Aluminum Trihydroxide Composition
Patent Information
- Application Number
- JP2024501678
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-07-12
- Filing Date
- 2022-07-11
- Publication Date
- 2025-07-01
AI Technical Summary
There is a need for aluminum trihydroxide (ATH) compositions that maintain beneficial heat transfer properties and viscosity properties, while also providing superior thermal conductivity when used in polymer composites.
The ATH compositions comprise a combination of ground aluminum trihydroxide particles with two different physical properties, including a first plurality of ground particles with a maximum dimension of 50 to 500 μm and a second plurality of ground particles with a maximum dimension of less than 50 μm, mixed in specific ratios to achieve uniform particle distribution and optimal thermal conductivity and viscosity.
The resulting ATH compositions exhibit improved thermal conductivity and viscosity properties, enhancing heat dissipation and flow properties in polymer matrices, making them effective flame retardants and thermal management fillers.
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Abstract
Description
[Technical field]
[0001] The present invention relates to an aluminum trihydroxide composition. The present invention also relates to a method of forming the aluminum trihydroxide composition. [Background technology]
[0002] Aluminum trihydroxide (ATH) is commonly used as a flame retardant in a wide range of materials, including, but not limited to, wire, cable, furniture, transportation, appliances, and building materials. Typically, ATH is used as a thermally conductive filler in polymer matrices (i.e., in composites containing polymers) formed from silicones, epoxies, polyesters, and / or polyols.
[0003] ATH is a white powder that has desirable heat dissipation properties, a preferred density (typically 2.42 g / cm 3 Plus or minus 0.2g / cm 3 ) and is non-conductive with respect to electrical current, making ATH a preferred flame retardant.
[0004] The ATH composition can include ATH having two or more different physical properties (e.g., two or more different particle sizes, two or more different particle size distributions, and / or two or more different morphologies). The combination of ATH particles having two or more different physical properties provides superior properties with respect to thermal conductivity and viscosity when the resulting ATH composition is used in a polymer matrix, i.e., when included in a polymer composite.
[0005] One known ATH composition is APYRAL™ 20X, manufactured by Nabaltec AG. APYRAL™ 20X is believed to be a combination of both ground and precipitated ATH particles. APYRAL™ 20X has beneficial viscosity and heat transfer properties when used in polymer composites.
[0006] There is a need for ATH compositions that have beneficial heat transfer properties and beneficial viscosity properties. Summary of the Invention
[0007] The present invention relates to an ATH composition that can be used to replace, in whole or in part, known ATH compositions.
[0008] The ATH compositions of the present invention preferably have the same or similar physical properties as known ATH compositions.
[0009] The present invention relates to an ATH composition comprising a combination of ground ATH particles having at least two different physical properties. The novel ATH composition preferably has beneficial thermal conductivity compared to known ATH compositions, while preferably maintaining the same or similar physical properties as known ATH compositions.
[0010] Representative features of the present invention are presented in the following clauses, which may be combined alone or in any combination with one or more features disclosed in the text and / or drawings of this specification.
[0011] In a first aspect of the present invention: a first plurality of pulverized aluminum trihydroxide particles, 50% to 85% by weight, having a maximum dimension of 50 to 500 μm; a second plurality of pulverized aluminum trihydroxide particles, 15% to 50% by weight, having a maximum dimension of less than 50 μm; and optionally Inevitable impurities and The present invention provides an aluminum trihydroxide composition comprising (or consisting of):
[0012] Preferably, the first plurality of ground aluminum trihydroxide particles have a maximum dimension of: 50 to 300 μm; or 75 to 250 μm; or 100 to 150 μm (plus or minus 50 μm).
[0013] More preferably, the second plurality of ground aluminum trihydroxide particles have a maximum dimension of: less than 40 μm; or less than 30 μm (plus or minus 5 μm).
[0014] Preferably, the first plurality of ground ATH particles comprises: D10 of 25-40 μm; or 25-35 μm; or 31-33 μm; or 32 μm; and / or 90-110 μm; or 100-104 μm; or D50 of 102 μm; and / or D97 of 200~300μm; or 200~220μm; or 210μm has.
[0015] Preferably, the second plurality of ground ATH particles comprises: D10 of 1.0-4.0 μm; or 1.0-2.0 μm; or 1.5 μm; and / or 6-12 μm; or D50 of 8 μm; and / or D97 of 25-40μm; or 30-34μm; or 32μm has.
[0016] More preferably, the aluminum trihydroxide composition comprises: D10 of 1-3 μm; or D10 of 2 μm; and / or 20-24 μm; or D50 of 21.86 μm; and / or 180~220μm; or D97 at 198μm has.
[0017] Preferably, the first plurality of pulverized aluminum trihydroxide particles is: 76 mm 3 / g or less; or 76mm 3 / g~50mm 3 / g; or 76mm 3 / g~65mm 3 / g total cumulative volume.
[0018] More preferably, the first plurality of ground aluminum trihydroxide particles comprises: 2 / g or less; or 2.95m 2 / g or less; or 3m 2 / g~1m 2 / g; or 2.95m 2 / g~2.8m 2 / g.
[0019] Suitably, the aluminium trihydroxide composition comprises: 60-85% by weight; or 65-80% by weight; or 70-80% by weight; or 55-65% by weight of the first plurality of ground aluminium trihydroxide particles.
[0020] Preferably, the aluminum trihydroxide composition comprises: 15-40% by weight; or 20-35% by weight; or 20-30% by weight; or 35-45% by weight of the second plurality of ground ATH particles.
[0021] Even more preferably: the first plurality of ground aluminum trihydroxide particles have a maximum dimension of 300 μm; and the second plurality of ground aluminum trihydroxide particles have a maximum dimension of 30 μm.
[0022] Suitably, the ratio of the first plurality of aluminum trihydroxide particles to the second plurality of aluminum trihydroxide particle compositions in the aluminum trihydroxide composition is (in weight %): 12.5 (first): 3.5 (second), for each, plus or minus 2.5; or 8 (first): 1.5 (second), for each, plus or minus 0.5; or 10 (first): 5 (second), for each, plus or minus 1; or 4 (first): 2.2 (second), for each, plus or minus 0.5.
