Stretchable member and disposable wearing article having the same

文档序号:1255467 发布日期:2020-08-21 浏览:15次 中文

阅读说明:本技术 伸缩部件和具有该伸缩部件的一次性穿着物品 (Stretchable member and disposable wearing article having the same ) 是由 酒井俊辅 于 2019-03-11 设计创作,主要内容包括:在弹性片的伸缩结构中,防止或抑制在伸缩区域间发生弹性膜的断裂。具备这样的弹性片伸缩结构(20X):弹性膜(30)层叠于具有透气性的第1片层(20A)和具有透气性的第2片层(20B)之间,第1片层(20A)和第2片层(20B)在隔开间隔排列的多个片接合部(40)处接合在一起,在第1伸缩区域(E1)与第2伸缩区域(E2)的边界处,位于第1伸缩区域(E1)的伸缩方向上的边界侧的接合部和位于第2伸缩区域(E2)的伸缩方向上的边界侧的接合部在弹性极限伸展状态下的分离距离(Px)为10mm以下。(In the elastic structure of the elastic sheet, the elastic film is prevented or suppressed from breaking between the elastic regions. Provided is an elastic sheet expansion structure (20X): the elastic film (30) is laminated between a 1 st sheet (20A) having air permeability and a 2 nd sheet (20B) having air permeability, the 1 st sheet (20A) and the 2 nd sheet (20B) are joined together at a plurality of sheet joints (40) arranged at intervals, and at the boundary between the 1 st stretch region (E1) and the 2 nd stretch region (E2), the separation distance (Px) in an elastic limit stretched state is 10mm or less between the joint located on the boundary side in the stretch direction of the 1 st stretch region (E1) and the joint located on the boundary side in the stretch direction of the 2 nd stretch region (E2).)

1. A telescopic member, characterized in that,

the telescopic member has a structure in which the elastic piece is telescopic: the elastic sheet is interposed between a 1 st sheet layer having air permeability and a 2 nd sheet layer having air permeability, the 1 st sheet layer and the 2 nd sheet layer are joined together at a plurality of spot-like welds,

showing that the stretchable region of the elastic sheet stretchable structure is stretchable in a stretching direction by a contractive force of the elastic sheet,

the stretchable region has at least two stretchable regions of a 1 st stretchable region and a 2 nd stretchable region different in at least one of arrangement pattern of the joint and shape of the joint,

at the boundary between the 1 st expansion and contraction region and the 2 nd expansion and contraction region, a separation distance between the joining portion of the 1 st expansion and contraction region located on the boundary side in the expansion and contraction direction and the joining portion of the 2 nd expansion and contraction region located on the boundary side in the expansion and contraction direction in an elastically stretched state is 10mm or less.

2. The telescopic member of claim 1,

at least one of the arrangement pattern of the 1 st expansion/contraction region and the arrangement pattern of the 2 nd expansion/contraction region is an arrangement pattern as follows: the rows of the joint portions are arranged in a range of 30 to 150 degrees (excluding 90 degrees) intersecting the expansion/contraction direction and spaced apart from each other in the arrangement direction.

3. The telescopic member of claim 1,

in the comparison between the 1 st and 2 nd stretch regions, the arrangement pattern of the joint portions is the same, but the joint portions of the joint portions have different shapes.

4. The telescopic member of claim 3,

the arrangement pattern of the joint is as follows: the rows of the joint portions are arranged in a range of 30 to 150 degrees (excluding 90 degrees) intersecting the expansion/contraction direction and spaced apart from each other in the arrangement direction.

5. The telescopic member of claim 1,

at least one of the arrangement pattern of the 1 st expansion/contraction region and the arrangement pattern of the 2 nd expansion/contraction region is formed to have a plurality of joints having different joint shapes.

6. A telescopic member, characterized in that,

the telescopic member has a structure in which the elastic piece is telescopic: the elastic sheet is interposed between a 1 st sheet layer having air permeability and a 2 nd sheet layer having air permeability, the 1 st sheet layer and the 2 nd sheet layer are joined together at a plurality of spot-like welds,

showing that the stretchable region of the elastic sheet stretchable structure is stretchable in a stretching direction by a contractive force of the elastic sheet,

the stretchable region has a 1 st stretchable region and a 2 nd stretchable region different in at least one of arrangement pattern of the joint and shape of the joint,

an intermediate telescoping zone between the 1 st telescoping zone and the 2 nd telescoping zone,

at the position of

(1) The distance between the middle telescopic area and the middle telescopic area in the telescopic direction is Xm,

(2) The distance in the stretching direction in the 1 st stretching region is Xa,

(3) When the distance in the telescopic direction in the 2 nd telescopic area is Xb,

Xm≦{(Xa+Xb)/2}×1.6,

a separation distance between a joint portion of the intermediate stretchable region on the 1 st stretchable region side and a joint portion of the 1 st stretchable region on the intermediate stretchable region side in an elastically stretched limit state is 10mm or less,

the distance between the joint portion of the intermediate stretchable region located on the 2 nd stretchable region side and the joint portion of the 2 nd stretchable region located on the intermediate stretchable region side in the stretchable direction is 10mm or less in the elastically stretched state.

7. The telescopic member of claim 6,

at the position of

(4) The distance between the middle telescopic region and the vertical direction perpendicular to the telescopic direction is Ym,

(5) The distance between the 1 st telescopic area and the vertical direction is Ya,

(6) When the pitch in the vertical direction in the 2 nd telescopic region is Yb,

Ym≦{(Ya+Yb)/2}×1.6。

8. the telescopic member of claim 6,

at least one of the arrangement pattern of the 1 st expansion/contraction region and the arrangement pattern of the 2 nd expansion/contraction region is an arrangement pattern as follows: the rows of the joint portions are arranged in a range of 30 to 150 degrees (excluding 90 degrees) intersecting the expansion/contraction direction and spaced apart from each other in the arrangement direction.

9. A disposable wearing article characterized in that,

the disposable wearing article is a pants-type disposable wearing article, and the pants-type disposable wearing article includes: an integral outer covering body extending from the front body part to the rear body part or outer covering bodies respectively provided on the front body part and the rear body part; an inner body attached to a widthwise middle portion of the outer body and extending over front and rear sides of the crotch portion; side seal parts formed by respectively joining two side parts of the outer packaging body in the front body part and two side parts of the outer packaging body in the back body part; and a waist opening and a pair of left and right leg openings, the exterior body having the stretchable member according to any one of claims 1 to 8,

the outer package of at least one of the front body portion and the back body portion includes the elastic sheet stretchable structure over a width direction range corresponding to the side seal portion in at least a part of a range in the front-back direction, and a stretching direction of a stretchable region of the elastic sheet stretchable structure is a width direction.

Technical Field

The present invention relates to a stretchable member having a stretchable structure in which an elastic sheet is sandwiched between a 1 st sheet and a 2 nd sheet, and a disposable wearing article having the stretchable member.

Background

In disposable wearing articles such as disposable diapers, in order to improve the fit to the body surface, stretchability is generally imparted to appropriate portions such as leg circumferences and waist circumferences. As a method for imparting stretchability, conventionally, a method has been widely used in which an elongated elastic member such as a rubber thread is attached in an elongated state in the longitudinal direction thereof, but when it is desired to impart stretchability with a certain width, such a method is adopted: the rubber wires are fixed in a state of being arranged side by side with a space in the width. As another invention of the present applicant, the following method has been proposed as a means for further improving the fit of the surface: the elastic sheet is attached in a state of being stretched in a direction in which stretchability is imparted. (see, for example, patent document 1).

In this elastic film-based stretchable structure (hereinafter, also referred to as an elastic sheet stretchable structure), the stretchable region is formed by laminating an elastic film between a 1 st sheet layer made of a nonwoven fabric and a 2 nd sheet layer made of a nonwoven fabric, and the 1 st sheet layer and the 2 nd sheet layer are joined together through joining holes penetrating the elastic film at a plurality of dot-shaped sheet joining portions arranged at intervals in a stretchable direction and a direction perpendicular to the stretchable direction, respectively, in a state where the elastic film is stretched in the stretchable direction along the surface of the elastic film.

In such an elastic sheet stretchable structure, since the elastic film is contracted between the sheet joining portions in a natural length state, the interval of the sheet joining portions is narrowed, and contracted wrinkles extending in a direction intersecting the stretching direction are formed between the sheet joining portions on the 1 st sheet layer and the 2 nd sheet layer.

When oppositely stretched, the spacing of the panel joints and the contracted gathers on the 1 st and 2 nd sheet layers expand as the elastic film stretches between the panel joints, being elastically stretchable to the fully unfolded state of the 1 st and 2 nd sheet layers. The elastic piece telescopic structure has the following advantages: the elastic film is excellent in the fit of the surface, and since the 1 st sheet layer and the 2 nd sheet layer are not joined to the passing surface of the elastic film and the joining of the 1 st sheet layer and the 2 nd sheet layer is extremely small, the elastic film is very flexible, and the joining holes of the elastic film contribute to the improvement of the air permeability in the thickness direction.

In patent document 1, it is also necessary to prevent the elastic film from breaking between the regions. As means for achieving this object, a buffer stretchable portion is formed between a stretchable region and a non-stretchable region, wherein the area ratio of a point-like joint portion of the buffer stretchable portion is lower than that of the non-stretchable region and higher than that of the main stretchable portion. That is, the presence of the non-stretching region is assumed.

Disclosure of Invention

Problems to be solved by the invention

Therefore, a main object of the present invention is to prevent or suppress the elastic film from being broken between the stretching regions in the stretching structure of the elastic sheet.

Means for solving the problems

In order to solve the above problems, the present invention provides a stretchable member comprising: the elastic sheet is interposed between a 1 st sheet layer having air permeability and a 2 nd sheet layer having air permeability, the 1 st sheet layer and the 2 nd sheet layer are joined together at a plurality of spot-like welds,

showing that the stretchable region of the elastic sheet stretchable structure is stretchable in a stretching direction by a contractive force of the elastic sheet,

the stretchable region has at least two stretchable regions of a 1 st stretchable region and a 2 nd stretchable region different in at least one of arrangement pattern of the joint and shape of the joint,

at the boundary between the 1 st expansion and contraction region and the 2 nd expansion and contraction region, a separation distance between the joining portion of the 1 st expansion and contraction region located on the boundary side in the expansion and contraction direction and the joining portion of the 2 nd expansion and contraction region located on the boundary side in the expansion and contraction direction in an elastically stretched state is 10mm or less.

