Thermoplastic fine particles containing carboxylic acid-based sintering aid and additive manufacturing using the same
By integrating a carboxylic acid-based sintering aid into the melt-emulsification process with nanoparticles, the method addresses poor flow and void formation issues in thermoplastic particulates, resulting in improved sintering and structural integrity of printed parts.
Patent Information
- Application Number
- JP2021167301
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-15
- Filing Date
- 2021-10-12
- Publication Date
- 2026-01-22
- Estimated Expiration
- 2041-10-12
AI Technical Summary
Current thermoplastic particulates used in additive manufacturing exhibit irregular shapes and wide particle size distributions, leading to poor flow performance and extensive void formation, which compromises the mechanical strength of printed products, especially in applications requiring high structural integrity.
Incorporating a carboxylic acid-based sintering aid into the melt-emulsification process of thermoplastic particulates, along with nanoparticles, to achieve a narrow particle size distribution and improved sintering characteristics, reducing void formation and enhancing interpolymer bonding.
The method results in thermoplastic particulates with enhanced flow performance and reduced porosity, enabling the production of consolidated parts with high structural integrity and a glossy finish, expanding the range of applications for nanoparticle-coated thermoplastic particulates.
Smart Images

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Abstract
Description
[Technical Field]
[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) Not applicable.
[0002] FIELD OF THE INVENTION The present disclosure relates generally to additive manufacturing, and more particularly to additive manufacturing processes characterized by the consolidation of powder particulates with improved sintering characteristics. [Background technology]
[0003] Additive manufacturing, also known as three-dimensional (3-D) printing, is a rapidly growing technology field. While additive manufacturing has traditionally been used for rapid prototyping tasks, the technology is increasingly being adopted to produce commercial and industrial parts (prints) of any number of complex shapes. The additive manufacturing process is carried out by the layer-by-layer deposition of either 1) molten printing material or a flow of a liquid precursor to the printing material, or 2) powder particles of the printing material. The layer-by-layer deposition is typically carried out under computer control to deposit and solidify the printing material in precise locations based on a digital three-dimensional computer-aided design model ("blueprint") of the part to be manufactured. Powder bed fusion (PBF) of powder particles is a particularly useful additive manufacturing method. In certain embodiments, the consolidation of powder particles may be carried out in a layer-by-layer deposited powder bed using a three-dimensional printing system that uses a laser or electron beam to heat precise locations in the powder bed, thereby solidifying specific powder particles and forming a part having a predetermined shape. Selective laser sintering (SLS) represents a particular example of a process suitable for promoting localized consolidation of powder particles during powder bed fusion to form parts of desired shapes. Other particulate consolidation techniques that may also be used include, for example, electron beam melting (EBM), binder jetting, and multi-jet fusion (MJF).
[0004] Among powder particulates, those suitable for use in three-dimensional printing include thermoplastic polymers. While a wide range of thermoplastic polymers are known, relatively few have properties compatible for use in current three-dimensional printing technologies that employ particulate consolidation. Thermoplastic polymers suitable for undergoing particulate consolidation into parts include those that have a significant difference between the onset of melting and the onset of crystallization, which can promote good structural and mechanical integrity after targeted heating to promote particulate consolidation. Also important is the ability to readily form particulates suitable for deposition.
[0005] To achieve satisfactory printing performance, thermoplastic particulates must maintain good flow properties in the solid state. Flow properties can be evaluated, for example, by measuring the portion of thermoplastic particulates from a sample that can pass through a standard sieve of a specific size and / or by measuring the angle of repose. A high percentage of sievable thermoplastic particulates may indicate that the thermoplastic particulates are not agglomerated and exist essentially as individual particles, which may be characteristic of easy powder flow. In contrast, a low angle of repose value may be characteristic of powder flowability. A relatively narrow particle size distribution and regularity of particle shape in a sample may also promote good powder flow performance. To promote good powder flow performance, a substantial absence of fine particulates may be desirable.
[0006] Thermoplastic particulates are often commercially obtained by cryogenic grinding or precipitation processes, which can result in irregular particle shapes and wide particle size distributions. Irregular particle shapes and wide particle size distributions can lead to poor powder flowability and extensive void formation during the three-dimensional printing process. Poor powder flowability can be addressed to some extent by dry blending with fillers and flow aids, but these layering methods can be limited in effectiveness when using softer polymeric materials such as elastomers due to particle agglomeration.
[0007] Void formation can be more difficult to address. Extensive void formation during particulate consolidation can significantly reduce the final material strength of the printed product compared to that obtained by other methods such as casting or machining the same thermoplastic polymer. Therefore, to promote good particulate consolidation, it may be desirable to achieve good flow performance when the thermoplastic particulate is liquefied. Without being bound by theory, powder bed fusion and similar particulate consolidation processes performed in the absence of external pressure may restrict the flow of the liquefied thermoplastic polymer, leading to void formation, especially when consolidating powder particulates with non-optimal size and / or shape profiles.
[0008] Thermoplastic microparticles may be formed by a melt-emulsification process, such as that described in U.S. Patent No. 4,863,646, the entirety of which is incorporated herein by reference. In the melt-emulsification process, a thermoplastic polymer is dispersed as liquefied droplets in a dispersion medium in which the thermoplastic polymer has no or minimal solubility above the melting point or softening temperature of the polymer. When the liquefied droplets are cooled below the melting point or softening temperature, substantially spherical thermoplastic microparticles can be formed, although with a wide particle size distribution. Therefore, thermoplastic microparticles remain unsuitable for three-dimensional printing processes. Summary of the Invention [Problem to be solved by the invention]
[0009] The particle size distribution of thermoplastic microparticles formed during melt emulsification can be significantly narrowed by incorporating multiple nanoparticles into the dispersion medium, as described in U.S. Patent Application No. 16 / 946,622, filed June 30, 2020, and incorporated herein by reference. The thermoplastic microparticles thus formed can be characterized by at least a partial coating of nanoparticles on the microparticle surface, with the nanoparticles firmly adhered and / or embedded in the microparticle surface. The adhered / embedded nanoparticles can promote powder flow performance much better than that achieved when dry-blending uncoated thermoplastic microparticles with a flow aid. A narrow particle size distribution of thermoplastic microparticles with a nanoparticle coating thereon can often enable rapid sintering with a manageable amount of void formation. While satisfactory in many cases, nanoparticle coatings can limit strong coalescence between thermoplastic microparticles, resulting in higher than desired porosity values. Without being bound by theory, these problems may arise from increased surface viscosity and reduced interpolymer bonding due to the presence of nanoparticles. While the mechanical strength of prints formed through particulate consolidation of nanoparticle-coated thermoplastic particulates is often sufficient, at the same time, the limited mechanical strength of consolidating uncoated thermoplastic particulates may not be sufficient for some performance applications, particularly those requiring high structural integrity.
[0010] The present disclosure provides a particulate composition suitable for additive manufacturing, the particulate composition comprising a plurality of thermoplastic particulates, the particulate comprising a carboxylic acid-based sintering aid mixed with a thermoplastic polymer, and a plurality of nanoparticles disposed on an outer surface of the thermoplastic particulates.
[0011] The present disclosure also provides a method for forming a consolidated part using a particulate composition, the method including providing a particulate composition of the present disclosure, depositing a layer of the particulate composition layer-by-layer onto a powder bed, and heating a portion of the powder bed to consolidate a portion of the thermoplastic particulate into a consolidated part having a specific shape.
[0012] Consolidated parts of the present disclosure formed in accordance with the above may include a thermoplastic matrix formed by consolidation of thermoplastic particulates, nanoparticles, and a carboxylic acid sintering aid mixed with the thermoplastic matrix.
[0013] The present disclosure also provides a method for forming a particulate composition suitable for additive manufacturing, comprising: combining a thermoplastic polymer, nanoparticles, and a carboxylic acid sintering aid with a dispersing medium at a temperature equal to or greater than the melting point or softening temperature of the thermoplastic polymer, wherein the thermoplastic polymer and the dispersing medium are substantially immiscible at the heating temperature; applying a shear force sufficient to disperse the thermoplastic polymer as liquefied droplets in the presence of the nanoparticles and the carboxylic acid sintering aid in the dispersing medium at the heating temperature; cooling the dispersing medium to a temperature at which solidified thermoplastic particulates are formed, wherein the thermoplastic particulates comprise the thermoplastic polymer, at least a portion of the nanoparticles, and at least a portion of the carboxylic acid sintering aid, at least a majority of the nanoparticles being disposed on an outer surface of the thermoplastic particulates; and separating the thermoplastic particulates from the dispersing medium. [Brief explanation of the drawings]
[0014] The following figures are included to illustrate certain aspects of the present disclosure and should not be viewed as exclusive embodiments. The disclosed subject matter is susceptible to considerable modification, alteration, combinations, and equivalents in form and function, as will occur to those skilled in the art and having the benefit of this disclosure.
[0015] [Figure 1] FIG. 1 is a flow chart of a non-limiting exemplary method for producing thermoplastic particulates according to the present disclosure.
[0016] [Figure 2A]FIG. 2A shows optical images of the polyurethane microparticles of Comparative Example 2 after laser sintering at 30% and 45% laser power, a scan rate of 40,000, and a temperature of 108° C., respectively. [Figure 2B] FIG. 2B shows optical images of the polyurethane microparticles of Comparative Example 2 after laser sintering at 30% and 45% laser power, a scan speed of 40,000, and a temperature of 108° C., respectively. [Figure 3A] FIG. 3A shows an optical image of the polyurethane microparticles of Example 4 after laser sintering under the same conditions as Comparative Example 2. [Figure 3B] FIG. 3B shows an optical image of the polyurethane microparticles of Example 4 after laser sintering under the same conditions as Comparative Example 2.
[0017] [Figure 4] FIG. 4 is a plot showing the softening temperature of thermoplastic polyurethane microparticles containing various loadings of zinc stearate sintering aid.
[0018] [Figure 5A] FIG. 5A shows optical images of the polyester microparticles of Comparative Example 1 after laser sintering at 30% and 45% laser power, a scan rate of 40,000, and a temperature of 115° C., respectively. [Figure 5B] FIG. 5B shows optical images of the polyester microparticles of Comparative Example 1 after laser sintering at 30% and 45% laser power, a scan rate of 40,000, and a temperature of 115° C., respectively. [Figure 6A] FIG. 6A shows an optical image of the polyester microparticles of Example 1 after laser sintering under the same conditions as Comparative Example 1. [Figure 6B] FIG. 6B shows an optical image of the polyester microparticles of Example 1 after laser sintering under the same conditions as Comparative Example 1. [Figure 7A] FIG. 7A shows an optical image of the polyester microparticles of Example 2 after laser sintering under the same conditions as Comparative Example 1. [Figure 7B] FIG. 7B shows an optical image of the polyester microparticles of Example 2 after laser sintering under the same conditions as Comparative Example 1. [Figure 8A] FIG. 8A shows an optical image of the polyester microparticles of Example 3 after laser sintering under the same conditions as Comparative Example 1, except that the laser power was 25% and 35%, respectively. [Figure 8B] FIG. 8B shows an optical image of the polyester microparticles of Example 3 after laser sintering under the same conditions as Comparative Example 1, except that the laser powers were 25% and 35%, respectively.
[0019] [Figure 9A] FIG. 9A shows hot stage microscope images of polyester microparticles of Comparative Example 1 at various temperatures. [Figure 9B] FIG. 9B shows hot stage microscope images of polyester microparticles of Comparative Example 1 at various temperatures. [Figure 9C] FIG. 9C shows hot stage microscope images of polyester microparticles of Comparative Example 1 at various temperatures.
[0020] [Figure 10A] FIG. 10A shows hot stage microscope images of polyester microparticles of Example 2 at various temperatures. [Figure 10B] FIG. 10B shows hot stage microscope images of the polyester microparticles of Example 2 at various temperatures. [Figure 10C] FIG. 10C shows hot stage microscope images of the polyester microparticles of Example 2 at various temperatures. DETAILED DESCRIPTION OF THE INVENTION
[0021] The present disclosure relates generally to additive manufacturing, and more particularly to additive manufacturing processes characterized by the consolidation of powder particulates with improved sintering characteristics.
[0022] As discussed above, thermoplastic particulates containing thermoplastic polymers may be suitable for use in three-dimensional printing processes, particularly those that use selective laser sintering to consolidate designated locations in a powder bed to form parts with a predetermined shape. Currently commercially available thermoplastic particulates can be obtained with irregular shapes and / or wide particle size distributions, which can lead to poor flow performance and / or incomplete particulate consolidation during printing. A melt-emulsion process using nanoparticles during thermoplastic particulate formation can produce thermoplastic particulates with high sphericity and narrow particle size distribution. Nanoparticle-coated thermoplastic particulates can easily sinter to form consolidated parts with a manageable amount of void formation, which can provide sufficient mechanical strength for many applications.