[0023] Preferably, the ratio of the first plurality of ground aluminum trihydroxide particles to the second plurality of ground aluminum trihydroxide particle composition results in: 40% v / v or less voids (or pores) in the aluminum trihydroxide composition; or 34% v / v or less voids (or pores) in the aluminum trihydroxide composition.
[0024] More preferably, the aluminum trihydroxide composition has a density of 2.42 g / cm3 (plus or minus 0.2g / cm 3 )
[0025] Preferably, the aluminum trihydroxide composition has a uniform particle distribution for both the first plurality of ground ATH particles and the second plurality of ground ATH particles.
[0026] Preferably, the particles in the aluminum trihydroxide composition have a maximum size distribution of 0.1 to 305 μm.
[0027] According to a further aspect of the present invention, there is provided a process for making an aluminum trihydroxide composition comprising the steps of: providing between 50% and 85% by weight of a first plurality of pulverized aluminum trihydroxide particles having a maximum dimension between 50 and 500 μm; providing between 15% and 50% by weight of a second plurality of pulverized aluminum trihydroxide particles having a maximum dimension less than 50 μm; mixing a first plurality of ground aluminum trihydroxide particles and a second plurality of ground aluminum trihydroxide particles; The present invention provides a process including:
[0028] Preferably, in the aluminium trihydroxide composition the first plurality of ground aluminium trihydroxide particles and / or the second plurality of ground aluminium trihydroxide particles are as claimed in any one of claims 1-14.
[0029] More preferably, the mixing step is carried out: at 25° C. for 0.1 to 8 hours; or at 25° C. for 0.3 to 4 hours; or at 25° C. for 0.5 to 2 hours; or at 25° C. until a mixture having a uniform particle distribution is formed.
[0030] Suitably, the ratio of the first plurality of ground aluminum trihydroxide particles to the second plurality of ground aluminum trihydroxide particles in the mixture is (by weight %): 12.5 (first): 3.5 (second), for each, plus or minus 2.5; or 8 (first): 1.5 (second), for each, plus or minus 0.5; or 10 (first): 5 (second), for each, plus or minus 1; or 4 (first): 2.2 (second), for each, plus or minus 0.5.
[0031] In accordance with a further aspect of the present invention, the aluminum trihydroxide composition is for use as a flame retardant and / or as a thermal management filler.
[0032] In accordance with a further aspect of the present invention, there is provided a polymer composite comprising a polymer and the aluminum trihydroxide composition of the present invention.
[0033] Preferably, the polymer is a silicone, epoxy, polyester, polyethylene wax and / or a polymer formed of a polyol; optionally, the polymer is a thermoset or thermoplastic polymer.
[0034] More preferably, the polymer composite comprises (in weight percent): 50 to 90. An aluminum trihydroxide composition according to any one of claims 1 to 14; With 10 to 50 polymers; or 60 to 80. An aluminum trihydroxide composition according to any one of claims 1 to 14; 20 to 40 polymers include.
[0035] Suitably the polymer composite has a thermal conductivity of: 2-7 W / mK; 2-4 W / mK; or 2.5-3 W / mK; or 2.6-2.9 W / mK; or 2.8-2.9 W / mK. Preferably, the polymer composite has a viscosity of: 13 Pa·s or less; or 11 Pa·s or less; or 9 Pa·s or less. [Brief description of the drawings]
[0036] The embodiments of the present disclosure will be described in more detail hereinafter with reference to the accompanying figures, in which like numerals denote like elements throughout the several figures, and in which exemplary embodiments are shown. However, the claimed embodiments may be embodied in many different forms and should not be considered limited to the embodiments shown herein. The accompanying figures illustrate various embodiments of the systems, methods and embodiments of various other aspects of the present disclosure. Anyone of ordinary skill in the art will recognize that the boundaries of elements illustrated in the figures (e.g., boxes, boxes, or other shapes) correspond to an example of a boundary. In some instances, one element may be designed as multiple elements, or multiple elements may be designed as one element. In some instances, an element shown as an internal component of one element may be implemented as an external component of another, and vice versa. Furthermore, elements may not be drawn to scale. A non-limiting and non-exhaustive description is provided with reference to the following figures. The components in the figures are not necessarily drawn to scale, emphasis instead being placed on illustrating principles.
[0037] [Figure 1] FIG. 1 is a scanning electron microscope (SEM) image showing the morphology of the first (coarse) plurality of ground ATH particles. [Diagram 2] FIG. 2 is an SEM image showing the morphology of the second (fine) milled ATH particles. [Diagram 3] FIG. 3 is a pore size distribution of the first (coarse) plurality of ground ATH particles (the first (coarse) plurality of ground ATH particles contained in the ATHE1, ATHE2 and ATHE3 compositions; referred to as Coarse A). [Figure 4] FIG. 4 is a pore size distribution of a first (coarse) plurality of milled ATH particles (first (coarse) plurality of milled ATH particles contained in a BORATHERM™ SG-200 LVS composition; designated Coarse B). [Diagram 5] FIG. 5 is an SEM image showing the morphology of the first (coarse) plurality of ground ATH particles (coarse A) of FIG. [Figure 6] FIG. 6 is an SEM image showing the morphology of the first (coarse) plurality of ground ATH particles (coarse B) of FIG. [Figure 7] FIG. 7 is a graph plotting particle size distribution of an exemplary ATH composition as a cumulative curve (added to 100). [Figure 8] FIG. 8 is a graph plotting the particle size distribution of the same ATH composition as FIG. 7, where the particle size distribution is shown as a relative distribution. [Figure 9] FIG. 9 is a plot of the viscosity of three different ATH compositions of the present invention that include different ratios of a first (coarse) plurality of ground ATH particles to a second (fine) plurality of ground ATH particles. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0038] The words "comprising," "having," "containing," and "including," as well as other forms thereof, are intended to be equivalent in meaning and are intended to be open-ended in that the item or items following any one of these words are not meant to be an inclusive listing of such items or items, or are not meant to be limited only to the item or items listed. The terms are not to be construed to exclude the presence of other features, steps, or components. It should also be noted that, as used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise. Although any systems and methods similar or equivalent to those described herein can be used in the practice or testing of embodiments of the present disclosure, the preferred systems and methods are now described.