The elastic sheet may be an elastic nonwoven fabric or the like, in addition to the elastic elastomer film.

If the separation distance of the boundary-side bonded portion located in the stretching direction of the 1 st stretching region and the boundary-side bonded portion located in the stretching direction of the 2 nd stretching region in the elastic limit stretched state at the boundary between the 1 st stretching region and the 2 nd stretching region is 10mm or less, the elastic film can be prevented or suppressed from breaking.

For example, one can consider: in a pants-type disposable diaper, both the armpit portion and the leg hole portion are respectively provided as stretchable regions, and the elastic limit stretch ratio of the stretchable region of the armpit portion is increased, for example, while the elastic limit stretch ratio of the stretchable region of the leg hole portion is decreased.

In this case, it is possible to consider: the arrangement pattern of the joint portions or the shape of the joint portions are made different between the stretchable regions of the armpit portions and the stretchable regions of the leg hole portions, and the stretchable regions are separated from each other in terms of design.

However, it was found that: if the separation distance between the joining portion on the boundary side in the stretching direction of the 1 st stretching region and the joining portion on the boundary side in the stretching direction of the 2 nd stretching region in the elastically stretched state is 15mm or more, the elastic film may be broken between the stretching regions.

For example, the cause of the fracture is considered as follows.

In the expansion region, a plurality of spot-like joints by welding are joined together, but at the time of this welding, the elastic film is not damaged by heat so much. It is conceivable that: when the stretchable region and the boundary region that is not thermally broken are different from each other, and the stretchable region is stretched in the width direction to wear an article such as a pants-type disposable diaper, a limit of stress resistance is generated at the boundary portion of the stretchable region where the difference in breakage occurs, and the elastic film is broken.

In the case of performing an actual machine test during the production of a product, the breakage portions are not dispersed in the expansion and contraction region, but the elastic film is broken mainly at the boundary portion, and therefore the cause of the breakage is considered to be the above-described cause.

On the other hand, according to the present invention, it is conceivable that: when the separation distance is 10mm or less, the difference in the width-direction pitch (preferably, in the range of 1 to 10 mm) of the joint portions in the stretchable region is small, and when the elastic film is stretched in the width direction, strain associated with the stretching is absorbed when the through-holes are formed in the joint portions, and the deformation of the film occurs, and the deformation of the film is dispersed to the joint portions in the 1 st stretchable region and the 2 nd stretchable region, and therefore, the difference in thermal destruction is not significant between the 1 st stretchable region and the 2 nd stretchable region, and therefore, the breakage of the elastic film is prevented or suppressed.

In the case of using the above-described conventional elastic sheet stretchable structure, stretching stress in the width direction is often strong, and in the case of applying the elastic sheet to a pants-type disposable diaper, for example, there are many wearers who feel excessively strongly fastened. It is therefore desirable to provide a structure that: the stretch stress in the stretch direction is low, and the wearing feeling is excellent when the stretch stress is applied to an absorbent article.

Therefore, it is preferable that at least one of the arrangement pattern of the 1 st stretching region and the arrangement pattern of the 2 nd stretching region is an arrangement pattern as follows: the rows of the joint portions are arranged in a range of 30 to 150 degrees (excluding 90 degrees) intersecting the expansion/contraction direction and spaced apart from each other in the arrangement direction.

In the telescopic structure of this form, the telescopic stress in the telescopic direction is low. In addition, between the joint line rows, contracted wrinkles extending in the arrangement direction (vertical direction) intersecting the stretching direction are preferably formed.

This will be further described later together with the embodiments.

The form may be such that: in the comparison between the 1 st and 2 nd stretch regions, the arrangement pattern of the joint portions is the same, but the shape of the joint portions is different. Regarding the "different shape of the joint portion" in this case, in addition to the "different shape of the outer shape of the joint portion", the following cases are included: the "shape of the outer shape of the joint" is the same, but the direction is different.

As a result, from the viewpoint of aesthetic appearance, the difference in the joint design group can be displayed to the consumer between the 1 st stretch region and the 2 nd stretch region.

For example, the consumer can be given the impression of: the armpit portion of the pants-type disposable diaper is set as the 1 st stretch region, the leg hole portion is set as the 2 nd stretch region, the armpit portion as the 1 st stretch region has a large elastic limit elongation and is attached to the wearer flexibly, and the leg hole portion as the 2 nd stretch region has a small elastic limit elongation and is attached to the leg hole portion firmly.

If at least one of the arrangement pattern of the 1 st stretch region and the arrangement pattern of the 2 nd stretch region is formed to have a plurality of joints having different shapes of the joints, the design can be made complicated to attract consumers.

The following modes can be applied: there is an intermediate telescoping zone between the 1 st telescoping zone and the 2 nd telescoping zone. This form is as follows.

Characterized in that the elastic sheet telescopic structure is provided with: the elastic sheet is interposed between a 1 st sheet layer having air permeability and a 2 nd sheet layer having air permeability, the 1 st sheet layer and the 2 nd sheet layer are joined together at a plurality of spot-like welds,

showing that the stretchable region of the elastic sheet stretchable structure is stretchable in a stretching direction by a contractive force of the elastic sheet,

the stretchable region has a 1 st stretchable region and a 2 nd stretchable region different in at least one of arrangement pattern of the joint and shape of the joint,

an intermediate telescoping zone between the 1 st telescoping zone and the 2 nd telescoping zone,

at the position of

(1) The distance between the middle telescopic area and the middle telescopic area in the telescopic direction is Xm,

(2) The distance in the stretching direction in the 1 st stretching region is Xa,

(3) When the distance in the telescopic direction in the 2 nd telescopic area is Xb,

Xm≦{(Xa+Xb)/2}×1.6,

a separation distance between a joint portion of the intermediate stretchable region on the 1 st stretchable region side and a joint portion of the 1 st stretchable region on the intermediate stretchable region side in an elastically stretched limit state is 10mm or less,

the distance between the joint portion of the intermediate stretchable region located on the 2 nd stretchable region side and the joint portion of the 2 nd stretchable region located on the intermediate stretchable region side in the stretchable direction is 10mm or less in the elastically stretched state.

Moreover, it is preferable that

(1) The distance between the middle telescopic region and the vertical direction perpendicular to the telescopic direction is Ym,

(2) The distance between the 1 st telescopic area and the vertical direction is Ya,

(3) When the pitch in the vertical direction in the 2 nd telescopic region is Yb,

Ym≦{(Ya+Yb)/2}×1.6。

in the above aspect, at least one of the arrangement pattern of the 1 st expansion/contraction region and the arrangement pattern of the 2 nd expansion/contraction region may be an arrangement pattern including: the rows of the joint portions are arranged in a range of 30 to 150 degrees (excluding 90 degrees) intersecting the expansion/contraction direction and spaced apart from each other in the arrangement direction.

The reason why the breakage of the elastic film is prevented or suppressed in the form having the intermediate stretchable region between the 1 st stretchable region and the 2 nd stretchable region is considered as follows.

That is, it is considered that: when Xm ≦ { (Xa + Xb)/2} × 1.6, the change in the pitch in the width direction of the bonded portions is small between the 1 st stretching region and the intermediate stretching region and between the intermediate stretching region and the 2 nd stretching region, and when the elastic film is stretched in the width direction, strain associated with the stretching is absorbed when the through holes are formed in the bonded portions, and deformation of the film occurs, and the deformation of the film is dispersed to the bonded portions in the 1 st stretching region and the 2 nd stretching region, and therefore, the difference in thermal failure is not significant, and therefore, breakage of the elastic film is prevented or suppressed.

A disposable wearing article of a pants type having the stretchable member, comprising: an integral outer covering body extending from the front body part to the rear body part or outer covering bodies respectively provided on the front body part and the rear body part; an inner body attached to a widthwise middle portion of the outer body and extending over front and rear sides of the crotch portion; side seal parts formed by respectively joining two side parts of the outer packaging body in the front body part and two side parts of the outer packaging body in the back body part; and a waist opening and a pair of left and right leg openings, wherein the outer body of at least one of the front body portion and the rear body portion has the elastic sheet stretchable structure over a width direction range corresponding to a space between the side seal portions in at least a part of a range in the front-rear direction, and a stretching direction of a stretchable region of the elastic sheet stretchable structure is a width direction.

In the telescopic structure of the elastic sheet of the present invention, the telescopic stress in the telescopic direction is low. In addition, between the 1 st joint line, contracted wrinkles extending in the arrangement direction (vertical direction) intersecting the stretching direction are preferably formed.

This will be further described later together with the embodiments.

Such a form is preferable: a plurality of 2 nd joint line are formed between the 1 st joint line, and the 2 nd joint line is formed by spacing the 2 nd joint along the arrangement direction.

If the 2 nd joint line is formed, shrinkage wrinkles repeating in the arrangement direction are formed in the 2 nd joint line, and therefore, the appearance is excellent.

Further, such a form is more preferable: the 2 nd joint row does not have joints formed therein, the 1 st joint being of a length equal to or greater than that.

When the 2 nd joint row is formed with the joint having the length of the 1 st joint and the length longer than this, the stretching stress in the stretching direction becomes low, and the length range of the joint portion becomes a range where no wrinkles are formed, which is a factor of reducing the appearance.

On the other hand, if such a joint portion is not formed, the attractive force of the stretchable member or the absorbent article having excellent appearance and flexibility is strong because the stretching stress in the stretching direction is low and the contraction wrinkles having a sufficient length are formed in the arrangement direction.

The extensible member of the present invention may be incorporated as a component of a disposable wearing article.

ADVANTAGEOUS EFFECTS OF INVENTION

As described above, according to the present invention, in the stretchable structure of the elastic sheet, the stretching stress in the stretching direction is low, and the wearing feeling is excellent when the stretchable member is applied to a disposable wearing article.

Drawings

Fig. 1 is a plan view (inner surface side) of a pants-type disposable diaper in an unfolded state.

Fig. 2 is a plan view (outer surface side) of the pants-type disposable diaper in an unfolded state.

Fig. 3 is a plan view showing only important parts of the pants-type disposable diaper in an unfolded state.

