Patent · US10040216B2 · B2 · US
Powder particle layerwise three-dimensional printing process
- (11) Publication number
- US10040216B2
- (21) Application number
- 14/025,343
- (22) Filing date
- 2013-09-12
- (30) Priority date
- 2007-04-04
- (43) Publication date
- 2018-08-07
- (45) Date of grant
- 2018-08-07
- (51) IPC
- B28B 1/00; B29C 67/00; B22F 3/00; B29C 64/165; B33Y 10/00; B33Y 30/00; C04B 35/01; C04B 35/053; C04B 35/111; C04B 35/14; C04B 35/26; C04B 35/453; C04B 35/457; C04B 35/46; C04B 35/486; C04B 35/505; C04B 35/528; C04B 35/56; C04B 35/565; C04B 35/581; C04B 35/584; C04B 35/632; C04B 35/634
- (52) CPC
- B28B Shaping clay or other ceramic compositions; shaping slag; shaping mixtures containing cementitious material, e.g. plaster: 1/001
- B22F Working metallic powder; manufacture of articles from metallic powder; making metallic powder; apparatus or devices specially adapted for metallic powder: 1/0018, 1/054, 10/14, 10/60, 2998/10, 3/008, 3/1017
- B29C Shaping or joining of plastics; shaping of material in a plastic state, not otherwise provided for; after-treatment of the shaped products, e.g. repairing: 64/165
- B29K Indexing scheme associated with subclasses B29B, B29C or B29D, relating to moulding materials or to materials for {moulds, } reinforcements, fillers or preformed parts, e.g. inserts: 2031/04, 2039/06, 2105/0005, 2105/251, 2303/04, 2303/06
- B33Y Additive manufacturing, i.e. manufacturing of three-dimensional [3D] objects by additive deposition, additive agglomeration or additive layering, e.g. by 3D printing, stereolithography or selective laser sintering: 10/00, 30/00
- C04B Lime, magnesia; slag; cements; compositions thereof, e.g. mortars, concrete or like building materials; artificial stone {}; ceramics; refractories; treatment of natural stone: 2235/6026, 35/01, 35/053, 35/111, 35/14, 35/26, 35/453, 35/457, 35/46, 35/486, 35/505, 35/528, 35/5626, 35/565, 35/581, 35/584, 35/632, 35/634
- Y02P Climate change mitigation technologies in the production or processing of goods: 10/25
- (73) Assignee
- ExOne Co
- (72) Inventors
- John A. Bai; Kevin D. Creehan; Howard A. Kuhn
- (54) Title
- Powder particle layerwise three-dimensional printing process
- (57) Abstract
Three-dimensional printing processes are disclosed which utilize printable fluids comprising a carrier fluid, a polymeric binder, and nanoparticles. The three-dimensional printing processes are useful for making articles from a build material powder, e.g., a ceramic, metal, metal alloy, or intermetallic powder. The nanoparticles enable low temperature interparticle bonding of the build material powder particles, e.g., by forming bridging bonds between adjacent powder particles, and/or increasing the interparticle friction between the build material powder particles to enhance the structural strength of the as-built article during a thermal treatment over at least a part of the temperature range which has as its low end the temperature at which the structural strength due to the binder becomes insubstantial and as its high end the temperature at which the structural strength due to interparticle sintering of the build material powder becomes substantial, i.e., the article's debile temperature range. Green density improvements are achievable.
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Claims (14)
- A method of three-dimensional printing comprising the steps of: (a) spreading a layer of build material powder particles; (b) selectively printing a first fluid onto the layer of the build material powder particles, the first fluid comprising a first polymeric binder, a first carrier liquid, and a first group of nanoparticles, wherein the first polymeric binder is dissolved in the first carrier liquid; (c) repeating the steps (a) and (b) for additional layers of the build material powder particles to create a preselected object; and (d) heat-curing the polymeric binder contained within the object, wherein the nanoparticles of the first group of nanoparticles form interparticle bonds between the build material powder particles during the heat-curing to provide structural strength to the object when the object is heated into its debile temperature range.
- The method of claim 1, wherein the step (b) further comprises selectively printing a second fluid onto the layers of the build material powder particles, the second fluid comprising a second carrier liquid and a second group of nanoparticles.
- The method of claim 2, wherein the second fluid also comprises a second polymeric binder, wherein the second polymeric binder is dissolved in the second carrier liquid.