[0039] Some of the terms used to describe the present invention are listed below:
[0040] "Aluminum trihydroxide (ATH)" refers to an inorganic mineral with the chemical formula Al(OH). Aluminum trihydroxide occurs primarily in nature as gibbsite and three rarer polymorphs: bayerite, doylate, and nordstrandite. Aluminum trihydroxide may also be referred to as aluminum hydroxide.
[0041] "APYRAL™ 20X" refers to a product currently sold by Nabaltec AG. APYRAL™ 20X is a combination of ground aluminum trihydroxide and precipitated aluminum trihydroxide. APYRAL™ 20X has useful viscosity and heat transfer properties when used in polymer composites.
[0042] "Bayer process" refers to a process in which aluminum trihydroxide is formed from bauxite and sodium hydroxide. The process involves dissolving bauxite in sodium hydroxide at temperatures up to 270° C. Waste solids known as bauxite tailings are removed and aluminum trihydroxide is precipitated from the remaining solution of sodium aluminate.
[0043] "Bauxite" refers to a rock formed from a reddish clay material. Bauxite contains primarily alumina, silica, iron oxides, and titanium oxides.
[0044] "BORATHERM™ SG-200LVS" refers to an ATH product manufactured by Sibelco™. BORATHERM™ SG-200LVS contains a mixture of two different types of milled ATH particles.
[0045] "D10" refers to the particle maximum dimension at 10% of the cumulative distribution of maximum dimensions of the particles in a mixture of particles.
[0046] "D50" refers to the particle maximum dimension at 50% of the cumulative distribution of maximum dimensions of particles in a mixture of particles. D50 is sometimes referred to as the median maximum dimension in a particle size distribution.
[0047] "D97" refers to the particle maximum dimension at 97% of the cumulative distribution of maximum dimensions of the particles in a mixture of particles.
[0048] "Flame retardant" refers to a composition that can prevent the start of a fire or retard the spread of a flame.
[0049] "Ground aluminum trihydroxide" refers to aluminum trihydroxide powder that has been precipitated from red mud and subsequently undergoes particle size reduction by milling and / or sieving operations. Ground aluminum trihydroxide is often formed by grinding the particles to a maximum dimension of less than 300 μm. Examples of grinders include jet mills, ball mills and roller mills.
[0050] "Maximum dimension" refers to the longest transverse dimension of any particular particle. Aluminum trihydroxide particles according to the compositions of the present invention may have a variety of shapes, including, but not limited to: generally (but not perfectly) spherical, rod-like, cylindrical, conical, cuboidal, rectangular, tetrahedral, or irregular three-dimensional shapes.
[0051] "OCTEO" refers to products currently sold by Evonik Operations GmbH. Dynasylan® OCTEO is a monomeric medium chain N-octyltriethoxysilane. Dynasylan® OCTEO is a surface modifier that creates hydrophobicity on inorganic fillers for compatibility improvement purposes.
[0052] "Precipitated aluminum trihydroxide" refers to ATH that has undergone two precipitations: first, precipitated from red mud; then reprecipitated to control particle morphology and size. Precipitated ATH is more difficult to form and more expensive than ground ATH.
[0053] "SEM" refers to a scanning electron microscope. A non-limiting example of a scanning electron microscope is the JSM-IT800 sold by JEOL™.
[0054] "Specific surface area" refers to the area of the solid surface per unit mass of a material. Specific surface area can optionally be measured by mercury intrusion porosimetry using a Pascal 100 series (sold by Thermo Electron) and / or a Pascal 240 series (sold by Thermo Electron).
[0055] "Total cumulative volume" refers to the total cumulative pore volume per unit mass occupied by a material (e.g., mercury) with increasing pressure. The total cumulative volume may optionally be measured by mercury intrusion porosimetry using a Pascal 100 series (sold by Thermo Electron) and / or a Pascal 240 series (sold by Thermo Electron).
[0056] "Inevitable impurities" refers to components present in a composition that do not affect the properties of the composition. Inevitable impurities are present in a composition at less than: 5% by weight; or less than 4% by weight; or less than 3% by weight; or less than 2% by weight; or less than 1% by weight; or less than 0.5% by weight; or less than 0.1% by weight.
[0057] "% v / v" refers to volume / volume percentage. For example, if a composition contains 40% v / v or less voids (or pores), then for every 100 mL of composition, there are 40 mL or less voids (or pores).
[0058] "% by weight" refers to the weight percentage in grams of a component of a composition per 100 grams of the composition. For example, if a composition contains 10% by weight of component A, then there is 10 g of component A for every 100 g of the composition.
[0059] Composition of Aluminum Trihydroxide Composition (ATH Composition)
[0060] In the present example, the aluminum trihydroxide (ATH) composition is formed from ground ATH. Ground ATH is formed by a less complicated manufacturing process than precipitated ATH. In the past, both ground and precipitated ATH were used because precipitated ATH can be formed with control over the morphology of the ATH particles. The inventors have surprisingly found that it is possible to make a useful ATH composition using only ground ATH (i.e., without any precipitated ATH).
[0061] In this example of the invention, the ATH composition includes a first (coarse) plurality of ground ATH particles and a second (fine) plurality of ground ATH particles.
[0062] Optionally, particles of the first (coarse) plurality of ground ATH particles may include a coating, the second (fine) plurality of ground ATH particles may include a coating, or the first (coarse) plurality and the second (fine) plurality of ground ATH particles may include a coating. The coating may include one or more of: a fatty acid and / or an organosilane. The coating may be included to provide dispersion, rheological and / or interfacial compatibility.
