Molded bodies and shock absorbers
By controlling the ratio and distribution of hollow and foamed particles in a molded body, the compression set is reduced, ensuring effective energy absorption across varying strain levels, addressing deformation issues in polystyrene resin foam particle molded bodies.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- JSP CORP
- Filing Date
- 2022-06-10
- Publication Date
- 2026-04-10
AI Technical Summary
Polystyrene resin foam particle molded bodies exhibit a large compression set, leading to potential deformation and reduced energy absorption performance when used as shock absorbers.
A molded body composed of a mixture of hollow particles with an outer shell layer and foamed particles, where the ratio and distribution of hollow to foamed particles are controlled to balance physical properties, reducing compression set and enhancing energy absorption efficiency.
The molded body maintains good compressible properties with low compression set, exhibiting high energy absorption efficiency over a wide range of strain amounts, suitable for use as a shock absorber.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a molded body and a shock absorber.
Background Art
[0002] A polystyrene resin foam particle molded body formed by in-mold molding of polystyrene resin foam particles is lightweight and excellent in compression physical properties and the like, and is therefore used in various fields such as automotive materials, building materials, and logistics materials. For example, Patent Document 1 describes an example in which a polystyrene resin foam particle molded body is used as a shock absorber for an automobile such as a floor spacer or a tibia pad by taking advantage of the lightweight property and compression characteristics of the polystyrene resin foam particle molded body.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] On the other hand, a polystyrene resin foam particle molded body generally has a property of having a large compression set. Therefore, depending on the shape of the polystyrene resin foam particle molded body, there is a risk that the molded body may be deformed and it may be difficult for the molded body to return to its original shape due to the application of a compression load or the like. In particular, when the polystyrene resin foam particle molded body is used as a shock absorber, if the shape of the molded body is distorted, there is a risk that the desired energy absorption performance may not be exhibited. [[ID=三十七]]
[0005] The present invention has been made in view of such a background, and aims to provide a molded body having a small compression set while maintaining the compression physical properties of the polystyrene resin foam particle molded body, and a shock absorber composed of this molded body.
Means for Solving the Problems
[0006] One aspect of the present invention is a molded article relating to the following [1] to [6]. [1] A molded body obtained by in-mold molding a mixture of hollow particles having an outer shell layer and a hollow portion surrounded by the outer shell layer, and foamed particles with a styrene resin as the base resin, The base resin of the outer shell layer in the hollow particle is a composite resin containing a (meth)acrylic acid ester component and a styrene-based component. The average value of the ratio S1 / S2 of the total area of hollow particles to the total area of foam particles S2 in the cross-section of the molded body is 0.1 or more and 3 or less, and the coefficient of variation of the ratio S1 / S2 is 20% or less. The 50% deformation compressive stress σ of the molded body, obtained by measurement at 23°C. 50 10% deformation compressive stress σ 10 ratio σ 10 / σ 50 A molded body in which the ratio is between 0.70 and 1.0.
[0007] [2] The average area of each hollow particle in the cross-section of the molded body is 3 mm 2 More than 60mm 2 The molded article according to [1], wherein the ratio of the average area per hollow particle to the average area per foam particle is 0.7 or more and 1.4 or less. [3] The density of the molded body is 20 kg / m³ 3 More than 100kg / m 3 The molded article described in [1] or [2], which is as follows: [4] The molded article according to any one of [1] to [3], wherein the compression set of the molded article is 15% or less.
[0008] [5] The molded body according to any one of [1] to [4], wherein the hollow particles and the foamed particles contain a brominated flame retardant, and when a flammability test is performed according to FMVSS No. 302, (1) the molded body exhibits self-extinguishing properties, or (2) the burning rate of the molded body is 102 mm / min or less. [6] The molded article according to [5], wherein the compounding amount of the brominated flame retardant in the molded article is 0.5% by mass or more and 10% by mass or less.
[0009] Another aspect of the present invention relates to the shock absorber according to the following [7]. [7] A shock absorber composed of the molded article according to any one of [1] to [6]. [Advantages of the Invention]
[0010] The molded article is formed by molding mixed particles of hollow particles and foamed particles in a mold. Further, the average value and coefficient of variation of the ratio S1 / S2 of the total area S2 of the foamed particles and the total area S1 of the hollow particles in the cross section of the molded article are within the specific ranges. In the molded article having such a configuration, the physical properties derived from the foamed particles and the physical properties due to the hollow particles are exhibited in a well-balanced manner, and the compression set can be reduced.
[0011] Further, the molded article can exhibit good compression physical properties by the foamed particles having a styrene-based resin as the base resin in the initial stage of compression. Furthermore, when the compression progresses, the hollow particles can be easily deformed to reduce the compression load required for the deformation of the molded article. As a result, the ratio σ 50 of the 10% deformation compression stress σ 10 to the 50% deformation compression stress σ 10 / σ 50 can be set within the specific range, and the energy absorption efficiency can be improved in a wide range of strain amounts.
[0012] Further, since the shock absorber is composed of the molded article, it has a low compression set and high energy absorption efficiency both when the strain amount is small and when the strain amount is large.
[0013] As a result of the above, according to the above embodiment, it is possible to provide a molded article with low compression set while maintaining the compressible properties of a polystyrene-based resin foam particle molded article. Furthermore, in addition to possessing the above-mentioned characteristics, the molded article is suitable as an impact absorber because it has excellent energy absorption efficiency over a wide range of strain amounts. [Brief explanation of the drawing]
[0014] [Figure 1] Figure 1 is an example of a photograph of a cross-section of a molded body. [Figure 2] Figure 2 shows an example of an electron microscope image (50x magnification) of the outer shell of a hollow particle in a molded body. [Figure 3] Figure 3 is an explanatory diagram showing the method for calculating energy absorption efficiency. [Modes for carrying out the invention]
[0015] (Molded body) The molded article is formed by in-mold molding a mixture of hollow particles and foamed particles. The hollow particles have an outer shell layer made of a composite resin containing a (meth)acrylic acid ester component and a styrene-based component as the base resin, and a hollow portion surrounded by the outer shell layer. The outer shell layer constitutes the outer shell of the hollow particles and has a resin film made of the base resin. The outer shell layer may be composed of a single resin film. Furthermore, minute air bubbles partitioned by the resin film may exist within the outer shell layer.
[0016] The foamed particles use a styrene-based resin as the base resin and have a structure in which numerous air bubbles are formed relatively uniformly throughout the entire particle. The more detailed composition of the hollow particles and foamed particles will be described later.
[0017] [Ratio of foamed particles to hollow particles] The average value of the ratio S1 / S2 of the total area of hollow particles to the total area S2 of foam particles in the cross-section of the molded article is 0.1 or more and 3 or less, and the coefficient of variation of the ratio S1 / S2 is 20% or less. By setting the average value and coefficient of variation of the ratio S1 / S2 in the molded article to the specified range, the physical properties derived from foam particles and the physical properties derived from hollow particles can be exhibited in a well-balanced manner.
[0018] In other words, when a compressive load is applied to the molded body, the physical properties derived from the foamed particles emerge in the initial stage of compression, allowing the compressive load required for deformation of the molded body to be appropriately high. As a result, the energy absorption efficiency can be improved when the amount of strain is relatively small.
[0019] Furthermore, because the molded body has a low compression set, it is easy to restore to its pre-compression shape when the compressive load is released after the compression has progressed and the amount of strain has become somewhat large. In addition, the molded body also exhibits excellent energy absorption efficiency when the amount of strain is relatively large.
[0020] The physical properties of these molded bodies are thought to originate from the hollow particles. That is, hollow particles are more easily deformed than foamed particles, but they also have higher resilience. Therefore, when a molded body is compressed to a certain extent, the hollow particles are thought to deform more than the foamed particles. When the compressive load is released from this state, the deformed hollow particles are more likely to return to their original shape, and thus the overall shape of the molded body is also more likely to return to its original shape.
[0021] Furthermore, even when compression progresses and the amount of strain increases further, it is believed that the compressive load required for the deformation of the molded body can be reduced because the hollow particles deform more than the foamed particles. As described above, it is believed that the molded body can reduce the compression set and improve the energy absorption efficiency when the amount of strain is relatively large, due to the physical properties derived from the hollow particles.
[0022] Therefore, by achieving a good balance between the physical properties derived from foamed particles and those derived from hollow particles, it is possible to exhibit good compressive properties and reduce the compression set of the molded article. Furthermore, it is possible to improve the energy absorption efficiency of the molded article over a wide range of strain levels.
[0023] If the average value of the ratio S1 / S2 is excessively low, the proportion of hollow particles in the molded body will be excessively low, which may lead to an increase in the compression set of the molded body. In this case, the compressive load required for deformation of the molded body when the amount of strain is relatively large will be large, which may lead to a decrease in compressive properties and a decrease in energy absorption efficiency. These problems can be easily avoided by setting the average value of the ratio S1 / S2 to 0.1 or higher, preferably 0.2 or higher, and more preferably 0.3 or higher.
[0024] On the other hand, if the average value of the ratio S1 / S2 is excessively high, the proportion of hollow particles contained in the molded body becomes excessively high, which may lead to a decrease in the compressive load required for deformation of the molded body when the amount of strain is relatively small. As a result, this may lead to a decrease in compressive properties and energy absorption efficiency in the initial stages of compression. In this case, it may also lead to a deterioration in the flame retardancy of the molded body. These problems can be easily avoided by setting the average value of the ratio S1 / S2 to 3 or less, preferably 2 or less, more preferably 1 or less, even more preferably 0.8 or less, and particularly preferably 0.6 or less.
[0025] Furthermore, if the coefficient of variation of the ratio is excessively high, the distribution of hollow particles inside the molded body will be significantly uneven, making it easier for areas with a relatively high proportion of hollow particles and areas with a relatively low proportion of hollow particles to form. This uneven distribution of hollow particles may lead to larger localized fluctuations in the physical properties of the molded body. As a result, for example, the compressive load required for deformation of the molded body may decrease in the initial stages of compression, potentially leading to a decrease in compressive properties and energy absorption efficiency. These problems can be easily avoided by setting the coefficient of variation of the ratio S1 / S2 to 20% or less, preferably 15% or less, more preferably 12% or less, and even more preferably 10% or less.
[0026] The method for calculating the ratio S1 / S2, the average value, and the coefficient of variation of the ratio S1 / S2, which is the ratio of the total area S1 of hollow particles to the total area S2 of foamed particles, is as follows. To calculate the value of the ratio S1 / S2, first, the molded body is randomly cut to expose the cut surface, and a photograph of the cut surface of the molded body 1 is taken using a scanner or the like, as shown in Figure 1. Next, using image processing software or the like, a square measurement area of 50 mm vertically and 50 mm horizontally is set on the photograph of the cut surface, and the total area S1 of hollow particles 2 and the total area S2 of foamed particles 3 that occupy the measurement area are calculated. Note that, in the cut surface of the molded body 1, as shown in Figure 2 for example, the boundaries 11 between particles (i.e., the outer surface of each particle before in-mold molding) are clearly visible, so the area enclosed by the boundaries 11 between particles can be taken as the area of each individual particle.
[0027] To calculate the average value and coefficient of variation of the ratio S1 / S2, first, the molded body is randomly cut to create test specimens with multiple exposed cut surfaces. Next, a scanner or similar device is used to take photographs of each cut surface of the test specimen, and measurement areas are randomly set on the photographs of each cut surface. Then, in each measurement area, the value of the ratio S1 / S2, which is the ratio of the total area of hollow particles to the total area of foamed particles S2, is calculated using the method described above.
