Powder composition and method for producing three-dimensional object
Patent Information
- Application Number
- JP2025520765
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2024-01-23
- Filing Date
- 2025-01-16
- Publication Date
- 2025-12-24
- Estimated Expiration
- 2045-01-16
AI Technical Summary
Existing additive manufacturing technologies do not provide clear guidance on how to achieve high thermal conductivity in molded bodies using aluminum nitride powder and resin compositions, and the physical properties of such bodies are unclear.
A powder composition comprising 70% to 95% aluminum nitride powder and polyamide powder, with specific particle size and circularity ranges, is used to enhance thermal conductivity in molded products.
The composition achieves molded products with thermal conductivity of 1.0 W/m·K or higher, suitable for applications requiring high thermal conductivity.
Abstract
Description
[Technical Field]
[0001] The present invention relates to a powder composition and a method for producing a three-dimensional object. [Background technology]
[0002] Additive manufacturing is a technology used in three-dimensional modeling methods such as 3D printers to create three-dimensional shapes by attaching modeling materials, and has been rapidly gaining popularity in recent years.
[0003] Additive manufacturing methods using additive manufacturing technology can be classified into several methods based on the type of material and modeling method (e.g., ISO17296-2:2015). One of these methods is powder bed fusion (PBF). In powder bed fusion, a three-dimensional object is obtained by layering and melting powder material. The properties of the three-dimensional object obtained in powder bed fusion depend on the powder material.
[0004] For example, Patent Document 1 discloses a molding powder used in powder additive manufacturing, which is made of a powder containing a ceramic and a binder. Patent Document 2 also discloses a molding material used in powder additive manufacturing, which is made of an inorganic powder containing at least a resin material in part. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Publication No. 2017-127997 [Patent Document 2] Japanese Patent Application Publication No. 2018-172739 Summary of the Invention [Problem to be solved by the invention]
[0006] Additive manufacturing technology is expected to be applied in a variety of fields because it can easily produce three-dimensional objects. Conventionally, composite compositions of resin and aluminum nitride, which has high thermal conductivity, have been used for heat dissipation materials. However, if additive manufacturing technology can be used to easily produce objects, it is expected that it will be used in a variety of situations where high thermal conductivity is required.
[0007] However, Patent Documents 1 and 2 do not describe or suggest how to obtain a molded body with high thermal conductivity. Furthermore, when a molded body is obtained using a powder composition containing aluminum nitride powder and a resin as a material, it is unclear what physical properties, including thermal conductivity, the molded body will have depending on the type of resin.
[0008] An object of one aspect of the present invention is to provide a powder composition or the like that can give a molded product with high thermal conductivity. [Means for solving the problem]
[0009] In order to solve the above problems, a powder composition according to one embodiment of the present invention contains aluminum nitride powder and polyamide powder, and the content of the aluminum nitride powder is 70% by mass or more and 95% by mass or less. [Effects of the Invention]
[0010] According to one aspect of the present invention, a powder composition or the like that can give a molded product with high thermal conductivity can be realized. DETAILED DESCRIPTION OF THE INVENTION
[0011] Hereinafter, one embodiment of the present invention will be described in detail.
[0012] [Powder composition] A powder composition according to one embodiment of the present invention contains aluminum nitride powder and polyamide powder, and the content of the aluminum nitride powder is 70% by mass or more and 95% by mass or less. Hereinafter, in this specification, the term "powder composition" refers to the powder composition according to one embodiment of the present invention, unless otherwise specified.
[0013] The use of the powder composition is not particularly limited, but it is preferably used as a material for molding a compact, and more preferably used as a material for forming a three-dimensional object by an additive manufacturing method.
[0014] (aluminum nitride powder) The aluminum nitride powder is composed of a plurality of aluminum nitride particles formed from aluminum nitride.
[0015] The content of aluminum nitride powder in the powder composition is 70% by mass or more and 95% by mass or less, with the entire powder composition being 100% by mass. This configuration effectively improves the thermal conductivity of a molded body formed using the powder composition. From the viewpoint of obtaining excellent thermal conductivity in the molded body, the content of aluminum nitride powder may be 80% by mass or more, or may be 90% by mass or more.