[0063] In some examples of the present invention, the first (coarse) plurality of ground ATH particles have a maximum dimension of 50-500 μm, 50-300 μm, or 75-250 μm, or 100-150 μm (plus or minus 50 μm).
[0064] In some examples of the present invention, the second (fine) plurality of ground ATH particles has a maximum dimension of less than 50 μm, or less than 40 μm, or less than 30 μm (plus or minus 5 μm). The second (fine) plurality of ground ATH particles can have a maximum dimension of greater than 0.5 μm, or greater than 1 μm.
[0065] In some examples of the present invention, the ATH composition comprises a first (coarse) plurality of ground ATH particles having a maximum dimension of 200 μm (plus or minus 50 μm) and a second (fine) plurality of ground ATH particles having a maximum dimension of 30 μm (plus or minus 5 μm).
[0066] In some examples of the invention, the first (coarse) plurality of ground ATH particles have: a D10 of 25-40 μm, or 25-35 μm, or 31-33 μm, or 32 μm; and a D50 of 90-110 μm, or 100-104 μm, or 102 μm; and a D97 of 200-300 μm, or 200-220 μm, or 210 μm.
[0067] In some examples of the present invention, the second (fine) plurality of ground ATH particles have: a D10 of 1.0-4.0 μm, or 1.0-2.0 μm, or 1.5 μm; and a D50 of 6-12 μm, or 8 μm; and a D97 of 25-40 μm, or 30-34 μm, or 32 μm.
[0068] In some examples of the present invention, the ATH composition has: a D10 of 1-3 μm, or 2 μm; and a D50 of 20-24 μm, or 21.86 μm; and a D97 of 180-220 μm, or 198 μm.
[0069] In some examples of the present invention, the ATH composition comprises ATH particles having a maximum size distribution of 0.1 to 305 μm.
[0070] In some examples of the present invention, the ATH composition comprises 50-85% by weight, or 60-85% by weight, or 65-80% by weight, or 70-75% by weight of the first (coarse) plurality of ground ATH particles.
[0071] In some examples of the present invention, the ATH composition comprises 15-50% by weight, or 15-40% by weight, or 20-35% by weight, or 25-30% by weight of the second (fine) plurality of ground ATH particles.
[0072] In some examples of the present invention, the ratio (by weight) of the first (coarse) plurality of ground ATH particles to the second (fine) plurality of ground ATH particles in the ATH composition is: 12.5 (coarse):3.5 (fine), respectively, or 8 (coarse):1.5 (fine), respectively, or 10 (coarse):5 (fine), respectively, or 4 (coarse):2.2 (fine), each plus or minus 0.5.
[0073] In some examples of the present invention, the ratio of the first (coarse) plurality of ground ATH particles to the second (fine) plurality of ground ATH particles results in: 40% v / v or less voids (or pores) in the ATH composition; or 34% v / v or less voids (or pores).
[0074] Preferably, the ATH compositions of the present invention have the same or similar physical properties as known ATH compositions.
[0075] In some examples of the present invention, the ATH composition, when in a polymer matrix, preferably has a beneficial thermal conductivity compared to known ATH compositions. Preferably, the thermal conductivity of the ATH composition (when in a polymer matrix including linear non-reactive polydimethylsiloxane; the loading of the ATH composition in the polymer is 87.5 wt. % ATH composition with 12.5% polymer) is 2.6-2.9 W / mK (or 2.8-2.9 W / mK). Preferably, the improved thermal conductivity aids the rheological and thermal properties of the ATH composition (i.e., improved heat dissipation). For example, a more favorable thermal conductivity results in the ATH composition being better able to conduct thermal energy and thus act as a beneficial flame retardant or heat retardant.
[0076] In some examples of the present invention, the ATH composition preferably has a beneficial viscosity when in a polymer matrix compared to known ATH compositions. Optionally, the viscosity of the ATH composition is 13 Pa·s or less, or 11 Pa·s or less, or 9 Pa·s or less, or 8-9 Pa·s. Advantageously, the improved viscosity results in better flow properties, such as self-levelling behavior, for the ATH composition of the present invention.
[0077] In some examples of the present invention, the ATH composition has a viscosity of 2.42 g / cm 3 (plus or minus 0.2g / cm 3 ) has a beneficial density.
[0078] Formation of Aluminum Trihydroxide Composition (ATH Composition)
[0079] In some examples of the present invention, the ATH is sourced from bauxite that has undergone the Bayer process.
[0080] The ATH composition is formed from different ground ATH particles.
[0081] The ATH composition comprises a first (coarse) plurality of ground ATH particles and a second (fine) plurality of ground ATH particles. Prior to mixing, the first (coarse) plurality of ground ATH particles and the second (fine) plurality of ground ATH particles are separately sieved (to a desired size) to remove undesirable impurities. The first (coarse) plurality of ground ATH particles and the second (fine) plurality of ground ATH particles are then mixed.
[0082] The first (coarse) plurality of ground ATH particles and the second (fine) plurality of ground ATH particles are mixed: at 25° C. for 0.1 to 8 hours; or at 25° C. for 0.3 to 4 hours; or at 25° C. for 0.5 to 2 hours; or at 25° C. until a mixture having a uniform particle distribution is formed.
[0083] The ratio of the first (coarse) plurality of ground ATH particles to the second (fine) plurality of ground ATH particles in the mixture is: 12.5 (fine):3.5 (coarse), respectively; or 8 (coarse):1.5 (fine), respectively; or 10 (fine):5 (coarse), respectively; or 4 (coarse):2.2 (fine), respectively.
[0084] The mixing step may use any known mixing method. For example, mixing may use low shear mixing in a horizontal shaft mixer. In some examples, mixing is performed in a horizontal ribbon mixer sold by Gebrueder Loedige Maschinenbau GmbH.
[0085] The resulting mixture has a uniform particle distribution for both the first (coarse) plurality of ground ATH particles and the second (fine) plurality of ground ATH particles. By having a uniform particle distribution, all sizes of ATH particles are well mixed.
