Method for manufacturing stretchable sheet
10869784 ยท 2020-12-22
Assignee
Inventors
Cpc classification
B29C66/73116
PERFORMING OPERATIONS; TRANSPORTING
B29C66/83415
PERFORMING OPERATIONS; TRANSPORTING
B29C66/81433
PERFORMING OPERATIONS; TRANSPORTING
B29C66/83511
PERFORMING OPERATIONS; TRANSPORTING
B29C66/41
PERFORMING OPERATIONS; TRANSPORTING
A61F13/15593
HUMAN NECESSITIES
A61F13/15
HUMAN NECESSITIES
B29C66/21
PERFORMING OPERATIONS; TRANSPORTING
B32B37/06
PERFORMING OPERATIONS; TRANSPORTING
B29C66/1122
PERFORMING OPERATIONS; TRANSPORTING
A61F13/15699
HUMAN NECESSITIES
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
B29C66/344
PERFORMING OPERATIONS; TRANSPORTING
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
B29C66/433
PERFORMING OPERATIONS; TRANSPORTING
A61F13/15731
HUMAN NECESSITIES
B29C66/83413
PERFORMING OPERATIONS; TRANSPORTING
B29C66/73921
PERFORMING OPERATIONS; TRANSPORTING
International classification
B32B37/00
PERFORMING OPERATIONS; TRANSPORTING
A61F5/44
HUMAN NECESSITIES
A61F13/15
HUMAN NECESSITIES
Abstract
A stretchable elastic film is interposed in a stretched state between a first sheet layer having no elasticity and a second sheet layer having no elasticity. Heat melt energy is applied to a region of a large number of bonded portions spaced apart from each other by a heat melting apparatus from the outside of the first sheet layer and the second sheet layer to melt the elastic film. The first sheet layer and the second sheet layer are bonded directly or via an elastic film at the large number of bonded portions. The elastic film is caused to pass through the counter roll and the nip roll to pass along the counter roll and then pass along the anvil roll. The elastic film is stretched by making the circumferential speed of the anvil roll faster than the circumferential speed of the counter roll.
Claims
1. A method for manufacturing a stretchable sheet, comprising: a supplying step in which a stretchable elastic film is interposed in a stretched state between a first sheet layer having no elasticity and a second sheet layer having no elasticity; and a bonding step in which, in a state where the elastic film is interposed in a stretched state between the first sheet layer and the second sheet layer in the supplying step, the first sheet layer and the second sheet layer are bonded directly or via an elastic film at a plurality of bonded portions by applying heat melt energy to a region of the plurality of bonded portions spaced apart from each other by a heat melting apparatus from the outside of the first sheet layer and the second sheet layer to melt the elastic film; wherein the heat melting apparatus has an anvil roll and an ultrasonic horn, the anvil roll has a plurality of protrusions spaced apart from each other in a roll length direction and an outer circumference direction on an outer surface of the anvil roll such that bonding is performed by the ultrasonic horn and a group of the protrusions of the anvil roll at a bonding position; wherein a counter roll is disposed apart from the anvil roll, and the elastic film is not nipped between the anvil roll and the counter roll; wherein a nip roll that nips the elastic film is disposed corresponding to the counter roll, and the elastic film passes through a nip position between the counter roll and the nip roll, along the counter roll, and then along the anvil roll, wherein a circumferential speed of the anvil roll is faster than a circumferential speed of the counter roll and the nip roll to stretch the elastic film; wherein a holding angle from the nip position to a position where the elastic film is separated from the counter roll is 300 to 30, and a holding angle from a position where the elastic film starts to be held by the anvil roll to the bonding position is 270 to 30, wherein a distance between the nip position and the bonding position is less than 250 mm; and wherein a distance from a position where the elastic film is separated from the counter roll to the position where the elastic film starts to be held by the anvil roll is 50 mm or less.
2. The method for manufacturing a stretchable sheet according to claim 1, wherein the anvil roll is a crown roll.
3. The method for manufacturing a stretchable sheet according to claim 1, wherein the protrusions are disposed in a staggered shape.
4. The method for manufacturing a stretchable sheet according to claim 1, wherein, a hole is not formed in the entire of the region of the bonded portions and the first sheet layer and the second sheet layer are allowed to remain in the bonding step, and a through hole is formed at least in a boundary portion in the stretchable direction between the elastic film and the bonded portion.
