Absorbent article comprising multi-layer cushion layer

JP2025169410A5Pending Publication Date: 2026-03-19PROCTER & GAMBLE CO
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
PROCTER & GAMBLE CO
Filing Date
2025-08-22
Publication Date
2026-03-19

AI Technical Summary

Technical Problem

Absorbent articles with high superabsorbent polymer content lack softness due to the absence of cellulose fibers, causing a rough feeling through the backsheet.

Method used

Incorporating a multi-layer cushioning layer between the absorbent core and the backsheet, with varying basis weights and attachment configurations to enhance cushioning and flexibility.

Benefits of technology

The multi-layer cushioning layer improves softness and comfort by optimizing cushioning in the central area while maintaining flexibility and reducing material costs.

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Abstract

To provide absorbent articles combining high absorbency properties and softness.SOLUTION: An absorbent article comprises a liquid-permeable topsheet 24, a liquid-impermeable backsheet 25, an absorbent core 28 and a cushion layer 60 between the absorbent core 28 and the backsheet 25. The cushion layer comprises at least two sub-layers 61 and 62. The sub-layers advantageously have different width or a bonded to each other by one or more longitudinally extending attachment area 70.SELECTED DRAWING: Figure 3A
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Description

[Technical Field]

[0001] FIELD OF THE INVENTION The present invention relates to absorbent articles for personal hygiene, such as baby diapers and adult incontinence products.The absorbent article comprises a cushioning layer disposed between an absorbent core and a backsheet. [Background technology]

[0002] Personal absorbent hygiene articles, such as diapers, are used by infants, toddlers, or incontinent adults to prevent bed or clothing soiling. Continuous improvement over the years has resulted in diapers that are comfortable to use and highly effective at preventing leakage. The absorbent core within the article contains absorbent materials that absorb and store bodily fluids. Superabsorbent polymers (SAPs) mixed with cellulose fibers are widely used in industry as absorbent materials, but they tend to reduce or even eliminate absorbent pulp fibers from the absorbent core.

[0003] One drawback of cores containing a high proportion of SAP and little or no cellulose fibers is that caregivers can feel individual superabsorbent particles through the backsheet. This can be perceived by users as a rough feeling, which can be undesirable. U.S. Patent Application Publication No. 2019 / 0374397(A1) discloses the use of a masking material positioned at least partially between the absorbent core and the backsheet to avoid this rough feeling. The masking material still has sufficiently low stiffness to allow the absorbent article to remain flexible and conform to the wearer. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] U.S. Patent Application Publication No. 2019 / 0374397(A1) Summary of the Invention [Problem to be solved by the invention]

[0005] There is a continuing need for absorbent articles that combine high absorbency with softness. [Means for solving the problem]

[0006] The present invention relates to an absorbent article for personal hygiene. The absorbent article comprises a liquid-permeable topsheet, a liquid-impermeable backsheet, an absorbent core containing an absorbent material between the topsheet and the backsheet, and a cushioning layer disposed between the absorbent core and the backsheet. The absorbent material comprises at least 50% by weight of a superabsorbent polymer, optionally mixed with cellulose fibers. According to the present invention, the cushioning layer comprises at least two sublayers. The sublayers may be individual layers stacked together, or the sublayers may be formed by folding a layer of cushioning layer material, with the folds forming the sublayers.

[0007] In a first embodiment, the sub-layers are arranged so that they have a higher basis weight in a central area along which the cushioning layer extends in the longitudinal direction relative to the lateral areas disposed laterally outward of the central area. In this way, the cushioning layer provides increased cushioning in this central area of ​​the article where it is most needed. This can be achieved by providing at least two sub-layers with different widths.

[0008] In a second embodiment, at least two vertically adjacent sub-layers forming the cushioning layer are attached to one another at their interface along a central longitudinally extending attachment area but are not attached to one another along lateral unattached areas disposed laterally outward of the central attachment area, which provides better flexibility of the cushioning layer, particularly when subjected to lateral compression.

[0009] In a third aspect, the cushion layer and lower substrate layer of the core wrap are only partially bonded to each other at their interface, and in particular the bonded portions comprise a longitudinally extending bonded portion and, optionally, one or more corner bonded portions or one or more lateral bonded edge portions.

[0010] Any of the aspects may, of course, be combined with any of the others, for example, the first aspect may be combined with the second aspect, the second aspect may be combined with the third aspect, and / or the first, second and third aspects may be combined within an absorbent article. [Brief explanation of the drawings]

[0011] While the specification concludes with claims particularly pointing out and distinctly claiming the invention, it is believed that the contents of this specification will be better understood from the following description read in conjunction with the accompanying drawings. [Figure 1] FIG. 1 is a top view of an exemplary absorbent article in the form of a tape diaper with some layers partially removed. [Figure 2] FIG. 2 is a schematic cross-sectional view taken along line 2-2 in FIG. [Figure 3A] FIG. 3 is a schematic exploded cross-sectional view taken along line 3-3 of FIG. 1. [Figure 3B] FIG. 3B is a plan view showing the adhesive pattern between the core wrap and cushioning layer of FIG. 3A. [Figure 4A] 4A illustrates an alternative construction to that of FIGS. 3A-3B having a different adhesive pattern between the core wrap and cushion layer of FIG. 4A. [Figure 4B] 4B shows an alternative construction to that of FIGS. 3A-3B having a different adhesive pattern between the core wrap and cushion layer of FIG. 4A. [Figure 5] 1 shows an alternative stacked multi-layer structure. [Figure 6] 1 shows an alternative stacked multi-layer structure. [Figure 7] 1 shows an alternative stacked multi-layer structure. [Figure 8] 1 shows an alternative stacked multi-layer structure. [Figure 9] 1 shows an alternative stacked multi-layer structure. [Figure 10] 1 shows an alternative stacked multi-layer structure. [Figure 11] 1 shows an alternative stacked multi-layer structure. [Figure 12] 1 shows an alternative stacked multi-layer structure. [Figure 13] 1 shows an alternative Z-fold multilayer structure. [Figure 14] 1 shows an alternative Z-fold multilayer structure. [Figure 15] 1 shows an alternative omega-fold multilayer structure. DETAILED DESCRIPTION OF THE INVENTION

[0012] definition As used herein, "absorbent article" refers to a device that is placed against or adjacent to the wearer's body to absorb and contain various bodily exudates. Absorbent articles include diapers (baby and toddler diapers and adult incontinence diapers), absorbent inserts (intended to be inserted into an outer cover to form a diaper or pants), feminine care absorbent articles (such as sanitary napkins and panty liners), and the like. The present invention is particularly suitable for use in absorbent articles in the form of disposable tape diapers and disposable pants-type diapers. As used herein, the term "exudates" includes, but is not limited to, urine, blood, vaginal discharge, sweat, and feces.

[0013] As used herein, "diaper" generally refers to an absorbent article worn by infants, toddlers, and incontinent adults around the lower torso, encircling the waist and legs of the wearer, and adapted, among other things, to receive and contain urinary and fecal exudates. Diapers can generally be characterized as either tape diapers or pant diapers. In tape diapers, the back half of the diaper can be removably attached to the front half by a tape system. In pant diapers, the waist opening and leg openings are pre-formed by left and right seams at the edges of the diaper pants. In diaper pants, a caregiver (or the wearer, if possible) inserts the wearer's feet and legs into the leg openings and then slides the pant diaper into position around the wearer's lower torso. Pant diapers may be preformed by any suitable technique, including, but not limited to, joining portions of the absorbent article together using refastenable and / or non-refastenable bonding agents (e.g., seams, welding, adhesives, cohesive bonding agents, fasteners, etc.) Pant diapers may be preformed at any location along the circumference of the article (e.g., side fastening, front waist fastening).