[0086] Preferably, the blending is such that the resulting ATH composition is formed with particles having a broad particle size distribution of 0.1 to 500 μm. This is because the first (coarse) plurality of ground ATH particles aid in the deagglomeration of the second (fine) plurality of ground ATH particles during the blending process, as the second (fine) plurality of ground ATH particles are friable. Without wishing to be bound by theory, it is believed that the inclusion of the first (coarse) plurality of ground ATH particles and the second (fine) plurality of ground ATH particles leads to beneficial packing of the different particle sizes, leading to beneficial viscosity, density and heat transfer properties.
[0087] Preferably, the mixing action results in a compact ATH composition having: 40% v / v or less voids (or pores) in the ATH composition; or 34% v / v or less voids (or pores) in the ATH composition, such that the ATH composition is capable of forming a high filler loading in the polymer matrix.
[0088] Preferably, the mixing action results in an ATH composition having a viscosity of 13 Pa·s or less; or 11 Pa·s or less; or 9 Pa·s or less for a given polymer matrix. The resulting ATH composition is free-flowing. EXAMPLES
[0089] The following are non-limiting examples that discuss the advantages of the present invention in conjunction with tables and figures: The examples shown herein are non-limiting examples and are merely examples among other possible examples.
[0090] Example 1: Comparison of starting materials
[0091] The following non-limiting examples each compare the morphology of a first (coarse) plurality of ground ATH particles versus a second (fine) plurality of ground ATH particles contained in an ATH composition of the present invention.
[0092] 1 is a SEM image showing the morphology of the first (coarse) plurality of ground ATH particles in one non-limiting example. As shown in FIG. 1, the morphology of the first (coarse) plurality of ground ATH particles is compact and dense with fewer pores on the surface.
[0093] 2 is a SEM image showing the morphology of the second (finer) plurality of ground ATH particles in one non-limiting example. As shown in FIG. 2, the morphology of the second (finer) plurality of ground ATH particles is smaller in size and includes agglomerations of particles.
[0094] Comparing Figures 1 and 2, the morphology of the first (coarse) plurality of ground ATH particles is significantly more compact and / or uniform than the morphology of the second (fine) plurality of ground ATH particles.
[0095] Preferably, by forming an ATH composition from a first (coarse) plurality of ground ATH particles and a second (fine) plurality of ground ATH particles, an ATH composition can be formed with 40% v / v or less voids (or pores) in the aluminum trihydroxide composition.
[0096] Example 2: Comparison of crude fractionated materials
[0097] The following non-limiting examples compare the morphology of two coarse fraction materials (crude A and crude B), each of which may be included in the ATH compositions of the present invention. The first coarse material (crude A) is included in the example ATHE1, ATHE2, and ATHE3 compositions, while the second coarse material (crude B) is included in the BORATHERM™ SG-200LVS composition.
[0098] FIG. 3 is a pore size distribution of the first (coarse) plurality of ground ATH particles (the first (coarse) plurality of ground ATH particles included in the ATHE1, ATHE2 and ATHE3 compositions; Coarse A).
[0099] FIG. 4 is the pore size distribution of the first (coarse) plurality of milled ATH particles (the first (coarse) plurality of milled ATH particles in a BORATHERM™ SG-200LVS composition; Coarse B).
[0100] As shown in Figures 3 and 4, the pore size distribution of Coarse B is larger than that of Coarse A. The pore size distributions in Figures 3 and 4 were determined by mercury intrusion porosimetry using a Pascal 100 series and a Pascal 240 series (sold by Thermo Electron).
[0101] Table 1: Total cumulative volume and total specific surface area of crude A and crude B [Table 1]
[0102] Suitably, through the formation of an ATH composition with crude A, it is possible to form an ATH composition with 40% v / v or less pores (or voids) in the aluminum trihydroxide composition.
[0103] FIG. 5 is an SEM image showing the morphology of crude A.
[0104] FIG. 6 is an SEM image showing the morphology of crude B.
[0105] Preferably, the morphology of Coarse A is composed of larger particles compared to Coarse B, which is less compact and exhibits a less uniform morphology composed of small and large particles. Furthermore, Coarse B exhibits a morphology with more damaged edges and is more porous, resulting in a higher specific surface area. Without wishing to be bound by theory, it is believed that the morphology of Coarse A is composed of larger particles compared to Coarse B, which exhibits a less compact and less uniform morphology composed of small and large particles. Furthermore, Coarse B exhibits a morphology with more damaged edges and is more porous, resulting in a higher specific surface area. 3 It is believed that an aluminum trihydroxide composition comprising a first (coarse) plurality of comminuted aluminum trihydroxide particles having a total cumulative volume of 3m / g or less provides an ATH composition with 40% v / v or less pores (or voids) in the aluminum trihydroxide composition. Further, without wishing to be bound by theory, it is believed that an ATH composition comprising a first (coarse) plurality of comminuted aluminum trihydroxide particles having a total cumulative volume of 3m / g or less provides an ATH composition with 40% v / v or less pores (or voids) in the aluminum trihydroxide composition. 2 An aluminum trihydroxide composition comprising a first (coarse) plurality of pulverized aluminum trihydroxide particles having a specific surface area of 0.1 g / g or less is believed to provide an ATH composition with 40% v / v or less pores (or voids) in the aluminum trihydroxide composition.
[0106] Preferably, relatively high thermal conductivity values are obtained through forming ATH compositions that include a first (coarse) plurality of coarse A, and polymer composites that include these ATH compositions.
[0107] Example 3: Maximum size distribution of particles in ATH compositions
[0108] The following non-limiting examples compare the maximum size distribution of particles in ATH compositions of the present invention.
[0109] FIG. 7 shows the maximum dimension size distribution for particles in an example ATH composition, designated ATHE2, as a function of cumulative distribution added up to 100. In ATHE2, the ratio (in weight percent) of the first (coarse) plurality of ground ATH particles to the second (fine) plurality of ground ATH particles is 70 (coarse):30 (fine). FIG. 8 shows the maximum dimension distribution of particles in ATHE2 as a function of relative distribution. The maximum dimension distributions in FIGS. 7 and 8 were determined using a HELOS laser diffraction instrument (sold by Sympatec GmbH).
