Pants-type wearable items
The wearable article design addresses the limitations of pant-type articles by using a laminate structure with continuous and intermittent bonding of elastic members and a repeating hole pattern, enhancing application, fit, comfort, and breathability while maintaining a high-quality appearance.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2020-01-21
- Publication Date
- 2026-03-11
AI Technical Summary
Pant-type wearable articles lack sufficient size or body configuration adjustment, providing limited stretch for ease of application, fit to prevent loosening, comfort, and breathability, with inadequate gather regularity and hole visibility affecting quality and functionality.
A longitudinally and transversely continuous wearable article design featuring front and rear elastic belt regions with a laminate structure, incorporating elastic members bonded continuously along the side edges and intermittently bonded vertically, along with a first repeating pattern of holes on the outer sheet for improved visibility and regularity.
Enhances ease of application, fit, comfort, and breathability while maintaining a high-quality appearance by improving gather regularity and hole visibility, providing an aesthetically pleasing and functional experience.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a pant-type wearable article having an elastic belt with improved gather regularity and hole visibility. [Background technology]
[0002]
[0003] Infants, young children, and other incontinent individuals wear absorbent articles, such as diapers, to receive and contain urine and other body exudates. Pull-on, or pant-type, absorbent articles are donned by inserting the wearer's legs into the leg openings and sliding the article upward into position around the lower torso. Pant-type absorbent articles are popular for infants who can walk and are often toilet training, as well as for younger infants who are more mobile and who tend to have more difficulty fitting tape-on absorbent articles, and who require a softer fit around the waist and leg openings.
[0003] Pant-type articles can have a variety of constructions that have sufficient elasticity around and near the waist opening to facilitate the wearer or caregiver's unfolding and inserting the wearer's legs into the leg openings to don the article. The area around and near the waist is often referred to as an elastic belt. One type of pant-type article construction is a belt-type pant that has a central chassis that covers the wearer's crotch region and separate elastic belts that define the waist and leg openings, as described in WO 2006 / 17718(A). Another type of pant-type article construction is a one-piece pant that is constructed so that the outer cover of the article completely covers the entire garment-facing surface of the article, with the portion that is configured to stretch around the torso being considered the elastic belt region.
[0004] Regardless of the structure of a pant-type article, the pant-type article only offers a very small range of size or body configuration adjustment based on the structural limitations of the article. Therefore, pant-type articles are typically configured to accommodate a range of sizes and configurations by making the elastic belt region highly stretchable and comfortable to wear so that sufficient protection against sagging and leakage can be provided, while still having a reliable fit. Furthermore, the elastic belt region may be the part most frequently touched and observed by the wearer or caregiver during use, and therefore the properties of the elastic belt region are most associated with the quality of the article. One desirable quality is an underwear-like appearance provided by improved visibility and regularity of the holes. Having holes in the article, especially in the elastic belt region, can provide the wearer or caregiver with intuitive signals regarding breathability and comfort. Furthermore, the regularity of the holes can further enhance the sense of high quality. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] WO 2006 / 17718(A) Summary of the Invention [Problem to be solved by the invention]
[0006] Based on the foregoing, there is a need for wearable articles that provide improved stretch for ease of application, improved fit to prevent loosening, improved comfort and softness, and improved breathability for skin health. There is also a need for wearable articles with improved gather regularity and hole visibility that intuitively convey the above-mentioned functional benefits. There is also a need to provide such wearable articles that can be economically made. [Means for solving the problem]
[0007] The present invention provides a longitudinally and transversely continuous wearable article comprising a front elastic belt region, a rear elastic belt region, a crotch region, a waist opening, and a pair of leg openings, the crotch region extending longitudinally between the front elastic belt region and the rear elastic belt region; the front and rear elastic belt regions each comprise a laminate, the laminate comprising an inner sheet, an outer sheet, elastic members extending in a transverse direction, elastic bonds continuously bonding the elastic members over at least about 10 mm in the stretch direction in regions adjacent to the side edges of the front and rear elastic belts, and vertical bonds applied to at least one of the inner sheet and the outer sheet at intervals in the transverse direction to intermittently bond the inner sheet and the outer sheet, the vertical bonds having a transverse dimension VG2 and spaced apart from one another at a transverse pitch VG1; The present invention relates to a wearable article, wherein at least the outer sheet comprises a first repeating pattern of holes, each hole having an aspect ratio of about 2 or less and a minor axis of at least about 0.1 mm, the holes of the first repeating pattern are spaced apart from one another at a longitudinal pitch DF2 of about 5 mm or less and a transverse pitch DF1, VG1 is greater than DF1, preferably VG1 is at least about 1.5 times DF1, and the holes of the first repeating pattern have a longitudinal orientation according to the measurement methods described herein. [Brief explanation of the drawings]
[0008] While the specification concludes with claims that particularly identify and separately claim the subject matter regarded as constituting the invention, it is believed that the invention will be better understood when read in conjunction with the accompanying drawings, in which substantially identical elements are designated with like numerals, and the following description, in which: [Figure 1A] 1 is a perspective view of one embodiment of a wearable article of the present invention. [Figure 1B] 1 is a schematic diagram of one embodiment of a wearable article of the present invention in a contracted state, showing the front side of the article. [Figure 2]1 is a schematic plan view of one embodiment of a wearable article according to the present invention with unbonded seams and a garment-facing surface in a flat, uncontracted state. [Figure 3A] 3 is a schematic plan view of the embodiment of FIG. 2 showing the location of the elastic members, elastic joints, and vertical joints. [Figure 3B] FIG. 3B is an enlarged schematic plan view of FIG. 3A. [Figure 4A] 4 is a schematic cross-sectional view of FIG. 3B taken along section line 4-4 of FIG. 3B. [Figure 4B] 4A is a schematic cross-sectional view of the contracted state. [Figure 5A] 1 is a schematic plan view of an elastic belt according to the present invention. [Figure 5B] 1 is a plan view of an elastic belt of the present invention in a stretched state. [Figure 5C] FIG. 5C is a plan view of the elastic belt of FIG. 5B in a contracted state. [Figure 6] FIG. 1 is a schematic diagram of an example of a hanger-type sample holding fixture according to the "whole article force measurement method." [Figure 7A] This relates to the longitudinal orientation measurement method herein. [Figure 7B] This relates to the longitudinal orientation measurement method herein. [Figure 7C] This relates to the longitudinal orientation measurement method herein. [Figure 7D] This relates to the longitudinal orientation measurement method herein.
[0009] definition As used herein, the following terms shall have the meanings specified below.
[0010] "Wearable article" refers to a wearable article that may be in the form of pants, tape diapers, incontinence briefs, feminine hygiene garments, etc. A "wearable article" may be configured to absorb and contain various bodily exudates, such as urine, feces, menstrual blood, etc. A "wearable article" may serve as an outer cover that is adaptable to be joined with a separable disposable absorbent insert to provide the absorption and containment functions, such as that disclosed in WO 2011 / 087503(A).
[0011] "Pant" means a disposable absorbent article having preformed waist and leg openings. Pants may be donned by inserting the wearer's legs into the leg openings and sliding the pant into position about the wearer's lower torso. Pants are also commonly referred to as "closed diapers," "prefastened diapers," "pull-on diapers," "training pants," and "diaper pants."