[0014] As used herein, the terms "nonwoven," "nonwoven web," and "nonwoven layer" are used interchangeably. A nonwoven is broadly defined as a primarily planar, man-made fiber assembly imparted with a designed level of structural integrity by physical and / or chemical means other than weaving, knitting, or papermaking. The fibers can be of natural origin, such as cotton or bamboo fibers, or of man-made origin. Synthetic fibers can be selected from the group consisting of polyolefins (such as polyethylene, polypropylene, or combinations and blends thereof), polyethylene terephthalate (PET), co-PET, polylactic acid (PLA), polyhydroxy alkanoids (PHA), or blends or combinations thereof. The fibers can be staple fibers (e.g., carded nonwoven webs / layers) or continuous fibers (e.g., spunbond or meltblown nonwoven webs / layers).

[0015] Nonwoven webs / layers can be formed by many processes, such as meltblowing, spunlay, solvent spinning, electrospinning, and carding, and the fibers can be consolidated by, for example, hydroentanglement (in spunlaced nonwoven webs / layers), air-through bonding (using hot air blown through the fiber layer in the thickness direction), needle punching, one or more bond patterns and bond impressions created by localized compression and / or application of heat or ultrasonic energy, or combinations thereof. The fibers can alternatively or additionally be consolidated by the use of a binder. The binder can be provided in the form of binder fibers (which are subsequently melted) or in a liquid, such as a styrene butadiene binder. The liquid binder is provided to the fibers (e.g., by spraying, printing, or foam application) and then cured to solidify. The basis weight of a nonwoven is typically measured in grams per square meter (g / m 2 )

[0016] Nonwoven materials can be formed from a variety of fibrous materials (PP, PE, PET, coPET, bicomponent, and mixtures thereof), and in some cases the fibers or nonwovens can be treated to enhance certain fluid handling properties, such as fluid permeability or fluid barrier properties.

[0017] "dtex," as used herein, refers to the unit used to indicate the fineness of a filament / fiber. This unit represents the mass of the filament / fiber in grams per 10,000 meters of length.

[0018] "Hydrophilic" describes the surface of a substrate that can be wetted by aqueous fluids (e.g., aqueous body fluids) deposited on the substrate. Hydrophilicity and wettability are typically defined by the contact angle of the fluid and the wicking time of the fluid, e.g., the wicking time through a nonwoven fabric. This is discussed in detail in a publication of the American Chemical Society, edited by Robert F. Gould, entitled "Contact Angle, Wettability and Adhesion" (Copyright 1964). A substrate surface is said to be wetted by a fluid (i.e., hydrophilic) either when the contact angle between the fluid and the surface is less than 90° or when the fluid tends to spread spontaneously across the surface of the substrate (usually both conditions coexist). Conversely, a substrate is considered "hydrophobic" when the contact angle is greater than 90° and the fluid does not spread spontaneously across the surface of the fabric.

[0019] "Longitudinal" refers to a direction extending perpendicularly from the center of a waist edge of the article to the center of the opposing waist edge, conceptually defined as the longitudinal centerline. The absorbent article is constructed symmetrically about this longitudinal centerline. "Transverse" refers to a direction perpendicular to the longitudinal direction. As used herein, "longitudinally extending" refers to a characteristic of the article that extends at least twice as far in the longitudinal direction as it does in the lateral direction.

[0020] "Body-facing" and "garment-facing" refer to the relative position of an element, or a surface of an element, or a group of elements, respectively. "Body-facing" means that the element or surface is closer to the wearer during wear than another element of the same component. "Garment-facing" means that the element or surface is farther away from the wearer during wear than another element of the same component. A garment-facing surface may face another garment on the wearer, or other items such as bedding, or the atmosphere.

[0021] "Comprise, comprising, and comprises" are open-ended terms, each specifying the presence of the subsequently described feature (e.g., component), but not excluding the presence of other features (e.g., elements, steps, or components known in the art or disclosed herein). These terms based on the verb "comprise" encompass the narrower term "consisting essentially of," which excludes any unrecited element, step, or ingredient that materially affects the manner in which the feature performs its function, and the term "consisting of," which excludes any unspecified element, step, or ingredient.

[0022] Overview of Exemplary Diaper 20 1 is a plan view of an exemplary tape-type diaper 20 in a laid-flat position, with portions of the diaper cut away to more clearly show the diaper's construction. The diaper 20 is shown for illustrative purposes only. The structure of the present invention can be used in a wide variety of other absorbent articles, such as absorbent diaper pants having preformed side seams. The side seams of the pant article can be cut or otherwise opened when it is desired to place the pant in a laid-flat configuration.

[0023] As illustrated in FIGS. 1-2 , the absorbent article comprises a topsheet 24, a backsheet 25, and an absorbent core 28 positioned between the topsheet 24 and the backsheet 25. The absorbent core 28 includes an absorbent material 30 having a deposition area with a predetermined shape in the plane formed by the article when laid flat. The shape of the deposition area of ​​absorbent material 30 may be substantially rectangular, as illustrated in FIG. 1 , or may have another shape, such as a tapered profile like an hourglass shape. The absorbent core 28 may optionally include longitudinally extending channels 26, which are areas that are substantially free of absorbent material, to facilitate fluid distribution along the length of the absorbent article. When discussing the vertical positions of elements of the article, "top" or "top" refers to an orientation or direction closer to the topsheet, and "bottom" or "bottom" refers to an orientation or direction closer to the backsheet.

[0024] Absorbent articles, such as the diaper 20 illustrated in Figures 1-2, typically include an acquisition layer 52 immediately below the topsheet. The acquisition layer may be, for example, a surfactant-treated, latex-bonded nonwoven acquisition layer. A distribution layer 54 may optionally be present between the acquisition layer and the absorbent core. The distribution layer 54 may be composed of, for example, crosslinked cellulosic fibers. The prior art discloses many types of acquisition-distribution layers; see, for example, WO 2000 / 59430, WO 95 / 10996, U.S. Pat. No. 5,700,254, and WO 02 / 067809.

[0025] The absorbent article 20 may also include inner barrier leg cuffs 32 and outer leg cuffs 34. The inner barrier cuffs 34 may extend upward from the surface of the article to provide retention of exudates, while the outer cuffs 33 are typically formed in the plane of the chassis of the article as defined by the topsheet and backsheet, as is known in the art. These cuffs are preferably elasticized, as is known in the art, using, for example, elastic yarns 33, 35 as depicted in the figures. Additionally, the absorbent article may further include a fastening system, such as an adhesive fastener system or a hook-and-loop fastener member, which may include tape tabs 42 disposed on the back ears 40, such as adhesive tape tabs or tape tabs with hook elements, that cooperate with landing zones 44 (e.g., nonwoven webs that provide loops in a hook-and-loop fastener system). Tape diapers typically have back ears 40 and front ears 46, which are typically not present in pant-type absorbent articles that have preformed side seams.