Fig. 4 (a) is a sectional view taken along line C-C of fig. 1, and fig. 4 (b) is a sectional view taken along line E-E of fig. 1.

Fig. 5 is a sectional view taken along line a-a in fig. 1.

Fig. 6 is a sectional view taken along line B-B in fig. 1.

Fig. 7 is a plan view of an important part (inner surface side) of the stretchable region in the pants-type disposable diaper in the unfolded state.

Fig. 8 (a) is a sectional view corresponding to the line C-C in fig. 1, and fig. 8 (b) is a sectional view corresponding to the line E-E in fig. 1.

Fig. 9 is a plan view and a sectional view showing an arrangement of the joint portions disclosed in patent document 1.

Fig. 10 is a plan view showing the arrangement of the joint portions disclosed in patent document 2.

Fig. 11 is a plan view showing an arrangement of the joint portions as a reference example for explanation.

FIG. 12 is a view showing the 1 st embodiment of the arrangement of the engaging parts of the present invention, (a) is a plan view, and (B) is a B-B sectional view.

Fig. 13 is a plan view showing the 2 nd embodiment of the joint arrangement of the present invention.

Fig. 14 is a plan view showing the 3 rd embodiment of the joint arrangement of the present invention.

Fig. 15 is a plan view showing the 4 th embodiment of the joint arrangement of the present invention.

Fig. 16 is a plan view showing a 5 th embodiment of the joint arrangement of the present invention.

Fig. 17 is a plan view showing embodiment 6 of the joint arrangement of the present invention.

Fig. 18 is a plan view showing embodiment 7 of the joint arrangement of the present invention.

Fig. 19 is a plan view showing an 8 th embodiment of the joint arrangement of the present invention.

Fig. 20 is a plan view showing a 9 th embodiment of the joint arrangement of the present invention.

Fig. 21 is a plan view showing a 10 th embodiment of the joint arrangement of the present invention.

Fig. 22 is a plan view showing an 11 th embodiment of the joint arrangement of the present invention.

Fig. 23 is a plan view showing the shape of the joint portion of the present invention.

Fig. 24 is a cross-sectional view showing an example of a joint state at a joint portion of the present invention.

Fig. 25 is a sectional view for explanation showing an example of the joining mode.

Fig. 26 is a plan view showing an example of the joined state.

Fig. 27 is a schematic view of an ultrasonic sealing device for manufacturing the telescopic member.

Fig. 28 is an explanatory view of an example of a breaking portion of the elastic film.

Fig. 29 is a plan view of an example of the expansion region of the present invention.

Fig. 30 is a plan view of the second example of the expansion/contraction region of the present invention.

Fig. 31 is a plan view of example 3 of the expansion/contraction region of the present invention.

Fig. 32 is a top view of example 4 of the expansion region of the present invention.

Fig. 33 is a plan view of the 5 th example of the expansion/contraction region of the present invention.

Detailed Description

An embodiment of the present invention will be described in detail below with reference to the drawings. The dotted portions in the cross-sectional view represent joining means such as a hot-melt adhesive.

Fig. 1 to 6 show a pants-type disposable diaper as an example of a disposable wearing article of the present invention. Reference numeral LD (longitudinal direction) denotes a front-rear direction, and WD denotes a width direction.

The pants-type disposable diaper (hereinafter, simply referred to as a diaper) includes: an outer body 20 that constitutes a front body portion F and a rear body portion B; and an inner body 10 integrally fixed to the inner surface of the outer body 20, wherein the inner body 10 is formed by interposing an absorber 13 between a liquid-permeable top sheet 11 and a liquid-impermeable sheet 12. In the production, after the back surface of the interior body 10 is joined to the inner surface (upper surface) of the exterior body 20 by joining means such as a hot melt adhesive, the interior body 10 and the exterior body 20 are folded at the boundary between the front body portion F and the rear body portion B, i.e., at the center in the front-rear direction LD (longitudinal direction), and both side portions thereof are joined to each other by hot melt bonding or a hot melt adhesive to form the side seals 21, thereby forming a pants-type disposable diaper having a waist opening and a pair of left and right leg openings.

(structural example of inner body)

As shown in fig. 4 to 6, the interior body 10 has a structure in which an absorbent body 13 is interposed between a liquid-permeable top sheet 11 and a liquid-impermeable sheet 12 made of polyethylene or the like, and absorbs and holds excreta liquid that has passed through the top sheet 11. The planar shape of the interior body 10 is not particularly limited, but is generally set to be substantially rectangular as shown in fig. 1.

As the liquid-permeable top sheet 11 covering the front side (skin side) of the absorbent body 13, a nonwoven fabric with or without holes, a porous plastic sheet, or the like is preferably used. As the face fabric fibers constituting the nonwoven fabric, there can be used not only synthetic fibers such as olefin-based fibers including polyethylene and polypropylene, polyester-based fibers, and polyamide-based fibers, but also regenerated fibers such as rayon and cuprammonium fibers, and natural fibers such as cotton, and nonwoven fabrics obtained by an appropriate processing method such as spunlace, spunbond, hot-roll, melt-blown, and needle-punching can be used. Among these processing methods, the water-jet method is excellent in rich flexibility and drapability, and the hot rolling method is excellent in bulkiness and softness. When a plurality of through holes are formed in the liquid-permeable top sheet 11, urine and the like are quickly absorbed, and the dryness is excellent. The liquid-permeable top sheet 11 wraps around the side edge of the absorbent body 13 and extends to the back side of the absorbent body 13.

As the liquid-impermeable sheet 12 covering the back side (non-skin contact side) of the absorbent body 13, a liquid-impermeable plastic sheet such as polyethylene or polypropylene can be used, but in recent years, a sheet having moisture permeability is preferably used from the viewpoint of prevention of stuffiness and wetness. The water-blocking/moisture-permeable sheet is a microporous sheet obtained by the following method: the inorganic filler is melt-kneaded in an olefin resin such as polyethylene or polypropylene to form a sheet, and then stretched in a uniaxial or biaxial direction.

As the absorbent body 13, a known material can be used, and for example, a material mainly composed of a stacked body of pulp fibers, an aggregate of filaments such as cellulose acetate, or a nonwoven fabric, and a super absorbent polymer or the like is mixed and fixed as necessary. The absorbent body 13 may be wrapped with a wrapping sheet 14 having liquid permeability and liquid retentivity, such as crepe paper, as necessary in consideration of the shape, the retention of the polymer, and the like.

The absorber 13 is formed in a substantially hourglass shape having a narrowed portion 13N in the crotch portion, the narrowed portion having a width narrower than the front and rear sides. The dimension of the narrowed portion 13N may be determined as appropriate, and the longitudinal length of the narrowed portion 13N may be set to about 20 to 50% of the entire length of the diaper, and the width of the narrowest portion thereof may be set to about 40 to 60% of the entire width of the absorber 13. In the case of having such a narrowed portion 13N, if the planar shape of the interior body 10 is formed in a substantially rectangular shape, an absorbent-free side portion 17 having no absorbent body 13 is formed in a portion of the interior body 10 corresponding to the narrowed portion 13N of the absorbent body 13.

The liquid-impermeable sheet 12 is folded back toward the back surface side on both sides in the width direction of the absorbent body 13 together with the liquid-permeable top sheet 11. As the liquid-impermeable sheet 12, an opaque sheet is preferably used so as not to show the brown color of feces, urine, or the like. As the sheet to be opacified, a sheet obtained by adding a pigment or filler such as calcium carbonate, titanium oxide, zinc oxide, white carbon, clay, talc, barium sulfate to a plastic and making a film is preferably used.

Three-dimensional gather portions 90 suitable for leg gathers are formed on both side portions of the interior body 10. As shown in fig. 5 and 6, the three-dimensional gather portion 90 includes: a fixing portion 91 fixed to a side portion of the back surface of the interior body 10; a body portion 92 extending from the fixing portion 91 to the upper side of the front side of the interior body 10 through the side of the interior body 10; a folded portion 93 formed by fixing the front and rear end portions of the main body 92 to the side portions of the front surface (the top sheet 11 in the illustrated embodiment) of the interior body 10 in a folded state; and a free portion 94 formed without fixing the falling portions 93 to each other. Each of the above portions is formed by a gather sheet 95 formed by folding back a sheet of nonwoven fabric or the like into a double-layer sheet. The gather sheet 95 is attached to the entire front-rear direction of the inner body 10, the lying portions 93 are provided at the front and rear sides of the non-absorbent body side portion 17, and the free portions 94 extend to the front and rear sides of the non-absorbent body side portion 17. Further, between the double-layered gather sheets 95, an elongated gather portion elastic member 96 is disposed at a terminal portion of a free portion or the like. The gather elastic member 96 is used to raise the free portion 94 by an elastic contractive force in the product state as shown in fig. 5.

In the form shown in fig. 5 and 6, the gather portion elastic member 96 is adhesively fixed to the gather sheet 95 with the hot melt adhesive at the position of the gather portion elastic member 96 and the facing surfaces of the gather sheet 95 are joined together, except for the laid-down non-stretchable portion 97, but in the laid-down non-stretchable portion 97, there is no hot melt adhesive at the position of the gather portion elastic member 96, and therefore, the gather portion elastic member 96 and the gather sheet 95 are not bonded together and the facing surfaces of the gather sheet 95 are not joined together at the position having the gather portion elastic member 96.

The three-dimensional gather portion 90 shown in fig. 5 and 6 is in a form in which the main body portion 92 is not folded back.

As the gather portion elastic member 96, a material such as styrene rubber, olefin rubber, urethane rubber, ester rubber, polyurethane, polyethylene, polystyrene, styrene butadiene polymer, silicone, polyester, or the like, which is generally used, can be used. In addition, in order to be not easily seen from the outside, it is preferable to arrange: the thickness is less than 925dtex, the tension is 150-350%, and the interval is less than 7.0 mm. The gather portion elastic member 96 may be a belt-like member having a certain width, in addition to a linear member in the illustrated form.

The face fabric constituting the gather sheet 95 is also similar to the liquid-permeable top sheet 11, and may be made of synthetic fibers such as olefin-based fibers such as polyethylene and polypropylene, polyester-based fibers and polyamide-based fibers, regenerated fibers such as rayon and cuprammonium fibers, and natural fibers such as cotton, and may be made of a nonwoven fabric obtained by an appropriate processing method such as a spunbond method, a hot-roll method, a melt-blown method, a needle-punching method, or the like. In addition, for the gather sheet 95, in order to prevent permeation of urine and the like, and to prevent rash and improve the touch (dry feeling) of the skin, it is desirable to use a water repellent treated nonwoven fabric coated with a silicone-based, paraffin metal-based, alkyl chromium chloride-based water repellent agent or the like.