[0012] "Longitudinal" refers to a direction extending substantially perpendicular from a waist edge to an opposing waist edge of the article and generally parallel to the maximum linear dimension of the article.
[0013] "Transverse" refers to a direction perpendicular to the longitudinal direction.
[0014] "Proximal" and "distal" mean closer or farther, respectively, from the longitudinal center of the article.
[0015] "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 any other element or surface. "Garment-facing" means that the element or surface is farther away from the wearer during wear than any other element or surface (i.e., the element or surface is closer to the wearer's garment, which may be worn over the disposable absorbent article).
[0016] "Location" refers to an element being placed in a particular place or position.
[0017] "Bonded" refers to an element being directly affixed to other elements by directly attaching the element to the other elements, and also to an element being indirectly affixed to other elements by attaching the element to intermediate members that are in turn affixed to the other elements.
[0018] "Film" means a sheet-like material in which the length and width of the material significantly exceed the thickness of the material. Typically, a film has a thickness of about 0.5 mm or less.
[0019] "Water-permeable" and "water-impermeable" refer to the permeability of a material in the context of the intended use of the disposable absorbent article. Specifically, the term "water-permeable" refers to a layer or layer structure having holes, openings, and / or interconnected voids that allow liquid water, urine, or synthetic urine to pass through the thickness of the layer or layer structure in the absence of compressive pressure. Conversely, the term "water-impermeable" refers to a layer or layer structure in which liquid water, urine, or synthetic urine cannot pass through the thickness of the layer or layer structure in the absence of compressive pressure (other than natural forces such as gravity). A layer or layer structure that is water-impermeable according to this definition may also be permeable to water vapor, i.e., "vapor-permeable."
[0020] "Extensible" and "stretchable" mean the ability to stretch or increase the width or length of a component in a relaxed state.
[0021] "Elasticated" or "elasticated" means that a component includes at least a portion made from an elastic material.
[0022] The terms "extensible material," "stretchable material," or "stretchable material" are used interchangeably and refer to a material that, upon application of a biasing force, can be stretched to an elongated length of at least about 110% of its original relaxed length (i.e., can be stretched 10% longer than its original length) without rupture or breakage, as measured by EDANA Method 20.2-89, and that, upon removal of the applied force, exhibits a slight recovery of less than about 20% of that elongation without complete rupture or breakage. Such an extensible material is considered "elastic" or "elastomeric" if it recovers at least 40% of its elongation upon release of the applied force. For example, an elastic material with an initial length of 100 mm can be stretched to at least 150 mm and retracts to a length of at least 130 mm (i.e., exhibits 40% recovery) upon removal of the force. An extensible material is considered to be "substantially inelastic" or "substantially non-elastomeric" if, upon release of an applied force, the material recovers less than 40% of its elongation. For example, an extensible material having an initial length of 100 mm can be stretched to at least 150 mm and retracts to a length of at least 145 mm upon removal of the force (i.e., exhibiting 10% recovery).
[0023] The "dimensions," "length," "width," "pitch," "diameter," "aspect ratio," "angle," and "area" of an article are all measured using a ruler or magnifying glass when the article is stretched to a fully extended perimeter W1 according to the "Whole Article Force Measurement Method" herein, unless otherwise specified.
[0024] "Artwork" means a visual representation to the naked eye that has color and is printed or otherwise provided. Printing includes various methods and devices known to those skilled in the art, such as lithography, screen printing, flexography, and gravure inkjet printing techniques.
[0025] As used herein, the term "color" or "tinting" may include any primary color other than white, i.e., black, red, blue, purple, orange, yellow, green, and indigo, as well as any tint or mixture thereof. White is defined by the CIE L * a* b * According to the color system, L of at least 94 * Value, a equal to 0±2 * value, and b equal to 0 ± 2 * It is defined as a color that has a value. DETAILED DESCRIPTION OF THE INVENTION
[0026] Figure 1A is a perspective view of a wearable article (20) of the present invention, Figure 1B is a schematic diagram showing the front side of the wearable article of the present invention in a contracted state, and Figure 2 is a schematic plan view of the wearable article in its flat, uncontracted state, with the seams unbonded and showing the garment-facing side. The wearable article (20) has a longitudinal centerline LX that also serves as a longitudinal axis, and a transverse centerline TX that also serves as a transverse axis. The wearable article (20) has a body-facing side, a garment-facing side, a front elastic belt (84), a back elastic belt (86), a crotch region (30), and side seams (32) that join the front elastic belt (84) and the back elastic belt (86) to form two leg openings and a waist opening.
[0027] The wearable article (20) may be belt-type pants such as those in FIGS. 1A, 1B, and 2, comprising a central chassis 38 covering the wearer's crotch region (30), a front elastic belt (84), and a back elastic belt (86) (hereinafter referred to as "front and back elastic belts"), the front and back elastic belts (84, 86) forming separate circular elastic belts (40) extending transversely to define a waist opening. In the case of belt-type pants such as those in FIGS. 1A, 1B, and 2, the front and back elastic belts (84, 86) and the central chassis (38) join to define leg openings. In the case of belt-type pants, the front elastic belt 84 is the front region (26), the back elastic belt (86) is the back region (28), and the remainder is the crotch region (30). Although not shown, the wearable article (20) may be one-piece pants configured such that the outer cover of the central chassis (38) and the elastic belt (40) are common. In the case of one-piece pants, the portions extending transversely between the side seams (32) are considered the front region (26) and the back region (28), respectively, and the remainder is the crotch region (30). In the case of one-piece pants, the front region (26) is considered the front elastic belt (84), and the back region (28) is considered the back elastic belt (86).
[0028] The central chassis (38) may include a topsheet, a backsheet, an absorbent core (62) disposed between the topsheet and the backsheet, and an outer cover layer (42) for covering the garment-facing side of the backsheet. The topsheet may be a water-permeable substrate. The backsheet may be a water-impermeable film. The outer cover layer (42) may be a nonwoven sheet. The central chassis (38) may contain an absorbent core (62) disposed on the central chassis (38) for absorbing and containing body exudates, as well as an absorbent-free area (61) surrounding the periphery of the absorbent core (62). The absorbent-free area (61) may be made from the topsheet and / or the backsheet and / or the outer cover layer (42) and / or other parts constituting the central chassis (38). In the embodiment shown in FIG. 2, the central chassis (38) has a generally rectangular shape with side edges (48) extending in the left-right longitudinal direction and end edges (50) extending in the front-to-back transverse direction. The absorbent core (62) may be present throughout the longitudinal dimension of the crotch region and extend at least partially in the front region (26) or at least partially in both the front and back regions (26, 28). The central chassis (38) may have a front waist panel (52) located in the front region (26) of the absorbent article (20), a back waist panel (54) located in the back region (28), and a crotch panel (56) in the crotch region (30) between the front and back waist panels (52, 54). The front elastic belt (84) is center-joined to the front waist panel (52) of the central chassis (38), and the back elastic belt (86) is center-joined to the back waist panel (54) of the central chassis (38), and the front and back elastic belts (84, 86) each have left and right side panels (82) that are not overlapped by the central chassis (38). The central chassis has a crotch panel (56) located between the front waist panel (52) and the back waist panel (54).
