A nonwoven carrier material having a first portion and a second portion
By forming thermoplastic fiber layers through milling and separation, and using form-fit connections with scrims and binders, the nonwoven carrier material addresses thickness and strength issues, ensuring uniformity and compatibility with roofing and carpet applications.
Patent Information
- Application Number
- JP2019560758
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-05-09
- Filing Date
- 2018-05-08
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2038-05-08
AI Technical Summary
Nonwoven carrier materials with thermoplastic fibers often have defects like holes or fiber bundles due to broken fibers during unwinding, leading to thickness and property variations at connection areas, which are undesirable for many applications.
The method involves forming first and second thermoplastic fiber layers from a single starting layer by milling or cutting, followed by separation to reduce thickness, and using a form-fit connection with optional scrims and binders to ensure uniform thickness and strength without increasing thickness at connection areas.
The solution achieves a nonwoven carrier material with minimal thickness variation and improved strength, allowing for seamless integration into applications like bituminous roofing membranes and tufted carpets without visible seams or reduced flexibility.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a nonwoven carrier material having at least two layers of thermoplastic fibers, the nonwoven carrier material having at least a first portion and a second portion, the first and second portions being connected to one another via a connecting region to form the nonwoven carrier material. The present invention also relates to a method of connecting the first and second portions of the nonwoven carrier material. [Background technology]
[0002] Nonwoven carrier materials comprising a thermoplastic fibrous layer are known in the art and are used in many applications, such as, for example, bituminous roofing membranes, roof underlayment sheets, carriers for filter media, primary backings for tufted carpets and (cushion) vinyl floor coverings.
[0003] During the manufacturing process of the nonwoven carrier material, disturbances can occur in the web forming process and / or bonding process, resulting in qualities of the nonwoven carrier material that need to be rejected from the nonwoven carrier material, meaning trimming.
[0004] Nonwoven carrier materials are typically sold as rolls, and the length of all rollers for each nonwoven type and / or application should preferably be the same. In some manufacturing processes for nonwoven carrier materials, thermoplastic fibers are unwound from multiple bobbins. If some fibers break during the unwinding step, the resulting nonwoven carrier material will have defects such as holes or fiber bundles.
[0005] These defective areas are cut or excised from the nonwoven carrier material and replaced with a nonwoven carrier having the correct material properties. Thus, different sections of material are placed abutting or one above the other and connected to form a continuous material. This connection between two sections of material results in a connection area with a greater material thickness or a woven seam between the two sections that locally creates other properties. This variation in thickness and properties in the connection area is undesirable for many applications. Summary of the Invention [Problem to be solved by the invention]
[0006] An object of the present invention is to provide an improved nonwoven carrier material having at least a first portion and a second portion, the first portion and the second portion being connected to one another via a connection region without the disadvantages of the prior art.An object of the present invention is also an improved method for connecting the first and second portions of the nonwoven carrier material to one another without the disadvantages of the prior art. [Means for solving the problem]
[0007] The object of the present invention is achieved by a method for connecting at least a first part and a second part of a nonwoven carrier material according to claim 1 and by a nonwoven carrier material according to claim 6.
[0008] Hereinafter, the terms "first thermoplastic fiber layer" and "first fiber layer" are used interchangeably, and the terms "second thermoplastic fiber layer" and "second fiber layer" are used interchangeably.
[0009] For the avoidance of doubt, the claimed nonwoven carrier material is a combination of a first nonwoven carrier material (i.e., first portion) and a second nonwoven carrier material (i.e., second portion) combined with each other in a novel and inventive way without increasing the thickness of the nonwoven material (particularly in the connection areas), or at least reducing the difference in thickness in the connection areas compared to the rest of the nonwoven carrier material.
[0010] The first portion of the nonwoven carrier material has first and second thermoplastic fiber layers. However, in a first embodiment, the first and second thermoplastic fiber layers of the first portion are formed from a single (starting) thermoplastic fiber layer. Two methods are possible for forming the first and second thermoplastic fiber layers from a single starting thermoplastic fiber layer. The first method involves removing a portion of the thickness of the starting thermoplastic fiber layer by milling, such as skiving, or by grinding using a grinding machine. The second method involves cutting within the starting thermoplastic fiber layer in a plane to form the first and second thermoplastic fiber layers, followed by a separation step by removing a portion of the first or second thermoplastic fiber layer. These methods of forming the first and second thermoplastic fiber layers reduce the thickness of the nonwoven carrier material, preferably to about half of its original thickness. In this embodiment, the removal and / or separation step forms two independent thermoplastic fiber layers (the first and second fiber layers). This embodiment is also applicable to the second portion. This means that the second part may also have one starting thermoplastic fiber layer, and in the separation step, the first and second thermoplastic fiber layers of the second part are formed.
[0011] In a second embodiment, the first portion (and second portion) has independent first and second thermoplastic fiber layers. This means that the first and second thermoplastic fiber layers are superimposed to form the first (and second) portion of the nonwoven carrier material. In this embodiment, a separation step is also used to separate the first and second thermoplastic fiber layers from each other (in the first and second portions). During this separation step, two independent first and second thermoplastic fiber layers are again obtained (at least in the connection area). In addition, a polishing method can be used to remove a portion of the thickness of the first portion (and second portion) of the nonwoven carrier material to re-obtain the first and second thermoplastic fiber layers of the first (and second) portion.
[0012] Preferably, a skiving device is used to remove part of the thickness of the first and / or second part by an abrasive method.
[0013] Preferably, the first thermoplastic fibrous layer of the second portion is made of the same type of fibers as the first thermoplastic fibrous layer of the first portion of the nonwoven carrier material.
[0014] Preferably, the second thermoplastic fibrous layer of the second portion is made of the same type of fibers as the second thermoplastic fibrous layer of the first portion of the nonwoven carrier material.
[0015] In a preferred embodiment, the second thermoplastic fibrous layer of the first portion, the first thermoplastic fibrous layer of the second portion and the second thermoplastic fibrous layer of the second portion all consist of the same type of fibers as the first thermoplastic fibrous layer of the second portion of the nonwoven carrier material.
[0016] In a preferred embodiment, the first fibrous layer of the first portion is made of the same type of fiber as the first fibrous layer of the second portion, and the second fibrous layer of the first portion is made of the same type of fiber as the second fibrous layer of the second portion.
[0017] It is also preferred that the first fibrous layer of the first portion, the first fibrous layer of the second portion, the second fibrous layer of the first portion and the second fibrous layer of the second portion are made of the same type of fiber.
