Micronized Soluble Composite Powder Additive
20230050330 · 2023-02-16
Inventors
Cpc classification
C08K2201/005
CHEMISTRY; METALLURGY
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
C08K9/08
CHEMISTRY; METALLURGY
B82Y40/00
PERFORMING OPERATIONS; TRANSPORTING
C08K2201/013
CHEMISTRY; METALLURGY
C08K3/042
CHEMISTRY; METALLURGY
International classification
Abstract
A soluble composite powder comprising homogenous composite particles, the homogenous composite particles comprising at least one soluble thermoplastic material and at least one submicron nanoparticle material. The at least one soluble thermoplastic material comprises from about 50 to 99 weight percent of the powder, and the at least one submicron nanoparticle material comprises from about 1 to 50 weight percent of the powder. The powder is soluble.
Claims
1. A soluble powder comprising: homogenous composite particles; said homogenous composite particles comprising at least one soluble thermoplastic material and at least one submicron nanoparticle material; wherein said at least one soluble thermoplastic material comprises from about 50 to 99 weight percent of said powder; wherein said at least one submicron nanoparticle material comprises from about 1 to 50 weight percent of said powder; wherein said powder is soluble.
2. The soluble powder of claim 1, wherein said at least one thermoplastic material is a polymer, plastic, or wax, which can be melted and reformed.
3. The soluble powder of claim 2, wherein said at least one submicron nanoparticle material is a nano-aluminum oxide, nano-titanium oxide, or a nano-graphene oxide.
4. The soluble powder of claim 1, wherein the soluble powder is soluble in water.
5. The soluble powder of claim 1 wherein the soluble powder is soluble in alkaline water.
6. The soluble powder of claim 1, wherein the soluble powder is soluble in organic solvent.
7. The soluble powder of claim 1, wherein the soluble powder is soluble in water, alkaline water, and organic solvents.
8. The soluble powder of claim 1, wherein said at least one submicron nanoparticle material has a mean particle size below 1,000 nm.
9. The soluble powder of claim 1, wherein said homogenous composite particles have a maximum particle size below 5 mm.
10. The soluble powder of claim 9, wherein said homogenous composite particles have a maximum particle size below 1,000 microns.
11. The soluble powder of claim 1, wherein said homogenous composite particles have a mean particle size ranging from 0.1 to 44 microns.
12. A composite powder comprising: at least one soluble thermoplastic material; and at least one submicron nanoparticle material; wherein said at least one submicron nanoparticle material is dispersed in said at least one soluble thermoplastic material homogenously.
13. The composite powder of claim 12, wherein said composite powder has a maximum particle size below 1,000 microns.
14. The composite powder of claim 12, wherein said composite powder have a mean particle size ranging from 0.1 to 44 microns.
15. The composite powder of claim 12, wherein said at least one submicron nanoparticle material has a mean particle size below 1,000 nm.
16. The composite powder of claim 12, wherein said at least one soluble thermoplastic material is a polymer, plastic, or wax, which can be melted and reformed.
17. The composite powder of claim 16, wherein said at least one submicron nanoparticle material is a nano aluminum oxide.
18. The composite powder of claim 17, wherein said composite powder is used as a coating additive to improve surface durability.
19. The composite powder of claim 12, wherein said at least one submicron nanoparticle material is a nano titanium oxide.
20. The composite powder of claim 19, wherein said composite powder is used as an additive in personal care products to improve SPF protection.
21. The composite powder of claim 12, wherein said at least one submicron nanoparticle material is a graphene oxide.
22. The composite powder of claim 21, wherein said composite powder is used as an additive to improve corrosion resistance in a surface coating.
23. The composite powder of claim 21, wherein said composite powder is used as an additive to improve electrostatic dissipation in a surface coating.
24. A soluble powder comprising: homogenous composite particles; said homogenous composite particles comprising at least one thermoplastic material and at least one submicron nanoparticle material; wherein said at least one thermoplastic material comprises from about 50 to 99 weight percent of said powder; wherein said at least one submicron nanoparticle material comprises from about 1 to 50 weight percent of said powder; wherein said powder is produced by dry mixing, melting, cooling, pelletizing, and compressing said composite particles.
25. The soluble powder of claim 24, wherein said at least one thermoplastic material is a polymer, plastic, or wax, which can be melted and reformed.
26. The soluble powder of claim 24, wherein said at least one submicron nanoparticle material is a nano-aluminum oxide, nano-titanium oxide, or a nano-graphene oxide.
27. The soluble powder of claim 24, wherein said at least one submicron nanoparticle material has a mean particle size below 1,000 nm.
28. The soluble powder of claim 24, wherein said homogenous composite powder has a maximum particle size below 1,000 microns.