[0026] The front ears 41 and / or back ears 40 may be separate components attached to the chassis of the absorbent article, or alternatively, these portions may be continuous with portions of the topsheet and / or backsheet, thereby forming all or part of the front ears and / or back ears 41, 40. Combinations of the above are also possible, such that the front ears and / or back ears are formed by portions of the topsheet and / or backsheet, while additional material is attached to form the entire front ear and / or back ear. The front ears and / or back ears may be elastic or inelastic. Also, the front ears 40 may be applied as separate components attached to the absorbent article, while the back ears (or portions thereof) 46 may be continuous with portions of the backsheet and / or topsheet, or vice versa.

[0027] The absorbent article, whether a tape diaper or a pant diaper, can be conceptually divided into a front waist region 36 (oriented toward the wearer's abdomen in use), a back waist region 38 opposite the front waist region 36 (oriented toward the wearer's back), and a crotch region 37 located between the front waist region 36 and the back waist region 38. The crotch region, front waist region, and back waist region each represent one-third of the absorbent article as measured along a longitudinal centerline 80. The longitudinal centerline 80 is an imaginary line that bisects the article along its length. The transverse centerline 90 is an imaginary line that is perpendicular to the longitudinal centerline 80 in the plane of the diaper when laid flat and runs through the middle of the length of the article. The perimeter of the diaper 20 is defined by the outer edges of the diaper. Both longitudinal edges 13 may extend generally parallel to a longitudinal centerline 80 of the diaper 20, and the front waist edge 10 and back waist edge 12 are typically joined to the longitudinal edges and generally parallel to a transverse centerline 90 of the article 20.

[0028] Additionally, the absorbent article may comprise other optional but conventional elements not shown for simplicity, such as elastic rear waist features, front waist elastic features, lotion applied on the body-facing surface of the topsheet, or a urine indicator disposed inside the backsheet that changes color when in contact with urine.

[0029] The topsheet 24, backsheet 25, absorbent core 28, and other article components may be assembled in a variety of well-known configurations, unless otherwise indicated, by gluing, heat embossing, ultrasonic bonding, or combinations thereof, among others. Exemplary diaper constructions are outlined in U.S. Patent Nos. 3,860,003, 5,221,274, 5,554,145, 5,569,234, 5,580,411, and 6,004,306.

[0030] The topsheet 24 is the portion of the absorbent article 20 that contacts the wearer's skin. At least a portion of, or the entire topsheet, is liquid pervious, allowing liquid body exudates to readily penetrate through its thickness. Suitable topsheets can be made from a wide range of materials, including, for example, porous foams, reticulated foams, perforated plastic films, woven or nonwoven materials, natural fibers (e.g., wood fibers or cotton fibers), synthetic fibers or filaments (e.g., polypropylene fibers, or bicomponent PE / PP fibers, or mixtures thereof), or combinations of natural and synthetic fibers. The topsheet can have one or more layers. The topsheet can be perforated or nonperforated, have any suitable three-dimensional features, and / or have multiple embossments (e.g., bonded patterns). Any portion of the topsheet can be coated with a skin care composition, an antimicrobial agent, a surfactant, and / or other benefit agent. The topsheet can be hydrophilic or hydrophobic, or can have hydrophilic and / or hydrophobic portions or layers. If the topsheet is hydrophobic, there will typically be holes present to allow body exudates to pass through the topsheet.

[0031] The backsheet 25 is generally that portion of the absorbent article 20 that constitutes all or a portion of the garment-facing surface of the absorbent article. The backsheet 25 may be at least partially joined to the topsheet 24, the absorbent material 30, the substrate layer 46, or the cushioning layer 60 by any attachment method known to those skilled in the art. The backsheet 25 prevents, or at least inhibits, bodily exudates absorbed and contained within the absorbent material 30 from soiling articles such as bed sheets, undergarments, and / or clothing. The backsheet is typically liquid impervious, or at least substantially liquid impervious.

[0032] The backsheet 25 typically comprises a thin, impermeable plastic film, such as a thermoplastic film, having a thickness of about 0.01 mm to about 0.05 mm. The backsheet material may be breathable, allowing vapors to escape from the absorbent article while still preventing, or at least inhibiting, body exudates from passing through the backsheet. A breathable backsheet has a tensile strength of 1,000 to 15,000 g / m2, as measured using a PERMATRAN-W Model 101K (Mocon, Inc., Minneapolis, MN) or equivalent in accordance with Nonwoven Standard Procedure NWSP 70.4.R0(15), with the following specifications: experiments are conducted in a controlled laboratory at 23°C ± 2°C and 50% RH ± 2% RH, and the instrument cell is heated to 37.8°C (100°F). 2 / 24 hours, or 1,000 to 10,000 g / m 2 / 24 hours, or 1,500 to 10,000 g / m 2 / 24-hour Water Vapor Transmission Rate (WVTR).

[0033] The backsheet 25 may also include a backsheet nonwoven outer cover (not shown). The backsheet nonwoven outer cover is typically a thin nonwoven material laminated to the outer surface of the backsheet film. The outer cover nonwoven may thus form the outermost, garment-facing surface of the backsheet. The backsheet nonwoven outer cover may include bond patterns, openings, and / or three-dimensional features to improve the feel of the backsheet.

[0034] The wearer-facing side of the backsheet typically has applied thereto an extensive adhesive coating 75, which may typically be applied by spiral glue application as is known in the art. This adhesive coating 75 may be used to secure the cushioning layer 60 to the backsheet 25.

[0035] The absorbent material 30 comprises at least 50% superabsorbent polymer particles by weight of the absorbent material, and preferably more. Suitable superabsorbent polymers are any water-insoluble, water-swellable polymers capable of absorbing large amounts of fluid, as known in the art. The term "superabsorbent polymer" as used herein refers to absorbent materials, typically crosslinked polymeric materials, capable of absorbing at least 10 times their weight in 0.9% saline, as measured using the Centrifuge Retention Capacity (CRC) test (EDANA Method WSP241.2.R3(12)). The superabsorbent polymers may specifically have a CRC value greater than 20 g / g, or greater than 24 g / g, or between 20 and 50 g / g, or between 20 and 40 g / g, or between 24 and 35 g / g.

[0036] The absorbent material may further comprise superabsorbent polymer particles in an amount of at least 60%, at least 70%, at least 80%, or at least 90% by weight of the total weight of the absorbent material. The remainder of the absorbent material may be cellulose or synthetic fibers mixed with the superabsorbent polymer particles. The absorbent material may be completely free of cellulose fibers or may comprise at least one layer of superabsorbent polymer particles that does not contain cellulose fibers. Such absorbent cores that do not contain cellulose fibers are referred to in the art as airfelt-free cores. The superabsorbent particles may be secured by adhesive or a microfiber net of a thermoplastic polymer, as known in the art, or alternatively, may be supported within a high-loft porous nonwoven fabric. In airfelt-free cores, the SAP particles can be encapsulated in pockets, see, for example, U.S. Pat. No. 5,433,715 (Tanzer et al.), WO 2012 / 052172 (Van Malderen), or can be fixed by a fiber network of adhesive fibers (e.g., U.S. Pat. App. Pub. No. 2008 / 312617, Hundorf et al.), or fixed within the pores of high-loft nonwovens (see, for example, WO 2016 / 06021, Bianchi et al.).

