foam molding

The composite resin composition with a specific filler and blowing agent ratio and layered structure addresses the mechanical weaknesses of general-purpose plastics, achieving lightweight and impact-resistant foamed molded articles with enhanced mechanical properties.

JP7825239B2Active Publication Date: 2026-03-06PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2024120713
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2026-03-06
Estimated Expiration
2039-02-08

AI Technical Summary

Technical Problem

General-purpose plastics lack sufficient mechanical strength and impact resistance, limiting their application in industrial products, while engineering plastics are expensive and environmentally unfriendly.

Method used

A composite resin composition comprising a base resin, 15% to 80% filler, 0.01% to 10% blowing agent, and an expansion ratio of 1.1 or more, with a layered structure of skin, core surface, and core inner layers to enhance mechanical properties and impact resistance.

Benefits of technology

The composition achieves high impact resistance and lightweight foamed molded articles with excellent appearance, utilizing a balanced filler distribution and controlled foaming to improve mechanical properties.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a foam molding that can achieve both of high elastic modulus and weight saving.SOLUTION: A foam molding has a base resin, 15 mass% or more and 80 mass% or less of filler, and 0.01 mass% or more and 10 mass% or less of a foaming agent, the foaming agent having a foaming ratio of 1.1 or more.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a composite resin composition that can produce a foamed molded article having excellent mechanical properties. [Background technology]

[0002] So-called "general-purpose plastics," such as polyethylene (PE), polypropylene (PP), polystyrene (PS), and polyvinyl chloride (PVC), are not only very inexpensive, but also easy to mold and are a fraction of the weight of metals or ceramics. For this reason, general-purpose plastics are often used as materials for a variety of everyday items, such as bags, various types of packaging, various containers, and sheets, as well as industrial parts such as automobile parts and electrical parts, and as materials for daily necessities and miscellaneous goods.

[0003] However, general-purpose plastics have drawbacks, such as insufficient mechanical strength, and therefore do not have the sufficient properties required for materials used in various industrial products, including mechanical products such as automobiles, and electrical, electronic, and information products, and their range of application is currently limited.

[0004] On the other hand, so-called "engineering plastics" such as polycarbonate, fluororesin, acrylic resin, and polyamide have excellent mechanical properties and are used in various industrial products, including automobiles and other machinery products, as well as electrical, electronic, and information products. However, engineering plastics have issues such as being expensive, the difficulty of monomer recycling, and a large environmental impact.

[0005] Therefore, there is a demand for significant improvements in the material properties (mechanical strength, etc.) of general-purpose plastics. A known technique for strengthening general-purpose plastics is to disperse fibrous fillers such as natural fibers, glass fibers, and carbon fibers in the resin of the general-purpose plastic to improve the mechanical strength of the plastic. Among these, organic fibrous fillers such as cellulose are attracting attention as reinforcing fibers because they are inexpensive and environmentally friendly when disposed of.

[0006] Furthermore, foamed molded articles have been proposed as plastics that are lightweight while still making use of the above-mentioned properties, and are produced by adding a foaming agent to a resin and foam-molding it.

[0007] For example, in Patent Document 1, a composite resin in which a low concentration of cellulose fibers is uniformly dispersed in a polyamide resin is foam-molded to improve the surface appearance and impact resistance. [Prior art documents] [Patent documents]

[0008] [Patent Document 1] Patent No. 6351574 Summary of the Invention [Problem to be solved by the invention]

[0009] However, although Patent Document 1 improves impact resistance by uniformly dispersing cellulose fibers, which are fibrous fillers, the content of cellulose fibers is low, so when resins such as general-purpose plastics are used, the impact resistance is insufficient.

[0010] The present invention is intended to solve the above-mentioned problems of the prior art, and has an object to provide a foamed molded article that is lightweight and has impact resistance. [Means for solving the problem]

[0011] In order to achieve the above object, the foam molded article according to the present invention comprises a base resin and 15% by mass or more and 80% by mass or less of a filler; 0.01% by mass or more and 10% by mass or less of a blowing agent; Including, The foaming agent has an expansion ratio of 1.1 or more. [Effects of the Invention]

[0012] As described above, the foam molded article according to the present invention can achieve both high impact resistance and light weight, and can also achieve an excellent appearance. [Brief explanation of the drawings]

[0013] [Figure 1] 1 is a schematic diagram illustrating a configuration of a foam molded article according to an embodiment of the present disclosure. [Figure 2] FIG. 2 is a schematic diagram illustrating a filler according to an embodiment. [Figure 3] 2 is a schematic diagram illustrating a skin layer, a core surface layer, and a core inner layer of the foam molded body of the embodiment. FIG. [Figure 4] FIG. 1 is a flow diagram of a method for producing a foam molded article according to an embodiment. [Figure 5] FIG. 10 is a diagram showing the results of an example and a comparative example according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0014] The foam molded article according to the first aspect comprises a base resin and 15% by mass or more and 80% by mass or less of a filler; 0.01% by mass or more and 10% by mass or less of a blowing agent; Including, The foaming agent has an expansion ratio of 1.1 or more.