[0028] By taking the arithmetic mean of the multiple ratios S1 / S2 obtained in this way, the mean value of the ratio S1 / S2 can be obtained. Furthermore, the unbiased standard deviation of the ratio S1 / S2 can be calculated based on the multiple ratios S1 / S2 values mentioned above, and the coefficient of variation of the ratio S1 / S2 can be calculated by dividing the unbiased standard deviation of the ratio S1 / S2 by the mean value of the ratio S1 / S2.
[0029] The unbiased standard deviation σ of the ratio S1 / S2 is specifically expressed by the following equation (1).
[0030]
number
[0031] However, in the above formula (1), n is the total number of measurement areas set on the cross-section, and S i is the value of the ratio S1 / S2 in the i-th measurement region, and S ave This is the average value of the ratio S1 / S2.
[0032] When calculating the mean and coefficient of variation of the ratio S1 / S2, the total number of measurement areas set on the cross-section should be 50 or more. The more measurement areas there are, the easier it is to obtain a more accurate mean and standard deviation.
[0033] [Area per hollow particle and ratio of area per hollow particle to area per foamed particle] The average area per hollow particle in the cross-section of the molded body is 3 mm². 2 More than 60mm 2Preferably, the ratio of the average area per hollow particle to the average area per foam particle is 0.7 or more and 1.4 or less. By setting the average area per hollow particle within the specified range, and further setting the average area per foam particle to a value relatively close to the average area per hollow particle, the bias in the distribution of hollow particles in the molded body can be further reduced, and hollow particles and foam particles can be distributed more uniformly in the molded body. As a result, the physical properties derived from hollow particles and foam particles can be expressed more reliably, good compressible properties can be expressed, and compression set can be reduced more easily. Furthermore, the energy absorption efficiency of the molded body can be improved more easily over a wide range of strain amounts.
[0034] From a similar perspective, the average area per hollow particle is 5 mm². 2 40mm or more 2 More preferably, 8 mm 2 More than 30mm 2 It is even more preferable that the following conditions are met. Furthermore, the ratio of the average area per hollow particle to the average area per foam particle is preferably 0.8 or higher, more preferably 0.9 or higher, and even more preferably 1.0 or higher.
[0035] The method for calculating the average area per hollow particle, as described above, is as follows: First, the molded body is cut along a desired line to expose the cut surface, and a photograph of the cut surface is taken using a scanner or the like. Next, using image processing software, a measurement area containing the hollow particles is set on the photograph of the cut surface, and the total area S1 of the hollow particles within the measurement area and the number of hollow particles are calculated. Then, the value obtained by dividing the total area S1 of the hollow particles within the measurement area by the number of hollow particles is taken as the average area per hollow particle.
[0036] The method for calculating the average area per foam particle is the same as the method for calculating the average area per hollow particle described above, except that the total area S1 of the hollow particles in the measurement area and the number of foam particles are used instead. By dividing the average area per hollow particle obtained in this way by the average area per foam particle, the ratio of the average area per hollow particle to the average area per foam particle can be obtained.
[0037] When calculating the average area per hollow or foamed particle, it is preferable that the number of hollow or foamed particles present in the measurement area be, for example, 100 or more. If the number of hollow or foamed particles present in the measurement area is small, it is also possible to randomly set multiple measurement areas on a photograph of the cross-section and sum the area and number of hollow or foamed particles in these measurement areas.
[0038] [density] The density of the molded body is 20 kg / m³ 3 More than 100kg / m 3 The following is preferable: A molded body having the density within the specified range is lightweight, possesses good mechanical strength, and can more reliably keep the compressive load required for deformation of the molded body within the desired range in the initial stages of compression. As a result, the energy absorption efficiency of the molded body can be more reliably improved when the amount of strain is small. From the viewpoint of further enhancing this effect, the density of the molded body is 25 kg / m³. 3 It is more preferable that the amount be greater than or equal to 30 kg / m 3 It is even more preferable that the density of the molded body be 80 kg / m³. 3 It is more preferable that the following is 60 kg / m 3 It is even more preferable that the following conditions apply: 50 kg / m 3 The following is particularly preferable. In this case, the molded body can be made lighter more easily while obtaining the effects described above.
[0039] [Compressive stress] The compressive stress σ of the molded body at 50% deformation at 23°C 50 (Unit: kPa) 10% deformation compressive stress σ at 23°C 10 (Unit: kPa) Ratio σ 10 / σ 50 The value is between 0.70 and 1.0. The energy absorption characteristics of the molded body can be evaluated based on the magnitude of the compressive stress at various strain levels. That is, a certain strain level ε a The energy absorption efficiency of the molded body in this case is expressed in a stress-strain curve where the horizontal axis is the amount of strain applied to the molded body and the vertical axis is the compressive stress corresponding to the amount of strain, from the start of compression to the amount of strain ε a The closer the shape of the stress-strain curve is to a rectangle, the higher the value. In other words, the amount of strain ε a Compressive stress σ in a and strain amount ε a A strain amount ε smaller than b Compressive stress σ in b The smaller the difference between the two, the closer the shape of the stress-strain curve becomes to a rectangle, and the strain amount ε a The molded body has a high energy absorption efficiency.
[0040] The molded body is formed by in-mold molding of a mixture of hollow particles and foamed particles, thereby reducing the uneven distribution of hollow particles and foamed particles within the molded body, and achieving a 50% deformation compressive stress σ at 23°C. 50 (Unit: kPa) 10% deformation compressive stress σ at 23°C 10 (Unit: kPa) Ratio σ 10 / σ 50 This can be defined as the aforementioned specific range. Furthermore, a molded article having such characteristics has good compressible properties and excellent energy absorption characteristics over a wide range of strain amounts.
[0041] From a similar perspective, the 75% deformation compressive stress σ of the molded article at 23°C 75 (Unit: kPa) 10% deformation compressive stress σ at 23°C 10 (Unit: kPa) Ratio σ 10 / σ 75It is preferable that the value is between 0.30 and 1.0, more preferably between 0.38 and 0.70, and even more preferably between 0.40 and 0.60.
[0042] Furthermore, the 10% deformation compressive stress σ of the molded body relative to its density 10 The ratio is 8.0 kPa / (kg / m 3 Preferably, it is 8.5 kPa / (kg / m²) or higher. 3 It is more preferable that the density is greater than or equal to σ. In this case, the compressive properties of the molded article can be further improved, and the energy absorption characteristics of the molded article can be further improved over a wide range of strain amounts. Note that the 10% deformation compressive stress σ of the density of the molded article 10 There is no particular upper limit to the ratio, but for example, 15 kPa / (kg / m 3 ) may also be 12kPa / (kg / m 3 ) is also acceptable.
[0043] [Compression set] The compression set of the molded article is preferably 15% or less, more preferably 12% or less, and even more preferably 10% or less. A molded article having such characteristics is less prone to accumulating permanent strain even when a compressive load is applied, and is easily restored to its pre-compression shape. Therefore, a molded article with a compression set within the above-mentioned specific range is less prone to deformation even when a compressive load is applied, and can maintain its excellent energy absorption characteristics for a longer period of time. The compression set of the molded article is measured based on the method specified in JIS K6767:1999.
[0044] [Thickness of the outer shell layer of a hollow particle] In the molded body, it is preferable that the average thickness of the outer shell layer of the hollow particles is 50 μm or more and 400 μm or less. In this case, the physical properties derived from the hollow particles can be expressed more reliably, and the compression set of the molded body can be reduced more easily. In addition, in this case, the increase in the compressive load required for the deformation of the molded body due to the increase in the amount of strain can be suppressed, and the energy absorption efficiency when the amount of strain is large can be further improved.
[0045] The method for calculating the average thickness of the outer shell layer of hollow particles in a molded body is as follows: First, the molded body is cut along a desired line to expose the cut surface, and a photograph of the cross-section is taken using a scanner or the like. Next, using image processing software, a measurement area containing the hollow particles is set on the photograph of the cut surface, and for each hollow particle present within the measurement area, the area of the hollow particle and the area of the hollow portion are calculated.
[0046] Next, based on the area of the hollow particle and the area of the hollow portion, the equivalent circular diameter of the hollow particle (i.e., the diameter of a circle equal to the area of the hollow particle) and the equivalent circular diameter of the hollow portion (i.e., the diameter of a circle equal to the area of the hollow portion) are calculated. Then, half of the value obtained by subtracting the equivalent circular diameter of the hollow portion from the equivalent circular diameter of the hollow particle is taken as the thickness of the outer shell layer of each hollow particle.
[0047] After performing the above operations on multiple hollow particles, the average thickness of the outer shell layer of the obtained hollow particles can be obtained by taking the arithmetic mean of the thicknesses of the outer shell layer of the multiple hollow particles. Preferably, the number of hollow particles used to calculate the average thickness of the outer shell layer of hollow particles is, for example, 100 or more. If the number of hollow particles present in the measurement area is small, it is also possible to randomly set multiple measurement areas on a photograph of the cross-section and use the hollow particles within these measurement areas. Furthermore, if there are multiple cross-sections, it is also possible to set a measurement area for each of the multiple cross-sections.
[0048] [Total thickness of the resin film in the outer shell layer of hollow particles] The average total thickness of the resin film in the outer shell layer of the hollow particles in the molded body is preferably 40 μm or more and 200 μm or less. In this case, the physical properties derived from the hollow particles can be expressed more reliably, and the compression set of the molded body can be reduced more easily. In addition, in this case, the increase in the compressive load required for the deformation of the molded body due to the increase in the amount of strain can be suppressed, and the energy absorption efficiency when the amount of strain is large can be further improved.
[0049] The method for calculating the average total thickness of the resin film in the outer shell layer of hollow particles is as follows: First, the molded body is cut at an appropriate position to expose the cut surface. Using a scanning electron microscope, more than 30 hollow particles are randomly selected from the hollow particles exposed on the cut surface to be observed. By observing these hollow particles at an appropriate magnification (for example, 200x magnification), magnified images of the outer shell layer of each hollow particle are obtained.
[0050] Next, a line segment extending in the thickness direction of the outer shell layer is drawn on the outer shell layer of each hollow particle, from the outer surface of the outer shell layer (i.e., the surface fused with other particles) to the inner surface of the outer shell layer (i.e., the surface facing the hollow portion). This operation is performed at 10 or more locations randomly selected from each magnified photograph, and the length of the line segment extending in the thickness direction of the outer shell layer is measured, and the length of the portion of each line segment that overlaps with the air bubble is calculated. Next, the total thickness of the resin film of the outer shell layer along each line segment is calculated by subtracting the length of the portion that overlaps with the air bubble from the length of each line segment. The total thickness of the resin film of the outer shell layer in each hollow particle is calculated by taking the arithmetic mean of the total thickness of the resin film along each line segment.
[0051] Then, after calculating the total thickness of the resin film for 30 or more hollow particles, the average value of the total thickness of the resin film in the outer shell layer of the hollow particles can be obtained by taking the arithmetic mean of these total resin film thicknesses.