[0018] Within the scope of the present invention, the term fiber is understood to mean both staple fibers and filaments. Staple fibers are fibers having a specified relatively short length in the range of 2 to 200 mm. Filaments are fibers having a length greater than 200 mm, preferably greater than 500 mm, more preferably greater than 1000 mm. Filaments may be substantially endless, for example, when formed by continuous extrusion and spinning of the filament through spinning holes in a spinneret.
[0019] The fiber may have any cross-sectional shape, including circular, trilobal, multilobal, or rectangular, and the rectangular shape may have a width and a height, the width being significantly greater than the height, and the fiber in this embodiment is a tape. Furthermore, the fiber may be monocomponent, bicomponent, or multicomponent.
[0020] The nonwoven carrier material may be any type of nonwoven, such as a staple fiber nonwoven, produced by a known process such as a carding process, a wet-laid process, or an air-laid process, or any combination thereof. The nonwoven carrier material may also be a nonwoven made of filaments produced by a known spunbonding process or a two-step process. In a spunbonding process, the filaments are extruded through a spinneret and then laid on a conveyor belt as a web of filaments, followed by splicing the web to form a fibrous nonwoven layer. In a two-step process, the filaments are preferably wound in the form of a multifilament yarn and wound onto bobbins, followed by unwinding the multifilament yarn, laying the filaments on a conveyor belt as a web of filaments, and splicing the web to form a fibrous nonwoven carrier material.
[0021] Preferably, the fibers in the at least two thermoplastic fiber layers of the first and / or second parts are filaments in order to provide higher tensile strength and / or higher tear strength to the nonwoven carrier material and / or the final (impregnated) product, e.g., bituminous roof membranes, roof underlayment sheets, carriers for filter media, tufted carpets or (cushion) vinyl floor coverings.
[0022] The at least two thermoplastic fiber layers of the first and / or second portion may be composed of at least 50% by weight, preferably at least 75% by weight, more preferably at least 90% by weight, and even more preferably at least 95% by weight of the total weight of fibers in the at least two fiber layers, made up of thermoplastic fibers. Increasing the amount of thermoplastic fibers in the at least two fiber layers increases the tensile strength and / or tear resistance, and increases the flexibility of the nonwoven carrier material and / or the final (impregnated) product. In one embodiment, the first and second fiber layers of the first and / or second portion are composed of 100% by weight of thermoplastic fibers of the total weight of fibers in the fiber layers.
[0023] The thermoplastic fibers in the first and / or second fibrous layers may be any type of thermoplastic polymer capable of withstanding high temperatures, such as those encountered in the manufacturing processes for bituminous roofing membranes, roof underlayment sheets, carriers for filter media, tufted carpets, and (cushioned) vinyl floor coverings. The thermoplastic fibers may include, for example, polyesters such as polyethylene terephthalate (PET) (based on DMT or PTA), polybutylene terephthalate (PBT), polytrimethylene terephthalate (PTT), polyethylene naphthalate (PEN), and / or polylactic acid (PLA), polyamides such as polyamide-6 (PA6), polyamide-6,6 (PA6,6), and / or polyamide-6,10 (PA6,10), polyphenylene sulfide (PPS), polyethyleneimide (PEI), and / or polyoxymethylene (POM), and / or any copolymers or blends thereof.
[0024] In one embodiment, the thickness variation of the nonwoven carrier material, including the connection regions, measured perpendicular to the main direction of extension of the nonwoven carrier material is less than 0.20 mm, preferably less than 0.15 mm, more preferably less than 0.10 mm, and most preferably less than 0.05 mm (see FIG. 5), i.e., the average thickness of the connection regions preferably does not exceed the average thickness of the remainder of the nonwoven carrier material. The term "less than 0.15 mm" has a tolerance of ±0.1 mm. Thickness is determined in accordance with DIN ISO 9073-2 (October 1996).
[0025] In one embodiment, the average weight of the connection region, i.e., the combined weight of the first portion A and the second portion B in the connection region, differs from the average weight of the nonwoven carrier material excluding the connection region by at most 20% by weight, more preferably by at most 10% by weight, and most preferably by at most 5% by weight. The term "at least" in this context means a tolerance of 0.5 to 1.5% by weight.
[0026] The first and second portions of the nonwoven carrier material together form a form-fit connection in the connection region. The first and second portions fit together in the connection region like puzzle pieces. This form-fit connection can reduce thickness variations (by avoiding duplicate first and / or second fiber layers in the connection region) and creates a type of pressure fit. This type of pressure fit makes permanent connection of the first and second portions easier (no slippage of the different layers during fastening) and / or provides a stronger connection via fastening techniques such as (for example) calendaring, mechanical needling, hydroentanglement, ultrasonic bonding, thermal bonding, preferably with hot air, or any combination thereof.
[0027] Preferably, a combination of mechanical needling of the connection area followed by thermal bonding of the connection area can be applied to obtain improved strength of the connection area due to intertwining of the fibers between the first and second parts in the connection area.
[0028] In another embodiment, a suitable binder is used to improve the bond between the first and second parts, which can be a chemical binder, a thermal binder such as a thermosetting polymer, a pressure sensitive adhesive, an adhesive that can be activated by pressure and heat, or an adhesive that is activated by radiation, such as UV radiation.
[0029] In one embodiment, a scrim is disposed between at least two fibrous layers. The scrim is preferably disposed between the first and second fibrous layers of the first section and between the first and second fibrous layers of the second section. The scrim is preferably a woven or laid scrim. The scrim fixes the distance between the fibers in the first and second fibrous layers of the nonwoven carrier material and may provide improved tensile strength, improved dimensional stability (i.e., reduced elongation at a specific load applied to the nonwoven carrier material), and / or improved tear strength to the nonwoven carrier material. Regarding the advantages of using a scrim, the applicant further refers to WO 2015 / 055619.
[0030] In one embodiment, the scrim is formed from glass fibers or other high modulus fibers of at least 5 GPa, preferably at least 10 GPa, more preferably at least 15 GPa, more preferably at least 20 GPa, more preferably at least 25 GPa, more preferably at least 40 GPa, more preferably at least 50 GPa, more preferably at least 75 GPa.