[0015] A foamed molded article according to a second aspect is the foamed molded article according to the first aspect, A skin layer located on the surface; a core surface layer located inside the skin layer and having a filler mass concentration lower than that of the skin layer; a core inner layer located inside the core surface layer and having a filler mass concentration lower than that of the core surface layer; may have

[0016] The foamed molded article of the third aspect may be, in the second aspect, such that the ratio of the mass concentration of the filler in the skin layer to the mass concentration of the filler in the core inner layer is 1.05 or more, and the ratio of the mass concentration of the filler in the core surface layer to the mass concentration of the filler in the core inner layer is 1.02 or more.

[0017] The foam molded article according to a fourth aspect may be the foam molded article of the second or third aspect, wherein the cell diameter of the foaming agent contained in the core surface layer is smaller than the cell diameter of the foaming agent contained in the core inner layer.

[0018] The foamed molded article according to a fifth aspect may be the foamed molded article according to the second aspect, wherein the cell diameter of the foaming agent contained in the core inner layer is 40 μm to 80 μm or less, and the cell diameter of the foaming agent contained in the core surface layer is 90 μm to 500 μm or less.

[0019] A foam molded article according to a sixth aspect is any one of the first to fifth aspects, wherein the filler includes a filler having an aspect ratio of 2 or less and a filler having an aspect ratio of 10 or more.

[0020] A foam molded article according to a seventh aspect is the foam molded article according to the sixth aspect, wherein the filler has a higher proportion of fillers with an aspect ratio of 2 or less than the proportion of fillers with an aspect ratio of 10 or more.

[0021] The foamed molded article according to the eighth aspect may be the foamed molded article according to the seventh aspect, wherein the proportion of fillers having an aspect ratio of 2 or less among the fillers is 50% or more and 70% or less, and the proportion of fillers having an aspect ratio of 10 or more among the fillers is 1% or more and 10% or less.

[0022] Hereinafter, a foam molded article according to an embodiment of the present disclosure will be described with reference to the accompanying drawings. In the following description, the same components are denoted by the same reference numerals, and the description thereof will be omitted as appropriate.

[0023] (Embodiment) FIG. 1 is a schematic diagram showing the structure of a foam molded article 10 according to an embodiment. The foam molded article according to the present embodiment contains a base resin, 15% by mass or more and 80% by mass or less of a filler, and 0.01% by mass or more and 10% by mass or less of a foaming agent, which has an expansion ratio of 1.1 times or more. This foamed molded article contains a filler in a mass concentration within the above range, and the foaming ratio of the foaming agent is within the above range, so that high strength and light weight can be achieved.

[0024] The components that make up this foamed molded article will be described below.

[0025] <Main resin> In this embodiment, the base resin 1 is preferably a thermoplastic resin to ensure good moldability. Examples of thermoplastic resins include olefin resins (including cyclic olefin resins), styrene resins, (meth)acrylic resins, organic acid vinyl ester resins or derivatives thereof, vinyl ether resins, halogen-containing resins, polycarbonate resins, polyester resins, polyamide resins, thermoplastic polyurethane resins, polysulfone resins (e.g., polyethersulfone, polysulfone), polyphenylene ether resins (e.g., 2,6-xylenol polymers), cellulose derivatives (e.g., cellulose esters, cellulose carbamates, cellulose ethers), silicone resins (e.g., polydimethylsiloxane, polymethylphenylsiloxane), rubber or elastomer (e.g., diene rubbers such as polybutadiene and polyisoprene, styrene-butadiene copolymers, acrylonitrile-butadiene copolymers, acrylic rubbers, urethane rubbers, silicone rubbers, etc.). The above resins may be used alone or in combination. The base resin 1 is not limited to the above materials as long as they have thermoplastic properties.

[0026] Among these thermoplastic resins, the main resin 1 is preferably an olefin-based resin having a relatively low melting point. Examples of olefin-based resins include homopolymers of olefin-based monomers, copolymers of olefin-based monomers, and copolymers of olefin-based monomers with other copolymerizable monomers. Examples of olefin-based monomers include linear olefins (α-C2-20 olefins such as ethylene, propylene, 1-butene, isobutene, 1-pentene, 4-methyl-1-pentene, and 1-octene), and cyclic olefins. These olefin-based monomers may be used alone or in combination. Of the above olefin-based monomers, linear olefins such as ethylene and propylene are preferred. Other copolymerizable monomers include, for example, fatty acid vinyl esters such as vinyl acetate and vinyl propionate; (meth)acrylic monomers such as (meth)acrylic acid, alkyl (meth)acrylates, and glycidyl (meth)acrylate; unsaturated dicarboxylic acids or anhydrides such as maleic acid, fumaric acid, and maleic anhydride; vinyl esters of carboxylic acids (e.g., vinyl acetate and vinyl propionate); cyclic olefins such as norbornene and cyclopentadiene; and dienes such as butadiene and isoprene. These copolymerizable monomers may be used alone or in combination. Specific examples of olefin-based resins include copolymers of linear olefins (e.g., α-C2-4 olefins), such as polyethylene (e.g., low-density, medium-density, high-density, or linear low-density polyethylene), polypropylene, ethylene-propylene copolymers, and terpolymers such as ethylene-propylene-butene-1.