[0023] In particular, for performance applications requiring high structural integrity, an increased degree of particulate consolidation may be desirable. In the case of nanoparticle-coated thermoplastic particulates, improved particulate consolidation and reduced void formation can be achieved to some extent by reducing the nanoparticle loading. However, the optimization range for achieving improved particulate consolidation in this manner may be rather limited, as powder flow performance may be poor if the nanoparticle loading becomes too low, again resulting in high void content and part defects after particulate consolidation. Therefore, achieving a balance between adequate powder flow performance and good liquid flow performance when consolidating thermoplastic powder particulates can be very difficult.
[0024] This disclosure demonstrates that sintering aids, specifically carboxylic acid sintering aids with sufficiently low melting points, can be effectively incorporated into the melt-emulsification process and mixed within the thermoplastic matrix that defines the thermoplastic particulates formed therefrom. Surprisingly, the carboxylic acid sintering aid can affect the size and size distribution of the thermoplastic particulates formed from melt-emulsification in the presence of nanoparticles. Suitable carboxylic acid sintering aids may include various low-melting metal carboxylates formed from fatty acids or dicarboxylic acids, as discussed in more detail below. Corresponding free carboxylic acids may also be suitable carboxylic acid sintering aids in some cases and may be suitable for use when a particular metal carboxylate is unavailable or has a too high melting point. Suitable carboxylic acid sintering aids, including metal carboxylates formed from free carboxylic acids, may be selected so that their melting points are high enough to avoid particulate agglomeration during sintering, yet low enough to be below the sintering temperature used. The melting point of the carboxylic acid sintering aid may also be higher than the temperature at which melt-emulsification of the thermoplastic particulates occurs. The carboxylic acid sintering aid may allow sintering of the thermoplastic particulates to occur at lower temperatures and lower laser powers than would otherwise be possible. Suitable carboxylic acid sintering aids may also reduce the porosity of consolidated parts formed from thermoplastic particulates, for example, by reducing surface viscosity and promoting interpolymer bonding, thereby providing access to performance parts with high structural integrity requirements. Under certain conditions, carboxylic acid sintering aids allow essentially complete fusion of the thermoplastic particulates to occur (instead of leaving a discernible particulate structure after consolidation), thereby providing access to parts with minimal porosity and / or a glossy finish. Thus, the present disclosure can significantly expand the range of applications in which nanoparticle-coated thermoplastic particulates can be effectively utilized to form various types of consolidated parts. Suitable nanoparticles suitable for use with metal carboxylate sintering aids are discussed in more detail below. Consolidation of thermoplastic particulates without a nanoparticle coating can similarly be enhanced by practicing the present disclosure.
[0025] Blocking refers to the tendency of powder particles in a heated powder bed to stick together, even where no additional energy input is provided to promote consolidation of the particular powder particles. Blocking can be problematic and can limit the ability to form consolidated parts of particular shapes using thermoplastic particulates. Surprisingly, the carboxylic acid-based sintering aids disclosed herein can promote little or no blocking when the thermoplastic particulates of the present disclosure are deposited in a heated powder bed.
[0026] In a further surprising result, nanoparticles may be pre-coated with carboxylic acid-based sintering aids, particularly metal carboxylate sintering aids formed from fatty acids, to realize additional benefits during melt-emulsification of thermoplastic microparticles. For example, a metal carboxylate sintering aid (e.g., zinc stearate) may be pre-coated onto silica nanoparticles by roll-milling and then used to form thermoplastic microparticles with a narrower particle size distribution than can be obtained when the nanoparticles and metal carboxylate are combined separately in a melt-emulsification medium (dispersion medium).
[0027] The terms used in the description and claims of this specification have their plain and ordinary meanings except as modified by the following paragraphs.
[0028] As used herein, the term "thermoplastic polymer" refers to a polymeric material that reversibly softens and hardens upon heating and cooling above a particular temperature (e.g., melting point, softening point, glass transition temperature, etc.) Thermoplastic polymers include both elastomeric and non-elastomeric thermoplastic polymers.
[0029] As used herein, the term "nanoparticle" refers to particulate matter having a particle size ranging from about 1 nm to about 500 nm.
[0030] As used herein, the term "oxide" refers to both metal and non-metal oxides. For purposes of this disclosure, silicon is considered to be a metal.
[0031] As used herein, the term "oxide nanoparticles" refers to particulate materials having a particle size ranging from about 1 nm to about 500 nm and comprising metal oxides or non-metal oxides.
[0032] As used herein, the term "associated" refers to a chemical bond, physical incorporation with a matrix, or physical adhesion to a surface.
[0033] As used herein, the terms "mixed," "admixture," and related terms refer to the dissolution of a first substance in a second substance or the dispersion of a first substance as a solid in a second substance, where the dispersion may be uniform or non-uniform. Mixing encompasses blending two substances together in such a manner that the first substance is at least partially disposed within the second substance. Thus, a blending process that results in mixing is distinguishable from a process that results in the disposition of the first substance only on the surface of the second substance, such as may occur during a dry blending process.
[0034] As used herein, the term "D 10 " refers to a diameter where 10% of the sample (by volume unless otherwise specified) consists of particles having a diameter less than that diameter value. As used herein, the term "D 50 " refers to a diameter where 50% of the sample (by volume unless otherwise specified) consists of particles with a diameter less than the diameter value in question. 50 may also be referred to as "average particle size." As used herein, the term "D 90 " refers to the diameter where 90% of the sample (by volume unless otherwise specified) consists of particles having a diameter less than that diameter value.
[0035] As used herein, the terms "diameter span," "span," and "span size" provide an indication of the width of the particle size distribution (D 90 -D 10 ) / D 50 (Again, unless otherwise specified, each D value is based on volume).
[0036] As used herein, the term "shear force" is used in reference to stirring or similar processes that induce mechanical agitation in a fluid.
[0037] As used herein, the term "embedded" with respect to the surface of nanoparticles and thermoplastic microparticles refers to nanoparticles that simply rest on the surface of the polymer particle, thereby extending at least partially into the surface such that the polymer contacts the nanoparticles more tightly than if they were in tangential contact with the surface.
[0038] As used herein, the terms "circularity" and "sphericity" refer to the proximity of a microparticle or microparticles to a perfect sphere. To determine circularity, an optical microscope image of the microparticle is taken. The perimeter (P) and area (A) of the particle in the plane of the microscope image are calculated (e.g., using a SYSMEX FPIA 3000 Particle Shape and Size Analyzer available from Malvern Instruments). The circularity of a microparticle is expressed as C EA / P, wherein C EA is the circumference of a circle with an area equivalent to the area of the actual particle (A).
[0039] As used herein, viscosity of the carrier fluid refers to the kinematic viscosity at 25° C. unless otherwise specified, measured per ASTM D445-19 unless otherwise specified.
[0040] As used herein, the term "carboxylic acid-based" refers to both free carboxylic acids and metal carboxylates. For purposes of this disclosure, ammonium-based cations are considered to constitute the metal.
[0041] Melting points of thermoplastic polymers herein are determined by ASTM E794-06(2018) at a heating and cooling rate of 10°C / min unless otherwise specified.
[0042] The softening temperature or softening point of the thermoplastic polymers herein is determined by ASTM D6090-17 unless otherwise specified. The softening temperature may be measured by using a cup and ball apparatus available from Mettler-Toledo using a 0.50 gram sample at a heating rate of 1°C / min.
[0043] The particulate composition of the present disclosure may include a plurality of thermoplastic particulates, each comprising a carboxylic acid sintering aid mixed with a thermoplastic polymer and a plurality of nanoparticles disposed on the outer surface of the thermoplastic particulate. The carboxylic acid sintering aid may be blended with the thermoplastic polymer such that the thermoplastic matrix defining the thermoplastic particulate contains the carboxylic acid sintering aid, and optionally, the carboxylic acid base sintering aid is located on the exterior of the thermoplastic particulate. Thus, a carboxylic acid sintering aid that has been dry-blended with a previously formed thermoplastic particulate is not considered to be mixed with the thermoplastic particulate in this disclosure, because the carboxylic acid sintering aid does not enter the interior portion of the thermoplastic particulate during dry-blending.
[0044] The plurality of nanoparticles may comprise oxide nanoparticles, carbon black, or any combination thereof. Suitable oxide nanoparticles for use in the present disclosure may include, for example, silica nanoparticles, titania nanoparticles, zirconia nanoparticles, alumina nanoparticles, iron oxide nanoparticles, copper oxide nanoparticles, tin oxide nanoparticles, boron oxide nanoparticles, cerium oxide nanoparticles, thallium oxide nanoparticles, tungsten oxide nanoparticles, or any combination thereof. Mixed oxides formed as nanoparticles, such as aluminosilicates, borosilicates, and aluminoborosilicates, are also encompassed by the term "oxide" and may be suitable for use in the present disclosure. Oxide nanoparticles may be hydrophilic or hydrophobic in nature and may be native to the nanoparticles or may be the result of a surface treatment of the nanoparticles. For example, silica nanoparticles with hydrophobic surface treatments, such as dimethylsilyl or trimethylsilyl, may be formed by reacting hydrophilic surface hydroxyl groups with an appropriate functionalizing agent. While hydrophobically functionalized oxide nanoparticles may be particularly desirable in the methods and compositions of the present disclosure, unfunctionalized oxide nanoparticles or hydrophilically modified oxide nanoparticles may also be suitable for use. For example, hydrophobic functionalized oxide nanoparticles may be particularly compatible with hydrophobic fluids used in melt-emulsification processes.
[0045] Silica nanoparticles, particularly fumed silica nanoparticles with hydrophobic functionalization, may be particularly suitable for use in the present disclosure due to the wide variety of functionalized silicas available and the wide range of hydrophobic functionalization types and particle sizes. Silazane and silane hydrophobic functionalization are easy hydrophobic functionalizations that can be used in the present disclosure. Thus, the nanoparticles used in the present disclosure may comprise or essentially consist of silica nanoparticles, particularly hydrophobically functionalized silica nanoparticles. Silica nanoparticles can be used in combination with other types of oxide or non-oxide nanoparticles, which can impart specific properties to the thermoplastic microparticles or the linkages formed therefrom that are not achieved when silica nanoparticles are used alone.
[0046] The introduction of hydrophobic functional groups may reduce the water compatibility of silica nanoparticles compared to non-functionalized silica nanoparticles. Desirably, hydrophobic functionalization can improve the dispersion of silica nanoparticles in highly hydrophobic dispersion media used in melt emulsification. Suitable hydrophobic functionalization may be non-covalently or covalently attached to the surface of the silica nanoparticles. Covalent attachment can be achieved, for example, by functionalizing surface hydroxyl groups on the surface of the silica nanoparticles. In a non-limiting example, silica nanoparticles can be treated with hexamethyldisilazane to achieve covalent attachment of the hydrophobic modification. Commercially available hydrophobically functionalized silica nanoparticles include, for example, Aerosil RX50 (Evonik, average particle size = 40 nm) and Aerosil R812S (Evonik, average particle size = 7 nm).
[0047] Carbon black is another type of nanoparticle that may be present on the thermoplastic particulate in the present disclosure. Various grades of carbon black are well known to those skilled in the art, any of which may be suitable for use in the present disclosure. In some cases, carbon black, silica, and other types of oxide nanoparticles may be present in combination with one another.
[0048] Polymer nanoparticles are another type of nanoparticles that can be present on the thermoplastic microparticles in the present disclosure.Suitable polymer nanoparticles can include one or more thermosetting and / or crosslinked polymers, so that they do not melt when processed by melt emulsification or similar microparticle formation techniques in the present disclosure.Nanoparticles that include high molecular weight thermoplastic polymers, preferably with high melting or decomposition points, can also be used to facilitate the formation of microparticles in the present disclosure.