[0016] The aluminum nitride powder preferably has an average particle size of 20 μm or more and 60 μm or less. A powder composition containing aluminum nitride powder having such an average particle size tends to have good flowability.
[0017] For example, when a powder composition is layered by an additive manufacturing method to form a structure, the powder composition is spread in a layer of uniform thickness over the entire surface of the forming region of each layer. In this case, the better the fluidity of the powder composition, the easier it is to layer the powder composition to a uniform thickness. If the average particle size of the aluminum nitride powder is within the above-mentioned range, the fluidity of the powder composition is improved, and the powder composition can be easily layered to a uniform thickness.
[0018] Specifically, in additive manufacturing, the thickness of each layer formed from the powder composition is generally about 100 μm. The average particle size of the aluminum nitride powder is preferably smaller than the thickness of each layer, and is preferably 60 μm or less. However, if the average particle size is too small, the flowability of the powder composition deteriorates, so the average particle size of the aluminum nitride powder is preferably 20 μm or more.
[0019] The average particle size of the aluminum nitride powder is the particle size (median diameter) at which the cumulative 50% value is reached on a volume basis in the particle size distribution measured by a laser diffraction scattering method.
[0020] The aluminum nitride powder preferably has an average circularity of 0.8 or more, more preferably 0.9 or more. Generally, the closer the circularity of a particle is to 1.0, the closer the particle is to a perfect sphere. Aluminum nitride powder with an average circularity of 0.8 or more can be said to be composed of approximately spherical aluminum nitride particles.
[0021] The powder composition contains 70 mass % or more of aluminum nitride powder. As such, it is preferable that the aluminum nitride powder, which accounts for a large portion of the powder composition, has an average circularity of 0.8 or more. Spherical powder with a high average circularity exhibits good fluidity, and can therefore improve the fluidity of the powder composition.
[0022] The circularity of a particle contained in an aluminum nitride powder can be calculated by the following formula (1), where S is the projected area of the particle photographed and L is the perimeter.
[0023] Circularity = 4πS / L 2 (1) The average circularity of the aluminum nitride powder may be the number average value of the circularity of a plurality of particles contained in the aluminum nitride powder.
[0024] (Polyamide powder) The polyamide powder is composed of a plurality of polyamide particles formed from polyamide.
[0025] The polyamide used as the raw material for the polyamide powder may be an aliphatic polyamide such as nylon, or an aromatic polyamide such as aramid. Examples of polyamides include nylon 6, nylon 11, nylon 12, nylon 66, nylon 610, nylon 612, nylon 6T, nylon 6I, nylon 9T, and nylon M5T. Of these, the polyamide is preferably nylon 6, nylon 11, or nylon 12, and more preferably nylon 12. The polyamide may be any one of these, or may contain two or more of them.
[0026] As described above, aluminum nitride powder is effective in improving the thermal conductivity of compacts molded from a powder composition containing aluminum nitride powder. Generally, the surface of aluminum nitride powder is oxidized, resulting in the presence of hydroxyl groups. The polyamide that constitutes the polyamide powder has amide groups that have a high affinity for the hydroxyl groups present on the surface of the aluminum nitride powder. When such a powder composition is molded using additive manufacturing methods or the like, the high affinity between the resin and the aluminum nitride powder allows the aluminum nitride powder to disperse appropriately, facilitating the formation of thermal conduction paths between the aluminum nitride powder particles in the molded body. The formation of these thermal conduction paths is believed to result in excellent thermal conductivity in the molded body.
[0027] In the manufacturing method of resin-containing molded bodies by melt-kneading, it was possible to disperse aluminum nitride powder appropriately in the resin due to the load during melt-kneading, and form thermal conduction paths between the aluminum nitride powder particles. However, unlike melt-kneading, additive manufacturing requires a high affinity between the resin and aluminum nitride powder to achieve high thermal conductivity.
[0028] The polyamide powder preferably has an average particle size of 20 μm or more and 60 μm or less. A powder composition containing a polyamide powder having such an average particle size tends to have good flowability. The reason for this is as explained above regarding the average particle size of the aluminum nitride powder.