[0037] The absorbent material 30 typically defines a deposition area having a predetermined shape when considered in the plane of the absorbent article as shown in Figure 1. The deposition area can have any shape, particularly a rectangular shape as illustrated in Figure 1, although other shapes such as a dogbone or hourglass shape tapering in the crotch region of the article are common.

[0038] The absorbent material 30 is disposed between an upper substrate layer 45 oriented toward the topsheet and a lower substrate layer 46 oriented toward the backsheet. These substrate layers sandwich the absorbent material and together form the absorbent core 28. The upper and lower substrate layers are collectively referred to as a core wrap. The upper and lower substrate layers 45 and 46 can be any material capable of providing support for the absorbent material. The substrate layer typically comprises a nonwoven web, although other suitable materials, such as paper, are possible. The substrate layer has a low basis weight (typically less than 20 gsm, particularly less than 14 gsm). A preferred substrate material is an SMS nonwoven (Spunbond-Meltblown-Spunbond, spunbond-meltblown-spunbond laminate), as known in the art. For absorbent articles that do not require an upper acquisition-distribution layer or system 52, 54, the upper substrate layer 45 can be provided directly between the topsheet 24 and the absorbent material 30.

[0039] The absorbent core may include a layer of adhesive 72, referred to as a secondary glue, on the inner surface of the upper and / or lower substrates facing the absorbent material 30. This adhesive may typically be applied by slot coating within a series of longitudinally extending slots, as is known in the art. The adhesive further serves to secure the absorbent material within the core wrap. The secondary adhesive 72 may also serve to form a channel bond between the upper and lower substrates through the channels 26 that do not contain absorbent material.

[0040] The top substrate layer 45 and the bottom substrate layer 46 may be made from two separate pieces of material partially bonded together, for example, in a C-wrap configuration, as illustrated in the figures. Alternatively, the core wrap may be formed by a single piece of material forming the top and bottom substrate layers. The top and bottom substrate layers may be made from the same or different materials, i.e., two nonwoven webs having the same or different properties. The substrate layers 45, 46 are preferably bonded longitudinally to prevent the absorbent material from releasing laterally, for example, using longitudinal side adhesive 73. The substrate layers may also optionally be bonded laterally at the front and back sides of the absorbent core. While the substrate layers may be bonded at least longitudinally face-to-face, other bonding configurations are possible, particularly a C-wrap configuration in which one of the top or bottom substrate layers is larger than the other so that a flap can be folded around the absorbent material and attached to the other substrate, as illustrated in FIG. 2. Portions of the upper substrate layer 45 may be folded over the longitudinal edges of the layer of absorbent material such that these portions are positioned on the garment-facing surface of the absorbent material. Alternatively, or in addition, portions of the lower substrate layer 46 at and adjacent the longitudinal edges may be folded over the longitudinal edges of the layer of absorbent material such that these portions are positioned on the body-facing surface of the absorbent material.

[0041] The absorbent core may optionally include one or more channels 26, which are areas within the absorbent material that are substantially free of absorbent material, apart from possible incidental individual contamination. The term "channel" is used below for simplicity to refer to "at least one or more channels." The channels preferably do not extend to any of the sides of the absorbent core, so that at least some of the channels are completely surrounded by absorbent material. The channels are typically elongated in the longitudinal direction. The channels may have a length (as measured along the longitudinal centerline 80) of 10% to 80%, or 20% to 70%, or 30% to 60% of the longitudinal dimension of the absorbent article. The channels may be straight, curved, or a combination thereof. The channels are typically arranged symmetrically about the longitudinal axis and may be separated from one another, as illustrated in FIG. 1; alternatively, the channels may be connected at one or both of their ends to form a U or O shape. Such channels are disclosed in further detail, for example, in WO2012170778A1 and WO2012170781 (Kreuzer et al.). The absorbent core may comprise one or more channels that are at least partially in the crotch region 37 of the article 20 and optionally extend into the front and back waist regions 36, 38, or that extend only into the front waist region or only into the back waist region. Any channel shape is possible; for example, a pair of longitudinally extending central channels may also be joined at their extremities to form a general U- or O-shape.

[0042] The upper and lower substrate layers 45, 46 of the absorbent core may be bonded to one another through at least a portion of the length of the channel. This channel bond provides structural integrity for the channel in dry and wet conditions. This bond may be provided using any known bonding technique known in the art, particularly a bond selected from adhesive bonding, thermal bonding, mechanical bonding, ultrasonic bonding, or any combination thereof. Adhesive 72 may be applied, for example, typically by slot glue application or any other means, to the channel areas on the inside of the upper substrate side of the core wrap and / or the inside of the lower substrate, followed by applying pressure to the channel areas to provide a good adhesive bond to these areas. Exemplary patent disclosures of such adhesive bonding processes can be found in WO 2012 / 170,798(A1) (Jackels et al.), EP 2,905,000 (Jackels et al.), and EP 2,905,001 (Armstrong-Ostle et al.) for airfelt or airfelt-free absorbent cores.

[0043] Other bonds, such as thermal, mechanical, ultrasonic, etc., may also be used as additional or alternative bonds. For example, adhesive bonds may be reinforced with thermal, mechanical, or ultrasonic bonds. Such thermal, mechanical, or ultrasonic bonds may be applied on channels running through the outside of the core wrap substrate.

[0044] Typically, the bonds will generally have the same contour and shape as the channels 26 in which they are housed, but may be slightly smaller to allow for a safety margin (e.g., only a few mm) since some deviation from optimal alignment may occur during high speed processes. Channels may also be unbonded, or may have one or more sections that are bonded and one or more sections that are not bonded.

[0045] Cushion layer 60 As described above, the absorbent material 30 has a relatively high proportion of superabsorbent polymer particles. The resulting layer of absorbent material 30 has a reduced thickness in the dry state compared to conventional absorbent cores containing higher amounts of cellulose fibers. The reduced thickness helps improve the fit and comfort of the absorbent article to the wearer. However, because the superabsorbent particles are mixed with little or no cellulose fibers, the superabsorbent particles may feel hard and rough to the touch when touched through the backsheet on the wearer-facing side of the article.

[0046] To address this problem, a cushioning layer 60 is disposed between the absorbent core 28 and the backsheet 25. The cushioning layer 60 provides separation between the SAP particles and the garment-facing side of the absorbent article. The cushioning layer 60 advantageously has a sufficient thickness and basis weight to provide this function. It is desirable for the cushioning layer to extend transversely and longitudinally to have the same dimensions as the absorbent core, but this represents a substantial increase in material costs. Furthermore, such a large cushioning layer may reduce the flexibility of the article.

[0047] According to the present invention, it has been found that the cushioning layer 60 advantageously comprises at least two sub-layers. The sub-layers may be provided by laminating separate sub-layers 61, 62 or by folding the cushioning layer material, where each sub-layer is formed by one or more folds of the cushioning layer material. This is further illustrated in the following examples and in the accompanying figures which illustrate different aspects of the invention.

[0048] First aspect of the invention According to a first aspect of the present invention, this multi-layer structure of the cushioning layer allows for optimization of basis weight and allows for stacking of sub-layers of different widths, creating more caliper in the center area of ​​the article. It has been found that the center of the article is the area where cushioning is most needed, since the concentration of SAP is typically higher in that region and softness is often evaluated in the center of the article rather than the lateral or longitudinal sides. For this reason, it has been found advantageous to provide more cushioning material in the center of the article.

