The present disclosure relates to systems and methods for folding disposable absorbent articles in a nip between first and second carriers, and more particularly, tucker blades configured to maximize a period of time wherein the leading edges move at speeds through the nip that are relatively close to the speeds of the first and second carriers.
Along an assembly line, diapers and various types of other absorbent articles may be assembled by adding components to and otherwise modifying an advancing, continuous web of material. For example, in some processes, advancing webs of material are combined with other advancing webs of material. In other examples, individual components created from advancing webs of material are combined with advancing webs of material, which in turn, are then combined with other advancing webs of material. Webs of material and component parts used to manufacture diapers may include: backsheets, topsheets, absorbent cores, front and/or back ears, fastener components, and various types of elastic webs and components such as leg elastics, barrier leg cuff elastics, and waist elastics. Once the desired component parts are assembled, the advancing web(s) and component parts are subjected to a final knife cut to separate the web(s) into discrete diapers or other absorbent articles.
After the final knife cut, the discrete diapers or absorbent articles may also then be folded prior to being packaged. For example, some process may be configured to fold absorbent articles into a U-shape about a lateral centerline, wherein folding blades engage and force advancing absorbent articles into a nip between two conveyor belts. For example, in some diaper folding processes, folding blades may contact the crotch region of the diaper, forcing the diaper into the folding nip and thereby placing the front and back waist regions into a facing relationship. As such, the folding blades rotate at a certain angular velocity, which produces a sinusoidal shape of the speed of the leading edge through the nip over time. Thus, there is a relatively narrow time period where the folded product is propelled into the folding nip at a maximum leading edge speed.
In some systems, the conveyor belts move at faster speeds than the maximum leading speed to avoid a product shearing defect, which can happen when the folding blades on the inside of a folded diaper move faster than the belts on the outside of the folded diaper. As such, the diaper is accelerated by the folding blades to a certain maximum speed through the nip, and then is quickly accelerated to surface speeds of the conveyor belts. The timing of this acceleration may depend on various factors, such as: the friction between the conveyor belts and the surface of the diapers; the compressibility of the diapers; and the gap settings between the conveyor belts. All these factors may vary over time or even from one diaper to the next, which in turn, causes the acceleration timing to vary.
Variations in the acceleration timing in during the folding process can lead to variability and inconsistencies with respect to how well the opposing ends of the bi-folded diapers align with each other, affecting the overall dimensions of the folded diapers. Such inconsistencies may create negative consumer perceptions and may also require relatively larger packaging sizes than would otherwise be necessary. The timing variation can also causes folded diapers to arrive at the subsequent packaging units at different times, which can lead to jams at these units, and/or excessive reject scrap.
Consequently, it would be beneficial to provide a system for reliable, high speed folding of absorbent articles that is configured to maximize the period of time wherein the leading edges of the folding blades move at maximum speeds during the folding process, in turn, reducing the timing wherein the folded articles accelerate to the belt speeds and leading to reduced variability in the dimensions of the folded articles.
The present disclosure relates systems and methods for folding absorbent articles advancing in a converting line. The folding processes and apparatuses herein may be configured with tucker blades that are configured to maximize the period of time wherein the leading edges of the tucker blades move at maximum speeds during the folding process.
In one form, a method for folding absorbent articles includes the steps of: conveying an absorbent article at a first speed, S1, in a first direction on a first carrier to define an article transport plane, wherein the absorbent article includes a first surface and a second surface opposite the first surface, wherein the absorbent article includes a first end and a second end, and wherein the absorbent article includes a first end region and a second end region, and a central region located between the first and second end regions; advancing the first end region past a nip defined between the first carrier and a second carrier; rotating a tucker blade, wherein the tucker blade includes a first surface and a second surface opposite the first surface, and wherein the tucker blade includes a leading edge and a trailing edge, wherein the leading edge and the trailing edge move through the article transport plane at the nip as the tucker blade rotates; contacting the first surface of the absorbent article with the leading edge of the tucker blade thereby creating a fold line across the central region of the absorbent article; redirecting the central region of the absorbent article in a second direction into the nip with the leading edge of the tucker blade; maintaining contact between the fold line and the leading edge of the tucker blade for a total time period, Ttot, while portions of the leading edge contacting the fold line move at speeds, Smax, of at least 0.8*S1 for a time period, Tmax, of at least 0.5*Ttot; and conveying the folded absorbent article in the second direction between the first carrier and the second carrier away from the article transport plane.