[0052] [Flame retardant] The hollow particles and foamed particles in the molded body contain a brominated flame retardant, and it is preferable that when a flammability test is performed based on FMVSS (Federal Motor Vehicle Safety Standards) No. 302, (1) the molded body exhibits self-extinguishing properties, or (2) the burning rate of the molded body is 102 mm / min or less. Note that "the molded body exhibits self-extinguishing properties" in condition (1) means that any one of the following conditions (1a) to (1c) is met: condition (1a): the molded body does not ignite, condition (1b): the combustion of the molded body ends before it reaches the position where the measurement of the burning time begins, and condition (1c): the combustion of the molded body ends within 60 seconds after it reaches the position where the measurement of the burning time begins, and the burning distance from the position where the measurement of the burning time begins to the position where the combustion ends is 51 mm or less. A molded article that satisfies either condition (1) or condition (2) above has excellent flame retardancy that conforms to the FMVSS No. 302 standard, and is therefore suitable for use as a vehicle shock absorber.
[0053] From the viewpoint of more reliably imparting excellent flame retardancy to the molded article, it is preferable that the amount of brominated flame retardant in the molded article be 0.5% by mass or more and 10% by mass or less. From the same viewpoint, it is more preferable that the amount of brominated flame retardant in the hollow particles of the molded article be 0.05% by mass or more and 15% by mass or less, and the amount of brominated flame retardant in the foamed particles be 0.05% by mass or more and 15% by mass or less.
[0054] Furthermore, if a brominated flame retardant is contained in the molded article, from the viewpoint of more reliably enhancing flame retardancy, the content of the organic physicoblasting agent in the molded article is preferably 4% by mass or less (including 0% by mass), and more preferably 3% by mass or less (including 0% by mass). Examples of organic physicoblasting agents in the molded article include hydrocarbons having 3 to 6 carbon atoms. The organic physicoblasting agent in the molded article is derived, for example, from an organic physicoblasting agent used in the process of manufacturing foamed particles or hollow particles. Such organic physicoblasting agents usually remain in the particles and in the molded article even after in-mold molding of the mixed particles.
[0055] [Application] As described above, the molded article has good compressible properties and low compression set, as well as excellent energy absorption characteristics over a wide range of strain levels. Therefore, the molded article is suitable as an impact absorber. An impact absorber made from the molded article may be used, for example, in automotive materials, building materials, logistics materials, cushioning materials, bedding, etc. In particular, impact absorbers used in vehicles such as automobiles need to appropriately absorb impacts that occur during collisions, etc., and reduce the impact acceleration experienced by occupants. Because the molded article of the present invention has excellent energy absorption efficiency over a wide range of strain levels, it is well-suited as an impact absorber for vehicles such as floor spacers, tibial pads, door pads, and bumpers, and is particularly suitable as a floor spacer or tibial pad.
[0056] (Method of manufacturing a molded product) The molded article is manufactured, for example, as follows: First, a mixture of hollow particles and foamed particles is filled into a mold having a cavity corresponding to the desired shape of the molded article. When filling the mold with the mixture of particles, the hollow particles and foamed particles may be mixed beforehand before filling the mold with the mixture of particles. Alternatively, the hollow particles and foamed particles may be supplied to the mold simultaneously, so that they are mixed and filled into the mold.
[0057] The bulk density of the hollow particles to be filled into the mold is 20 kg / m³. 3 More than 100kg / m 3The following conditions apply, and it is preferable that the ratio of the bulk density of hollow particles to the bulk density of foamed particles is between 0.7 and 1.4. By setting the bulk density of the hollow particles within the specified range, and further setting the bulk density of the foamed particles to a value relatively close to that of the hollow particles, the hollow particles and foamed particles can be mixed more uniformly, and the hollow particles and foamed particles can be distributed more uniformly within the mold. As a result, the molded body after in-mold molding is more likely to exhibit both the physical properties derived from the hollow particles and the physical properties derived from the foamed particles, resulting in good compressive properties and easier reduction of compression set. Furthermore, the energy absorption efficiency of the molded body can be more easily improved over a wide range of strain amounts.
[0058] From a similar perspective, it is preferable that the average particle diameter of the hollow particles filled into the mold is 2 mm or more and 9 mm or less, and the ratio of the average particle diameter of the hollow particles to the average particle diameter of the foamed particles is 0.7 or more and 1.4 or less. The average particle diameter of the hollow particles is the value of the cumulative 63% diameter (i.e., d63) calculated based on the volume-based particle size distribution of the hollow particles. The volume-based particle size distribution of the hollow particles can be obtained using a particle size distribution measuring device (for example, "Millitrack JPA" manufactured by Nikkiso Co., Ltd.). Similarly, the average particle diameter of the foamed particles is the value of the cumulative 63% diameter (i.e., d63) calculated based on the volume-based particle size distribution of the foamed particles. The volume-based particle size distribution of the foamed particles can be obtained using a particle size distribution measuring device (for example, "Millitrack JPA" manufactured by Nikkiso Co., Ltd.).
[0059] After filling the mold with the mixed particles, the mixed particles inside the mold are heated with a heating medium such as steam. The hollow particles and foamed particles inside the mold expand and fuse together as they are heated within the cavity. As a result, a molded body is obtained that has a shape corresponding to the shape of the cavity and is composed of a mixture of hollow particles and foamed particles. The molded body obtained in this way may be used as is as a shock absorber. Alternatively, the molded body can be machined or otherwise processed to form a desired shape, and the resulting molded body can be used as a shock absorber.
[0060] (hollow particles) The hollow particles used in the manufacture of the molded article have an outer shell layer and a hollow portion surrounded by the outer shell layer. The hollow particles of the present invention are hollow particles obtained by foaming resin particles containing a physical foaming agent, which will be described later. The hollow particles of the present invention have a structure different from foamed particles that have a cellular structure in which a large number of bubbles are formed relatively uniformly throughout the particle. It is preferable that the hollow particles are spherical before being molded in the mold.
[0061] The hollow portion of a hollow particle is located closer to the center of the particle than the outer shell layer. The hollow portion, that is, the region surrounded by the outer shell layer, only needs to be substantially hollow. Here, "substantially hollow" means that when a hollow particle is cut through its center and the cross-section is observed at a magnification of 20 to 1000 times using a transmission electron microscope or the like, the structure of the outer shell layer and the structure of the hollow portion are clearly different.
[0062] For example, the hollow portion may be a single space separated from the outside of the hollow particle by the outer shell layer. Alternatively, the hollow portion may have space walls made of the base resin that divide the hollow portion into multiple spaces. In this case, the hollow portion may have several to several dozen spaces, separated by the space walls of the hollow portion and by the inner surface of the outer shell layer. From the viewpoint of easily exhibiting desired physical properties, it is preferable that the cross-section when the hollow particle is divided in half is divided into 50 spaces or less, more preferably 30 spaces or less, even more preferably 10 spaces or less, and particularly preferably 5 spaces or less.
[0063] If the region surrounded by the outer shell layer is substantially hollow, a molded article with desired physical properties can be obtained by in-mold molding, and a molded article with low compression set and excellent energy absorption efficiency over a wide range of strains can be manufactured. Preferably, the hollow portion of the hollow particle is a single space separated from the outside of the hollow particle by the outer shell layer. Furthermore, for the structure of the hollow particles and the hollow portion in the molded article after in-mold molding, refer to the explanation of the structure of hollow particles and the hollow portion used in the manufacture of molded articles as appropriate.
[0064] [Average particle size] The average particle diameter of the hollow particles before in-mold molding is preferably between 2 mm and 9 mm. By in-mold molding hollow particles having the average particle diameter within the specified range, a molded body with desired properties can be obtained more easily. The average particle diameter of the hollow particles can be measured by the method described above.
[0065] [bulk density] The bulk density of the hollow particles before in-mold molding is 20 kg / m³. 3 More than 100kg / m 3 The following is preferable: Hollow particles having the aforementioned hollow structure and the bulk density within the specified range are lightweight and have excellent rigidity and resilience. Therefore, by in-mold molding hollow particles having such bulk density together with foamed particles, a molded body that is lightweight, has low compression set, and has excellent energy absorption efficiency over a wide range of strains can be easily obtained. From the viewpoint of increasing the rigidity and resilience of the hollow particles, the bulk density of the hollow particles before in-mold molding should be 22 kg / m³. 3 It is more preferable that the amount be greater than or equal to 25 kg / m 3 It is even more preferable that the above conditions are met.
[0066] Furthermore, from the perspective of further improving the lightweight properties of hollow particles, the bulk density of the hollow particles before in-mold molding should be 80 kg / m³. 3 It is more preferable that the following is 60 kg / m 3 It is even more preferable that the following conditions apply: 50 kg / m 3The following is particularly preferable:
[0067] The bulk density of the hollow particles mentioned above is calculated using the following method. First, prepare an arbitrary amount of hollow particles as the object to be measured. Adjust the state of the object by leaving it for 10 days under conditions of 50% relative humidity, 23°C, and 1 atm. After allowing the object to naturally accumulate in a graduated cylinder, lightly tap the bottom of the graduated cylinder to stabilize the height of the object inside the cylinder. Then, read the bulk volume (unit: L) of the object indicated by the scale on the graduated cylinder. Divide the mass (unit: g) of the object placed in the graduated cylinder by the bulk volume and convert the units. Thus, the bulk density of the hollow particles (unit: kg / m³) is obtained. 3 ) can be obtained.
[0068] [Outer layer] The outer shell layer of a hollow particle has a resin film made of a base resin and a plurality of air bubbles partitioned by the resin film. The outer shell layer may have a multilayer structure including, for example, a solid lower layer facing the hollow portion, a solid upper layer exposed to the outermost surface of the hollow particle (i.e., the outer surface of the outer shell layer), and a foamed layer located between the lower and upper layers and containing a plurality of air bubbles. Note that "solid" means a state in which there are substantially no air bubbles in the resin.
[0069] The average total thickness of the resin film in the hollow particles before in-mold molding is preferably 30 μm or more, more preferably 35 μm or more, and even more preferably 40 μm or more. By in-mold molding such hollow particles, it is possible to more easily obtain a molded body in which the compressive load required for deformation in the initial stage of compression is moderately high and the energy absorption efficiency is high when the amount of strain is large. Furthermore, the average total thickness of the resin film in the hollow particles is preferably 200 μm or less, more preferably 150 μm or less, and even more preferably 120 μm or less. In this case, it is possible to more easily obtain a molded body with low density and excellent energy absorption efficiency.
[0070] The average thickness of the outer shell layer in the hollow particles before in-molding is preferably greater than 50 μm and less than or equal to 350 μm. Furthermore, the ratio of the average value of the total thickness of the resin film to the average thickness of the outer shell layer in the hollow particles before in-molding is preferably 0.3 or more, and more preferably 0.5 or more. By specifying the structure of the outer shell layer according to the average thickness and the ratio of the average value of the total thickness of the resin film to the average thickness of the outer shell layer, the durability of the outer shell layer against load can be improved. This makes it possible to improve the resilience of the hollow particles against repeated loads.
[0071] The average thickness of the outer shell layer, as mentioned above, is calculated using the following method. First, the hollow particles before in-molding are divided into approximately two equal parts, exposing the cross-section of the outer shell layer. Using a scanning electron microscope, three or more observation positions are randomly set within one of the regions obtained by dividing the cross-section of the outer shell layer into approximately four equal parts. By observing these observation positions at an appropriate magnification (for example, 1000x magnification), magnified photographs of the cross-section of the outer shell layer at each observation position are obtained.