[0049] The loading and particle size of silica nanoparticles or other types of nanoparticles on thermoplastic microparticles can vary over a wide range in the present disclosure. The loading of silica nanoparticles or similar types of nanoparticles can depend on the concentration of nanoparticles in the dispersing medium used to promote the formation of the thermoplastic microparticles, as described further below. In non-limiting examples, the concentration of nanoparticles in the dispersing medium can range from about 0.01% to about 10% by weight, or from about 0.05% to about 10% by weight, or from about 0.05% to about 5% by weight, or from about 0.1% to about 2% by weight, or from about 0.25% to about 1.5% by weight, or from about 0.2% to about 1.0% by weight, or from about 0.25% to about 1% by weight, or from about 0.25% to about 0.5% by weight, based on the weight of the thermoplastic polymer. The particle size of the nanoparticles can range from about 1 nm to about 100 nm, although particle sizes up to about 500 nm may be acceptable. In non-limiting examples, the particle size of the nanoparticles can range from about 5 nm to about 75 nm, or from about 5 nm to about 50 nm, or from about 5 nm to about 10 nm, or from about 10 nm to about 20 nm, or from about 20 nm to about 30 nm, or from about 30 nm to about 40 nm, or from about 40 nm to about 50 nm, or from about 50 nm to about 60 nm. Nanoparticles, particularly silica nanoparticles and similar oxide nanoparticles, can range from about 10 nm to about 75 nm. 2 / g~about 500m 2 / g, or approximately 10 m 2 / g~about 150m 2 / g, or approximately 25m 2 / g~about 100m 2 / g, or approximately 100m 2 / g ~ approx. 250m 2 / g, or approximately 250m 2 / g~about 500m 2 / g BET surface area.
[0050] Specific examples of oxide nanoparticles suitable for use in the present disclosure include, for example, hexamethyldisilazane (HMDS), dimethyldichlorosilane, or other long-chain alkylsilanes such as decyltriethoxysilane or octyltriethoxysilane. Suitable oxide nanoparticles can vary in size from about 7 nm to about 130 nm. Specific commercially available examples of hydrophobically treated silica, their particle size, and hydrophobic treatment include Wacker HDK® H13TD (16 nm, PDMS), HDK® H13™ (16 nm, HMDS), HDK® H13TX (16 nm, HMDS / PDMS), and HDK® H20TD (12 nm). PDMS), HDK® H20™ (12 nm, HMDS), HDK® H20TX (12 nm, HMDS / PDMS), HDK® H30TD (8 nm, PDMS), HDK® H30™ (8 nm, HMDS), HDK® H30TX (8 nm, HMDS / PDMS), HDK® H3004 (12 nm, HMDS), HDK® HO5TD (40 nm, PDMS), HDK® HO5™ (40 nm, HMDS), HDK® HO5TX (40 nm, HMDS / PDMS), Evonik R972 (16 nm, DDS), RY200S (16 nm, PDMS, BET surface area = 200 m 2 / g), R202 (16 nm, PDMS), R974 (12 nm, DDS), RY200 (12 nm, PDMS), RX200 (12 nm, HMDS), R8200 (12 nm, HMDS), R805 (12 nm, alkylsilane), R104 (12 nm, alkylsilane), RX300 (7 nm, HMDS), R812 (7 nm, HMDS), R812S (7 nm, HMDS, BET surface area = 300 m 2 / g), R106 (7 nm, alkylsilane), NY50 (30 nm, PDMS), NAX50 (30 nm, HMDS), RY50 (40 nm, PDMS), and RX50 (40 nm, HMDS), Cabot TS530 (8 nm, HMDS), and Shin-Etsu sol-gel silica X24-9163A (110 nm, HMDS, BET surface area = 25 m 2 / g) and X24-9600 A-80 (80 nm, HMDS, BET = 40 m 2 / g).
[0051] Suitable oxide nanoparticles may include a treatment involving a base or a base salt. Specific commercial examples of such treated oxide nanoparticles, their particle sizes, and their treatments include Wacker treated silica HDK® H13TA (16 nm, PDMS-NR2 / NR3). + ), HDK® H30TA (8 nm, PDMS-NR2 / NR3 + ), HDK® H2015EP (12 nm, PDMS-NR2 / NR3 + ), HDK (registered trademark) H2050EP (10 nm, PDMS-NR2 / NR3 + ), HDK® H2150VP (10 nm, PDMS-NR2 / NR3 + ), and HDK® H3050VP (8 nm, PDMS-NR2 / NR3 + ) are listed.
[0052] Other suitable oxide nanoparticles, including both treated and untreated variants, include titanates, which may include, for example, CaTiO3, BaTiO3, MgTiO3, MnTiO3, SrTiO3, and Al2TiO5.
[0053] Treated or untreated aluminum oxides are also suitable. Specific commercially available examples of aluminum oxides, their particle sizes, and their treatments include, for example, Evonik C805 (13 nm, octylsilane), Aluminum Oxide C (13 nm, untreated), Aeroxide Alu C 100 (10 nm, untreated), Aeroxide Alu C 130 (13 nm, untreated), Cabot SpectrAL 81 (21 nm, untreated), and Cabot SpectrAl 100 (18 nm, untreated).
[0054] Still other suitable oxides include treated or untreated titanium dioxide. Suitable commercially available titanium dioxide oxides include JMT-150IB manufactured by Tayca Corp., having a volume average particle size of 15 nm, JMT2000 manufactured by Tayca Corp., having particle sizes of 15x15x40 nm, T805 manufactured by Evonik, having a volume average particle size of about 21 nm, SMT5103 manufactured by Tayca Corporation, having a particle size of about 40 nm, and STT-100H manufactured by Inabata America Corporation, having an average particle size of about 40 nm.
[0055] Based on turbidity measurements, approximately 80-90% of available nanoparticles, such as silica nanoparticles, are associated with the thermoplastic microparticles formed by melt emulsification according to the present disclosure. Because nanoparticle loading is measured relative to the thermoplastic polymer, the amount of nanoparticles associated with the thermoplastic microparticles can be approximately 80-90% of the nanoparticle loading used in forming the elastomeric particles. Higher or lower amounts of nanoparticles may be associated with the thermoplastic microparticles due to higher or lower nanoparticle loading in the dispersion medium.
[0056] The thermoplastic microparticles of the present disclosure may have nanoparticles at least partially embedded in the outer surface of the thermoplastic microparticle. When embedding occurs, a portion of the nanoparticle structure may be located within a crater or recess in the outer surface, thereby making it more difficult to remove the nanoparticles from the surface. It should be understood that even if substantial embedding does not occur, appropriately functionalized nanoparticles, such as hydrophobically functionalized silica nanoparticles, may associate non-covalently (e.g., via van der Waals-type interactions) to promote retention of the nanoparticles on the outer surface.
[0057] Examples of thermoplastic polymers suitable for use in the present disclosure include polyamides (e.g., nylon-6, nylon-12, etc.), polyurethanes, polyethylene, polypropylene, polyacetal, polycarbonate, polyethylene or polybutylene terephthalate, glycol-modified polyethylene terephthalate or polybutylene terephthalate, polystyrene, polyvinyl chloride, polytetrafluoroethylene, polylactic acid, and other polyesters, polyethers, polyethersulfones, polyetheretherketones, polyacrylates, polymethacrylates, polyimides, acrylonitrile butadiene styrene (ABS), polyphenylene sulfide, vinyl polymers, polyarylene ethers, polyarylene sulfides, polysulfones, polyetherketones, polyaryletherketones, and the like. ketone, PAEK), polyamideimides, polyetherimides, polyetheresters, copolymers containing polyether blocks and polyamide blocks (PEBA or polyether block amides), grafted or ungrafted thermoplastic polyolefins, functionalized or unfunctionalized ethylene / vinyl monomer polymers, functionalized or unfunctionalized ethylene / vinyl monomer polymers, functionalized or unfunctionalized ethylene / alkyl (meth)acrylate, functionalized or unfunctionalized (meth)acrylic acid polymers, functionalized or unfunctionalized ethylene / vinyl monomer / alkyl (meth)acrylate terpolymers, ethylene / vinyl monomer / carbonyl terpolymers, ethylene / alkyl (meth)acrylate / carbonyl terpolymers, methyl methacrylate-butadiene-styrene (MBS) type core-shell polymers, polystyrene-block-polybutadiene-block-poly(methyl methacrylate) (SBM) block terpolymers, chlorinated or chlorosulfonated polyethylene, polyvinylidene fluoride fluoride, PVDF), phenolic resin, poly(ethylene / vinyl acetate), polybutadiene, polyisoprene, styrene block copolymer, polyacrylonitrile, silicone, and the like, and any combination thereof.Copolymers comprising one or more of the foregoing may also be used in the present disclosure. Any of the foregoing polymers may be thermoplastic elastomers and may contain crystalline "hard" segments and amorphous "soft" segments.
[0058] Particularly suitable examples of thermoplastic polymers for use in the present disclosure may include polyamides such as nylon 6 or nylon 12, acrylonitrile butadiene styrene, polylactic acid, polyurethanes, poly(arylene ethers), polyaryletherketones, polycarbonates, polyimides, polyphenylene sulfides, poly(arylene sulfones), polyesters such as polyethylene terephthalate or polybutylene terephthalate or glycol-modified variants, and any combination thereof.
[0059] More specific examples of suitable polyamides include polycaproamide (nylon 6, polyamide 6, or PA6), poly(hexamethylene succinamide) (nylon 46, polyamide 46, or PA46), polyhexamethylene adipamide (nylon 66, polyamide 66, or PA66), polypentamethylene adipamide (nylon 56, polyamide 56, or PA56), polyhexamethylene sebacamide (nylon 610, polyamide 610, or PA610), polyundecaamide (nylon 11, polyamide 11, or PA11), polydodecaamide (nylon 12, polyamide 12, or PA12), and polyhexamethylene terephthalamide (nylon 6 Polyamides suitable for use include, but are not limited to, polyamides such as nylon 10.10 (polyamide 10.10 or PA10.10), nylon 10.12 (polyamide 10.12 or PA10.12), nylon 10.14 (polyamide 10.14 or PA10.14), nylon 10.18 (polyamide 10.18 or PA10.18), nylon 6.10 (polyamide 6.10 or PA6.10), nylon 6.18 (polyamide 6.18 or PA6.18), nylon 6.12 (polyamide 6.12 or PA6.12), nylon 6.14 (polyamide 6.14 or PA6.14), and semi-aromatic polyamides, as well as any combination thereof. Copolyamides may also be used. Examples of suitable copolyamides include, but are not limited to, PA11 / 10.10, PA6 / 11, PA6.6 / 6, PA11 / 12, PA10.10 / 10.12, PA10.10 / 10.14, PA11 / 10.36, PA11 / 6.36, PA10.10 / 10.36, etc., and any combination thereof. Polyesteramides, polyetheresteramides, polycarbonateesteramides, and polyether block amides, any of which may be elastomers, may also be used in the present disclosure.
[0060] Examples of suitable polyurethanes include, but are not limited to, polyether polyurethanes, polyester polyurethanes, mixed polyether and polyester polyurethanes, and the like, and any combination thereof. Suitable polyurethanes may include elastomeric polyurethanes prepared by the condensation of an isocyanate, a polyol, and a chain extender, where the polyol provides flexibility to the polymer chain and typically constitutes the soft segment. Examples of polyurethanes suitable for use in the present disclosure include, but are not limited to, poly[4,4'-methylenebis(phenylisocyanate)-alt-1,4-butanediol / di(propylene glycol) / polycaprolactone], ELASTOLLAN® 1190A (a polyether polyurethane elastomer available from BASF), and the like, and any combination thereof.
[0061] Suitable polyesters are condensation products formed from diacids and diols, or the self-condensation products of hydroxy acids such as lactic acid. Glycol-modified polyesters, such as glycol-modified polyethylene terephthalate or glycol-modified polybutylene terephthalate, may be particularly suitable for use in combination with the carboxylic acid-based sintering aids disclosed herein. Glycol modification can provide desirable benefits such as optical transparency and flexibility of the polymer chain.
[0062] Suitable thermoplastic polymers can be elastomeric or non-elastomeric. Some of the aforementioned examples of thermoplastic polymers can be elastomeric or non-elastomeric depending on the specific composition of the polymer. For example, polyethylene, a copolymer of ethylene and propylene, can be elastomeric or non-elastomeric, regardless of the amount of propylene present in the polymer. HYTREL HTR 6108 is one suitable example of a glycol-modified polyethylene terephthalate.