[0029] The absorbent core (62) may include an absorbent layer and an acquisition layer. The absorbent layer is a region containing an absorbent material with a high retention capacity, such as a superabsorbent polymer. The absorbent layer may be substantially free of cellulose. The superabsorbent polymer of the absorbent layer may be disposed between a first material layer and a second material layer immobilized by a fibrous layer of a thermoplastic adhesive material. The first and second material layers may be nonwoven fibrous webs containing synthetic fibers, such as monocomponent fibers of PE, PET, and PP, or multicomponent fibers, such as side-by-side, core / sheath, or island-in-the-sea fibers. Such synthetic fibers may be formed via a spunbond or meltblown process. The acquisition layer promotes the acquisition and distribution of body exudates and may be disposed between the topsheet and the absorbent layer. The acquisition layer may contain cellulose fibers.
[0030] The absorbent layer may be disposed in multiple locations within the absorbent core (62). Portions of the absorbent layer may be configured to be substantially free of absorbent material to form a channel or channels. The channels may be useful for allowing the absorbent core (62) to flex as it swells with fluid, thereby allowing the absorbent article to conform to the wearer's body after expansion and preventing sagging of the article. Channels may also be formed within the acquisition layer and configured to at least partially align in thickness with the channels in the absorbent layer.
[0031] The elastic belt (40) of the article of the present invention acts to dynamically generate and distribute forces that occur during wear. The front and back elastic belts (84, 86) can be joined together only at the side edges (89) to form the side seams (32), the waist opening, and the two leg openings. Each leg opening may have elastic around the periphery of the leg opening. The elastic around the leg openings can be provided by a combination of elastic from the front belt (84), the back belt (86), and the central chassis (38).
[0032] The longitudinal lengths of the backsheet and the outer cover layer (42) may be the same or different. For example, the outer cover layer (42) may have a shorter length compared to the length of the backsheet so that the outer cover layer (42) is not present where the central chassis (38) overlaps the elastic belt (40). Such a configuration may allow the elastic belt to have better breathability. Furthermore, such a configuration may provide cost savings. The transverse widths of the backsheet and the outer cover layer (42) may be the same or different. For example, the backsheet may have a shorter transverse width compared to the transverse width of the outer cover layer (42). Such a configuration may allow the longitudinal side edges (48) of the crotch panel (56), which form part of the leg openings, to have better breathability. Furthermore, such a configuration may provide cost savings.
[0033] The front elastic belt (84) and the back elastic belt (86) are configured to provide elasticity to the belt (40). Referring to Figures 1B and 2, the front belt (84) and the back belt (86) may each comprise a laminate comprising a plurality of transversely extending elastic members (96), an inner sheet (94), an outer sheet (92), and an outer sheet fold (not shown), the outer sheet fold being an extension of the outer sheet material formed by folding the outer sheet material at the distal edges (88) of the front and back belts, with the belt elastic members (96) sandwiched between these two sheets. The front elastic belt (84) and the back elastic belt (86) may each be made only of the elastic members (96), the inner sheet (94), the outer sheet (92), and the outer sheet fold. The belt elastic members (96) may extend in the transverse direction to provide a circular elastic belt (40) when the front elastic belt (84) and the back elastic belt (86) are joined. At least some of the elastic members (96) extend substantially parallel to one another in the transverse direction. All of the elastic members (96) may extend substantially parallel to one another in the transverse direction. Such an article can be made economically. The front and back elastic belts (84, 86) may each have a proximal edge and a distal edge that are continuous in the transverse direction, with the proximal edge (90) being located closer to the longitudinal center of the article than the distal edge (88). At least 10%, or at least about 15% to no more than about 70% of the front and back elastic belts from the longitudinal waist opening may be an operatively elastic laminate along the entire transverse dimension LW of the front and back elastic belts (84, 86). These operably elastic regions of the front and back elastic belts (84, 86) are defined as the upper gathered regions (220). Referring to Figures 1B and 2, the front and back elastic belts (84, 86) may be treated to remove elastic operability from certain areas to form non-elastic regions (221). The elastic operability may be removed from the areas of each of the front and back elastic belts (84, 86) that overlap the front and / or back waist panels (52, 54) of the central chassis (38) to define the non-elastic regions (221).
[0034] The elastic belt region (40) may be closely related to the function and quality of the article. Having holes on the elastic belt (40) improves breathability. If such holes are visible from the garment-facing side, they can provide the wearer or caregiver with intuitive signals about breathability and comfort. Therefore, at least the outer sheet may be provided with holes in a first repeating pattern. The material for forming the elastic belt region (40), as well as the location and visibility of the holes, are carefully designed by the manufacturer to enhance the desirability of the article. The appearance of underwear and the aesthetically pleasing regularity of the holes may be associated with high quality. Pleasant tactile sensations, such as softness and a cushioned feel, can also enhance the perception of high quality. Stretch for ease of application, fit to prevent loosening, comfort, and softness may also be associated with high functionality. Highly aesthetically pleasing holes and gathers, which intuitively convey the above-mentioned functional effects, provide the user with a favorable overall usage experience of the article. The user may be the wearer or a caregiver.
[0035] At least the outer sheet (92) includes a first repeating pattern of perforations. The perforations of the first repeating pattern may have a longitudinal orientation according to the measurements herein. By longitudinal orientation is described the impression of being longitudinally oriented perceived by the naked eye when observing the repeated visual presentation of the first repeating pattern.
[0036] Without being bound by theory, by providing a first repeating pattern of holes with a longitudinal orientation, the inelastic region (221) appears to blend in with the upper gathered region (220), improving the directionality of the longitudinally continuous gathers in the upper gathered region (220), and therefore improving the sense of high quality. A laminate with improved visibility and regularity of the first repeating pattern of holes can be suitably provided by the following method. Such a method can also be advantageous in providing improved regularity of the gathers, which provides various functional benefits, and is also aesthetically pleasing. The gathers of the present invention are longitudinally continuous; however, the direction of continuity may or may not perfectly coincide with the longitudinal axis. The direction of gathers is the direction in which the individual gathers are continuous, and the individual gathers are lined with transversely repeating peaks and valleys.
[0037] Referring to Figure 3A, the laminate can be made by bonding the elastic member (96) to at least one of the inner sheet (94) and the outer sheet (92) via a combination of elastic bonds (230) and vertical bonds (234). In Figure 3A, the front elastic belt (84) is shown with the elastic member (96) and the elastic bonds (230) represented by solid lines. In Figure 3A, the vertical bonds (234) are only represented on the right side of the front elastic belt (84), and the side seam (32) is shown unbonded.
