MLchartDataset catalogue

Patent · US11141918B2 · B2 · US

Powder refill system for an additive manufacturing machine

(11) Publication number
US11141918B2
(21) Application number
16/761,758
(22) Filing date
2018-11-02
(30) Priority date
2017-11-10
(43) Publication date
2021-10-12
(45) Date of grant
2021-10-12
(51) IPC
B22F 3/105; B29C 64/153; B29C 64/255; B29C 64/329; B29C 64/393; B33Y 30/00; B33Y 50/02; B22F 10/20
(52) CPC
  • 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: 64/329, 64/153, 64/255, 64/343, 64/393
  • B22F Working metallic powder; manufacture of articles from metallic powder; making metallic powder; apparatus or devices specially adapted for metallic powder: 10/20, 10/28, 10/30, 10/32, 12/22, 12/52, 12/67, 12/86, 12/90, 2999/00
  • 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: 30/00, 40/00, 50/02
  • Y02P Climate change mitigation technologies in the production or processing of goods: 10/25
(73) Assignee
General Electric Co
(72) Inventors
Justin Mamrak; MacKenzie Ryan Redding
(54) Title
Powder refill system for an additive manufacturing machine
(57) Abstract

An additive manufacturing machine (910) includes a build unit (920) including a powder dispenser (906) having a hopper (904) for receiving a volume of additive powder (902). A powder supply system (1000) includes a powder supply source (940) and a conveyor (1024) for transporting dispensed additive powder (902) to the hopper (904). A supply sensing system (1060) monitors the additive powder (902) that is dispensed from the powder supply source (940) and transported to the hopper (904) and a hopper sensing system (1040) monitors the additive powder (902) within the hopper (904). Each of these systems includes one or more powder level sensors (1042, 1044, 1062), weight sensors (1050, 1064), and/or vision systems (1054, 1070) for monitoring the additive powder (902).

Full text
View on Google Patents

Claims (15)

  1. An additive manufacturing machine defining a vertical direction, the additive manufacturing machine comprising: a build unit comprising a powder dispenser including a hopper for receiving a volume of additive powder; a gantry movably supporting the build unit within the additive manufacturing machine; a hopper sensing system operably coupled to the build unit, the hopper sensing system comprising: a powder level sensor positioned for detecting a level of additive powder within the hopper; and a powder supply system comprising a vibrating conveyor extending between a powder supply source and the hopper for transporting additive powder toward the hopper.
  2. The additive manufacturing machine of claim 1, wherein the hopper sensing system further comprises: a weight sensor operably coupled to the hopper, the weight sensor configured for measuring a weight of additive powder within the hopper.
  3. The additive manufacturing machine of claim 1, wherein the hopper sensing system further comprises a hopper vision system for mapping the additive powder within the hopper.
  4. The additive manufacturing machine of claim 3, wherein the hopper vision system generates an image or visual representation of the amount and distribution of the additive powder within the hopper.
  5. The additive manufacturing machine of claim 3, wherein the hopper vision system comprises a camera or optical laser scanning system fixed to the build unit.
  6. The additive manufacturing machine of claim 1, wherein the hopper sensing system comprises a plurality of powder level sensors operably coupled with the hopper.
  7. The additive manufacturing machine of claim 1, wherein the build unit comprises a scan unit, a weight sensor being positioned between the scan unit and the powder dispenser for determining the weight of the additive powder.
  8. The additive manufacturing machine of claim 1, wherein the powder level sensor is operably coupled with the hopper and is configured for detecting when the additive powder within the hopper reaches a maximum level or a minimum level.
  9. The additive manufacturing machine of claim 1, wherein the powder supply system comprises: the powder supply source for dispensing additive powder during a refill process; the vibrating conveyor extending between the powder supply source and a discharge for transporting dispensed additive powder toward the hopper; and a supply sensing system comprising: a powder level sensor positioned for detecting a level of additive powder within the powder supply source; and a weight sensor operably coupled to the powder supply source, the weight sensor configured for measuring a weight of additive powder within the powder supply source.
  10. The additive manufacturing machine of claim 9, wherein the supply sensing system comprises a plurality of powder level sensors operably coupled with the powder supply source.
  11. The additive manufacturing machine of claim 9, wherein the supply sensing system further comprises a refill vision system positioned adjacent to the discharge of the conveyor for detecting a powder quality of the dispensed additive powder.
  12. The additive manufacturing machine of claim 11, wherein the refill vision system comprises a camera or optical laser scanning system fixed to the powder supply source.
  13. The additive manufacturing machine of claim 9, further comprising a powder quality sensor for measuring at least one characteristic of the dispensed additive powder.
  14. An additive manufacturing machine comprising: a build unit comprising a powder dispenser including a hopper for receiving a volume of additive powder; a gantry movably supporting the build unit within the additive manufacturing machine; a powder supply system comprising a vibrating conveyor extending between a powder supply source and the hopper for dispensing additive powder during a refill process; a hopper vision system for mapping the additive powder within the hopper; and a refill vision system positioned proximate the conveyor for detecting a powder quality of dispensed additive powder.
  15. The additive manufacturing machine of claim 14, further comprising a hopper sensing system operably coupled to the build unit, the hopper sensing system comprising: a powder level sensor positioned for detecting a level of additive powder within the hopper; and a weight sensor operably coupled to the hopper, the weight sensor configured for measuring a weight of additive powder within the hopper.

