lickerin configured to remove a plurality of fibers from a fibrous mat delivered to adjacent the lickerin by the feeder, wherein the lickerin is configured to doff the plurality of fibers from the lickerin; a channel communicating an air supply to a space adjacent the lickerin, the space including a doffing location where the doff of the plurality of fibers from the lickerin occurs; a collector positioned to capture the plurality of fibers once doffed into the main air supply, the plurality of fibers forming the random fiber web on the collector; and at least one of: a nose bar assembly positioned at least partially between the feed roll and the lickerin and extending into the space, a vent in a saber roll assembly adjacent the lickerin and communicating with the air supply, a seal coupled to the plate at a mounting portion and extending to contact the collector, wherein the seal extends from the mounting portion to a tip in a direction opposing the direction of rotation of the collector, or one or more viewing ports along the channel including adjacent one or more of the doffing location and the collector.
Aspects of the present disclosure relate to machines, systems and methods for manufacturing random fiber webs. As a point of reference,
Still referring to
It is desired that the air supply AS have uniform velocity, low turbulence, with a stable air stream, free from vorticities, in the direction of movement of the lickerin 12. Unfortunately, such is not always the case with machine 10. It was previously thought with the design of the channel/chamber that convey the air supply AS should be shaped to create a venturi 25 in the region adjacent the lickerin 12 where the fibers are doffed upstream of the chamber 23. Furthermore, a boundary layer which is formed around the surface of the lickerin 12 can be interrupted by the use of a doffing bar 24, which is situated adjacent the chamber 23 at a point of maximum shear just below the lickerin 12 at the start of the chamber 23 (sometimes called the expansion chamber). The doffing bar 24 is configured to provide a controlled low level of turbulence in the air supply AS through which the doffed fibers pass.
A nose bar 26 can be utilized and positioned at a small distance from the surface of the lickerin 12 to provide a narrow passage where the fibers are carried on hooks, projections or pieces of the wire covering or a cylinder surface of the lickerin 12 to a point of projection (called a doffing point or doffing location) into the venturi 25 and the air supply AS. The saber roll 16 can be positioned adjacent the nose bar 26 and the lickerin 12 and can be positioned in and adjacent the air supply AS. The saber roll 16 can be journaled for eccentric movement in the side housings of the machine 10. The saber roll 16 spreads the flow of the air supply AS and aids in doffing the fibers from the lickerin 12. The eccentric mounting of the saber roll 16 allows of varying the space between the lickerin 12 and the saber roll 16 so as to restrict the air supply AS to the doffing location.
As discussed above, the present inventors have recognized components which modify the machine 10 of
The method 100 can include doffing the plurality of fibers from the lickerin roll at a doffing location within the system 102. The method 100 can further include communicating an air supply to entrain the plurality of fibers with the air supply after the doffing. Additionally, the method 100 can include collecting the plurality of fibers from the air supply to form the random fiber web. Such collection of the fibers can occur at a collector 110 (also call a condenser). The collector can comprise a moveable apparatus such as a roll or belt that can move to gather the laid-up fibers to form the new random fiber web as they fall to the collector 110.
The air supply AS with the plurality of fibers entrained therein can pass through a channel (also called a chamber, space or volume herein) that is downstream (in terms of a direction of flow of the air supply AS) from adjacent the lickerin roll 106 and the saber roll 108. This channel can extend from adjacent the lickerin roll 106 and the saber roll 108 to adjacent the collector 110. The channel can be at least partially defined by a housing 112 (this housing 112 can include the doffer plate, the lower slide plate, and/or the side housings as previously described herein).
As has been previously discussed and will be further discussed herein subsequently, the present inventors have modified the method 100 and the system 102 from the method and machine of
Specifically,
The embodiment of
t Ki. 4 shows a system 200 that is part of a machine 202 that includes only the vent 115 as previously described.
As shown in
According to the embodiment of
As used herein:
The term “a”, “an”, and “the” are used interchangeably with “at least one” to mean one or more of the elements being described.
The term “and/or” means either or both. For example, “A and/or B” means only A, only B, or both A and B.
