Polypropylene resin foam particles
Polypropylene resin beads with controlled melting and crystallization temperature differences and a higher fatty acid amide coating layer address mold deposit issues, enhancing moldability and productivity.
Patent Information
- Application Number
- JP2021168308
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-13
- Publication Date
- 2025-12-24
- Estimated Expiration
- 2041-10-13
AI Technical Summary
Existing polypropylene resin beads with a propylene copolymer coating layer tend to accumulate deposits on the mold during in-mold molding, especially in complex shapes with varying thickness, affecting the surface properties and productivity of expanded bead molded products.
The use of polypropylene resin beads with a core layer and a coating layer, where the melting points and crystallization temperatures of the resins differ by specific ranges, combined with a higher fatty acid amide in the coating layer, reduces adhesion to the mold and suppresses deposit accumulation.
The solution allows for wide-ranging moldability and suppresses mold deposit accumulation, maintaining product surface properties and improving long-term production efficiency.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to expanded polypropylene resin particles. [Background technology]
[0002] Expanded bead moldings obtained by molding expanded polypropylene resin beads in a mold have excellent chemical resistance, impact resistance, compression strain recovery, etc., and are therefore used in a wide range of fields, including as shock absorbers, heat insulating materials, various packaging materials, food transport containers, packaging or cushioning materials for electric and electronic parts, vehicle components such as automobile bumpers, building components such as residential insulation, and miscellaneous goods.
[0003] The polypropylene resin foamed bead molded article is produced, for example, by an in-mold molding method in which expanded polypropylene resin beads are filled into a mold and heated with a heating medium such as steam to cause secondary expansion of the expanded beads and to fuse the expanded beads together, thereby molding the expanded beads into a desired shape.
[0004] Furthermore, in order to enhance the fusion between the expanded beads during in-mold molding and improve in-mold moldability at relatively low molding pressures, expanded polypropylene resin beads may be used that have a multilayer structure, for example, having a foamed core layer with a polypropylene resin as the base resin and a coating layer in which the foamed core layer is coated with a resin having a melting point lower than that of the polypropylene resin that constitutes the foamed core layer (see, for example, Patent Document 1). [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-16914 Summary of the Invention [Problem to be solved by the invention]
[0006] In the expanded polypropylene resin beads having a coating layer as described in Patent Document 1, a propylene copolymer containing a propylene component, an ethylene component, and a butene component is sometimes used as the resin constituting the coating layer. When such a propylene copolymer is used, it is possible to obtain a molded product with good mechanical properties while improving the fusion between the expanded beads during in-mold molding. However, when multiple cycles of in-mold molding are performed, deposits from the expanded beads tend to accumulate, for example, in areas of the mold that are easily heated. This accumulation of deposits is particularly likely to occur when in-mold molding is performed using a mold with a complex shape in which the thickness varies depending on the molding location. The accumulation of deposits on the mold can adversely affect the surface properties of the expanded bead molded product, potentially reducing productivity in the long-term production of expanded bead molded products.
[0007] Therefore, an object of the present invention is to provide expanded polypropylene resin beads that have a wide range of moldability in in-mold molding and that suppress the accumulation of deposits on the molding die even when expanded bead moldings are produced over a long period of time. [Means for solving the problem]
[0008] The present inventors have found that the above problems can be solved by employing the following configuration, and have thus completed the present invention. That is, the present invention is as follows. <1> A polypropylene-based resin expanded particle having a foamed core layer made of a polypropylene-based resin (a) as a base resin and a coating layer made of a polypropylene-based resin (b) as a base resin that covers the core layer, wherein the polypropylene-based resin (a) has a melting point Tm a is 135°C or more and 155°C or less, the polypropylene-based resin (b) is mainly composed of a propylene-based copolymer containing a propylene component, an ethylene component, and a butene component, and the melting point Tm a and the melting point Tm of the polypropylene resin (b). b The difference between [Tm a -Tm b] is 1°C or more and 30°C or less, and the melting point Tm b and the crystallization temperature Tc of the polypropylene resin (b). b The difference between [Tm b -Tc b ] is 40°C or less, and the coating layer contains a higher fatty acid amide. <2> The crystallization temperature Tc of the polypropylene resin (b) b is 95°C or higher and 110°C or lower, <1> The expanded polypropylene resin particles according to claim 1. <3> The content of the higher fatty acid amide in the coating layer is 0.02% by mass or more and 2% by mass or less. <1> or <2> The expanded polypropylene resin particles according to claim 1. <4> The content of higher fatty acid amide in the coating layer is 0.2% by mass or more and 2% by mass or less. <1> or <2> The expanded polypropylene resin particles according to claim 1. <5> The higher fatty acid amide includes erucic acid amide. <1> ~ <4> 10. The expanded polypropylene resin particles according to any one of the above. <6> The crystallization temperature Tc of the polypropylene resin (a) a and the crystallization temperature Tc of the polypropylene resin (b). b The difference between [Tc a -Tc b ] is between -10℃ and 3℃, <1> ~ <5> 10. The expanded polypropylene resin particles according to any one of the above. [Effects of the Invention]
[0009] According to the present invention, it is possible to provide expanded polypropylene resin beads that can be molded in a wide range of in-mold molding processes and that suppress the accumulation of deposits on the molding die even when expanded bead moldings are produced over a long period of time. [Brief explanation of the drawings]
[0010] [Figure 1] FIG. 1 is a diagram illustrating a DSC curve of a polypropylene-based resin during second heating. [Figure 2]FIG. 1 is a diagram illustrating a DSC curve of expanded beads at the first heating. DETAILED DESCRIPTION OF THE INVENTION
[0011] [Polypropylene resin foam particles] The expanded polypropylene resin beads of the present invention (hereinafter also simply referred to as expanded beads) have an expanded core layer made of a polypropylene resin (a) as a base resin, and a coating layer made of a polypropylene resin (b) as a base resin that coats the core layer, and the expanded polypropylene resin beads have a melting point Tm a The polypropylene resin (b) is mainly composed of a propylene copolymer containing a propylene component, an ethylene component, and a butene component, and the melting point Tm a and the melting point Tm of polypropylene resin (b) b The difference between [Tm a -Tm b ] is 1°C or more and 30°C or less, and the melting point Tm b and the crystallization temperature Tc of polypropylene resin (b) b The difference between [Tm b -Tc b ] is 40° C. or less, and the coating layer contains a higher fatty acid amide. In this specification, polypropylene resin refers to a polymer in which the content of structural units derived from propylene is 50% by mass or more.
[0012] In the past, in expanded beads provided with a coating layer whose base resin was a propylene-based copolymer containing a propylene component, an ethylene component, and a butene component, resin derived from the coating layer of the expanded beads was prone to adhering to the molding die during in-mold molding, and this deposit was prone to accumulate on the molding die. In particular, when a molding die having a complex shape with varying thickness depending on the molding location is used, deposits tended to accumulate on the molding die in areas that are easily heated, such as thin-walled portions. Note that deposits accumulated on the molding die can be removed by cleaning the molding die or other removal procedures. However, increasing the frequency of such removal procedures is undesirable because it reduces productivity in the long-term production of expanded bead moldings. The expanded polypropylene resin particles of the present invention have a melting point Tm b and the crystallization temperature Tc of polypropylene resin (b) b The difference between [Tm b -Tc b ] is equal to or less than the above value, and the melting point Tm b and crystallization temperature Tc b The difference between the melting point Tm of the polypropylene resin (b) and the melting point Tm of the polypropylene resin (b) is relatively small, so that the resin constituting the coating layer is less likely to adhere to the molding die during molding inside the mold. b and crystallization temperature Tc b When the difference between the values is equal to or less than the above, when the expanded polypropylene resin beads filled in a mold are heated to fuse the expanded beads together to form an expanded polypropylene resin bead molded article (hereinafter also referred to as expanded bead molded article or molded article) in the mold, solidification of the polypropylene resin (b) proceeds more easily as the molded article cools from the time the heating for molding is completed until the molded article is removed from the mold, and the resin is less likely to adhere to the mold. In addition to the above, the expanded polypropylene resin beads of the present invention contain a higher fatty acid amide in the coating layer, which is thought to prevent the resin constituting the coating layer from adhering to the mold.
[0013] <Core layer> The expanded core layer of the polypropylene resin expanded beads has a polypropylene resin (a) as a base resin. For example, a polypropylene copolymer can be used as the polypropylene resin (a). Examples of polypropylene copolymers include copolymers of propylene with ethylene or an α-olefin having 4 or more carbon atoms, such as ethylene-propylene copolymer, propylene-butene copolymer, and ethylene-propylene-butene copolymer, as well as propylene-acrylic acid copolymer and propylene-maleic anhydride copolymer. These copolymers may be block copolymers, random copolymers, or graft copolymers. Furthermore, the polypropylene resin (a) may be a mixture of two or more polypropylene resins. From the viewpoint of easily obtaining expanded beads having an excellent balance between moldability in a mold and the physical properties of the resulting molded article, the polypropylene resin (a) is preferably a polypropylene resin containing an ethylene-propylene copolymer as a main component. In this case, the content of the ethylene-propylene copolymer in the polypropylene resin (a) is preferably 50% by mass or more, more preferably 60% by mass or more, and even more preferably 80% by mass or more.