[0049] Thus, in this first aspect of the invention, the cushioning layer comprises at least one first sub-layer having a width smaller than that of the second sub-layer. A single implementation of the first aspect is illustrated in Figure 3A, in which first sub-layer 61 is stacked on top of larger sub-layer 62. First sub-layer 61 and second sub-layer 62 form cushioning layer 60. The sub-layers are aligned with the longitudinal axis so as to be symmetrically disposed about the longitudinal centerline, as shown in the figure.

[0050] By providing two sub-layers of different widths, a cushioning layer 60 is provided that includes a central area 60a with a higher basis weight corresponding to the width of the narrower sub-layer 61. Two side areas 60b disposed laterally outward of the central area 60a have a lower basis weight than the central area 60a. This structure has the advantage of being economical in material, since less cushioning material is used on the side surfaces of the cushioning layer. Additionally, the flexibility of the article is improved on the side surfaces of the article due to the lower basis weight of the cushioning layer in the side surfaces.

[0051] The sub-layers are advantageously made of the same cushioning material. The different sub-layers also advantageously have the same length (measured along the longitudinal centerline 80), which may be approximately the length of the absorbent core or may be shorter than the length of the absorbent core. The length of the sub-layers may be comprised within the range of 40% to 100% of the length of the absorbent core, for example, 50% to 90% of the length of the absorbent core.

[0052] Having sub-layers of the same length simplifies the construction of the article. A single web of cushioning material can be divided into several sub-layers by sequentially slitting the single web longitudinally to form sub-layer webs, which are then cut transversely and stacked to form the cushioning layer.

[0053] As an alternative to laminating separate sub-layers, an original single web of cushioning material can be folded to achieve a similar cushioning layer structure with areas of different basis weight (as illustrated in Figures 13-15). Cushioning material can be provided on a converting line as a roll of material that is unwound during manufacturing, as is known in the art. Using a single roll to create the sub-layers provides a more stable process (larger rolls are more stable) while providing a longer run time before the roll needs to be changed.

[0054] As shown in the example of FIG. 3A, the central area 60a of the cushioning layer may be composed of two sublayers 61, 62, while the side area 60b may be composed of a single sublayer 62. Therefore, the central area 60a may have twice the thickness and basis weight as the side area 60b. The order in which the sublayers are stacked is not important. For example, the narrow sublayer 61 may be disposed above the larger sublayer 62, as illustrated in FIGS. 3A and 4A, or conversely, the narrow sublayer 61 may be disposed below the larger sublayer 62, as illustrated in FIG. 9.

[0055] The difference in width between the larger sublayer 62 and the narrower sublayer 61 can be selected as desired. The ratio of the width of the overall cushioning layer (i.e., for stacked layers, the width of the larger layer 62) to the width of the narrower sublayer 61 can be, for example, in the range of 1.10 to 3.0, particularly 1.4 to 2.5. This can provide a good balance between overall cushioning and material usage. For example, for a typical baby diaper, the width of the larger layer 62 can be 90 mm and the width of the narrower layer 61 can be 50 mm, resulting in a ratio of 1.8.

[0056] Other embodiments are of course possible, for example, the cushioning layer may comprise three or more sub-layers. The cushioning layer may comprise two narrow layers 61 and one wide layer 62. The central area 60a of the cushioning layer then has three times the basis weight and thickness compared to the side areas 60b. This is illustrated, for example, in Figures 5 and 10. The larger cushioning layer may be disposed at the bottom of the stack, as shown in Figure 5, or may be sandwiched between two narrower sub-layers 61, as shown in Figure 10.

[0057] 11 and 12 show further alternative stack configurations in which the cushioning layer includes one narrow sub-layer 61 and two larger sub-layers 62. This provides a cushioning layer in which the basis weight and thickness of the central area 60a is three-half of the basis weight and thickness of the side areas 60b. FIG. 11 shows an example in which the narrow sub-layer 61 is disposed at the top of the stack, while FIG. 12 shows an example in which the narrow sub-layer 61 is disposed at the bottom of the stack.

[0058] Generally, the ratio R of the basis weight and thickness in the central area 60a of the cushioning layer to the basis weight and thickness in the side areas 60b is defined by the number of narrow sub-layers n1 and the number of large layers n2 according to the following formula: R=(n1+n2) / n2

[0059] The ratio R may typically be in the range of 4 / 3 to 4 / 1, particularly 3 / 2 to 3 / 1.

[0060] The examples discussed thus far have been constructed by forming a laminate of individual sub-layers, even though the sub-layers are typically formed by longitudinally slitting a single continuous web of cushioning layer material during fabrication. The cushioning layer 60 may also be provided by folding a single web of cushioning layer material, so that longitudinal slitting is not necessary. Two folding patterns are particularly contemplated: the so-called Z-fold, illustrated in Figures 13-14, and the so-called omega-fold, illustrated in Figure 15. In a Z-fold, the cushioning web material 63 is folded along two longitudinally extending fold lines to form a central area 60a having three times the basis weight of the side areas 60b. In an omega-fold configuration, the cushioning web material 64 is folded along four longitudinally extending fold lines, resulting in a central area 60a having three times the basis weight of the side areas 60b. Of course, other folding configurations are possible, for example a Z-fold may be provided with two additional fold lines so that the central area is five times the basis weight of the side areas 60b.

[0061] The first aspect of the invention disclosed above may be combined with or practiced independently of the second aspect of the invention, which is described in more detail below.

[0062] Second Aspect of the Invention According to a second aspect of the invention, which may be combined with the first aspect, at least two sub-layers are only partially attached to one another, so that the sub-layers can be partially separated while still being maintained in a relatively stable position. The attachment areas may, in practice, be aligned along the longitudinal axis of the absorbent article.

[0063] It has been found that when the sub-layers are only partially attached to one another, the stiffness of the multi-layer cushioning layer is reduced, allowing the sub-layers to move at least partially freely relative to one another. Higher stiffness in the crotch region affects fit and increases the perception of crotch bulk, making crotch flexibility more desirable. In "simplified" geometries, the bending stiffness of a material varies with the cube of caliper, but in unbonded layers (when there is no friction), the increase in bending stiffness is believed to increase linearly with the number of layers. Therefore, it is "easier" to bend a collection of thinner unbonded layers. However, completely unbonded sub-layers are undesirable because they significantly reduce the integrity and fit of the absorbent article.

[0064] The attachment areas may be provided by any known attachment means known in the art. Adhesive bonding is typically used to join two adjacent sublayers. As illustrated in FIG. 3a, sublayers 61, 62 may be adhesively attached to another sublayer by a series of longitudinally extending glue stripes along a longitudinally extending central attachment area 70. The channels may be provided by slot gluing, as known in the art. For example, in a typical diaper, six stripes, each 1 mm wide, with a 1 mm gap between the slots may be used for a total central attachment area width of 11 mm.

[0065] If there are more than two sublayers, a partial attachment area 70 may be present between each pair of adjacent sublayers, as exemplarily shown in Figures 5, 8, 10, 11, and 12. If the sublayers are individual stacked layers, a centrally aligned partial attachment area is particularly useful as it provides freedom of movement for lateral areas outside of the central attachment area 70.