[0063] Elastomeric thermoplastic polymers suitable for use in the present disclosure generally fall within one of six classes: styrenic block copolymers, thermoplastic polyolefin elastomers, thermoplastic vulcanizates (also called elastomeric alloys), thermoplastic polyurethanes, thermoplastic copolyesters, and thermoplastic polyamides (typically block copolymers containing polyamides). Specific examples of elastomeric thermoplastic polymers can be found in "Handbook of Thermoplastic Elastomers," 2nd Edition, BMW Walker and C. P. Rader, eds., Van Nostrand Reinhold, New York, 1988. Examples of suitable elastomeric thermoplastic polymers include, but are not limited to, elastomeric polyamides, polyurethanes, copolymers containing polyether blocks and polyamide blocks (PEBA or polyether block amides), methyl methacrylate-butadiene-styrene (MBS) type core-shell polymers, polystyrene-block-polybutadiene-block-poly(methyl methacrylate) (SBM) block terpolymers, polybutadiene, polyisoprene, styrene block copolymers, and polyacrylonitrile), silicones, etc. Elastic styrene block copolymers may include at least one block selected from the group consisting of isoprene, isobutylene, butylene, ethylene / butylene, ethylene-propylene, and ethylene-ethylene / propylene. More specific examples of elastomeric styrenic block copolymers include, but are not limited to, poly(styrene-ethylene / butylene), poly(styrene-ethylene / butylene-styrene), poly(styrene-ethylene / propylene), styrene-ethylene / propylene-styrene), poly(styrene-ethylene / propylene-styrene-ethylene-propylene), poly(styrene-butadiene-styrene), poly(styrene-butylene-butadiene-styrene), and the like, and any combination thereof.
[0064] Any carboxylic acid or carboxylic acid salt that promotes sintering of thermoplastic particulates by reducing porosity after sintering, increasing particle fusion, and / or lowering sintering temperatures can be effectively used as a carboxylic acid sintering aid in the present disclosure. Suitable carboxylic acid sintering aids can accomplish the foregoing while exhibiting little or no blocking in a heated powder bed. Ammonium salts, including tetraalkylammonium compounds, may optionally be utilized as alternative sintering aids.
[0065] Particularly suitable carboxylic acid sintering aids, such as metal carboxylates, may have melting points of about 60°C or higher, or about 90°C or higher, e.g., about 60°C to about 300°C, about 90°C to about 300°C, about 150°C to about 300°C, or about 200°C to about 300°C, making them compatible with the particle deposition and consolidation conditions used to form consolidated parts during 3D printing. The carboxylic acid sintering aid may be selected so that it has a melting point lower than the thermoplastic polymer containing the thermoplastic particulate. Alternatively, the carboxylic acid sintering aid may have a melting point lower than the sintering temperature used to promote consolidation of the thermoplastic particulate, particularly when the sintering temperature is below the melting point of the thermoplastic polymer. If the melting point of the carboxylic acid sintering aid is too low, blocking may occur during particulate consolidation, especially with respect to the carboxylic acid sintering aid deposited on the surface of the thermoplastic particulate. More preferably, suitable carboxylic acid sintering aids, such as metal carboxylates, may melt under the melt-emulsification conditions used to form the thermoplastic microparticles at temperatures ranging from about 200° C. to about 300° C., or from about 200° C. to about 250° C. Therefore, particularly suitable carboxylic acid sintering aids, such as metal carboxylates, may have melting points ranging from about 60° C. to about 300° C., or from about 90° C. to about 300° C., or from about 90° C. to about 250° C., or from about 90° C. to about 200° C.
[0066] Carboxylic acids or their metal carboxylate forms suitable for use in the present disclosure may be aliphatic or aromatic, straight-chain or branched-chain, cyclic or acyclic, saturated or unsaturated, or any combination thereof. Suitable metal carboxylates may include at least one salt selected from metal monocarboxylates, metal dicarboxylic acids, and any combination thereof. Metal monocarboxylates or metal dicarboxylates may include monovalent metal cations, divalent metal cations, trivalent metal cations, or mixed metal salts containing either monovalent, divalent, or trivalent metal cations. Particularly suitable examples of metal carboxylate sintering aids may include divalent or trivalent metal cations. More specific examples of suitable metal carboxylates follow.
[0067] Metal carboxylates contain a metal cation component and an anionic component comprising a carboxylic acid group attached to a hydrocarbyl moiety. Metal carboxylates may be formed from the reaction between a base and a carboxylic acid, with the metal cation component originating from the base and the anionic component originating from the carboxylic acid. Cation exchange may be performed to introduce metal cation components that are not readily introduced with the base. Suitable metal cation components may include alkali metal cations, alkaline earth metal cations, transition metal cations, main base metal cations, lanthanide metal cations, or any combination thereof. The selection of a particular metal cation component for a particular carboxylic acid group may be selected to provide a melting point within the compatibility range of the metal carboxylate, as described above. For example, if the melting point produced by an alkali metal salt of a particular carboxylate group is too high, a lower melting point may be achieved by using a different salt form of the carboxylate, such as an alkaline earth metal cation form or a transition metal cation form. While the melting points of many metal carboxylates are known, many are unknown or have not been reported in the literature. Nevertheless, it should be understood that melting points can be readily determined and that one of ordinary skill in the art, having the benefit of this disclosure, can select a suitable metal carboxylate for a given application. Both the metal cation component and the carboxylate moiety can be varied to achieve suitability for use in a given application.
[0068] Alkali metal cations may include Li, Na, K, Rb, and Cs cations. The alkali metal cation may be selected as the metal cation component of any of the metal carboxylates disclosed herein, provided that the melting point of the metal carboxylate is within a suitable range.
[0069] Alkaline earth metal cations may include Be, Mg, Ca, Sr, Ba. Any alkaline earth metal cation may be selected as the metal cation component for any of the metal carboxylates disclosed herein so long as the melting point of the metal carboxylate is within a suitable range.
[0070] The main base metal cation may include Al, Ga, In, Tl, Sn, Pb, and Bi cations. The main base metal cation may be selected as the metal cation component for any of the metal carboxylates disclosed herein so long as the melting point of the metal carboxylate is within a suitable range.
[0071] Transition metal cations may include Sc, Y, Ti, Zr, Hf, V, Nb, Ta, Cr, Mo, W, Mn, Re, Fe, Ru, Os, Co, Rh, Ir, Ni, Pd, Pt, Cu, Ag, Au, Zn, Cd, and Hg cations, which may exist in any accessible oxidation state. A base metal cation may be selected as the metal cation component for any of the metal carboxylates disclosed herein, so long as the melting point of the metal carboxylate is within a suitable range.
[0072] Lanthanide metal cations may include La, Ce, Pr, Nd, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, and Lu cations, which may be in the +2 or +3 oxidation state, typically +3. The lanthanide metal cations may be selected as the metal cation component of any of the metal carboxylates disclosed herein, provided that the melting point of the metal carboxylate is within a suitable range.
[0073] In some embodiments, the carboxylic acid sintering aid may include a dicarboxylic acid or a metal carboxylate formed therefrom. Suitable metal carboxylates formed from dicarboxylic acids may include monovalent, divalent, or trivalent metal cations, or any combination thereof, particularly divalent or trivalent metal cations. Such metal dicarboxylates may include an acid component derived from a saturated or unsaturated dicarboxylic acid containing from about 2 to about 100 carbon atoms, or from about 2 to about 20 carbon atoms, or from about 4 to about 16 carbon atoms, or from about 2 to about 10 carbon atoms. Specific examples of suitable dicarboxylic acids include terephthalic acid, phthalic acid, isophthalic acid, fumaric acid, maleic acid, itaconic acid, succinic acid, dodecylsuccinic acid, dodecenylsuccinic acid, oxalic acid, malonic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, dodecanedioic acid, malic acid, sebacic acid, and the like, and any combination thereof. Other suitable dicarboxylic acids that can be utilized to form the metal carboxylate include those containing a C3-C6 cycloaliphatic ring, such as cyclohexanedicarboxylic acid, cyclopentanedicarboxylic acid, cyclobutanedicarboxylic acid, or cyclopropanedicarboxylic acid. A hydrophobic tail may extend from the dicarboxylic acid at a position between the carboxylic acid groups.
[0074] In some embodiments, the carboxylic acid sintering aid can include a monocarboxylate or a metal carboxylate formed therefrom. Suitable metal carboxylates formed from monocarboxylates can include at least one metal monocarboxylate containing a monovalent metal cation, a divalent metal cation, a trivalent metal cation, or any combination thereof, particularly a divalent metal cation or a trivalent metal cation. The metal monocarboxylate can include an acid component derived from a saturated or unsaturated carboxylic acid containing about 6 or more carbon atoms, or about 8 or more carbon atoms, or about 10 or more carbon atoms, or about 12 or more carbon atoms, or about 14 carbon atoms, or about 16 carbon atoms, or about 18 carbon atoms, or about 20 carbon atoms, or about 22 carbon atoms, or about 24 or more carbon atoms, or more. In more specific embodiments, the metal carboxylate can include an acid component derived from a monocarboxylate containing from 2 to about 30 carbon atoms, or from 3 to about 26 carbon atoms, or from 4 to about 24 carbon atoms, or from 6 to about 20 carbon atoms, or from 8 to about 18 carbon atoms. Metal carboxylates formed from monocarboxylates having about 12 or fewer carbon atoms may be used in combination with more hydrophobic saturated or unsaturated carboxylic acids, such as those containing about 6 or more carbon atoms, or about 10 or more carbon atoms, or about 12 or more carbon atoms, or about 14 carbon atoms, or about 16 carbon atoms, or about 18 carbon atoms, or about 20 carbon atoms, or about 22 carbon atoms, or about 24 or more carbon atoms, or more. Some metal formates also have sufficient thermal stability and can be used alone or in combination with more hydrophobic saturated or unsaturated carboxylic acids.Specific examples of suitable monocarboxylates include acetic acid, propionic acid, butyric acid, isobutyric acid, malic acid, isomalic acid, caproic acid, caprylic acid, capric acid, lauric acid, tridecyl acid, myristic acid, pentadecylic acid, palmitic acid, margaric acid, stearic acid, nonadecylic acid, arachidic acid, henicosylic acid, behenic acid, tricholic acid, lignoceric acid, pentacosylic acid, cerotic acid, carboceric acid, montanic acid, nonacosylic acid, melissic acid, hentriacotinic acid, laxeronic acid, silicic acid, gedic acid, ceroplastic acid, hexatricotyl acid, heptatriaconylic acid, octotriacosylic acid, nonatriacholic acid, and tetracholic acid.The above-mentioned acids are saturated monocarboxylates.Unsaturated monocarboxylates may also be used to form metal monocarboxylates suitable for use in the present disclosure. Suitable unsaturated monocarboxylic acids include, for example, crotonic acid, sebonic acid, linoleic acid, linoleic acid, linoleic acid, linolenic acid, arachidonic acid, docosatetraenoic acid, myristoleic acid, palmitoleic acid, sparenic acid, vaccenic acid, panulinic acid, oleic acid, pinolenic acid, stearidonic acid, eleostearic acid, elaidic acid, gondoic acid, gadoleic acid, elasmethiconic acid, godorenic acid, gadoliic acid, erucic acid, eicosenoic acid, eicosadienoic acid, eicosatrienoic acid, eicosatetraenoic acid, docosadienoic acid, nebelonic acid, medonic acid, and adrenalic acid. Suitable aromatic carboxylic acids include benzoic acid, naphthoic acid, or substituted variants thereof. Substituted variants of benzoic acid and naphthoic acid range from C1 to C6. 40 Saturated or unsaturated hydrocarbyl groups, C1-C 10 may have saturated or unsaturated hydrocarbyl groups, or C at any open valence position of the aromatic ring to a carboxylic acid group and / or heteroatom functional group. 11 ~C 30The aromatic carboxylic acid may be a saturated or unsaturated hydrocarbyl group and / or a heteroatom functional group at any open valence position on the aromatic ring relative to the carboxylic acid group. Examples of hydrocarbyl groups that may be present in suitable aromatic carboxylic acids include, for example, linear or branched alkyl or alkenyl groups. Specific examples of aromatic acids that may comprise the acid component of the metal monocarboxylates of this disclosure include, for example, hydroxybenzoic acids, including benzoic acid, naphthoic acid, toluic acid, and salicylic acid, and hydroxynaphthoic acid. Other suitable monocarboxylates that may suitably comprise the acid component of the metal monocarboxylates include those containing a C3-C6 cycloaliphatic ring, such as cyclohexanecarboxylic acid, cyclopentanecarboxylic acid, cyclobutanecarboxylic acid, or cyclopropanecarboxylic acid. Any free carboxylic acid may be utilized as the carboxylic acid sintering aid of this disclosure, provided that the melting point is within a satisfactory range (e.g., about 60°C to about 300°C).
[0075] In certain embodiments, the carboxylic sintering aid may include a stearate salt, such as zinc stearate, calcium stearate, or similar stearate salts containing a divalent metal cation. Stearates containing a trivalent metal cation, such as aluminum stearate, may also be used in the present disclosure. Stearates containing a monovalent metal cation, such as alkali metal stearates, may also be suitable for use in the present disclosure.