- The method of claim 3, wherein at least one of the first polymeric binder and the second polymeric binder comprises at least one selected from the group consisting of polyvinyl alcohol (PVA), polyvinyl butyral (PVB), polyvinylpyrrolidone (PVP), and a wax.
- The method of claim 1, wherein the first fluid also includes a first dispersant.
- The method of claim 5, wherein the first dispersant comprises at least one selected from the group consisting of a fatty acid, fish oil, diethylene glycol, proplylene glycol, ethylene glycol, polyethylene glycol, α-terpineol, and ethylene glycol butyl ether.
- The method of claim 2, wherein the second fluid also includes a second dispersant.
- The method of claim 7, wherein the second dispersant comprises at least one selected from the group consisting of a fatty acid, fish oil, diethylene glycol, proplylene glycol, ethylene glycol, polyethylene glycol, α-terpineol, and ethylene glycol butyl ether.
- The method of claim 1, wherein the step (b) includes selectively depositing the first fluid in locally varying amounts so as to locally vary a concentration of the nanoparticles of said first group of nanoparticles within said article.
- The method of claim 1, wherein the build material powder particles include at least one selected from the group consisting of a ceramic, a metal, a metal alloy, and an intermetallic compound.
- The method of claim 1, wherein the build material powder particles include at least one selected from the group consisting of AlN, SiC, Si 3 N 4, WC, Al 2 O 3, Al(OH) 3, Fe 2 O 3, Fe 3 O 4, MgO, SiO 2, TiO 2, Y 2 O 3, ZnO, ZrO 2, BaCO 3, In 2 O 3, SnO 2, carbon, magnesium, aluminum, iron, titanium, niobium, tungsten, chromium, tantalum, cobalt, nickel, vanadium, zirconium, molybdenum, palladium, platinum, copper, silver, gold, cadmium, zinc, and combinations of these with each other and/or with a nonmetallic element or elements.
- The method of claim 2, wherein the material type of the nanoparticles of at least one of the first group of nanoparticles and the second group of nanoparticles is selected from the group consisting of AlN, SiC, Si 3 N 4, WC, Al 2 O 3, Al(OH) 3, Fe 2 O 3, Fe 3 O 4, MgO, SiO 2, TiO 2, Y 2 O 3, ZnO, ZrO 2, BaCO 3, In 2 O 3, SnO 2, carbon, magnesium, aluminum, iron, titanium, niobium, tungsten, chromium, tantalum, cobalt, nickel, vanadium, zirconium, molybdenum, palladium, platinum, copper, silver, gold, cadmium, zinc, and combinations of these with each other and/or with a nonmetallic element or elements.
- The method of claim 1, further comprising a step (e) further heating the article to transform the article into a sintered article.
- The method of claim 13, wherein the sintered article has porosity and further comprising a step (f) infiltrating the sintered article with a hardenable infiltrant to fill in at least some of the porosity of the sintered article.
Description
The present invention relates to ink-jet printable suspensions that are useful in the three-dimensional printing process for making articles from a powder build material. The present invention also relates to articles made using such suspensions and methods of using such suspensions.
The three-dimensional printing process is a solid free-form fabrication process, i.e., a process which constructs a three-dimensional article on a layer-by-layer basis from a build material using a computer representation of the article. The build material is a powder, for example without limitation, metal powders and ceramic powders. A layer of the build material is spread across a vertically movable platform. A solution containing a binder is ink-jet printed onto the build material layer in the pattern of the first of a series of cross-sectional slices of the article that is to be built. (A binder is a substance that acts to bind the powder particles together after the solvent portion of the applied binder solution has evaporated.) The platform is then lowered an amount that is equal to a layer-thickness. Another layer of build material is applied over the first layer and binder solution is ink-jet printed onto the second layer in the pattern of the second cross-sectional layer of the series. This sequence of spread-and-print is continued until the article is constructed. More than one article can be made at a time. Eventually, the article is removed from the surrounding bed of unbonded build material and any unbonded build material that is retained in internal passages of the article is removed.