[0072] On the outer shell layer in the obtained magnified photograph, line segments extending in the thickness direction of the outer shell layer (i.e., the radial direction of the hollow particle) are drawn from the outer surface to the inner surface of the outer shell layer. This operation is performed at 10 or more randomly selected locations within each magnified photograph, and the lengths of the line segments at a total of 30 or more locations are measured. The arithmetic mean of the lengths of the line segments obtained in this way is taken as the thickness of the outer shell layer of each hollow particle. Then, the thickness of the outer shell layer described above is calculated for 5 or more randomly selected hollow particles, and the arithmetic mean of these outer shell layer thicknesses is taken as the average thickness of the outer shell layer.
[0073] Furthermore, when measuring the thickness of the outer shell layer, large bubbles with a length of 100 μm or more in the thickness direction of the outer shell layer may exist near the inner surface of the outer shell layer. Such large bubbles shall be treated as hollow portions. Specifically, if the aforementioned large bubbles exist near the inner surface of the outer shell layer, the length of the line segment from the outer surface of the hollow particle to the aforementioned bubble shall be taken as the thickness of the outer shell layer.
[0074] To calculate the average total thickness of the outer shell resin film in hollow particles before in-molding, similar to the method for calculating the average thickness of the outer shell layer, three or more observation positions are randomly set in one of the regions obtained by dividing the cross-section of the outer shell layer into approximately four equal parts, and magnified photographs of the cross-section of the outer shell layer are taken at each observation position. Then, line segments extending in the thickness direction of the outer shell layer are drawn on the outer shell layer in each magnified photograph, from the outer surface to the inner surface of the outer shell layer.
[0075] The above operations are performed at 10 or more locations randomly selected from each magnified photograph to measure the length of line segments extending in the thickness direction of the outer shell layer, and to calculate the length of the portion of each line segment that overlaps with the air bubble. Next, the length of the portion overlapping with the air bubble is subtracted from the length of each line segment, and the total thickness of the resin film of each hollow particle is calculated by taking the arithmetic mean of these values. Then, the total thickness of the resin film is calculated for 5 or more randomly selected hollow particles, and the arithmetic mean of these total resin film thicknesses is taken as the average total thickness of the resin film.
[0076] [Base resin] The base resin of the resin film in the hollow particles is a composite resin containing a (meth)acrylic acid ester component derived from a (meth)acrylic acid ester monomer and a styrene-based component derived from a styrene-based monomer (sometimes called a "styrene-based monomer component"). The composite resin is preferably a composite resin obtained by impregnating a styrene-based resin (styrene-based resin core particles) with a (meth)acrylic acid ester monomer and a styrene-based monomer, as described later. The total proportion of the (meth)acrylic acid ester component and the styrene-based component in the composite resin is preferably 80% by mass or more, more preferably 90% by mass or more, and even more preferably 95% by mass or more.
[0077] Examples of (meth)acrylic acid ester components contained in the composite resin include components derived from acrylic acid ester monomers such as methyl acrylate, ethyl acrylate, propyl acrylate, butyl acrylate, and 2-ethylhexyl acrylate, as well as components derived from methacrylic acid ester monomers such as methyl methacrylate, ethyl methacrylate, propyl methacrylate, butyl methacrylate, and 2-ethylhexyl methacrylate. The composite resin may contain one component selected from these (meth)acrylic acid ester components, or it may contain two or more components.
[0078] It is preferable that the composite resin contains a component derived from methyl methacrylate as a (meth)acrylic acid ester component. In this case, the content of the component derived from methyl methacrylate in the (meth)acrylic acid ester component 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. In this case, the structure and physical properties of the hollow particles can be more reliably made to the desired structure and physical properties.
[0079] Examples of styrene-based components included in the composite resin include components derived from styrene monomers such as styrene, α-methylstyrene, o-methylstyrene, m-methylstyrene, p-methylstyrene, p-ethylstyrene, 2,4-dimethylstyrene, p-methoxystyrene, pn-butylstyrene, pt-butylstyrene, o-chlorostyrene, m-chlorostyrene, p-chlorostyrene, 2,4,6-tribromostyrene, divinylbenzene, styrenesulfonic acid, and sodium styrenesulfonate, as well as components derived from copolymers of styrene monomers with other monomers or polymers, such as rubber-modified polystyrene, acrylonitrile-butadiene-styrene copolymer, acrylonitrile-styrene copolymer, and acrylonitrile-ethylenepropylene rubber-styrene copolymer. The composite resin may contain one component selected from these styrene-based components, or it may contain two or more components.
[0080] It is preferable that the composite resin contains a styrene-derived component as a styrene-based component. In this case, the content of the styrene-derived component in the styrene-based component 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. In this case, the structure and physical properties of the hollow particles can be more reliably made to the desired structure and physical properties.
[0081] The composite resin may contain components other than (meth)acrylic acid ester components and styrene-based components. Examples of such components include components derived from monomers having carbon-carbon double bonds, such as vinyl compounds containing hydroxyl groups, such as hydroxyethyl acrylate, and vinyl compounds containing nitrile groups, such as acrylonitrile.
[0082] In the composite resin, the amount of components other than the (meth)acrylic acid ester component and the styrene-based component is preferably 20 parts by mass or less, more preferably 10 parts by mass or less, and even more preferably 5 parts by mass or less, based on 100 parts by mass of the total of the (meth)acrylic acid ester component and the styrene-based component. In this case, the structure and physical properties of the hollow particles can be more reliably achieved to the desired structure and physical properties.
[0083] The composite resin can be obtained, for example, by impregnating styrene resin core particles with (meth)acrylic acid ester monomers and styrene monomers through polymerization. As the base resin for the styrene resin core particles, a styrene resin composed of the aforementioned styrene components can be used. More specifically, as the base resin for the styrene resin core particles, a homopolymer of styrene monomers or a copolymer of styrene monomers and other monomers or polymers can be used. The base resin for the styrene resin core particles is preferably polystyrene.
[0084] The mass ratio of the (meth)acrylic acid ester component to the styrene-based component contained in the composite resin is preferably (meth)acrylic acid ester component:styrene-based component = 70:30 to 30:70, and more preferably (meth)acrylic acid ester component:styrene-based component = 60:40 to 40:60. In this case, the yield of hollow particles having the specific structure can be increased.
[0085] Furthermore, when a composite resin is produced by impregnating and polymerizing core particles composed of a base resin containing a (meth)acrylic acid ester component and / or a styrene-based component with a (meth)acrylic acid ester monomer and / or a styrene-based monomer, the mass ratio of the (meth)acrylic acid ester component to the styrene-based component contained in the composite resin can be determined from the relationship between the mass of each component in the core particle and the mass of each monomer that is impregnated and polymerized.
[0086] [Flame retardant] The hollow particles may contain a brominated flame retardant. In this case, the flame retardancy of the molded article can be further improved. From the viewpoint of improving the fusion state between particles while further enhancing the flame retardancy of the molded article, the amount of brominated flame retardant in the hollow particles is preferably 0.05% by mass or more and 15% by mass or less. Examples of brominated flame retardants include brominated bisphenol flame retardants and brominated styrene-butadiene copolymers. Examples of brominated bisphenol flame retardants include brominated compounds having a bisphenol A skeleton, brominated compounds having a bisphenol F skeleton, and brominated compounds having a bisphenol S skeleton. More specifically, brominated bisphenol A-based flame retardants such as 2,2-bis(4-(2,3-dibromo-2-methylpropoxy)-3,5-dibromophenyl)propane and 2,2-bis(4-(2,3-dibromopropoxy)-3,5-dibromophenyl)propane, and brominated bisphenol S-based flame retardants such as bis[3,5-dibromo-4-(2,3-dibromopropoxy)phenyl]sulfone can be used as brominated bisphenol flame retardants. In addition, brominated styrene-butadiene block copolymers can be used as brominated styrene-butadiene copolymers. These brominated flame retardants may be used alone or in combination of two or more types of brominated flame retardants.
[0087] Furthermore, the method of adding the flame retardant to the hollow particles is not particularly limited. For example, composite resin particles containing the flame retardant can be obtained by impregnating and polymerizing (meth)acrylic acid ester monomers and styrene monomers into core particles using a styrene resin as the base resin in the presence of a flame retardant, and then hollow particles containing the flame retardant can be obtained by impregnating these composite resin particles with a foaming agent and then foaming them.
[0088] [Additives] The hollow particles may contain additives such as bubble regulators, catalyst neutralizers, lubricants, crystal nucleating agents, and antistatic agents, to the extent that they do not impair the effects described above. The amount of additives in the hollow particles is preferably 20% by mass or less, more preferably 15% by mass or less, even more preferably 10% by mass or less, and particularly preferably 5% by mass or less, based on the total mass of the hollow particles.
[0089] (Method for manufacturing hollow particles) As a method for producing the hollow particles, for example, a method can be employed in which the composite resin is used as a base resin, resin particles containing an organic physical foaming agent are prepared, and then the resin particles are foamed.
[0090] As a method for producing resin particles, for example, a method can be employed in which styrene-based resin core particles (hereinafter referred to as "core particles" as appropriate) are impregnated with (meth)acrylic acid ester monomers and styrene-based monomers, the (meth)acrylic acid ester monomers and styrene-based monomers are polymerized, and an organic physical blowing agent is impregnated at the same time.
[0091] More specifically, the method for producing resin particles includes a dispersion step of dispersing core particles in an aqueous medium, A modification step is to impregnate the core particles dispersed in the aqueous medium with a (meth)acrylic acid monomer and a styrene monomer, and polymerize the (meth)acrylic acid monomer and the styrene monomer to obtain resin particles. The process may include an impregnation step in which an organic physical blowing agent is impregnated into the core particles or resin particles at least once during, before, during, or after the modification process. The dispersion step, modification step, and impregnation step may be carried out continuously in a single sealed container, or they may be carried out in separate containers. Each step will be described in detail below.
[0092] [Dispersion process] In the dispersion process, the core particles are dispersed in an aqueous medium to prepare a suspension. For example, deionized water can be used as the aqueous medium. In addition to the core particles, suspension agents, surfactants, etc., may be added to the aqueous medium as needed.
[0093] The base resin of the core particles used in the dispersion process is preferably a styrene-based resin as described above, more preferably a styrene-based resin containing 50% by mass or more of styrene-derived components, and even more preferably polystyrene. The core particles may also contain other resins other than styrene-based resins, such as acrylic resins which are polymers of (meth)acrylic acid ester monomers, to the extent that the effects described above are not impaired. The core particles may also contain additives such as foam regulators, pigments, slip agents, antistatic agents, and flame retardants.
[0094] The method for producing the core particles is not particularly limited. For example, one method for producing core particles is to use a granulation apparatus equipped with an extruder. In this case, methods such as strand cutting, underwater cutting, and hot cutting can be employed. Furthermore, the core particles may be produced, for example, by suspension polymerization, in which styrene monomers are polymerized in an aqueous medium.
[0095] The average particle diameter of the core particles is preferably 0.6 mm to 2.0 mm, and more preferably 0.7 mm to 1.5 mm. In this case, polymerization stability in the modification process is enhanced, and it is easier to increase the weight-average molecular weight of the composite resin. Furthermore, by performing the modification and impregnation processes using core particles with an average particle diameter within the above-mentioned specific range, the structure of the hollow particles obtained in the end can be more reliably determined to be the desired structure.