[0031] In one embodiment, the yarns of the scrim extending longitudinally of the carrier material comprise polyester yarns, e.g., polyethylene terephthalate (PET) yarns, polyamide yarns, e.g., polyamide-6 (PA6) yarns, high modulus yarns, e.g., glass yarns, aramid yarns or carbon yarns, and / or other high modulus yarns, or any combination thereof. In a preferred embodiment, a glass scrim is used having the following specifications: 33 warp threads per 25cm and 21 weft threads per 25cm In the vertical direction: Titer: 34tex Strength: 110~130N / 5cm Elongation at break of 2.8-3.7% In the cross direction: Titer: 34tex Strength: 68~80N / 5cm Elongation at break of 2.5-3.0%
[0032] In one embodiment, a scrim may be disposed on the first thermoplastic fibrous layer of the first portion and a scrim may be disposed on the second thermoplastic fibrous layer of the second portion of the nonwoven carrier material. In this embodiment, the connection region includes both a scrim disposed on the first thermoplastic fibrous layer of the first portion and a scrim disposed on the second thermoplastic fibrous layer of the second portion to improve dimensional stability in the nonwoven carrier material.
[0033] Preferably, the scrim disposed on the first thermoplastic fiber layer of the first portion is positioned near the interface between the first and second thermoplastic fiber layers of the first portion, and preferably the scrim disposed on the second thermoplastic fiber layer of the second portion is positioned near the interface between the second and first thermoplastic fiber layers of the second portion, to enable improved load transfer between the scrims in the connection region of the combined nonwoven carrier materials. Improved connection between the scrims is achieved when the scrims are brought closer together in the connection region during solidification of the form-fit connection in the connection region.
[0034] Preferably, the scrim disposed on the first thermoplastic fiber layer of the first portion is disposed at a predetermined distance from the interface between the first thermoplastic fiber layer and the second thermoplastic fiber layer of the first portion, the distance being less than 50%, more preferably less than 40%, even more preferably less than 30%, and most preferably less than 20% of the thickness of the first thermoplastic fiber layer of the first portion.
[0035] The scrim disposed on the first thermoplastic fiber layer of the first portion may be disposed at the centerline of the thickness of one starting thermoplastic fiber layer, the thickness of which is reduced by less than 50%, but preferably at least 15%, preferably at least 25%, more preferably at least 30%, and most preferably at least 40% in the connecting region to form the first and second thermoplastic fiber layers of the first portion. Reducing the thickness of one starting thermoplastic fiber layer by less than 50% reduces the risk of damaging the scrim and improves the dimensional stability of the nonwoven carrier material.
[0036] Preferably, the scrim disposed on the second thermoplastic fiber layer of the second portion is disposed at a predetermined distance from the interface between the second thermoplastic fiber layer of the second portion and the first thermoplastic fiber layer, the distance being less than 50% of the thickness of the second thermoplastic fiber layer of the second portion, more preferably less than 40%, even more preferably less than 30%, and most preferably less than 20%.
[0037] The scrim disposed on the second thermoplastic fiber layer of the second portion may be disposed at the centerline of the thickness of one starting thermoplastic fiber layer, the thickness of which is reduced by less than 50%, but preferably at least 15%, preferably at least 25%, more preferably at least 30%, and most preferably at least 45%, in the connecting region to form the first and second thermoplastic fiber layers of the second portion. Reducing the thickness of one starting thermoplastic fiber layer by less than 50% reduces the risk of damaging the scrim and improves the dimensional stability of the nonwoven carrier material.
[0038] Prior art nonwoven carrier materials may have a scrim, preferably positioned at the centerline of the carrier material's thickness. When the connection between the first and second sections of the nonwoven carrier material is formed by placing the first section on top of the second section, the distance between the scrim included in the first section and the scrim included in the second section is equal to the overall thickness of the first or second section of the nonwoven carrier material. The first and second sections of such conventional nonwoven carrier materials may be connected to each other by providing an adhesive tape at the interface between the first and second sections and applying heat and / or pressure in the connection area to cause the adhesive to flow into the gaps between the nonwoven fibers and the scrim. However, to achieve sufficient dimensional stability in such conventional nonwoven carrier materials, a relatively large amount of adhesive must be provided to form a sufficiently strong connection between the scrims, and this adhesive must be distributed across the entire thickness of the connection area after applying heat and / or pressure. As a result, the connection area cannot be impregnated with, for example, bitumen or PVC plastisol, which would be a rejected material during the manufacture of, for example, a bitumen membrane or vinyl floor, because the connection area would be visible in the bitumen membrane or vinyl floor.
[0039] If the scrim disposed on the first thermoplastic fiber layer in the first portion is positioned at a distance from the interface between the first thermoplastic fiber layer and the second thermoplastic fiber layer in the first portion that is less than 50% of the thickness of the first thermoplastic fiber layer in the first portion, and / or if the scrim disposed on the second thermoplastic fiber layer in the second portion is positioned at a distance from the interface between the second thermoplastic fiber layer and the first thermoplastic fiber layer in the second portion that is less than 50% of the thickness of the second thermoplastic fiber layer in the second portion, the amount of adhesive provided in the connection region, for example by adhesive tape, can be reduced and / or the temperature and / or pressure applied can be reduced when forming the connection between both scrims in the connection region. As a result, after application of heat and / or pressure, the adhesive is not distributed over the entire thickness of the connection area and does not leave the outer surface of the nonwoven carrier material completely, or at least is substantially free of adhesive, i.e., less than 10% of the surface of the nonwoven carrier material is covered by adhesive, which allows the nonwoven carrier material to be (at least partially) impregnated with, for example, bitumen or PVC plastisol, without the connection area being visible in the bitumen membrane or vinyl floor.
[0040] When a nonwoven carrier material is used as the primary backing for a tufted carpet, the tufting needles will be less flexible because the connection areas will have reduced thickness buildup and / or less adhesive.
[0041] Furthermore, when a nonwoven carrier material is used that is impregnated with bitumen, the nonwoven carrier does not have the nonuniformity of double thickness at the seams as shown by the prior art. Therefore, the process of manufacturing bituminous roof membranes is less hindered, at least for the impregnation of the nonwoven carrier with bitumen.
[0042] In one embodiment, at least two fibrous layers of the first and / or second sections comprise at least two different types of monocomponent fibers. In one embodiment, different types of monocomponent fibers are used, and the at least two different types of monocomponent fibers are preferably composed of polymers of different chemical structures with different melting points. The melting points of the at least two different polymers preferably differ by at least 10°C, preferably at least 20°C. More preferably, the melting points differ by at least 50°C. Such products can be thermally bonded by exposing the fibrous layers in the connection area to a temperature in the range of the melting point of the polymer with the lower melting point, preferably with hot air.
[0043] In one embodiment, the at least two fibrous layers comprise bicomponent fibers made from two polymers of different chemical structures with different melting points.