[0027] In this embodiment, the content of the base resin is preferably 10% by mass or more and 85% by mass or less. It is more preferably 15% by mass or more and 75% by mass or less, and even more preferably 20% by mass or more and 65% by mass or less. If the content of the base resin is less than 10% by mass, the flowability during pellet molding and foam molding will be poor, resulting in molding defects. On the other hand, if the content of the base resin exceeds 85% by mass, the effect of improving the strength of the foam molded article by adding a fibrous filler will not be obtained.

[0028] <Dispersant> Next, the dispersant will be described. In this embodiment, a dispersant is contained for the purpose of improving the adhesion between the fibrous filler 2 and the base resin 1, or the dispersibility of the fibrous filler 2 in the base resin 1. Examples of dispersants include various titanate-based coupling agents, silane coupling agents, unsaturated carboxylic acids, maleic acid, maleic anhydride, or modified polyolefins grafted with their anhydrides, fatty acids, fatty acid metal salts, and fatty acid esters. The silane coupling agents are preferably unsaturated hydrocarbon-based or epoxy-based. The surface of the dispersant may be modified by treating it with a thermosetting or thermoplastic polymer component.

[0029] In this embodiment, the content of the dispersant is preferably 0.01% by mass or more and 20% by mass or less, more preferably 0.1% by mass or more and 10% by mass or less, and even more preferably 0.5% by mass or more and 5% by mass or less. If the content of the dispersant is less than 0.01% by mass, poor dispersion occurs. On the other hand, if the content of the dispersant exceeds 20% by mass, the strength of the foamed molded article decreases. The dispersant is appropriately selected depending on the combination of the main resin 1 and the filler 2, and it may not be added if the combination does not require a dispersant.

[0030] <Fiber filler> Next, the fibrous filler 2 will be described. In this embodiment, the fibrous filler 2 (hereinafter sometimes simply referred to as "fiber") is used in a foam molded article formed using a composite resin composition primarily for the purposes of improving mechanical properties and dimensional stability by reducing the linear expansion coefficient. For this purpose, the fibrous filler 2 preferably has a higher elastic modulus than the base resin 1. Specific examples of the fibrous filler include carbon fiber, carbon nanotubes, pulp, cellulose, cellulose nanofiber, lignocellulose, lignocellulose nanofiber, basic magnesium sulfate fiber (magnesium oxysulfate fiber), potassium titanate fiber, aluminum borate fiber, calcium silicate fiber, calcium carbonate fiber, silicon carbide fiber, wollastonite, xonotlite, various metal fibers, natural fibers such as cotton, silk, wool, and hemp, jute fiber, recycled fibers such as rayon and cupra, semi-synthetic fibers such as acetate and promix, synthetic fibers such as polyester, polyacrylonitrile, polyamide, aramid, and polyolefin, and modified fibers chemically modified on the surface and ends of these fibers. Among these, carbon fibers and cellulose fibers are particularly preferred from the viewpoints of availability, high elastic modulus, and low linear expansion coefficient, and natural cellulose fibers are more preferred from the viewpoint of environmental friendliness.

[0031] In this embodiment, the content (mass concentration) of the fibrous filler is preferably 15% by mass or more and 85% by mass or less. It is more preferably 20% by mass or more and 80% by mass or less, and even more preferably 30% by mass or more and 70% by mass or less. If the content (mass concentration) of the fibrous filler is less than 15% by mass, the effect of adding the fibrous filler to improve the strength of the foamed molded article cannot be obtained. On the other hand, if the content (mass concentration) of the fibrous filler is more than 85% by mass, the fluidity during pellet molding and foam molding will be poor, resulting in molding defects.

[0032] FIG. 2 is a schematic diagram illustrating a filler according to an embodiment. The shape of the fibrous filler 2 will now be described. As shown in FIG. 2, the symbol L represents the length of the fibrous filler 2 (hereinafter, sometimes referred to as "fiber length"), and the symbol d represents the width of the fibrous filler 2 (hereinafter, sometimes referred to as "fiber diameter"). The fibrous filler 2 is preferably a mixed fiber of fibers 2A with a large aspect ratio (L / d) and fibers 2B with a small aspect ratio. The greater the amount of fibers 2A with a large aspect ratio, the higher the modulus of elasticity. The aspect ratio of the fibrous filler 2A is preferably 10 or more. However, the greater the amount of fibers with a large aspect ratio, the lower the impact resistance and the greater the amount of fiber aggregates, resulting in poor appearance. On the other hand, the greater the amount of fibers 2B with a small aspect ratio, the better the impact resistance, the fewer fiber aggregates, and the better the appearance. The aspect ratio of the fibrous filler 2B is preferably 2 or less. However, the greater the amount of fibers with a small aspect ratio, the lower the modulus of elasticity.

[0033] The relationship between aspect ratio and elastic modulus is described below. When stress is applied to a foamed molded body, if there are fibers with a large aspect ratio, the resin will stretch, but the highly rigid fibers will not stretch easily, so the foamed molded body will not distort. This improves the elastic modulus. On the other hand, if there are fibers with a small aspect ratio, the distortion suppression effect of the fibers will be weakened when stress is applied, causing the foamed molded body to distort and lower the elastic modulus.