As shown in fig. 3 to 6, the back surface of the interior body 10 is joined to the inner surface of the exterior body 20 in the inner and outer fixing regions 10B (hatched regions) by a hot melt adhesive or the like. The inner and outer fixing regions 10B may be appropriately determined and may be provided almost entirely in the width direction WD of the inner body 10, but are preferably: both ends in the width direction are not fixed to the exterior body 20.

(construction example of outer body)

The outer package 20 extends outward beyond the side edge of the absorbent body 13. As shown in the figure, the side edge of the exterior body 20 may be positioned on the center side in the width direction of the side edge of the interior body 10 in the crotch portion, or the side edge of the exterior body 20 may be positioned on the outer side in the width direction of the side edge of the interior body 10 in the crotch portion. Further, the exterior body 20 includes: a waist portion T which is a front-rear direction range corresponding to the side seal portions 21; and an intermediate portion L that is a longitudinal range between the waist portion T of the front body portion F and the waist portion T of the rear body portion B.

In the exterior body 20 of the illustrated embodiment, an elastic sheet, for example, an elastic film 30 is interposed between the 1 st sheet layer 20A and the 2 nd sheet layer 20B as shown in fig. 2 and fig. 4 to 6 except for the middle portion L in the front-rear direction, and the elastic sheet stretch structure 20X is formed as shown in fig. 9 as follows: the 1 st sheet layer 20A and the 2 nd sheet layer 20B are joined together through the joining holes 31 penetrating the elastic film 30 at a plurality of sheet joining parts 40 arranged at intervals.

In the form applied to the diaper, the elastic sheet (elastic film 30 in the example of fig. 9) is stretched in the direction ED corresponding to the width direction WD of the diaper.

The 1 st sheet layer 20A and the 2 nd sheet layer 20B may be indirectly joined together via the elastic film 30 without passing through the joining hole 31 of the elastic film 30. The planar shape of the exterior body 20 is formed by concave leg girth lines 29 so that both side edges in the width direction of the middle portion L are formed with leg openings, and is formed into a shape resembling an hourglass as a whole. The exterior body 20 may be configured to: the outer cover 20 is formed in each of the front body portion F and the back body portion B, and is separated in the front-back direction LD of the diaper between the crotch portions.

The form shown in fig. 1 and 2 is a form in which the elastic sheet stretchable structure 20X extends to the waist end portion 23, but if the elastic sheet stretchable structure 20X is used for the waist end portion 23, the fastening of the waist end portion 23 becomes insufficient, and therefore, as shown in fig. 7 and 8, the conventional stretchable structure based on the elongated waist elastic member 24 may be provided instead of the elastic sheet stretchable structure 20X in the waist end portion 23 as needed. The waist elastic member 24 is a plurality of elongated elastic members such as rubber threads disposed at intervals in the front-rear direction LD, and provides a stretching force to fasten the waist of the body. The waist elastic members 24 are not substantially arranged in a bundle at a close interval, but are arranged at intervals of 3 or more, preferably 5 or more, at intervals of about 3 to 8mm in the front-rear direction so as to form a predetermined stretchable region. The elongation at the time of fixing the waist elastic member 24 may be appropriately determined, but in the case of a normal adult, it may be set to about 230 to 320%. The waist elastic member 24 is formed of rubber threads in the illustrated example, but other elongated elastic members such as flat rubber may be used. Although not shown, it may be: an elastic film 30 is provided at the waist end portion 23, and an elongated waist elastic member 24 is provided at a position overlapping the elastic film 30, thereby forming an extensible structure based on both elastic members. In the illustrated embodiment, the elongated elastic member extending along the leg opening is not provided at the edge portion of the leg opening in the outer casing 20, but the elongated elastic member may be provided at a position overlapping the elastic film 30 at the edge portion, or the elongated elastic member may be provided instead of the elastic film 30 at the edge portion.

As another embodiment, although not shown, the following modifications may be made as appropriate: the elastic sheet stretchable structure 20X is not provided in the intermediate portion L between the waist portion T of the front body portion F and the waist portion T of the back body portion B, or the elastic sheet stretchable structure 20X is provided continuously in the front-rear direction LD from the inside of the waist portion T of the front body portion F to the inside of the waist portion T of the back body portion B through the intermediate portion L, or the elastic sheet stretchable structure 20X is provided only in one of the front body portion F and the back body portion B.

(form of joint part)

In the present invention, the arrangement of the joint portion is characterized. In order to make this feature clear, the arrangement of the joint portions of the conventional example will be specifically described in advance.

Fig. 9 shows a typical example of the method disclosed in patent document 1.

That is, the group of joints 40 is arranged in a staggered manner, the joints 40 are elongated in the direction perpendicular to the expansion and contraction direction, and are formed in a symmetrical shape (symmetrical in the left-right direction in fig. 9 (a)) about a center line passing through the center in the expansion and contraction direction, the width 40x of the joints 40 in the expansion and contraction direction is preferably 0.2 to 0.4mm, the interval d1 of the joints 40 arranged in the expansion and contraction direction is preferably 3 to 12.9mm, more preferably 5 to 6.4mm, and the interval d2 of the joints 40 arranged in the direction perpendicular to the expansion and contraction direction is preferably 2 to 10.5mm, more preferably 2.3 to 4.6 mm.

As described above, the joint portions 40 having the significantly narrow width 40x in the stretching direction are arranged in a staggered manner at the large separation intervals d1 to some extent in the stretching direction, and the contraction force of the elastic film 30 directly acts on the joint portions 40, so that the arrangement and the intervals of the joint portions 40 are reliably maintained at the positions of the joint holes 31 of the elastic film 30, and as a result, the flexibility is not easily lowered. In addition, the fold 25f extends almost straight in the direction perpendicular to the retracting direction, and the engaging portion 40 is hidden and inconspicuous between the fold 25f and the fold 25 f. Therefore, the elastic sheet stretch structure 20X is formed so that the appearance is closer to the cloth while the decrease in flexibility is suppressed.

On the other hand, when the engaging portion 40 is arranged in a staggered manner but the shape of the engaging portion 40 is circular, the engaging portion 40 is clearly seen between the folds 25f and 25f of the wrinkles, and the folds 25f extend in a direction perpendicular to the stretching direction so as to greatly bypass the engaging portion 40, so that the wavy folds 25f are formed as a whole, and the cloth-like appearance tends to be unable to be obtained.

From such a viewpoint, it is desirable that the shape of the joint portion 40 is elongated in a direction perpendicular to the expansion and contraction direction. However, if the maximum length of the joint portion 40 in the direction perpendicular to the expansion and contraction direction is too short or too long, there is a concern that: the linearity of the fold 25f is reduced or the flexibility is reduced. Therefore, although these dimensions can be determined appropriately, the length 40y of the joint 40 in the direction perpendicular to the expansion/contraction direction is preferably 0.4 to 3.2mm, and particularly preferably 0.7 to 1.4 mm.

On the other hand, in patent document 2, in 2 examples shown in fig. 10 (a) and (b), the openings (shown in a slightly vertically long rectangle) of the stretchable film are arranged in a staggered manner, and in the example (b), the small circular auxiliary bonding portions are arranged between the rectangular main openings. In the example (b), the idea of the staggered arrangement is also used.

The arrangement and size of the openings are within the size range (unit is mm.) shown in fig. 10, which is preferable mainly in terms of appearance, texture, air permeability, and the like.

Both inventions of patent documents 1 and 2 disclose elongated openings and show a staggered arrangement.

However, in the conventional example, since the separation interval between the openings of the elastic film in the direction perpendicular to the stretching direction is set to be large, the stretching stress in the stretching direction is high, and there are many wearers who feel excessively (in the width direction) strongly fastened, for example, when applied to a pants-type disposable diaper.

Here, in patent document 2, the opening length B shown in fig. 10 is preferably 0.3 to 0.7mm, and the separation distance H is preferably 0.6 to 1.4mm, but if an attempt is made to calculate the percentage of (separation distance between adjacent 1 st joints)/(distance from one point of a joint to the corresponding one point of the adjacent 1 st joint), the percentage is (0.3 to 0.7mm)/(0.6 to 1.4mm) 21.4 to 183%, and the lower limit value of calculation is assumed to be large in reality although small.

In contrast, the applicant found that: when the separation interval between the openings of the elastic film in the direction perpendicular to the stretching direction wd (ed) (in the figure, the vertical direction: the direction denoted by the reference numeral LD) is set small as shown in fig. 11, the stretching stress in the stretching direction can be reduced, and therefore, when applied to a pants-type disposable diaper, the disposable diaper can fit comfortably to the wearer with a weak fastening force.

The reason is considered to be that: only by applying a small extension force in the width direction (the direction of expansion and contraction of the elastic film) from the outside, the opening portion opens in the width direction as shown in fig. 9 to become the engagement hole 31, whereas in the separation interval region between the opening portions perpendicular to the direction of expansion and contraction, even if the opening portion is extended in the width direction, the extension stress of the elastic film directly becomes a contraction force to fasten the wearer because the opening portion is not present.

The form shown in fig. 11 has an advantage that it can fit comfortably to the wearer and has excellent air permeability because the area ratio of the joint portion and the area ratio of the joint hole in the use state of being extended in the width direction are high.

In the use form of the product of the embodiment shown in fig. 11 (a), however, wrinkles along the vertical direction LD are formed in the separation region between the row of the joining portions 40 and 40 … along the vertical direction LD and the adjacent row of the joining portions 40 and 40 … separated from the row along the expansion direction WD (ED: width direction). As shown in fig. 11 (b), the wrinkles 25F have a similar mountain shape. That is, patent document 2 shows that the cross section is different from the cross section shown in fig. 9 (c).

In the case where the form shown in fig. 11 is used as the entire stretchable region of the product and from the viewpoint of design, the design is often simple, except that the wrinkles 25F long in the vertical direction LD are formed repeatedly in the stretching direction ed (wd) in the same manner, and the attractiveness of the product is small.