[0014] (Polypropylene resin (a)) <Melting point Tm a ≫ Melting point Tm of polypropylene resin (a) a The melting point Tm of the polypropylene resin (a) is 135°C or higher, preferably 136°C or higher, from the viewpoint of improving the rigidity, heat resistance, etc. of the expanded bead molded article obtained by molding the expanded beads in a mold. a From the viewpoint of improving the moldability of the expanded beads in a mold at a relatively low molding pressure, the temperature is 155°C or lower, preferably 150°C or lower, more preferably 148°C or lower, and even more preferably 146°C or lower. Melting point Tm of polypropylene resin (a) a is calculated as follows: Based on JIS K 7121:1987, the test specimen is conditioned as follows: "(2) Measurement of melting temperature after a certain heat treatment" is adopted, and the conditioned test specimen is heated from 30°C to 200°C at a heating rate of 10°C / min. After reaching 200°C, the temperature is lowered from 200°C to 30°C at a rate of 10°C / min. After that, the specimen is heated for the second time from 30°C to 200°C at a rate of 10°C / min. A DSC curve (DSC curve at the time of the second heating) is obtained, and the apex temperature of the melting peak accompanying the melting of the resin on the DSC curve at the time of the second heating is determined as the melting point Tm of the polypropylene resin (a). a In addition, when multiple melting peaks appear on the DSC curve, the melting point Tm of the polypropylene resin (b) described later is b As in the measurement of (a), the apex temperature of the melting peak with the largest area is the melting point Tm of the polypropylene resin (a). a Adopted as.
[0015] <<Total heat of fusion Δh a ≫ Total heat of fusion of polypropylene resin (a) Δh a From the viewpoint of improving the mechanical properties of the resulting molded article, the total heat of fusion Δh of the polypropylene-based resin (a) is preferably 50 J / g or more, more preferably 60 J / g or more, and even more preferably 65 J / g or more. a From the viewpoint of improving the moldability of the expanded beads in a mold, the applied energy is preferably 120 J / g or less, more preferably 100 J / g or less, and even more preferably 80 J / g or less. Total heat of fusion of polypropylene resin (a) Δh a can be determined from a DSC curve obtained by subjecting polypropylene resin (a) to differential scanning calorimetry (DSC) in accordance with JIS K 7122-1987. Specifically, first, a DSC curve of polypropylene resin (a) at the second heating is obtained in the same manner as in the melting point measurement described above. The point at 80°C on the obtained DSC curve at the second heating is designated as α, and the point on the DSC curve corresponding to the melting end temperature is designated as β. The area enclosed by the DSC curve in the section between points α and β and the line segment (α-β) is measured, and this is defined as the total heat of fusion Δh of polypropylene resin (a). a Let's say.
[0016] ≪Crystallization temperature Tc a ≫ Crystallization temperature Tc of polypropylene resin (a) a is not particularly limited as long as it is within a range that can achieve the intended object of the present invention, but is generally 80°C or higher, more preferably 90°C or higher. a is generally 120°C or less, more preferably 115°C or less, and even more preferably 110°C or less. Crystallization temperature Tc of polypropylene resin (a) a is measured using a heat flux differential scanning calorimeter in accordance with JIS K 7121: 1987. When multiple crystallization peaks appear in a DSC curve, the peak temperature of the crystallization peak with the largest area is taken as the crystallization temperature.
[0017] <Flexural modulus> The flexural modulus of the polypropylene resin (a) is preferably 800 MPa or more, more preferably 900 MPa or more, from the viewpoint of achieving both mechanical strength and moldability of the expanded bead molding. From the same viewpoint, the flexural modulus of the polypropylene resin (a) is preferably 1500 MPa or less, more preferably 1300 MPa or less, and even more preferably 1200 MPa or less. The flexural modulus of the polypropylene-based resin (a) can be determined based on JIS K 7171:2016.
[0018] The polypropylene resin (a) may contain other polymers, such as resins other than propylene resins or elastomers, within the scope of not impairing the intended effects of the present invention. In such cases, the content of the other polymers in the polypropylene resin (a) is preferably 20% by mass or less, more preferably 10% by mass or less, even more preferably 5% by mass or less, and even more preferably 3% by mass or less, based on 100% by mass of the polypropylene resin (a). It is particularly preferred that the content of the other polymers in the polypropylene resin (a) is 0% by mass, i.e., that the polypropylene resin (a) consists solely of polypropylene resin as a polymer.
[0019] The core layer may contain additives such as cell regulators, flame retardants, flame retardant assistants, cell nucleating agents, antistatic agents, antioxidants, ultraviolet absorbers, light stabilizers, conductive materials, and colorants, as needed.
[0020] Preferably, the core layer contains carbon black. In this case, the expanded beads are colored black. From the viewpoint of imparting a good black color to the molded article while maintaining the moldability of the expanded beads, the content of carbon black in the expanded core layer is preferably 0.5% by mass or more and 5% by mass or less, more preferably 1% by mass or more and 4% by mass or less, and even more preferably 2% by mass or more and 3% by mass or less. Examples of carbon black that can be used include channel black, roller black, furnace black, thermal black, acetylene black, etc. Among these, furnace black is preferred as the carbon black used in the expanded beads because it has an excellent balance between dispersibility in polypropylene-based resins and material costs.
[0021] <Coating layer> The coating layer of the expanded polypropylene resin particles coats the foamed core layer. The coating layer may cover a portion of the foamed core layer, or may completely cover the entire outer surface of the foamed core layer. Specifically, the coating layer preferably covers 50% or more of the core layer, more preferably 70% or more, and even more preferably 80% or more. The coating layer may be in a foamed or non-foamed state as long as the intended object of the present invention can be achieved, but from the viewpoint of easily improving the appearance of the molded article, it is preferable that the coating layer be in a substantially non-foamed state. Note that the non-foamed state means that the coating layer does not have a cellular structure.
[0022] (Polypropylene resin (b)) In the expanded polypropylene resin particles, the coating layer has a polypropylene resin (b) as a base resin, which is mainly composed of a propylene copolymer containing a propylene component, an ethylene component, and a butene component. Specifically, the content of the propylene-based copolymer containing a propylene component, an ethylene component, and a butene component in the polypropylene-based resin (b) is 50% by mass or more, preferably 60% by mass or more, more preferably 80% by mass or more, and even more preferably 90% by mass or more. The polypropylene-based resin (b) may be a mixture of two or more ethylene-propylene-butene copolymers, or a mixture of an ethylene-propylene-butene copolymer and a propylene-based resin other than the ethylene-propylene-butene copolymer. It is more preferable to use an ethylene-propylene-butene random copolymer as the propylene-based copolymer containing a propylene component, an ethylene component, and a butene component. The polypropylene-based resin (b), which is mainly composed of a propylene-based copolymer containing a propylene component, an ethylene component, and a butene component, has a relatively low melting point while tending to have excellent mechanical strength such as flexural modulus, etc. Therefore, by using the polypropylene-based resin (b) as the base resin of the coating layer, it is possible to obtain an expanded bead molding that has excellent fusion properties during in-mold molding and also excellent mechanical strength.
[0023] From the viewpoint of easily and stably exhibiting desired physical properties, the content of the ethylene component in the propylene-based copolymer containing a propylene component, an ethylene component, and a butene component is preferably 2% by mass or more and 5% by mass or less. Furthermore, the content of the butene component in the propylene-based copolymer containing a propylene component, an ethylene component, and a butene component is preferably 3% by mass or more and 10% by mass or less, and more preferably 4% by mass or more and 6% by mass or less. The above contents are based on the total of the propylene component, the ethylene component, and the butene component being 100% by mass. The contents of the components derived from each monomer in the copolymer can be determined by IR spectroscopy, as described in the Examples, or the like. From the same viewpoint, in a propylene-based copolymer containing a propylene component, an ethylene component, and a butene component, the ratio of the butene component content to the ethylene component content [butene component content / ethylene component content] is preferably 0.5 or more and 4 or less, more preferably 0.8 or more and 3 or less, and even more preferably 1 or more and 2 or less.
[0024] <Melting point Tm a and melting point Tm b The difference between [Tm a -Tm b]≫ Melting point Tm of polypropylene resin (a) a and the melting point Tm of polypropylene resin (b) b The difference between [Tm a -Tm b From the viewpoint of enhancing the fusion property between the expanded beads and enhancing the moldability in the mold under low molding pressure conditions, the difference [Tm a -Tm b From the viewpoint of suppressing adhesion of the coating layer to the molding die, the temperature is 30°C or lower, preferably 27°C or lower, and more preferably 25°C or lower.