Description

The present applicant claims priority to U.S. Provisional Patent Application Ser. No. 62/584,152 titled “Powder Refill System for an Additive Manufacturing Machine” filed on Nov. 10, 2017, the disclosure of which is incorporated by reference herein.

The present disclosure generally relates to methods and systems adapted to perform additive manufacturing (AM) processes, for example by direct melt laser manufacturing (DMLM), on a larger scale format.

Additive manufacturing (AM) processes generally involve the buildup of one or more materials to make a net or near net shape (NNS) object, in contrast to subtractive manufacturing methods. Though “additive manufacturing” is an industry standard term (ISO/ASTM52900), AM encompasses various manufacturing and prototyping techniques known under a variety of names, including freeform fabrication, 3D printing, rapid prototyping/tooling, etc. AM techniques are capable of fabricating complex components from a wide variety of materials. Generally, a freestanding object can be fabricated from a computer aided design (CAD) model.

A particular type of AM process uses an energy source such as an irradiation emission directing device that directs an energy beam, for example, an electron beam or a laser beam, to sinter or melt a powder material, creating a solid three-dimensional object in which particles of the powder material are bonded together. AM processes may use different material systems or additive powders, such as engineering plastics, thermoplastic elastomers, metals, and ceramics.

Citations (21)

  • US4005956A
  • US5837960A
  • US6046426A
  • US6672343B1
  • US7045738B1
  • US7887316B2
  • US20090169664A1
  • EP1700686A2
  • US20080241404A1
  • US20080187423A1
  • US8260447B2
  • JP2011006719A
  • US20160074938A1
  • US20160193696A1
  • US20170259507A1
  • US20160199911A1
  • US20160339519A1
  • US20170028468A1
  • US20170072636A1
  • US20180111319A1
  • US20180281284A1
Record as JSON
{
  "publication_number": "US11141918B2",
  "country": "US",
  "kind": "B2",
  "title": "Powder refill system for an additive manufacturing machine",
  "abstract": "An additive manufacturing machine (910) includes a build unit (920) including a powder dispenser (906) having a hopper (904) for receiving a volume of additive powder (902). A powder supply system (1000) includes a powder supply source (940) and a conveyor (1024) for transporting dispensed additive powder (902) to the hopper (904). A supply sensing system (1060) monitors the additive powder (902) that is dispensed from the powder supply source (940) and transported to the hopper (904) and a hopper sensing system (1040) monitors the additive powder (902) within the hopper (904). Each of these systems includes one or more powder level sensors (1042, 1044, 1062), weight sensors (1050, 1064), and/or vision systems (1054, 1070) for monitoring the additive powder (902).",
  "claims": [
    "1. An additive manufacturing machine defining a vertical direction, the additive manufacturing machine comprising: a build unit comprising a powder dispenser including a hopper for receiving a volume of additive powder; a gantry movably supporting the build unit within the additive manufacturing machine; a hopper sensing system operably coupled to the build unit, the hopper sensing system comprising: a powder level sensor positioned for detecting a level of additive powder within the hopper; and a powder supply system comprising a vibrating conveyor extending between a powder supply source and the hopper for transporting additive powder toward the hopper.",
    "2. The additive manufacturing machine of claim 1, wherein the hopper sensing system further comprises: a weight sensor operably coupled to the hopper, the weight sensor configured for measuring a weight of additive powder within the hopper.",
    "3. The additive manufacturing machine of claim 1, wherein the hopper sensing system further comprises a hopper vision system for mapping the additive powder within the hopper.",
    "4. The additive manufacturing machine of claim 3, wherein the hopper vision system generates an image or visual representation of the amount and distribution of the additive powder within the hopper.",
    "5. The additive manufacturing machine of claim 3, wherein the hopper vision system comprises a camera or optical laser scanning system fixed to the build unit.",
    "6. The additive manufacturing machine of claim 1, wherein the hopper sensing system comprises a plurality of powder level sensors operably coupled with the hopper.",
    "7. The additive manufacturing machine of claim 1, wherein the build unit comprises a scan unit, a weight sensor being positioned between the scan unit and the powder dispenser for determining the weight of the additive powder.",
    "8. The additive manufacturing machine of claim 1, wherein the powder level sensor is operably coupled with the hopper and is configured for detecting when the additive powder within the hopper reaches a maximum level or a minimum level.",