In another form, a method for folding absorbent articles includes the steps of: advancing a continuous length of absorbent articles absorbent articles at a line speed, SL, in a machine direction; cutting the continuous length of absorbent articles into discrete absorbent articles, wherein each discrete absorbent article includes a first surface and a second surface opposite the first surface, wherein each discrete absorbent article includes a first end region and a second end region, and a central region located between the first and second end regions, and wherein each discrete absorbent article includes a first end and a second end, and a having a pitch length, PL, defined by a distance in the machine direction between the first end and the second end; conveying each discrete absorbent article at a first speed, S1, in a first direction on a first carrier to define an article transport plane, wherein S1 is greater than SL; advancing the first end and the first end region of each discrete absorbent article past a nip defined between the first carrier and a second carrier; rotating a tucker blade through the article transport plane at the nip as the tucker blade rotates; contacting the first surface of a discrete absorbent article with a leading edge of the tucker blade thereby creating a fold line across the central region of the discrete absorbent article; redirecting the central region of the absorbent article in a second direction into the nip with the leading edge of the tucker blade; and maintaining contact between the fold line and the leading edge of the tucker blade for a total time period, Tot, while portions of the leading edge contacting the fold line move at speeds, Smax, of at least 0.8*S1 for a time period, Tmax, of at least 0.5*Ttot; and conveying the folded absorbent article in the second direction away from the article transport plane.
In yet another form, an apparatus for folding absorbent articles includes: a knife adapted to cut discrete absorbent articles from a continuous length of absorbent articles advancing in a machine direction at a line speed, SL; a first carrier adapted to convey an absorbent article in a first direction and a second direction at a first speed, S1; a second carrier adjacent the first carrier to define a nip extending in the second direction; a tucker blade including a leading edge, wherein the leading edge moves through the article transport plane at the nip as the tucker blade rotates; and a motor adapted to rotate the tucker blade so as to maintain contact between the absorbent article and the leading edge of the tucker blade for a total time period, Ttot, while portions of the leading edge contacting the absorbent article move at speeds, Smax, of at least 0.8*S1 for a time period, Tmax, of at least 0.5*Ttot.
The following term explanations may be useful in understanding the present disclosure:
“Absorbent article” is used herein to refer to consumer products whose primary function is to absorb and retain soils and wastes. “Diaper” is used herein to refer to an absorbent article generally worn by infants and incontinent persons about the lower torso. The term “disposable” is used herein to describe absorbent articles which generally are not intended to be laundered or otherwise restored or reused as an absorbent article (e.g., they are intended to be discarded after a single use and may also be configured to be recycled, composted or otherwise disposed of in an environmentally compatible manner).
An “elastic,” “elastomer” or “elastomeric” refers to materials exhibiting elastic properties, which include any material that upon application of a force to its relaxed, initial length can stretch or elongate to an elongated length more than 10% greater than its initial length and will substantially recover back to about its initial length upon release of the applied force.
As used herein, the term “joined” encompasses configurations whereby an element is directly secured to another element by affixing the element directly to the other element, and configurations whereby an element is indirectly secured to another element by affixing the element to intermediate member(s) which in turn are affixed to the other element.
“Longitudinal” means a direction running substantially perpendicular from an end edge, such as a waist edge to a longitudinally opposing end edge, or waist edge of an absorbent article when the article is in a flat out, uncontracted state, or from a waist edge to the bottom of the crotch, i.e. the fold line, in a bi-folded article. Directions within 45 degrees of the longitudinal direction are considered to be “longitudinal.” “Lateral” refers to a direction running from a longitudinally extending side edge to a laterally opposing longitudinally extending side edge of an article and generally at a right angle to the longitudinal direction. Directions within 45 degrees of the lateral direction are considered to be “lateral.”
The term “substrate” is used herein to describe a material which is primarily two-dimensional (i.e. in an XY plane) and whose thickness (in a Z direction) is relatively small (i.e. 1/10 or less) in comparison to its length (in an X direction) and width (in a Y direction). Non-limiting examples of substrates include a web, layer or layers or fibrous materials, nonwovens, films and foils such as polymeric films or metallic foils. These materials may be used alone or may comprise two or more layers laminated together. As such, a web is a substrate.
The term “nonwoven” refers herein to a material made from continuous (long) filaments (fibers) and/or discontinuous (short) filaments (fibers) by processes such as spunbonding, meltblowing, carding, and the like. Nonwovens do not have a defined woven or knitted filament pattern.
The term “machine direction” (MD) is used herein to refer to the direction of material flow through a process. In addition, relative placement and movement of material can be described as flowing in the machine direction through a process from upstream in the process to downstream in the process.
The term “cross direction” (CD) is used herein to refer to a direction that is generally perpendicular to the machine direction.
