Melting bag for hot-melt adhesive, hot-melt sheet using the same, and hot-melt laminate

The use of a styrene-based elastomer and tackifier in melting bags for hot melt adhesives addresses compatibility and workability issues, enhancing shatter resistance and deformability while minimizing environmental waste.

JP2026001003APending Publication Date: 2026-01-06TOYOCOLOR CO LTD
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Patent Information

Application Number
JP2025153280
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-04-03
Filing Date
2025-09-16
Publication Date
2026-01-06

AI Technical Summary

Technical Problem

Conventional melting bags for hot melt adhesives suffer from issues such as insufficient compatibility with the contents, leading to blocking, low filling capacity, and poor workability due to mismatched strength and deformability, resulting in environmental burdens from discarded release materials.

Method used

A melting bag composed of a styrene-based elastomer and a tackifier, preferably containing fully or partially hydrogenated petroleum resins, with a softening point of 50°C or higher and a thickness of 25 to 500 μm, ensuring shatter resistance and ease of deformation, and a hot melt sheet and laminate that maintain compatibility with the adhesive.

Benefits of technology

The solution provides improved shatter resistance, ease of deformation, and enhanced compatibility with hot melt adhesives, reducing environmental impact and improving packaging efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a melting bag for a hot melt adhesive, a hot melt sheet using the same, and a hot melt laminate which are more excellent in workability at the time of packing such as crushing resistance and deformation easiness than before, and further excellent in compatibility with contents at the time of use.SOLUTION: The problem of the present invention is solved by a melting bag containing a styrene-based elastomer (A) and a tackifier (C), wherein the tackifier (C) contains at least one of a fully hydrogenated petroleum resin and a partially hydrogenated petroleum resin.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to melt bags, hot melt sheets, and hot melt laminates used to package hot melt adhesives. [Background technology]

[0002] Hot melt adhesives are melted and bonded to objects, and then cooled down to immediately demonstrate their adhesive properties, so the advantage of not requiring a curing period has been rediscovered, and their use in packaging and industrial applications is expanding. In addition, with the recent social change that emphasizes reducing the burden on the environment, the advantage of not requiring solvents or drying processes during use has also been rediscovered, and their use is continuing to expand.

[0003] As the range of applications for hot melt adhesives expands, improvements in workability are also required. In the summer, there has been a problem where blocks of hot melt adhesive stick together (blocking), forming huge blocks when removed from packaged cardboard boxes, etc., significantly reducing workability. To address this issue, hot melt adhesives that remain adhesive at room temperature are packaged, transported, and stored in release paper or film, which is then peeled off and discarded when the hot melt is used. However, the disposal of these release materials has also become an environmental burden and is now viewed as a problem.

[0004] To address this issue, a so-called melt bag was developed, in which the hot melt is packaged in a hard material and melted while still wrapped when in use (Patent Document 1). This avoids the environmental burden of discarding release material and eliminates the need to peel off the release material every time a block of hot melt is melted, dramatically improving work efficiency.

[0005] In recent years, measures to prevent blocking have been taken, such as increasing the strength of the melting bag (Patent Document 2) or embossing the shape (Patent Document 3). However, these methods have a significant discrepancy with the properties of the hot melt contained therein, resulting in insufficient compatibility between the melting bag and the hot melt in the melting furnace, and the mixed molten material supplied to the coating head not being in the designed ratio. Furthermore, because the strength of the melting bag is too high, when a mass of hot melt adhesive wrapped in the melting bag is packaged in a cardboard box or the like, the mass is unable to change shape, resulting in a package with a low density and a lower filling capacity than desired. However, if the strength of the melting bag is made too weak to impart deformability, the mass breaks during packaging, exposing the hot melt adhesive to the surface, resulting in the problem of blocking between the masses. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2004-002581 [Patent Document 2] International Publication No. 2014 / 194087 [Patent Document 3] Japanese Patent Application Publication No. 2019-065164 Summary of the Invention [Problem to be solved by the invention]

[0007] Therefore, an object of the present invention is to provide a melting bag for hot melt adhesives that is superior to conventional bags in terms of shatter resistance, ease of deformation, and other workability during packaging, and that also has excellent compatibility with the contents during use, as well as a hot melt sheet and a hot melt laminate that use the same. [Means for solving the problem]

[0008] The present inventors have conducted extensive research to solve the above problems and have completed the present invention. . That is, an embodiment of the present invention is a melt bag containing a styrene-based elastomer (A) and a tackifier (C), wherein the tackifier (C) contains at least one of a fully hydrogenated petroleum resin and a partially hydrogenated petroleum resin.