[0025] <Melting point Tm b ≫ Melting point Tm of polypropylene resin (b) b is the melting point Tm of polypropylene resin (a) a The difference between [Tm a -Tm b ] is not particularly limited as long as it is within the above range, but is 105°C or higher, preferably 110°C or higher, more preferably 115°C or higher, and even more preferably 120°C or higher. b is preferably 145°C or less, more preferably 140°C or less, even more preferably 130°C or less, and still more preferably 128°C or less. Melting point Tm of polypropylene resin (b) b is calculated as follows: Based on JIS K 7121:1987, the test specimen is conditioned as follows: "(2) Measurement of melting temperature after a certain heat treatment" is adopted, and the conditioned test specimen is heated from 30°C to 200°C at a heating rate of 10°C / min. After reaching 200°C, the temperature is lowered from 200°C to 30°C at a rate of 10°C / min. After that, the specimen is heated for the second time from 30°C to 200°C at a rate of 10°C / min. A DSC curve (DSC curve at the time of the second heating) is obtained, and the apex temperature of the melting peak accompanying the melting of the resin on the DSC curve at the time of the second heating is determined as the melting point Tm of the polypropylene resin (b). bWhen multiple melting peaks appear on the DSC curve, the apex temperature of the melting peak with the largest area is taken as the melting point Tm of the polypropylene resin (b). b The melting peak with the largest area can be determined by comparing the areas (heat of fusion) of each melting peak, distinguishing the melting peaks using the temperature of the valley of the DSC curve located between the peak temperatures of each melting peak. The valley temperature of the DSC curve can be determined by looking at the temperature at which the value on the vertical axis of the DSC differential curve (DDSC) becomes 0.
[0026] Double Peak From the viewpoint of stably obtaining expanded beads that can suppress adhesion of the coating layer to the molding die during in-mold molding, the polypropylene resin (b) preferably exhibits a melting peak having a first melting peak and a second melting peak that appears at a higher temperature than the first melting peak in a DSC curve obtained by heat flux differential scanning calorimetry (DSC) based on JIS K 7121:1987 during the second heating of the polypropylene resin (b). Here, "having a first melting peak and a second melting peak that appears at a higher temperature than the first melting peak" means that the first melting peak and the second melting peak that appears at a higher temperature than the first melting peak have different peak apex temperatures, and each melting peak has a heat of fusion of 10 J / g or more. The DSC curve during the second heating can be obtained by the same procedure as when determining the melting point of the polypropylene resin (b). The peak temperature Tm of the first melting peak can also be obtained by the same procedure as when determining the melting point of the polypropylene resin (b). b1 is the melting point Tm of polypropylene resin (b) b It is preferable that: FIG. 1 shows an example of a DSC curve obtained during the second heating in which a melting peak having a first melting peak and a second melting peak that appears at a higher temperature than the first melting peak appears. When melting peaks such as those shown in Figure 1 appear, the heat of fusion of each melting peak can be determined as follows. First, the point on the DSC curve at a temperature of 80°C is designated as α, and the point on the DSC curve corresponding to the melting end temperature is designated as β. Furthermore, a line L2 parallel to the vertical axis of the graph is drawn from point γ on the DSC curve, which corresponds to the valley between the low-temperature melting peak (first melting peak) P1 and the high-temperature melting peak (second melting peak) P2. The point at which this line L2 intersects with the line L1 connecting points α and β is designated as δ. Point γ on the DSC curve, which corresponds to the valley between the low-temperature melting peak P1 and the high-temperature melting peak P2, is the temperature at which the value on the vertical axis of the differential DSC curve (DDSC) around that temperature becomes 0, and point γ can be determined based on this temperature. The area (1) of the low-temperature melting peak P1 is the heat of fusion Δh1 of the first melting peak P1, and is calculated as the area surrounded by the DSC curve showing the low-temperature melting peak P1, the line segment (α-δ), and the line segment (γ-δ). The area (2) of the high-temperature melting peak P2 is the heat of fusion Δh2 of the second melting peak P2, and is calculated as the area surrounded by the DSC curve showing the high-temperature melting peak P2, the line segment (δ-β), and the line segment (γ-δ). In this specification, the first melting peak and the second melting peak appearing at a higher temperature than the first melting peak in the DSC curve of the polypropylene resin (b) upon the second heating may be collectively referred to as a double peak. The first melting peak and the second melting peak may partially overlap. When three or more melting peaks appear in the DSC curve of the polypropylene resin (b) upon second heating, the melting peak having the lowest peak temperature and a heat of fusion of 10 J / g or more is defined as the first melting peak, and the melting peak having the highest peak temperature and a heat of fusion of 10 J / g or more is defined as the second melting peak.
[0027] <<Tm, the peak temperature of the second melting peak b2 and the peak temperature of the first melting peak, Tm b1 The difference with When double peaks appear in the DSC curve of polypropylene resin (b), the peak temperature Tm of the second melting peak of polypropylene resin (b) b2 and the peak temperature of the first melting peak, Tm b1 The difference between [Tm b2 -Tm b1 ] is preferably 5°C or more, more preferably 8°C or more, and even more preferably 10°C or more, from the viewpoint of enhancing the fusion property between the expanded beads and easily suppressing adhesion of the coating layer to the molding die during molding in the mold. b2 -Tm b1 ] is preferably 20°C or lower, more preferably 17°C or lower, and even more preferably 15°C or lower.
[0028] <Melting point Tm a and the apex temperature of the second melting peak, Tm b2 The difference between [Tm a -Tm b2 ]≫ If double peaks appear in the DSC curve of polypropylene resin (b), the melting point Tm of polypropylene resin (a) a and the apex temperature Tm of the second melting peak of polypropylene resin (b) b2 The difference between [Tm a -Tm b2 ] is preferably 15°C or less, more preferably 13°C or less, and even more preferably 10°C or less, from the viewpoint of easily suppressing adhesion of the coating layer to the molding die during molding in the mold. a -Tm b2 The lower limit of [temperature] is not particularly limited, but is generally -5°C, preferably 0°C, and more preferably 3°C.
[0029] <<Total heat of fusion Δh b ≫ Total heat of fusion of polypropylene resin (b) Δh bIn order to improve the fusion property between the expanded beads when molding in a mold at a low molding pressure, the total heat of fusion Δh is preferably 70 J / g or less, more preferably 65 J / g or less, even more preferably less than 60 J / g, and particularly preferably 58 J / g or less. b is preferably 40 J / g or more, more preferably 50 J / g or more, and even more preferably 55 J / g or more. Total heat of fusion of polypropylene resin (b) Δh b The total heat of fusion of polypropylene resin (a) can be calculated by the same method. When polypropylene resin (b) has a double peak as shown in Figure 1, the total heat of fusion of polypropylene resin (b) Δh b is the sum of the heat of fusion Δh1 of the first melting peak and the heat of fusion Δh2 of the second melting peak.
[0030] <<Total heat of fusion Δh b The heat of fusion of the second melting peak Δh b2 Ratio≫ If double peaks appear in the DSC curve of polypropylene resin (b), the total heat of fusion of polypropylene resin (b) Δh b The heat of fusion of the second melting peak of polypropylene resin (b) is Δh b2 The ratio [Δh b2 / Δh b ] is preferably 0.1 or more, more preferably 0.2 or more, from the viewpoint of enhancing the fusion property between the expanded beads and easily suppressing adhesion of the coating layer to the molding die during molding in the mold. b2 / Δh b ] is preferably 0.5 or less, more preferably 0.4 or less.
[0031] <Melting point Tm b and crystallization temperature Tc b The difference between [Tm b -Tc b ]≫ Melting point Tm of polypropylene resin (b) b and the crystallization temperature Tc of polypropylene resin (b)b The difference between [Tm b -Tc b ] is 40°C or less. b -Tc b If [Tm] is too large, even if the mold is cooled during in-mold molding between the completion of heating of the expanded beads and the removal of the expanded bead molded article from the mold, solidification of the polypropylene resin (b) does not proceed sufficiently, and the resin is likely to remain softened for a long time. This is thought to result in, for example, the coating layer being more likely to adhere to areas of the mold that are easily heated, or the coating layer being more likely to adhere near the vent holes when the expanded beads are wedged in the vent holes for introducing molding steam during secondary expansion, which makes it easier for deposits to accumulate on the mold. From the viewpoint of further suppressing adhesion of the coating layer to the mold, it is thought that the difference [Tm b -Tc b is preferably 35° C. or lower, more preferably 30° C. or lower, and even more preferably 25° C. or lower. Since the difference between the melting point and crystallization temperature of the polypropylene resin (b) constituting the coating layer is relatively small, it is thought that after heating of the expanded beads is completed, solidification of the polypropylene resin (b) proceeds quickly as the molding die cools, and the resin of the coating layer becomes less likely to adhere to the molding die. In addition, the above difference [Tm b -Tc b The lower limit of the temperature is not particularly limited, but is usually 10°C, and may be 15°C. Crystallization temperature Tc of polypropylene resin (b) b is determined by the same method as for the crystallization temperature of the polypropylene resin (a). The crystallization temperature is the temperature at which the amount of heat released as the resin crystallizes becomes maximum when a molten resin is cooled under certain conditions, and serves as an index of how easily the molten resin solidifies upon cooling. Therefore, in the present invention, the difference between the melting point and crystallization temperature of the polypropylene resin (b) is considered to be an index of how quickly the molten resin solidifies upon cooling during in-mold molding.
[0032] <<Tm, the peak temperature of the second melting peak b2 and crystallization temperature Tc b The difference between [Tmb2 -Tc b ]≫ When double peaks appear in the DSC curve of polypropylene resin (b), the peak temperature Tm of the second melting peak of polypropylene resin (b) b2 and the crystallization temperature Tc of polypropylene resin (b) b The difference between [Tm b2 -Tc b ] is preferably 40°C or less, more preferably 35°C or less, from the viewpoint of more stably suppressing adhesion of the coating layer to the molding die during molding in the mold. b2 -Tc b The lower limit of the temperature is not particularly limited, but is usually 20°C, and may be 25°C.