[0038] By elastic bonds (230) herein is meant bonds that connect the elastic members (96) along the side edges (89) of the front and back elastic belts (84, 86). The elastic bonds (230) may be applied continuously to each elastic member (96) adjacent to the side edges (89) of the front and back elastic belts (84, 86) in the direction of stretch for a length of at least about 10 mm, or from about 10 mm to about 60 mm, including the length designed for the side seams. The elastic bonds (230) provide a relatively strong bond to the elastic members (96), thus securing the elastic members (96) firmly within the laminate. The securing may be assisted by side seams. A certain percentage or a higher percentage of the dimensions of the elastic bonds (230) along the side edges (89) may be seamed. Elastic bonds may also be utilized as an effective process for deactivating limited transverse dimensions of the elastic members (96). 2 and 3A, the elastic members (96) may be deactivated where they overlap the absorbent core (62). In addition to the side edge regions, elastic bonds (230T) may be provided on either side of a certain transverse dimension of the elastic members (96), which are designed to be deactivated, and the portion of the elastic members between the elastic bonds (230T) are cut and deactivated. The deactivated portions of the elastic members are not shown. Such deactivation may be referred to herein as an abdominal cut, and the deactivation areas may coincide with the deactivation areas (221).
[0039] As used herein, vertical bonds (234) refer to bonds applied at transverse intervals to at least one of the inner sheet (94) and the outer sheet (92) to intermittently connect the inner sheet (94) and the outer sheet (92). The vertical bonds (234) can also connect the elastic members (96) to at least one of the inner sheet (94) and the outer sheet (92). The vertical bonds (234) may be provided only on the outer sheet (92). Referring to FIG. 3A, the vertical bonds (234) may be provided in a pattern over the entire area of the laminate. By providing the vertical bonds (234) in a pattern over the entire area of the laminate, the vertical bonds (234) can function as bonds between the inner and outer sheets (92, 94) in the areas where the elastic members (96) are cut. The vertical joints 234 may be located in the area adjacent to the side edge 89, and thus in the overlapping area where the elastic joints 230 are located. Alternatively, the vertical joints 234 may be located only in areas where the elastic joints 230 are not located. The vertical joints 234 may be located at least in areas where the elastic members 96 are operatively elastic, where the elastic joints 230 are not located.
[0040] Referring to Figure 4A, the vertical bonds (234) are observed in the thickness direction of the laminate along a single elastic member (96) in a state stretched in the transverse direction, and Figure 4A shows only the outer sheet (92), vertical bonds (234), and elastic member (96), with the vertical bonds (234) being provided on the outer sheet (92). The vertical bonds (234) may have a transverse dimension VG2 and are provided as a continuous longitudinally aligned pattern, with each longitudinal pattern of vertical bonds (234) spaced apart from one another at a transverse pitch VG1, where VG1 may be from about 2 mm to about 15 mm and VG2 may be from about 0.2 mm to about 7 mm. Focusing on a single elastic member (96), the vertical bonds (234) can provide an intermittent bond between the elastic member (96) and one of the inner sheet (94) and the outer sheet (92), or between the elastic member (96) and the outer sheet (92). This contrasts with elastic bonds (230), which are provided continuously along a specific length of the elastic member (96) in the direction of stretch. Thus, in areas where the elastic member (96) is only intermittently bonded to one of the inner sheet (94) and the outer sheet (92), the portion of the elastic member (96) between the transverse vertical bonds (234) is not attached to any other portion of the laminate. In Figure 4A, the elastic member (96) is bonded to the outer sheet (92). Referring to Figure 4B, when the elastic member (96) contracts, this causes the unattached portion of the outer sheet (92) to fold away from the elastic member (96), forming gathers. Therefore, the outer sheet (92) has fewer restrictions in making gathers compared to the area where the elastic joints (230) are applied.
[0041] Without being bound by theory, it is believed that the inner sheet (94) and outer sheet (92) have less restriction on the elastic members (96), thereby contributing to the creation of improved regularity in the gathers, and in that regard, a significant amount of the inner and outer sheet materials (92, 94) present between the vertical bonds (234) is available to create continuous gathers in the longitudinal direction. Without being bound by theory, it is also believed that the inner and outer sheet materials (92, 94) have less restriction on the elastic members (96), thereby improving the extensibility of the elastic members (96) and providing ease of application. Compared to an elastic belt made solely with elastic bonds (230) in which all of the elastic members (96) are continuously bonded, the elastic belt (40) of the present invention may have a lower circumferential force at stretch, as measured by the method herein. Furthermore, despite such a relatively low circumferential force at stretch, the elastic belt (40) of the present invention can maintain a suitable circumferential force at fit, as measured by the method herein. Without being bound by theory, it is believed that the inner and outer sheet materials (92, 94) having less restriction on the elastic members (96) improves the breathability of the overall laminate, leading to improved skin health. Without being bound by theory, it is also believed that the vertical bonds (234) provide a configuration in which, as the elastic belt (40) contracts, a greater proportion of the inner and outer sheet materials (92, 94) is available to form the outer surface of the laminate, while the elastic members (96) remain positioned within the thickness of the laminate. This provides the laminate with improved resilience and thickness, thus imparting improved comfort and softness when worn. Furthermore, without being bound by theory, it is believed that, as the elastic belt (40) contracts, a greater proportion of the inner and outer sheet materials (92, 94) are available to form the outer surface of the laminate with greater regularity, providing the body-facing surface of the elastic belt (40) with greater longitudinal stiffness, thus contributing to an improved fit to prevent sagging. Furthermore, as the elastic belt (40) contracts, the elastic members become less visible, further enhancing the aesthetically pleasing regularity of the gathers.
[0042] To ensure that a significant amount of the inner and outer sheet material (92, 94) between the vertical joints (234) is available for gathering in the transverse direction, VG1 can be from about 2 times to about 20 times, or from about 3.5 times to about 10 times, VG2.
[0043] Bonding may be achieved by any method known in the art, such as the use of hot melt adhesives, heat energy, and ultrasonic energy. Bond strength may be controlled by the area of the bond or by different adhesion or energy levels provided by the bond, for example, by adjusting the amount and strength of the adhesive. The bond strengths of the elastic bonds (230) and the vertical bonds (234) may be the same or different. The elastic bonds (230) and the vertical bonds (234) may be provided by the same hot melt adhesive.
[0044] The vertical bonds (234) may be continuous lines extending longitudinally. Referring to FIG. 3B, the vertical bonds (234) may be discontinuous or may be rows of separate bonds aligned longitudinally. Each separate vertical bond (234) may have a longitudinal dimension of about 0.5 mm to about 10 mm and a longitudinal pitch of about 1 mm to about 10 mm, or about 0.8 mm to about 5 mm. By providing the vertical bonds (234) in a row of separate bonds, the overall bond area can be reduced. This is advantageous in that the bonds can be more rigidly provided to the inner and outer sheet materials (92, 94), maintaining a soft feel for the laminate. Furthermore, this can save material or energy for bonding. The separate vertical bonds (234) may be provided at an appropriate longitudinal pitch so that there is at least one separate bond connecting each elastic member (96), but this is not required. Rather, it is essential that at least one separate vertical bond (234) be present along each longitudinal direction of the elastic member (96) so that adjacent elastic members (96) do not come into contact with each other. As long as at least one separate vertical bond (234) is present along each longitudinal direction of the elastic member (96), the elastic bonds (230) provide a secure bond for the elastic members (96) along the periphery of the side seams and inelastic regions (221), thereby preventing the elastic members (96) from moving away from their intended positions. It is not necessary for the entire front elastic belt (84) or the entire back elastic belt (86) to have any elastic members (96) connected to the inner sheet (94) or outer sheet (92) by separate vertical bonds (234). In the entire front elastic belt (84) or the entire back elastic belt (86), at least 1 to about 50% of the elastic members (96) may be joined to the inner sheet (94) or the outer sheet (92) by separate vertical bonds (234). In the individual elastic members (96) along the activated length, some portions may be joined by separate vertical bonds (234) and some portions may remain unjoined by separate vertical bonds (234).