The particularly preferred embodiments will be described below in order by referring to representative examples.

< embodiment 1 >

The stretchable member of embodiment 1 shown in fig. 12 includes the following stretchable structure of the elastic sheet: the elastic sheet is interposed between a 1 st sheet having air permeability and a 2 nd sheet having air permeability, and the 1 st sheet and the 2 nd sheet are joined together through a joining hole penetrating the elastic sheet or are joined together across the elastic sheet at a plurality of sheet joining parts arranged at intervals.

In addition, the stretching region showing the elastic sheet stretching structure can be stretched in the stretching direction by the contraction force of the elastic sheet.

In the present invention, the engaging portion has the 2 nd engaging portion 41, 41 … in addition to the 1 st engaging portion 40, 40 ….

The 1 st joint 40, 40 … is arranged at intervals along the vertical direction LD to form a 1 st joint row.

As will be described later, for example, as an example of embodiment 8 with reference to fig. 19, the 1 st row of joining portions 40 and 40 … is preferably inclined (therefore, does not include 90 degrees) within a range where the angle θ intersecting the expansion and contraction direction ED is 30 to 150 degrees, and more preferably, is inclined (therefore, does not include 90 degrees) within a range of 45 to 135 degrees, without being along the vertical direction LD.

In embodiment 1, the non-inclined and intersecting angle θ is 90 degrees.

The 1 st joint portion 40 is formed as follows: the length L of the LD reference in the vertical direction is 0.3 to 7.0mm, preferably 0.5 to 5.0mm, and particularly preferably 0.7 to 2.5 mm.

In addition, the 1 st joint part 40, 40 … is formed as follows: the forming distance S0 in the expansion and contraction direction ED (WD) is 2.0 to 20.0mm, preferably 3.0 to 15.0mm, and particularly preferably 4.0 to 10.0 mm.

The percentage R of the ratio of the distance in the vertical direction LD, which is determined by the correlation between the adjacent 1 st joints 40, 40 in the 1 st joint 40, 40 … row, (the separation distance d between the adjacent 1 st joints)/(the distance P from one point of the joint to the corresponding one point of the adjacent 1 st joint) is 5 to 60%, preferably 10 to 45%, and particularly preferably 20 to 35%.

If this percentage is too high, this shows a tendency, in the case of application to articles: the stretching stress in the width direction (stretching direction) is high, and it is difficult to obtain appropriate fit as a wearing article.

In addition, if the percentage is too low, the possibility that the 1 st joint portions 40, 40 adjacent in the vertical direction LD will be continuous with each other in the manufacturing process cannot be excluded, and more fundamentally, the anvil and the heating horn forming the joint portions will be excessively burdened with equipment, which may become a cause of hindrance to the stabilizing work.

It is desirable that the length L of the 1 st joint part 40 and the joint parts having the lengths equal to or longer than this are not formed in the 2 nd joint part 41, 41 rows. From this viewpoint, it is also clear that the configuration is completely different from that of fig. 10.

In the above-described embodiment 1, the following advantages or features are representatively shown.

(1) Since the percentage R is low, the stretch stress in the stretch direction is low, and the stretch sheet member has soft stretchability, and when the stretch sheet member is applied to an absorbent article, the absorbent article has excellent wearing feeling.

Further, the air permeability is improved because the aperture ratio is improved.

(2) Since not only the 1 st joint 40, 40 … row but also the 2 nd joint 41, 41 … row are formed, the inter-row gathers R can be formed between the 1 st joint 40, 40 … row and the 2 nd joint 41, 41 … row.

(3) Since the 2 nd joint 41 has a smaller area than the 1 st joint 40, it looks like a pattern-like joint.

(4) The inter-row gathers R that can be formed between the 1 st joint 40, 40 … row and the 2 nd joint 41, 41 … row means: 2 inter-row gathers can be formed between the 1 st joint 40, 40 … row and the 1 st joint 40, 40 … row. However, in the 2 nd joint 41, 41 … column, the 2 nd joint 41, 41 is long, and therefore means: the pleats can be formed without unduly burdening the anvil and the heated horn with equipment. As a result, as compared with the case where the inter-row pleats are formed only by the row of the first joint portions 40 and 40 … as shown in fig. 11, a plurality of pleats can be formed in a narrow width per unit area without causing a burden on the apparatus.

In this way, the contact area with the skin of the wearer can be reduced, and comfort and flexibility can be improved.

< embodiment 2 >

As shown in fig. 13, the 2 nd engaging parts 41, 41 … can be arranged in groups between each other in the vertical direction LD of the 1 st engaging parts 40, 40. In this case, even if the length L of the 1 st joint part 40 is short, the expansion/contraction stress can be reduced by positioning the 2 nd joint part 41.

< embodiment 3 >

As shown in fig. 14, the 2 nd joint 41 can be configured as follows: instead of being adjacent to the 1 st joint 40 one-to-one, for example, 12 nd joint 41 is arranged adjacent to 21 st joints 40, 40.

< example 4 >

As shown in fig. 15, the 3 rd row of joints 42 and 42 … having a long separation interval in the vertical direction LD can be formed between the 1 st row of joints 40 and 40 … and the 2 nd row of joints 41 and 41 ….

The inter-column pleats R shown in embodiment 1 can be formed into large pleats bf broken in the vertical direction LD by the formation of the 3 rd joint portion 42.

A minor fold sf can be formed between the 3 rd joint 42 and the 1 st joint 40, 40 … rows.

The pleat group formed by the inter-row pleats R being broken has a low bending rigidity (is easily bent) of the stretchable member, and has good followability to body movements.

< embodiment 5 >

As shown in fig. 16, the 3 rd joining part 42 is obliquely arranged together with the 2 nd joining part 41, whereby large pleat bf groups are formed, which are obliquely arranged, and the appearance is improved.

< embodiment 6 >

As shown in fig. 17, the 4 th joint part 43 can be inserted and arranged in the 1 st joint part 40, 40 … row. In this case, the 4 th joint parts 43 and 43 … may be arranged obliquely as shown in the drawing, in addition to along the expansion and contraction direction ED. In this case, the area of the 4 th joint portion 43 is preferably 5% or more and 50% or less of the area of the 1 st joint portion 40.

< embodiment 7 >

As shown in fig. 18, the 1 st engaging part 40 itself may be inclined. The 2 nd engaging part 41 may also be inclined.

In the present invention, since the joint length is based on the vertical direction LD, as shown in fig. 18, the length L of the 1 st joint 40 is the joint length from the center of one side to the center of the other side in the vertical direction LD.

The separation distance is also a separation distance d that is a distance LD perpendicular to the center of the side and the center of the opposite side.

< embodiment 8 >

As shown in fig. 19, an example of this is shown: the 1 st joining part 40 and the 2 nd joining part 41 are both inclined, and the row of each joining part is inclined within a range where an angle θ intersecting the expansion and contraction direction ED is 30 to 150 degrees, preferably 45 to 135 degrees, instead of along the vertical direction LD. The angle θ of intersection is particularly preferably 60 degrees to 120 degrees. Of these ranges of angles representing inclination, 90 degrees is of course excluded.

The advantage that the row of engaging portions is inclined not in the vertical direction LD but in the direction intersecting the expansion and contraction direction ED becomes clear compared with the 7 th embodiment shown in fig. 18. That is, in the example shown in fig. 19, the separation interval between, for example, the 1 st joining portions 40 and 40 on the vertical direction LD line is considerably larger than that in the 7 th embodiment shown in fig. 18, which is a reason why it is advantageous.

That is, it is desirable that the joining of the 1 st sheet layer 20A and the 2 nd sheet layer 20B at the sheet joining portion 40 is achieved by a joining means based on material fusion such as heat sealing or ultrasonic sealing, for example.

In the case of continuous production, sealing fusion by ultrasonic waves is performed between the abutment roller and the ultrasonic horn, but it is important that the ultrasonic horn is brought into close contact with the sheet over the entire axial direction of the abutment roller in order to prevent energy loss, and therefore, in the case where a pattern having a large proportion of the abutment roller convex portions is formed along the line-contact generatrix as in the row of the joint portions 40 and 40 … in fig. 12, it is necessary to provide a large ultrasonic output, and therefore an excessively large close contact force acts along the line-contact generatrix, and in this case, the load on the equipment side becomes large.

In contrast, in the case of embodiment 8 shown in fig. 19 (in general, in the case of the inclined arrangement), the ratio of the joint portion on the line positioned in the vertical direction LD is small, and stable line pressure can be achieved, and therefore, the burden on the equipment is small, and stable work can be achieved.

In the 8 th embodiment shown in fig. 19, since the 1 st engaging part 40 (and the 2 nd engaging part 41) is inclined, there are also advantages as follows: can form folds and pleats with excellent appearance.

< embodiment 9 >

The 9 th embodiment shown in fig. 20 is a form in which the 1 st joint 40, 40 … and the 2 nd joint 41, 41 … are formed along a wave-shaped curve oscillating in the expansion and contraction direction ED.

The arrangement of the wavy curve is excellent in aesthetic property.

< 10 th embodiment >

The 10 th embodiment shown in fig. 21 is in the form of a large pleat bf following a wave-shaped curve oscillating in the vertical direction LD. The arrangement of the wavy curve is also excellent in aesthetic property.

< 11 th embodiment >

The 11 th embodiment shown in fig. 22 is formed as follows: the 1 st joint 40, 40 … column and the 2 nd joint 41, 41 … column follow a wave curve oscillating in the direction of the expansion and contraction direction ED, and the inclined large pleats bf follow a wave curve oscillating in the vertical direction LD. The wavy curve can form complicated folds and has excellent appearance.

Embodiments of the present invention will be further explained.

The shapes of the respective sheet engagement portions 40 and the engagement holes 31 in the natural length state may be determined as appropriate, in addition to the rectangular shapes described above. For example, as shown in fig. 23, the lens may be formed in any shape such as a perfect circle, a triangle, a polygon, a star, or a cloud, in addition to a convex lens shape (see fig. 23 (a)), a diamond shape (see fig. 23 (b)), a concave lens shape (see fig. 23 (c)), or an oval shape (see fig. 23 (d)).

The engagement hole 31 is mainly related to the shape and manufacturing stage of the engagement portion 40(41, 42, 43) or the degree of expansion and contraction.