29. The soluble powder of claim 24, wherein said homogenous composite powder has a mean particle size ranging from 0.1 to 44 microns.
30. The soluble powder of claim 1, wherein said at least one submicron nanoparticle material has a mean particle size below 500 nm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0061]
[0062]
DETAILED DESCRIPTION
[0063] The present teachings are described more fully hereinafter with reference to the accompanying drawings, in which the present embodiments are shown. The following description is presented for illustrative purposes only and the present teachings should not be limited to these embodiments.
[0064] In compliance with the statute, the present teachings have been described in language more or less specific as to structural and methodical features. It is to be understood, however, that the present teachings are not limited to the specific features shown and described, since the systems and methods herein disclosed comprise preferred forms of putting the present teachings into effect.
[0065] For purposes of explanation and not limitation, specific details are set forth such as particular architectures, interfaces, techniques, etc. in order to provide a thorough understanding. In other instances, detailed descriptions of well-known devices, circuits, and methods are omitted so as not to obscure the descriptions with unnecessary detail.
[0066] In this invention, “soluble thermoplastic material” is broadly defined as any substance (such as, but not limited to, polymer, plastic, natural wax) that can be melted, liquefied, softened, or otherwise modified such that it can be homogenously combined with the submicron or nanoscale material, solidified, and micronized into a coarse or fine powder, and subsequently is able to be dissolved in a water-based, alkaline water-based, and/or solvent-based liquid system. Examples include, but are not limited to, polymers including polyacrylates, polyesters, rosin-maleic derivatives and other thermoplastic polymers that are soluble in either water-based systems and/or solvent-based systems. In some cases, the soluble thermoplastic material may be soluble in multiple liquid environments (combinations of water soluble, alkaline water soluble, and organic solvent soluble).
[0067] In this invention, “submicron nanoparticle material” is defined as a particle with a mean particle size below 1,000 nm. Preferably, the submicron nanoparticle material is below 500 nm. Most preferably, the submicron nanoparticle material is below 100 nm.
[0068] In this invention, the composite powder has a maximum particle size below 5 mm. Preferably, the composite powder has a maximum particle size below 1,000 microns. More preferably, the composite powder has a mean particle size ranging from 0.1 to 44 microns. More preferably, the composite powder has a mean particle size of 5-20 microns with a maximum particle size of 44 microns. Most preferably, the composite powder has a mean particle size of 8 to 12 microns with a maximum particle size of 31 microns.
[0069] In this invention, sufficient time is defined as a time long enough to homogenize the submicron nanoparticle material with the soluble thermoplastic material matrix to form a molten composite.
[0070] In this invention, sufficient temperature is defined as a temperature high enough to convert the dry mixture into the molten composite.
[0071] In this multi-step process, the soluble thermoplastic material is selected to serve as the matrix for the composite powder. This soluble thermoplastic material can then be melted and combined with the submicron nanoparticle material using sufficient energy to wet, separate, and disperse the submicron nanoparticle materials homogenously throughout the soluble thermoplastic material matrix. This soluble thermoplastic composite can then be size reduced and supplied as an easy to disperse powder.
[0072] In the first step the soluble thermoplastic material component(s) are first combined with the submicron and/or nanoscale material by melt mixing, extrusion, or other processes familiar to those skilled in the art. In the second step, this soluble thermoplastic composite material is size reduced using air micronization (irregular fine particles), mechanical milling (irregular coarse particles), spray melt congealing (spherical coarse and/or fine particles) or other processes familiar to those skilled in the art. In the case of spray melt congealing, the two steps can be combined. The result is a micronized soluble thermoplastic composite powder that no longer contains free submicron or nanoscale material. This affords the ability to incorporate submicron and/or nanoscale materials into a wide range of products without the complexity, risks, and difficulties long associated with the use of these materials.
[0073] Referring now to
[0074] Referring now to
EXAMPLES OF SOLUBLE COMPOSITE POWDERS
Example 1
Aluminum Oxide/Styrene Acrylic Micronized Soluble Thermoplastic Material Nanocomposite
Step 1:
[0075] The following components are combined using extrusion melt mixing:
80% styrene acrylic resin
20% fumed aluminum oxide (primary particle size between 7-40 nm).
Step 2:
[0076] The composite material from Step 1 is cooled, crushed, and micronized, using a jet mill, to a mean particle size (mv) of 3.5-5.5 μm and a maximum particle size (D100) of 15.56 μm.
This composite powder is useful to improve scratch and abrasion resistance when used as an additive in industrial paints, inks, and coatings.
Example 2
Aluminum Oxide/Fumaric Modified Rosin Ester Micronized Soluble Thermoplastic Material Nanocomposite
Step 1:
[0077] The following components are combined using extrusion melt mixing:
80% fumaric modified rosin ester
20% fumed aluminum oxide (primary particle size between 7-40 nm).