5. The method for manufacturing a stretchable sheet according to claim 1, wherein: the elastic film is additionally nipped between a pre-roll and a pre-nip roll such that the elastic film is configured to pass through a nip position between the pre-roll and the pre-nip roll and then pass through the nip position between the counter roll and the nip roll; and wherein a circumferential speed of the pre-roll and the pre-nip roll, the circumferential speed of the counter roll and the nip roll, and the circumferential speed of the anvil roll are gradually increased.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(19) Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings.
(20) The stretchable sheet of the present invention can be used, for example, for absorbent articles that absorb and retain body fluids, such as disposable diapers, sanitary napkins, absorbent pads and the like.
(21) As illustrated in
(22) Here, the expression no elasticity does not mean that the first sheet layer 21 and the second sheet layer 22 do not stretch at all. Instead, it means that the elastic film is not substantially stretchable compared with the elastic film.
(23) Regarding bonding, for example, as illustrated in
(24) A counter roll 63 is disposed so as to face the anvil roll 60. Further, a nip roll 65 for nipping the elastic film 30 is provided on the counter roll 63. The anvil roll 60 is driven such that the circumferential speed of the anvil roll 60 becomes faster than the circumferential speed of the counter roll 63 and the nip roll 65.
(25) In this structure of the apparatus, after the elastic film 30 passes through a nip position at which the elastic film 30 is nipped by the counter roll 63 and the nip roll 65, the elastic film 30 passes along the outer periphery of the counter roll 63 and then passes along the anvil roll 60.
(26) At that time, the elastic film 30 is stretched by setting the circumferential speed of the anvil roll 60 to be driven to be faster than the circumferential speed of the counter roll 63 and the nip roll 65, and bonding is performed by the ultrasonic horn 61 and the group of the protrusions 60a of the anvil roll 60.
(27) At this time, by selecting the speed difference that makes the circumferential speed of the anvil roll 60 faster than the circumferential speed of the nip roll 63, the stretch rate in the manufacturing process of the elastic film 30 (when the length in a natural state is taken as 100%) can be set.
(28) In the example of
(29) The elastic film 30 and the second sheet layer 22 pass along the anvil roll 60 with a holding angle of about 90.
(30) The arrangement of the anvil roll 60, the counter roll 63, and the nip roll 65 can be selected as appropriate. For example, as illustrated in
(31) As a result, the elastic film 30 passes along the counter roll 63 with the holding angle of less than 90 with respect to the counter roll 63.
(32) The elastic film 30 and the second sheet layer 22 pass along the anvil roll 60 with the holding angle of less than 90.
(33) A distance from a position where the elastic film 30 is separated from the counter roll 63 to a position where the elastic film starts to be held by the anvil roll 60 is 50 mm or less, preferably 10 mm or less, particularly preferably 5 mm or less for suppressing neck-in.
(34) In the example of
(35) In the first bonding example to the third bonding example described above, stretching (elongation) of the elastic film 30 is started from the nip position between the counter roll 63 and the nip roll 65. However, in the fourth bonding example 12, the elastic film 30 is nipped between the pre-roll 62 and the pre-nip roll 64, and the elastic film 30 is nipped between the counter roll 63 and the nip roll 65, such that the circumferential speed of the pre-roll 62 and the pre-nip roll 64, the circumferential speed of the counter roll 63 and the nip roll 65, and the circumferential speed of the anvil roll 60 are gradually increased, whereby it is possible to stretch (elongate) two stages.
(36) It is possible to stretch (elongate) three stages by adding the same structure.
(37)
(38) According to
(39) Further, with respect to the counter roll 63, the holding angle from the nip position for the elastic film 30 to the position where the elastic film 30 is separated is desirably 300 to 30 (more desirably 120 to 45) to suppress neck-in. It is desirable for the neck-in suppression that the holding angle of the anvil roll 60 is 270 to 30 (more desirably 120 to 45).
(40) As can be inferred from the result of
(41) It is preferable that the anvil roll 60 is a crown roll as illustrated in
(42) The amount of crown can be selected appropriately, but if necessary, the amount of crown can be adjusted by cooling the end of the roll.
(43) On the other hand, the protrusions 60a of the anvil roll 60 can be formed so as to be denser toward the center of the roll length. In such arrangement, the central portion is most thermally expanded, and the crown is easily applied.
(44) On the other hand, it is preferable to use die steel for the material of the anvil roll 60, and the optimal hardness is HRC 60 to 61.
(45)
(46) The stretchable sheet can be manufactured in the product production line, and the stretchable sheet obtained after cutting the web into a desired area after manufacturing the stretchable sheet web, can be applied to a predetermined site of a product.