The present disclosure relates to methods and apparatuses for manufacturing absorbent articles, and more particularly, systems and methods for folding absorbent articles advancing in a converting line. As discussed in more detail below, the folding processes and apparatuses herein may be configured with tucker blades that are configured to maximize the period of time wherein the leading edges of the tucker blades move at maximum speeds during the folding process. During the converting process, various continuous substrates and/or discrete components may be combined with each other to form a continuous length of absorbent articles. At a downstream portion of the converting process, the continuous length of absorbent articles may be subjected to a final knife and cut to create separate and discrete absorbent articles in the form of diapers. Each discrete absorbent article includes a first surface and a second surface opposite the first surface, and each discrete absorbent article includes a first end and a second end, as well as a first end region and a second end region separated from each other by a central region. From the final knife, the discrete absorbent articles may then advance to a folding system. More particularly, the folding system includes a first carrier that advances the absorbent articles in a first direction to define an article transport plane. A second carrier is located adjacent the first carrier to define a nip extending in a second direction, and one or more tucker blades are rotated adjacent the nip. As discussed in more detail, each tucker blade includes a leading edge that moves through the article transport plane as the tucker blade rotates. The first carrier then advances the first end region of each discrete absorbent article past the nip. The discrete absorbent articles are then folded by redirecting the central region of each absorbent article in a second direction into the nip with the leading edge of the tucker blade, thereby creating a fold line across the central region of the absorbent article.
As discussed in more detail below, the first carrier includes a first carrier surface, and the second carrier includes a second carrier surface, each moving at a first speed S1. Thus, the first carrier conveys the absorbent articles at the first speed, S1, to the nip. A leading edge of a tucker blade is rotated into contact with the first surface of the absorbent article thereby creating a fold line across the central region of the absorbent article. As the tucker blade redirects the absorbent article into and through the nip, portions of the leading edge of the tucker blade maintain contact with the fold line for a total time period, Ttot. And the portion of the leading edge of the tucker blade that is in contact with the fold line move at maximum speeds Smax for a time period Tmax. The folded article is then conveyed in the second direction at the first speed S1 between the first carrier and the second carrier away from the article transport plane. As discussed below, Smax and Tmax may have various values. For example, in some configurations, Smax may be at least: 0.8*S1; 0.95*S1; or S1. In addition, in some configurations, Tmax may be at least: 0.5*Ttot; 0.7*Tot; or 0.9*Tot.
In some embodiments, the tucker blades may also be configured with an extended trailing edge that prevent the first and the second end regions of the absorbent articles from colliding with each other during the folding process. More particularly, the tucker blades each include a first surface and a second surface opposite the first surface. And the tucker blades may be configured such that as the leading edge continues to push the article along the fold line in the second direction through the nip, the first surface of the first end region of the absorbent article is brought into a facing relationship with the first surface of the tucker blade. At the same time, the first surface of the second end region of the absorbent article is brought into a facing relationship with the second surface of the tucker blade. And the first end and the second end of the folded absorbent article are separated by tucker blade. As such, the first and second end regions of the absorbent article may be brought into contact with opposing sides of the tucker blade.
It is to be appreciated that although the methods and apparatuses herein may be configured to fold various types of products, the methods and apparatuses herein are discussed below in the context of manufacturing absorbent articles. In particular, the methods and apparatuses are discussed in the context of folding advancing diapers during production. For the purposes of a specific illustration,
As shown in
The absorbent article may also include an elastic waist feature 143 shown in
As shown in
The diaper 102 may be provided in the form of a pant-type diaper or may alternatively be provided with a re-closable fastening system, which may include fastener elements in various locations to help secure the diaper in position on the wearer. For example, fastener elements 148 may be located on the first and second ears 110, 112 and may be adapted to releasably connect with one or more corresponding fastening elements located in the first or second waist regions. It is to be appreciated that various types of fastening elements may be used with the diaper.
Referring back to
It is to be appreciated that the term “reject bin” is used herein generically to designate the location where rejected diapers may be conveyed. As such, the reject bin 502 may include various systems. For example, the reject bin may 502 may include additional systems such as conveyors and/or pneumatic systems to provide additional transport or conveyance of rejected diapers to other locations.
As mentioned above, the converting apparatus includes a folding system adapted to fold absorbent articles 100 advancing through the converting process.