[0044] Bicomponent fibers are preferably composed of two polymers of different chemical structures. A basic distinction is drawn between three types of bicomponent fibers: side-by-side, core-sheath, and islands-in-the-sea bicomponent fibers. In one embodiment, the melting points of the two polymers comprising the bicomponent fiber differ by at least 10°C, preferably at least 20°C. More preferably, the melting points differ by at least 50°C. Such nonwoven carrier materials containing bicomponent fibers, especially when composed of side-by-side and / or core-sheath bicomponent fibers, can be thermally bonded by exposing the fibrous layers in the connection region to a temperature within the melting point range of the polymer with the lower melting point, preferably with hot air. In a preferred embodiment, the nonwoven carrier material is formed predominantly from core-sheath bicomponent fibers, preferably filaments, in the first and second fibrous layers. By predominantly, it is meant that at least 50%, preferably at least 75%, more preferably at least 90%, even more preferably at least 95%, and most preferably 100% of the fibers contained in the fibrous layers are core-sheath bicomponent fibers. Preferably, the core / sheath ratio in the core / sheath bicomponent fiber is 95 / 5 volume % to 5 / 95 volume %, and more preferably, the core / sheath ratio is 50 / 50 volume % to 95 / 5 volume %.
[0045] In one embodiment, the sheath of the bicomponent fiber comprises a polymer from the group of polymers including polyamides, polyolefins, halogenated polyolefins, and copolymers or mixtures thereof.
[0046] In another embodiment, the core of the bicomponent fiber comprises a polymer from the group of polymers including polyolefins, halogenated polyolefins, polyamides, polyesters, and copolymers or mixtures thereof.
[0047] In another embodiment, for example for bitumen membranes, tufted carpets or vinyl flooring, the sheath of the core / sheath bicomponent fiber consists primarily of polyamide, preferably polyamide-6 (PA6), and the core consists primarily of polyester, preferably polyethylene terephthalate (PET).
[0048] In another embodiment, for example for tufted carpet or filter media, the sheath of the core / sheath bicomponent fiber consists primarily of polyolefin, preferably polypropylene, and the core consists primarily of polyester, preferably polyethylene terephthalate (PET).
[0049] In another embodiment, for example, for bitumen membranes, tufted carpet, vinyl flooring, or filter media, the sheath of the core / sheath bicomponent fiber consists primarily of polyester, preferably copolyester (co-PET), and the core consists primarily of polyester, preferably polyethylene terephthalate (PET).
[0050] In one embodiment, the connection regions extend perpendicularly or at an angle to the main direction of the nonwoven carrier material. Preferably, the connection regions extend at an angle of 1° to 30°, preferably 3° to 15°, more preferably 5° to 10°, to the main direction of extension of the nonwoven carrier material (see Figure 3). Preferably, the connection regions extend across the entire width. Preferably, the connection regions are straight, but zigzag connection regions are also possible.
[0051] In another embodiment, the contact area between the first and second parts is enlarged to improve the joint strength in the connection region. The enlarged contact area between the first and second parts can be achieved by increasing the difference in length between the first fiber layer in the first part and the second fiber layer in the first part, and similarly in the second part. Preferably, the contact area between the first and second parts is enlarged by including additional fiber layers with alternating lengths (see, for example, Figures 12 and 13). It is also possible for the connection region to have a nonlinear shape, such as a zigzag or wavy connection region.
[0052] The nonwoven carrier material may include a first portion having an inclined layer boundary with an angle β and a second portion having an inclined layer boundary complementary to the angle β, such that the first portion and the second portion together form a form-fit connection at the connection region.
[0053] The form-fit connection of the first and second portions of the nonwoven carrier material may have an inclined layer boundary that has an angle β with respect to the major surfaces of the first and second portions of the nonwoven carrier material, and the first and second portions are connected via the inclined layer boundary such that the major surfaces of the first and second portions are arranged in a single plane, as shown, for example, in FIG. 10 .
[0054] The form-fit connection of the first and second portions of the nonwoven carrier material may alternatively exhibit an inclined layer boundary with an angle β relative to the major surfaces of the first and second portions of the nonwoven carrier material, with the first and second portions connected via the major surface of the first portion and the major surface of the second portion, as shown, for example, in FIG. 11. This arrangement allows the first portion to be connected to the second portion via the major surfaces of the first and second portions that have not been treated to remove material to reduce thickness, improving the connection. While the major surfaces of the combined nonwoven carrier material may shift in the connection region, the thickness of the connection region can still be equal to the thickness of the remainder of the nonwoven carrier material.
[0055] A method is provided for connecting a nonwoven carrier material having at least first and second thermoplastic fibrous layers (A1, A2; B1, B2), the nonwoven carrier material comprising a first portion (A) having a thickness and a second portion (B) having a thickness, the first portion (A) and the second portion (B) having a thickness, wherein a portion of the thickness of the first portion (A) and a portion of the thickness of the second portion (B) are removed to form the first thermoplastic fibrous layer (A1, B1) and the second thermoplastic fibrous layer (A2, B2) such that the first portion (A) and the second portion (B) together form a form-fitting connection in the connection region.
[0056] Preferably, the removal of the part of the thickness of the first part (A) and the second part (B) is carried out by skiving, as known to those skilled in the art.
[0057] In one embodiment, the method includes a separation method carried out before removing portions of the first thermoplastic fiber layer (A1, B1) and the second thermoplastic fiber layer (A2, B2), in which, in the separation step, the first portion A is partially separated into the first thermoplastic fiber layer (A1) and the second thermoplastic fiber layer (A2), and in the separation step, the second portion B is partially separated into the first thermoplastic fiber layer (B1) and the second thermoplastic fiber layer (B2), and the first and second thermoplastic fiber layers (A1, A2) of the first portion (A) and the first and second thermoplastic fiber layers (B1, B2) of the second portion (B) are separated from each other in the separation step.
[0058] In one embodiment, in a method for connecting a nonwoven carrier material comprising a first portion (A) and a second portion (B), both the first portion (A) and the second portion (B) comprise at least a first thermoplastic fiber layer (A1, B1) and a second thermoplastic fiber layer (A2, B2), and in the separating step, the first portion (A) is partially separated into the first thermoplastic fiber layer (A1) and the second thermoplastic fiber layer (A2) of the first portion (A), and in the separating step, the second portion (B) is partially separated into the first thermoplastic fiber layer (B1) and the second thermoplastic fiber layer (B2), and the first thermoplastic fiber layer (A1) and the second thermoplastic fiber layer (A2) of the first portion (A) and the first thermoplastic fiber layer (B1) and the second thermoplastic fiber layer (B2) of the second portion (B) are separated from each other in the separating step, and A portion of the thickness of (A) and a portion of the thickness of the second portion (B) are removed to form the first thermoplastic fiber layer (A1, B1) and / or the second thermoplastic fiber layer (A2, B2), such that the length of the first thermoplastic fiber layer (A1) of the first portion (A) is different from the length of the second thermoplastic fiber layer (A2) of the first portion (A) and the length of the first thermoplastic fiber layer (B1) of the second portion (B) is different from the length of the second thermoplastic fiber layer (B2) of the second portion (B), the sum of the length of the first thermoplastic fiber layer (A1) of the first portion and the length of the first thermoplastic fiber layer (B1) of the second portion is equal to the sum of the length of the second thermoplastic fiber layer (A2) of the first portion and the length of the second thermoplastic fiber layer (B2) of the second portion, and the first and second portions are connected at the connection region to form a connected nonwoven carrier material.