[0045] Referring to Figure 2, belt pants may be provided with end seals at the proximal edges (90) of the front and back belts (84, 86) to keep the inner and outer sheets (92, 94) closed at the proximal edges (90), thus preventing the elastic members (96) from being accessible. Such inaccessibility of the elastic members (96) may be particularly advantageous when the article is intended for a younger wearer. Alternatively or additionally, the elastic members (96) located nearest the proximal edges (90) may be provided with operatively elastic bonds along the transverse dimension of the elastic members (96).
[0046] Referring to FIG. 2, the elastic member (96) may be made of a plurality of elastic strands (96) extending parallel to one another in the transverse direction, with the laminate having at least a region in which the elastic strands (96) have a longitudinal pitch of about 2 mm to about 20 mm, or about 3 mm to about 12 mm, or about 3 mm to about 7 mm. At least a portion of the upper gathered region (220) may have elastic strands (96) arranged at a longitudinal pitch of about 3 mm to about 7 mm. Without being bound by theory, it is believed that such a longitudinal pitch of the elastic strands (96), combined with the transverse pitch of the vertical bonds (234) as described above, contributes to the creation of improved regularity in the gathers by providing adequate longitudinal continuity of material provided by the rigidity of the inner and outer sheet materials (92, 94). At least a portion of the upper gathered region (220) may have elastic strands (96) arranged at a constant longitudinal pitch, the constant pitch being from about 2 mm to about 20 mm, or from about 3 mm to about 12 mm, or from about 3 mm to about 7 mm, with a deviation of about 1.5 mm or less. Without being bound by theory, it is believed that such a constant pitch of the elastic strands (96) contributes to the creation of gathers with improved regularity and continuity.
[0047] The front and back elastic belts (84, 86) can be made by having continuous inner and outer sheet materials and continuous elastic strands extending along the transverse axis of the article and bonding them together via elastic bonds (230) and vertical bonds (234). During manufacturing, the continuous inner and outer sheet materials and continuous elastic strands may be transported in a machine direction, with the machine direction of manufacture coinciding with the transverse axis TX of the article. In such a manufacturing process, the vertical bonds (234) are provided intermittently spaced apart in the machine direction of manufacture by a pitch of VG1, either continuously or discretely aligned across the machine direction. The longitudinal pattern of the vertical bonds (234) may be transverse to the machine direction of manufacture, i.e., coincident with the longitudinal axis LX of the article, or may be slightly tilted for better control of the process, especially when the vertical bonds (234) are provided by applying bonds with rotating rollers. The vertical bonds (234) may be inclined transverse to the machine direction of manufacture, i.e., from the longitudinal axis LX of the article, at an angle of from about 0.1 to about 30 degrees in either a clockwise or counterclockwise direction, or from about 0.1 to about 15 degrees in either a clockwise or counterclockwise direction.
[0048] Referring to FIG. 5A, at least the outer sheet (94) includes a first repeating pattern of holes, the holes being aligned longitudinally. The first repeating pattern of holes may be spaced apart from one another at a transverse pitch of DF1, where VG1 is greater than DF1, or VG1 is at least 1.5 times or at least 2 times DF1. Without being bound by theory, such first repeating pattern of holes, associated with the vertical bonds, assists the nonwoven material in folding the outer sheet (94) within the VG1 dimension and creating longitudinally continuous folds. This improves the regularity of the holes as well as the continuity of the gathers. The first repeating pattern may or may not coincide with the longitudinal pattern of the vertical bonds (234). Indeed, the present invention has discovered that even when the first repeating pattern does not coincide with the longitudinal pattern of the vertical bonds (234), the regularity of the gathers and the visibility of the holes are still improved. Matching the first repeating pattern with the longitudinal pattern of the vertical joints 234 may require process precision, and such matching may be omitted. Even if the first repeating pattern does not match the longitudinal pattern of the vertical joints 234, by providing DF1 and VG1 in a relationship other than a multiple of an integer, a certain percentage of the first repeating pattern of holes will fit within the longitudinal pattern of the vertical joints 234 and therefore be visible.
[0049] Referring to Figures 7A-7D, the holes in the first repeating pattern may have a longitudinal repeating unit. That is, if nearest adjacent holes were connected longitudinally, a longitudinally continuous line would be formed. This longitudinally continuous line is referred to as a longitudinal repeating unit. The longitudinal repeating unit may be a straight line or a sinusoidal curve. Referring to Figure 7D, if the longitudinal repeating unit is sinusoidal, the curve may have a repeating unit with a transverse dimension DFT within the transverse dimension of VG1. Providing the first repeating pattern in such a configuration improves the continuity of the gathers.
[0050] Referring to FIG. 5A, the holes within the first repeating pattern are further spaced apart from one another at a longitudinal pitch of DF2, where DF2 is about 5 mm or less and DF2 is DF1 or less. Arranging the holes in this manner facilitates longitudinal folding of the gathers, as described above. When the first repeating pattern has straight longitudinal repeating units, the longitudinal repeating units may be tilted to the same degree as the vertical bonds (234), as described above. That is, the longitudinal repeating units may be tilted from about 0.1 to about 30 degrees, or from about 0.1 to about 15 degrees, in either a clockwise or counterclockwise direction from the longitudinal axis of the article. This is believed to improve the foldability of the inner and outer sheet materials (92, 94) in the direction of continuity of the gathers. The laminate may include a portion where the elastic strand spacing includes at least two holes. It is believed that providing a plurality of holes between the longitudinal elastic strand spacings also improves the folding of the inner and outer sheet materials (92, 94) in the direction of the continuity of the gathers.
[0051] Individual holes may be circular, elliptical, or polyhedral in shape, with an aspect ratio of about 2 or less. Individual holes may have a minor radius of at least about 0.1 mm, or from about 0.1 mm to about 0.8 mm. By minor radius in this specification, we mean half the radius of a circle, the minor radius of an ellipse, or the shortest dimension of a polyhedron. Holes of such size and shape may be visible to the naked eye on the garment-facing surface, thus contributing to the breathability and high quality of the gathers and the overall laminate. Furthermore, by providing VG1 larger than DF1, the holes are positioned over the folds, as described above, thereby improving the visibility of the holes even when the gathers are in a contracted state. Figure 5B is a plan view of an elastic belt of the present invention in a stretched state, while Figure 5C is the same elastic belt in a contracted state. In the elastic belts of Figures 5B-5C, VG1 is about 1.5 times DF1. As can be seen in FIG. 5C , by providing such a relationship between VG1 and DF1, at least one longitudinal row of holes is folded continuously in a longitudinal manner to provide continuous longitudinal gathers, with holes located near each gather peak, thereby improving breathability and the sensation of breathability. Furthermore, by providing DF1 somewhat larger than DF2 and providing individual holes with an aspect ratio of about 2 or less, the first repeating pattern adopts a longitudinal orientation of the holes, as described in further detail below. By providing the first repeating pattern of holes in the inelastic region 221 with a longitudinal orientation, the inelastic region (221) appears to blend in with the upper gathered region (220) and enhances the gathering of the longitudinally continuous upper gathered region (220).