[0096] The average particle diameter of the core particles is the cumulative 63% diameter (i.e., d63) value calculated based on the particle size distribution on a volume basis of the core particles, and can be measured using a particle size distribution analyzer (for example, "Millitrack JPA" manufactured by Nikkiso Co., Ltd.).
[0097] Examples of suspending agents used in the dispersion process include inorganic suspending agents consisting of fine particles of inorganic substances such as tricalcium phosphate, hydroxyapatite, magnesium pyrophosphate, magnesium phosphate, aluminum hydroxide, ferric hydroxide, titanium hydroxide, magnesium hydroxide, barium phosphate, calcium carbonate, magnesium carbonate, barium carbonate, calcium sulfate, barium sulfate, talc, kaolin, and bentonite, as well as organic suspending agents such as polyvinylpyrrolidone, polyvinyl alcohol, ethylcellulose, and hydroxypropyl methylcellulose. These suspending agents may be used alone or in combination of two or more. Preferably, the suspending agent is one or more of tricalcium phosphate, hydroxyapatite, and magnesium pyrophosphate.
[0098] Examples of surfactants that can be used include anionic surfactants, nonionic surfactants, cationic surfactants, and amphoteric surfactants. The surfactant is preferably anionic, more preferably an alkali metal salt of alkyl sulfonate having 8 to 20 carbon atoms, and even more preferably a sodium alkyl sulfonate having 8 to 20 carbon atoms. By using these surfactants, when (meth)acrylic acid monomers and styrene monomers are added in the subsequent modification step, the state in which core particles and monomers are suspended in the aqueous medium is more easily maintained.
[0099] The suspension may, if necessary, contain electrolytes consisting of inorganic salts such as lithium chloride, potassium chloride, sodium chloride, sodium sulfate, sodium nitrate, sodium carbonate, and sodium bicarbonate.
[0100] [Modification process] In the modification process, (meth)acrylic acid ester monomers and styrene monomers are added to the suspension, impregnating the core particles with the (meth)acrylic acid ester monomers and styrene monomers, and polymerizing these monomers. This yields composite resin particles using a composite resin containing styrene components and (meth)acrylic acid ester components as the base resin.
[0101] In the modification process, the proportion of styrene in the styrene monomer added 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. In this case, the structure and physical properties of the hollow particles can be more reliably made to the desired structure and physical properties. From a similar viewpoint, the proportion of methyl methacrylate in the (meth)acrylic acid ester monomer added in the modification process 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.
[0102] In the modification process, the total amount of (meth)acrylic acid ester monomer added and the amount of styrene monomer added is preferably 200 parts by mass or more and 700 parts by mass or less per 100 parts by mass of core particles, and more preferably 250 parts by mass or more and 600 parts by mass or less. The ratio of the amount of (meth)acrylic acid ester monomer added to the amount of styrene monomer added can be appropriately set according to the desired composition of the composite resin. From the viewpoint of easily obtaining good hollow particles, the ratio of the amount of (meth)acrylic acid ester monomer added to the amount of styrene monomer added is preferably (meth)acrylic acid ester monomer:styrene monomer = 50:50 to 85:15 in mass ratio, and more preferably (meth)acrylic acid ester monomer:styrene monomer = 60:40 to 75:25.
[0103] In the modification process, a polymerization initiator is used to polymerize the (meth)acrylic acid ester monomer and the styrene monomer. The polymerization initiator is not particularly limited as long as it is a polymerization initiator applicable to the suspension polymerization of styrene monomers. For example, a polymerization initiator that is soluble in vinyl monomers and has a 10-hour half-life temperature of 50°C to 120°C can be used. Examples of such polymerization initiators include organic peroxides such as cumene hydroxyperoxide, dicumyl peroxide, t-butyl peroxy-2-ethylhexanoate, t-butyl peroxybenzoate, benzoyl peroxide, t-butyl peroxyisopropyl carbonate, t-amyl peroxy-2-ethylhexyl carbonate, hexyl peroxy-2-ethylhexyl carbonate, and lauroyl peroxide, as well as azo compounds such as azobisisobutyronitrile. These polymerization initiators may be used alone or in combination of two or more.
[0104] The polymerization initiator may be added to an aqueous medium in a dissolved state in a solvent or monomer, for example, and impregnated into the core particles together with the (meth)acrylic acid monomer and the styrene monomer. In this case, the solvent may be an aromatic hydrocarbon such as ethylbenzene and toluene, or an aliphatic hydrocarbon such as heptane and octane. The amount of polymerization initiator added is preferably 0.01 parts by mass or more and 3 parts by mass or less per 100 parts by mass of the total amount of (meth)acrylic acid monomer and styrene monomer added in the modification step.
[0105] In the modification process, foam regulators, plasticizers, oil-soluble polymerization inhibitors, flame retardants, dyes, etc., may be added as needed. Foam regulators are added to the aqueous medium, for example, in a state where they are dissolved or dispersed in a monomer and / or solvent. Examples of foam regulators include fatty acid monoamides, fatty acid bisamides, talc, silica, polyethylene wax, methylenebisstearic acid, methyl methacrylate copolymers, and silicones. Examples of fatty acid monoamides include oleamide and stearamide. Examples of fatty acid bisamides include ethylenebisstearamide.
[0106] The heating temperature in the modification process and the time required for adding the (meth)acrylic acid ester monomer and styrene monomer should be set appropriately according to the chemical structure of the styrene resin core particles, the chemical structures of the (meth)acrylic acid ester monomer and styrene monomer, the properties of the polymerization initiator, and the desired degree of polymerization of the composite resin.
[0107] The composite resin particles obtained after the modification process preferably have a structure in which the surface layer of the resin particles contains a large amount of (meth)acrylic acid ester components, while the interior of the resin particles contains a large amount of styrene-based components. In the foaming process, by foaming the resin particles in which the (meth)acrylic acid ester components and styrene-based components are distributed as described above, foaming inside the resin particles is promoted while the progress of foaming in the surface layer of the resin particles is suppressed, thereby increasing the yield of hollow particles having an outer shell layer and a hollow portion.
[0108] [Impregnation process] In the impregnation process, resin particles are obtained by impregnating the core particles or composite resin particles with the aforementioned organic physical blowing agent at at least one of the following timings: before the modification process, during the modification process, and after the completion of the modification process. That is, the impregnation process may be performed on the core particles before impregnation with the (meth)acrylic acid ester monomer and the styrene monomer, or on the composite resin particles during the polymerization of the (meth)acrylic acid ester monomer and the styrene monomer in the modification process, or on the composite resin particles after the polymerization of the (meth)acrylic acid ester monomer and the styrene monomer is completed. Furthermore, the core particles or composite resin particles may be impregnated with the organic physical blowing agent at two or more of these timings. From the viewpoint of sufficiently impregnating the interior of the composite resin particles with the organic physical blowing agent and making it easier to form the desired structure of the hollow particles, it is preferable to perform the impregnation process at least before the modification process. From a similar viewpoint, it is preferable that the impregnation process be performed before the modification process, and more preferably at least one of the following timings: during the modification process or after the completion of the modification process. When the impregnation process is performed multiple times, the organic physical blowing agent used in each impregnation process may be the same or different from one another. As the organic physical blowing agent, for example, known organic physical blowing agents used for foamed styrene resin particles, such as hydrocarbons with 3 to 6 carbon atoms, can be used.
[0109] To impregnate core particles or composite resin particles with an organic physical blowing agent, for example, the organic physical blowing agent can be supplied into a sealed container containing these particles, thereby increasing the pressure inside the container. By maintaining this state, the core particles or composite resin particles can be impregnated with the organic physical blowing agent.
[0110] While the core particles or composite resin particles are impregnated with the organic physical blowing agent, the sealed container may be heated as needed. Heating the sealed container can further promote the impregnation of the core particles or composite resin particles with the organic physical blowing agent. The temperature and time for impregnation with the organic physical blowing agent should be set appropriately according to the timing of the impregnation process. For example, in the impregnation process performed before the modification process, it is preferable to impregnate the core particles with the organic physical blowing agent by maintaining a temperature of approximately 40°C to 90°C for 0.5 hours to 3 hours. In the impregnation process performed during and / or after the modification process, it is preferable to impregnate the core particles or composite resin particles with the organic physical blowing agent by maintaining a temperature of approximately 80°C to 120°C for 3 hours to 5 hours.
[0111] The amount of organic physical foaming agent added in the impregnation process is preferably, for example, 1 to 10 parts by mass, more preferably 3 to 9 parts by mass, and even more preferably 5 to 8 parts by mass, per 100 parts by mass of composite resin particles.
[0112] As described above, resin particles containing an organic physical blowing agent can be obtained by performing the impregnation process. After the impregnation process, the obtained resin particles may be dehydrated and dried as needed. The method of dehydration and drying is not particularly limited, but for example, a method of dehydrating and drying the resin particles by blowing hot air onto them using an airflow dryer can be employed. By dehydrating and drying the resin particles, the amount of moisture contained in the resin particles can be reduced, and while maintaining the foaming properties of the resin particles, excess organic physical blowing agent contained in the surface layer of the resin particles can be easily dispersed. As a result, even hollow particles with low bulk density can be more easily formed into a good outer shell layer. When using an airflow dryer, for example, the hot air temperature can be appropriately set from within the range of 30°C to 60°C, and the drying time from within the range of 0.5 hours to 4 hours.
[0113] The average particle diameter of the resin particles is 1.0 mm or more and 5.0 mm or less. By having the resin particles have an average particle diameter within the above-mentioned specific range, the structure of the resulting hollow particles can be more reliably determined to be the desired structure. From the viewpoint of further increasing the yield of hollow particles having the above-mentioned specific structure, the average particle diameter of the resin particles is preferably 1.1 mm or more and 4.0 mm or less, and more preferably 1.2 mm or more and 3.0 mm or less.
[0114] The average particle size of resin particles is the cumulative 63% diameter (i.e., d63) value calculated based on the particle size distribution of the resin particles on a volume basis, and can be measured using a particle size distribution analyzer (for example, "Millitrack JPA" manufactured by Nikkiso Co., Ltd.).
[0115] Examples of surface coating agents used in the coating process include zinc stearate, triglyceride stearate, monoglyceride stearate, and hydrogenated castor oil. Antistatic agents can also be used as surface coating agents in the coating process. The amount of surface coating agent added is preferably 0.01 parts by mass or more and 2 parts by mass or less per 100 parts by mass of resin particles.
[0116] Hollow particles can be obtained by foaming resin particles containing an organic physical foaming agent. One method for foaming the resin particles is to heat them using a heating medium. Specifically, the resin particles can be foamed by introducing a heating medium such as steam into a pre-foaming machine supplied with resin particles containing an organic physical foaming agent.
[0117] When foaming resin particles containing an organic physical foaming agent, the resin particles may be foamed in one step, or they may be foamed in multiple steps. In the latter case, for example, the resin particles may be foamed to produce one-stage hollow particles with a bulk density greater than the target bulk density, and then these one-stage hollow particles may be foamed further to obtain hollow particles with the desired bulk density.
[0118] (Foaming particles) The foamed particles used in the production of the molded article have a styrene-based resin as the base resin and a structure in which a large number of bubbles are formed relatively uniformly throughout the particle. The styrene-based resin used for the foamed particles is the same as the styrene-based resin used for the styrene-based resin core particles described above. Preferably, the base resin of the foamed particles is a styrene-based resin containing 50% by mass or more of styrene-derived components.