[0066] If the sub-layer is provided in a Z-fold configuration, the attachment areas 70', 70" can be aligned with and adjacent to the folds so that the folds are fixed in place and cannot unfold during manufacture or wear of the absorbent article. FIG. 13 shows a Z-folded cushioning layer configuration, where the fold allows for three times the basis weight in the central area 60a (e.g., 50 mm wide), while the overall width of the folded cushioning layer is 90 mm. A small amount of longitudinally applied glue 70' is used to enable process feasibility. FIG. 14 shows a similar Z-fold cushioning layer configuration in which a wider glue slot 70" is used to ensure the folds remain intact during use.

[0067] In an omega fold configuration, a longitudinally oriented central attachment area 70 may also be used. The attachment area may typically be about the same length as the length of the sub-layer, or may be shorter if desired. Glue application may be continuous or intermittent, as known in the art.

[0068] In an omega-fold cushion layer configuration, the omega fold also allows for three times the basis weight in the central area 60a (e.g., 50 mm wide) compared to the side areas 60b (e.g., 90 mm wide). A longitudinally oriented central glue area 70, 110 at the bottom of the omega-fold cushion layer can be used to simultaneously provide partial attachment between the sub-layers and partial attachment of the core wrap to the lower substrate 46. Z-fold and omega-fold configurations can be provided from a relatively simple process standpoint in that they do not require slitting of the cushioning material web.

[0069] Third embodiment: cushion layer-absorbent core bonding pattern According to a third aspect of the present invention, which may or may not be combined with the first or second aspects disclosed above, the wearer-facing side of the cushioning layer 60 and the lower substrate layer 46 of the core wrap are only partially bonded to one another at their interface 100. Possible partial bonding patterns are illustrated in Figures 3b and 4b, respectively.

[0070] Thus, the interface 100 between the cushioning layer 60 and the lower substrate 46 can include bonded portions 110, 111 where the layers are bonded to one another and unbonded portions 120 where the cushioning layer is not bonded to the lower substrate of the core wrap. At the bonded portions, the two layers are preferably bonded by adhesive. The inventors have found that partial bonding can reduce the lateral stiffness of the article compared to fully gluing the cushioning layer to the absorbent core at their interface.

[0071] The bonded and unbonded portions may each comprise several distinct zones. The bonded portion may, in particular, comprise a longitudinally extending central zone 110 that at least partially overlaps the longitudinal centerline of the article. The bonded portion may also comprise up to four corner bond zones 111 disposed at each corner of the interface, as illustrated in FIG. 3B, or one or two lateral bond zones 112 disposed adjacent the leading and trailing edges of the interface 100, respectively, as illustrated in FIG. 4B. The bond pattern of FIG. 3B is partially represented in FIGS. 4-15, but other bond patterns, such as the bond pattern of FIG. 4B or a bond pattern including only the longitudinally extending central zone 110, may also be used in these examples.

[0072] 7 shows an alternative embodiment of the third aspect of the invention, in which two equally sized sub-layers are laminated and widely attached together in face-to-face relationship, for example by spiral gluing or slot coating, by a wide attachment area 71. This embodiment does not have the advantages of the first and second aspects described above, yet still provides an article with improved flexibility due to the partial bond pattern at the interface 100 between the upper side of the cushioning layer and the lower substrate core wrap.

[0073] Cushion layer material The material forming the cushioning layer 60 may be or consist of a nonwoven layer, although other materials are not excluded. Nonwoven layers are commonly used in absorbent articles and can be longitudinally slit, cross-cut, positioned, and attached within the absorbent article using conventional techniques.

[0074] Commonly used fiber materials (PE, PP, PET, coPET, Bico, or blends of these fibers with other fibers) can be used. If desired, individual fibers or the entire nonwoven can be treated to enhance specific fluid handling properties, such as a fluid-permeable layer or a fluid-impermeable barrier.

[0075] The cushioning layer may also function as a temporary reservoir for liquid that has not been absorbed rapidly enough by the absorbent material of the layer of absorbent material and has therefore flowed through the absorbent material, or as a lower acquisition and distribution layer. Alternatively, the material forming the cushioning layer may be selected to be substantially liquid impermeable (hydrophobic) to provide an additional liquid barrier on the garment-facing side of the article.

[0076] Additional layers provided in an absorbent article generally increase the thickness and bulk of the article, thereby reducing wearer comfort. Furthermore, increased bulk, particularly between the wearer's legs, is generally undesirable. Therefore, it may be desirable to limit the caliper of the cushioning layer to within a range of 0.4 mm to a maximum of 4 mm, e.g., 0.5 mm to 2 mm, when measured at a pressure of 0.85 kPa according to the caliper measurement method described herein. Caliper is measured in the thickest region of the cushioning layer, which is typically the central region 60a where the greatest number of sublayers are present, either as a stack or as a folded layer.

[0077] The basis weight of the sub-layers is typically the same for each sub-layer, although other configurations are possible. Typically, each sub-layer has a basis weight of 10 g / m 2 ~40g / m 2The basis weight of the cushioning layer in which the greatest number of sub-layers are present, either as a laminate or a folded layer, is typically 24 g / m 2 ~100g / m 2 However, other values, e.g., 30 g / m 2 ~80g / m 2 is also possible.

[0078] The basis weight of the sub-layer is typically uniform throughout the length and width of the cushioning layer (i.e., longitudinally and transversely). The basis weight of the material is typically known from the supplier of the cushioning material used. If an unknown material is used, it can be calculated by dividing the weight of the cushioning layer by its surface for the area considered, as is known in the art.

[0079] The cushioning layer preferably does not contain superabsorbent polymer particles. Carded nonwovens (made from staple fibers) have been found to be particularly suitable. Carded nonwovens can be calender bonded or air-through bonded, as is known in the art. The nonwoven layer can also be a spunbond or meltblown nonwoven web (made from continuous fibers), or a nonwoven having spunbond and meltblown layers (e.g., SMS, SMMS, SMSS, SSS, SSSS, etc.).

[0080] Air-through bonded nonwovens generally have a high loft. Therefore, they have a porous structure to provide void volume for absorbing and temporarily retaining liquid. At the same time, they provide softness and do not have excessively high bending stiffness.

[0081] The cushioning layer may comprise at least 30% by weight, optionally at least 50% by weight, and up to 100% by weight of crimped fibers, based on the total weight of the cushioning layer. The crimped fibers may have two-dimensional crimp, three-dimensional crimp, or a combination of two-dimensional and three-dimensional crimp. Typically, in carding processes, all or most of the fibers are two-dimensionally crimped (zigzag), whereas eccentric bicomponent fibers may typically be three-dimensionally crimped. Crimped fibers may help drive the loft and void volume of the nonwoven.

[0082] The cushioning layer, and in particular its constituent sub-layers, may be made of or consist of synthetic fibers. In particular, suitable stiff fibers are made of polyolefins (e.g., polyethylene, polypropylene, or mixtures or combinations thereof), polyethylene terephthalate (PET), co-PET, polylactic acid (PLA), polyhydroxyalkaloid (PHA), or combinations or mixtures thereof. The fibers may be continuous or spunbonded. The fibers may be monocomponent or multicomponent, such as bicomponent. When the fibers included in the cushioning layer are bicomponent, they have a core-sheath configuration, with the core component having a higher melting point than the sheath component.

[0083] The fibers included in the cushioning layer are preferably staple fibers. Similar to nonwoven webs made with continuous fibers, staple fiber nonwoven webs are preferably air-through bonded. In addition to hydroentanglement (spunlace) or air-through bonding, staple fiber nonwoven webs may or may not undergo some localized bonding with heat and / or pressure (e.g., point bonding / calender bonding) to introduce localized bonded areas where the fibers are fused to one another.