[0076] The loading of the carboxylic acid sintering aid in the thermoplastic matrix defining the thermoplastic particulates disclosed herein can range from about 0.05% to about 5% by weight, or from about 0.05% to about 2% by weight, measured relative to the thermoplastic polymer. The loading of the carboxylic acid sintering aid can represent an amount effective to promote sintering and reduce void formation, but does not promote blocking when placed in a heated powder bed.
[0077] In a non-limiting example, the thermoplastic microparticles disclosed herein can be formed by melt emulsification. Such a method for producing thermoplastic microparticles can include combining a thermoplastic polymer, nanoparticles, and a carboxylic acid sintering aid (e.g., a metal carboxylate) with a dispersing medium at a temperature above the melting point or softening temperature of the thermoplastic polymer, where the thermoplastic polymer and the dispersing medium are substantially immiscible at the heating temperature; applying a shear force sufficient to disperse the thermoplastic polymer as liquefied droplets in the presence of the nanoparticles and the carboxylic acid sintering aid at the heating temperature; cooling the dispersing medium to a temperature at which solidified thermoplastic microparticles are formed, where the thermoplastic microparticles comprise the thermoplastic polymer, at least a portion of the nanoparticles disposed on the outer surfaces of the thermoplastic microparticles, and at least a portion of the carboxylic acid sintering aid; and separating the thermoplastic microparticles from the dispersing medium. At least a majority of the nanoparticles associated with the thermoplastic microparticles are disposed on the outer surfaces of the thermoplastic microparticles.
[0078] FIG. 1 is a flowchart of a non-limiting exemplary method 100 for producing thermoplastic particulates according to the present disclosure. As shown, a thermoplastic polymer 105, a carrier fluid 104, nanoparticles 106, and a carboxylic acid sintering aid 107 are combined 108 to produce a mixture 110. The thermoplastic polymer 105, the carrier fluid 104, the nanoparticles 106, and the carboxylic acid sintering aid 107 may be combined 108 in any order, including mixing and / or heating. Optionally, the carboxylic acid sintering aid 107 may be pre-coated onto the nanoparticles 106, such as by roll milling. In a specific example, the carrier fluid 104 may be heated above the melting or softening temperature of the thermoplastic polymer 105 before being combined with the other components. Alternatively, all components may be mixed together in the carrier fluid 104 and then heated above the melting or softening temperature. The carboxylic acid sintering aid 107 may also melt at the heating temperature used to promote melting or softening of the thermoplastic polymer 105. The nanoparticles 106 may remain solid at the heating temperature such that they may be disposed on the outer surface of the resulting thermoplastic particulate.
[0079] Heating above the melting or softening temperature of the thermoplastic polymer 105 can be any temperature below the decomposition or boiling point of any of the components in the molten emulsion. Non-limiting examples include heating at temperatures between about 1°C and about 50°C above the melting or softening temperature of the thermoplastic polymer 105, or between about 1°C and about 25°C, or between about 5°C and about 30°C, or between about 20°C and about 50°C. The carboxylic acid sintering aid 107 may have a melting point equal to or greater than the melting point of the thermoplastic polymer 105. In this disclosure, melting points may be determined according to ASTM E794-06(2018) with a ramp and cooling rate of 10°C / min. The softening temperature or softening point of the thermoplastic polymer may be determined according to ASTM D6090-17 unless otherwise specified. Softening temperatures may be measured using a cup and ball apparatus available from Mettler-Toledo using a 0.50 gram sample at a heating rate of 1°C / min. The melting point or softening temperature of the thermoplastic polymer 105 in the present disclosure may range from about 50° C. to about 400° C. In more specific examples, the heating temperature may range from about 100° C. to about 300° C. or from about 200° C. to about 250° C., provided that the thermoplastic polymer 105 melts or softens within this range.
[0080] The mixture 110 is then processed 112 by applying sufficient shear force to create liquefied droplets of the thermoplastic polymer 105 at a temperature above the melting point or softening temperature of the thermoplastic polymer 105 to form a molten emulsion 114. Without being limited by theory, it is believed that, all other factors being equal, increasing the shear force may decrease the size of the liquefied droplets in the dispersion medium 104. It should be understood that, in some respects, there may be a diminishing benefit in terms of increasing shear force and decreasing droplet size and / or breaking up the droplets into their contents at higher shear rates. Examples of suitable mixing equipment for producing the molten emulsion 114 include, but are not limited to, extruders (e.g., continuous extruders, batch extruders, etc.), stirred reactors, blenders, reactors with in-line homogenizer systems, etc., and equipment derived therefrom.
[0081] In non-limiting examples, the liquefied droplets can have a size of about 1 μm to about 1,000 μm, or about 1 μm to about 500 μm, or about 1 μm to about 200 μm, or about 1 μm to about 150 μm, or about 1 μm to about 130 μm, or about 1 μm to about 100 μm, or about 10 μm to about 150 μm, or about 10 μm to about 100 μm, or about 20 μm to about 80 μm, or about 20 μm to about 50 μm, or about 50 μm to about 90 μm. The resulting thermoplastic microparticles formed after solidification can be in a similar size range. That is, the thermoplastic microparticles in the microparticle compositions and methods of the present disclosure may have a particle size of about 1 μm to about 1,000 μm, or about 1 μm to about 500 μm, or about 1 μm to about 200 μm, or about 1 μm to about 150 μm, or about 1 μm to about 130 μm, or about 1 μm to about 100 μm, or about 1 μm to about 200 μm, or about 10 μm to about 100 μm, or about 20 μm to about 80 μm, or about 20 μm to about 50 μm, or about 50 μm to about 90 μm. Particle size measurements can be performed by analysis of optical images or by using the built-in software of a Malvern Mastersizer 3000 Aero S instrument, which uses light scattering techniques for particle size measurement.
[0082] For light scattering techniques, glass bead control samples with diameters in the range of 15 μm to 150 μm under the trade name Quality Audit Standards QAS4002™ obtained from Malvern Analytical Ltd. can be used. Samples can be analyzed as dry powders dispersed in air using the dry powder dispersion module of a Mastersizer 3000 Aero S. Particle size can be derived using the instrument software from a plot of volume density as a function of size.
[0083] The molten emulsion 114 is then cooled 116 to solidify the liquefied droplets into solidified thermoplastic particulates. The cooling rate can range from about 100°C / sec to about 10°C / hr, or from about 10°C / sec to about 10°C / hr, including any cooling rate therebetween. The shear force can be discontinued during cooling, or can be maintained at the same or different rates during cooling. The cooled mixture 118 can then be processed 120 to separate the thermoplastic particulates 122 from other components 124 (e.g., the carrier fluid 104, excess nanoparticles 106, excess carboxylic acid sintering aid 107, etc.). At this stage, washing, filtering, and / or the like can be performed to further purify the thermoplastic particulates 122, which comprise the thermoplastic polymer 105, at least a portion of the nanoparticles 106 coating the outer surfaces of the thermoplastic particulates 122, and at least a portion of the carboxylic acid sintering aid 107 mixed with the thermoplastic matrix comprising the thermoplastic particulates 122. Depending on factors such as, but not limited to, the temperature (including the cooling rate), the type of thermoplastic polymer 105, and the type and particle size of the nanoparticles 106, the nanoparticles 106 may become at least partially embedded within the outer surface of the thermoplastic particulate 122 in the process of being disposed thereon. Even in the absence of embedding, the nanoparticles 106 may remain tightly associated with the thermoplastic particulate 122, facilitating its further use.
[0084] In the above, the thermoplastic polymer 105 and the dispersion medium 104 are selected so that these components are immiscible or substantially immiscible (<1 wt. % solubility) at various processing temperatures (e.g., from room temperature to temperatures at which liquefied droplets form and remain as two or more phases).
[0085] After separating the thermoplastic particulate 122 from the other components 124, further processing 126 of the thermoplastic particulate 122 may occur. In a non-limiting example, the further processing 126 may include, for example, sieving the thermoplastic particulate 122 and / or blending the thermoplastic particulate 122 with other substances to form a processed thermoplastic particulate 128. The processed thermoplastic particulate 128 may be formulated for use in a desired application, such as, in a non-limiting example, additive manufacturing.
[0086] Thermoplastic particles are approximately 0.3 g / cm 3 ~about 0.8g / cm 3 , or about 0.3 g / cm 3 ~about 0.6g / cm 3 , or about 0.4 g / cm 3 ~about 0.7g / cm 3 , or about 0.5 g / cm 3 ~about 0.6g / cm 3 , or about 0.5 g / cm 3 ~about 0.8g / cm 3 The bulk density may be
[0087] Sufficient shear force to form liquefied droplets can be applied by stirring the dispersion medium in certain embodiments of the present disclosure. In non-limiting examples, the stirring rate can range from about 50 rotations per minute (RPM) to about 1500 RPM, or from about 250 RPM to about 1000 RPM, or from about 225 RPM to about 500 RPM, or from about 1000 RPM to about 2000 RPM. The stirring rate while melting the thermoplastic polymer can be the same or different from the stirring rate used once the liquefied droplets are formed. The liquefied droplets can be stirred for a stirring time of about 30 seconds to about 18 hours or more, or from about 1 minute to about 180 minutes, or from about 1 minute to about 60 minutes, or from about 5 minutes to about 6 minutes, or from about 5 minutes to about 30 minutes, or from about 10 minutes to about 30 minutes, or from about 30 minutes to about 60 minutes.
[0088] The loading (concentration) of the thermoplastic polymer in the dispersion medium can vary over a wide range. In a non-limiting example, the loading of the thermoplastic polymer in the dispersion medium can range from about 1% to about 99% by weight, based on the weight of the dispersion medium. In more specific examples, the loading of the thermoplastic polymer can range from about 5% to about 75% by weight, or from about 10% to about 60% by weight, or from about 20% to about 50% by weight, or from about 20% to about 30% by weight, or from about 30% to about 40% by weight, or from about 40% to about 50% by weight, or from about 50% to about 60% by weight, based on the weight of the dispersion medium. The thermoplastic polymer may be present in an amount ranging from about 5% to about 60% by weight, or from about 5% to about 25% by weight, or from about 10% to about 30% by weight, or from about 20% to about 45% by weight, or from about 25% to about 50% by weight, or from about 40% to about 60% by weight, based on the combined weight of the thermoplastic polymer and the dispersion medium.
[0089] When forming thermoplastic microparticles in the presence of nanoparticles according to the present disclosure, at least a portion of the nanoparticles, such as silica nanoparticles or other oxide nanoparticles, may be disposed as a coating or partial coating on the outer surface of the thermoplastic microparticle. The coating may, in some cases, be substantially uniformly disposed on the outer surface. As used herein with respect to a coating, the term "substantially uniform" refers to a uniform coating thickness at the nanoparticle-covered surface locations, particularly across the entire outer surface. The coating coverage on the thermoplastic microparticle may range from about 5% to about 100%, or from about 5% to about 25%, or from about 20% to about 50%, or from about 40% to about 70%, or from about 50% to about 80%, or from about 60% to about 90%, or from about 70% to about 100% of the particle's surface area. The coverage may be determined by image analysis of SEM micrographs.
[0090] Suitable dispersion media for use in the present disclosure include those in which the thermoplastic polymer is substantially immiscible with the dispersion media, the dispersion media having a boiling point above the melting or softening temperature of the thermoplastic polymer, and the dispersion media having sufficient viscosity to form substantially spherical liquefied droplets when the thermoplastic polymer is melted therein. Suitable dispersion media may include, for example, silicone oil, fluorinated silicone oil, perfluorinated silicone oil, polyethylene glycol, paraffin, liquid petroleum jelly, bison oil, turtle oil, soybean oil, perhydrosqualene, sweet almond oil, calophyllum oil, palm oil, parima oil, grapeseed oil, sesame oil, maize oil, rapeseed oil, sunflower oil, cottonseed oil, apricot oil, castor oil, avocado oil, jojoba oil, olive oil, cereal germ oil, orchid oil esters, oleic acid esters, lauric acid esters, stearic acid esters, fatty acid esters, higher fatty acids, fatty alcohols, fatty acid-modified polysiloxanes, fatty alcohol-modified polysiloxanes, polyoxyalkylene-modified polysiloxanes, and the like, and any combination thereof.
[0091] A suitable dispersion medium has a density of about 0.6 g / cm 3 ~Approx. 1.5g / cm 3 and the thermoplastic polymer may have a density of about 0.7 g / cm 3 ~Approx. 1.7g / cm 3 and the thermoplastic polymer may have a density similar to, lower than, or higher than the density of the dispersion medium.