[0119] From the viewpoint of stably obtaining lightweight molded articles with good mechanical properties such as compressibility, the styrene-based resin constituting the foamed particles preferably contains 80% by mass or more of styrene-derived components, more preferably 90% by mass or more, and even more preferably 95% by mass or more. The styrene-based resin constituting the foamed particles is particularly preferably polystyrene.
[0120] Foamed particles are obtained, for example, by foaming foamable styrene-based resin particles containing an organic physical foaming agent, using a styrene-based resin as the base resin. Examples of organic physical foaming agents used in foamed styrene-based resin particles include hydrocarbons having 3 to 6 carbon atoms.
[0121] Expandable styrene resin particles can be manufactured by conventionally known methods, such as suspension polymerization. Furthermore, conventionally known methods can be used for foaming the expandable styrene resin particles. For example, the expandable styrene resin particles can be foamed by supplying a heating medium such as steam to them and heating them. More specifically, the expandable styrene resin particles can be foamed by heating them with steam or the like using a cylindrical foaming machine equipped with a stirring device.
[0122] [Flame retardant] The foamed particles may contain a brominated flame retardant. In this case, the flame retardancy of the molded article can be further improved. From the viewpoint of improving the fusion properties between particles while further enhancing the flame retardancy of the molded article, the amount of brominated flame retardant in the foamed particles is preferably 0.05% by mass or more and 15% by mass or less. Examples of brominated flame retardants used in foamed particles include brominated bisphenol flame retardants and brominated styrene-butadiene copolymers, which were exemplified as brominated flame retardants used in hollow particles. These brominated flame retardants may be used alone or two or more brominated flame retardants may be used in combination.
[0123] Furthermore, there are no particular limitations on the method of adding the flame retardant to the foamed particles. For example, styrene resin particles can be obtained by suspension polymerization of styrene monomers in the presence of a flame retardant, foamed particles can be obtained by impregnating these resin particles with a foaming agent, and then foaming these foamed particles to obtain foamed particles containing the flame retardant.
[0124] [Other additives] Furthermore, the foamed particles may contain additives such as foam regulators, pigments, slip agents, and antistatic agents, to the extent that they do not impair the aforementioned effects.
[0125] [Average particle size] The average particle diameter of the foamed particles before in-mold molding is not particularly limited, but is preferably between 2 mm and 9 mm. From the viewpoint of more uniform mixing of hollow particles and foamed particles, it is preferable that the ratio of the average particle diameter of hollow particles to the average particle diameter of foamed particles is between 0.7 and 1.4. The average particle diameter of the foamed particles can be measured by the method described above.
[0126] [bulk density] The bulk density of the foam particles before in-mold molding is not particularly limited, but 20 kg / m³ is recommended. 3 More than 100kg / m 3The following is preferable: From the viewpoint of more uniformly mixing the hollow particles and foamed particles, it is preferable that the ratio of the bulk density of the hollow particles to the bulk density of the foamed particles is 0.7 or more and 1.4 or less.
[0127] The method for measuring the bulk density of foamed particles is the same as the method for measuring the bulk density of hollow particles described above, except that foamed particles are used instead of hollow particles.
[0128] [Average bubble diameter] The average bubble diameter of the foamed particles is preferably 15 μm to 150 μm, more preferably 20 μm to 120 μm, and even more preferably 30 μm to 90 μm. Since such foamed particles have excellent in-moldability, molded articles with good mechanical strength can be stably obtained.
[0129] The average bubble diameter of foamed particles is measured as follows: First, the foamed particle is divided into two halves, passing through its center, and a magnified photograph of the cross-section is taken using a scanning electron microscope. Next, a straight line is drawn on the photograph, passing from the surface of the foamed particle through the vicinity of the center to the opposite surface, and the number of bubbles intersecting the line is counted. The length of the line (i.e., the actual length at the cross-section of the foamed particle) is divided by the number of bubbles to obtain the bubble diameter of each individual foamed particle (unit: μm). The arithmetic mean of the bubble diameters obtained by performing this operation similarly for 10 foamed particles is taken as the average bubble diameter of the foamed particles (unit: μm). [Examples]
[0130] Specific embodiments of the molded article and its manufacturing method will now be described. First, the hollow particles and foamed particles used in the production of the molded article will be described.
[0131] (hollow particles) The hollow particles used to produce the molded articles consist of an outer shell layer made of a composite resin containing (meth)acrylic acid ester and styrene-based components as the base resin, and a hollow portion surrounded by the outer shell layer. The average particle diameter, bulk density, average total thickness of the resin film of the outer shell layer, and flame retardant contained in the hollow particles are shown in Table 1. Note that for hollow particle A3 shown in Table 1, no flame retardant is added, so the symbol "-" is indicated in the flame retardant column.
[0132] To produce hollow particles, first, styrene-based resin core particles are prepared by suspension polymerization, and then resin particles containing an organic physical blowing agent are prepared using these core particles. By foaming these resin particles, hollow particles can be obtained. The method for producing hollow particles is described in detail below.
[0133] [Production of nuclear particles] First, 765g of deionized water, 0.84g of suspending agent, and 3.2g of surfactant were added to a 3L autoclave equipped with a stirring device. Tricalcium phosphate (manufactured by Taihei Chemical Industry Co., Ltd.) was used as the suspending agent, and sodium dodecylbenzenesulfonate (manufactured by Tokyo Chemical Industry Co., Ltd.) was used as the surfactant.
[0134] Next, while stirring the contents of the autoclave, a polymerization initiator, a plasticizer, and 848 g of styrene were added to the autoclave. As the polymerization initiator, 2.2 g of t-butyl peroxy-2-ethylhexanoate ("Perbutyl® O," manufactured by NOF Corporation) and 0.44 g of t-butyl peroxy-2-ethylhexyl monocarbonate ("Perbutyl® E," manufactured by NOF Corporation) were used in combination. As the plasticizer, 12.7 g of cyclohexane and 6.2 g of hydrogenated beef tallow were used in combination. The plasticizer was added to the autoclave after being dissolved in styrene.
[0135] The contents of the autoclave were stirred at room temperature for 30 minutes, and then the temperature inside the autoclave was raised to 90°C over 1.5 hours. After the temperature inside the autoclave reached 90°C, it was further heated to 100°C over 5.5 hours. After the temperature inside the autoclave reached 100°C, it was further heated to 110°C over 1.5 hours. This temperature was maintained for 2 hours, and then the temperature inside the autoclave was cooled to 30°C over 4 hours. Through these operations, core particles with polystyrene as the base resin were prepared.
[0136] After cooling was complete, the nuclei were removed from the autoclave, and tricalcium phosphate adhering to the surface of the nuclei was removed using nitric acid. The nuclei were then dehydrated and washed using a centrifuge, and any remaining moisture on the surface of the nuclei was removed using an air-jet dryer.
[0137] [Preparation of resin particles containing organic physical blowing agents] 965 g of deionized water and 6.0 g of sodium pyrophosphate were placed in a 3 L autoclave equipped with a stirring device. Then, 12.9 g of powdered magnesium nitrate hexahydrate was added to the autoclave, and the contents of the autoclave were stirred at 40°C for 30 minutes. This resulted in a slurry of magnesium pyrophosphate to be used as a suspension agent.
[0138] Next, a surfactant, 200 g of core particles, and a polymerization initiator were placed in an autoclave. A 1% by mass aqueous solution of sodium lauryl sulfonate was used as the surfactant, with an amount of 0.04 g of sodium lauryl sulfonate added. 2.4 g of benzoyl peroxide (NOF Corporation's "NIPER® BW") was used as the polymerization initiator.
[0139] After purging the autoclave with nitrogen, 18 g of organic physicoblasting agent was added to the autoclave over 10 minutes. The organic physicoblasting agent used was a mixture of approximately 70% by mass of n-butane and approximately 30% by mass of isobutane.
[0140] After adding the organic physical blowing agent, the temperature inside the autoclave was maintained at 40°C for 1 hour. Next, the temperature inside the autoclave was raised to 80°C over 1 hour. While maintaining this temperature, a mixture of 200 g of styrene, 400 g of methyl methacrylate, and a polymerization initiator was added to the autoclave over 6 hours while stirring at a stirring speed of 450 rpm. As the polymerization initiator, 1.2 g of t-butyl peroxybenzoate ("Perbutyl Z" manufactured by NOF Corporation) was used. Furthermore, in order to prepare the hollow particles A1, A2, A4, and A5 shown in Table 1, 80 g of flame retardant was pre-mixed with the aforementioned mixture of styrene, methyl methacrylate, and polymerization initiator, and this mixture was added to the autoclave. As a flame retardant, 2,2-bis(4'-(2",3"-dibromo-2"-methylpropoxy-3',5'-dibromophenyl)propane ("SR-130" manufactured by Daiichi Kogyo Seiyaku Co., Ltd.) was used.
[0141] Thirty minutes after adding styrene and methyl methacrylate, 80 g of pentane, an organic physical blowing agent, was added to the autoclave over 30 minutes. One hour after adding the pentane, the temperature inside the autoclave was raised to 120°C over 1.5 hours and maintained at this temperature for 4 hours. Subsequently, the autoclave was cooled to 35°C over approximately 6 hours. Through these operations, a composite resin containing components derived from styrene and methyl methacrylate was used as the base resin, and resin particles containing the organic physical blowing agent were produced.
[0142] After cooling was complete, the resin particles were removed from the autoclave, and tricalcium phosphate adhering to the surface of the resin particles was removed using nitric acid. The resin particles were then dehydrated and washed using a centrifuge, and finally, any remaining moisture on the surface of the resin particles was removed using an air dryer.
[0143] In this example, the surface of the resin particles obtained as described above was coated with a surface coating agent. Specifically, the surface of the resin particles was coated with a surface coating agent containing the following: a mixture of 0.11 parts by mass of zinc stearate, 0.053 parts by mass of glycerin monostearate, 0.004 parts by mass of talc, and 0.065 parts by mass of an antistatic agent ("Registered Trademark PE132" manufactured by Daiichi Kogyo Seiyaku Co., Ltd.) was added to 100 parts by mass of the resin particles.
[0144] Furthermore, after coating the surface of the resin particles with a surface coating agent, the resin particles were further dried using an air-flow dryer, heating them at 40°C for 1 hour to remove excess moisture and organic physical foaming agents.
[0145] [Production of hollow particles] The resin particles obtained by the method described above were placed into a 30L atmospheric pressure batch foaming machine, and steam was supplied into the foaming machine. The steam temperature was set to 105-125°C, and the heating time was set to 50-150 seconds. This caused the resin particles to foam, yielding hollow particles A1-A5 having the average average particle diameter, bulk density, and total thickness of the outer resin film shown in Table 1.
[0146] The average particle diameter shown in Table 1 is the cumulative 63% diameter calculated based on the particle size distribution of hollow particles on a volume basis. The average values for bulk density and total thickness of the outer layer resin film are measured using the methods described above.
[0147] (Foaming particles) The foamed particles used to produce the molded articles have a styrene-based resin as the base resin and a structure in which numerous air bubbles are formed relatively uniformly throughout the entire particle. The average particle size, bulk density, and flame retardant contained in the foamed particles are shown in Table 1.