The terms “including,” “comprising,” or “having,” and variations thereof, are meant to encompass the items listed thereafter and equivalents thereof as well as additional items.
The term “adjacent” refers to the relative position of two elements, such as, for example, two layers, that are close to each other and may or may not be necessarily in contact with each other or that may have one or more layers separating the two elements as understood by the context in which “adjacent” appears.
All scientific and technical terms used herein have meanings commonly used in the art unless otherwise specified. The definitions provided herein are to facilitate understanding of certain terms used frequently in this application and are not meant to exclude a reasonable interpretation of those terms in the context of the present disclosure.
Unless otherwise indicated, all numbers in the description and the claims expressing feature sizes, amounts, and physical properties used in the specification and claims are to be understood as being modified in all instances by the term “about.” Accordingly, unless indicated to the contrary, the numerical parameters set forth in the foregoing specification and attached claims are approximations that can vary depending upon the desired properties sought to be obtained by those skilled in the art utilizing the teachings disclosed herein. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques. Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the disclosure are approximations, the numerical values set forth in the specific examples are reported as precisely as possible. Any numerical value, however, inherently contains certain errors necessarily resulting from the standard deviations found in their respective testing measurements.
The term “substantially” means within 20 percent (in some cases within 15 percent, in yet other cases within 10 percent, and in yet other cases within 5 percent) of the attribute being referred to. Thus, a value A is “substantially similar” to a value B if the value A is within plus/minus one or more of 5%, 10%, 20% of the value A.
Features and advantages of the present disclosure will be further understood upon consideration of the detailed description as well as the appended claims.
The recitation of numerical ranges by endpoints includes all numbers subsumed within that range (e.g. a range from 1 to 5 includes, for instance, 1, 1.5, 2, 2.75, 3, 3.80, 4, and 5) and any range within that range.
Although the present disclosure has been described with reference to preferred embodiments, workers skilled in the art will recognize that changes can be made in form and detail without departing from the spirit and scope of the present disclosure.
In Example 1, a method of forming a random fiber web using pneumatic fiber feeding system is disclosed. The method can optionally comprise: providing a plurality of moveable apparatuses including a lickerin and a feeder, the lickerin configured to remove a plurality of fibers from a fibrous mat delivered to adjacent the lickerin by the feeder; doffing the plurality of fibers from the lickerin at a doffing location within the system; communicating an air supply to entrain the plurality of fibers with the air supply after the doffing; and collecting the plurality of fibers from the air supply to form the random fiber web.
In Example 2, the method of Example 1, can optionally further comprise providing for a nose bar assembly extending between a portion of the feeder and the lickerin and extending into the air supply adjacent the doffing location.
In Example 3, the method of Example 2, wherein the nose bar assembly can have texturing along a surface that interfaces with the lickerin.
In Example 4, the method of any one or any combination of Examples 1-3, can optionally further comprising providing for a vent in a saber roll assembly and communicating with the air supply.
In Example 5, the method of Example 4, wherein the vent can be moveable with movement of the saber roll assembly away from and toward the doffing location.
In Example 6, the method of any one or any combination of Examples 1-5, can optionally further comprise providing one or more viewing ports in the housing including adjacent one or more of the doffing location and a location of the collecting of the plurality of fibers.
In Example 7, the method of any one or any combination of Examples 1-6, can optionally further comprise providing a reverse seal mounted to a lower slide plate and engaging a collector that performs collecting of the plurality of fibers and further is mounted to the lower slide plate, wherein the reverse seal is oriented with an extent from a mounting portion to a tip that extends in a direction generally opposite of a direction of rotation of the collector.
In Example 8, a pneumatic fiber feeding system for forming a random fiber web is disclosed. The system can optionally comprise: a rotatable feed roll; a rotatable lickerin roll configured to remove a plurality of fibers from a fibrous mat delivered to adjacent the lickerin roll by the feed roll and configured to doff the plurality of fibers from the lickerin roll; a rotatable saber roll positioned adjacent the feed roll and the lickerin roll; a channel communicating an air supply to a space defined between the lickerin roll and the saber roll, the space including a doffing location where the doff of the plurality of fibers from the lickerin roll occurs; and a collector positioned to capture the plurality of fibers once doffed into the air supply, the plurality of fibers forming the random fiber web on the collector.