[0033] ≪Crystallization temperature Tc b ≫ Crystallization temperature Tc of polypropylene resin (b) b The crystallization temperature Tc is preferably 95°C or higher, more preferably 98°C or higher, from the viewpoint of more stably suppressing adhesion of the coating layer to the molding die during molding in the mold. b The upper limit of the temperature is not particularly limited, but is generally 115°C, more preferably 110°C, and even more preferably 105°C.
[0034] ≪Crystallization temperature Tc a and crystallization temperature Tc b The difference between [Tc a -Tc b ]≫ Crystallization temperature Tc of polypropylene resin (a) a and the crystallization temperature Tc of polypropylene resin (b) b The difference between [Tc a -Tc b ] is preferably 3°C or less, more preferably 0°C or less. In this case, it is considered that the crystallization temperature of the resin constituting the core layer is the same as or higher than the crystallization temperature of the resin constituting the coating layer, which makes it easier to suppress adhesion of the coating layer to the molding die during molding in the mold. In addition, the difference [Tc a -Tc bThe lower limit of [temperature] is not particularly limited, but is preferably -10°C, more preferably -8°C, and even more preferably -6°C.
[0035] <Flexural modulus> From the viewpoint of achieving both mechanical strength and moldability of the expanded bead molding, the flexural modulus of the polypropylene resin (b) is preferably 500 MPa or more, more preferably 600 MPa or more, even more preferably 700 MPa or more, and still more preferably 750 MPa or more. The upper limit of the flexural modulus of the polypropylene resin (b) is not particularly limited, but is generally 1200 MPa, more preferably 1000 MPa, and even more preferably 900 MPa. The flexural modulus of the polypropylene-based resin (a) can be determined based on JIS K 7171:2016.
[0036] (higher fatty acid amide) The coating layer of the expanded polypropylene resin beads contains a higher fatty acid amide. If the coating layer does not contain a higher fatty acid amide, it becomes difficult to prevent the resin of the coating layer from adhering to the molding die during molding in the mold. The coating layer of the expanded beads of the present invention uses a polypropylene-based resin (b) as a base resin, the main component of which is a propylene-based copolymer containing a propylene component, an ethylene component, and a butene component. As described above, when this resin is used as the coating layer, expanded beads having excellent fusion properties between the expanded beads and an expanded bead molded article having excellent mechanical strength can be obtained. However, the coating layer tends to adhere to the molding die during in-mold molding. This tendency is particularly likely to occur near the vent holes for introducing molding steam into the molding space. In the present invention, in particular, by setting the difference between the melting point and crystallization temperature of the polypropylene resin (b) within a specific range and by including a higher fatty acid amide in the coating layer, even when the base resin of the coating layer is a polypropylene resin mainly composed of a propylene copolymer containing a propylene component, an ethylene component, and a butene component, adhesion of the coating layer to the molding die during in-mold molding can be suppressed while maintaining the fusibility between the expanded beads, and the accumulation of deposits on the molding die can be suppressed. As a result, even when the expanded bead molding is produced over a long period of time, the surface properties of the in-mold molded expanded bead molding are not impaired, and productivity can be improved.
[0037] In the present invention, higher fatty acid amide refers to a fatty acid amide having a hydrocarbon group with 12 or more carbon atoms. The carbon number of the hydrocarbon group of the higher fatty acid amide is preferably 12 or more and 30 or less. In this case, the fusion property between the expanded beads is maintained while the accumulation of deposits on the molding die is easily suppressed. From the viewpoint of improving this effect, the carbon number of the hydrocarbon group of the higher fatty acid amide is more preferably 16 or more and 26 or less, and even more preferably 18 or more and 24 or less. The carbon number of the hydrocarbon group of the higher fatty acid amide is the carbon number of the hydrocarbon group excluding the carbon atoms constituting the amide group. For example, when the higher fatty acid amide is a primary amide, the higher fatty acid amide is represented by the general formula RCONH2 and is a compound having a hydrocarbon group (specifically, a long-chain fatty acid group) and an amide group. In the general formula RCONH2, R is a hydrocarbon group. The higher fatty acid amide may be a saturated fatty acid amide or an unsaturated fatty acid amide. Unsaturated fatty acid amides are preferred from the viewpoint of easily obtaining a molded article having good mechanical properties while suppressing the accumulation of deposits on the molding die. Furthermore, the higher fatty acid amide may be a primary amide, a secondary amide, or a tertiary amide. Primary amides are preferred from the viewpoint of easily dispersing well in the resin constituting the coating layer.
[0038] Specific examples of higher fatty acid amides include saturated fatty acid amides such as lauric acid amide, palmitic acid amide, stearic acid amide, and behenic acid amide; and unsaturated fatty acid amides such as oleic acid amide, erucic acid amide, and nervonic acid amide. The coating layer may contain one or more higher fatty acid amides. From the viewpoint of stably obtaining expanded beads that maintain fusibility and suppress the accumulation of deposits on the molding die, it is preferred that the higher fatty acid amide contains at least erucic acid amide. Furthermore, when the higher fatty acid amide contains erucic acid amide, the proportion of erucic acid amide in the higher fatty acid amide is preferably 50% by mass or more, more preferably 60% by mass or more, even more preferably 80% by mass or more, and particularly preferably 90% by mass or more.
[0039] The content of the higher fatty acid amide in the coating layer is preferably 0.02% by mass or more, more preferably 0.1% by mass or more, and even more preferably 0.2% by mass or more, from the viewpoint of stably suppressing adhesion of the coating layer to the molding die during in-mold molding. Also, the content of the higher fatty acid amide in the coating layer is 2% by mass or less, more preferably 1% by mass or less, and even more preferably 0.8% by mass or less, from the viewpoint of suppressing excessive deterioration of the fusibility between the expanded beads.
[0040] The coating layer may contain additives such as flame retardants, flame retardant assistants, bubble nucleating agents, antistatic agents, antioxidants, ultraviolet absorbers, light stabilizers, conductive materials, and colorants, within the range that does not impair the intended effects of the present invention.
[0041] The coating layer preferably contains carbon black. In this case, the carbon black content in the coating layer is preferably 0.5% by mass to 5% by mass, more preferably 1% by mass to 4% by mass, and even more preferably 2% by mass to 3% by mass. In this case, the fusion properties of the expanded beads are ensured while the accumulation of deposits inside the molding die is more easily suppressed. Furthermore, when the foamed core layer and the coating layer contain carbon black, the color of the molded product is more easily made uniform. The carbon black content in the core layer and the coating layer is approximately equal to the amount of carbon black blended into the core layer and the fusion layer during the production of the expanded beads.
[0042] [Physical properties of polypropylene resin foam beads] <Bulk density> The bulk density of the expanded polypropylene resin beads is preferably 10 kg / m from the viewpoint of increasing the mechanical strength of the expanded bead molding. 3 More preferably, 15 kg / m 3 More preferably, 20 kg / m 3 In addition, from the viewpoint of increasing the lightness of the expanded bead molding, the expanded polypropylene resin beads preferably have a strength of 100 kg / m 3 Less than or equal to 70 kg / m 3 More preferably, 50 kg / m or less 3 More preferably, 30 kg / m or less 3 The following is the result. The bulk density of expanded particles can be calculated as follows: First, a measuring cylinder is filled with expanded particles having a mass W1 [g], and the bottom of the measuring cylinder is lightly tapped on the floor several times to stabilize the filling height of the expanded particles in the measuring cylinder. Next, the volume V1 ([L]) of the expanded particles indicated on the measuring cylinder's scale is read. The mass W1 of the expanded particles is divided by the volume V1 (W1 / V1) and the unit is expressed as [kg / m 3 The bulk density of the expanded beads can be determined by converting the value of the
[0043] The expanded beads preferably have a crystalline structure in which a DSC curve obtained when the expanded beads are heated from 23°C to 200°C at a heating rate of 10°C / min shows a melting peak due to the melting of crystals specific to the polypropylene-based resin (i.e., the resin-specific peak) and one or more melting peaks (i.e., high-temperature peaks) on the higher temperature side of the melting peak (i.e., high-temperature peaks). The DSC curve is obtained by performing differential scanning calorimetry (DSC) in accordance with JIS K 7121:1987 using 1 to 3 mg of expanded beads as a test sample. The resin-specific peak is a melting peak due to the melting of crystals specific to the polypropylene-based resin that constitutes the expanded beads, and is considered to be an endothermic peak that appears due to the endothermic heat that occurs when crystals typically melt in polypropylene-based resins. On the other hand, a melting peak on the higher temperature side of the resin-specific peak (i.e., the high-temperature peak) is a melting peak that appears on the higher temperature side of the resin-specific peak on the DSC curve. The appearance of this high-temperature peak suggests the presence of secondary crystals in the resin. In addition, in the DSC curve obtained when the expanded beads are heated from 23°C to 200°C at a heating rate of 10°C / min (i.e., the first heating), cooled from 200°C to 23°C at a cooling rate of 10°C / min, and then heated again from 23°C to 200°C at a heating rate of 10°C / min (i.e., the second heating), only a melting peak due to the melting of crystals specific to the polypropylene resin that makes up the expanded beads is observed, making it possible to distinguish between the resin-specific peak and the high-temperature peak. The peak temperature of this resin-specific peak may differ slightly between the first and second heatings, but the difference is usually within 5°C.