In the case where the 1 st sheet layer 20A and the 2 nd sheet layer 20B in the sheet joint portion 40 are joined through the joining hole 31 formed in the elastic film 30, it is desirable that the 1 st sheet layer 20A and the 2 nd sheet layer 20B are not joined to the elastic film 30 at least except between the 1 st sheet layer 20A and the 2 nd sheet layer 20B in the sheet joint portion 40.

The joining means of the 1 st sheet layer 20A and the 2 nd sheet layer 20B in the sheet joining portion 40 is not particularly limited. For example, the 1 st sheet layer 20A and the 2 nd sheet layer 20B in the sheet joining portion 40 may be joined by a hot melt adhesive, or may be joined by a joining means based on material fusion such as heat sealing or ultrasonic sealing.

In the case where the 1 st sheet layer 20A and the 2 nd sheet layer 20B are joined through the joining holes 31 of the elastic film 30 in the sheet joint 40, the form in which the sheet joint 40 is formed by material fusion may be any one of the following forms, but the 2 nd and 3 rd fusion forms are preferable: a 1 st fusion-bonded mode (see fig. 24 (a)) in which the 1 st sheet layer 20A and the 2 nd sheet layer 20B are bonded together only by the molten and cured product 20m of most or part of at least one of the 1 st sheet layer 20A and the 2 nd sheet layer 20B in the sheet-bonded portion 40; a 2 nd welding mode (see fig. 24 (B)) in which the 1 st sheet layer 20A and the 2 nd sheet layer 20B are joined together only by the melt-cured product 30m of all or most or part of the elastic film 30 in the sheet joint 40; and a 3 rd welding mode (see fig. 24 (c)) in which the 1 st welding mode and the 2 nd welding mode are combined.

Particularly, the 1 st sheet layer 20A and the 2 nd sheet layer 20B are preferably joined together by the melt-cured product 20m of a part of the 1 st sheet layer 20A and the 2 nd sheet layer 20B and the melt-cured product 30m of the whole or most of the elastic film 30 in the sheet joined portion 40. In the 3 rd welding mode shown in fig. 26 (B), the molten cured product 30m of the elastic film 30 showing white is visible between the molten cured fiber products 20m of the 1 st ply 20A or the 2 nd ply 20B showing black, whereas in the 1 st welding mode shown in fig. 26 (a), the molten cured fiber products 20m of the 1 st ply 20A or the 2 nd ply 20B are not visible therebetween.

In the case where the 1 st sheet layer 20A and the 2 nd sheet layer 20B are bonded to each other with the most part or part of the melt-cured product 20m of at least one of the 1 st sheet layer 20A and the 2 nd sheet layer 20B as the adhesive as in the 1 st bonding mode or the 3 rd bonding mode, the sheet bonded portion 40 is preferably not hardened because the 1 st sheet layer 20A and the 2 nd sheet layer 20B are not partially melted.

When the 1 st sheet layer 20A and the 2 nd sheet layer 20B are nonwoven fabrics, the following forms are included in the 1 st sheet layer 20A and the 2 nd sheet layer 20B without melting: the core (including not only the core in the composite fiber but also the central portion of the single component fiber) remains in the entire fiber of the sheet joint 40, but the peripheral portion (including not only the sheath in the composite fiber but also the surface layer side portion of the single component fiber) melts; alternatively, a part of the fibers is not melted at all but the remaining fibers are completely melted, or the core remains but its surrounding portion is melted.

When the 1 st sheet layer 20A and the 2 nd sheet layer 20B are joined together using the molten and cured product 30m of the elastic film 30 as an adhesive as in the 2 nd welding mode and the 3 rd welding mode, the peel strength is high. In the 2 nd welding mode, the welding can be produced by: under the condition that the melting point of at least one of the 1 st sheet layer 20A and the 2 nd sheet layer 20B is higher than the melting point of the elastic film 30 and the heating temperature at the time of forming the sheet bonded portion 40, the elastic film 30 is sandwiched between the 1 st sheet layer 20A and the 2 nd sheet layer 20B, and the portion to be the sheet bonded portion 40 is pressurized and heated, so that only the elastic film 30 is melted.

On the other hand, in the 3 rd welding mode, the welding can be produced by: under the condition that the melting point of at least one of the 1 st sheet layer 20A and the 2 nd sheet layer 20B is higher than the melting point of the elastic film 30, the elastic film 30 is sandwiched between the 1 st sheet layer 20A and the 2 nd sheet layer 20B, and the elastic film 30 and at least one of the 1 st sheet layer 20A and the 2 nd sheet layer 20B are melted by applying pressure and heat to the portion to be the sheet joining portion 40.

From such a viewpoint, the melting point of the elastic film 30 is preferably about 80 to 145 ℃, the melting points of the 1 st and 2 nd sheet layers 20A and 20B are preferably about 85 to 190 ℃, particularly preferably about 150 to 190 ℃, and the difference between the melting points of the 1 st and 2 nd sheet layers 20A and 20B and the melting point of the elastic film 30 is preferably about 60 to 90 ℃. In addition, the heating temperature is preferably about 100 to 150 ℃.

In the 2 nd welding mode and the 3 rd welding mode, when the 1 st sheet 20A and the 2 nd sheet 20B are nonwoven fabrics, the melt-cured product 30m of the elastic film 30 may penetrate between the fibers over the entire thickness direction of the 1 st sheet 20A and the 2 nd sheet 20B at the sheet joint 40 as shown in fig. 25 (c), but the flexibility of the sheet joint 40 is high in a mode in which the fibers penetrate to the middle in the thickness direction as shown in fig. 25 (a) or in a mode in which the fibers hardly penetrate between the 1 st sheet 20A and the 2 nd sheet 20B as shown in fig. 25 (B).

Fig. 27 shows an example of an ultrasonic sealing device suitable for forming the 2 nd welding mode and the 3 rd welding mode. In this ultrasonic sealing device, when the sheet joint 40 is formed, the 1 st sheet layer 20A, the elastic film 30, and the 2 nd sheet layer 20B are fed between the anvil roll 60 and the ultrasonic horn 61, and the anvil roll 60 has, on the outer surface, the protrusions 60A formed in accordance with the pattern of the sheet joint 40. At this time, for example, by making the feeding and conveying speed of the upstream elastic film 30 by the feeding driving roller 63 and the nip roller 62 slower than the conveying speed after the support roller 60 and the ultrasonic horn 61, the elastic film 30 is elongated in the MD direction (machine direction, conveying direction) to a predetermined elongation on the path from the nip position by the feeding driving roller 63 and the nip roller 62 to the sealing position by the support roller 60 and the ultrasonic horn 61. The elongation of the elastic film 30 can be set by selecting the speed difference between the support roller 60 and the feeding drive roller 63, and can be set to about 300% to 500%, for example. And 62 is a nip roll.

The 1 st sheet layer 20A, the elastic film 30, and the 2 nd sheet layer 20B fed between the anvil roll 60 and the ultrasonic horn 61 are heated by ultrasonic vibration energy of the ultrasonic horn 61 while being pressed between the protrusion 60A and the ultrasonic horn 61 in a state of being laminated in this order, and only the elastic film 30 is melted or at least one of the 1 st sheet layer 20A and the 2 nd sheet layer 20B and the elastic film 30 are melted, whereby the joining holes 31 are formed in the elastic film 30 and the 1 st sheet layer 20A and the 2 nd sheet layer 20B are joined together through the joining holes 31. Therefore, in this case, the area ratio of the sheet joining portion 40 can be selected by selecting the size, shape, separation interval, arrangement pattern in the roller longitudinal direction and roller circumferential direction, and the like of the protruding portion 60a of the backup roller 60.

The reason for forming the engagement hole 31 is, although not necessarily clear, considered to be: the portions of the elastic film 30 corresponding to the protrusions 60a of the backup roller 60 are melted and released from the surroundings, thereby forming holes. At this time, as shown in fig. 9 (a) and 11 (a), in the elastic film 30, the portions between the adjacent coupling holes 31 arranged in the expansion and contraction direction ED are cut off by the coupling holes 31 from the portions on both sides in the expansion and contraction direction, and the support on both sides in the contraction direction is lost, so that the coupling holes 31 expand in the expansion and contraction direction ED as the center side in the direction LD perpendicular to the expansion and contraction direction is contracted to the balance as the center side in the expansion and contraction direction is closer to the center side in the direction LD perpendicular to the expansion and contraction direction within a range in which the continuity in the direction perpendicular to the contraction direction can be maintained.

The constituent members of the 1 st sheet 20A and the 2 nd sheet 20B are not particularly limited as long as they are sheet-shaped, but from the viewpoint of breathability and flexibility, nonwoven fabrics are preferably used. The kind of the raw material fiber of the nonwoven fabric is not particularly limited. Examples thereof include olefin-based fibers such as polyethylene and polypropylene, synthetic fibers such as polyester and polyamide, regenerated fibers such as rayon and cuprammonium fibers, natural fibers such as cotton, and the like, and mixed fibers and composite fibers using two or more of these fibers. Further, the nonwoven fabric may be produced by any process.

Examples of the processing method include known methods such as a spunlace method, a spunbond method, a hot-rolling method, a melt-blowing method, and a needle-punching methodMethods, hot air methods, spot-bonding methods, and the like. When a nonwoven fabric is used, the weight per unit area is preferably about 10 to 25g/m2. In addition, a part or all of the 1 st sheet layer 20A and the 2 nd sheet layer 20B may be a pair of layers formed by folding one sheet of material and facing each other. For example, as shown in the figure, in the waist end portion 23, the component located on the outer side may be the 2 nd sheet 20B, the folded portion 20C folded back toward the inner surface side at the waist opening edge may be the 1 st sheet 20A, and the elastic film 30 may be interposed therebetween, and in the portion other than the waist end portion 23, the component located on the inner side may be the 1 st sheet 20A, the component located on the outer side may be the 2 nd sheet 20B, and the elastic film 30 may be interposed therebetween. Of course, the component of the 1 st sheet 20A and the component of the 2 nd sheet 20B may be provided separately throughout the front-rear direction LD, and the elastic film 30 may be interposed between the component of the 1 st sheet 20A and the component of the 2 nd sheet 20B without folding back the components.