[0009] Another embodiment of the present invention is the melt bag, wherein the softening point is 50°C or higher.

[0010] Another embodiment of the present invention is the melting bag, wherein the film thickness is 25 to 500 μm.

[0011] Another embodiment of the present invention is the melt bag described above, wherein the styrene elastomer (A) has a weight average molecular weight of 300,000 or less.

[0012] Another embodiment of the present invention is the melt bag, which is for packaging hot melt adhesives.

[0013] Another embodiment of the present invention is a mass in which a hot melt adhesive is packaged in a melt bag, the melt bag being the above-mentioned melt bag.

[0014] Another embodiment of the present invention is the above-mentioned mass, wherein the difference between the softening point of the hot melt adhesive and the softening point of the melting bag is within 50°C.

[0015] Another embodiment of the present invention is a hot melt sheet, which is a sheet-shaped product of the above-mentioned mass.

[0016] Another embodiment of the present invention is the hot melt sheet, in which a 25 μm thick hot melt sheet is fixed to an inclined plate with an inclination angle of 30 degrees, and a steel ball (1 / 32 to 32 / 32 inches) is rolled across the sample with a run-up of 10 cm and an adhesive surface of 10 cm, and the diameter number (ball tack) of the ball that stops near the center of the adhesive surface is 4 or more.

[0017] Another embodiment of the present invention is a hot melt laminate in which the hot melt sheet and an adherend are arranged in this order. [Effects of the Invention]

[0018] According to the present invention described above, it is possible to provide a melting bag for hot melt adhesives that is superior to conventional bags in terms of shatter resistance and ease of deformation during packaging, and that also has excellent compatibility with the contents during use, as well as a hot melt sheet and a hot melt laminate that use the same. [Brief explanation of the drawings]

[0019] [Figure 1] 1 is a schematic cross-sectional view partially showing a mass of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0020] The melt bag, hot melt sheet, and hot melt laminate used to package the hot melt adhesive of the present invention will be described in more detail below, but are not limited thereto. The melting bag containing the hot melt adhesive is called a mass. Note that the term "hot melt adhesive" includes hot melt pressure sensitive adhesives. In this specification, a numerical range specified using "to" includes the numerical values ​​before and after "to" as the lower and upper limit values. In this specification, hot melt adhesives may be abbreviated as "hot melt." Unless otherwise noted, the various components appearing in this specification may be used independently either alone or in combination of two or more. Furthermore, "parts" and "%" represent "parts by mass" and "% by mass", respectively, unless otherwise specified.

[0021] <Melting bag> The melt bag of the present invention is used to package hot melt adhesives, but is not limited to this, as long as it can contribute technically to products other than hot melt adhesives. The melting bag contains a styrene-based elastomer (A) and a tackifier (C). A material (resin composition) containing the styrene-based elastomer (A) and the tackifier (C) can be heated to melt and formed into a film (manufactured) by a known method.

[0022] The softening point of the melting bag is preferably at least 50° C., more preferably at least 60° C., even more preferably at least 70° C., and particularly preferably at least 80° C. The upper limit is preferably at most 150° C., more preferably at most 130° C., even more preferably at most 110° C., and particularly preferably at most 100° C. When the softening point is within the above range, shatter resistance and blocking resistance are easily exhibited. The softening point is measured in accordance with JIS K-2207 (petroleum asphalt) 6.4 softening point test method (ring and ball method).

[0023] The thickness of the melting bag is preferably 25 to 500 μm, more preferably 50 to 500 μm, even more preferably 50 to 300 μm, and particularly preferably 50 to 200 μm. When the thickness is within the above range, it is easy to achieve both crush resistance and ease of deformation.

[0024] The amount of volatile organic compounds (VOCs) contained in the melting bag is preferably 3% by mass or less, more preferably 1% by mass or less, even more preferably 0.5% by mass or less, and preferably substantially zero. By keeping the amount of VOCs within this range, the melting bag is easily suitable for applications where hygiene is important, such as the food and medical industries.