[0110] Each sample was dispersed in water (using stirring and sonication) and the maximum particle size distribution was determined using laser diffraction. A HELOS laser diffraction instrument (sold by Sympatec GmbH) was used for the measurements. Mie's scattering theory was applied to the scattering data to determine the maximum particle size in ATHE2.
[0111] A unique maximum size distribution is achieved, with the particles in ATHE2 having a wide maximum size distribution from 0.1 to 305 μm, as shown in Figures 7 and 8. This result can be attributed to the crushing of the first (coarse) plurality of ground ATH particles and the deagglomeration of the second (fine) plurality of ground ATH particles during the mixing process.
[0112] Example 4: Analysis of the effect of the ratio of first (coarse) plurality of ground ATH particles to second (fine) plurality of ground ATH particles on the physical properties of the ATH composition
[0113] The following non-limiting examples analyze the change in physical properties resulting from changing the ratio of a first (coarse) plurality of ground ATH particles to a second (fine) plurality of ground ATH particles in an ATH composition.
[0114] Three different ATH compositions were prepared, with the ratio of the first (coarse) plurality of ground ATH particles to the second (fine) plurality of ground ATH particles in each composition being (by weight%): 60 (coarse): 40 (fine) (ATHE1); 70 (coarse): 30 (fine) (ATHE2); and 80 (coarse): 20 (fine) (ATHE3), respectively.
[0115] The known ATH compositions were APYRAL™ 20X and BORATHERM™ SG-200LVS.
[0116] Three different ATH compositions of the present invention (ATHE1, ATHE2, and ATHE3) and known ATH compositions APYRAL™ 20X and BORATHERM™ SG-200LVS were individually added to siloxane (each separately) to form composites. The composites contained 70% by weight of each ATH composition, the remainder being siloxane. The siloxanes used had a shear rate of 10 m / s and a shear rate of approximately 500 mm at 30° C. 2 The ATH compositions were polydimethylsiloxanes with a viscosity of 1000 nm / s. Before viscosity measurements were performed, each ATH composition was well dispersed in the siloxane matrix by a high-speed double asymmetric centrifuge at 3000 rpm for 1 min, and then allowed to settle in an oven at 30° C. for 10 min. Before viscosity measurements were performed, any build-up structure was removed by manual stirring with a spatula.
[0117] The viscosity of each solution (siloxane containing ATH composition) was measured using a Brookfield cone / plate viscometer with spindle NR-52.
[0118] Figure 9 plots the viscosity of three different ATH compositions of the present invention (ATHE1, ATHE2, and ATHE3) and a known ATH composition, APYRAL™ 20X, when in the indicated siloxanes. As shown in Figure 9, the viscosity of the ATH compositions of the present invention having ratios of 70:30 (ATH2) and 80:20 (ATHE3) is lower than the viscosity of the known ATH composition, APYRAL™ 20X. Preferably, the lower viscosity results in better flow properties, such as self-leveling behavior, for the ATH compositions of the present invention (when in a siloxane matrix).
[0119] Tables 2A and 2B compare the density and heat capacity for three example ATH compositions of the present invention (ATHE1, ATHE2 and ATHE3) and known ATH compositions APYRAL™ 20X and BORATHERM™ SG-200LVS.
[0120] Table 2A: Comparison of density and heat capacity of three example ATH compositions of the present invention (ATHE1, ATHE2 and ATHE3) with known ATH compositions when composited with siloxane polymer. (Thermal diffusivity was measured precisely; density and heat capacity are approximate measurements based on known properties of the samples.) [Table 2A]
[0121] Table 2B: Comparison of density and heat capacity of three example ATH compositions of the present invention (ATHE1, ATHE2 and ATHE3) with known ATH compositions when composited with siloxane polymer. (These are all exact measurements of thermal diffusivity, density and heat capacity taken after the approximate measurements in Table 2A.) [Table 2B]
[0122] As shown in Tables 2A and 2B, when in composite with a siloxane polymer, the ATH compositions of the present invention have similar density and heat capacity properties as known ATH compositions.
[0123] Example 5: Comparison of thermal conductivity of the ATH composition of the present invention with known ATH compositions
[0124] The following non-limiting example compares the thermal conductivity of ATH compositions of the present invention with known ATH compositions.
[0125] Three different ATH compositions were made, each having a ratio (by weight) of the first (coarse) plurality of ground ATH particles to the second (fine) plurality of ground ATH particles: 60:40 (ATHE1); 70:30 (ATHE2); and 80:20 (ATHE3), respectively.
[0126] The known ATH compositions used were APYRAL™ 20X and BORATHERM™ SG-200LVS.
[0127] Three different ATH compositions of the present invention (ATHE1, ATHE2 and ATHE3) and a known ATH composition were individually added to siloxane to form composites. The composites contained 87.5% by weight of each ATH composition, and the remainder was siloxane. Before performing thermal conductivity measurements, each ATH composition was thoroughly dispersed in the siloxane matrix by a high-speed double asymmetric centrifuge at 3000 rpm for 1 minute, and then cooled before performing measurements.
[0128] The thermal diffusivity of each composite was measured using a modified transient plane source sensor fitted with a Trident™ thermal conductivity measuring device sold by C-Therm Technologies Ltd. These thermal diffusivity values, along with density and heat capacity, were later used to obtain the thermal conductivity of the composite. The thermal diffusivity values are shown in Table 1. The thermal conductivity was calculated in each case using the following equation:
[0129]
number
[0130] where e is the thermal diffusivity, λ is the thermal conductivity, ρ is the density of the composite, and C p is the specific heat capacity of the composite at a given temperature.
[0131] Table 3 shows the thermal conductivity of the ATH compositions of the present invention, as well as known ATH compositions APYRAL™ 20X and BORATHERM™ SG-200LVS, when in the described siloxane matrices (i.e., in composites with siloxane polymers).