Step 2:
[0078] The composite material from Step 1 is cooled, crushed, and micronized, using a jet mill, to a mean particle size (mv) of 3.5-5.5 μm and a maximum particle size (D100) of 15.56 μm.
This composite powder is useful to improve scratch and abrasion resistance when used as an additive in industrial paints, inks, and coatings.
Example 3
Boron Nitride/Styrene Acrylic Micronized Soluble Thermoplastic Composite
Step 1:
[0079] The following components are combined using extrusion melt mixing:
70% Styrene acrylic resin
30% 15 nm titanium dioxide
Step 2:
[0080] The composite material from Step 1 is cooled, crushed, and micronized, using a jet mill, to a mean particle size (mv) of 8.0-12.0 μm and a maximum particle size (D100) of 31.11 μm.
This composite powder is useful as an SPF booster when formulated into skin creams and lotions, or as an additive to improve surface cleanability.
Example 4
Ultrafine Graphene Oxide/Styrene Acrylic Micronized Soluble Thermoplastic Composite
Step 1:
[0081] The following components are combined using extrusion melt mixing:
50% Styrene acrylic resin
50% graphene oxide (nominal particle size of 400 nm, 90% of particles below 800 nm in diameter)
Step 2:
[0082] The composite material from Step 1 is cooled, crushed, and micronized, using a jet mill, to a mean particle size (mv) of 10-12 μm and a maximum particle size (D100) of 31.11 μm.
This composite powder is useful at improving corrosion resistance when used as an additive in coatings applied to steel and other metal surfaces.
Example 5
Coarse Graphene Oxide/Styrene Acrylic Micronized SolubleThermoplastic Composite
Step 1:
[0083] The following components are combined using extrusion melt mixing:
50% Styrene acrylic resin
50% graphene oxide (nominal particle size of 400 nm, 90% of particles below 800 nm in diameter)
Step 2:
[0084] The composite material from Step 1 is cooled, crushed, and size reduced using a mechanical mill to a coarse powder with a maximum particle size of 10 mesh.
This composite powder is useful at improving corrosion resistance when used as an additive in coatings applied to steel and other metal surfaces.
Example 6
Ultracoarse Graphene Oxide/Styrene Acrylic Micronized SolubleThermoplastic Composite
Step 1:
[0085] The following components are combined using extrusion melt mixing:
50% styrene acrylic resin
50% graphene oxide (nominal particle size of 400 nm, 90% of particles below 800 nm in diameter)
Step 2:
[0086] The composite material from Step 1 is cooled and formed into a 3 mm prill particle powder.
This composite powder is useful at improving corrosion resistance when used as an additive in coatings applied to steel and other metal surfaces.
[0087] In all five examples the composite powder can be produced using various methods.
[0088] In one method the soluble thermoplastic solid material (in the form of flakes, pellets, etc.) are physically combined with the submicron nanoparticle material in a ribbon blender or other suitable dry blending machine. The dry mixture is fed into the hopper of a horizontal twin screw extruder, and processed under time, temperature, and torque conditions suitable to homogenously disperse the submicron particle in the molten thermoplastic. The molten composite is discharged into a flake, pellet, or prill. Optionally, this dry soluble composite material is then fed into a jet micronization mill and size reduced to the desired particle size (mean and maximum size).
[0089] In another method the soluble thermoplastic solid material (in the form of flakes, pellets, etc.) are physically combined with the submicron nanoparticle materials in a jacketed and heated mixing vessel equipped with agitation. The dry mixture is gradually heated to melt the polyethylene, and is then agitated under sufficient time, temperature, and torque, to homogenously disperse the submicron particle in the molten thermoplastic. The molten soluble composite is discharged onto a flaker belt or through and priller or pelletizer, to form a flake, pellet, or prill. Optionally, this dry composite material is then fed into a jet micronization mill and size reduced to the desired particle size (mean and maximum size).
[0090] In this second method after the mixture is heated and agitated, the molted mixture is sprayed through a fine orifice into a cooling tower, where the molten composite exits the orifice, cools, and forms a spherical particle. The particles can be further size classified using screens or other techniques to refine the particle size distribution. The molten composite is sufficiently cooled when the molten composite becomes a hard and tack free solid such as a flake, prill, or pellet.
[0091] While the present teachings have been described above in terms of specific embodiments, it is to be understood that they are not limited to these disclosed embodiments. Many modifications and other embodiments will come to mind to those skilled in the art to which this pertains, and which are intended to be and are covered by both this disclosure and the appended claims. It is intended that the scope of the present teachings should be determined by proper interpretation and construction of the appended claims and their legal equivalents, as understood by those of skill in the art relying upon the disclosure in this specification and the attached drawings.