Citations (17)
- US5204055A
- US5340656A
- US5387380A
- US5738817A
- US5997795A
- US6423255B1
- US20040145088A1
- US20050215689A1
- US20060251535A1
- US20060251826A1
- US20040262582A1
- US20050215664A1
- WO2006049619A1
- US20090007724A1
- US20060189113A1
- US20080241404A1
- WO2009017648A1
Record as JSON
{
"publication_number": "US10040216B2",
"country": "US",
"kind": "B2",
"title": "Powder particle layerwise three-dimensional printing process",
"abstract": "Three-dimensional printing processes are disclosed which utilize printable fluids comprising a carrier fluid, a polymeric binder, and nanoparticles. The three-dimensional printing processes are useful for making articles from a build material powder, e.g., a ceramic, metal, metal alloy, or intermetallic powder. The nanoparticles enable low temperature interparticle bonding of the build material powder particles, e.g., by forming bridging bonds between adjacent powder particles, and/or increasing the interparticle friction between the build material powder particles to enhance the structural strength of the as-built article during a thermal treatment over at least a part of the temperature range which has as its low end the temperature at which the structural strength due to the binder becomes insubstantial and as its high end the temperature at which the structural strength due to interparticle sintering of the build material powder becomes substantial, i.e., the article's debile temperature range. Green density improvements are achievable.",
"claims": [
"1. A method of three-dimensional printing comprising the steps of: (a) spreading a layer of build material powder particles; (b) selectively printing a first fluid onto the layer of the build material powder particles, the first fluid comprising a first polymeric binder, a first carrier liquid, and a first group of nanoparticles, wherein the first polymeric binder is dissolved in the first carrier liquid; (c) repeating the steps (a) and (b) for additional layers of the build material powder particles to create a preselected object; and (d) heat-curing the polymeric binder contained within the object, wherein the nanoparticles of the first group of nanoparticles form interparticle bonds between the build material powder particles during the heat-curing to provide structural strength to the object when the object is heated into its debile temperature range.",
"2. The method of claim 1, wherein the step (b) further comprises selectively printing a second fluid onto the layers of the build material powder particles, the second fluid comprising a second carrier liquid and a second group of nanoparticles.",
"3. The method of claim 2, wherein the second fluid also comprises a second polymeric binder, wherein the second polymeric binder is dissolved in the second carrier liquid.",
"4. The method of claim 3, wherein at least one of the first polymeric binder and the second polymeric binder comprises at least one selected from the group consisting of polyvinyl alcohol (PVA), polyvinyl butyral (PVB), polyvinylpyrrolidone (PVP), and a wax.",
"5. The method of claim 1, wherein the first fluid also includes a first dispersant.",
"6. The method of claim 5, wherein the first dispersant comprises at least one selected from the group consisting of a fatty acid, fish oil, diethylene glycol, proplylene glycol, ethylene glycol, polyethylene glycol, α-terpineol, and ethylene glycol butyl ether.",
"7. The method of claim 2, wherein the second fluid also includes a second dispersant.",
"8. The method of claim 7, wherein the second dispersant comprises at least one selected from the group consisting of a fatty acid, fish oil, diethylene glycol, proplylene glycol, ethylene glycol, polyethylene glycol, α-terpineol, and ethylene glycol butyl ether.",
"9. The method of claim 1, wherein the step (b) includes selectively depositing the first fluid in locally varying amounts so as to locally vary a concentration of the nanoparticles of said first group of nanoparticles within said article.",
"10. The method of claim 1, wherein the build material powder particles include at least one selected from the group consisting of a ceramic, a metal, a metal alloy, and an intermetallic compound.",
"11. The method of claim 1, wherein the build material powder particles include at least one selected from the group consisting of AlN, SiC, Si 3 N 4, WC, Al 2 O 3, Al(OH) 3, Fe 2 O 3, Fe 3 O 4, MgO, SiO 2, TiO 2, Y 2 O 3, ZnO, ZrO 2, BaCO 3, In 2 O 3, SnO 2, carbon, magnesium, aluminum, iron, titanium, niobium, tungsten, chromium, tantalum, cobalt, nickel, vanadium, zirconium, molybdenum, palladium, platinum, copper, silver, gold, cadmium, zinc, and combinations of these with each other and/or with a nonmetallic element or elements.",
"12. The method of claim 2, wherein the material type of the nanoparticles of at least one of the first group of nanoparticles and the second group of nanoparticles is selected from the group consisting of AlN, SiC, Si 3 N 4, WC, Al 2 O 3, Al(OH) 3, Fe 2 O 3, Fe 3 O 4, MgO, SiO 2, TiO 2, Y 2 O 3, ZnO, ZrO 2, BaCO 3, In 2 O 3, SnO 2, carbon, magnesium, aluminum, iron, titanium, niobium, tungsten, chromium, tantalum, cobalt, nickel, vanadium, zirconium, molybdenum, palladium, platinum, copper, silver, gold, cadmium, zinc, and combinations of these with each other and/or with a nonmetallic element or elements.",
"13. The method of claim 1, further comprising a step (e) further heating the article to transform the article into a sintered article.",
"14. The method of claim 13, wherein the sintered article has porosity and further comprising a step (f) infiltrating the sintered article with a hardenable infiltrant to fill in at least some of the porosity of the sintered article."