[0025] ≪Resin composition≫ In the present invention, the resin composition refers to a material for forming a melt bag, and contains a styrene-based elastomer (A) and a tackifier (C). It is preferable that the resin composition further contains a process oil (B). The inclusion of the process oil (B) is preferable because it provides excellent compatibility and ease of deformation.

[0026] <Styrene-based elastomer (A)> Styrenic elastomer (A) is a type of thermoplastic elastomer. Thermoplastic elastomers are elastic materials that have properties similar to vulcanized rubber at room temperature, and at high temperatures, they are polymeric materials that can be molded using existing molding machines, just like ordinary thermoplastic resins. Thermoplastic elastomers have properties that are intermediate between rubber and plastic, as they contain both elastic rubber components (soft segments: soft phase) in the molecule and molecular restraint components (hard segments: hard phase) that prevent plastic deformation. Styrene elastomers generally have a polystyrene block and a rubber mid-block, with the polystyrene portion forming physical cross-links (domains) and becoming cross-linking points, and the middle rubber block giving the product rubber elasticity. The middle soft segment includes polybutadiene (B), polyisoprene (I) and polyolefin elastomers (ethylene-propylene (EP), ethylene-butylene (EB), butylene-butadiene (BB)), and the hard Depending on the arrangement of the segments with polystyrene (S), they are divided into linear and branched types.

[0027] Styrene-based elastomers include styrene-butadiene-styrene block copolymer (hereinafter sometimes abbreviated as SBS), styrene-ethylene-butylene-styrene bloc Examples include styrene-ethylene-propylene-styrene block copolymer (hereinafter abbreviated as SEBS), styrene-ethylene-propylene-styrene block copolymer (hereinafter abbreviated as SEPS), styrene-isoprene-styrene block copolymer (hereinafter abbreviated as SIS), and styrene-butylene-butadiene-styrene block copolymer (hereinafter abbreviated as SBBS).

[0028] The styrene content of the styrene elastomer (A) is preferably 10 to 50% by mass, more preferably 15 to 45% by mass, and even more preferably 20 to 40% by mass. A styrene content within this range makes it easier to balance the strength required to exhibit crush resistance with the flexibility required to exhibit ease of deformation. The styrene content is the content (% by mass) of styrene in 100% by mass of the styrene elastomer.

[0029] The weight average molecular weight (Mw) of the styrene elastomer (A) is preferably 10,000 to 300,000, more preferably 50,000 to 200,000, further preferably 80,000 to 150,000, and particularly preferably 100,000 to 150,000. By setting the molecular weight within the above range, it is easy to achieve both high crush resistance and ease of deformation. The weight average molecular weight is a value calculated as polystyrene measured by gel permeation chromatography (GPC).

[0030] The content of the styrene elastomer (A) is preferably 5 to 70 mass%, more preferably 10 to 60 mass%, and even more preferably 10 to 50 mass%, based on 100 mass% of the resin composition. By including the styrene elastomer (A) in the above range, it is easy to achieve both crush resistance and ease of deformation.

[0031] <Process oil (B)> Process oil (B) is commonly used as a plasticizer for rubber, thermoplastic elastomers, etc. It is a process oil produced in petroleum refineries and is broadly classified into paraffinic process oil, aromatic process oil, and naphthenic process oil. Process oil is a mixture of paraffin chains, aromatic rings, and naphthenic rings. Process oils are classified as paraffinic process oils when paraffin chain carbons account for 50% or more by weight of the total carbon, aromatic process oils when aromatic carbons account for 30% or more by weight of the total carbon, and naphthenic process oils when naphthenic ring carbons account for 30% or more by mass.

[0032] The content of the process oil (B) is preferably 5 to 90 mass %, more preferably 10 to 80 mass %, still more preferably 15 to 70 mass %, and particularly preferably 20 to 60 mass %, based on 100 mass % of the resin composition. By including the process oil (B) in the above range, excellent deformability is achieved.

[0033] <Tackifier (C)> The tackifier (C) contains at least one of a fully hydrogenated petroleum resin and a partially hydrogenated petroleum resin. By containing at least one of a fully hydrogenated petroleum resin and a partially hydrogenated petroleum resin, the tackifier has excellent resistance to crushing. Since fully hydrogenated petroleum resins and partially hydrogenated petroleum resins do not have aromatic rings that increase intermolecular affinity, they are thought to be less prone to blocking.