The elastic film 30 is not particularly limited, and a film having a plurality of holes or slits formed therein may be used for ventilation, in addition to a non-porous film, as long as it is a thermoplastic resin film having elasticity itself. Particularly preferred are elastic films 30 as follows: the tensile strength in the width direction WD (the stretching direction ED, the MD direction) is 8-25N/35 mm, the tensile strength in the front-back direction LD (the direction LD perpendicular to the stretching direction, the CD direction) is 5-20N/35 mm, the tensile elongation in the width direction WD is 450-1050%, and the tensile elongation in the front-back direction LD is 450-1400%. The thickness of the elastic film 30 is not particularly limited, but is preferably about 20 to 40 μm.

(expansion region)

The region of the exterior body 20 having the elastic sheet stretchable structure 20X has a stretchable region capable of stretching in the width direction WD. The stretchable region 80 has a portion 32 (see fig. 12 (a)) in which the elastic film 30 is linearly continuous in the width direction WD, and is stretchable in the width direction WD while being stretchable by the contractive force of the elastic film 30. More specifically, in a state where the elastic film 30 is stretched in the width direction WD, the 1 st sheet layer 20A and the 2 nd sheet layer 20B are joined to each other at intervals in the width direction WD and in the front-back direction LD perpendicular to the width direction (direction LD perpendicular to the stretching direction) via the joining holes 31 of the elastic film 30 to form a plurality of sheet joining portions 40, thereby forming the elastic sheet stretching structure 20X, and the joining holes 31 are arranged in the stretching region 80 so as to have portions 32 (see fig. 12 (a)) where the elastic film 30 is linearly continuous in the width direction WD, thereby imparting such stretchability.

In the stretch region, as shown in fig. 9 and 12 (B), in the natural length state, the 1 st sheet layer 20A and the 2 nd sheet layer 20B between the sheet joining portions 40 swell in directions away from each other to form contracted wrinkles 25F, 25F extending in the front-rear direction LD, and even in a worn state where the sheets are extended to some extent in the width direction WD, the contracted wrinkles 25F remain even though they are spread. Further, if the elastic film 30 is not joined to at least the 1 st sheet layer 20A and the 2 nd sheet layer 20B except between the 1 st sheet layer 20A and the 2 nd sheet layer 20B in the sheet joint 40 as shown in the figure, it can be seen from fig. 9 (c) assuming a worn state and fig. 9 (a) assuming an expanded state of the 1 st sheet layer 20A and the 2 nd sheet layer 20B that, in these states, a gap is formed between the joint hole 31 in the elastic film 30 and the sheet joint 40, and even if the material of the elastic film 30 is a non-porous film or sheet, air permeability can be provided through the gap. In addition, in the natural length state, the engaging hole 31 is narrowed by the further contraction of the elastic membrane 30, and a gap is hardly formed between the engaging hole 31 and the sheet engaging portion 40.

The elastic limit elongation of the stretchable region 80 in the width direction WD is desirably set to 200% or more (preferably 265 to 295%). The ultimate elastic extension percentage of the stretchable region 80 is almost determined by the elongation percentage of the elastic film 30 at the time of production, but is reduced due to the resistance to the contraction in the width direction WD. The reason for this is mainly the proportion of the length L of the sheet joint portion 40 per unit length in the width direction WD, and the larger this proportion is, the more the elastic limit elongation rate decreases. In a normal case, the length L of the sheet joint 40 is related to the area ratio of the sheet joint 40, and therefore, the elastic limit elongation of the stretchable zone 80 can be adjusted by the area ratio of the sheet joint 40.

The extension stress of the stretchable region 80 can be adjusted mainly by the sum of the distances LD in the vertical direction (separation distance d) of the portions 32 (see fig. 12 a) where the elastic film 30 is linearly continuous in the width direction WD.

The area ratio of the sheet joint portions 40 in the stretchable zone 80 and the area of each sheet joint portion 40 may be determined as appropriate, but in a normal case, it is preferably set within the following range.

Area of sheet joining portion 40: 0.14 to 3.5mm2(particularly preferably 0.14 to 1.0 mm)2)

Area ratio of the sheet joining portion 40: 1.8 to 19.1% (particularly preferably 1.8 to 10.6%)

Since the proof stress and the proof stress of the stretchable region 80 can be adjusted by the area of the sheet joint portion 40 in this way, as shown in fig. 7, a plurality of regions having different area ratios of the sheet joint portion 40 can be provided in the stretchable region 80, and the fit can be changed depending on the region. In the form shown in fig. 7, the edge portion stretchable region 82 having leg openings is provided, and the edge portion stretchable region 82 is provided as a region in which: since the sheet joint 40 has a higher area ratio than the other regions, it is soft and flexible with a weak elongation stress.

(non-expansion region)

In the region of the outer package 20 having the elastic sheet stretchable structure 20X, as shown in fig. 7, a non-stretchable region 70 may be provided at least on one side in the width direction of the stretchable region 80. The configuration of the telescopic regions 80 and the non-telescopic regions 70 may be determined as appropriate. In the case of the outer package 20 of a pants-type disposable diaper as in the present embodiment, since the portion overlapping the absorbent body 13 is a region where expansion and contraction are not necessary, it is preferable to use a part or the whole of the portion overlapping the absorbent body 13 (desirably, the whole including the inner and outer fastening regions 10B) as the non-expansion region 70 as shown in the drawing. Of course, the non-stretchable region 70 may be provided from the region overlapping with the absorbent body 13 to the region not overlapping with the absorbent body 13 in the width direction WD or the front-back direction LD, or the non-stretchable region 70 may be provided only in the region not overlapping with the absorbent body 13.

The non-stretching region 70 is set to be a region: although the elastic film 30 is continuous in the width direction WD, it does not have a portion that is linearly continuous in the width direction WD due to the presence of the engagement holes 31. Therefore, even if the 1 st sheet layer 20A and the 2 nd sheet layer 20B are joined via the joining holes 31 of the elastic film 30 at intervals in the width direction WD and in the front-rear direction LD perpendicular to the width direction WD to form the plurality of sheet joining portions 40 in a state where the elastic film 30 is stretched in the width direction WD, thereby forming the entire elastic sheet stretchable structure 20X including both the stretchable region 80 and the non-stretchable region 70, in the non-stretchable region 70, since the elastic film 30 is not linearly continuous in the width direction WD, the contractive force of the elastic film 30 hardly acts on the 1 st sheet layer 20A and the 2 nd sheet layer 20B, the stretchability is almost lost, and the ultimate elongation approaches 100%.

In such a non-stretch region 70, the 1 st sheet layer 20A and the 2 nd sheet layer 20B are joined together at a plurality of sheet joining portions 40 arranged at intervals, and the sheet joining portions 40 are discontinuous, so that a decrease in flexibility is prevented.

The arrangement pattern of the engaging holes 31 in the elastic film 30 in the non-stretch region 70 may be determined as appropriate.

The area ratio of the sheet joint portions 40 in the non-stretchable region and the area ratio of each sheet joint portion 40 may be appropriately determined, but in a normal case, if the area ratio is set within the range described below, the area ratio of each sheet joint portion 40 is small and the area ratio of the sheet joint portion 40 is low, and thus the non-stretchable region 70 is not hardened, which is preferable.

Area of sheet joining portion 40: 0.10 to 0.75mm2(particularly preferably 0.10 to 0.35 mm)2)

Area ratio of the sheet joining portion 40: 4 to 13% (particularly preferably 5 to 10%)

In the above examples, an elastic film is used as the elastic sheet. However, elastic nonwoven fabrics may also be used. Alternatively, an elastic nonwoven fabric may be provided on one side or both sides of the elastic film so as to be interposed between the 1 st sheet layer 20A and the 2 nd sheet layer 20B.

< description of words in the specification >)

Unless otherwise specified in the specification, the following terms in the specification have the following meanings.

"front body portion" and "back body portion" refer to portions located on the front side and the back side, respectively, with the center in the front-back direction of the pants-type disposable diaper as a boundary. The crotch portion refers to a front-rear direction range including a front-rear direction center of the pants-type disposable diaper, and when the absorber has a constricted portion, refers to a front-rear direction range of a portion having the constricted portion.

"ultimate elastic elongation" means the elongation at the elastic limit in the stretching direction ED (in other words, in a state where the 1 st sheet and the 2 nd sheet are completely unfolded), and is an amount representing the length at the elastic limit in percentage assuming that the natural length is 100%.

The "area ratio" is a ratio of the target portion per unit area, and is expressed as a percentage by calculating the total area of the target portion (for example, the sheet joint portion 40, the opening of the joint hole 31, and the ventilation hole) in the target region (for example, the stretchable region 80 and the non-stretchable region 70) by dividing the area of the target region, and particularly, the "area ratio" in the region having the stretchable structure is an area ratio in a state of being stretched to the elastic limit in the stretching direction ED. In the aspect in which a plurality of target portions are provided at intervals, it is desirable that: the target area is set to a size including 10 or more target portions, and the area ratio is obtained.

"elongation" means a value when the natural length is 100%.

"weight per unit area" is measured as follows. The sample or test piece is dried and placed in a laboratory or apparatus in a standard state (the temperature in the test site is 23. + -. 1 ℃ C., and the relative humidity is 50. + -. 2%) so as to be in a constant state. The preliminary baking means that the sample or the test piece is made constant in an environment at a temperature of 100 ℃. In addition, the fibers having a official moisture regain of 0.0% may not be subjected to preliminary drying. Using a template (100 mm. times.100 mm) for sample selection, a sample having a size of 100 mm. times.100 mm was cut out from the test piece in a constant state. The weight of the sample was measured, and the weight per square meter was calculated as a weight per unit area by 100 times.

The "thickness" of the absorber was measured by leveling the sample and the thickness measuring device using a thickness measuring instrument (PEACOCK, Diagram thickness gauge, large type, model J-B (measurement range 0 to 35mm) or model K-4 (measurement range 0 to 50mm)) manufactured by Kawasaki, Ltd.

"thickness" other than the above is measured under a load of 0.098N/cm using an automatic thickness measuring instrument (KES-G5 Portable compression measurement program)2The pressure area is 2cm2Is automatically measured under the conditions of (1).

"tensile strength" and "tensile elongation (elongation at break)" mean that, in addition to the test piece being set in a rectangular shape having a width of 35mm × a length of 80mm, the tensile strength and the elongation at break are measured in accordance with JIS K7127: 1999 "test method of Plastic-tensile Properties-", a value measured with an initial nip interval (distance between graduations) of 50mm and a tensile speed of 300 mm/min. As the tensile tester, for example, AUTOGRAPH AGS-G100N manufactured by SHIMADZU corporation may be used.