[0044] <High-temperature peak heat of fusion ΔH2> The heat of fusion ΔH2 of the high-temperature peak of the expanded polypropylene resin beads is preferably 5 J / g or more, more preferably 8 J / g or more, and even more preferably 10 J / g or more, from the viewpoint of increasing the mechanical strength of the expanded beads and widening the range of molding conditions under which good molded articles can be obtained. From the same viewpoint, the heat of fusion ΔH2 of the high-temperature peak of the expanded beads is preferably 40 J / g or less, more preferably 30 J / g or less, and even more preferably 20 J / g or less. Figure 2 shows an example of a DSC curve (DSC curve obtained during the first heating cycle) obtained when expanded beads are heated from 23°C to 200°C at a heating rate of 10°C / min. This curve shows both a resin-specific peak and a high-temperature peak higher than the resin-specific peak. When a high-temperature peak like that shown in Figure 2 appears, its heat of fusion can be calculated as follows. First, the point on the DSC curve at 80°C is designated as α, and the point on the DSC curve corresponding to the melting end temperature is designated as β. A line (α-β) is then drawn connecting these points. Next, a line parallel to the vertical axis of the graph is drawn from point γ on the DSC curve, which corresponds to the valley between the resin-specific peak and the high-temperature peak. The point where this line intersects with the line (α-β) is designated as δ. The area enclosed by the high-temperature peak curve, the line (δ-β), and the line (γ-δ) is taken as the area of the high-temperature peak. From this area, the heat of fusion of the high-temperature peak can be calculated.
[0045] <Total heat of fusion ΔH> The total heat of fusion ΔH of the expanded polypropylene resin beads is preferably 25 J / g or more, more preferably 40 J / g or more, and even more preferably 50 J / g or more from the viewpoint of improving the mechanical strength of the resulting expanded bead molding. Also, the total heat of fusion ΔH of the expanded beads is preferably 200 J / g or less, more preferably 150 J / g or less, even more preferably 100 J / g or less, and even more preferably 80 J / g or less from the viewpoint of improving the in-mold moldability of the expanded beads. The total heat of fusion ΔH of the expanded polypropylene resin beads can be determined from the area enclosed by the DSC curve between points α and β on the DSC curve obtained during the first heating of the expanded beads and the line segment (α-β).
[0046] <Mass ratio of core layer to covering layer> In the expanded polypropylene resin beads, the mass ratio of the expanded core layer to the coating layer (mass of the core layer:mass of the coating layer) is preferably 99.5:0.5 to 90:10, more preferably 99:1 to 92:8, and even more preferably 98:2 to 94:6, from the viewpoint of improving moldability in a mold while maintaining the mechanical properties of the molded body.
[0047] [Method of manufacturing polypropylene resin foam beads] The method for producing expanded polypropylene-based resin particles is not particularly limited, but expanded polypropylene-based resin particles can be obtained by expanding polypropylene-based resin particles having a core layer whose base resin is the polypropylene-based resin (a) and a coating layer that covers the core layer and whose base resin is the polypropylene-based resin (b) and contains a higher fatty acid amide. More specifically, it can be produced by a method including the following steps (A) to (C). Step (A): preparing polypropylene-based resin particles having a core layer containing a polypropylene-based resin (a) as a base resin and a coating layer coating the core layer, the coating layer also containing a polypropylene-based resin (b) as a base resin and a higher fatty acid amide; Step (B): impregnating the resin particles with a foaming agent; and Step (C): A step of expanding the resin particles impregnated with a foaming agent to obtain expanded particles having a foamed core layer formed therein.
[0048] <Process (A)> In step (A), for example, an extrusion device having a core layer forming extruder, a coating layer forming extruder, and a co-extrusion die such as a multilayer strand forming die connected at the outlet side of these extruders can be used. The core layer forming extruder is supplied with a polypropylene-based resin (a) as the base resin of the core layer and optional additives, which are melt-kneaded to form a core layer forming resin melt. The coating layer forming extruder is supplied with a polypropylene-based resin (b) as the base resin of the coating layer, a higher fatty acid amide, and optional additives, which are melt-kneaded to form a coating layer forming resin melt. The core layer forming resin melt and the coating layer forming resin melt are introduced into a co-extrusion die and merged to form a multilayered composite. The composite is then extruded from the extrusion device and granulated to a predetermined mass, thereby obtaining multilayered resin particles having a non-foamed core layer and a non-foamed coating layer covering the core layer. Methods for granulating resin particles having a multilayer structure include a strand-cut method in which the composite is extruded in the form of a strand from a small hole in a die attached downstream of the extrusion device, cooled in water, and then cut; an underwater cut method in which the composite is extruded into water and cut; and a hot cut method in which the composite is extruded into air and then cut immediately thereafter.
[0049] (Particle diameter of resin particles) The particle size of the resin particles is preferably 0.1 to 3.0 mm, and more preferably 0.3 to 1.5 mm.
[0050] (mass of resin particles) The average mass of the resin particles is preferably adjusted to be 0.1 to 20 mg, more preferably 0.2 to 10 mg, even more preferably 0.3 to 5 mg, and even more preferably 0.4 to 2 mg.
[0051] (mass ratio of coating layer to core layer) When producing resin particles, the mass ratio of the unexpanded core layer to the coating layer (core layer / coating layer) is 99.5:0.5 to 90:10, more preferably 99:1 to 92:8, and even more preferably 98:2 to 94:6, from the viewpoint of achieving a better balance between the fusibility of the expanded beads and the physical properties of the resulting molded article.
[0052] (additives) If necessary, additives such as cell control agents, flame retardants, flame retardant auxiliaries, cell nucleating agents, plasticizers, antistatic agents, antioxidants, UV inhibitors, light stabilizers, conductive fillers, and antibacterial agents can be added to the resin particles having a non-foamed core layer and a coating layer. When additives are added, they can be added in step (A). Examples of cell control agents include inorganic powders such as talc, mica, zinc borate, calcium carbonate, silica, titanium oxide, gypsum, zeolite, borax, and aluminum hydroxide; and organic powders such as phosphoric acid-based nucleating agents, phenol-based nucleating agents, amine-based nucleating agents, and polyethylene fluoride-based resin powders. When a cell control agent is added, the content of the cell control agent in the resin particles is preferably 0.01 to 1 part by mass per 100 parts by mass of the resin particles.
[0053] <Process (B)> In step (B), for example, expandable resin particles can be obtained by heating the resin particles to a temperature equal to or higher than the softening temperature of the polypropylene-based resin (a), which is the base resin of the core layer, and impregnating the resin particles with a blowing agent. In step (B), the dispersion medium and resin particles are placed in a sealed container such as an autoclave that can be sealed and can withstand heat and pressure, and the resin particles are dispersed in the dispersion medium using, for example, a stirrer. At the same time, a foaming agent is added to the sealed container, thereby impregnating the resin particles with the foaming agent.
[0054] The dispersion medium is not particularly limited as long as it does not dissolve the resin particles, and examples thereof include water, ethylene glycol, glycerin, and alcohols such as methanol and ethanol, with water being preferred.
[0055] To prevent the resin particles from adhering to each other, it is preferable to further add a dispersant to the dispersion medium. Examples of dispersants include organic dispersants such as polyvinyl alcohol, polyvinylpyrrolidone, and methyl cellulose; and sparingly soluble inorganic salts such as aluminum oxide, zinc oxide, kaolin, mica, magnesium phosphate, and tricalcium phosphate. These can be used alone or in combination of two or more. Among these, sparingly soluble inorganic salts are preferred for ease of handling, and kaolin is more preferred. When a dispersant is added, it is preferable to add about 0.001 to 5 parts by mass of the dispersant per 100 parts by mass of the resin particles.
[0056] A surfactant can also be added to the dispersion medium. Examples of surfactants include sodium dodecylbenzenesulfonate, sodium alkylsulfonate, sodium oleate, sodium lauryl sulfate, polyoxyethylene alkyl ether sodium phosphate, polyoxyethylene alkyl ether sodium sulfate, and other anionic surfactants and nonionic surfactants commonly used in suspension polymerization. When a surfactant is added, it is preferable to add the surfactant in an amount of about 0.001 to 1 part by mass per 100 parts by mass of resin particles.
[0057] The blowing agent is not particularly limited as long as it can expand the resin particles. Examples of blowing agents include inorganic physical blowing agents such as air, nitrogen, carbon dioxide, argon, helium, oxygen, and neon; aliphatic hydrocarbons such as propane, normal butane, isobutane, normal pentane, isopentane, and normal hexane; alicyclic hydrocarbons such as cyclohexane and cyclopentane; halogenated hydrocarbons such as ethyl chloride, 2,3,3,3-tetrafluoropropene, trans-1,3,3,3-tetrafluoropropene, and trans-1-chloro-3,3,3-trifluoropropene; and organic physical blowing agents such as dialkyl ethers such as dimethyl ether, diethyl ether, and methyl ethyl ether. Among these, inorganic physical blowing agents that are environmentally friendly and inexpensive are preferred. Nitrogen, air, and carbon dioxide are more preferred, and carbon dioxide is particularly preferred. These blowing agents can be used alone or in combination of two or more.