],
"description_excerpt": "The present invention relates to ink-jet printable suspensions that are useful in the three-dimensional printing process for making articles from a powder build material. The present invention also relates to articles made using such suspensions and methods of using such suspensions.\n\nThe three-dimensional printing process is a solid free-form fabrication process, i.e., a process which constructs a three-dimensional article on a layer-by-layer basis from a build material using a computer representation of the article. The build material is a powder, for example without limitation, metal powders and ceramic powders. A layer of the build material is spread across a vertically movable platform. A solution containing a binder is ink-jet printed onto the build material layer in the pattern of the first of a series of cross-sectional slices of the article that is to be built. (A binder is a substance that acts to bind the powder particles together after the solvent portion of the applied binder solution has evaporated.) The platform is then lowered an amount that is equal to a layer-thickness. Another layer of build material is applied over the first layer and binder solution is ink-jet printed onto the second layer in the pattern of the second cross-sectional layer of the series. This sequence of spread-and-print is continued until the article is constructed. More than one article can be made at a time. Eventually, the article is removed from the surrounding bed of unbonded build material and any unbonded build material that is retained in internal passages of the article is removed.",
"cpc": [
"B28B 1/001",
"B22F 1/0018",
"B22F 1/054",
"B22F 10/14",
"B22F 10/60",
"B22F 2998/10",
"B22F 3/008",
"B22F 3/1017",
"B29C 64/165",
"B29K 2031/04",
"B29K 2039/06",
"B29K 2105/0005",
"B29K 2105/251",
"B29K 2303/04",
"B29K 2303/06",
"B33Y 10/00",
"B33Y 30/00",
"C04B 2235/6026",
"C04B 35/01",
"C04B 35/053",
"C04B 35/111",
"C04B 35/14",
"C04B 35/26",
"C04B 35/453",
"C04B 35/457",
"C04B 35/46",
"C04B 35/486",
"C04B 35/505",
"C04B 35/528",
"C04B 35/5626",
"C04B 35/565",
"C04B 35/581",
"C04B 35/584",
"C04B 35/632",
"C04B 35/634",
"Y02P 10/25"
],
"ipc": [
"B28B 1/00",
"B29C 67/00",
"B22F 3/00",
"B29C 64/165",
"B33Y 10/00",
"B33Y 30/00",
"C04B 35/01",
"C04B 35/053",
"C04B 35/111",
"C04B 35/14",
"C04B 35/26",
"C04B 35/453",
"C04B 35/457",
"C04B 35/46",
"C04B 35/486",
"C04B 35/505",
"C04B 35/528",
"C04B 35/56",
"C04B 35/565",
"C04B 35/581",
"C04B 35/584",
"C04B 35/632",
"C04B 35/634"
],
"assignees": [
"ExOne Co"
],
"inventors": [
"John A. Bai",
"Kevin D. Creehan",
"Howard A. Kuhn"
],
"filing_date": "2013-09-12",
"publication_date": "2018-08-07",
"grant_date": "2018-08-07",
"priority_date": "2007-04-04",
"application_number": "US-201314025343-A",
"family_id": "52624838",
"cited_by_count": 19,
"citations": [
"US5204055A",
"US5340656A",
"US5387380A",
"US5738817A",
"US5997795A",
"US6423255B1",
"US20040145088A1",
"US20050215689A1",
"US20060251535A1",
"US20060251826A1",
"US20040262582A1",
"US20050215664A1",
"WO2006049619A1",
"US20090007724A1",
"US20060189113A1",
"US20080241404A1",
"WO2009017648A1"
]
}
Record 3,356 of 8,000 in Patents full text (MLC-0201). Request the full dataset.