[0034] This section explains the relationship between aspect ratio and impact resistance. When a foam molding is subjected to an impact load, if there are fibers with a large aspect ratio, the fibers cannot keep up with the expansion of the resin, causing cracks to form between the resin and the fibers, which then become the starting point for cracks to develop. On the other hand, in the case of fibers with a small aspect ratio, the fibers are fine and can keep up with the expansion of the resin when subjected to an impact load, making them less likely to crack and break.

[0035] This section describes the relationship between aspect ratio and appearance. By mixing fibers with large and small aspect ratios together, fibers with small aspect ratios are placed between the fibers with large aspect ratios, suppressing aggregation and improving appearance.

[0036] As described above, from the viewpoints of modulus of elasticity, impact resistance, and appearance, it is preferable that fibers 2A with a large aspect ratio and fibers 2B with a small aspect ratio are mixed in the foamed molded product. The relationship between the mixing ratios of each fiber to improve properties is calculated by simulation, and it is preferable that the proportion of each fiber in the fibrous filler 2 is 1% to 10% for fibers 2A with an aspect ratio of 10 or more and 50% to 70% for fibers 2B with an aspect ratio of 2 or less.

[0037] The proportion of other fibers having an aspect ratio of more than 2 and less than 10 is 20% or more and 49% or less.

[0038] Next, the characteristics of the fibrous filler 2 will be described. The types of the main resin 1 and the fibrous filler 2 are as described above. On the other hand, if the fibrous filler 2 is too soft relative to the main resin 1, i.e., if the elastic modulus is small, the composite resin composition will have a low overall elastic modulus, resulting in reduced strength. On the other hand, if the fibrous filler 2 is too hard relative to the main resin 1, i.e., if the elastic modulus is high, shock waves generated upon impact will not propagate but will be absorbed at the interface between the main resin 1 and the fibrous filler 2, making cracks and crazes more likely to occur near the interface, resulting in reduced impact strength. Therefore, in the relationship between the elastic moduli of the main resin 1 and the fibrous filler 2, it is preferable that the elastic modulus of the fibrous filler 2 be higher, and that the difference between them be as small as possible. The optimal relationship is calculated from simulation results, and it is preferable that the difference in elastic modulus between the main resin 1 and the fibrous filler 2 be within 20 GPa.

[0039] Furthermore, for the purpose of improving adhesion to the base resin 1 or dispersibility in the composite resin composition, the fibrous fillers 2 may be surface-treated with various titanate coupling agents, silane coupling agents, unsaturated carboxylic acids, maleic acid, maleic anhydride, or modified polyolefins grafted with maleic anhydrides, fatty acids, fatty acid metal salts, fatty acid esters, etc. Alternatively, the fibrous fillers 2 may be surface-treated with a thermosetting or thermoplastic polymer component.

[0040] <Foaming agent> Next, the blowing agent will be described. In this embodiment, the blowing agent is used to supply gas for forming bubbles, i.e., foam cells, during foam molding. Blowing agents are broadly classified into chemical blowing agents and physical blowing agents, but are not particularly limited. Examples of chemical blowing agents include organic chemical blowing agents such as ADCA (azodicarbonamide), DPT (N,N'-dinitropentamethylene trichloride), and OBSH (4,4'-oxybisbenzenesulfonylhydrazide), as well as inorganic chemical blowing agents such as bicarbonates (e.g., sodium bicarbonate), carbonates (e.g., sodium carbonate), and combinations of bicarbonates and organic acid salts (e.g., citrate). These chemical blowing agents may be used alone or in combination, and a blowing assistant (e.g., a urea compound, a zinc compound, etc.) may also be used. Examples of physical blowing agents include liquefied gases such as chlorofluorocarbons, hydrocarbon gases, nitrogen gas, and carbon dioxide gas, and supercritical fluids such as nitrogen and carbon dioxide.

[0041] In this embodiment, the content of the blowing agent is preferably 0.01% by mass or more and 15% by mass or less. It is more preferably 0.1% by mass or more and 10% by mass or less, and even more preferably 0.5% by mass or more and 5% by mass or less. If the blowing agent content is less than 0.01% by mass, the foam nuclei decrease, resulting in an increased foam cell diameter, which leads to greater density variation in the foamed molded article and a deterioration in appearance. On the other hand, if the blowing agent content exceeds 15% by mass, the strength of the foamed molded article decreases.

[0042] Here, we will describe the relationship between the structure of a foamed molded article and its impact resistance. If the elastic modulus of the surface layer of a foamed molded article is high, the rigidity of the foamed molded article as a whole increases, and when an impact load is applied to the foamed molded article, the impact can be absorbed inside the foamed molded article, improving its impact resistance.

[0043] The relationship between the structure of foamed molded products and their appearance will be described below. The absence of foam cells on the surface of foamed molded products prevents the deterioration of surface roughness caused by foam cells, improving their appearance.

[0044] As described above, from the viewpoints of impact resistance and appearance, the foamed molded article preferably has a layer structure in which the surface layer has a high elastic modulus, no foam cells 3 are present, the interior of the foamed molded article can absorb impact, and the weight can be reduced.