[0084] Regardless of whether the nonwoven web is made of continuous or staple fibers, the localized bonding, however, must not bond to an excessively large surface area, thereby adversely affecting the loft and void volume of the nonwoven web. Preferably, the total bonded area achieved by localized bonding with heat and / or pressure (in addition to hydroentangling or air-through bonding) should not be more than 20%, or more than 15%, or more than 10% of the total surface area of ​​the nonwoven web.

[0085] Through-air bonding (used interchangeably with the term "air-through bonding") refers to the process of bonding staple or continuous fibers by forcing air through a nonwoven web, the air being hot enough to melt (or at least partially melt, or melt until the surface of the fiber is sufficiently tacky) the polymer of the fiber, or, if the fiber is a multicomponent fiber, the air being hot enough to melt (or at least partially melt, or melt until the surface of the fiber is sufficiently tacky) one of the polymers from which the fibers of the nonwoven web are made. Air velocity is typically 30 to 90 meters per minute, and residence times can be up to 6 seconds. The melting and resolidification of the polymer provides the bond between the different fibers.

[0086] The hot air melts the staple or continuous fibers, or in the case of multicomponent fibers, the low melting point polymer component of the fibers, thereby forming bonds between the staple fibers and consolidating and consolidating the layers of staple fibers into a web.

[0087] The nonwoven layer included in or forming the cushioning layer may comprise multicomponent fibers. The fibers of the nonwoven may comprise at least 30%, or at least 40%, or at least 50%, or at least 70%, or at least 90%, or 100% by weight of multicomponent fibers, based on the total weight of the nonwoven included in the lower acquisition and distribution layer. The multicomponent fibers may be bicomponent fibers, such as core-sheath or side-by-side bicomponent fibers.

[0088] Alternatively, the nonwoven layer may comprise monocomponent fibers. The fibers of the nonwoven comprised in the lower acquisition and distribution layer may comprise at least 30%, or at least 40%, or at least 50%, or at least 70%, or at least 90%, or 100% by weight of monocomponent fibers, based on the total weight of the nonwoven comprised in the lower acquisition and distribution layer. The nonwoven web comprised in or forming the cushioning layer may comprise a mixture of monocomponent and multicomponent fibers.

[0089] When used as a lower acquisition and distribution layer, the cushioning layer may contain a hydrophilic agent, especially if the cushioning layer comprises or consists of inherently hydrophobic synthetic fibers. Any conventional hydrophilic treatment that provides a hydrophilic agent can be used. Typically, webs such as nonwovens are coated externally with a surfactant directly or via an oil / emulsion. Alternatively, as known in the art, a hydrophilic melt additive can be added to the polymer melt used to make the fibers. Hydrophilic melt additives are amphiphilic molecules with a hydrophilic head and a hydrophobic tail. The hydrophilic head is oriented toward the surface of the adhesive, thus providing the adhesive with its hydrophilic characteristics, while the hydrophobic head remains in the polymer matrix. The lower acquisition and distribution layer 60 and the lower substrate layer 46 can both advantageously be hydrophilic. The lower acquisition and distribution layer can optionally be less hydrophilic than the lower substrate layer.

[0090] Other Considerations The cushioning layer 60 as a spring may typically have a total surface area equal to or less than that of the core wrap. The cushioning layer may advantageously be arranged to cover selected areas of the absorbent core, in particular at least a portion of the crotch region of the absorbent article, instead of completely covering the absorbent core. The cushioning layer typically has a basis weight at least equal to, and typically higher than, the basis weight of the core wrap layer. According to a first embodiment, the cushioning layer has a basis weight of 20 g / m 2According to a further embodiment, at least 50% of the garment-facing surface of the cushioning layer can be directly or indirectly bonded to the backsheet, particularly in areas corresponding perpendicularly to the channels 26.

[0091] The absorbent core may optionally include at least one channel in the absorbent layer that is substantially free of absorbent material. The channel forms a three-dimensional channel during use when the absorbent layer swells after absorbing liquids such as urine. The upper substrate 45 and lower substrate 46 sides of the absorbent core wrap may be bonded to each other, particularly in the channel area. The cushioning layer may advantageously be separated from the core wrap lower substrate 46 in the channel area.

[0092] package A plurality of articles according to the present invention can be packaged for transport and sale. At least 50%, preferably all, of the articles in the package can be according to the present invention. The articles can be folded and packaged as known in the art. The package can be, for example, a plastic bag or a cardboard box. Diapers are typically folded in half along a transverse axis, with the ears folded inward, before being packaged. Absorbent articles can be packaged under compression to reduce the size of the package while providing an appropriate number of absorbent articles per package. Packaging absorbent articles under compression allows caregivers to easily handle and store the package, while also allowing manufacturers to reduce distribution costs due to the size of the package.

[0093] Thus, absorbent articles can be compressed and packaged with an in-bag compression ratio of at least 10%, particularly 10% to 50%, particularly 20% to 40%. As used herein, "in-bag compression ratio" is 1 minus the stack height measured under compression of 10 folded articles in a bag ("in-bag stack height") divided by the stack height of 10 folded articles of the same type before compression, multiplied by 100, i.e., (1 - in-bag stack height / pre-compression stack height) x 100, reported as a percentage. Of course, an in-bag stack need not contain exactly 10 articles, but rather is the measured stack height of the articles in the package multiplied by the number of articles in the stack, then multiplied by 10. The method used to measure in-bag stack height is described in more detail in the test procedure. Pre-compressed articles are sampled from the production line between the folding unit and the stack packaging unit. The pre-compression stack height is measured by taking 10 articles before compression and packaging and measuring their stack height as shown for IBSH.

[0094] Packages of absorbent articles of the present disclosure may, among other things, have an in-bag stack height per the In-Bag Stack Height Test described herein of less than 110 mm, less than 105 mm, less than 100 mm, less than 95 mm, less than 90 mm, and specifically all of the ranges specified, and all 0.1 mm increments within or formed by the specified ranges. With respect to each of the values ​​set forth in the previous sentence, it may be desirable to have an in-bag stack height greater than 60 mm, or greater than 70 mm, or greater than 75 mm, or greater than 80 mm. Alternatively, a package of absorbent articles of the present disclosure may have an in-bag stack height according to the In-Bag Stack Height Test described herein of 60 mm to 110 mm, 65 mm to 110 mm, 70 mm to 110 mm, 75 mm to 105 mm, or 80 mm to 100 mm, specifically all of the specified ranges and all 0.1 mm increments within or formed by the specified ranges.

[0095] Bio-based absorbent articles suitable for recycling Components of the absorbent articles described herein, whether or not they are at least partially made from recyclable materials, can be recycled for other uses. Examples of absorbent article materials that can be recycled are nonwoven fabrics, films, fluff pulp, and superabsorbent polymers. The recycling process can use an autoclave to sterilize the absorbent articles, after which the absorbent articles can be shredded and separated into different by-product streams. Exemplary by-product streams can include plastics, superabsorbent polymers, and cellulose fibers such as pulp. These by-product streams can be used in the manufacture of fertilizers, plastic manufacturing articles, paper products, viscose, building materials, absorbent pads for pets or hospital beds, and / or for other uses. Further details regarding absorbent articles that aid recycling, diaper designs that are easy to recycle, and diaper designs with easy-to-recycle and bio-based components are disclosed in U.S. Patent Application Publication No. 2019 / 0192723, published June 27, 2019.