[0034] The tackifier (C) is a relatively low molecular weight polymer with a molecular weight of several hundred to several thousand. It exhibits liquid or solid properties at room temperature, and adding the tackifier imparts fluidity and tackiness, improving adhesive strength. In the present invention, there are no particular limitations as long as it is solid at room temperature. When it is solid at room temperature, it has excellent resistance to shattering, and when used as a hot melt, it plays a role in enhancing its original function of adhesive strength. Examples of fully hydrogenated petroleum resins include the Arcon P series manufactured by Arakawa Chemical Industries, Ltd., and examples of partially hydrogenated petroleum resins include the Arcon M series manufactured by Arakawa Chemical Industries, Ltd.

[0035] As long as the tackifier (C) contains at least one of a fully hydrogenated petroleum resin and a partially hydrogenated petroleum resin, other tackifying resins can also be used in combination. Other tackifying resins are broadly classified into natural resins and synthetic resins. Natural resins include rosin-based resins and terpene-based resins, while synthetic resins include unhydrogenated petroleum-based resins, phenol-based resins, and xylene-based resins. From the viewpoint of shatter resistance, it is preferable to use synthetic resins.

[0036] The content of the tackifier (C) is preferably from 0 to 50 mass %, more preferably from 0 to 45 mass %, and even more preferably from 5 to 40 mass %, relative to 100 mass % of the resin composition. By including the tackifier (C) in the above range, it is easy to achieve both crush resistance and ease of deformation while adjusting the amount of the process oil (B).

[0037] To the extent that the problems of the present invention can be solved, waxes such as polyethylene wax, polypropylene wax, Fischer-Tropsch wax, paraffin wax, and microcrystalline wax, α-methylstyrene resin, and other thermoplastic elastomers can be used as components contained in the resin composition that forms the melt bag. Other examples of thermoplastic elastomers include olefin-based, urethane-based, polyester-based, polyamide-based, and 1,2-butadiene-based elastomers. If necessary, antioxidants, antiaging agents, etc. may be added to prevent thermal deterioration and thermal decomposition.

[0038] [Production of resin composition] The resin composition can be prepared by compounding and mixing the above-mentioned materials while heating them in a known manner. Diluting the product with an organic solvent increases workability, but limits the range of applications, so it is preferable to avoid using organic solvents whenever possible.

[0039] <Lump> The lump is a hot melt adhesive packaged in a melting bag. The weight is preferably 10 g to 5000 g. A weight within the above range is preferable because it is easy to handle and has excellent workability in terms of the number of times it can be filled. The thickness of the melting bag can be adjusted appropriately depending on the weight. After forming (manufacturing) the melting bag, a mass can be obtained by filling it with hot melt adhesive so as to minimize air getting in. From the viewpoint of energy efficiency, this process is preferably cooled immediately after film formation or carried out underwater.

[0040] (hot melt adhesive) For example, when a hot melt adhesive is intended for adhesive applications, it is preferable that the resin system contains a styrene-based elastomer, since this facilitates the development of various adhesive properties. As the styrene-based elastomer, the materials used in the resin composition for manufacturing the melt bag described above can be used as they are. In terms of compatibility in a melting furnace, it is more preferable to use the same type of material as the resin composition. Specifically, it is preferable to contain a styrene-based elastomer (A), a process oil (B), and a tackifier (C). The types of the styrene elastomer (A), the process oil (B) and the tackifier (C) can be appropriately selected depending on the application of the hot melt. For example, for recycling applications, tackifiers with a high acid value of 100 mg KOH / g or more are preferred because they require releasability with an alkaline aqueous solution. Furthermore, for environmentally friendly products, tackifiers with a high biomass content of 80% or more are preferred.

[0041] The softening point of the hot melt adhesive is preferably 40° C. to 110° C., more preferably 50° C. to 100° C., and even more preferably 60° C. to 90° C. Hot melt adhesives with softening points within the above range exhibit tackiness at room temperature, and therefore have excellent compatibility with melting bags while enjoying the advantages of being formed into a mass, and also tend to exhibit cohesive strength when used as a hot melt.