[0052] The inner sheet (94) for creating the front and back elastic belts may include holes in a second repeating pattern. This can further improve the breathability of the elastic belt (40). The holes in the second repeating pattern on the inner sheet (94) may be the same as the holes in the first repeating pattern on the outer sheet (92) and match to provide breathability. The holes in the second repeating pattern on the inner sheet (94) may differ from the holes in the first repeating pattern on the outer sheet (92) in one or more of size, longitudinal pitch, or transverse pitch. Such differences in the first and second repeating patterns can prevent the wearer's skin from being visible through the holes from the side facing the garment.
[0053] The overall tensile stress (N / m) of the front and back elastic belts (84, 86) can be profiled to provide the functional benefits of the present invention, such as ease of stretching and application, while also preventing the article from sagging after loading, while maintaining a constant force during wear. When the elasticity of the front and back elastic belts (84, 86) is provided by a plurality of elastic members (96) extending in the transverse direction, the tensile stress can be adjusted by one or more of the following methods: 1) the elongation rate of the elastic members (96), 2) the density (dtex) of the elastic members (96), 3) the longitudinal spacing of the plurality of elastic members (96), and 4) the effective elastic length in the transverse direction of the elastic members (96). With respect to elongation rate, "0% elongation rate" refers to the original length of the elastic members. When a portion of the elastic members (96) has had its elasticity removed, the remaining portion of the unaffected elastic members capable of providing elasticity is defined as the "effective elastic length of the elastic members."
[0054] Referring to Figure 2, the front and back elastic belts (26, 28) can each be divided into four transversely extending zones, defined by the respective positions of the distal edge (88) to the proximal edge (90) relative to a proportion of the seam length LS. In the example of Figure 2, the entire length of the belt side edge (89) of the front region (26) is the front belt (84), which, when joined with a certain length of the belt side edge (89) of the back region (28), is the back belt (86), which defines the seam length LS. If the seam length LS is considered 0% at the distal edge (88) of the side seam (32) and 100% at the proximal edge (90), the zones are defined as follows: 0-25% is the waist zone (102), 25-50% is the distal abdominal zone (104), 50-85% is the proximal abdominal zone (106), and 85-100% is the leg zone (108), etc. If elastic members are present located 25% from the distal edge (88), such elastic members are considered to be included in the waist zone (102). If elastic members are present 50% from the distal edge (88) or 85% from the distal edge (88), such elastic members are considered to be included in the proximal abdominal zone (106).
[0055] In the article of the present invention, the tensile stress in the front proximal abdominal zone (106) may be higher than the tensile stress in any of the front waist zone (102), the front distal abdominal zone (104), or the front leg zone (108). The tensile stress in the front proximal abdominal zone (106) may be higher than the tensile stress in any other zone, either front or back. The tensile stress in the back distal abdominal zone (104) may be higher than the tensile stress in any of the back waist zone (102), the back proximal abdominal zone (106), or the back leg zone (108). Comparing the four zones in each of the front and back belts, the tensile stress may be greatest in the front proximal abdominal zone (106), followed by the back distal abdominal zone (104). Without being bound by theory, such zoned profiling of tensile stress is believed to provide the article of the present invention with an elastic belt (40) that conforms well to the human body, particularly the lower torso of an infant under 36 months of age, thereby providing a good fit and comfort to the wearer without compromising loosening or leak resistance. That is, the front proximal abdominal zone (106) is subjected to high tensile stress, thereby securing the article against the wearer's trochanters while leaving more area in the rear proximal abdominal zone (106) to accommodate the wearer's buttocks. The upper gathered region (220) may be provided with a relatively low tensile stress, so long as the article is securely secured at the trochanters. Without being bound by theory, such a relatively low tensile stress is believed to contribute to improved regularity of the gathers and providing the upper gathered region (220) with a softer fit.
[0056] In belt-type pants, the longitudinal length LB of the back elastic belt (86) and the longitudinal length LF of the front elastic belt (84) may be the same, or the back elastic belt (86) may have a longer longitudinal length LB, as shown in FIG. 2. Referring to FIGS. 1B and 2, when the wearable article is assembled to form the waist opening and leg openings, the wearable article (20) is folded along the transverse centerline TX so that the front distal edge (88) is aligned with the back distal edge (88). The front side edge (89) is also aligned with a portion of the back side edge (89). The front belt (84) and the back belt (86) are then joined at the front and back side edges (89) with seams (32). However, the front and back proximal edges (90) do not have to be aligned with each other. The rear proximal edge (90) may be disposed longitudinally closer to the transverse centerline TX than the front proximal edge (90) such that the proximal portion of the rear side panel (82) extends beyond the front proximal edge (90) toward the crotch panel (56) of the main body (38). The side edges of the proximal portion of the rear side panel (82) may be unjoined or unattached. Thus, the proximal portion of the rear side panel 82 provides a buttocks cover 95 as shown in FIG. 1B.
[0057] The outer sheet (92) of the present invention may be a nonwoven fabric having a basis weight of about 10 gsm to about 55 gsm, or about 10 gsm to about 35 gsm, and may have a fiber diameter of about 0.8 dpf to about 6 dpf. Fiber diameter is measured in industry units of denier per filament (dpf), which is grams per 9,000 meters of fiber length. The outer sheet (92) nonwoven fabric may be made by processes such as spunbond, spunlace, carded, or airlaid, and may contain fibers and / or filaments made from polypropylene (PP), polyethylene (PE), polyethylene phthalate (PET), polylactic acid / polylactide (PLA), or conjugated fibers (such as PE / PET, PE / PP, or PE / PLA), as well as natural fibers such as cotton or regenerated cellulose fibers such as viscose or lyocell. The outer sheet (92) nonwoven fabric may be a multilayer or composite structure combining nonwoven fabrics made by different processes and fibers, such as combining a spunbond nonwoven fabric with a carded nonwoven fabric. The outer sheet (92) nonwoven fabric may be made from biodegradable materials or derived from renewable resources. Exemplary materials for the outer sheet (92) include air-through carded nonwoven fabrics having a thickness of at least about 50 μm, or at least about 80 μm, or at least about 200 μm. Such materials can provide a soft, lofty feel on the garment-facing side. Suitable outer sheet (92) nonwoven fabrics of the present invention include air-through carded nonwoven materials made from concentric bicomponent fibers, crimped fibers made through core-eccentric bicomponent filaments, or side-by-side bicomponent filaments.Non-limiting examples of materials suitable for the outer sheet (92) nonwoven of the present invention include 12-45 gsm air-through carded nonwoven substrates comprising PE / PET bicomponent fibers, such as those available from Beijing Dayuan Nonwoven Fabric Co. Ltd. or Xiamen Yanjan New Material Co. Ltd., and 8-45 gsm spunmelt nonwoven substrates comprising PP monofilament or PE / PP bicomponent fibers, such as those available from Fibertex or Fitesa.