[0045] FIG. 3 is a schematic diagram illustrating the skin layer 4, the core surface layer 5, and the core inner layer 6 of the foam molded article 10 according to the embodiment. From the above, as shown in Fig. 3, the foam molded article 10 in this embodiment is composed of, from the surface layer of the foam molded article, a skin layer 4, a core surface layer 5, a core inner layer 6, a core surface layer 5, and a skin layer 4. Here, layers with the same name have the same characteristics, and the layer thickness of the skin layer 4 and the core surface layer 5 will be described as the combined thickness of the two layers.

[0046] <Skin layer> The skin layer 4 is a layer that does not have foam cells 3, and the mass concentration ratio of the amount of fibrous filler 2 between the skin layer 4 and the core inner layer 6 (amount of fibrous filler in the skin layer / amount of fibrous filler in the core inner layer) is preferably 1.05 or more and 1.6 or less. The thickness of the skin layer 4 is preferably the ratio to the thickness of the foamed molded article (skin layer thickness d s / Thickness of foam molding d a ) is preferably 0.01 or more and 0.5 or less.

[0047] If the skin layer 4 contains foam cells 3, the appearance will be poor and the elastic modulus of the surface will be insufficient, resulting in reduced impact resistance. If the mass concentration ratio of the amount of fibrous filler 2 in the skin layer 4 to the core inner layer 6 is less than 1.05, the elastic modulus of the surface of the foamed molded article will be insufficient, resulting in reduced impact resistance. If the mass concentration ratio of the amount of fibrous filler 2 in the skin layer 4 to the core inner layer 6 exceeds 1.6, the difference in strength between the layers of the foamed molded article will be large, preventing the shock waves generated upon impact from being followed, making it more susceptible to cracks and reducing impact resistance.

[0048] The thickness of the skin layer 4 is determined by the ratio of the thickness of the foamed molded body (skin layer thickness d s / Thickness of foam molding d aIf the value of (R) is less than 0.01, the surface elastic modulus is insufficient and impact resistance is reduced, while if it exceeds 0.5, the overall density is affected, making it impossible to achieve weight reduction.

[0049] <Core surface> Next, the core surface layer 5 will be described. The core surface layer 5 is a layer having foam cells 3, and the mass concentration ratio of the amount of fibrous filler 2 between the core surface layer 5 and the core inner layer 6 (amount of fibrous filler in the skin layer / amount of fibrous filler in the core inner layer) is 1.02 or more and 1.5 or less, and the ratio of the thickness of the core surface layer 5 to the thickness of the foamed molded body (core surface layer thickness d f / Thickness of foam molding d a ) is preferably 0.01 or more and 0.5 or less, and the diameter of the foam cells 3 in the core surface layer 5 is preferably 80 μm or less. The core surface layer 5 is an intermediate layer between the skin layer 4 and the core inner layer 6, and reduces the difference in strength between the skin layer 4 and the core inner layer 6, improving impact resistance. Therefore, the core surface layer 5 preferably has a strength intermediate between that of the skin layer 4 and the core inner layer 6. If the foam cell diameter of the core surface layer 5 exceeds 80 μm, the difference in strength with the skin layer 4 becomes large in some parts, preventing shock waves generated upon impact from being followed, making it more likely for cracks to occur, and reducing impact resistance. If the mass concentration ratio of the amount of fibrous filler 2 in the core surface layer 5 to that in the core inner layer 6 is less than 1.02, the elastic modulus of the surface of the foamed molded article will be insufficient, reducing impact resistance. If the mass concentration ratio of the amount of fibrous filler 2 between the core surface layer 5 and the core inner layer 6 exceeds 1.5, the difference in strength between the molded body layers will become large, and the shock waves generated upon impact will not be followed, making it more likely for cracks to occur and reducing impact resistance.

[0050] The thickness of the core surface layer 5 is the ratio of the thickness of the foamed molded body (core surface layer thickness d f / Thickness of foam molding d a If the value of (R) is less than 0.01, the surface elastic modulus is insufficient and impact resistance is reduced, while if it exceeds 0.5, the overall density is affected, making it impossible to achieve weight reduction.

[0051] <Core inner layer> Next, the core inner layer 6 in this embodiment will be described. The core inner layer 6 is a layer having foam cells 3, and the foam cell diameter in the core inner layer 6 is preferably 500 μm or less. If the cell diameter of the core inner layer 6 exceeds 500 μm, cracks and the like are likely to occur starting from the areas with large foam cell diameters, reducing impact resistance.

[0052] <Method of manufacturing foam molded article> Next, a method for producing a foam molded article will be described. Figure 4 is a flow diagram illustrating an example of a process for producing a foam molded article according to this embodiment. (1) First, the base resin, fibrous filler, and, if necessary, dispersant are placed in a melt-kneading processing device and melt-kneaded within the device. This melts the base resin, and the fibrous filler and dispersant are dispersed into the molten base resin. At the same time, the shearing action of the device promotes defibration of fibrous filler agglomerates, allowing the fibrous filler to be finely dispersed within the base resin.

[0053] Conventionally, fibrous fillers have been used in which the fibers have been defibrated in advance through pretreatment such as wet dispersion. However, when fibrous fillers are defibrated in advance in the solvent used in wet dispersion, they are more easily defibrated than when defibrated in a molten base resin, making it difficult to defibrate only the ends, and in some cases the entire fibrous filler ends up in a defibrated state. In addition, adding pretreatment increases the number of processes, which reduces productivity, which is an issue.