"elongation stress" means the stress according to JIS K7127: 1999 "test method of Plastic-tensile Properties-", the degree of elongation can be determined appropriately according to the test subjects by the tensile test with the initial nip interval (distance between graduations) set to 50mm and the tensile speed set to 300mm/min, the tensile stress (N/35mm) measured when the elongation is performed in the elastic region. The test piece is preferably set in a rectangular shape having a width of 35mm and a length of 80mm or more, but when a test piece having a width of 35mm cannot be cut, a test piece is prepared with a width that can be cut, and the measurement value is converted into a value in the case of a width of 35 mm. Even when the target region is small and a sufficient test piece cannot be obtained, if the magnitude of the elongation stress is compared, at least the comparison can be performed by appropriately using test pieces having the same size even if the test pieces are small. As the tensile tester, for example, AUTOGRAPH AGS-G100N manufactured by SHIMADZU corporation may be used.

"expanded state" refers to a state of flat expansion without contraction and relaxation.

The dimensions of the respective portions are not particularly described, and are dimensions in the expanded state, not the natural length state. In particular, the size of the joint is the size in the state of being developed to the limit (the state before the 1 st sheet and the 2 nd sheet are broken), and substantially coincides with the size of the joint pattern on the backup roll.

The test or measurement is carried out in a laboratory or apparatus in a standard state (in a test site, the temperature is 23 ± 1 ℃, and the relative humidity is 50 ± 2%) without describing the environmental conditions in the test or measurement.

On the other hand, as described above, the present invention has an object to prevent or suppress the occurrence of breakage of the elastic film between the stretchable regions in the stretchable structure of the elastic sheet.

If the Z-range between the stretchable region 80 in the armpit portion and the edge stretchable region 82 in the leg opening of the diaper shown in fig. 7 is separated as shown in fig. 28, for example, when the diaper is stretched in the width direction to wear the diaper, the elastic film may be broken Q, which is considered to be caused by the difference in thermal destruction in the separation of the stretchable regions having different arrangement patterns.

In contrast, according to the present invention, for example, as shown in fig. 29, at the boundary between the 1 st stretch region E1 and the 2 nd stretch region E2 in which at least one of the arrangement pattern and the shape of the joint is different, the separation distance Px in the elastic limit stretched state is set to 10mm or less between the joint located on the boundary side in the stretch direction ED of the 1 st stretch region E1 and the joint located on the boundary side in the stretch direction ED of the 2 nd stretch region E2, whereby the occurrence of breakage of the elastic film can be prevented or suppressed.

In this case, the separation distance Px in the stretching direction ED (width direction WD in a diaper) is more preferably 7mm or less, and particularly preferably 5mm or less. Although the lower limit is not limited, this means that the above-described S0 becomes small for the arrangement pattern of the joint portions, and therefore, the lower limit of the separation distance Px is preferably 2 mm.

The separation distance Py in the vertical direction LD (front-back direction in a diaper) perpendicular to the stretching direction ED is 10mm or less, preferably 7mm or less, and particularly preferably 5mm or less. The lower limit is preferably 2 mm.

The separation distance Py in the vertical direction LD has a small correlation with the breakage of the elastic membrane. However, particularly when the angle θ intersecting the stretching direction ED is small, the correlation with the breakage of the elastic film becomes large, and therefore the above range is preferable.

The arrangement pattern of the 1 st stretch region E1 in fig. 29 is similar to the arrangement pattern in fig. 12, and is a pattern in which the 2 nd joint portions 41 and the 1 st joint portions 40 correspond one-to-one. The arrangement pattern of the 2 nd stretch region E2 is a pattern in which the 1 st laterally long joint portion 40A is arranged.

The arrangement pattern of the 1 st stretch region E1 and the 2 nd stretch region E2 is not limited. In the example of fig. 30, the 1 st stretch region E1 is the same as the arrangement pattern of fig. 15 in which the 3 rd joint 42 is formed.

The row of the joint portions between the 1 st stretch region E1 and the 2 nd stretch region E2 may be inclined so as to have an angle θ intersecting the stretch direction ED as shown in fig. 19, 29, 30, and 32, in addition to being aligned with the stretch direction ED and the vertical direction LD as shown in fig. 31.

The positions of the separation distance Px and the separation distance Py in the case where the columns of the engaging portions of the 1 st stretch region E1 and the 2 nd stretch region E2 are aligned with the stretch direction ED and the vertical direction LD are shown in fig. 31.

On the other hand, by providing the intermediate region E3 between the 1 st stretch region E1 and the 2 nd stretch region E2, it is possible to prevent or suppress the occurrence of breakage of the elastic film.

For example, in the example of fig. 32, the intermediate area E3 is a configuration pattern in which: in the arrangement pattern of the joint portions in fig. 29, the 1 st joint portion 40B having a short length is formed.

In this case, it is preferable that the separation distance Px is 10mm or less at the boundary between the 1 st expansion and contraction region E1 and the intermediate region E3, and the separation distance Px is also 10mm or less at the boundary between the intermediate region E3 and the 2 nd expansion and contraction region E2.

In addition, at the position of

(1) The distance between the middle telescopic area and the middle telescopic area in the telescopic direction is Xm,

(2) The distance in the stretching direction in the 1 st stretching region is Xa,

(3) When the distance in the telescopic direction in the 2 nd telescopic area is Xb,

preferably Xm ≦ { (Xa + Xb)/2 }. times.1.6. More preferably Xm ≦ { (Xa + Xb)/2 }. times.1.4.

The formula means that: at the boundary of the 1 st stretch region E1, the intermediate region E3, and the 2 nd stretch region, the change in the pitch in the stretch direction is small.

At the position of

(4) The distance between the middle telescopic region and the vertical direction perpendicular to the telescopic direction is Ym,

(5) The distance between the 1 st telescopic area and the vertical direction is Ya,

(6) When the pitch in the vertical direction in the 2 nd telescopic region is Yb,

ym ≦ { (Ya + Yb)/2 }. times.1.6, and Ym ≦ { (Ya + Yb)/2 }. times.1.4 is particularly preferable.

Here, the meaning of "the separation distance Px is 10mm or less" will be described again with reference to fig. 33, and means that: a straight line extending from the joint of the 1 st stretch region E1 in the stretch direction ED by the separation distance Px is provided, and at least one of the centers of the joints of the 2 nd stretch region E2 is located within ± 30 ° from the straight line.

In the case of the intermediate region E3, this means: a straight line extending from the joint of the 1 st expansion/contraction region E1 in the expansion/contraction direction ED by the separation distance Px is provided, and at least one center of the joint of the intermediate region E3 is located within ± 30 ° from the straight line. And means that: a straight line extending from the joint of the intermediate region E3 in the expansion and contraction direction ED by the separation distance Px is provided, and at least one center of the joint of the 2 nd expansion and contraction region E2 exists in a region ± 30 ° from the straight line.

In the arrangement pattern of FIG. 29 and the arrangement pattern of FIG. 32, the ratios of occurrence of fracture of the elastic film were examined by changing the separation distance Px, the separation distance Py, Xm ≦ { (Xa + Xb)/2} and Ym ≦ { (Ya + Yb)/2}, and the results of Table 1 and Table 2 were obtained. Here, the ratio at which the elastic film breaks means: in the range of 100mm of the proof stress of the stretch region, the total length of the range of the length in the stretch direction (proof stress length) in which a fracture occurred is expressed in percentage with respect to the range. If the fracture ratio is less than 20%, it can be determined that: can be allowed in appearance. In addition, if it exceeds, for example, 25%, it can be determined that: when worn, the appearance is locally poor.

[ TABLE 1 ]

The 1 st stretch zone E1 and the 2 nd stretch zone E2

Px Py Fraction of fracture
Example 1 10mm 15mm 16%
Example 2 7mm 10mm 1%
Example 3 5mm 5mm 0%
Example 4 10mm 10mm 8%
Example 4 10mm 5mm 3%

[ TABLE 2 ]

A 1 st expansion region E1, an intermediate expansion region E3 and a 2 nd expansion region E2

Xa Xb Xm Ym Fraction of fracture
Example 1 2.5mm 5.0mm 10.0mm 10.0mm 15%
Example 2 2.5mm 4.0mm 5.0mm 5.0mm 1%
Example 3 2.5mm 2.5mm 2.5mm 4.0mm 0%
Example 4 2.5mm 2.5mm 2.5mm 2.5mm 0%

From the results, it is understood that the numerical range defined in the present invention is preferable.

Industrial applicability

As long as the present invention is an article having a stretchable region to which the elastic sheet stretchable structure can be applied, the present invention can be used for all disposable wearing articles such as various disposable diapers of a tape type, a pad type, and the like, sanitary napkins, disposable wearing articles for swimming or paddling, and the like, in addition to the pants type disposable diapers as in the above examples.

Description of the reference symbols

10: an interior body; 10B: an inner and outer fixed area; 11: a topsheet; 12: a liquid-impermeable sheet; 13: an absorbent body; 13N: a narrowed portion; 14: packaging the sheet; 17: an absorbent-free side portion; 20: an exterior body; 20A: a 1 st slice layer; 20B: a 2 nd slice layer; 20C: a fold-back section; 20X: the elastic piece is of a telescopic structure; 21: a side seal part; 23: a waist end portion; 24: a waist elastic member; 25F, 25F: shrinking the wrinkles; 29: leg girth lines; 30: an elastic film; 31: an engagement hole; 33: air holes are formed; 40. 40A, 40B: a sheet joining portion (1 st joining portion); 41: a 2 nd engaging part; 42: a 3 rd engaging part; 43: the 4 th joint part; 70: a non-stretch region; 80: a telescoping region; 82: a rim stretch region; 90: a three-dimensional gather portion; 93: a lodging part; 94: a free portion; 95: a gusset; 96: a gather portion elastic member; b: a posterior portion; ED: the expansion direction (width direction); f: a precursor portion; l: an intermediate portion; LD: a vertical direction (front-rear direction); t: a waist portion; sf: small pleat; bf: large pleat; px: a separation distance; py: a separation distance; e1: 1 st telescoping zone; e2: a 2 nd telescopic area; e3: a middle region.

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