[0058] The inner sheet (94) of the present invention may be a nonwoven fabric having a basis weight of about 5 gsm to about 45 gsm, or about 5 gsm to about 35 gsm. The inner sheet (94) nonwoven fabric may have a fiber diameter of about 0.5 dpf to about 4 dpf. The inner sheet (94) nonwoven fabric may be made by processes such as spunbond, spunlace, carded, or airlaid, and may contain fibers and / or filaments made from polypropylene (PP), polyethylene (PE), polyethylene phthalate (PET), polylactic acid / polylactide (PLA), or conjugated fibers (PE / PET, PE / PP, PE / PLA, etc.), as well as natural fibers such as cotton, or regenerated cellulose fibers such as viscose or lyocell. The inner sheet (94) nonwoven fabric may also be a multilayer or composite structure combining nonwoven fabrics made by different processes and fibers, such as a combination of a spunbond nonwoven fabric and a carded nonwoven fabric. The inner sheet (94) nonwoven may be made of biodegradable materials or derived from renewable resources. Non-limiting examples of materials suitable for the inner sheet (94) nonwoven of the present invention include 12-30 gsm air-through carded nonwoven substrates made from PE / PET bicomponent staple fibers, such as those available from Beijing Dayuan Nonwoven Fabric Co. Ltd. or Xiamen Yanjan New Material Co. Ltd., and 8-30 gsm spunmelt nonwoven substrates comprising PP monofilament or PE / PP bicomponent fibers, such as those available from Fibertex or Fitesa.
[0059] The basis weights of the outer sheet (92) and the inner sheet (94) may be adjusted so that the basis weight of the inner sheet (94) is equal to or less than the basis weight of the outer sheet (92). Therefore, the outer sheet (92) can be provided with a soft, resilient feel with high quality, while the inner sheet (94) can be kept thinner and conform to the outer sheet (92), thus saving costs. Furthermore, without being bound by theory, it is believed that providing such a basis weight relationship effectively transports sweat from the skin to the outer sheet (92) and to the outside of the laminate, while preventing the transported sweat from returning to the inner sheet (94). The hydrophilicity / hydrophobicity of the outer sheet (92) and the inner sheet (94) may be adjusted so that the hydrophilicity of the outer sheet (92) is higher than the hydrophilicity of the inner sheet (94). Without being bound by theory, it is believed that such a gradient of hydrophilicity is advantageous for transporting sweat from the skin from the inner sheet (94) to the outer sheet (92) and to the outside of the laminate. The inner sheet (94) nonwoven fabric may be inherently hydrophobic. The inner sheet (94) nonwoven fabric may be rendered hydrophobic by treating the polymer resin with a hydrophobic melt additive during the fiber-making process or by applying a hydrophobic additive after the nonwoven fabric is formed. The outer sheet (92) nonwoven fabric may be inherently hydrophobic and therefore may be rendered relatively more hydrophilic than the inner sheet (94) by treating the polymer resin with a hydrophilic melt additive during the fiber-making process or by applying a hydrophilic additive after the nonwoven fabric is formed.
[0060] As mentioned above, the outer sheet (92) may be provided with holes. The holes can be created by a male-female hot pin process, a punching process, a hydroentanglement process using water jets and screens to create holes, and combinations thereof. The holes can be created by creating multiple weakened locations using heat, pressure, or ultrasonic energy, followed by incremental stretching, as described in U.S. Pat. No. 5,628,097, to induce tears in the nonwoven web at the weakened locations. Such tearing methods may be particularly useful for nonwovens using spunbond and meltblown fibers. The holes may be three-dimensional, heterogeneous, non-aligned, or form a pattern, as described in WO 2016 / 73712. The inner sheet (94) may also have holes for breathability. The holes in the inner sheet (94) may be created using the same or different process, size, and density as those in the outer sheet (92). Providing holes can change the stiffness of the inner or outer sheets (92, 94). The longitudinal and transverse stiffness of the outer sheet (92) can be adjusted to provide the desired longitudinally continuous gathers.
[0061] The garment-facing side of the crotch region (30) of the article may be provided with a third repeating pattern of holes. The third repeating pattern of holes may also have a longitudinal orientation according to the measurements herein. The third repeating pattern of holes may have elements in common with those of the first repeating pattern of holes. Matching the visible holes in the crotch region (30) and the front and / or back elastic belts (84, 86) can enhance the article's unified, underwear-like appearance. Furthermore, in belt-type pants, matching the visible holes in the crotch region (30) and the front and / or back elastic belts (84, 86) can help mitigate the visibility of the boundaries between different sections.
[0062] Whole article strength measurement method Force is measured using an electric tensile tester equipped with a computer interface, such as an MTS Criterion C42 running TestWorks 4 Software (available from MTS SYSTEMS (CHINA) CO., LTD.), or equivalent equipment. Select a load cell so that the force on the specimen being tested is 10-90% of the load cell's capacity. Calibrate the equipment according to the manufacturer's instructions. All tests are performed in a room maintained at 23±2°C and 50±5% relative humidity.
[0063] The tensile tester is fitted with hanger-type specimen holding fixtures 300, as shown in Figure 6. Each fixture includes a rigid, straight, rubber-coated horizontal bar section 302 to prevent specimen slippage during testing. The outer diameter of the bar (including the rubber coating) of the horizontal bar section is 10.0 mm. The central axes of the horizontal bar sections 302 are configured to remain parallel and in the same vertical plane throughout the entire test. The gauge circumference is determined by the following formula: Gauge perimeter = 2 × (H + D + πD / 2) where H is the vertical gap between horizontal bar sections 302 and D is the outer diameter of the bar.
[0064] The device is configured to perform the following steps:
[0065] [Table 1]
[0066] Insert the article 20 sample into the upper horizontal bar portion 302 so that the bar passes through the waist opening and one of the leg openings of the article. Raise the crosshead until the specimen hangs above the lower bar and no longer touches the lower bar 302. Tare the load cell and lower the crosshead so that the lower bar 302 can be inserted through the waist opening and the other leg opening without stretching the article. Adjust the article so that its longitudinal centerline LX is in a horizontal plane, midway between the upper and lower bars (302). The center of the side portion in contact with the bar 302 should be aligned on the same vertical axis as the load cell of the instrument. While holding the article in place by hand if necessary, carefully avoid applying unnecessary force, slowly raise the crosshead until a force of 0.05 to 0.1 N is reached. The gauge circumference at this point is the initial gauge circumference. The test is started by moving the crosshead upward at 254 mm / min until a force of 19.6 N is obtained, then the crosshead is immediately returned to the initial gauge circumference at the same rate. The maximum circumference at 19.6 N and the force at 70% of the maximum circumference during the loaded and unloaded segments of the test are recorded.
[0067] The maximum circumference (mm) at 19.6 N is defined as the circumference at full extension W1. The circumference at full extension (mm) x 0.7 is defined as the circumference at 70% extension W2. The force (N) during the loaded segment of the test at the circumference at 70% extension is defined as the circumference force at extension. The force (N) during the unloaded segment of the test at the circumference at 70% extension is defined as the circumference force at fit. Five samples were analyzed and their averages were calculated and reported to the nearest 1 mm or 0.01 N, respectively.