[0054] In contrast, in the manufacturing process for foamed molded articles in this embodiment, a pretreatment by wet dispersion for the purpose of defibrating and modifying the fibrous filler is not performed, and instead, a melt-kneading treatment (all-dry method) is performed together with a base resin, a dispersant, etc. In this method, by not performing a wet dispersion treatment of the fibrous filler, it is possible to partially defibrate only the ends of the fibrous filler as described above, and the number of steps is reduced, thereby improving productivity.

[0055] To produce the composite resin composition of the present embodiment using an all-dry method, it is preferable to apply high shear stress during kneading, and specific kneading techniques include a single-screw kneader, a twin-screw kneader, a roll kneader, and a Banbury mixer. From the viewpoint of being able to easily apply high shear and being highly suitable for mass production, a continuous twin-screw kneader and a continuous roll kneader are particularly preferable. However, kneading techniques other than those mentioned above may also be used as long as they are capable of applying high shear stress.

[0056] (2) The composite resin composition extruded from the melt kneading device is cut into pellets using a pelletizer or other cutting process. Pelletization methods include in-air hot cutting, underwater hot cutting, and strand cutting, which are carried out immediately after the resin is melted. Alternatively, a crushing method is used in which a molded body or sheet is first formed and then crushed and cut.

[0057] (3) When a chemical foaming agent is used, the pellets and the chemical foaming agent are dry-blended before injection foam molding, followed by injection foam molding to produce an injection-molded foam article. When a physical foaming agent is used, the pellets are placed in an injection foam molding machine, melted, and then the physical foaming agent is injected, followed by injection foam molding to produce an injection-molded foam article. Hereinafter, examples and comparative examples of the experiments conducted by the present inventors will be described.

[0058] Example 1 A pulp-dispersed polypropylene composite foam molding was produced by the following production method. Softwood pulp (product name: NBKP Celgar, manufactured by Mitsubishi Paper Mills, Ltd.) was used as the starting material for the fibrous filler. This softwood pulp was pulverized in a grinder to obtain a mixture of fibrous fillers with different aspect ratios. The aspect ratios were adjusted during the grinding process. Polypropylene (product name: J108M, manufactured by Prime Polymer Co., Ltd.) as the base resin, the above fibrous filler, and maleic anhydride (product name: UMEX, manufactured by Sanyo Chemical Industries, Ltd.) as a dispersant were weighed out in a weight ratio of 42:50:5 and dry-blended. The mixture was then melt-kneaded and dispersed in a twin-screw kneader (KRC Kneader, manufactured by Kurimoto Iron Works, Ltd.). The molten resin was hot-cut to produce pulp-dispersed polypropylene pellets.

[0059] The pulp-dispersed polypropylene pellets and the blowing agent Polythrene (Eiwa Chemical Industry Co., Ltd.) were weighed and dry-blended at a weight ratio of 97:3. Foam-molded specimens were then fabricated using the core-back method in an injection foam molding machine (Japan Steel Works, Ltd., Model 180AD) with an expansion ratio of 1.6x. The specimen fabrication conditions were a resin temperature of 190°C, a mold temperature of 40°C, an injection speed of 100 mm / s, and a holding pressure of 60 MPa. The layer structure of each specimen was adjusted based on the injection foaming process and material composition. The pellets and blowing agent were fed into the molding machine screw via a hopper. The penetration rate during this process was measured by the amount of pellet loss per hour, and was confirmed to be consistent. The specimen shape was varied depending on the evaluation items described below. Size 1 dumbbells were fabricated for elastic modulus measurement, and 60 mm square, 1.6 mm thick foam-molded specimens were fabricated for drop impact testing and appearance confirmation. In order to evaluate the expansion ratio, a composite resin molding was also prepared from the above flat plate that had not been foam-molded. The obtained pulp-dispersed polypropylene composite foam molding test pieces were evaluated by the following methods.

[0060] (Expansion ratio) The expansion ratio was measured from the ratio of the apparent density of the obtained flat-shaped foamed molded specimen to that of the unfoamed molded specimen. The apparent density was evaluated by measuring the molded body dimensions with a vernier caliper to calculate the volume, and then measuring the weight with a precision balance to calculate the apparent density. The expansion ratio was evaluated to be 1.61 times.

[0061] (Foam cell diameter) The cross section of the obtained pulp-dispersed polypropylene composite foam molding was exposed by CP treatment, and the foam cell diameter was observed by SEM. Approximately 10 representative foam cells in the core surface layer and core inner layer were measured, and the foam cell diameter of the core surface layer was 50 μm at maximum, and the foam cell diameter of the core inner layer was 250 μm.

[0062] (pulp amount) The cross section of the obtained pulp-dispersed polypropylene composite foam molding was exposed by CP treatment, and the chromaticity was measured by infrared spectroscopy at 3400 cm -1 The peak strength of the core was evaluated. The ratio of the skin layer to the core inner layer was 1.2. The ratio of the core surface layer to the core inner layer was 1.15.

[0063] (fiber aspect ratio) The resulting pulp-dispersed polypropylene pellets were immersed in xylene to dissolve the polypropylene, and the shape of the remaining pulp fibers was observed using SEM. Measurements were taken at five locations on approximately 50 representative fibers, and the proportion of fibers with an aspect ratio of 10 or greater was 5-10%, while the proportion of fibers with an aspect ratio of 2 or less was 50-60%.