[0092] Particularly suitable silicone oils are polysiloxanes. Exemplary silicone oils suitable for use in the present disclosure include, for example, polydimethylsiloxane (PDMS), methylphenylpolysiloxane, alkyl-modified polydimethylsiloxane, alkyl-modified methylphenylpolysiloxane, amino-modified polydimethylsiloxane, amino-modified methylphenylpolysiloxane, fluorine-modified polydimethylsiloxane, fluorine-modified methylphenylpolysiloxane, polyether-modified polydimethylsiloxane, polyether-modified methylphenylpolysiloxane, and the like, and any combination thereof.
[0093] In a non-limiting example, the carrier fluid and thermoplastic polymer may be heated to a temperature of about 200°C or greater. A suitable heating temperature may be selected based on the melting or softening temperature of the thermoplastic polymer and the boiling point of the carrier fluid. The cooling rate after formation of the liquefied polymer droplets may be varied as desired. In some cases, cooling may occur after heating is discontinued, with heat dissipation to the surrounding environment occurring at a natural (uncontrolled) rate. In other cases, cooling at a controlled rate (e.g., gradually decreasing the heating temperature and / or using jacketed temperature control to increase or decrease the cooling rate) may be employed.
[0094] Suitable dispersion media, such as polysiloxanes, including PDMS, can have a viscosity of from about 1,000 cSt to about 150,000 cSt, or from about 1,000 cSt to about 60,000 cSt, or from about 40,000 cSt to about 100,000 cSt, or from about 75,000 cSt to about 150,000 cSt at 25° C. The viscosity of the dispersion media can be obtained from commercial sources or, if desired, can be measured by techniques known to those skilled in the art.
[0095] Separating the thermoplastic particulates from the dispersion medium can be accomplished by any of a variety of known separation techniques. The thermoplastic particulates can be separated from the dispersion medium using any of gravity settling and filtration, decantation, centrifugation, and the like. The thermoplastic particulates can then be washed with a solvent in which the dispersion medium is soluble and in which the thermoplastic particulates are insoluble during the separation process. Additionally, a solvent in which the dispersion medium is soluble and in which the thermoplastic particulates are insoluble can be mixed with the dispersion medium and thermoplastic particulates before first separating the elastomeric particles from the dispersion medium.
[0096] Suitable solvents for washing thermoplastic microparticles or mixing with a dispersion medium include, but are not limited to, aromatic hydrocarbons (e.g., toluene and / or xylene), aliphatic hydrocarbons (e.g., heptane, n-hexane, and / or n-octane), cyclic hydrocarbons (e.g., cyclopentane, cyclohexane, and / or cyclooctane), ethers (e.g., diethyl ether, tetrahydrofuran, diisopropyl ether, and / or dioxane), halogenated hydrocarbons (e.g., dichloroethane, trichloroethane, dichloromethane, chloroform, and / or carbon tetrachloride), alcohols (e.g., methanol, ethanol, isopropanol, and / or n-propanol), ketones (e.g., methyl ethyl ketone and / or acetone); esters (e.g., ethyl acetate, etc.), water, etc., and any combination thereof. After washing the thermoplastic microparticles, heating, vacuum drying, air drying, or any combination thereof may be performed.
[0097] At least a majority of the thermoplastic microparticles obtained according to the present disclosure may be substantially spherical in shape. More typically, about 90% or more, or about 95% or more, or about 99% or more of the thermoplastic microparticles produced by melt-emulsification according to the present disclosure may be substantially spherical in shape. In other non-limiting examples, the thermoplastic microparticles of the present disclosure may have a sphericity (circularity) of about 0.9 or greater, including about 0.90 to about 1.0, or about 0.93 to about 0.99, or about 0.95 to about 0.99, or about 0.97 to about 0.99, or about 0.98 to 1.0. Sphericity (circularity) may be measured using a Sysmex FPIA-2100 Flow Particle Image Analyzer. To determine circularity, an optical microscope image of the microparticle is taken. The perimeter (P) and area (A) of the microparticle in the plane of the microscope image are calculated (e.g., using a SYSMEX FPIA 3000 Particle Shape and Size Analyzer, available from Malvern Instruments). The circularity of the particles is C EA / P, wherein C EA is the circumference of a circle with an area equivalent to the area of the actual particle (A).
[0098] The thermoplastic particulates of the present disclosure may have an angle of repose of about 25° to about 45°, or about 25° to about 35°, or about 30° to about 40°, or about 35° to about 45°. Angle of repose measurements may be determined using a Hosokawa Micron Powder Characteristics Tester PT-R using ASTM D6393-14 "Standard Test Method for Characterization of Bulk Solids by Carr Index."
[0099] Thermoplastic particulates separated from the dispersing medium according to the above disclosure may be further processed to produce thermoplastic particulates suitable for the intended application. In one example, the thermoplastic particulates may be passed through a sieve or similar structure having an effective screening size larger than the average particle size of the thermoplastic particulates. For example, an exemplary screening size for processing thermoplastic particulates suitable for use in three-dimensional printing may have an effective screening size of about 150 μm. With reference to sieving, hole / screen sizes are set forth in the USA Standard Sieve (ASTM E11-17). Other screening sizes, larger or smaller, may be more suitable for thermoplastic particulates for use in other applications. Sieving may remove larger particulates that may form during the melt-emulsification process and / or may remove agglomerated particulates that may have poor flow characteristics. Generally, sieves having an effective screening size ranging from about 10 μm to about 250 μm may be used.
[0100] In addition, thermoplastic microparticles, including sieved thermoplastic microparticles, can be mixed with one or more additional components, such as flow aids, fillers, or other substances intended to adjust the properties of the thermoplastic microparticles for the intended application. The mixing of the additional components with the thermoplastic microparticles can be carried out by dry blending techniques. Suitable examples of flow aids (e.g., carbon black, graphite, silica, etc.) and similar substances are well known to those skilled in the art. Such flow aids differ from the nanoparticles involved in melt emulsification because the flow aids do not adhere firmly to the surface of the thermoplastic microparticles when dry blending is carried out.
[0101] In certain applications, the compositions disclosed herein may be used in additive manufacturing processes, particularly selective laser sintering or other powder bed fusion processes, to promote particulate consolidation. The additive manufacturing method of the present disclosure may include providing a particulate composition of the present disclosure (the particulate composition includes a particulate composition including a plurality of thermoplastic particulates comprising a thermoplastic polymer, a particulate composition including nanoparticles disposed on the outer surfaces of the thermoplastic particulates, and a carboxylic acid-based sintering aid mixed with the thermoplastic matrix of the thermoplastic particulates), depositing the particulate composition layers layer by layer onto a powder bed, and heating a portion of the powder bed to consolidate a portion of the thermoplastic particulates into a consolidated part having a specific shape. The carboxylic acid-based sintering aid and the nanoparticles may remain associated with the consolidated part.
[0102] In certain process configurations, consolidation of the thermoplastic particulate may be performed using selective laser sintering. Suitable conditions for performing selective laser sintering or other powder bed particulate consolidation processes to form consolidated parts are not considered to be particularly limiting. Lasers suitable for performing selective laser sintering may include both continuous wave lasers and pulsed wavelength lasers, and can provide the consolidated part with the energy necessary to promote consolidation of the thermoplastic particulate. CO2 lasers are commonly used to promote consolidation of thermoplastic particulate during additive manufacturing due to the high absorption coefficient of polymers at the CO2 laser emission wavelength. The operating conditions of a CO2 laser or similar laser selected to promote particulate consolidation can be selected to achieve the desired degree of particulate consolidation. Standard laser settings (e.g., power, scan speed, bed temperature, etc.) for promoting particulate consolidation may be selected based on the knowledge of those skilled in the art. The selection of specific conditions for carrying out selective laser sintering or similar particulate consolidation techniques can be influenced by factors such as, but not limited to, the type of thermoplastic polymer used, the size and composition of the thermoplastic particulate, the type of printed article being produced, the type and amount of carboxylic acid-based sintering aid, and the intended use conditions of the printed article. The selection of sintering conditions can affect, by way of non-limiting example, the porosity obtained after particulate consolidation. When using carboxylic acid-based sintering aids as disclosed herein, consolidated parts can include a thermoplastic matrix with a porosity of about 10% or less, or about 5% or less, or about 2% or less, or about 1% or less.
[0103] Examples of printed articles that can be formed using the particulate compositions disclosed herein include, but are not limited to, containers (e.g., for food, beverages, cosmetics, personal care compositions, medical, etc.), shoe soles, toys, furniture parts, decorative household items, plastic gears, screws, nuts, bolts, cable ties, medical articles, prosthetics, orthopedic implants, generating artifacts to aid learning in education, 3D anatomical models to aid surgery, robotics, biomedical devices (orthotics), home appliances, dental, automotive and aircraft / aerospace parts, electronics, sporting goods, etc. Many of these printed articles can benefit from the incorporation of one or more conductive traces thereon, as discussed below.
[0104] Embodiments disclosed herein include the following.
[0105] A. Composition Comprising Powder Particulates. The composition comprises a plurality of thermoplastic particulates, the thermoplastic particulates comprising a carboxylic acid-based sintering aid mixed with a thermoplastic polymer, and a plurality of nanoparticles disposed on an exterior surface of the thermoplastic particulates.
[0106] B. Method for forming a printed object by particulate consolidation. The method includes providing a particulate composition of embodiment A, depositing the particulate composition layer by layer onto a powder bed, and heating a portion of the powder bed to consolidate a portion of the thermoplastic particulate into a consolidated part having a particular shape.
[0107] C. Consolidated Part The consolidated part includes a thermoplastic matrix formed by consolidation of thermoplastic particulates, nanoparticles and a carboxylic acid sintering aid mixed with the thermoplastic matrix.
[0108] D. A method for forming powder particulates, the method including combining a thermoplastic polymer, nanoparticles, and a carboxylic acid sintering aid with a dispersing fluid at a temperature above the melting point or softening temperature of the thermoplastic polymer, wherein the thermoplastic polymer and the dispersing fluid are substantially immiscible at the heated temperature; applying a shear force sufficient to disperse the thermoplastic polymer as liquefied droplets in the presence of the nanoparticles and the carboxylic acid sintering aid in the dispersing fluid at the heated temperature; cooling the dispersing fluid to a temperature at which solidified thermoplastic particulates are formed, wherein the thermoplastic particulates comprise the thermoplastic polymer, at least a portion of the nanoparticles, and at least a portion of the carboxylic acid sintering aid, at least a majority of the nanoparticles being disposed on an outer surface of the thermoplastic particulates; and separating the thermoplastic particulates from the dispersing fluid.
[0109] Each of embodiments A, B, C, and D may have one or more of the following additional elements in any combination.
[0110] Element 1: The plurality of nanoparticles comprises oxide nanoparticles, carbon black, or any combination thereof.
[0111] Element 2: The oxide nanoparticles include silica nanoparticles.
[0112] Element 3: The carboxylic acid-based sintering aid contains a metal carboxylate.
[0113] Element 4: The metal carboxylate has a melting point of about 90°C to about 300°C or about 60°C to about 300°C.
[0114] Element 5: The metal carboxylate comprises at least one salt selected from the group consisting of a metal monocarboxylate, a metal dicarboxylate, and any combination thereof.
[0115] Element 6: The metal carboxylate comprises at least one metal monocarboxylate comprising a monovalent metal cation, a divalent metal cation, or a trivalent metal cation.
[0116] Element 7: The metal carboxylate comprises at least one metal monocarboxylate having about 6 or more carbon atoms.
[0117] Element 8: The metal carboxylate comprises at least one metal monocarboxylate having about 10 or more carbon atoms.
[0118] Element 9: The metal carboxylate comprises at least one metal monocarboxylic acid having about 16 or more carbon atoms.
[0119] Element 10: The carboxylic acid-based sintering aid includes a stearate.
[0120] Element 11: Thermoplastic particles having a diameter of about 1 μm to about 1,000 μm. 50 It has.
[0121] Element 12: The thermoplastic particulates include about 0.05% to about 2% by weight of a carboxylic acid sintering aid, measured relative to the thermoplastic polymer.
[0122] Element 13: The thermoplastic particulates comprise from about 0.05% to about 5% by weight of nanoparticles, measured relative to the thermoplastic polymer.
[0123] Element 14: Heating is achieved by selective laser sintering.
[0124] Element 15: The carboxylic acid sintering aid and nanoparticles remain associated with the consolidated part.
[0125] Element 16: The metal carboxylate has a melting point higher than the heating temperature.