[0058] The amount of foaming agent added is determined taking into consideration the desired bulk density of the expanded beads, the type of polypropylene resin, the type of foaming agent, etc. When an organic physical foaming agent is used, the amount is preferably 5 to 50 parts by mass per 100 parts by mass of resin particles. When an inorganic physical foaming agent is used, the amount is preferably 0.1 to 30 parts by mass, more preferably 0.5 to 15 parts by mass per 100 parts by mass of resin particles.
[0059] The heating temperature in step (B) is preferably 100 to 200° C., more preferably 130 to 160° C. The time for maintaining the heating temperature is preferably 1 minute or more, more preferably 10 minutes or more, and preferably 100 minutes or less, more preferably 60 minutes or less.
[0060] <Process (C)> In step (C), for example, the resin particles impregnated with the blowing agent in step (B) are released together with a dispersion medium from the sealed container into an atmosphere with a pressure lower than that inside the sealed container, thereby expanding at least the core layer, thereby producing expanded beads having an expanded core layer. Specifically, while maintaining the pressure inside the sealed container at a pressure equal to or higher than the vapor pressure of the blowing agent, one end below the water surface of the sealed container is opened, and the resin particles impregnated with the blowing agent are released from the sealed container together with the dispersion medium into an atmosphere of lower pressure than the pressure inside the sealed container, usually atmospheric pressure, and at least the core layer of the resin particles is expanded to form a foamed core layer, thereby producing expanded beads having a multilayer structure having a foamed core layer and a coating layer that covers the foamed core layer.In addition, the expandable resin particles obtained in step (B) can also be produced by heating and foaming them with a heating medium such as hot air or steam.
[0061] When the expandable resin particles are released from a sealed container into an atmosphere with a lower pressure than the pressure inside the sealed container to cause expansion, the temperature during expansion is usually preferably 110°C to 170°C. The pressure inside the sealed container is preferably 0.5 MPa (G) to 5 MPa (G). The pressures marked with (G) are gauge pressures, that is, pressure values based on atmospheric pressure.
[0062] The above steps (B) and (C) are preferably carried out as a series of steps in a single sealed container, but they can also be carried out as separate steps, such as by removing the resin particles after each step and then putting them back into the sealed container to carry out the next step.
[0063] In addition, expanded beads having a crystalline structure in which a melting peak specific to the resin (resin specific peak) and one or more melting peaks (high temperature peaks) appear on the high-temperature side of the melting peak in the DSC curve obtained by the first heating of the expanded beads by differential scanning calorimetry (DSC) can be obtained, for example, as follows. First, resin particles dispersed in a dispersion medium in a sealed container are heated to a temperature between (the melting point of the polypropylene resin (a) - 15°C) and (the melting end temperature of the polypropylene resin (a) + 10°C) and maintained at this temperature for a sufficient time, preferably about 10 to 60 minutes (maintenance step). Next, the resin particles that have undergone this maintenance step are expanded to obtain expanded particles having the above-mentioned crystalline structure. The maintenance step can be performed as part of the above step (B). From the viewpoint of increasing the productivity of expanded beads, it is preferable to obtain expanded beads having the above-mentioned crystalline structure by heating resin particles dispersed in a dispersion medium in a sealed container in the presence of a blowing agent to carry out the above-mentioned holding step, and then releasing the contents of the sealed container from the sealed container under low pressure to cause foaming.
[0064] The expanded beads obtained as described above can be pressurized with air or the like to increase the internal pressure within the cells of the expanded beads, and then the expanded beads can be expanded by heating with steam or the like (two-stage expansion), thereby obtaining expanded beads with an even higher expansion ratio (lower bulk density).
[0065] [Polypropylene resin foam bead molding] The expanded polypropylene resin beads molded article obtained by using the expanded polypropylene resin beads of the present invention can be obtained by molding the expanded polypropylene resin beads of the present invention in a mold.
[0066] The in-mold molding method can be performed by filling a mold with expanded beads and heat-molding them using a heating medium such as steam. Specifically, after filling the mold with the expanded beads, a heating medium such as steam is introduced into the mold to heat and expand the expanded beads and fuse them together, thereby obtaining an expanded bead molded article having the shape of the molding space. The in-mold molding method of the present invention can be performed by a pressure molding method (e.g., JP-B 51-22951), in which the expanded beads are pre-pressurized with a pressurized gas such as air to increase the pressure within the cells of the expanded beads and adjust the pressure within the expanded beads to a pressure 0.01 to 0.3 MPa higher than atmospheric pressure, and then the expanded beads are filled into the mold under atmospheric pressure or reduced pressure, and then a heating medium such as steam is supplied into the mold to heat-fuse the expanded beads (e.g., JP-B 51-22951). Alternatively, molding can be performed by a compression filling molding method (Japanese Patent Publication No. 4-46217), in which a mold pressurized to atmospheric pressure or higher by a compressed gas is filled with expanded beads pressurized to atmospheric pressure or higher, and then a heating medium such as steam is supplied into the cavity to heat and fuse the expanded beads. Alternatively, molding can be performed by a normal pressure filling molding method (Japanese Patent Publication No. 6-49795), in which expanded beads with high secondary expansion power obtained under special conditions are filled into the cavity of a mold under atmospheric or reduced pressure, and then a heating medium such as steam is supplied to heat and fuse the expanded beads, or a combination of the above methods (Japanese Patent Publication No. 6-22919).
[0067] <density> The density of the expanded polypropylene resin bead molding is preferably 10 kg / m from the viewpoint of increasing the mechanical strength. 3 More preferably, 15 kg / m 3 More preferably, 20 kg / m 3 The density of the expanded polypropylene resin bead molding is preferably 150 kg / m from the viewpoint of improving the lightness. 3 Less than or equal to 100 kg / m 3 More preferably, 50 kg / m or less 3 or less, even more preferably 35 kg / m 3 The following is the result. The density of the expanded polypropylene resin bead molding is calculated by dividing the mass (g) of the expanded bead molding by the volume (L) determined from the external dimensions of the molding, and converting the result into units. If it is not easy to determine the volume from the external dimensions of the molding, the volume of the molding can be determined by the submersion method.
[0068] <50% compressive stress> From the viewpoint of increasing rigidity, the 50% compressive stress of the expanded polypropylene resin bead molded article is preferably 50 kPa or more, more preferably 100 kPa or more, and even more preferably 150 kPa or more. On the other hand, the upper limit of the 50% compressive stress of the molded article is not particularly limited, but is generally 1 MPa, preferably 500 kPa. The 50% compressive stress of the expanded bead molding is measured in accordance with JIS K 6767:1999. [Example]
[0069] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples in any way.
[0070] The resins, expanded beads, and expanded bead molded articles used in the examples and comparative examples were measured or evaluated as follows. The physical properties of the expanded beads were measured using expanded beads that had been conditioned by standing for 24 hours at 50% RH, 23°C, and 1 atm. The physical properties of the expanded bead molded articles were measured and evaluated using expanded bead molded articles that had been conditioned by standing for 12 hours at 50% RH, 80°C, and 1 atm after demolding.
[0071] [Measurement method] <Polypropylene resin> (monomer component content) The content of the monomer component in the polypropylene-based resin was determined by a known method based on IR spectroscopy. Specifically, the content was determined by the method described in the Polymer Analysis Handbook (edited by the Polymer Analysis Research Forum of the Japan Society for Analytical Chemistry, published January 1995, published by Kinokuniya Shoten, page numbers and item names: 615-616 "II.2.3 2.3.4 Propylene / Ethylene Copolymer" and 618-619 "II.2.3 2.3.5 Propylene / Butene Copolymer"). That is, the content was determined by a quantitative determination method based on the relationship between the absorbance of ethylene and butene corrected by a predetermined coefficient and the thickness of a film-like test piece. More specifically, the polypropylene-based resin was first hot-pressed in an environment of 180°C to form a film, and multiple test pieces with different thicknesses were prepared. Next, the IR spectrum of each test piece was measured to determine the 722 cm spectrum derived from ethylene. -1 and 733 cm -1 Absorbance (A 722 , A 733 ) and butene-derived 766 cm -1 Absorbance (A 766 ) was read. Next, for each test piece, the ethylene component content in the polypropylene-based resin was calculated using the following formulas (1) to (3). The ethylene component contents obtained for each test piece were calculated as an arithmetic average, which was taken as the ethylene component content (unit: mass%) in the polypropylene-based resin. (K´ 733 )c=1 / 0.96{(K´ 733 )a-0.268(K´ 722 )a}···(1) (K´ 722 )c=1 / 0.96{(K´ 722 )a-0.268(K´ 722 )a}···(2) Ethylene content (%) = 0.575 {(K' 722 )c+(K´ 733 )c}···(3) In equations (1) to (3), K'a is the apparent absorption coefficient at each wave number (K'a = A / ρt), K'c is the corrected absorption coefficient, A is the absorbance, and ρ is the density of the resin (unit: g / cm 3), t: thickness of the film-like test piece (unit: cm). The butene content in the polypropylene resin was calculated for each test piece using the following formula (4): The arithmetic mean of the butene contents obtained for each test piece was taken as the butene content (%) in the polypropylene resin. Butene component content (%) = 12.3 (A 766 / L)···(4) In the formula (4), A represents the absorbance, and L represents the thickness (mm) of the film-like test piece.