[0042] The difference between the softening point of the hot melt adhesive and the softening point of the melting bag is preferably within 70° C., more preferably within 50° C., even more preferably within 30° C., and particularly preferably within 20° C. When the difference is within the above range, excellent compatibility between the two is achieved.

[0043] <Hot melt sheet> The hot melt sheet is a sheet-shaped product of a lump, which can be produced by melting the lump in a melting furnace and forming it into a sheet by any coating method.

[0044] The coating method is not particularly limited, but known methods can be used. Examples include the open wheel method, the closed gun method, and the direct coating method. When emphasis is placed on removability depending on the application, the open wheel method and the direct coating method are preferred. The thickness of the hot melt sheet varies depending on the application, but is generally in the range of 10 μm to 1000 μm.

[0045] The ball tack of the hot melt sheet is not particularly limited, but is preferably 4 or more for label applications such as food packaging, etc. A ball tack of 4 or more is preferred because sufficient adhesive strength can be obtained.

[0046] <Hot melt laminate> A hot melt laminate is a laminate in which a hot melt sheet and an adherend are arranged in this order. There are no particular limitations on the manufacturing method, but it can be obtained by (a) a method in which a hot melt is applied to the release-treated surface of a release-treated film to prepare a hot melt sheet with a release film, and then an adherend is laminated on the surface of the hot melt layer, (b) a method in which a hot melt is directly applied to the adherend, and then the release-treated surface of the release-treated film is laminated on the surface of the hot melt layer, or (c) a method in which the release film is peeled off from the laminate obtained by (a) or (b), and then an adherend is laminated on the surface of the hot melt layer.

[0047] (adherent) The adherend is not particularly limited, but plastic, nonwoven fabric, and paper can be suitably used. Examples of plastics include polyesters such as polyethylene terephthalate (PET) and polyethylene naphthalate (PEN), acrylic resins such as polymethyl methacrylate (PMMA), and other plastic materials such as polycarbonate, triacetyl cellulose, polysulfone, polyarylate, and polycycloolefin. Examples of nonwoven fabrics include nonwoven fabrics made of hydrophilic fibers such as cotton and rayon, and nonwoven fabrics made of synthetic resin fibers that have been subjected to a hydrophilic treatment. Examples of paper include Yupo paper, coated paper, wood-free paper, and cardboard. The adherends can be used alone or in combination of two or more.

[0048] There are no particular limitations on the uses of hot melt laminates, but examples include food labels, hygiene products such as diapers and sanitary products, and bonding materials used in computers, cameras, and medical equipment. . [Example]

[0049] Next, the present invention will be described in more detail with reference to examples, but the present invention is not limited to these. In the examples, unless otherwise specified, "parts" means "parts by mass," "%" means "% by mass," and "RH" means relative humidity. The blending amounts in the tables are in parts by mass. Blank spaces in the tables indicate that no ingredients were blended.

[0050] [Weight average molecular weight] The weight average molecular weight (Mw) was measured using a GPC "LC-GPC system" manufactured by Shimadzu Corporation. The weight average molecular weight (Mw) can be determined by conversion using polystyrene of known molecular weight as a standard substance. Device name: Shimadzu Corporation, LC-GPC system "Prominence" Columns: Four GMHXL columns manufactured by Tosoh Corporation and one HXL-H column manufactured by Tosoh Corporation were connected together. Mobile phase solvent: tetrahydrofuran Flow rate: 1.0ml / min Column temperature: 40℃

[0051] The abbreviations used in Tables 1 to 4 are as follows: [Styrene-based elastomer (A)] G1642: Kraton G1642 (Kraton Polymers, styrene content: 2%) 1% by mass, weight average molecular weight: 124,000) G1650: Kraton G1650 (Kraton Polymers, styrene content: 3%) 0% by mass, weight average molecular weight: 96,000) A1536: Kraton A1536 (Kraton Polymers, styrene content: 4%) 2% by mass, weight average molecular weight: 135,000) G1726: Kraton G1726 (Kraton Polymers, styrene content: 30% by mass, weight average molecular weight: 46,000)

[0052] [Process oil (B)] PW-90: Diana Process PW-90 (Idemitsu Kosan, paraffin-based process oil)