[0059] The method according to the present disclosure is applicable to two different embodiments of the first and second parts of the nonwoven carrier material: in the first embodiment, the first and second parts of the nonwoven carrier material have two independent thermoplastic fiber layers, and in the second embodiment, one starting thermoplastic fiber layer is used which is separated into two thermoplastic fiber layers (partially, this means at least in the zone of the future connection area) as already mentioned above.
[0060] In the separation step for the first embodiment, two independent thermoplastic fiber layers are separated from each other (before the fiber layers are placed on top of each other with or without fastening). In the separation step for the second embodiment, one starting thermoplastic fiber layer is separated into two different layers (first and second thermoplastic fiber layers) over at least the length of the future connection area. Preferably, the thickness and / or weight of the first thermoplastic fiber layer is equal to the thickness and / or weight of the second thermoplastic fiber layer formed from one starting thermoplastic fiber layer (in the first and / or second portions).
[0061] Preferably, the length of the first thermoplastic fibrous layer in the first portion differs from the length of the second thermoplastic fibrous layer in the first portion by at least 0.5 cm, preferably at least 1 cm, more preferably at least 2 cm. Preferably, the length of the first thermoplastic fibrous layer in the second portion differs from the length of the second thermoplastic fibrous layer in the second portion by at least 0.5 cm, preferably at least 1 cm, more preferably at least 2 cm.
[0062] In one embodiment, the (subsequent) permanent connection of the first and second portions of the nonwoven carrier material in the connection region is formed by a fastening technique, whereby preferred techniques include calendaring, mechanical needling, hydroentanglement, ultrasonic bonding, thermal bonding, preferably with hot air, or any combination thereof.
[0063] Preferably, a combination of mechanical needling of the connection area followed by thermal bonding of the connection area can be applied to obtain improved strength of the connection area due to fiber entanglement between the first and second parts.
[0064] In another embodiment, a suitable binder is used to improve the bond between the first and second portions of the nonwoven carrier material, which may be a chemical binder, a thermal binder such as a thermosetting polymer, a pressure and heat activatable adhesive, or an adhesive activated by radiation such as UV radiation.
[0065] In one embodiment, the connection regions extend perpendicularly or at an angle, preferably 20°, to the primary extension direction of the nonwoven carrier material.
[0066] Preferably, a splitting device is used to separate the first and second thermoplastic fiber layers of the first portion from each other and to separate the first and second thermoplastic fiber layers of the second portion from each other.
[0067] The present invention is further explained through the drawings. [Brief explanation of the drawings]
[0068] [Figure 1] 1 shows a schematic representation of a two-piece combination of prior art nonwoven carrier material. [Figure 2] 2A and 2B show a schematic representation of a two-piece combination of prior art nonwoven carrier materials. [Figure 3] 1 shows a schematic representation of a nonwoven carrier material in plan view together with connection regions. [Figure 4] 1 shows a schematic representation of a first portion and a second portion of a nonwoven carrier material. [Figure 5] 5 shows a schematic diagram of the connection of the first and second portions of the nonwoven carrier material according to FIG. 4; [Figure 6] 1A-1C are schematic illustrations of different embodiments of first and second portions of a nonwoven carrier material; [Figure 7] 1A-1C are schematic illustrations of different embodiments of first and second portions of a nonwoven carrier material; [Figure 8] 10 shows a schematic representation of a splitting step of a first thermoplastic fiber layer and a second thermoplastic fiber layer. [Figure 9] 1A and 1B are schematic diagrams illustrating first and second portions of a nonwoven carrier material having an inclined layer boundary. [Figure 10]10A and 10B schematically illustrate the connection of a first portion and a second portion of a nonwoven carrier material having an inclined layer boundary. [Figure 11] 10A and 10B schematically illustrate the connection of a first portion and a second portion of a nonwoven carrier material having an inclined layer boundary. [Figure 12] 1 shows a schematic representation of a first and second portion of a nonwoven carrier material having four layers of fibers with alternating different elongations. [Figure 13] 1 shows a schematic representation of a first and second portion of a nonwoven carrier material having three layers of fibers with alternating different elongations. [Figure 14] 14A and 14B schematically show a first portion and a second portion of a nonwoven carrier material, with a scrim disposed on a first thermoplastic fibrous layer of the first portion and a scrim disposed on a second thermoplastic fibrous layer of the second portion of the nonwoven carrier material. DETAILED DESCRIPTION OF THE INVENTION
[0069] 1 shows a schematic diagram of a connection between a first portion A of a nonwoven carrier material 1 and a second portion B of the nonwoven carrier material 1 (prior art). The first portion A has a first thermoplastic fiber layer A1 and a second thermoplastic fiber layer A2. The second portion B also has a first thermoplastic fiber layer B1 and a second thermoplastic fiber layer B2. To connect the first portion A and the second portion B in a connection region 3, the first portion A is placed on top of the second portion B. Four fiber layers are arranged in the connection region 3. This increases the thickness and weight of the nonwoven carrier material 1 in the connection region 3.
[0070] 2A and 2B show an alternative embodiment of the prior art. Nonwoven carrier material 1 includes a first portion A having one fibrous layer and a second portion B also having one fibrous layer. Part A is placed on top of part B, and then both portions A and B are permanently secured together, for example, by using a hot wire or ultrasonic bonding / cutting step to simultaneously cut and secure parts A and B. Parts A and B are then opened, thereby connecting them at connection region 3. In this embodiment, the thickness (and weight) of nonwoven carrier material 1 is increased in connection region 3. Furthermore, the strength of the nonwoven carrier material in the connection region is lower than the strength in the remainder of the nonwoven carrier material.