In Example 9, the system of Example 8, can optionally further comprise a nose bar assembly positioned at least partially between the feed roll and the lickerin roll and extending into the space.
In Example 10, the system of Example 9, wherein the nose bar assembly can wrap from 1 degree up to 170 degrees of the circumference of the lickerin roll.
In Example 11, the system of anyone or any combination of Examples 8-10, wherein the nose bar assembly can have a surface that interfaces with the lickerin roll, and wherein the surface has texturing to separate the plurality of fibers.
In Example 12, the system of anyone or any combination of Examples 8-11, wherein the nose bar assembly can be configured to extend the doffing location past the feed roll and into the space defined between lickerin roll and the saber roll.
In Example 13, the system of any one or any combination of Examples 8-12, wherein the saber roll can be coupled to a moveable end plate, the end plate configured for eccentrically positioning the saber roll within the space, and wherein the end plate includes a passage therein that communicates with the channel such that an amount of the supply air can pass therethrough or an amount of ambient air can pass therethrough into the channel.
In Example 14, the system of Example 13, wherein the passage can comprise a tapered slot having an increasing cross-sectional area along a length thereof in a direction of rotation of the saber roll and end plate, and wherein the length of the slot is between 1 degree and 170 degrees of a circumference of the saber roll.
In Example 15, the system of any one or any combination of Examples 8-14, can optionally further comprise: one or more plates extending between adjacent the saber roll to adjacent the collector; and a seal coupled to an end portion of the one or more plates at a mounting portion and extending to contact the collector, wherein the seal extends from the mounting portion to a tip in a direction opposing the direction of rotation of the collector.
In Example 16, the system of any one or any combination of Examples 8-15, further comprising one or more viewing ports along the channel including adjacent one or more of the doffing location and the collector.
In Example 17, a pneumatic fiber feeding system for forming a random fiber web is disclosed. The system can optionally comprise: a plurality of moveable apparatuses including a lickerin and a feeder, the lickerin configured to remove a plurality of fibers from a fibrous mat delivered to adjacent the lickerin by the feeder, wherein the lickerin is configured to doff the plurality of fibers from the lickerin; a channel communicating an air supply to a space adjacent the lickerin, the space including a doffing location where the doff of the plurality of fibers from the lickerin occurs; a collector positioned to capture the plurality of fibers once doffed into the main air supply, the plurality of fibers forming the random fiber web on the collector; and at least one of: a nose bar assembly positioned at least partially between the feed roll and the lickerin and extending into the space, a vent in a saber roll assembly adjacent the lickerin and communicating with the air supply, a seal coupled to the plate at a mounting portion and extending to contact the collector, wherein the seal extends from the mounting portion to a tip in a direction opposing the direction of rotation of the collector, or one or more viewing ports along the channel including adjacent one or more of the doffing location and the collector.
In Example 18, the system of Example 17, wherein the nose bar assembly can be configured to extend the doffing location past the feeder and into the space defined between lickerin and the saber roll assembly.
In Example 19, the system of any one or any combination of Examples 17-18, wherein the vent can be tapered having an increasing cross-sectional area along a length thereof in a direction of rotation of the saber roll assembly.
In Example 20, the system of any one or any combination of Examples 17-19, wherein the nose bar assembly can have a surface that interfaces with the lickerin roll, and wherein the surface has a texturing to separate the plurality of fibers.
This application is a national stage filing under 35 U.S.C. 371 of PCT/US2019/045603, filed Aug. 8, 2019, which claims the benefit of U.S. Provisional Application No. 62/717,069, filed Aug. 10, 2018, the disclosure of which is incorporated by reference in its/their entirety herein.
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PCT/US2019/045603 | 8/8/2019 | WO |
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WO2020/033616 | 2/13/2020 | WO | A |
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Entry |
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International Search Report for PCT International Application No. PCT/US2019/045603, dated Nov. 18, 2019, 5 pages. |
Number | Date | Country | |
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20210348317 A1 | Nov 2021 | US |
Number | Date | Country | |
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62717069 | Aug 2018 | US |