[0053] [Tackifier (C)] P-100: Alcon P-100 (Arakawa Chemical Co., Ltd., fully hydrogenated petroleum resin, softening point: 100°C) M-100: Alcon M-100 (Arakawa Chemical Co., Ltd., partially hydrogenated petroleum resin, softening point: 100°C) Haritack F (Harima Chemicals, hydrogenated rosin, acid value: 170 mg KOH / g, softening point: 80°C)

[0054] [wax] Sasol H1 (manufactured by Sasol Chemical Industries, Fischer-Tropsch wax, softening point: 112°C) Sasol C80 (manufactured by Sasol Chemical Industries, Fischer-Tropsch wax, softening point: 88°C)

[0055] [Other thermoplastic elastomers] LDPE: Low density polyurethane (melting peak temperature 107°C, density 0.919g / cm 3 ) EVA: Ethylene-vinyl acetate copolymer (vinyl acetate content 28% by mass)

[0056] [Other tackifiers] Petcol 120: Petcol 120 (manufactured by Tosoh Corporation, non-hydrogenated petroleum resin, softening point: 120°C)

[0057] Example 1 <Production of Resin Composition P-1> A stainless steel beaker equipped with a stirrer was charged with 30 parts of Sasol H1 wax and 20 parts of PW-90 as process oil (B), and heated to melt. Heating was performed carefully so that the contents would reach 130-150°C. After melting, the mixture was stirred to form a homogeneous molten liquid. While maintaining the temperature at 130-150°C and continuing to stir, 10 parts of G1642 as the styrene-based elastomer (A) were added to the molten mixture. After the addition was complete, the mixture was heated and stirred at 130-150°C until the G1642 was completely melted. Next, 40 parts of P-100 as a tackifier (C) were added to form a homogeneous molten mixture, which was then cooled to produce resin composition P-1.

[0058] <Production of Hot Melt Adhesive Q-1> Five parts of Sasol C80 wax and 40 parts of PW-90 process oil (B) were placed in a stainless steel beaker equipped with a stirrer and heated to melt. Heating was performed carefully to keep the contents at 130-150°C. After melting, the mixture was stirred to form a homogeneous molten liquid. While maintaining the temperature at 130-150°C and continuing to stir, 25 parts of G1726 (styrene elastomer (A)) were added to the molten mixture. After the addition was complete, the mixture was heated and stirred at 130-150°C until the G1726 was completely melted. Next, 30 parts of Haritack F (tackifier (C)) were added to form a homogeneous molten mixture, which was then cooled to produce hot melt adhesive Q-1. <Production of melt bag and lump 1> Next, resin composition P-1 was placed in a melt bag molding machine and set to form a melt bag with a film thickness of 200 μm at a temperature of 100° C. 500 g of hot melt adhesive Q-1 was extruded toward the melt film while heating, and the film was molded by enveloping it in water. After cooling in the water, aggregate 1 was obtained.

[0059] <Hot melt sheet manufacturing> The obtained lump 1 was melted for 1 hour in a melting furnace heated to 160°C and coated onto the release agent layer of a heavy release film so that the thickness of the sheet after formation was 25 µm to form a hot melt sheet. Next, the release agent layer of a light release film was laminated to this hot melt layer to obtain a hot melt sheet.

[0060] (Examples 2 to 20, Comparative Examples 1 and 2) Hot melt adhesives (Q-2 to 6) were produced in the same manner as in Example 1, except that the compositions and blending amounts (parts by mass) were changed to those shown in Table 1. Resin compositions (P-2 to 20, P'-1, 2) were produced in the same manner as in Example 1, except that the compositions and blending amounts (parts by mass) were changed to those shown in Tables 2 to 4. Subsequently, in the same manner as in Example 1, the hot melt was filled into a melting bag to obtain lumps and hot melt sheets of Examples 2 to 20 and Comparative Examples 1 and 2. In Tables 1 to 4, hot melt is abbreviated as HM, styrene elastomer as elastomer, process oil as oil, tackifier as TF, and wax as WAX.

[0061] [Table 1]

[0062] [Table 2]

[0063] [Table 3]

[0064] [Table 4]

[0065] <Ball tuck> The resulting hot melt sheet was prepared to a size of 25 mm wide and 250 mm long. The light-release film was peeled off from the hot melt sheet and it was fixed to an inclined plate at an angle of 30 degrees. The heavy-release film was peeled off to expose the adhesive side. A PET film for the runway was attached to the top, and a steel ball (1 / 32 to 32 / 32 inches) was rolled across the sample, which had a runway of 10 cm and an adhesive surface of 10 cm. The diameter number of the ball that stopped near the center of the adhesive surface was recorded.