[0029] As with aluminum nitride powder, the average particle size of polyamide powder is the particle size (median diameter) at which the cumulative 50% value is reached on a volume basis in particle size distribution measured by laser diffraction scattering.
[0030] In the powder composition, it is preferable that the aluminum nitride powder has an average particle size of 20 μm or more and 60 μm or less, and the polyamide powder has an average particle size of 20 μm or more and 60 μm or less. In this configuration, the average particle sizes of the aluminum nitride powder and the polyamide powder are not significantly different from each other, and therefore, the powder composition has good flowability.
[0031] It is generally known that the more uniform the particle size of the powder contained in a powder composition, the better the fluidity. This is thought to be because when powders with large particle sizes and powders with small particle sizes are mixed, the powders with small particle sizes get into the gaps between the powders with large particle sizes and inhibit the flow of the powders with large particle sizes, thereby reducing the fluidity of the powder as a whole. If the average particle size of the aluminum nitride powder and the average particle size of the polyamide powder are close to each other, the powder composition will have good fluidity.
[0032] The ratio of the average particle size of the polyamide powder to the average particle size of the aluminum nitride powder (average particle size of the polyamide powder / average particle size of the aluminum nitride powder) is preferably in the range of 0.5 or more and 2.0 or less, and more preferably in the range of 0.7 or more and 1.4 or less.
[0033] The content of polyamide powder in the powder composition according to one embodiment of the present invention is not particularly limited, but from the viewpoint of ease of molding in an additive manufacturing method, it is preferably 3% by mass or more, and more preferably 5% by mass or more.
[0034] (Other powders) The powder composition may contain other powders in addition to aluminum nitride powder and polyamide powder. The other powders may be, for example, inorganic or organic powders. The inorganic powders may be, for example, powders of glass beads, glass fibers, carbon fibers, or alumina. The organic powders may be powders of resins other than polyamides or cellulose fibers. The resins other than polyamides are not particularly limited, but are preferably polar resins such as polyurethane and polyether ether ketone, or may be non-polar resins such as polyolefins.
[0035] The content of the other powder in the powder composition may be, for example, 25% by mass or less, 10% by mass or less, or 1% by mass or less. The average particle size of the other powder is not particularly limited, but is preferably close to the average particle size of the aluminum nitride powder or polyamide powder from the viewpoint of the flowability of the powder composition.
[0036] The average particle size of the other powders may be measured in the same manner as the average particle size of the aluminum nitride powder and the polyamide powder.
[0037] [Method for manufacturing a three-dimensional object] A method for manufacturing a three-dimensionally shaped object according to one embodiment of the present invention is a method for manufacturing a three-dimensionally shaped object by an additive manufacturing method using the above-described powder composition. Hereinafter, in this specification, the term "method for manufacturing a three-dimensionally shaped object" refers to the method for manufacturing a three-dimensionally shaped object according to one embodiment of the present invention, unless otherwise specified.
[0038] Additive manufacturing is a technology for creating three-dimensional shapes by depositing a material for creation. A method for creating three-dimensional objects using additive manufacturing can be implemented, for example, using a 3D printer.
[0039] Additive manufacturing can be classified into several methods based on the type of material and fabrication method (e.g., ISO 17296-2:2015). Examples of additive manufacturing methods include powder bed fusion (PBF), liquid-phase photopolymerization (VAT), binder jetting, material jetting, material extrusion, directed energy deposition, and sheet lamination. Additionally, additive manufacturing methods not classified by ISO 17296-2:2015 are also known.
[0040] The method for manufacturing a three-dimensional object is preferably the powder additive manufacturing method. The powder additive manufacturing method is a method for forming a desired shape by repeatedly laying raw material powder for forming in layers and irradiating the portion to be formed with a laser to melt, solidify, or sinter the raw material powder. The powder additive manufacturing method includes the SLS method (Selective Laser Sintering), which is a type of powder bed fusion method classified in ISO17296-2:2015.
[0041] The powder composition according to one embodiment of the present invention contains polyamide powder, which is a thermoplastic resin. Therefore, it is possible to mold the polyamide resin by melting and solidifying it with a laser, for example, and it is also possible to mold the powder composition by partially melting and solidifying the surface of the powder composition.