[0132] Table 3A: Thermal conductivity of the ATH composition of the present invention and known ATH compositions APYRAL™ 20X and BORATHERM™ SG-200LVS when in composite with siloxane polymer. (These are approximate measurements using data from Table 2A.) [Table 3A]
[0133] Table 3B: Thermal conductivity of the ATH composition of the present invention and known ATH compositions APYRAL™ 20X and BORATHERM™ SG-200LVS when in composite with siloxane polymer. (These are exact measurements using data from Table 2B.) [Table 3B]
[0134] The ATH compositions of the present invention have improved (higher) thermal conductivity values, which favorably aid in the rheological and thermal properties of the ATH compositions. The higher thermal conductivity of the ATH compositions of this example means that filler loading levels in the polymer matrix can be kept to a minimum, leading to lower density polymer composites.
[0135] Example 6: Comparison of particle maximum size distribution of the ATH compositions of the present invention to known ATH compositions
[0136] The following non-limiting example compares the particle maximum size distribution of components of known ATH compositions and the ATH composition of this example.
[0137] The known ATH composition was BORATHERM™ SG-200LVS.
[0138] Each sample was dispersed in water (using stirring and sonication) and laser diffraction was used to determine the maximum size distribution of the ATH particles. A HELOS laser diffraction instrument (sold by Sympatec GmbH) was used for the measurements. Mie's scattering theory was applied to the scattering data to determine the maximum particle size of the components in ATHE1, ATHE2 and ATHE3.
[0139] The particle maximum size distribution is shown in Table 4.
[0140] Table 4: Particle maximum size distribution of components of the ATH compositions of the present invention (ATHE1, ATHE2 and ATHE3) compared to known ATH compositions. [Table 4]
[0141] The components of the ATH compositions of the present invention have different particle maximum size distributions, as shown in Table 4. The different particle maximum size distributions provide beneficial packing of the ATH particles in the ATH compositions of the present invention.
[0142] Example 7: Comparison of thermal conductivity of known ATH compositions and the ATH compositions of the present invention in a thermoplastic polymer matrix
[0143] The following non-limiting example compares the change in thermal conductivity of a known ATH composition, APYRAL™ 20X, and the 70:30 (ATHE2) ATH composition of the present invention upon compounding in different polymer matrices. Each sample was individually coated with 1% OCTEO. Each sample was then added to a polyethylene wax (PE wax) matrix to form a composite. The composites contained 87.5% by weight of each ATH composition.
[0144] Each ATH composition was thoroughly dispersed in polyethylene wax before thermal conductivity measurements were performed. For the polyethylene composites, the ATH composition was dispersed in the polymer's molten state. The mixture was then thoroughly dispersed using a high-speed double asymmetric centrifuge at 3000 rpm for 1 minute. Both systems were then cooled before measurements were performed.
[0145] Using the same approach as in Example 5, the thermal diffusivity of the composites was measured.
[0146] Table 5 compares the density and heat capacity for the ATH composition of the present invention 70:30 (ATHE2) and the known ATH composition APYRAL™ 20X in polyethylene wax.
[0147] Table 5: Comparison of density and heat capacity for the inventive ATH composition 70:30 (ATHE2) and the known ATH composition APYRAL™ 20X when in composite with polyethylene wax. [Table 5]
[0148] As shown in Table 5, the ATH compositions of the present invention have slightly lower density and slightly higher heat capacity properties when in a composite with polyethylene wax compared to known ATH compositions.
[0149] Table 6 shows the thermal conductivity of the ATH composition of the present invention 70:30 (ATHE2) and the known ATH composition APYRAL™ 20X when in the polyethylene waxes listed.
[0150] Table 6: Thermal conductivity of the inventive ATH composition 70:30 (ATHE2) and the known ATH composition APYRAL™ 20X when in a composite with polyethylene wax. [Table 6]
[0151] The ATH compositions of the present invention, 70:30 (ATHE2) and APYRAL™ 20X, exhibit relatively high thermal conductivity when blended in polyethylene wax.
[0152] As used in the present specification and claims, the terms "comprises" and "comprising" and variations thereof mean that the specified features, steps or integers are included. The terms are not to be interpreted as excluding the presence of other features, steps or components.
[0153] The features disclosed in the foregoing description, or the following claims, or the accompanying drawings, and expressed in a particular form or as means for performing a disclosed function, or as methods or processes for achieving a disclosed result, may be utilized to realize the invention in its various forms, either separately or in any combination of such features, as appropriate.
Claims
1. 50 to 85 wt% of a first plurality of ground aluminum trihydroxide particles having a maximum dimension of 50 to 500 μm; 15 to 50 wt% of a second plurality of ground aluminum trihydroxide particles having a maximum dimension of less than 50 μm; and optionally inevitable impurities An aluminum trihydroxide composition comprising (or consisting of).
2. The first plurality of ground aluminum trihydroxide particles are: 50 to 300 μm; or 75 to 250 μm; Or having a maximum dimension of 100 to 150 μm (plus or minus 50 μm), the aluminum trihydroxide composition according to claim 1.
3. The second plurality of ground aluminum trihydroxide particles are: having a maximum dimension of less than 40 μm; or less than 30 μm (plus or minus 5 μm), the aluminum trihydroxide composition according to claim 1.
4. The first plurality of ground ATH particles are: 25 to 40 μm; or 25 to 35 μm; or 31 to 33 μm; or D10 of 32 μm; and / or 90 to 110 μm; or 100 to 104 μm; or D50 of 102 μm; and / or 200 to 300 μm; or 200 to 220 μm; or D97 of 210 μm The aluminum trihydroxide composition according to claim 1.
5. The second plurality of ground ATH particles are: 1.0 to 4.0 μm; or 1.0 to 2.0 μm; or D10 of 1.5 μm; and / or 6 to 12 μm; or D50 of 8 μm; and / or 25 to 40 μm; or 30 to 34 μm; or D97 of 32 μm The aluminum trihydroxide composition according to claim 1.