[0126] Element 17: The dispersion medium includes silicone oil.
[0127] Element 18: A carboxylic acid-based sintering aid is pre-coated onto the nanoparticles before being combined with the dispersing fluid.
[0128] By way of non-limiting example, exemplary combinations applicable to A and B include 1 or 2 and 3; 1 or 2 and 4; 1 or 2 and 5; 1 or 2 and 6; 1 or 2 and 7, 8, 9 or 10; 1 or 2 and 11; 1 or 2 and 12; 1 or 2 and 13; 3 and 4; 3 and 5; 3 and 6; 3 and 7, 8, 9 or 10; 3 and 11; 3 and 12; 3 and 13; 4 and 5; 4 and and 6; 4 and 7, 8, 9 or 10; 4 and 11; 4 and 12; 4 and 13; 5 and 7, 8, 9 or 10; 5 and 11; 5 and 12; 5 and 13; 6 and 7, 8, 9 or 10; 6 and 11; 6 and 12; 6 and 13; 7, 8, 9 or 10 and 11; 7, 8, 9 or 10 and 12; 7, 8, 9 or 10 and 13; 11 and 12; 11 and 13; and 12 and 13. With respect to B-D, any of the foregoing may be further combined with one or more of 14, 15, 16, 17 or 18.
[0129] To facilitate a better understanding of the present disclosure, the following examples of preferred or representative embodiments are given. The following examples should not be read to limit or define the scope of the present invention. [Example]
[0130] In the following examples, powder streams of thermoplastic particulates were characterized through sieving and angle of repose. Sieving was performed using a 150 μm USA standard sieve (ASTM E11) with no specific conditions or force duration. Angle of repose measurements were performed using a Hosokawa Micron Powder Characteristics Tester PT-R using ASTM D6393-14, "Standard Test Method for Characterization of Bulk Solids by Carr Index."
[0131] Mean particle size measurements and particle size distributions were determined by light scattering using a Malvern Mastersizer 3000 Aero S particle size analyzer. For the light scattering technique, glass bead control samples with diameters ranging from 15 μm to 150 μm under the trade name Quality Audit Standards QAS4002™ obtained from Malvern Analytical Ltd. can be used. Samples can be analyzed as dry powders dispersed in air using the dry powder dispersion module of the Mastersizer 3000 Aero S. Particle size can be derived using the instrument software from a plot of volume density as a function of size.
[0132] In the examples below, weight percentages are measured relative to the polymer.
[0133] Example 1: Polyester microparticles formed in the presence of zinc stearate. To a 500 mL glass kettle reactor equipped with a heating mantle was added 280 g of poly(dimethylsiloxane) (PDMS) (PSF-30000, Clearco), 0.25 g (0.20 wt%) of AEROSIL RX50 silica nanoparticles (average particle size = 40 nm, Evonik), 1.2 g (1.0 wt%) of zinc stearate (ZnFP, NOF Corporation) with a particle size of 4-6 μm, and 120 g of HYTREL® HTR 6108 pellets (a polyester block copolymer containing polybutylene terephthalate and long-chain glycol monomer units, DuPont). The reactor was set to a 300 RPM agitation rate, and the temperature was increased to 240°C over 30 minutes with an argon purge. Once the temperature reached 240°C, the agitation rate was increased to 500 RPM. After 60 minutes, heating and stirring were discontinued and the slurry was allowed to cool to room temperature. The slurry was then diluted with heptane, filtered, and the microparticles were then washed three times with heptane. After drying under vacuum overnight, the microparticles were then sieved through a 150 μm filter.
[0134] Example 2: Polyester microparticles formed in the presence of zinc stearate Example 2 was carried out similarly to Example 1, except that 0.5 wt% AEROSIL RX50 silica nanoparticles were used.
[0135] Example 3: Polyester microparticles formed in the presence of zinc stearate Example 3 was carried out similarly to Example 1, except that 0.5 wt% AEROSIL RX50 and 0.5 wt% zinc stearate were used.
[0136] Example 3A: Polyester microparticles formed in the presence of sodium decanoate Example 3A was carried out identically to Example 3, except that sodium decanoate was replaced with zinc stearate.
[0137] Example 3B: Polyester microparticles formed in the presence of stearic acid Example 3B was carried out identically to Example 3 except that stearic acid was replaced with zinc stearate.
[0138] Example 4: Polyurethane microparticles formed in the presence of zinc stearate. Example 4 was carried out similarly to Example 1, except that ELASTOLLAN 1190A10 (a polyether polyurethane elastomer having a hardness of 90 Shore A) was used instead of HYTREL® HTR 6108. In addition, 0.5 wt. % AEROSIL RX50 and 0.5 wt. % zinc stearate were used.
[0139] Example 4A: Polyurethane microparticles formed in the presence of zinc stearate prepared on silica nanoparticles. Example 4A was carried out similarly to Example 4, except that the silica nanoparticles and zinc stearate were mixed and roll-milled for 3 hours before adding PDMS to effect melt emulsification.
[0140] Example 5: Polyurethane microparticles formed in the presence of zinc stearate Example 5 was carried out similarly to Example 4, except that 1.0 wt% AEROSIL RX50 and 0.2 wt% zinc stearate were used.
[0141] Example 6: Polyurethane microparticles formed in the presence of zinc stearate Example 6 was carried out similarly to Example 4, except that 1.0 wt% AEROSIL RX50 and 0.5 wt% zinc stearate were used.
[0142] Example 7: Polyurethane microparticles formed in the presence of zinc stearate Example 6 was carried out similarly to Example 4, except that 0.5 wt% AEROSIL RX50 and 1.0 wt% zinc stearate were used.
[0143] Example 8: Polyurethane microparticles formed in the presence of zinc stearate Example 6 was carried out similarly to Example 4, except that 0.5 wt% AEROSIL RX50 and 0.1 wt% zinc stearate were used.
[0144] Comparative Example 1: Polyester microparticles formed in the absence of zinc stearate. To a 500 mL glass kettle reactor equipped with a heating mantle was added 140 g of PDMS (PSF-10000), 0.6 g (1.0 wt%) of AEROSIL RX50 silica nanoparticles, and 60 g of HYTREL® HTR 6108 pellets. The reactor was set to a stirring speed of 200 RPM, and the temperature was increased to 200°C over 30 minutes with an argon purge. Once the temperature reached 200°C, the stirring speed was increased to 1000 RPM. After 60 minutes, heating and stirring were discontinued, and the slurry was allowed to cool to room temperature. The slurry was then diluted with heptane, filtered, and the microparticles were washed three times with heptane. After drying overnight under vacuum, the microparticles were then sieved through a 150 μm filter.
[0145] Comparative Example 2: Polyurethane microparticles formed in the absence of zinc stearate. A 2-L Buchi reactor was charged with 50 g of a PDMS / AEROSIL RX50 slurry containing 871 g of PDMS (PSF-10000), 2.9 g (0.5 wt%) of AEROSIL RX50, and 580 g of ELASTOLLAN 1190A10 polyurethane. The reactor was purged with nitrogen and stirred at 200 RPM. The jacket temperature was increased to 240°C over 60 minutes. Once the reactor temperature reached 200°C, the stirring speed was increased to 500 RPM and the nitrogen flow was turned off. The slurry was stirred at 240°C for 30 minutes before being vented hot. After cooling, the slurry was then washed twice with hexane, and the microparticles were isolated by vacuum filtration. After drying under vacuum overnight, the microparticles were then sieved through a 150 μm filter.
[0146] Tables 1 and 2 below summarize the specific formation conditions and properties of the thermoplastic particulates formed as described above. [Table 1] [Table 2] As shown in Tables 1 and 2, the inclusion of zinc stearate at various concentrations did not significantly alter the average particle size or angle of repose of thermoplastic microparticles produced during the melt-emulsification process. Although the diameter increased in the presence of zinc stearate, the span value remained within acceptable levels for the use of thermoplastic microparticles in three-dimensional printing. Pre-coating zinc stearate onto silica nanoparticles narrowed the span and reduced the angle of repose compared to the values obtained when these components were added separately during the melt-emulsification of polyurethane microparticles. Furthermore, in the presence of sodium decanoate, spherical polyester microparticles were obtained with a particle size slightly larger than that of polyester microparticles prepared under identical conditions in the presence of zinc stearate. In contrast, stearic acid produced spherical polyester microparticles with properties more similar to those produced in the presence of an equivalent amount of zinc stearate.
[0147] Microparticle Consolidation—Polyurethane Microparticles. The inclusion of zinc stearate during melt emulsification significantly affected the ease of sintering. Figures 2A and 2B show optical images of polyurethane microparticles from Comparative Example 2 after laser sintering at 30% and 45% laser power, a scan rate of 40,000, and a temperature of 108°C, respectively. Figures 3A and 3B show optical images of polyurethane microparticles from Example 4 after laser sintering under the same conditions as the Comparative Example. As is evident from the comparison of the optical images, microparticle consolidation was significantly more complete in the presence of zinc stearate sintering aid than in its absence. Even with a loading of 0.1 to 0.2 wt.% zinc stearate sintering aid, some blocking was observed during consolidation of the polyurethane samples. In the presence of silica nanoparticles and zinc stearate, Example 4 began sintering at approximately 35% laser power, while Comparative Example 2 began sintering at approximately 25% laser power. Pre-coating zinc stearate onto the silica nanoparticles of Example 4A reduced the laser power at which sintering began to occur to about 30%.
[0148] Figure 4 is a plot showing the softening temperature of thermoplastic polyurethane microparticles containing various loadings of zinc stearate sintering aid. As shown, thermoplastic polyurethane microparticles containing only silica nanoparticles had significantly higher sintering temperatures. As shown, increasing the amount of zinc stearate decreases the softening temperature.
[0149] Microparticle Consolidation—Polyester Microparticles. As observed with polyurethane microparticles, the inclusion of zinc stearate during melt emulsification also significantly affected the ease of sintering polyester microparticles. Figures 5A and 5B show optical images of the polyester microparticles of Comparative Example 1 after laser sintering at 30% and 45% laser power, respectively, at a scan speed of 40,000 and a temperature of 115°C. Figures 6A and 6B show optical images of the polyester microparticles of Example 1 after laser sintering, and Figures 7A and 7B show optical images of the polyester microparticles of Example 2 after laser sintering under the same conditions as the comparative examples. As shown in the figures, Figures 5A and 5B show that there was still a significant particle structure present after sintering the polyester microparticles of Comparative Example 1, which did not contain the zinc stearate sintering aid. In contrast, the sintered sample containing zinc stearate showed significantly less particle structure, indicating more complete fusion. In Figures 6A, 6B, 7A, and 7B, the polyester microparticles appeared to be completely melted due to the tendency of the zinc stearate sintering aid to lower the melting point. Completed melting may be used to impart a glossy finish during printing, if desired, but may lead to distortion of the print. In contrast, the polyester microparticles of Example 3 showed increased retention of microparticle structure after sintering at 25% and 35% laser power, a scan speed of 40,000, and 115°C, as shown in Figures 8A and 8B, respectively. While retention of microparticle structure was evident, it was not as pronounced as observed in Comparative Example 1. Above 35% laser power, melting of the polyester microparticles of Example 3B was more extensive.
[0150] The microparticles of Example 3A (containing sodium decanoate instead of zinc stearate) experienced sintering at 25% laser power, but the sintering was not as complete as that occurring in the presence of zinc stearate (Example 3). The incomplete sintering of the microparticles from Example 3A may be due to their relatively large particle size. Furthermore, the microparticles of Example 3A sintered at lower laser powers than smaller microparticles that did not contain any metal carboxylate (Comparative Example 1).
[0151] The fine particles of Example 3B (containing stearic acid instead of zinc stearate) were sintered at 25 to 35% laser output, similar to the polyester fine particles of Example 3.
[0152] 9A-9C show hot stage microscope images of the polyester particulates of Comparative Example 1 at various temperatures. As shown, sintering began for this sample at about 160°C, with the onset of flow occurring at about 180°C. Complete flow was observed at about 185°C. 10A-10C show hot stage microscope images of the polyester particulates of Example 2 at various temperatures. As shown, sintering began for this sample at about 165°C, with the onset of flow occurring at about 172°C. Complete flow was observed at about 175°C. Therefore, the zinc stearate sintering aid reduced the melting point of this sample by about 10°C, indicating that consolidated parts may be formed at lower bed temperatures and / or lower laser power in the presence of the zinc stearate sintering aid.