[0042] The powder composition according to one embodiment of the present invention can be suitably used as a material for forming a three-dimensional object by an additive manufacturing method such as powder layer modeling. For example, a resin composition having a desired shape and high thermal conductivity can be easily produced by spreading the powder composition according to one embodiment of the present invention in layers and irradiating the portion to be formed with a laser to melt and solidify the resin. That is, by using a powder composition containing an aluminum nitride powder according to one embodiment of the present invention and a polyamide powder as a material, a three-dimensional object having excellent thermal conductivity can be easily produced.
[0043] The thermal conductivity of a three-dimensional object obtained by additive manufacturing using the powder composition is preferably 1.0 W / m·K or higher, and more preferably 1.3 W / m·K or higher. There is no particular upper limit to the thermal conductivity; the higher the better, but it is usually 5.0 W / m·K or lower. Furthermore, the method for producing a three-dimensional object by additive manufacturing using the powder composition can also achieve good strength, density, and appearance of the molded product.
[0044] Additive manufacturing is suitable for rapid prototyping, on-demand production of jigs and tools, custom production of parts for commercial products, and small-lot production. In these applications, high thermal conductivity is often required for three-dimensional objects obtained by additive manufacturing. Examples of three-dimensional objects that require high thermal conductivity include thermal sinks for drones or electric vehicles, heat exchangers and heat recovery systems for solar hot water heaters, heat sinks for light-emitting diodes (LEDs), molds for vacuum forming, and functional parts that combine thermal conductivity and electromagnetic wave shielding.
[0045] A powder composition according to one embodiment of the present invention and a method for manufacturing a three-dimensional object using the powder composition can be suitably used for manufacturing a three-dimensional object that requires such high thermal conductivity.
[0046] 〔summary〕 A powder composition according to a first aspect of the present invention contains aluminum nitride powder and polyamide powder, and the content of the aluminum nitride powder is 70% by mass or more and 95% by mass or less.
[0047] In the powder composition according to aspect 2 of the present invention, in accordance with aspect 1, the aluminum nitride powder may have an average particle size of 20 μm or more and 60 μm or less, and the polyamide powder may have an average particle size of 20 μm or more and 60 μm or less.
[0048] A powder composition according to a third aspect of the present invention may be the powder composition according to the first or second aspect, wherein the aluminum nitride powder has an average circularity of 0.8 or more.
[0049] The powder composition according to aspect 4 of the present invention may be used as a material for forming a three-dimensional object by an additive manufacturing method in any one of aspects 1 to 3.
[0050] A method for producing a three-dimensionally shaped object according to a fifth aspect of the present invention is a method for producing a three-dimensionally shaped object by an additive manufacturing method using the powder composition according to any one of the first to fourth aspects.
[0051] A sixth aspect of the present invention provides a method for producing a three-dimensional structure according to the fifth aspect, wherein the additive manufacturing method is powder additive manufacturing.
[0052] The use of a powder composition according to a seventh aspect of the present invention in additive manufacturing is the use of a powder composition comprising an aluminum nitride powder and a polyamide powder, wherein the content of the aluminum nitride powder is 70% by mass or more and 95% by mass or less. [Example]
[0053] An embodiment of the present invention will now be described.
[0054] Thermoplastic resin powder and aluminum nitride powder (average particle size 30 μm) were mixed and stirred for 2 hours using a roller mixer, and the mixed powder was then passed through an ultrasonic sieve (mesh opening 250 μm) to obtain a powder composition according to the example or comparative example. Using the obtained powder composition, a three-dimensional object was produced by powder additive manufacturing using a 3D printer (Sinterit LISA PRO manufactured by SINTERIT).
[0055] In Examples 1 and 2, nylon 12 (PA12, PA12 smooth manufactured by SINTERIT, average particle size 40 μm) was used as the thermoplastic resin powder. In Comparative Example 1, polypropylene (PP, Bapolene 4082NA manufactured by Bamberger Polymers, average particle size 22 μm) was used as the thermoplastic resin powder. Tokuyama aluminum nitride powder HFS-30 (average particle size 30 μm, average circularity 0.94) was used as the aluminum nitride powder. The contents of the thermoplastic resin powder and aluminum nitride powder in the powder composition are shown in Table 1 below.