[0148] To produce foamed particles, first, foamable styrene-based resin particles containing an organic physical blowing agent are produced using a suspension polymerization method with a styrene-based resin as the base resin. Foamed particles can then be obtained by foaming these foamable styrene-based resin particles. The method for producing foamed particles is described in detail below.
[0149] [Preparation of expanded styrene resin particles] First, 16 kg of deionized water, 14.4 g of suspension agent, and 24.4 g of surfactant and electrolyte were added to a 50 L autoclave equipped with a stirring device. Tricalcium phosphate (manufactured by Taihei Chemical Industry Co., Ltd.) was used as the suspension agent. 0.6 g of sodium α-olefin sulfonate and 0.2 g of disodium alkylbiphenyl disulfonate were used as the surfactant. Sodium acetate was used as the electrolyte.
[0150] Next, a mixture was prepared by mixing 16 kg of styrene with a polymerization initiator, flame retardant, flame retardant aid, plasticizer, foam regulator, and polymerization initiator. This mixture was added to the autoclave while stirring the contents of the autoclave. As the polymerization initiator, 43.2 g of t-butyl peroxy-2-ethylhexanoate (NOF Co., Ltd. "Perbutyl® O") and 25.6 g of t-butyl peroxy-2-ethylhexyl monocarbonate (NOF Co., Ltd. "Perbutyl® E") were used in combination. As the flame retardant, brominated styrene-butadiene block copolymer (Chemtura Japan Co., Ltd. "Emerald Innovation® 3000") was used in the mass ratio shown in Table 1 relative to styrene. As the flame retardant aid, 51.2 g of dicumyl peroxide (NOF Co., Ltd. "Permil® D") was used. As a plasticizer, 12.8 g of liquid paraffin (MORESCO White P-60, manufactured by MORESCO Corporation) was used. As a foam regulator, 3.2 g of polyethylene wax powder (Polyethylene Wax 1000, manufactured by Toyo Adore Co., Ltd.) was used. As a polymerization inhibitor, 0.32 g of 4-t-butylcatechol (DIC-TBC, manufactured by DIC Corporation) was used. In Table 1, the flame retardant is abbreviated as "E3000".
[0151] After purging the autoclave with nitrogen, the temperature inside the autoclave was raised to 90°C over 1.5 hours. After the temperature inside the autoclave reached 90°C, the autoclave was further heated, and the temperature inside the autoclave was raised to 100°C over 6.5 hours. During this heating process, the injection of the organic physicoblasting agent into the autoclave began 5 hours and 30 minutes after the temperature inside the autoclave reached 90°C, and was completed 30 minutes after the start of injection. As the organic physicoblasting agent, 320g of pentane (a mixture of 80% n-pentane and 20% isopentane) and 880g of butane (a mixture of 70% n-butane and 30% isobutane) were used in combination.
[0152] Furthermore, after the temperature inside the autoclave reached 100°C, the autoclave was further heated, and the temperature inside the autoclave was raised to 120°C over 2 hours. This temperature was maintained for 5 hours. After that, the inside of the autoclave was cooled to 30°C over approximately 6 hours. Through these operations, foamable styrene-based resin particles containing an organic physical blowing agent were produced using a styrene-based resin as the base resin.
[0153] [Production of foamed particles] The foamable styrene resin particles obtained by the method described above were placed in a 30 L atmospheric pressure batch foamer, and steam was supplied into the foamer. The steam temperature was set to 105-125°C, and the heating time was set to 50-150 seconds. This caused the resin particles to foam, yielding foamed particles B1-B6 with the average particle size and bulk density shown in Table 1.
[0154] The average particle diameter shown in Table 1 is the cumulative 63% diameter calculated based on the particle size distribution of foamed particles on a volume basis. The bulk density is the value measured using the method described above.
[0155] (Examples 1 to 6) As shown in Figures 1 and 2, the molded bodies 1 according to Examples 1 to 6 are manufactured by in-mold molding a mixture of hollow particles 2 having an outer shell layer 21 and a hollow portion 22 surrounded by the outer shell layer 21, and foamed particles 3. In other words, the molded bodies 1 of Examples 1 to 6 contain hollow particles 2 and foamed particles 3. The manufacturing method of the molded bodies of Examples 1 to 6 is specifically as follows.
[0156] [Manufacturing of molded parts] In-mold molding of a mixture of hollow particles and foamed particles was performed using a mold molding machine (PEONY-AD / 0907, manufactured by Kasahara Industries Co., Ltd.). First, the hollow particles and foamed particles obtained as described above were aged for one day in a constant temperature room at 23°C. The aged hollow particles and foamed particles were mixed in the combinations and mass ratios shown in Table 2 to produce mixed particles. These mixed particles were filled into a mold having a rectangular cavity of 300 mm × 300 mm × 100 mm, which was equipped on the molding machine.
[0157] After filling with mixed particles, in-mold molding was performed by introducing steam at a gauge pressure of 0.07 MPa (G) into the mold to heat the hollow particles and foamed particles. The resulting molded body was dried in a drying chamber at 40°C for one day, and then cured in a constant temperature room at 23°C for another day. Through the above procedure, molded bodies of Examples 1 to 6 were obtained.
[0158] (Comparative Example 1) As shown in Table 3, the molded article of Comparative Example 1 does not contain foamed particles and is substantially composed of hollow particles. The method for manufacturing the molded article of Comparative Example 1 is the same as the method for manufacturing the molded articles of Examples 1 to 6, except that the molded article machine was filled with only hollow particles.
[0159] (Comparative Example 2) As shown in Table 3, the molded article of Comparative Example 2 does not contain hollow particles and is composed of foamed particles. The method for manufacturing the molded article of Comparative Example 2 is the same as the method for manufacturing the molded articles of Examples 1 to 6, except that only foamed particles were filled into the molded article molding machine.
[0160] (Comparative Example 3, Comparative Example 4) The molded articles of Comparative Examples 3 and 4 have the same configuration as the molded articles of Examples 1 to 6, except that the combination of hollow particles and foamed particles is changed as shown in Table 3. The manufacturing method of the molded articles of Comparative Examples 3 and 4 is the same as the manufacturing method of the molded articles of Examples 1 to 6, except that the combination of hollow particles and foamed particles is changed as shown in Table 3.
[0161] Next, the method for evaluating the various properties of the molded article obtained as described above will be explained below.
[0162] [Density of the molded body] The mass of the molded body (in kg) is calculated based on its external dimensions, and its volume (in m³) is calculated based on those dimensions. 3 The value obtained by dividing by the density of the molded body (unit: kg / m³) 3 The density of the molded articles of the examples and comparative examples was as shown in Tables 2 and 3.
[0163] [Amount of foaming agent] Approximately 1 g of sample was taken from the molded body and heated in a hot air dryer set to 120°C for 4 hours to evaporate the water and organic physical blowing agent from the sample. The total volatile content (unit: mass%) in the sample was defined as the percentage of the mass reduction due to heating relative to the mass before heating. In addition to measuring the total volatile content, approximately 0.3 g of sample was taken from the molded body and the water content (unit: mass%) in the sample was measured using a Karl Fischer moisture meter.
[0164] Then, the amount of organic physical blowing agent remaining in the molded body (unit: mass%) was determined by subtracting the water content (unit: mass%) from the total volatile content (unit: mass%) in the sample calculated as described above. In other words, the amount of blowing agent in the molded body can be calculated using the following formula. Amount of foaming agent (mass%) = Total volatile content (mass%) - Water content (mass%)
[0165] [Average value and coefficient of variation of the area ratio between hollow particles and foamed particles] The aforementioned rectangular prism-shaped molded body, measuring 300 mm in length, 300 mm in width, and 100 mm in thickness, was cut along a plane perpendicular to the thickness direction at a depth of 20 mm from the surface of the molded body, thereby producing sections with the cut surfaces exposed on both sides in the thickness direction. Specifically, the dimensions of the sections were 300 mm in length, 300 mm in width, and 60 mm in thickness.
[0166] A scanner was used to obtain photographs of each cross-section of the section. Next, using image processing software (WinROOF, manufactured by Mitani Corporation), 15 random measurement areas measuring 50 mm vertically and 50 mm horizontally were set on each photograph of the cross-section, for a total of 30 locations. Then, the total area of hollow particles S1, the total area of foamed particles S2, and the area ratio S1 / S2 of the total area of hollow particles S1 to the total area of foamed particles S2 were calculated for each measurement area. Note that the area of particles intersecting the boundary of the measurement area was not included in the total area of hollow particles S1 and the total area of foamed particles S2.
[0167] Next, the aforementioned section was cut into 20 small sections by cutting them in a grid pattern when viewed from any of the cutting surfaces. Using a scanner, a total of 31 photographs were taken of the cutting surfaces of the small sections (specifically, the surfaces of the small sections that are perpendicular to the 300mm x 300mm plane of the molded body before cutting), ensuring that there was no overlap of cutting surfaces. Then, using image processing software (WinROOF, manufactured by Mitani Corporation), a measurement area of 50mm x 50mm was randomly set on the photograph of each cutting surface, and the total area of hollow particles S1 and the total area of foamed particles S2 within each measurement area were measured. Furthermore, based on these values, the area ratio S1 / S2 of the total area of hollow particles to the total area of foamed particles S2 was calculated. Note that the area of particles intersecting the boundary line of the measurement area was not included in the total area of hollow particles S1 and the total area of foamed particles S2.
[0168] The arithmetic mean of the area ratio S1 / S2 of the total area of hollow particles to the total area of foam particles S2 in the 61 measurement areas obtained as described above was taken as the average value of the area ratio S1 / S2 of the total area of hollow particles to the total area of foam particles S2 in the cross-section of the molded article. Furthermore, the unbiased standard deviation of the ratio S1 / S2 of the ratio S1 / S2 of the total area of hollow particles to the total area of foam particles S2 in the aforementioned 61 measurement areas (see formula (1) above) divided by the average value of the area ratio S1 / S2 was taken as the coefficient of variation of the area ratio S1 / S2 of the total area of hollow particles to the total area of foam particles S2 in the cross-section of the molded article. The average value and coefficient of variation of the area ratio S1 / S2 in the molded articles of the examples and comparative examples are shown in Tables 2 and 3.
[0169] [Average area per hollow particle and average area per foamed particle] Using the photographs of the cross-sections obtained in the calculation of the average area ratio of hollow particles to foamed particles as described above, the total area S1 of hollow particles, the number of hollow particles, the total area S2 of foamed particles, and the number of foamed particles within the measurement area were calculated using the method described above. Using these values, the average area per hollow particle and the average area per foamed particle were calculated. The average area per hollow particle (A), the average area per foamed particle (B), and the ratio (A) / (B) of the average area per hollow particle (A) to the average area per foamed particle (B) in the molded articles of the examples and comparative examples are shown in Tables 2 and 3. Particles that intersect with the boundary line of the measurement area were not included in the number of hollow particles and foamed particles.
[0170] [Average thickness of the outer shell layer, average total thickness of the resin film in the outer shell layer] The average thickness of the outer shell layer of the hollow particles and the average total thickness of the resin film in the outer shell layer were calculated using the method described above. The average thickness of the outer shell layer and the average total thickness of the resin film in the outer shell layer of the hollow particles present in the molded articles of the examples and comparative examples are shown in Tables 2 and 3.