[0064] (Elastic modulus of foam molded body) A tensile test was carried out using the obtained No. 1 dumbbell-shaped test piece. Here, the elastic modulus was evaluated as follows: if the value was less than 1.6 GPa, it was marked x; if it was 1.6 GPa or more but less than 2.0 GPa, it was marked ◯; and if it was 2.0 GPa or more, it was marked ⊚. The elastic modulus of the test piece was 2.5 GPa, and it was rated ⊚.

[0065] (Drop test results for foam molded products) A drop impact test was carried out using the obtained flat plate-shaped test piece. Specifically, a weight weighing 250 g was dropped from a height of 80 cm onto the plate surface of the test piece, and it was confirmed whether cracks occurred. In this evaluation method, a score of ◯ was given for no cracks observed, a score of △ was given for cracks observed only on the surface and the length of the cracks was less than 10 mm, and an score of × was given for cracks that penetrated the surface or were 10 mm or longer. No cracks were observed in this test piece, and it was evaluated as ◯.

[0066] (weight reduction rate) The specific rigidity was calculated from the apparent density and elastic modulus results obtained when calculating the expansion ratio, and the weight reduction rate was calculated from the ratio to the specific rigidity of polypropylene alone. Here, the weight reduction rate was evaluated as follows: a value of less than 15% was marked x, a value of 15% or more but less than 20% was marked ◯, and a value of 20% or more was marked ⊚. The calculated weight reduction rate was 32%, which was marked ⊚.

[0067] (Appearance of foam molded product) A sensory evaluation was carried out on the foamed molded article to see whether aggregates of fibers were visible as white dots or traces of air bubbles. Foamed molded articles with no white dots or traces of air bubbles were rated as ◯, and foamed molded articles with and without traces of white dots or bubbles were rated as △.

[0068] Example 2 In Example 2, polypropylene, cotton-like softwood pulp, and maleic anhydride were weighed out in a weight ratio of 62:30:5 and dry-blended, and the target expansion ratio was changed to 1.8 times. Pulp-dispersed polypropylene pellets and foamed molded articles were produced under the same material and process conditions as in Example 1. Evaluations similar to those in Example 1 were also carried out.

[0069] Example 3 In Example 3, polypropylene, cotton-like softwood pulp, and maleic anhydride were weighed out in a weight ratio of 22:70:5 and dry-blended, the target expansion ratio was changed to 1.3 times, and pulp-dispersed polypropylene pellets and polystyrene were weighed out in a weight ratio of 99:1, and the other material conditions and process conditions were the same as in Example 1 to produce pulp-dispersed polypropylene pellets and foamed molded articles. Evaluations similar to those in Example 1 were also carried out.

[0070] Example 4 In Example 4, the pulp was crushed for a longer time, but the other material and process conditions were the same as in Example 1 to produce pulp-dispersed polypropylene pellets and foamed molded articles. Evaluations similar to those in Example 1 were also carried out.

[0071] Example 5 In Example 5, the pulp crushing time was shortened, and the other material conditions and process conditions were the same as in Example 1 to produce pulp-dispersed polypropylene pellets and foamed molded articles. Evaluations similar to those in Example 1 were also carried out.

[0072] (Comparative Example 1) In Comparative Example 1, polypropylene, cotton-like softwood pulp, and maleic anhydride were weighed out in a weight ratio of 82:10:5 and dry-blended, and the target expansion ratio was changed to 1.6 times. Pulp-dispersed polypropylene pellets and foamed molded articles were produced under the same material and process conditions as in Example 1. Evaluations similar to those in Example 1 were also carried out.

[0073] (Comparative Example 2) In Comparative Example 2, polypropylene, cotton-like softwood pulp, and maleic anhydride were weighed out in a weight ratio of 22:70:5 and dry-blended, the target expansion ratio was changed to 1.6 times, and pulp-dispersed polypropylene pellets and polystyrene were weighed out in a weight ratio of 99.995:0.005, and the other material conditions and process conditions were the same as in Example 1 to produce pulp-dispersed polypropylene pellets and an expansion molded article. Evaluations similar to those in Example 1 were also carried out.

[0074] (Comparative Example 3) In Comparative Example 3, polypropylene, cotton-like softwood pulp, and maleic anhydride were weighed out in a weight ratio of 22:70:5 and dry-blended, and the target expansion ratio was changed to 1.05. The other material conditions and process conditions were the same as in Example 1, and pulp-dispersed polypropylene pellets and foamed molded articles were produced. Evaluations similar to those in Example 1 were also carried out. The measurement results for each of Examples 1 to 5 and Comparative Examples 1 to 3 are shown in FIG.