[0056] The average particle size of aluminum nitride powder was measured as follows. Aluminum nitride powder was dispersed in water at a concentration of 0.2% by mass and then irradiated with ultrasonic waves at approximately 200 W for 2 minutes. The volume frequency distribution of particle size (particle size distribution) of the sample was measured using a laser diffraction / scattering particle size distribution analyzer (MICROTRACK-MT3300EXII, manufactured by Microtrack-Bell Corporation). In the obtained particle size distribution, the volume frequency was accumulated from the smallest particle size, and the particle size (median diameter) at which the accumulated value reached 50% was defined as the average particle size.
[0057] The average particle size of the thermoplastic resin powder was measured using a laser diffraction / scattering particle size distribution analyzer (Beckman Coulter: LS 13 320) equipped with a tornado dry powder module, in accordance with ISO 13320. In the obtained particle size distribution, the volume frequency was accumulated from the smallest particle size, and the particle size (median diameter) at which the accumulated value reached 50% was defined as the average particle size.
[0058] The average circularity of the aluminum nitride powder was calculated from the formula (1) by measuring the area and perimeter of the two-dimensional projection of 20,000 particles using Morphologi G3 manufactured by Malvern Instruments.
[0059] The thermal conductivity of the obtained three-dimensional model was measured using a thermal conductivity measuring device (TRIDENT manufactured by C-Therm Technologies) that utilizes an improved unsteady plane heat source and a Pyroceram calibration standard, in accordance with a method in accordance with ASTM D7984.
[0060] The manufacturing conditions and the physical properties of the obtained three-dimensional objects are shown in Table 1 below.
[0061] In Table 1, PA12 represents polyamide 12 (nylon 12), PP represents polypropylene, and AlN represents aluminum nitride powder.
[0062] [Table 1]
[0063] As shown in Table 1, the three-dimensionally molded objects according to Examples 1 and 2 had good thermal conductivities, with a thermal conductivity of 1.0 W / m K or more. On the other hand, the three-dimensionally molded object according to Comparative Example 1 had a thermal conductivity of less than 1.0 W / m K, which was approximately half that of the three-dimensionally molded objects according to Examples 1 and 2.
[0064] The above results demonstrate that three-dimensionally shaped objects obtained using the powder composition according to one embodiment of the present invention have excellent thermal conductivity. On the other hand, when polyamide was not used as the thermoplastic resin, problems with the thermal conductivity of the three-dimensionally shaped objects were observed, as shown in Comparative Example 1. This demonstrates that the physical properties of the resulting three-dimensionally shaped objects vary significantly depending on the type of resin mixed with the aluminum nitride powder, and that polyamide powder is suitable for mixing with aluminum nitride powder.
[0065] [Additional Notes] The present invention is not limited to the above-described embodiments and examples, and various modifications are possible within the scope of the claims. Embodiments obtained by appropriately combining the technical means disclosed in different embodiments or examples are also included in the technical scope of the present invention. Furthermore, new technical features can be formed by combining the technical means disclosed in each embodiment.
Claims
1. A powder composition comprising an aluminum nitride powder and a polyamide powder, wherein the content of the aluminum nitride powder is 70 mass% or more and 95 mass% or less, the average particle size of the aluminum nitride powder is 20 μm or more and 60 μm or less, and the average particle size of the polyamide powder is 20 μm or more and 60 μm or less.
2. (delete)
3. The powder composition according to claim 1 , wherein the aluminum nitride powder has an average circularity of 0.8 or more.
4. The powder composition according to claim 1, which is used as a material for forming a three-dimensional object by an additive manufacturing method.
5. A method for manufacturing a three-dimensional object, comprising manufacturing a three-dimensional object by an additive manufacturing method using the powder composition according to any one of claims 1 to 4.
6. The method for manufacturing a three-dimensional object according to claim 5 , wherein the additive manufacturing method is powder deposition modeling.