[0153] In the consolidated samples made from the polyester microparticles of Comparative Example 1, the sintered layer was too weak to operate at less than 30% laser power in the absence of zinc stearate sintering aid. Moderate blocking occurred in polyester samples containing 1.0 wt% zinc stearate sintering aid, but blocking was significantly reduced or absent at lower zinc stearate loadings. Table 3 shows a comparison of sintered samples made from the polyester microparticles of Comparative Example 1 to those made from the polyester microparticles of Examples 2, 3A, and 3B at various laser powers. Selective laser sintering (SLS) was performed using a Snow White SLS printer system (Sharebot). Each type of polyester microparticle was deposited in a 30 mm x 30 mm square using the SLS printer system and then sintered under the various laser power conditions specified in Table 3. The porosity after sintering was calculated using digital microscope software. [Table 3] 1Multiplying the reported scan speed by 0.04 gives the scan speed in mm / sec. As shown, sintering was achieved at lower laser power in the presence of zinc stearate sintering aid, resulting in lower void formation.
[0154] All documents described herein are incorporated by reference for purposes of all jurisdictions where such practice is permitted, including any priority documents and / or testing procedures to the extent not inconsistent with this text. While forms of the disclosure have been illustrated and described, as is apparent from the foregoing general description and specific embodiments, various modifications can be made without departing from the spirit and scope of the disclosure. Accordingly, the disclosure is not intended to be limited thereby. For example, the compositions described herein may not include any component or composition not expressly listed or disclosed herein. Any method may lack any step not listed or disclosed herein. Similarly, the term "comprising" is considered synonymous with the term "including." Whenever a method, composition, element, or group of elements is preceded by the transitional phrase "comprising," it is understood that the inventors also contemplate the same composition or group of elements with the transitional phrase "consisting essentially of," "consisting of," "selected from the group consisting of," or "being" preceding the composition, element, or list of elements, and vice versa.
[0155] Unless otherwise indicated, all numbers expressing quantities of ingredients, properties such as molecular weight, reaction conditions, and the like used in this specification and the related claims are to be understood as being modified in all instances by the term "about." Accordingly, unless indicated to the contrary, the numerical parameters set forth in the following specification and appended claims are approximations that may vary depending upon the desired properties sought to be obtained by embodiments of the present invention. At the very least, and without attempting to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should be construed in light of the number of reported significant digits and by applying ordinary rounding techniques.
[0156] Whenever a numerical range with a lower and upper limit is disclosed, any number within that range and any included range is specifically disclosed. In particular, all ranges of values disclosed herein (in the form "from about a to about b," or, equivalently, "approximately a to b," or, equivalently, "from approximately a to b") should be understood to describe all numbers and ranges encompassed within that broad range of values. Furthermore, terms in the claims have their plain and ordinary meaning unless expressly and unambiguously defined otherwise by the patentee. Additionally, when used in the claims, the indefinite article "a" or "an" is defined herein to mean one or more of the element it introduces.
[0157] One or more exemplary embodiments are presented herein. For clarity, not all features of a physical implementation are described or depicted in this application. It is understood that in developing a physical embodiment of the present disclosure, numerous implementation-specific decisions must be made to achieve the developer's goals, which may vary from implementation to implementation and from time to time, such as compliance with system-related, business-related, government-related, and other constraints. While the developer's efforts may be time-consuming, such efforts would nevertheless be routine for one of ordinary skill in the art having the benefit of this disclosure.
[0158] Thus, the present disclosure is well adapted to achieve the ends and advantages mentioned, as well as those inherent therein. The specific embodiments described above are illustrative only, as the disclosure may be modified and practiced in different but equivalent manners apparent to those skilled in the art having the benefit of the teachings herein. Furthermore, no limitations are intended to the details of construction or design shown herein, other than as described in the following claims. It is therefore evident that the specific exemplary embodiments disclosed above may be changed, combined, or modified, and all such variations are considered within the scope and spirit of the present disclosure. The embodiments illustratively disclosed herein may suitably be practiced in the absence of any element not specifically disclosed herein and / or any optional element disclosed herein. Another aspect of the present invention may be as follows. [1] A microparticle composition, 1. A particulate composition comprising a plurality of thermoplastic particulates, the thermoplastic particulates comprising a carboxylic acid based sintering aid mixed with a thermoplastic polymer and a plurality of nanoparticles disposed on an outer surface of the thermoplastic particulates. [2] The microparticle composition according to [1], wherein the plurality of nanoparticles comprises oxide nanoparticles, carbon black, or any combination thereof. [3] The fine particle composition according to [2], wherein the oxide nanoparticles include silica nanoparticles. [4] The fine particle composition according to [1], wherein the carboxylic acid-based sintering aid contains a metal carboxylate. [5] The fine particle composition according to [4], wherein the metal carboxylate has a melting point of about 60°C to about 300°C. [6] The fine particle composition according to [4], wherein the metal carboxylate comprises at least one salt selected from the group consisting of metal monocarboxylates, metal dicarboxylates, and any combination thereof. [7] The fine particle composition according to [4], wherein the metal carboxylate comprises at least one metal monocarboxylate containing a monovalent metal cation, a divalent metal cation, or a trivalent metal cation. [8] The microparticle composition according to [1], wherein the thermoplastic microparticles contain about 0.05% by weight to about 2% by weight of a carboxylic acid-based sintering aid when measured relative to the thermoplastic polymer. [9] A method comprising: Providing the microparticle composition according to [1] above; depositing the particulate composition layer by layer onto a powder bed; and heating a portion of the powder bed to consolidate a portion of the thermoplastic particulates into a consolidated part having a particular shape.
[10] The method of [9], wherein the carboxylic acid sintering aid and the nanoparticles remain associated with the consolidated part.
[11] A part consolidated by the method according to [9], a thermoplastic matrix formed by the consolidation of thermoplastic particulates; a thermoplastic matrix having nanoparticles and a carboxylic acid-based sintering aid mixed therewith;
[12] A method comprising: combining a thermoplastic polymer, nanoparticles, and a carboxylic acid sintering aid with a dispersing medium heated to a temperature above the melting point or softening temperature of the thermoplastic polymer; combining the thermoplastic polymer and the dispersion medium, wherein the thermoplastic polymer and the dispersion medium are substantially immiscible at the heating temperature; applying a shear force sufficient to disperse the thermoplastic polymer as liquefied droplets in the dispersion medium at the heating temperature while the nanoparticles and the carboxylic acid-based sintering aid are present; After the liquefied droplets are formed, cooling the dispersion medium to a temperature at which at least solidified thermoplastic particulates are formed, the thermoplastic particulates comprising the thermoplastic polymer, at least a portion of the nanoparticles, and at least a portion of the carboxylic acid sintering aid; cooling, wherein at least a majority of the nanoparticles are disposed on the outer surface of the thermoplastic particulates; and separating the thermoplastic particulates from the dispersion medium.
[13] The method of
[12] , wherein the plurality of nanoparticles comprises oxide nanoparticles, carbon black, or any combination thereof.
[14] The method according to
[13] , wherein the oxide nanoparticles include silica nanoparticles.
[15] The method according to
[13] , wherein the carboxylic acid-based sintering aid comprises a metal carboxylate.
[16] The method according to
[15] , wherein the metal carboxylate has a melting point of about 60°C to about 300°C.
[17] The method according to
[15] , wherein the metal carboxylate comprises at least one salt selected from the group consisting of metal monocarboxylates, metal dicarboxylates, and any combination thereof.
[18] The method according to
[15] , wherein the metal carboxylate comprises at least one metal monocarboxylate containing a monovalent metal cation, a divalent metal cation, or a trivalent metal cation.
[19] The method according to
[12] , wherein the thermoplastic particulates contain about 0.05% by weight to about 2% by weight of a carboxylic acid-based sintering aid, as measured relative to the thermoplastic polymer.
[20] The method according to
[12] , wherein the carboxylic acid-based sintering aid is pre-coated on the nanoparticles before being combined with the dispersing medium.
Claims
1. 1. A particulate composition comprising: a plurality of thermoplastic particulates comprising a thermoplastic polymer, a carboxylic acid sintering aid admixed with the thermoplastic polymer at a loading of about 0.05% to about 2% by weight as measured relative to the thermoplastic polymer, and a plurality of nanoparticles at a loading of about 0.2% to about 2% by weight as measured relative to the thermoplastic polymer; The carboxylic acid-based sintering aid comprises a free carboxylic acid or a metal carboxylate; and A particulate composition comprising a plurality of thermoplastic particulates, wherein the carboxylic acid sintering aid is not pre-coated on the nanoparticles but is at least partially disposed inside the thermoplastic particulates, and at least a majority of the nanoparticles are disposed on the outer surface of the thermoplastic particulates.
2. 10. The particulate composition of claim 1, wherein the plurality of nanoparticles comprises oxide nanoparticles, carbon black, or any combination thereof.
3. The particulate composition of claim 2 , wherein the oxide nanoparticles comprise silica nanoparticles.
4. 2. The particulate composition of claim 1, wherein the carboxylic acid sintering aid comprises a metal carboxylate, and the metal carboxylate has a melting point of about 60°C to about 300°C.
5. 2. The particulate composition of claim 1, wherein the carboxylic acid-based sintering aid comprises the metal carboxylate, and the metal carboxylate comprises at least one salt selected from the group consisting of a metal monocarboxylate, a metal dicarboxylic acid, and any combination thereof.
6. 2. The particulate composition of claim 1, wherein the carboxylic acid sintering aid comprises the metal carboxylate, and the metal carboxylate comprises at least one metal monocarboxylate comprising a monovalent metal cation, a divalent metal cation, or a trivalent metal cation.
7. 1. A method comprising: combining a thermoplastic polymer, nanoparticles, and a carboxylic acid sintering aid with a dispersing medium at a heating temperature above the melting point or softening temperature of the thermoplastic polymer; combining the thermoplastic polymer and the dispersion medium, wherein the thermoplastic polymer and the dispersion medium are substantially immiscible at the heating temperature; applying a shear force sufficient to disperse the thermoplastic polymer as liquefied droplets in the dispersion medium at the heating temperature while the nanoparticles and the carboxylic acid-based sintering aid are present in the dispersion medium; After the liquefied droplets are formed, cooling the dispersion medium to a temperature at which at least solidified thermoplastic particulates are formed, the thermoplastic particulates comprising the thermoplastic polymer, at least a portion of the nanoparticles, and at least a portion of the carboxylic acid sintering aid; the carboxylic acid sintering aid is present at a loading of about 0.05% to about 2% by weight as measured relative to the thermoplastic polymer, and the nanoparticles are present at a loading of about 0.2% to about 2% by weight as measured relative to the thermoplastic polymer; the carboxylic acid-based sintering aid comprises a free carboxylic acid or a metal carboxylate; and cooling, wherein the carboxylic acid sintering aid is not pre-coated on nanoparticles and at least a majority of the nanoparticles are disposed on the outer surface of the thermoplastic particulates; and separating the thermoplastic particulates from the dispersion medium.
8. The method of claim 7 , wherein the plurality of nanoparticles comprises oxide nanoparticles, carbon black, or any combination thereof.
9. The method of claim 8 , wherein the oxide nanoparticles comprise silica nanoparticles.
10. The method of claim 7, wherein the carboxylic acid sintering aid comprises a metal carboxylate, and the metal carboxylate has a melting point of about 60°C to about 300°C.
11. 8. The method of claim 7, wherein the carboxylic acid sintering aid comprises a metal carboxylate, and the metal carboxylate comprises at least one salt selected from the group consisting of a metal monocarboxylate, a metal dicarboxylic acid, and any combination thereof.
12. 8. The method of claim 7, wherein the carboxylic acid sintering aid comprises a metal carboxylate, and the metal carboxylate comprises at least one metal monocarboxylate comprising a monovalent metal cation, a divalent metal cation, or a trivalent metal cation.
13. 10. The particulate composition of claim 1, wherein the plurality of nanoparticles are present at a loading of about 0.25% to about 1% by weight as measured relative to the thermoplastic polymer.
14. 14. The particulate composition of claim 13, wherein the carboxylic acid sintering aid is present at a loading of about 0.2% to about 1% by weight as measured relative to the thermoplastic polymer.
15. 10. The particulate composition of claim 1, wherein the plurality of nanoparticles are present at a loading of about 0.25% to about 0.5% by weight as measured relative to the thermoplastic polymer.
16. 16. The particulate composition of claim 15, wherein the carboxylic acid sintering aid is present at a loading of about 0.2% to about 1% by weight as measured relative to the thermoplastic polymer.
17. 10. The particulate composition of claim 1, wherein the carboxylic acid sintering aid is present at a loading of about 0.2% to about 1% by weight as measured relative to the thermoplastic polymer.
Citation Information
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