[0171] [Compression characteristics] A rectangular specimen measuring 50 mm in length, 50 mm in width, and 25 mm in thickness was taken from the center of the molded body. A compression test was performed on the specimen according to the method specified in JIS K7220:2006, and a stress-strain curve was obtained. The compression test was performed in a laboratory at 23°C.
[0172] The 10% deformation compressive stress σ in the examples and comparative examples was calculated based on the stress-strain curves. 10 (Unit: kPa), 25% deformation compressive stress σ 25 (Unit: kPa), 50% deformation compressive stress σ 50 (Unit: kPa) and 75% deformation compressive stress σ 75 The values (in kPa) are as shown in Tables 2 and 3. Also, the values in Tables 2 and 3 are as follows: 10 The "Density" field shows the 10% deformation compressive stress σ 10 The value obtained by dividing by the density of the molded body is "σ 10 / σ 50 In the column, enter 50% deformation compressive stress σ 50 10% deformation compressive stress σ 10 The value obtained by expressing the ratio as a percentage is "σ 10 / σ 75 In the column, enter 75% deformation compressive stress σ 75 10% deformation compressive stress σ 10 The ratios are shown as percentages.
[0173] Furthermore, based on the stress-strain curves described above, the strain amount at which the compressive stress reaches 300 kPa (C), the strain amount at which the compressive stress reaches 600 kPa (D), and the difference between the strain amount at which the compressive stress reaches 600 kPa (D) and the strain amount at which the compressive stress reaches 300 kPa (C), (D)-(C), were calculated. These values for the molded articles of the examples and comparative examples are shown in Tables 2 and 3.
[0174] [Energy absorption characteristics] Figure 3 shows an example of a stress-strain curve measured by a compression test. Strain amount ε a The amount of energy absorbed (unit: J / g) in this case is calculated from the strain amount 0% to the strain amount ε in the stress-strain curve. aThe portion L1 up to and the amount of strain ε on the stress-strain curve a The area S enclosed by the line L2, which passes through the point and is parallel to the vertical axis, and the horizontal axis. a This is equivalent to the given value. Based on the stress-strain curves of the molded articles of the examples and comparative examples, the amount of energy absorbed at a strain of 50% was calculated, and the amount of energy absorbed per unit mass was calculated by dividing this amount of energy absorbed by the mass of the molded article used in the test. The amount of energy absorbed per unit mass in the molded articles of the examples and comparative examples is shown in Tables 2 and 3.
[0175] Furthermore, the energy absorption per unit mass is preferably 4 J / g or more, more preferably 5 J / g or more, and even more preferably 6 J / g or more. In this case, the weight of the shock-absorbing material component can be made lighter while ensuring good energy absorption performance. Also, the energy absorption per unit mass is preferably 10 J / g or less, and more preferably 8 J / g or less. In this case, the molded body does not become too hard, can absorb impact appropriately, and when used as a shock-absorbing material for automobiles, it becomes easier to ensure the safety of occupants during a collision.
[0176] [Compression set] Three rectangular parallelepiped test specimens, 50 mm long, 50 mm wide, and 25 mm thick, were taken from the center of the molded body in the thickness direction, ensuring that the skin surface (i.e., the surface that was in contact with the inner surface of the mold during in-mold molding) was not included. Compression tests were performed on the test specimens according to the method specified in JIS K6767:1999. Specifically, each test specimen was compressed to a state of 25% strain in the thickness direction under conditions of 23°C and 50% relative humidity, and left in this state for 22 hours. After that, each test specimen was released from the compressed state, and the thickness of each test specimen was measured 24 hours after the end of compression. The compression set (in %) of each test specimen was calculated by dividing the change in thickness of the test specimen before and after the test by the thickness of the test specimen before the test, and the arithmetic mean of these values was taken as the compression set (in %). The compression set values for the examples and comparative examples are shown in Tables 2 and 3.
[0177] [Flame retardant] A flammability test was conducted in accordance with the provisions of FMVSS (Federal Motor Vehicle Safety Standards) No. 302. Specifically, first, a molded body with a rectangular parallelepiped shape measuring 585 mm in length, 485 mm in width, and 100 mm in thickness was produced by in-mold molding of a mixture of hollow particles and foamed particles using a molded molding machine (DAISEN Corporation "VS-1300"). This molded body was left at a temperature of 40°C for 3 days, and then left at room temperature for 1 day to allow it to mature. After that, the molded body was cured by leaving it at a temperature of 40°C for 3 days, and then at room temperature for 1 day. Subsequently, five flat test pieces measuring 356 mm in length, 102 mm in width, and 13 mm in thickness were cut from the molded body.
[0178] Next, one end of the test specimen was attached to the mounting bracket of a flammability tester (MVSS-2, manufactured by Suga Test Instruments Co., Ltd.) compliant with FMVSS No. 302, and the test specimen was held horizontally. The other end of the test specimen, i.e., the end not held by the mounting bracket, was then exposed to the flame of a burner for 15 seconds, after which the burner flame was removed from the test specimen. The height of the burner flame was set to 38 mm, and the distance from the tip of the burner to the bottom surface of the test specimen was set to 19 mm.
[0179] The burning time was measured when the flame emanating from the test specimen reached a position 38 mm away from the open end of the specimen (i.e., the end of the specimen not held by a mounting device in the longitudinal direction). If the flame emanating from the test specimen reached a position 38 mm away from the fixed end of the specimen (i.e., the end of the specimen held by a clamp or the like in the longitudinal direction), the burning time measurement was completed at the time the flame reached that position. If the burning of the test specimen ended before reaching the position 38 mm away from the fixed end, the burning time measurement was completed at the time the burning ended. If the burning of the test specimen ended before reaching the position 38 mm away from the fixed end, the burning time of that test specimen was treated as 0 seconds.
[0180] The above tests were conducted using five test specimens, and the flame retardancy was evaluated based on these test results. The meanings of the symbols shown in the "Flame Retardancy" column of Tables 2 and 3 are as follows. A: Either condition (1) or condition (2) is met, where (1) all five test specimens exhibit self-extinguishing properties, or (2) although some test specimens do not exhibit self-extinguishing properties, the burning rate is 102 mm / min or less. B: In all test specimens, the flame generated from the specimen did not propagate across the surface of the specimen, and the burning rate exceeded 102 mm / min. C: For one or more test specimens, the flame generated from the test specimen propagated along the surface of the test specimen.
[0181] The combustion rate used in the above evaluation is the arithmetic mean of the combustion rates of the five test specimens in the flammability test. When calculating the combustion rate used for evaluation, test specimens that showed self-extinguishing properties in the flammability test were treated as having a combustion rate of 0 mm / min. The combustion rate of test specimens that did not show self-extinguishing properties was calculated using the following formula (I). B = 60 × D / T (I) However, in equation (I) above, the symbol B represents the combustion rate (unit: mm / min), the symbol D represents the distance the flame has traveled (unit: mm), and the symbol T represents the time required for the flame to travel D mm (unit: seconds).
[0182] [Table 1]
[0183] [Table 2]
[0184] [Table 3]
[0185] As shown in Table 1 and Table 2, the molded bodies of Examples 1 to 6 are composed of mixed particles of hollow particles and foamed particles. Further, in these molded bodies, the average value of the ratio S1 / S2 of the total area S1 of the hollow particles to the total area S2 of the foamed particles in the cross-section of the molded body, the coefficient of variation of the ratio S1 / S2, and the 50% deformation compression stress σ 50 with respect to the 10% deformation compression stress σ 10 of the ratio σ 10 / σ 50 are within the specific ranges respectively. Therefore, these molded bodies exhibit good compression physical properties and have low permanent strain. Further, these molded bodies have a wide range of strain amounts where the compression stress is 300 to 600 kPa, and have excellent energy absorption efficiency over a wide range of strain amounts.
[0186] The molded body of Comparative Example 1 is composed of hollow particles, so the 10% deformation compression stress σ 10 is lower than that of the molded bodies of Examples 1 to 6, and the energy absorption efficiency in the initial stage of compression is inferior. Also, in the combustion test of the molded body of Comparative Example 1, the flame generated from the test piece propagated on the surface and the entire test piece burned.
[0187] The molded body of Comparative Example 2 is composed of foamed particles, so the compression permanent strain is large compared to the molded bodies of Examples 1 to 6. Also, the molded body of Comparative Example 2 has a higher compression load required for deformation when the strain amount is larger compared to the molded bodies of Examples 1 to 6, and the energy absorption efficiency when the strain amount is large is inferior.
[0188] The molded bodies of Comparative Example 3 and Comparative Example 4 are such that due to a relatively large difference in the bulk density between the hollow particles and the foamed particles used in the production of the molded body, etc., when mixing the hollow particles and the foamed particles, it is difficult for them to mix uniformly. Therefore, in the molded bodies of these comparative examples, there is a bias in the distribution of the hollow particles, and the coefficient of variation of the ratio S1 / S2 of the total area S1 of the hollow particles to the total area S2 of the foamed particles becomes larger than the specific range. And in the molded body, as a result of the bias in the distribution of the hollow particles, the 10% deformation compression stress σ 10This decrease in performance led to a reduction in energy absorption efficiency during the initial stages of compression. Furthermore, in the flammability tests, the molded bodies of Comparative Examples 3 and 4 showed that flames generated from the test specimens propagated across the surface, causing the entire specimen to burn.
[0189] Although specific embodiments of the molded article according to the present invention have been described above based on Examples 1 to 6, the specific embodiments of the molded article and shock-absorbing material according to the present invention are not limited to the embodiments of Examples 1 to 6, and the configuration can be appropriately modified without impairing the spirit of the present invention. [Explanation of Symbols]
[0190] 1 Molded body 2 hollow particles 21 Outer layer 22 Hollow part 3. Foaming particles
Claims
1. A molded body formed by in-mold molding a mixture of hollow particles having an outer shell layer and a hollow portion surrounded by the outer shell layer, and foamed particles with a styrene-based resin as the base resin, The base resin of the outer shell layer in the hollow particle is a composite resin containing a (meth)acrylic acid ester component and a styrene-based component. The average value of the ratio S1 / S2 of the total area of hollow particles to the total area of foam particles S2 in the cross-section of the molded body is 0.1 or more and 3 or less, and the coefficient of variation of the ratio S1 / S2 is 20% or less. The average area of each hollow particle in the cross-section of the molded body is 3 mm² or more and 60 mm² or less, and the ratio of the average area of each hollow particle to the average area of each foamed particle is 0.7 or more and 1.4 or less. The 50% deformation compressive stress σ of the molded body, obtained by measurement at 23°C. 50 σ of the 10% deformation compressive stress 10 ratio σ 10 / σ 50 A molded body in which the ratio is between 0.70 and 1.
0.
2. The density of the molded body is 20 kg / m³. 3 More than 100kg / m 3 The molded article according to claim 1, which is as follows:
3. The molded article according to claim 1 or 2, wherein the compression set of the molded article is 15% or less.
4. The molded body according to claim 1 or 2, wherein the hollow particles and foamed particles contain a brominated flame retardant, and when a flammability test is performed according to FMVSS No. 302, (1) the molded body exhibits self-extinguishing properties, or (2) the burning rate of the molded body is 102 mm / min or less.
5. The molded article according to claim 4, wherein the amount of the bromine-based flame retardant in the molded article is 0.5% by mass or more and 10% by mass or less.
6. An impact absorbing material composed of a molded body according to any one of claims 1 or 2.
Citation Information
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