6. The aluminum trihydroxide composition is: 1 to 3 μm; or D10 of 2 μm; and / or 20 to 24 μm; or D50 of 21.86 μm; and / or 180 to 220 μm; or D97 of 198 μm The aluminum trihydroxide composition according to claim 1.
7. The first plurality of ground aluminum trihydroxide particles are: 76 mm 3 / g or less; or 76 mm 3 / g to 50 mm 3 / g; or 76 mm 3 / g to 65 mm 3 / g and having a total cumulative volume, the aluminum trihydroxide composition according to claim 1.
8. The first plurality of pulverized aluminum trihydroxide particles are: 3 m 2 / g or less; or 2.95 m 2 / g or less; or 3 m 2 / g to 1 m 2 / g; or 2.95 m 2 / g to 2.8 m 2 The aluminum trihydroxide composition according to claim 1, having a specific surface area of / g.
9. The aluminum trihydroxide composition comprises: 60 to 85 wt%; or 65 to 80 wt%; or 70 to 80 wt%; or 55 to 65 wt% of the first plurality of ground aluminum trihydroxide particles, the aluminum trihydroxide composition according to claim 1.
10. The aluminum trihydroxide composition as described in claim 1, wherein the aluminum trihydroxide composition contains: 15 to 40% by weight; or 20 to 35% by weight; or 20 to 30% by weight; or 35 to 45% by weight of the second plurality of ground ATH particles.
11. The first plurality of ground aluminum trihydroxide particles have a maximum dimension of 300 μm; and The second plurality of ground aluminum trihydroxide particles have a maximum dimension of 30 μm, The aluminum trihydroxide composition according to claim 1.
12. In the aluminum trihydroxide composition, the ratio of the first plurality of aluminum trihydroxide particles to the second plurality of aluminum trihydroxide particles (by weight) is: 12.5 (first): 3.5 (second), plus or minus 2.5 for each; or 8 (first): 1.5 (second), plus or minus 0.5 for each; or 10 (first): 5 (second), plus or minus 1 for each; or 4 (first): 2.2 (second), plus or minus 0.5 for each. The aluminum trihydroxide composition according to claim 1.
13. The ratio of the first plurality of ground aluminum trihydroxide particles to the second plurality of ground aluminum trihydroxide particles results in: voids (or pores) of 40% v / v or less in the aluminum trihydroxide composition; or voids (or pores) of 34% v / v or less in the aluminum trihydroxide composition. The aluminum trihydroxide composition according to claim 1.
14. The aluminum trihydroxide composition has a density of 2.42 g / cm 3 (plus or minus 0.2 g / cm 3 ). The aluminum trihydroxide composition according to claim 1.
15. The aluminum trihydroxide composition according to claim 1, wherein the aluminum trihydroxide composition has a uniform particle distribution with respect to both the first plurality of ground ATH particles and the second plurality of ground ATH particles.
16. The particles in the aluminum trihydroxide composition have a maximum dimension distribution of 0.1 to 305 μm. The aluminum trihydroxide composition of claim 1.
17. A process for producing an aluminum trihydroxide composition, comprising the following steps: Providing a first plurality of ground aluminum trihydroxide particles having a maximum dimension of 50 to 500 μm and accounting for 50% to 85% by weight; and Providing a second plurality of ground aluminum trihydroxide particles having a maximum dimension of less than 50 μm and accounting for 15% to 50% by weight; and The first plurality of ground aluminum trihydroxide particles and the second plurality of ground aluminum trihydroxide A step of mixing aluminum particles A process comprising the above.
18. A process for producing an aluminum trihydroxide composition, comprising the following steps: Providing a first plurality of ground aluminum trihydroxide particles having a maximum dimension of 50 to 500 μm and accounting for 50% to 85% by weight; Providing a second plurality of ground aluminum trihydroxide particles having a maximum dimension of less than 50 μm and accounting for 15% to 50% by weight; The step of mixing the first plurality of ground aluminum trihydroxide particles and the second plurality of ground Aluminum trihydroxide particles Comprising In the aluminum trihydroxide composition, the first plurality of ground aluminum trihydroxide particles and / or the second plurality of ground aluminum trihydroxide particles are those in any one of Claims 1 to 16. A process.
19. The mixing step is carried out at 25°C for 0.1 to 8 hours; or at 25°C for 0.3 to 4 hours; or at 25°C for 0.5 to 2 hours; or until a mixture with a uniform particle distribution is formed at 25°C. The process according to any one of Claim 17.
20. The ratio of the first plurality of ground aluminum trihydroxide particles to the second plurality of ground aluminum trihydroxide particles in the mixture (by weight) is: 12.5 (first): 3.5 (second), plus or minus 2.5 for each; or 8 (first): 1.5 (second), plus or minus 0.5 for each; or 10 (first): 5 (second), plus or minus 1 for each; or 4 (first): 2.2 (second), plus or minus 0.5 for each. The process according to Claim 17.
21. The aluminum trihydroxide composition according to any one of Claims 1 to 16 for use as a flame retardant and / or as a heat management filler.
22. A polymer composite comprising a polymer and the aluminum trihydroxide composition according to any one of Claims 1 to 16.
23. The polymer is a polymer formed of silicone, epoxy, polyester, polyethylene wax and / or polyol; optionally, the polymer is a thermosetting polymer or a thermoplastic polymer. The polymer composite according to Claim 22.
24. The polymer composite is (by weight): 50 to 90 of the aluminum trihydroxide composition; with said polymer of 10 to 50; or with said aluminum trihydroxide composition of 60 to 80; with said polymer of 20 to 40 The polymer composite according to claim 22, comprising the same.
25. The polymer composite according to claim 22, wherein the polymer composite has a thermal conductivity of 2 to 7 W / mK; 2 to 4 W / mK; or 2.5 to 3 W / mK; or 2.6 to 2.9 W / mK; or 2.8 to 2.9 W / mK.
26. The polymer composite according to claim 22, wherein the polymer composite has a viscosity of 13 Pa·s or less; or 11 Pa·s or less; or 9 Pa·s or less.