[0071] 3 shows a plan view of a nonwoven carrier material 1 according to the present disclosure. The nonwoven carrier material 1 has a first portion A and a second portion B. The first portion A and the second portion B are connected to each other at a connection region 3. The connection region 3 extends perpendicular to the main extension direction of the nonwoven carrier material 1 (see arrow X in FIG. 5) or at an angle to the main extension direction of the nonwoven carrier material 1 (arrow X).
[0072] FIG. 4 shows a side view of a nonwoven carrier material 1 including a first portion A having a first fibrous layer A1 and a second fibrous layer A2 and a second portion B having a first fibrous layer B1 and a second fibrous layer B2. The first fibrous layer A1 of the first portion A has a different length than the second fibrous layer A2 of the first portion A. The first fibrous layer B1 of the second portion B also has a different length than the second fibrous layer B2 of the second portion B. However, the sum of the length of the first fibrous layer A1 of the first portion A and the length of the first fibrous layer B1 of the second portion B is equal to the sum of the length of the second fibrous layer A2 of the first portion A and the length of the second fibrous layer B2 of the second portion B. This allows the first portion A and the second portion B to fit together like puzzle pieces.
[0073] Figure 5 shows the connection of the first part A and the second part B of Figure 4 to form a nonwoven carrier material 1. The first part A and the second part B have a form-fit connection, which results in no change in thickness perpendicular (arrow Y) to the main extension direction (arrow X) of the nonwoven carrier material 1. This form-fit connection also forms a kind of force-fit connection, which allows the first part A and the second part B to be easily (permanently) fixed together without slippage of one or more fibrous layers during the process. The resulting material is a connected nonwoven carrier material 1.
[0074] Figure 6 shows the embodiment of Figures 4 and 5, in which a scrim 4 is disposed between the thermoplastic fibrous layers A1, A2 and B1, B2. The scrim may be disposed between the first and second fibrous layers A1, A2, B1, B2 of the first and second portions A, B, or only the first portion A or the second portion B has a scrim 4 (between the fibrous layers). In a second embodiment, the removing step also removes the scrim from the first portion or the second portion A, B.
[0075] FIG. 7 illustrates an embodiment of the present disclosure with three or more thermoplastic fiber layers for all sections. The first section A includes a first thermoplastic fiber layer A1, a second thermoplastic fiber layer A2, and a third thermoplastic fiber layer A3. The length of the first thermoplastic fiber layer A1 is different from the lengths of the second and third thermoplastic fiber layers A2 and A3. Again, the sum of the length of the first fiber layer A1 in the first section A and the length of the first fiber layer B1 in the second section B is equal to the sum of the length of the second fiber layer A2 (A3) in the first section A and the length of the second fiber layer B2 (B3) in the second section B. This allows the present invention to function for nonwoven carrier materials with three or more fiber layers in a single section. It should be understood that one or more of the layers A1, A2, A3, B1, B2, and B3 can be formed from materials other than fiber (e.g., foil).
[0076] FIG. 8 shows a schematic diagram of the splitting process. The first portion A has a first thermoplastic fiber layer A1 and a second thermoplastic fiber layer A2. A splitting device 5 partially separates the first thermoplastic fiber layer A1 and the second thermoplastic fiber layer A2 from each other, and portions of the first thermoplastic fiber layer A1 and / or the second thermoplastic fiber layer A2 are removed, preferably by cutting. The same operation is performed on the second portion B (not shown in FIG. 8) of the nonwoven carrier material 1. The first fiber layer A1 (B1 not shown in FIG. 8) and the second fiber layer A2 (B2 not shown in FIG. 8) of the first portion A and the second portion B are formed to create a form-fit connection as disclosed (as in FIGS. 4, 6, and 7). The first portion A and the second portion B are then connected to each other (see FIGS. 3 and 5). The region where the first portion A and the second portion B are connected to each other is called the connection region 3 (not shown in FIG. 8). The splitting device 5 is part of a splitting machine. For example, Fortuna GmbH sells such splitting machines. Methods other than splitting and cutting are included to achieve the form-fit connections described above (like puzzle pieces).
[0077] FIG. 9 shows a side view of a first portion A and a second portion B of a nonwoven carrier material having an inclined layer boundary with an angle β.
[0078] FIG. 10 shows a side view of one embodiment of the connection of the first and second portions A, B of the nonwoven carrier material, where the connection region 3 is an inclined connection region having an angle β with respect to the major surfaces of the first and second portions A, B of the nonwoven carrier material.
[0079] 11 shows a side view of the connection of a first portion A and a second portion B of a nonwoven carrier material, where the first portion A and the second portion B have layer boundaries with an angle β and are connected at a connection region 3 on the major surfaces of the first portion A and the second portion B. The first portion A and the second portion B are connected such that the thickness of the connected layers at the connection region is equal to the thickness of the entire nonwoven carrier material.
[0080] FIG. 12 shows a side view of the first and second sections A and B, each of which has four fiber layers (A1-A4 and B1-B4). The first fiber layer A1 (B1) has a different length than the second fiber layer A2 (B2). The second fiber layer A2 (B2) then has a different length than the third fiber layer A3 (B3), which in turn has a different length than the fourth fiber layer A4 (B4). The different layer lengths alternate, resulting in a zipper-like shape. Therefore, the even-numbered layers A2 (B2) and A4 (B4) and / or the odd-numbered layers A1 (B1) and A3 (B3) do not necessarily have to be the same length. The sum of the fiber layer lengths of all fiber layers is equal.
[0081] FIG. 13 shows a side view of the first and second parts A and B, each of which has three fiber layers (A1-A3 and B1-B3). The first fiber layer A1 (B1) has a different length than the second fiber layer A2 (B2). The second fiber layer A2 (B2) then has a different length than the third fiber layer A3 (B3). The different lengths of the layers alternate, resulting in a zipper-like shape. Therefore, even-numbered layers A2 (B2) do not necessarily need to be the same length. The sum of the fiber layer lengths of all fiber layers is equal.
[0082] Figure 14 shows a schematic diagram of a first and second portion of a nonwoven carrier material, with a scrim disposed on a first thermoplastic fiber layer of the first portion and a scrim disposed on a second thermoplastic fiber layer of the second portion of the nonwoven carrier material. In Figure 14A, the scrim (dashed line) is disposed on the first thermoplastic fiber layer A1 of the first portion near the interface between the first thermoplastic fiber layer A1 and the second thermoplastic fiber layer A2 of the first portion. The scrim (dashed line) is also disposed on the second thermoplastic fiber layer B2 of the second portion near the interface between the second thermoplastic fiber layer B2 and the first thermoplastic fiber layer B1 of the second portion. In Figure 14B, the scrims are disposed close to each other when a form-fit connection is formed at the connection interface, which improves load transfer between the scrims in the nonwoven carrier material.