[0096] Test Method Caliper measurement method The caliper of a layer, such as a cushioning layer, is determined using the caliper measurement method, in which two flat, parallel surfaces are used to apply unidirectional pressure to either side of a substrate specimen, and the resulting separation between the parallel surfaces is measured. All measurements are performed in a laboratory maintained at 23°C ± 2°C and 50% ± 2% relative humidity, with the specimens acclimated to this environment for at least two hours before testing.

[0097] One suitable example of an apparatus for use in the caliper method is a Mitutoyo Digimatic Series 543ID-C Digital Indicator (Mitutoyo America Corp., Aurora, Illinois, USA), or equivalent, with a circular, flat "foot" with a diameter of 4.0 cm attached to the end of the moving shaft of the indicator gauge. The indicator is mounted horizontally on the granite base, with the indicator gauge shaft oriented vertically and the plane of the circular foot parallel to the granite base. The circular foot is sized and weighed so that the gravitational force associated with the mass of the foot and the indicator shaft, together divided by the area of ​​the circular foot, exerts a downward pressure of 0.85 kPa from the circular foot on the granite base. A specimen at least as large as the circular foot is analyzed between the circular foot and the granite base. The caliper is measured 20 seconds after the circular foot makes contact with the specimen. For a given material, 10 specimens are measured, and the average value is reported as the caliper of the material.

[0098] Bag stack height test The in-bag stack height of a package of absorbent articles is measured as follows.

[0099] device A thickness tester is used that includes a flat, rigid horizontal sliding plate. The thickness tester is configured so that the horizontal sliding plate is free to move vertically while always maintaining a horizontal orientation directly above a flat, rigid horizontal base plate. The thickness tester includes a device suitable for measuring the gap between the horizontal sliding plate and the horizontal base plate to within +0.5 mm. The horizontal sliding plate and horizontal base plate are larger than the surface of the absorbent article package that contacts each plate (i.e., each plate extends beyond the contact surface of the absorbent article package in all directions). The horizontal sliding plate applies a downward force of 850±1 grams-force (8.34 N) to the absorbent article package, which can be achieved by placing a suitable weight in the center of the top surface of the horizontal sliding plate that does not contact the package, so that the total mass of the sliding plate plus the additional weight equals 850±1 grams.

[0100] Test Procedure The absorbent article package is equilibrated at 23±2° C. and 50±2% relative humidity prior to measurement.

[0101] Raise the horizontal sliding plate and center the absorbent article package under it with the absorbent articles in the package in a horizontal orientation (see Figure 14 of WO2021118904(A1)). Any handles or other packaging features on the surface of the package that would contact any of the plates should be folded flat against the surface of the package to minimize their effect on the measurement. Slowly lower the horizontal sliding plate until it contacts the top surface of the package, then release it. 10 seconds after releasing the horizontal sliding plate, measure the gap between the horizontal plates to within +0.5 mm. Five identical packages (same size package and same number of absorbent articles) are measured and the arithmetic mean is reported as the package width. Calculate "in-bag stack height" = (package width / number of absorbent articles per stack) x 10 and report to within +0.5 mm.

[0102] Dimensions and values ​​disclosed herein should not 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."

Claims

1. An absorbent article (20) for personal hygiene having a longitudinal centerline (80) and a transverse centerline (90), - Liquid permeable top sheet (24), - Liquid-impermeable backsheet (25), - An absorbent core (28) between the liquid-permeable top sheet and the liquid-impermeable back sheet, wherein the absorbent core includes an absorbent material (30) disposed between an upper substrate layer (45) and a lower substrate layer (46) that form a core wrap, The absorbent material comprises an absorbent core (28) containing at least 80% by weight of a superabsorbent polymer of the absorbent material, A cushion layer (60) disposed between the absorbent core (28) and the liquid-impermeable backsheet (25), wherein the cushion layer (60) comprises at least two separate sub-layers (61, 62, 63...), An absorbent article (20) further comprising a pair of outer leg cuffs having elastic threads, the elastic threads being positioned between the liquid-permeable top sheet and the liquid-impermeable back sheet and extending throughout the crotch area.

2. Further comprising a pair of inner barrier leg cuffs, the pair of inner barrier leg cuffs extending longitudinally from the liquid permeable top sheet and having a pair of free ends, the distance between the pair of free ends when the inner barrier leg cuffs are laid flat defining the cuff spacing, The absorbent article according to claim 1, wherein the cushion layer has a lateral dimension, and the lateral dimension of the cushion layer is not less than the cuff spacing.

3. An absorbent article (20) for personal hygiene having a longitudinal centerline (80) and a transverse centerline (90), - Liquid permeable top sheet (24), - Liquid-impermeable backsheet (25), - An absorbent core (28) between the liquid-permeable top sheet and the liquid-impermeable back sheet, wherein the absorbent core includes an absorbent material (30) disposed between an upper substrate layer (45) and a lower substrate layer (46) that form a core wrap, The lateral dimensions of the upper substrate layer, which is folded and attached to the bottom surface of the lower substrate layer, are greater than the dimensions of the absorbent material, and the lateral dimensions of the end of the upper substrate layer define the core wrap spacing. The absorbent material comprises an absorbent core (28) containing at least 80% by weight of a superabsorbent polymer of the absorbent material, A cushion layer (60) disposed between the absorbent core (28) and the liquid-impermeable backsheet (25), wherein the cushion layer (60) comprises at least two separate sub-layers (61, 62, 63...) and the cushion layer has a lateral dimension, The lateral dimension of the cushion layer is not less than the core wrap spacing of the absorbent article (20).

4. The absorbent article according to claim 3, further comprising a trapping layer between the liquid permeable top sheet and the absorbent core, wherein the trapping layer has a lateral dimension, and the lateral dimension of the cushion layer does not exceed the lateral dimension of the trapping layer.

5. The absorbent article according to claim 4, wherein the lateral dimensions of the cushion layer, the core wrap spacing, and the lateral dimensions of the capture layer are substantially the same.

6. The absorbent article according to any one of claims 3 to 5, wherein the cushion layer is bonded to the core wrap along a central region extending in the longitudinal direction of the core wrap, leaving a portion that is not bonded to the core wrap.

7. The absorbent article according to claim 6, wherein the absorbent core further comprises a pair of channels substantially free of absorbent material, and the joint of the longitudinally extending central region does not overlap with the channels.

8. The absorbent article according to any one of claims 1 to 5, wherein at least two of the sub-layers have different widths, and so the cushion layer has a central area extending in the longitudinal direction having a basis weight higher than that of the lateral areas arranged laterally to the central area.

9. The absorbent article according to claim 8, wherein the ratio of the width of the entire cushion layer to the width of the central area is within the range of 1.4 to 2.

5.

10. The absorbent article according to claim 8, wherein the ratio of the basis weight of the central area to the basis weight of the lateral area is within the range of 4 / 3 to 4 / 1.

11. The absorbent article according to claim 8, wherein the caliper of the cushion layer in its thickest region is within the range of 0.4 mm to 4 mm when measured at a pressure of 0.85 kPa according to the caliper measurement method described herein.

12. The absorbent article according to claim 8, wherein the basis weight of the cushion layer in the thickest region is within the range of 24 g / m² to 100 g / m².