With continued reference to
It is to be appreciated that the folding system 700 may be configured with various numbers of tucker blades 726. For example, as shown in
With continued reference to
It is to be appreciated that the tucker blades may be positioned in various ways with respect to the first and/or second carriers 702, 708. For example as shown in
To provide additional context to the above discussion, the following provides a description of one example implementation of the folding systems and processes herein with respect to
As shown in
With continued reference to
As shown in
With continued reference to
As shown in
As previously mentioned, the tucker blades 726 may be configured to maximize the period of time wherein the leading edges 732 of the tucker blades 726 move at maximum speeds during the folding process while in contact with the fold line 412. As discussed above with reference to
It is to be appreciated that the leading edges 732 of the tucker blades 726 may be configured to provide various relative values of S1, Smax, Tot, and Tmax. For example, in one configuration, Smax may be values of at least 0.8*S1 or greater. In another configuration, Smax may be values of at least 0.95*S1 or greater. In yet another configuration, Smax may be values equal to S1. In some configurations, Tmax may be at least 0.5*Ttot or greater. In yet other configurations, Tmax may be at least 0.7*Tot or greater. In yet another configuration, Tmax may be at least 0.9*Tot or greater.
Although the present disclosure is provided in the context of manufacturing absorbent articles, and diapers in particular, it is to be appreciated that the systems and methods disclosed herein may be applied to the manufacture of various types of articles and products involving the monitoring of various different types of substrates and/or components. Examples of other products include absorbent articles for inanimate surfaces such as consumer products whose primary function is to absorb and retain soils and wastes that may be solid or liquid and which are removed from inanimate surfaces such as floors, objects, furniture and the like. Non-limiting examples of absorbent articles for inanimate surfaces include dusting sheets, pre-moistened wipes or pads, paper towels, dryer sheets. Additional examples of products include absorbent articles for animate surfaces whose primary function is to absorb and contain body exudates and, more specifically, devices which are placed against or in proximity to the body of the user to absorb and contain the various exudates discharged from the body. Non-limiting examples of incontinent absorbent articles include diapers, adult incontinence briefs and undergarments, feminine hygiene garments such as panty liners, absorbent inserts, and the like, toilet paper, tissue paper, facial wipes or cloths, toilet training wipes. Still other examples of products include packaging components and substrates and/or containers for laundry detergent, which may be produced in pellets or pouches and may be manufactured in a converting or web process or even discreet products produced at high speed such as high-speed bottling lines or cosmetics. Still other examples of products include a web substrate containing labels to be placed on bottles and/or containers for laundry detergent, fabric enhancers, hair and beauty care products, and cleaning products. Further, it is to be appreciated that although the present disclosure often refers to monitoring or viewing substrates and/or webs, it is to be appreciated that the inspection systems discussed herein can be used to monitor and/or view combinations of webs and individual components as well as parts added as a continuous web of material and parts added as a discontinuous web of material.
It is also to be appreciated that various components of the converting apparatus 300 may have various configurations. For example, although the first carrier 702 and the second carrier 708 are depicted as belt conveyors, it is to be appreciated that the first carrier 702 and/or the second carrier 708 may be configured in various ways. For example, in some embodiments, the first carrier 702 and/or second carrier 708 may be configured as a rotating drum. In order to help mitigate problems associated with uncontrolled movement of the discrete diapers 100 during conveyance, the first carrier 702 and/or second carrier 708 may also include a vacuum system in communication with a porous and/or apertured belt or other foraminous carrier surface 716, 722 that allows the suction force of the vacuum system to be exerted on absorbent articles 100. In some embodiments, additional belt conveyors may be located adjacent the first and/or second carriers 702, 708 to create additional nips extending along the first direction 704, wherein absorbent articles 100 are maintained in a flattened state while advancing in the first direction 704.
The dimensions and values disclosed herein are not to be understood as being strictly limited to the exact numerical values recited. Instead, unless otherwise specified, each such dimension is intended to mean both the recited value and a functionally equivalent range surrounding that value. For example, a dimension disclosed as “40 mm” is intended to mean “about 40 mm.”
Every document cited herein, including any cross referenced or related patent or application and any patent application or patent to which this application claims priority or benefit thereof, is hereby incorporated herein by reference in its entirety unless expressly excluded or otherwise limited. The citation of any document is not an admission that it is prior art with respect to any invention disclosed or claimed herein or that it alone, or in any combination with any other reference or references, teaches, suggests or discloses any such invention. Further, to the extent that any meaning or definition of a term in this document conflicts with any meaning or definition of the same term in a document incorporated by reference, the meaning or definition assigned to that term in this document shall govern.
While particular embodiments of the present invention have been illustrated and described, it would be obvious to those skilled in the art that various other changes and modifications can be made without departing from the spirit and scope of the invention. It is therefore intended to cover in the appended claims all such changes and modifications that are within the scope of this invention.
This application claims the benefit of U.S. Provisional Application No. 61/824,013, filed on May 16, 2013, which is hereby incorporated by reference.
Number | Date | Country | |
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61824013 | May 2013 | US |