[0072] (Peak shape) The peak shape of the polypropylene resin was measured based on JIS K7121:1987, and the conditioning of the test specimen was performed according to "(2) Measurement of the melting temperature after a certain heat treatment." The conditioned test specimen was heated from 30 to 200 ° C. at a heating rate of 10 ° C. / min to obtain a DSC curve. Specifically, approximately 5 mg of resin conditioned at 23 ° C. and 50% RH for 24 hours or more was used as a test specimen. The test specimen was heated from 30 to 200 ° C. at a heating rate of 10 ° C. / min using a heat flux differential scanning calorimeter (Shimadzu Corporation, model number: DSC-60A), then cooled from 200 to 30 ° C. at a cooling rate of 10 ° C. / min, and then heated again from 30 to 200 ° C. at a heating rate of 10 ° C. / min to obtain a DSC curve, and the shape of the melting peak was observed. In the polypropylene resin (b), the double peak shape means that two melting peaks appear having different peak temperatures, and the heat of fusion of each of the two melting peaks is 10 J / g or more. The heat of fusion was determined by the method described below.
[0073] (Melting point Tm) The melting point Tm of the polypropylene resin was determined based on JIS K 7121:1987 by "(2) Measuring the melting temperature after a certain heat treatment" as a conditioning method for the test specimen. Specifically, approximately 5 mg of resin conditioned at 23°C and 50% RH for 24 hours or more was used as a test specimen. The test specimen was heated from 30°C to 200°C at a heating rate of 10°C / min using a heat flux differential scanning calorimeter (Shimadzu Corporation, model number: DSC-60A). The test specimen was then cooled from 200°C to 30°C at a cooling rate of 10°C / min, and then heated again from 30°C to 200°C at a heating rate of 10°C / min to obtain a DSC curve. The melting point Tm was determined as the apex temperature of the melting peak associated with the melting of the resin on the DSC curve. In the case where multiple melting peaks appear in the DSC curve of the polypropylene resin (b), the apex temperature of the melting peak with the largest area is taken as the melting point Tm b Specifically, in PP1, where double peaks appeared in the DSC curve, the first melting peak had the largest area, so the apex temperature Tm b1 Melting point Tm b was adopted as. The heat of fusion of each melting peak was calculated as follows. The point on the DSC curve at a temperature of 80°C was designated α, and the point on the DSC curve corresponding to the end of melting was designated β. A line L2 parallel to the vertical axis of the graph was drawn from point γ on the DSC curve, which corresponds to the valley between the low-temperature melting peak P1 and the high-temperature melting peak P2. δ was the point where the line L2 intersecting with point α and point β intersected the line L1. The area (1) of the low-temperature melting peak P1 was the heat of fusion Δh1 of the low-temperature melting peak (first melting peak) P1, and was calculated as the area enclosed by the DSC curve representing the low-temperature melting peak P1, the line segments (α-δ), and (γ-δ). The area (2) of the high-temperature melting peak P2 is the heat of fusion Δh2 of the high-temperature melting peak (second melting peak) P2, and was calculated as the area surrounded by the DSC curve representing the high-temperature melting peak P2, the line segment (δ-β), and the line segment (γ-δ). The DSC curve shown in Figure 1 can be used to calculate the heat of fusion of the melting peak.
[0074] (Total heat of fusion Δh) The total heat of fusion Δh of the polypropylene-based resin was determined as follows. First, the point at 80°C on the DSC curve during the second heating of the polypropylene-based resin, obtained by the melting point measurement described above, was designated as α, and the point on the DSC curve corresponding to the melting end temperature was designated as β. The area enclosed by the DSC curve in the section between points α and β and the line segment (α-β) was measured, and this was designated as the total heat of fusion Δh of the polypropylene-based resin.
[0075] (Crystallization temperature Tc) The crystallization temperature Tc of the polypropylene resin was measured using a heat flux differential scanning calorimeter in accordance with JIS K 7121: 1987. The cooling rate was 10°C per minute.
[0076] (flexural modulus) The flexural modulus of the polypropylene-based resin was measured in accordance with JIS K 7171:2016. First, the polypropylene-based resin was heat-pressed at 230°C to produce a 4 mm thick sheet, and a standard test piece measuring 80 mm in length, 10 mm in width, and 4 mm in thickness was cut out from the sheet. Using this test piece, a bending test was performed with the indenter radius R1 and the support base radius R2 both set to 5 mm, the support distance set to 64 mm, and the test speed set to 2 mm / min.
[0077] <Foam particles> (bulk density) The bulk density of the expanded particles was determined as follows. First, a measuring cylinder was filled with expanded particles having a mass W1 [g], and the bottom of the measuring cylinder was lightly tapped on the floor several times to stabilize the filling height of the expanded particles in the measuring cylinder. Next, the volume V1 [L] of the expanded particles indicated on the measuring cylinder was read. The mass W1 [g] of the expanded particles was divided by the volume V1 [L] (W1 / V1), and the result was expressed in units of kg / m 3 The bulk density of the expanded beads was calculated by converting the value into the value of the particle diameter.
[0078] (High temperature peak heat of fusion ΔH2 and total heat of fusion ΔH) The heat of fusion ΔH2 of the high-temperature peak of the expanded beads was determined as follows. First, approximately 2 mg of expanded beads were sampled from the expanded bead group. These expanded beads were used as test specimens, and a DSC curve was obtained by heating the test specimen from 23°C to 200°C at a heating rate of 10°C / min using a differential scanning calorimeter (specifically, Shimadzu Corporation, model number: DSC-60A). The obtained DSC curve had a resin-specific peak P1 and a high-temperature peak P2 on the higher side. A line segment L1 was drawn connecting point α at a temperature of 80°C on the DSC curve to point β at the end-of-melting temperature T of the expanded beads. Next, a line L2 parallel to the vertical axis of the graph was drawn from point γ on the DSC curve, which corresponds to the valley between the resin-specific peak P1 and the high-temperature peak P2, and the point where line L1 and line L2 intersect was designated δ. The area (2) of the high-temperature peak P2 of the expanded beads is the heat of fusion ΔH2 of the high-temperature peak P2, and was calculated as the area surrounded by the DSC curve showing the high-temperature peak P2, the line segment (δ-β), and the line segment (γ-δ). The above measurement was performed on five expanded beads, and the arithmetic average of the obtained values was taken as the heat of fusion ΔH2 of the high-temperature peak. The area of the DSC curve between points α and β and the area of the portion surrounded by line segment L1 was measured. The above measurement was performed for five expanded beads, and the arithmetic mean of the obtained values was defined as the total heat of fusion ΔH of the expanded beads. The heat of fusion of the melting peak of the expanded beads can be calculated by reference to the DSC curve shown in FIG.
[0079] <Foamed bead molding> (Molded object density) The density of the expanded bead molding was determined as the arithmetic mean value of the densities of three test pieces calculated by dividing the mass of the expanded bead molding by the volume calculated based on the molding dimensions.
[0080] (50% compressive stress) The 50% compressive stress of the expanded bead moldings was determined as follows. The expanded beads shown in Tables 2 and 3 were molded in a molding machine equipped with a mold having a molding cavity measuring 300 mm long, 250 mm wide, and 60 mm thick to obtain expanded bead moldings. The skin layer was removed from the resulting expanded bead moldings, and rectangular parallelepiped test specimens measuring 50 mm long, 50 mm wide, and 25 mm thick were cut out. These test specimens were compressed at a rate of 10 mm / min using an RTF-1350 manufactured by A&D Co., Ltd. in accordance with JIS K 6767:1999. The load at 50% strain was determined, and this was divided by the pressure-receiving area of the test specimen to determine the 50% compressive stress [kPa].
[0081] [Evaluation method] <Range of molding pressure that can be molded (moldability)> The moldability of the expanded beads was evaluated as follows. In the <Preparation of Expanded Bead Molded Articles> described below, expanded bead molded articles were prepared by varying the molding pressure (steam pressure) in increments of 0.01 MPa (G). The range of molding pressures that allowed the production of expanded bead molded articles that passed all of the following evaluations of fusion, appearance, and recovery was defined as the moldable molding pressure range. Note that, because the molding temperature is controlled by the molding pressure, the wider the range from the lower limit to the upper limit of the moldable molding pressure, the wider the range of molding heating temperatures that are possible. (Fusing ability) The fusion property of the expanded bead molding was evaluated by the following method. First, of the side walls rising from the bottom surface of the expanded bead molding in the shape of a container described below, the lateral side wall of the expanded bead molding was cut out. Next, the side wall was bent and broken, and the number of expanded beads present on the broken surface (C1) and the number of broken expanded beads (C2) were determined, and the ratio of broken expanded beads to the total number of expanded beads (C2 / C1 × 100) was calculated as the material failure rate. A material failure rate of 80% or more was considered acceptable. (Appearance (degree of porosity)) A 100mm x 100mm rectangle was drawn in the center of the outer surface of the lateral side wall of the foamed bead molding, and a line was drawn diagonally from the corner of the rectangular area. The number of voids (gaps) of 1mm x 1mm or larger on that line was counted. A product with fewer than 5 voids was considered to pass. (Recoverability) The thickness of the central part and the four corner parts of the lateral side wall of the expanded bead molding was measured, and the ratio of the thickness of the central part to the thickest part of the four corner parts was calculated. A thickness ratio of 95% or more was considered to be acceptable.