(47) In a conventional disposable diaper, it is common to fix a plurality of rubber threads in parallel on a sheet, but this causes inferior quality due to deterioration of a hot melt adhesive for fixing the rubber threads to the sheet, and it is difficult to keep stable productivity at the time of production. These problems can be solved by the above-described stretchable sheet.
(48) In addition, as can be seen from the contracted state of
(49) On the other hand, in the above example, the first sheet layer 21 and the second sheet layer 22 are bonded by melting the elastic film 30. In this case, there are (1) a mode in which the first sheet layer 21 or the second sheet layer 22 is bonded on the surface of the elastic film 30, (2) a mode in which the surface portion of the elastic film 30 melts and it intrudes into fibers of each of the first sheet layer 21 and the second sheet 22 for bonding the sheet layers 21, 22, and (3) a mode in which almost all of the elastic film 30 melts, and it intrudes into fibers of each of the first sheet layer 21 and the second sheet layer 22 for bonding the sheet layers 21, 22. In the present invention, the bonding modes of the layers are not limited to these examples.
(50) In the mode (3) among these modes, it can be evaluated that the first sheet layer 21 and the second sheet layer 22 are bonded directly, that is, while the elastic film is not remained.
(51) In the above modes (1) to (3), the melting point of the elastic film 30 is lower than the melting points of the first sheet layer 21 and the second sheet layer 22. However, when the melting point of the elastic film 30 may be higher than the melting point of the first sheet layer 21 and/or the second sheet layer 22. In this case, the surface portion of the first sheet layer 21 and/or the second sheet layer 22 on the elastic film 30 side is activated or melted to be bonded to the elastic film 30.
(52) Further, in addition to melting a part of the elastic film 30, the first sheet layer 21 and/or the second sheet layer 22 may also be melted and bonded.
(53) The first sheet layer 21 and/or the second sheet layer 22 may be a nonwoven fabric, and the fiber may have a core/sheath structure. In this case, for example, only the sheath component of the fiber melts and can contribute to bonding.
(54) In the stretchable sheet of the present invention, the shape, size and arrangement of the bonded portions may be uniform, and also the rate of the total area occupied by the bonded portions included in the unit area of the region to the unit area, that is, the area rate of the bonded portions can be selected.
(55)
(56) As in
(57) An example of the bonded portion 40 is a circular shape illustrated in
(58)
(59)
(60) In the embodiment of
(61) In the case of
(62) In the present invention, the difference in the area rate of the bonded portions can be obtained not only by varying the density of the bonded portions in an arrangement pattern but also by changing the area of each bonded portion.
(63) In order to make this easier to understand,
(64) Physical properties such as thickness, material, strain/stress characteristic, melting point and the like of the elastic film can be appropriately selected. By selecting the relationship among this elastic film, the ultrasonic melting energy applied to the elastic film, and the stretch rate of the elastic film at the time of manufacturing the stretchable sheet, as illustrated in
(65) Although the reason why such a ventilation through hole 31 is formed is not necessarily clear, since the elastic film 30 is melted with the ultrasonic melting energy and the bonded portions 40 are thinned by pressing from the protrusions 60a of the anvil roll 60, it is considered that, at this time, while the elastic film 30 is also thinned, the peripheral portion of the bonded portion 40 reaches the breaking strength, breakage is started by the stretching stress acting on the stretched elastic film 3, the elastic film 30 contracts to an equilibrium point, and the through hole 31 opens.
(66)
(67) The bonded portion can be elongated in the direction (CD) orthogonal to the stretchable direction (MD). In this case, for example, as illustrated in
(68) On the other hand, it is not indispensable for the through hole 31 to be formed in all the bonded portions. If it is required to reliably form the through hole 31 or to make a large opening, the method indicated in
(69) That is, as illustrated in
(70) Meanwhile, the shapes of the individual bonded portions 40 and the through holes 31 in the natural length state can be arbitrary shapes such as polygonal shapes (including linear and rounded) such as a perfect circle, an elliptical shape, and a rectangular shape, a star shape, a cloud shape, and the like. The size of each bonded portion 40 may be determined appropriately, but if it is too large, the hardness of the bonded portion 40 exerts an influence on the texture, and if it is too small, a bonded area becomes too small and materials are insufficiently adhered. Therefore, in the usual case, the area of each bonded portion 40 is preferably about 0.14 to 3.5 mm.sup.2. The area of an opening of each through hole 31 may be equal to or more than that of the bonded portion because the bonded portion is formed through the through hole 31, and it is preferable to set to about 1 to 1.5 times the area of the bonded portion.
(71) Further, for the bonded portions of the present invention, a main elastic region may be directly transferred to a non-elastic region, but it is also possible to provide a transition elastic region between the main elastic region and the non-elastic region.