[0075] As is clear from Figure 5, Example 2, in which the amount of fibrous filler was reduced and the expansion ratio was increased, resulted in a slightly lower elastic modulus. However, the effects of the skin layer and core surface layer prevented a decrease in impact resistance. Conversely, Example 3, in which the amount of fibrous filler was increased and the expansion ratio was reduced, resulted in a slightly lower weight reduction. However, because fibrous fillers with different aspect ratios were mixed and the skin layer did not have foam cells, a decrease in appearance was prevented. Example 4, in which the amount of fibrous filler with an aspect ratio of 10 was reduced, showed a slightly lower elastic modulus, but this was not a problem. It was confirmed that a foamed molded article that combines high strength and light weight can be obtained when it contains 10 to 85% by mass of base resin, 15 to 85% by mass of filler, 0.01 to 20% by mass of dispersant, and 0.01 to 15% by mass of foaming agent, and has an expansion ratio of 1.1 or more.

[0076] In Comparative Example 1, in which the amount of fibrous filler was reduced to 10%, the modulus of elasticity was insufficient due to the small amount of fibrous filler. In addition, because the fibrous filler also acted as a foam nucleating agent, the diameter of the foam cells 3 also increased. This resulted in a decrease in impact resistance and the occurrence of cracks during the impact test.

[0077] In Example 5, in which the proportion of fibers with an aspect ratio of 10 or more in the fibrous filler was increased, the elastic modulus increased slightly, but the impact resistance decreased, resulting in cracks occurring in the impact test. Furthermore, aggregation of fibers with large aspect ratios caused white spots to appear in the foamed molded article.

[0078] In Comparative Example 2, in which the amount of foaming agent was reduced to 0.005%, the expansion ratio was lower than the target expansion ratio. In addition, because the amount of foaming agent that serves as the foam nucleus was very small, the foam cell diameter became large, and although there was no problem with the elastic modulus, it became non-uniform, reducing impact resistance and resulting in cracks occurring in the impact test.

[0079] In Comparative Example 3, in which the expansion ratio was reduced to 1.05, the elastic modulus and impact resistance were not a problem due to the small expansion ratio, but the weight could not be reduced.

[0080] From the above evaluation, it was found that high strength and lightweight foam moldings can be achieved by using a composite resin composition containing 10% to 85% by mass of base resin, 15% to 85% by mass of filler, and 0.01% to 15% by mass of foaming agent, with the foaming agent having an expansion ratio of 1.1 or more. Furthermore, it was found that foam moldings with good appearance and no fiber aggregates can be obtained if the proportion of fibers with an aspect ratio of 10 or more is 1% to 10% and the proportion of fibers with an aspect ratio of 2 or less is 50% to 70% of the added fiber filler.

[0081] In addition, the present disclosure includes appropriate combinations of any of the various embodiments and / or examples described above, and can achieve the effects of each embodiment and / or example. [Industrial Applicability]

[0082] The foam molded article of the present invention can provide a foam molded article with superior mechanical strength compared to conventional general-purpose resins. Because the properties of the base resin can be improved by the present invention, the foam molded article can be used as a substitute for engineering plastics or metal materials. This can significantly reduce the manufacturing costs of various industrial products or household goods made of engineering plastics or metals. Furthermore, the foam molded article can be used for home appliance housings, building materials, and automotive components. [Explanation of symbols]

[0083] 1. Base resin 2. Fibrous filler 3. Foam Cell 4 Skin Layer 5 Core surface 6 Core inner layer 10 Foam molded body

Claims

1. The main resin is a thermoplastic resin, a mixture of fibrous fillers having different aspect ratios, which are natural cellulose fibers, as a filler of 15% by mass or more and 85% by mass or less; 0.01% by mass or more and 15% by mass or less of a blowing agent; A foamed molded article comprising: the blowing agent is a chemical blowing agent; The expansion ratio of the foamed molded article is 1.1 times or more, and the filler includes a filler having an aspect ratio of 2 or less and a filler having an aspect ratio of 10 or more; A foamed molded article, wherein the proportion of fillers having an aspect ratio of 2 or less among the fillers is 50% or more and 70% or less, and the proportion of fillers having an aspect ratio of 10 or more among the fillers is 1% or more and 10% or less.

2. The foamed molded article according to claim 1 , wherein the chemical foaming agent is an organic chemical foaming agent.

3. The foamed molded body is A skin layer located on the surface; a core surface layer located inside the skin layer and having a filler mass concentration lower than that of the skin layer; a core inner layer located inside the core surface layer and having a filler mass concentration lower than that of the core surface layer; The foamed molded article according to claim 1 or 2, having

4. 4. The foam molded article according to claim 3, wherein the ratio of the mass concentration of the filler in the skin layer to the mass concentration of the filler in the core inner layer is 1.05 or more, and the ratio of the mass concentration of the filler in the core surface layer to the mass concentration of the filler in the core inner layer is 1.02 or more.

5. The foam molded article according to claim 3 or 4, wherein the cell diameter of the foaming agent contained in the core surface layer is smaller than the cell diameter of the foaming agent contained in the core inner layer.

6. The foamed molded article according to claim 5, wherein the cell diameter of the blowing agent contained in the core surface layer is 40 μm to 80 μm or less, and the cell diameter of the blowing agent contained in the core inner layer is 90 μm to 500 μm or less.

Citation Information

Patent Citations

  • Parking area

    JP1988051574A

  • Fiber reinforced foamable resin composition and foamed molding therefrom

    JP2007056176A

  • Foam containing modified microfibrillated plant fibers

    JP2013185085A

  • Cellulose-containing resin composition

    JP2019014864A

  • Expanded material

    JP2019199522A