Claims
1. 1. A method for forming a nonwoven carrier material (1) for a bituminous roof membrane, for a roof underlayment sheet, for a carrier for a filter medium, or for a primary backing for a tufted carpet or a vinyl floor covering, by connecting a first part (A) having a thickness and a second part (B) having a thickness via a connecting region, wherein the first part (A) and the second part (B) have at least first and second thermoplastic fiber layers (A1, A2; B1, B2), a scrim (4) is disposed between the at least first and second thermoplastic fiber layers (A1, A2; B1, B2) of the first portion (A) and the second portion (B); the scrim (4) is disposed in the first thermoplastic fiber layer (A1) of the first portion (A) at a predetermined distance from the interface between the first thermoplastic fiber layer (A1) and the second thermoplastic fiber layer (A2) of the first portion (A), the predetermined distance being less than 50% of the thickness of the first thermoplastic fiber layer (A1) of the first portion (A); and the scrim (4) is disposed in the second thermoplastic fiber layer (B2) of the second portion (B) at a predetermined distance from the interface between the first thermoplastic fiber layer (B1) and the second thermoplastic fiber layer (B2) of the second portion (B), the predetermined distance being less than 50% of the thickness of the second thermoplastic fiber layer (B2) of the second portion (B); a part of the thickness of the first portion (A) down to the scrim (4) and a part of the thickness of the second portion (B) down to the scrim (4) are removed to form the first thermoplastic fiber layer (A1, B1) and the second thermoplastic fiber layer (A2, B2) such that the first portion (A) and the second portion (B) together form a form-fit connection in the connection region; method.
2. 2. The method of claim 1, wherein a length of the first thermoplastic fiber layer (A1) of the first portion (A) differs from a length of the second thermoplastic fiber layer (A2) of the first portion (A) by at least 0.5 cm, a length of the first thermoplastic fiber layer (B1) of the second portion (B) differs from a length of the second thermoplastic fiber layer (B2) of the second portion (B) by at least 0.5 cm, a sum of the lengths of the first thermoplastic fiber layer (A1) of the first portion (A) and the first thermoplastic fiber layer (B1) of the second portion (B) equals a sum of the lengths of the second thermoplastic fiber layer (A2) of the first portion (A1) and the second thermoplastic fiber layer (B2) of the second portion (B), and the first portion (A) and the second portion (B) are then connected at a connection region (3) to form a connected nonwoven carrier material.
3. 3. The method of claim 2, wherein the length of the first thermoplastic fiber layer (A1) of the first portion (A) differs from the length of the second thermoplastic fiber layer (A2) of the first portion (A) by at least 1 cm.
4. 3. The method of claim 2, wherein the length of the first thermoplastic fiber layer (A1) of the first portion (A) differs from the length of the second thermoplastic fiber layer (A2) of the first portion (A) by at least 2 cm.
5. 5. The method according to claim 2, wherein the length of the first thermoplastic fiber layer (B1) of the second portion (B) differs from the length of the second thermoplastic fiber layer (B2) of the second portion (B) by at least 1 cm.
6. 5. The method according to claim 2, wherein the length of the first thermoplastic fiber layer (B1) of the second portion (B) differs from the length of the second thermoplastic fiber layer (B2) of the second portion (B) by at least 2 cm.
7. 7. The method according to any one of claims 1 to 6, wherein the permanent connection between the first part (A) and the second part (B) in the connection area (3) is formed by a fastening technique.
8. 8. The method of claim 7, wherein the permanent connection between the first part (A) and the second part (B) in the connection area (3) is formed by a fastening technique selected from the group consisting of calendaring, mechanical needling, hydroentanglement, ultrasonic bonding, thermal bonding or any combination thereof.
9. 9. The method according to claim 8, wherein the permanent connection between the first part (A) and the second part (B) in the connection area (3) is formed by thermal bonding with hot air.
10. 10. The method according to claim 1, wherein the connection regions (3) extend perpendicularly or at an angle (α) to the main extension direction (X) of the nonwoven carrier material (3).
11. 11. The method according to claim 1, wherein a splitting device is used to separate the first thermoplastic fiber layer (A1, B1) from the second thermoplastic fiber layer (A2, B2) in the first and second portions (A, B).
12. 12. The method according to any one of claims 1 to 11, wherein part of the thickness of the first portion (A) and part of the thickness of the second portion (B) are removed using a polishing technique.
13. The method of claim 12, wherein the abrasive technique is skiving or milling.
14. A nonwoven carrier material (1) obtainable by the method according to any one of claims 1 to 13, The thermoplastic fiber sheet includes filaments and at least a first portion (A) having a thickness and a second portion (B) having a thickness, the first portion (A) and the second portion (B) having at least first and second thermoplastic fiber layers (A1, A2; B1, B2), a scrim (4) is disposed between the at least first and second thermoplastic fiber layers (A1, A2; B1, B2) of the first portion (A) and the second portion (B); the scrim (4) is disposed in the first thermoplastic fiber layer (A1) of the first portion (A) at a predetermined distance from the interface between the first thermoplastic fiber layer (A1) and the second thermoplastic fiber layer (A2) of the first portion (A), the predetermined distance being less than 50% of the thickness of the first thermoplastic fiber layer (A1) of the first portion (A); and the scrim (4) is disposed in the second thermoplastic fiber layer (B2) of the second portion (B) at a predetermined distance from the interface between the first thermoplastic fiber layer (B1) and the second thermoplastic fiber layer (B2) of the second portion (B), the predetermined distance being less than 50% of the thickness of the second thermoplastic fiber layer (B2) of the second portion (B); In a nonwoven carrier material (1), the first portion (A) and the second portion (B) are connected to each other via a connection region (3) to form the nonwoven carrier material (1), characterised in that the first part (A) and the second part (B) together form a form-fit connection in the connection area (3), Nonwoven carrier material (1).
15. 15. The nonwoven carrier material (1) according to claim 14, wherein the length of the first thermoplastic fiber layer (A1) in the first portion (A) differs from the length of the second thermoplastic fiber layer (A2) in the first portion (A) by at least 0.5 cm, the length of the first thermoplastic fiber layer (B1) in the second portion (B) differs from the length of the second thermoplastic fiber layer (B2) in the second portion (B) by at least 0.5 cm, and the sum of the length of the first thermoplastic fiber layer (A1) in the first portion (A) and the length of the first thermoplastic fiber layer (B1) in the second portion (B) is equal to the sum of the length of the second thermoplastic fiber layer (A2) in the first portion (A1) and the length of the second thermoplastic fiber layer (B2) in the second portion (B).