(72) In general, the area and the area rate of the individual bonded portions 40 in each region are preferably set as follows.
(73) (Non-Stretchable Region)
(74) The area of the bonded portion 40: 0.14 mm.sup.2 to 3.5 mm.sup.2 (particularly 0.25 mm.sup.2 to 1.0 mm.sup.2)
(75) The area rate of the bonded portions 40: 16% to 45% (especially 25% to 45%)
(76) (Main Stretchable Region)
(77) The area of the bonded portion 40: 0.14 mm.sup.2 to 3.5 mm.sup.2 (particularly 0.14 mm.sup.2 to 1.0 mm.sup.2)
(78) The area rate of the bonded portions 40: 1.8% to 19.1% (particularly 1.8% to 10.6%)
(79) (Transition Elastic Region)
(80) The area of the bonded portion 40: 0.14 mm.sup.2 to 3.5 mm.sup.2 (particularly 0.25 mm.sup.2 to 1.0 mm.sup.2)
(81) The area rate of the bonded portions 40: 8% to 22.5% (particularly 12.5% to 22.5%)
(82) Although the planar arrangement of the bonded portions 40 and the through holes 31 can be appropriately determined, it is preferable to adopt a planar arrangement in which they are regularly repeated, such as an oblique lattice shape as illustrated in
(83) The elastic film 30 is not particularly limited, and a resin film having elasticity can be used without particular limitation. A blend of one or two or more thermoplastic elastomers such as styrene elastomers, olefin elastomers, polyester elastomers, polyamide elastomers and polyurethane elastomers, which is processed into a film shape by extrusion molding such as T-die method or inflation method can be used. As the elastic film 30, besides a non-porous film, it is also possible to use a film having a large number of holes or slits for ventilation. In particular, it is preferable that in the elastic film 30, the tensile strength in the stretchable direction is 8 to 25 N/35 mm, the tensile strength in the direction orthogonal to the stretchable direction is 5 to 20 N/35 mm, the tensile elongation in the stretchable direction is 450 to 1050%, and the tensile elongation in the direction orthogonal to the stretchable direction is 450 to 1400%. Now that the tensile strength and the tensile elongation (tensile elongation at break) refer to values obtained by measuring at an initial chuck interval of 50 mm and a speed of testing of 300 mm/min according to JIS K7127: 1999 PlasticsDetermination of tensile properties except that the test piece is formed into a rectangular shape having a width of 35 mma length of 80 mm using a tensile tester (for example, AUTOGRAPHAGS-G100N manufactured by SHIMADZU Corporation). The thickness of the elastic film 30 is not particularly limited, but it is preferably about 20 to 40 m. Although the basis weight of the elastic film 30 is not particularly limited, it is preferably about 30 to 45 g/m.sup.2, and particularly preferably about 30 to 35 g/m.sup.2.
Explanation of Terms Used Herein
(84) The following terms in the specification have the following meanings unless otherwise specified in the specification.
(85) Stretch rate represents a value relative to the natural length (100%).
(86) Basis weight is measured as follows. After the sample or test piece is preliminarily dried, it is allowed to stand in a test room or apparatus under normal conditions (the test location is at a temperature of 205 C. and with a relative humidity of 65% or less) until the constant mass. The preliminary drying is to make the sample or test piece be constant mass in an environment at a temperature not exceeding 50 C. within a relative humidity of 10 to 25%. The fibers of an official moisture regain of 0.0% does not need preliminary drying. A cut sample of dimensions of 200 mm250 mm (2 mm) is cut using a cutting template (200 mm250 mm, 2 mm) from a test piece in the constant mass. The sample is weighed, and the weight is multiplied by 20 into the weight per one square meter. The resulting value is defined as the basis weight.
(87) In the absence of description about environmental conditions in a test room or apparatus under normal conditions (the test location is at a temperature of 205 C. and a relative humidity of 65% or less).
INDUSTRIAL APPLICABILITY
(88) The stretchable sheet of the present invention can be used for all absorbent articles having a stretchable structure such as underpants-type disposable diapers, various types of disposable diapers such as tape type and pad type, sanitary napkins and the like.
(89) Further, while bonding in the production line of absorbent articles is performed, the stretchable sheet according to the present invention can be manufactured as a sheet constituting, for example, the back surface of each absorbent article.
REFERENCE SIGNS LIST
(90) A to D region 21 first sheet layer 22 second sheet layer 30 elastic film 31 through hole 40 bonded portion 60 anvil roll 61 ultrasonic horn 63 counter roll