[0068] Longitudinal Orientation This measurement method provides a visible hole pattern, defined as a pattern visually recognizable to the naked eye when observed from a distance of 10 cm. Referring to Figures 7A-7D, a basic unit is identified, which is the smallest complete unit of the pattern that is repeated to create the pattern and is capable of encompassing a specific area. Within the basic unit, the closest adjacent holes in the longitudinal and transverse directions are identified. The spacing between the closest adjacent holes in the longitudinal direction (Y) and the closest adjacent holes in the transverse direction (X) is measured using a scale (unit: 0.1 mm). The Y spacing and / or X spacing may be negative, as in the case of the Y spacing in Figure 7C.
[0069] Those patterns with an X spacing at least 10% longer than the Y spacing are considered to have longitudinal orientation. Five sections of the same pattern are analyzed and their average is calculated and reported in %. [Example]
[0070] Examples 1, A, B, and D are so obtained and subjected to testing as described below.
[0071] Example 1 was made on an experimental machine (Rotnot EXP-19-DZ7410) with the construction, elastic profile, and other properties as shown in Figure 2 and Table 1 below. The first repeating pattern of holes on the outer sheet is longitudinally oriented.
[0072] [Table 2] ( * 1) "Belly cut" in Table 1 refers to the deactivation of the elastic in the transverse central region of the elastic strand, resulting in an effective elastic length of 68%.
[0073] Example A: A size 4 (large) one-piece pants article sold under the trade name "Merries" with lot number 20190422 purchased from the Chinese market.
[0074] Example B: A size 4 (large) one-piece pants article sold under the trade name "GooN Super Premium Feather" with lot number 20181004 purchased from the Chinese market.
[0075] Example D: A size 4 (large) belted pants item sold under the trade name "Teddy Bear More than thinner" with lot number 20190424D purchased from the Chinese market.
[0076] Display and feel test Thirty panelists were recruited who were caregivers of infants wearing size 4 (large) pant diapers and had experience using a mix of major brands in a similar price range used in the study. The number of male and female caregivers in the 25-36 age group was approximately equal. Fifteen completed product test samples were displayed on a mannequin and were also available for the panelists to handle and feel. All test samples were provided without any artwork. For commercially purchased Examples A, B, and D, the artwork was removed by removing the printed backsheet, and the samples were then reconstructed by replacing the backsheet with one without the print to create the final product. Care was taken to avoid compromising the quality of the gathers when reconstructing the samples. Each respondent was asked to individually complete a questionnaire after observing and handling each test sample. The questionnaire had seven values as seen in Table 4 and each respondent was asked to rate the test samples against those values using five ratings, with scores such as "inadequate" = 0, "satisfactory" = 25, "good" = 50, "very good" = 75, and "excellent" = 100. The scores were averaged;
[0077] Of the 15 test samples tested, information about Examples 1, A, B, and D is extracted below in Table 2. Not all respondents evaluated all products, therefore, the "basic size" indicates the number of respondents.
[0078] [Table 3] ( * 3) The marking of the example number after the score indicates "statistically significantly better" than the marked example at the 90% confidence level. For example, the "Overall" rating of Example 1 was statistically significantly better than each of Examples A, B, and D.
[0079] According to this test, Example 1, which meets the requirements of the present invention, has a statistically significantly higher overall support than Examples A, B, and D, and is also statistically significantly better or superior in all other measures.
[0080] The article of Example 1 provides aesthetically pleasing regularity of the gathers and good visibility of the holes in the upper gathered region 220. The article of Example 1 also provides improved stretch for ease of application, improved fit to prevent loosening, improved comfort and softness, and improved breathability for skin health.
[0081] The 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." Furthermore, every numerical range given throughout this specification includes every narrower numerical range that falls within that broader numerical range.
[0082] All documents cited herein, including cross-referenced documents or related patents or applications, are incorporated herein by reference in their entirety unless expressly excluded or otherwise limited. The citation of any document shall not be deemed to be prior art to any invention disclosed or claimed herein, or that it alone, or in combination with any other reference(s), teaches, suggests, or discloses any such invention. Furthermore, 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.
[0083] 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.
Claims
1. A longitudinally and transversely continuous wearable article comprising a front elastic belt region, a back elastic belt region, a crotch region, a waist opening, and a pair of leg openings, the crotch region extending longitudinally between the front elastic belt region and the back elastic belt region; each of the front and rear elastic belt regions comprises a laminate, the laminate comprising an inner sheet, an outer sheet, elastic members extending in the transverse direction, elastic bonds continuously bonding the elastic members to at least one of the inner sheet and the outer sheet over a stretching direction of at least 10 mm in regions adjacent to the side edges of the front and rear elastic belts, and vertical bonds applied to at least one of the inner sheet and the outer sheet at intervals in the transverse direction to intermittently bond the inner sheet and the outer sheet, the vertical bonds having a transverse dimension VG2 and spaced apart from each other at a transverse pitch VG1; at least the outer sheet includes a first repeating pattern of holes, each hole having an aspect ratio of 2 or less and a minor radius of at least 0.1 mm, the holes of the first repeating pattern being spaced apart from one another at a longitudinal pitch DF2 of 5 mm or less and a transverse pitch DF1, VG1 being greater than DF1; In a basic unit that is the smallest unit of the repeating pattern constituting holes of the first repeating pattern and that is capable of surrounding a specific area, when a Y interval, which is a longitudinal interval between edges of two holes that are closest to each other in the longitudinal direction and has a positive value, and an X interval, which is a transverse interval between edges of two holes that are closest to each other in the transverse direction and has a positive value, are measured, the X interval is at least 10% longer than the Y interval, the holes in the first repeating pattern have a longitudinal repeat unit, the longitudinal repeat unit being a longitudinally continuous line provided when nearest adjacent holes are connected, the longitudinal repeat unit being a sinusoid; The vertical joints have the transverse dimension VG2 of 0.2 mm to 7 mm, a longitudinal dimension of 0.5 mm to 10 mm, the transverse pitch VG1 of 2 mm to 15 mm, and a longitudinal pitch of 0.8 mm to 5 mm.
2. 2. The article of claim 1, wherein the elastic member is a plurality of elastic strands extending parallel to one another in the transverse direction with a longitudinal pitch of 2 mm to 20 mm.
3. The article of claim 2, wherein the laminate includes regions in which the elastic strands have a longitudinal pitch of from 3 mm to 7 mm.
4. The article of claim 3 , wherein the laminate includes a portion where the elastic strand spacing includes at least two holes.
5. The article of any one of claims 1 to 4, wherein the vertical bonds are discontinuous and aligned in the longitudinal direction.
6. 6. The article of claim 5, wherein the vertical bonds are separate bonds aligned along the longitudinal direction, the separate bonds being in a row, each separate bond having a longitudinal dimension of 0.5 mm to 10 mm and a longitudinal pitch of 0.8 mm to 5 mm, and there is at least one separate bond between each elastic member.
7. 7. The article of claim 5, wherein the vertical bonds are inclined at an angle of 0.1 to 30 degrees from the longitudinal axis.
8. 8. The article of claim 7, wherein the longitudinal repeat units are inclined at the same angle as the vertical bonds.
9. The article of any one of claims 1 to 8, wherein the inner sheet comprises a second repeating pattern of holes.
10. The article of any one of claims 1 to 9, wherein the crotch region comprises a third repeating pattern of holes.
Citation Information
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