[0066] <Ease of deformation> The ease of deformation (deformability) of the obtained mass was evaluated using a rubber hardness tester Type A (a durometer hardness tester manufactured by Shimadzu Corporation) and the evaluation criteria were as follows: [Evaluation criteria] ◎: Measurement scale is 20 points or less, excellent. 〇: Measurement scale is between 20 points and 30 points, good. △: Measurement scale is between 30 points and 40 points, no practical problems. ×: The measurement scale is over 40 points, which is problematic for practical use.

[0067] <Crush resistance> A release film was laid on a small piece of cardboard, and molten hot melt adhesive was poured onto it and allowed to cool and harden naturally to produce a flat-surfaced block of hot melt adhesive. A melting bag (10cm square, 200μm thick) was layered on top of the resulting block of hot melt adhesive, and then another melting bag (10cm square, 200μm thick) and block of hot melt adhesive were layered on top of that in that order, resulting in a block of hot melt adhesive / melting bag / / melting bag / block. A laminate of hot melt adhesive was prepared. A 10 kg weight was placed on the laminate, and it was stored at 40°C for 24 hours. After cooling, the melted bags were peeled apart by hand to evaluate their shatter resistance. The evaluation criteria were as follows: [Evaluation criteria] ◎: No peeling noise or peeling strength, excellent. Good: Slight peeling noise, peel strength, good. △: Blocking occurred, but the melted bag did not break when peeled off, and there was no problem in practical use. ×: Blocking occurred and the melted bag broke when peeled off, which is problematic in practical use.

[0068] <compatibility> A white melting bag was prepared by blending 1% by mass of titanium oxide with respect to the total mass of the melting bag, and this was used to prepare a white mass. When preparing a hot melt sheet from the obtained white mass, the compatibility of the white melting bag and the hot melt adhesive in the melting furnace was evaluated based on the whiteness unevenness of the hot melt sheet. The evaluation criteria are as follows: [Evaluation criteria] ◎: No color unevenness, excellent. 〇: Good, with some color unevenness in some areas. △: Although color unevenness was observed overall, there was no remaining melted part in the melting bag, and there was no problem in practical use. ×: Color unevenness is observed overall, and melted bags remain, which is problematic for practical use.

[0069] The results in Tables 2 to 4 show that the lumps of Examples 1 to 20 have excellent workability during packaging and transportation, such as crush resistance and ease of deformation, and the melting bags have excellent compatibility with the contents when used. On the other hand, the lumps of Comparative Examples 1 and 2 did not satisfy all of the above properties. [Explanation of symbols]

[0070] 1 melting bag 2. Hot melt adhesive

Claims

1. Contains a styrene-based elastomer (A) and a tackifier (C), A melt bag in which the tackifier (C) contains at least one of a fully hydrogenated petroleum resin and a partially hydrogenated petroleum resin.

2. 10. The melt bag of claim 1, having a softening point of 50°C or higher.

3. The melting bag according to claim 1 or 2, wherein the film thickness is 25 to 500 μm.

4. 3. The melt bag according to claim 1, wherein the styrene-based elastomer (A) has a weight average molecular weight of 300,000 or less.

5. 3. The melt bag according to claim 1 or 2, which is for packaging hot melt adhesives.

6. A mass of hot melt adhesive packed in a melt bag, the melt bag being the melt bag according to claim 1 or 2.

7. 7. The mass according to claim 6, wherein the difference between the softening point of the hot melt adhesive and the softening point of the melting bag is within 50°C.

8. A hot melt sheet, which is a sheet-shaped product of the mass according to claim 6.

9. The hot melt sheet according to claim 8, wherein a hot melt sheet having a thickness of 25 μm is fixed to an inclined plate with an inclination angle of 30 degrees, and a steel ball (1 / 32 to 32 / 32 inches) is rolled on the sample with a run-up of 10 cm and an adhesive surface of 10 cm, and the diameter number (ball tack) of the ball that stops near the center of the adhesive surface is 4 or more.

10. A hot melt laminate comprising the hot melt sheet according to claim 8 and an adherend arranged in this order.

Citation Information

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