16. 16. The nonwoven carrier material (1) of claim 15, wherein the length of the first thermoplastic fiber layer (A1) of the first portion (A) differs from the length of the second thermoplastic fiber layer (A2) of the first portion (A) by at least 1 cm.
17. 16. The nonwoven carrier material (1) of claim 15, wherein the length of the first thermoplastic fiber layer (A1) of the first portion (A) differs from the length of the second thermoplastic fiber layer (A2) of the first portion (A) by at least 2 cm.
18. 18. The nonwoven carrier material (1) according to any one of claims 15 to 17, wherein the length of the first thermoplastic fiber layer (B1) of the second portion (B) differs from the length of the second thermoplastic fiber layer (B2) of the second portion (B) by at least 1 cm.
19. 18. The nonwoven carrier material (1) according to any one of claims 15 to 17, wherein the length of the first thermoplastic fiber layer (B1) of the second portion (B) differs from the length of the second thermoplastic fiber layer (B2) of the second portion (B) by at least 2 cm.
20. 20. The nonwoven carrier material (1) according to any one of claims 14 to 19, wherein the change in thickness of the nonwoven carrier material (1) measured perpendicularly (arrow Y) to the main extension area (arrow X) of the nonwoven carrier material (1) is less than 0.15 mm.
21. 21. The nonwoven carrier material (1) according to any one of claims 14 to 20, wherein the average weight of the connection region (3) differs by a maximum of 20% by weight from the average weight of the nonwoven carrier material (1) excluding the connection region (3).
22. 22. The nonwoven carrier material (1) of any one of claims 14 to 21, wherein the scrim (4) is formed from glass fibers or high modulus fibers of at least 5 GPa.
23. 22. The nonwoven carrier material (1) of any one of claims 14 to 21, wherein the scrim (4) is formed from glass fibers or high modulus fibers of at least 10 GPa.
24. 22. The nonwoven carrier material (1) of any one of claims 14 to 21, wherein the scrim (4) is formed from glass fibers or high modulus fibers of at least 15 GPa.
25. 22. The nonwoven carrier material (1) of any one of claims 14 to 21, wherein the scrim (4) is formed from glass fibers or high modulus fibers of at least 20 GPa.
26. 22. The nonwoven carrier material (1) of any one of claims 14 to 21, wherein the scrim (4) is formed from glass fibers or high modulus fibers of at least 25 GPa.
27. 22. The nonwoven carrier material (1) of any one of claims 14 to 21, wherein the scrim (4) is formed from glass fibers or high modulus fibers of at least 40 GPa.
28. 22. The nonwoven carrier material (1) of any one of claims 14 to 21, wherein the scrim (4) is formed from glass fibers or high modulus fibers of at least 50 GPa.
29. 22. The nonwoven carrier material (1) of any one of claims 14 to 21, wherein the scrim (4) is formed from glass fibers or high modulus fibers of at least 75 GPa.
30. 30. The nonwoven carrier material (1) according to any one of claims 14 to 29, wherein at least the first and second thermoplastic fiber layers (A1, A2; B1, B2) of the first part (A) and the second part (B) comprise two types of monocomponent fibers or bicomponent fibers.
31. 31. The nonwoven carrier material (1) of claim 30, wherein the two types of monocomponent fibers are made of polymers of different chemical structures with different melting points.
32. 31. The nonwoven carrier material (1) of claim 30, wherein the bicomponent fibers are composed of two polymers of different chemical structures with different melting points.
33. 33. The nonwoven carrier material (1) according to any one of claims 14 to 32, wherein the connection regions (3) extend perpendicularly or at an angle (α) to the main extension direction (arrow X) of the nonwoven carrier material (1).
34. The nonwoven carrier material (1) according to any one of claims 14 to 33, wherein the nonwoven carrier material (1) comprises bicomponent fibers.
35. 35. The nonwoven carrier material (1) of claim 34, wherein the bicomponent fibers have a polyester core and a polyamide sheath.
36. 36. The nonwoven carrier material (1) of any one of claims 14 to 35, wherein the scrim is positioned in the first thermoplastic fiber layer of the first portion (A) at a predetermined distance from the interface between the first thermoplastic fiber layer (A1) and the second thermoplastic fiber layer (A2) of the first portion (A), the predetermined distance being less than 40% of the thickness of the first thermoplastic fiber layer (A1) of the first portion (A).
37. 36. The nonwoven carrier material (1) of any one of claims 14 to 35, wherein the scrim is positioned in the first thermoplastic fiber layer of the first portion (A) at a predetermined distance from the interface between the first thermoplastic fiber layer (A1) and the second thermoplastic fiber layer (A2) of the first portion (A), the predetermined distance being less than 30% of the thickness of the first thermoplastic fiber layer (A1) of the first portion (A).
38. 36. The nonwoven carrier material (1) of any one of claims 14 to 35, wherein the scrim is positioned in the first thermoplastic fiber layer of the first portion (A) at a predetermined distance from the interface between the first thermoplastic fiber layer (A1) and the second thermoplastic fiber layer (A2) of the first portion (A), the predetermined distance being less than 20% of the thickness of the first thermoplastic fiber layer (A1) of the first portion (A).
39. 39. The nonwoven carrier material (1) of any one of claims 14 to 38, wherein the scrim is positioned in the second thermoplastic fiber layer (B2) of the second portion (B) at a predetermined distance from the interface between the first thermoplastic fiber layer (B1) and the second thermoplastic fiber layer (B2) of the second portion (B), the predetermined distance being less than 40% of the thickness of the second thermoplastic fiber layer (B2) of the second portion (B).
40. 39. The nonwoven carrier material (1) of any one of claims 14 to 38, wherein the scrim is positioned in the second thermoplastic fiber layer (B2) of the second portion (B) at a predetermined distance from the interface between the first thermoplastic fiber layer (B1) and the second thermoplastic fiber layer (B2) of the second portion (B), the predetermined distance being less than 30% of the thickness of the second thermoplastic fiber layer (B2) of the second portion (B).
41. 39. The nonwoven carrier material (1) of any one of claims 14 to 38, wherein the scrim is positioned in the second thermoplastic fiber layer (B2) of the second portion (B) at a predetermined distance from the interface between the first thermoplastic fiber layer (B1) and the second thermoplastic fiber layer (B2) of the second portion (B), the predetermined distance being less than 20% of the thickness of the second thermoplastic fiber layer (B2) of the second portion (B).
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