[0082] <Range of molding pressure that can prevent resin adhesion to the mold when molding inside the mold repeatedly> In the evaluation of the above-mentioned <Moldable molding pressure range (moldability)>, 30 cycles of in-mold molding of expanded beads were continuously performed using the same mold and molding conditions within the moldable molding pressure range. After molding, the mold was visually inspected for adhesion of resin, and the results were evaluated according to the following criteria. The molding pressure range in which the evaluation was A was determined to be the molding pressure range in which adhesion of resin to the mold could be suppressed. A: No resin adhesion was observed. B: Resin adhesion was observed in some areas.
[0083] [Raw materials] The polypropylene resins used in the examples and comparative examples are shown in Table 1.
[0084] [Table 1]
[0085] Examples 1 to 6 and Comparative Examples 1 to 5 <Preparation of resin particles> A manufacturing apparatus was prepared, which included a core layer forming extruder with an inner diameter of 50 mm, a multilayer strand forming die attached downstream of the core layer forming extruder, and a coating layer forming extruder with an inner diameter of 30 mm. The downstream side of the coating layer forming extruder was connected to the multilayer strand forming die. The manufacturing apparatus was also designed to be capable of laminating the resin melts used to form each layer within the die, as well as co-extrusion. As the base resin constituting the core layer, a propylene-ethylene random copolymer listed in Table 2 or 3, zinc borate as a cell control agent (0.1 parts by mass relative to 100 parts by mass of the core layer-forming material), and carbon black (specifically, furnace black, 2.7 parts by mass relative to 100 parts by mass of the core layer-forming material) were fed into an extruder for forming the core layer and melt-kneaded. As the base resin constituting the coating layer, a propylene-ethylene-butene random copolymer listed in Table 2 or 3, a higher fatty acid amide (specifically, erucic acid amide, manufactured by Kao Corporation, trade name "Fatty Acid Amide E"), and carbon black (specifically, furnace black, 2.7 parts by mass relative to 100 parts by mass of the coating layer-forming material) were fed into an extruder for forming the coating layer and melt-kneaded. The higher fatty acid amide was fed so that the content of the higher fatty acid amide was the content listed in Table 2 or 3 when the coating layer was taken as 100% by mass. The melted resins for each layer obtained by melt-kneading were introduced into a multilayer strand-forming die and merged within the die to extrude a multilayer strand with a two-layer structure (core layer / coating layer structure, core layer:coating layer=97:3). The extruded strand was water-cooled and cut with a pelletizer to obtain resin particles with an average mass of 1 mg per piece.
[0086] <Preparation of expanded particles> 1 kg of the resulting resin particles was placed in a 5 L sealed container together with 3 L of water as a dispersion medium. Furthermore, 0.3 parts by mass of kaolin as an inorganic dispersant and 0.2 parts by mass of a surfactant (sodium dodecylbenzenesulfonate, manufactured by Daiichi Kogyo Seiyaku Co., Ltd., product name "Neogen") (as an active ingredient) were added to the sealed container per 100 parts by mass of the resin particles. Next, carbon dioxide was injected into the sealed container as a blowing agent, and the pressure was increased to a gauge pressure of 2.0 MPa (G). The contents of the sealed container were then heated to 149.5°C at a heating rate of 2°C / min while stirring, and maintained at that temperature for 15 minutes. This resulted in an adjustment such that a high-temperature peak appeared in the endothermic curve of the resulting expanded beads measured by DSC. Thereafter, the contents of the sealed container (resin particles and water) were released under atmospheric pressure to a bulk density of 60 kg / m 3The same steps as those described above were repeated several times to obtain expanded beads to be subjected to the above-mentioned evaluations. The first-stage expanded beads obtained as described above were left to cure for 24 hours in an environment of 23°C, 50% relative humidity, and 1 atm. The cured first-stage expanded beads were then loaded into a pressurizable airtight container, and the pressure inside the airtight container was increased from normal pressure to pressurize the expanded beads. The pressurized state of the expanded beads was maintained for a predetermined time to allow air to penetrate into the cells of the expanded beads. The first-stage expanded beads were then removed from the airtight container, and first-stage expanded beads with an internal cell pressure of 0.5 MPa (G) were obtained. These first-stage expanded beads were then fed into a two-stage expansion device for second-stage expansion. Steam was supplied into the device to expand the first-stage expanded beads, yielding expanded beads with the bulk densities shown in Tables 2 and 3. The measurement results of the heat of fusion ΔH2 of the high-temperature peak and the total heat of fusion ΔH of the expanded beads obtained by second-stage expansion are shown in Tables 2 and 3. The mass ratio of the core layer to the coating layer in the expanded beads was core layer:coating layer = 97:3.
[0087] <Production of foamed bead molded body> The resulting expanded beads were filled into a pressurizable sealed container, and the pressure inside the sealed container was increased from normal pressure to pressurize the expanded beads. The expanded beads were maintained in a pressurized state for a predetermined time, allowing air to penetrate the cells of the expanded beads. The expanded beads were then removed from the sealed container, yielding expanded beads with an internal cell pressure of 0.1 MPa (G). The expanded beads were filled into a mold (metal mold) having a molding cavity capable of forming a container-shaped molded body, and in-mold molding was performed using the following heating method. The container-shaped molded body had external dimensions of 240 mm length x 190 mm width x 110 mm height, with side wall thicknesses of 20 mm in the vertical direction, side wall thicknesses of 30 mm in the horizontal direction, and a bottom wall thickness of 10 mm. When the bottom wall was considered the bottom, the molded body had a shape with an open upper side in the height direction. The mold also had multiple 1 cm diameter core vents with five 0.4 mm wide slits (vent holes) formed at predetermined intervals. As a result, the molding die had a structure that allowed molding steam to be introduced into the molding space through the slit. First, with the drain valves on both sides of the mold open, steam was supplied to the mold for preheating (exhaust process). Then, steam was supplied from one side of the mold to heat it, and then steam was supplied from the other side to heat it again. Next, steam was supplied from both sides of the mold at a predetermined molding heating steam pressure to heat it (main heating). After main heating was completed, the pressure was released, and the expanded bead molding was water-cooled until the surface pressure due to the expansion force of the expanded bead molding reached 0.04 MPa (G). The mold was then opened, and the expanded bead molding was removed. The obtained expanded bead molding was cured in an oven at 80°C for 12 hours, and then slowly cooled to room temperature to obtain an expanded bead molding in the above-mentioned container shape.
[0088] [Table 2]
[0089] [Table 3]
[0090] As can be seen from Table 2, the expanded beads of the present invention enable in-mold molding at low molding pressures such as 0.24 MPa (G) and 0.26 MPa (G), providing a wide range of molding pressures over which molding is possible and also a wide range of molding pressures over which resin adhesion to the mold is suppressed when in-mold molding is repeated. Therefore, the expanded beads of the present invention can reduce the frequency of mold cleaning, etc., even in long-term production of molded products, thereby improving the production efficiency of expanded bead molded products while maintaining the in-mold moldability of the expanded beads. As can be seen from Table 3, the melting point Tm of polypropylene resin (b) b and the crystallization temperature Tc of polypropylene resin (b) b The difference between [Tm b -Tc bIn Comparative Examples 1 to 4, in which the value of [Delta] was too large, resin adhesion to the mold during repeated in-mold molding could not be suppressed. Specifically, resin adhesion to the mold was confirmed at approximately the 10th in-mold molding cycle. Furthermore, a large amount of resin adhesion was confirmed near the molding surface of the side wall in the vertical direction of the molded body and the vent hole of the mold in the portion corresponding to the molding surface of the bottom wall. Similarly, in Comparative Example 5, in which no higher fatty acid amide was added to the coating layer, resin adhesion to the mold during repeated in-mold molding could not be suppressed.
Claims
1. A polypropylene-based resin expanded particle having a foamed core layer containing a polypropylene-based resin (a) as a base resin, and a coating layer containing a polypropylene-based resin (b) as a base resin and coating the core layer, The melting point Tm of the polypropylene resin (a) a is 135°C or higher and 155°C or lower, the polypropylene-based resin (b) is composed primarily of a propylene-based copolymer containing a propylene component, an ethylene component, and a butene component; The melting point Tm of the polypropylene resin (a) a and the melting point Tm of the polypropylene resin (b). b The difference between [Tm a -Tm b ] is 1°C or more and 30°C or less, The melting point Tm of the polypropylene resin (b) b and the crystallization temperature Tc of the polypropylene-based resin (b). b The difference between [Tm b -Tc b ] is 40°C or less, The expanded polypropylene resin particles, wherein the coating layer contains a higher fatty acid amide, and the content of the higher fatty acid amide in the coating layer is 0.02% by mass or more and 2% by mass or less.
2. The crystallization temperature Tc of the polypropylene resin (b) b The expanded polypropylene resin particles according to claim 1, wherein the temperature is 95°C or higher and 110°C or lower.
3. 3. The expanded polypropylene resin particles according to claim 1, wherein the content of the higher fatty acid amide in the coating layer is 0.2% by mass or more and 2% by mass or less.
4. The expanded polypropylene resin particles according to any one of claims 1 to 3, wherein the higher fatty acid amide comprises erucic acid amide.
5. The crystallization temperature Tc of the polypropylene resin (a) a and the crystallization temperature Tc of the polypropylene-based resin (b). b The difference between [Tc a -Tc b 5. The expanded polypropylene resin particles according to claim 1, wherein the temperature is -10°C or higher and 3°C or lower.
Citation Information
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