    "9. The additive manufacturing machine of claim 1, wherein the powder supply system comprises: the powder supply source for dispensing additive powder during a refill process; the vibrating conveyor extending between the powder supply source and a discharge for transporting dispensed additive powder toward the hopper; and a supply sensing system comprising: a powder level sensor positioned for detecting a level of additive powder within the powder supply source; and a weight sensor operably coupled to the powder supply source, the weight sensor configured for measuring a weight of additive powder within the powder supply source.",
    "10. The additive manufacturing machine of claim 9, wherein the supply sensing system comprises a plurality of powder level sensors operably coupled with the powder supply source.",
    "11. The additive manufacturing machine of claim 9, wherein the supply sensing system further comprises a refill vision system positioned adjacent to the discharge of the conveyor for detecting a powder quality of the dispensed additive powder.",
    "12. The additive manufacturing machine of claim 11, wherein the refill vision system comprises a camera or optical laser scanning system fixed to the powder supply source.",
    "13. The additive manufacturing machine of claim 9, further comprising a powder quality sensor for measuring at least one characteristic of the dispensed additive powder.",
    "14. An additive manufacturing machine comprising: a build unit comprising a powder dispenser including a hopper for receiving a volume of additive powder; a gantry movably supporting the build unit within the additive manufacturing machine; a powder supply system comprising a vibrating conveyor extending between a powder supply source and the hopper for dispensing additive powder during a refill process; a hopper vision system for mapping the additive powder within the hopper; and a refill vision system positioned proximate the conveyor for detecting a powder quality of dispensed additive powder.",
    "15. The additive manufacturing machine of claim 14, further comprising a hopper sensing system operably coupled to the build unit, the hopper sensing system comprising: a powder level sensor positioned for detecting a level of additive powder within the hopper; and a weight sensor operably coupled to the hopper, the weight sensor configured for measuring a weight of additive powder within the hopper."
  ],
  "description_excerpt": "The present applicant claims priority to U.S. Provisional Patent Application Ser. No. 62/584,152 titled “Powder Refill System for an Additive Manufacturing Machine” filed on Nov. 10, 2017, the disclosure of which is incorporated by reference herein.\n\nThe present disclosure generally relates to methods and systems adapted to perform additive manufacturing (AM) processes, for example by direct melt laser manufacturing (DMLM), on a larger scale format.\n\nAdditive manufacturing (AM) processes generally involve the buildup of one or more materials to make a net or near net shape (NNS) object, in contrast to subtractive manufacturing methods. Though “additive manufacturing” is an industry standard term (ISO/ASTM52900), AM encompasses various manufacturing and prototyping techniques known under a variety of names, including freeform fabrication, 3D printing, rapid prototyping/tooling, etc. AM techniques are capable of fabricating complex components from a wide variety of materials. Generally, a freestanding object can be fabricated from a computer aided design (CAD) model.\n\nA particular type of AM process uses an energy source such as an irradiation emission directing device that directs an energy beam, for example, an electron beam or a laser beam, to sinter or melt a powder material, creating a solid three-dimensional object in which particles of the powder material are bonded together. AM processes may use different material systems or additive powders, such as engineering plastics, thermoplastic elastomers, metals, and ceramics.",
  "cpc": [
    "B29C 64/329",
    "B22F 10/20",
    "B22F 10/28",
    "B22F 10/30",
    "B22F 10/32",
    "B22F 12/22",
    "B22F 12/52",
    "B22F 12/67",
    "B22F 12/86",
    "B22F 12/90",
    "B22F 2999/00",
    "B29C 64/153",
    "B29C 64/255",
    "B29C 64/343",
    "B29C 64/393",
    "B33Y 30/00",
    "B33Y 40/00",
    "B33Y 50/02",
    "Y02P 10/25"
  ],
  "ipc": [
    "B22F 3/105",
    "B29C 64/153",
    "B29C 64/255",
    "B29C 64/329",
    "B29C 64/393",
    "B33Y 30/00",
    "B33Y 50/02",
    "B22F 10/20"
  ],
  "assignees": [
    "General Electric Co"
  ],
  "inventors": [
    "Justin Mamrak",
    "MacKenzie Ryan Redding"
  ],
  "filing_date": "2018-11-02",
  "publication_date": "2021-10-12",
  "grant_date": "2021-10-12",
  "priority_date": "2017-11-10",
  "application_number": "US-201816761758-A",
  "family_id": "64362724",
  "cited_by_count": 2,
  "citations": [
    "US4005956A",
    "US5837960A",
    "US6046426A",
    "US6672343B1",
    "US7045738B1",
    "US7887316B2",
    "US20090169664A1",
    "EP1700686A2",
    "US20080241404A1",
    "US20080187423A1",
    "US8260447B2",
    "JP2011006719A",
    "US20160074938A1",
    "US20160193696A1",
    "US20170259507A1",
    "US20160199911A1",
    "US20160339519A1",
    "US20170028468A1",
    "US20170072636A1",
    "US20180111319A1",
    "US20180281284A1"
  ]
}

Record 1,454 of 8,000 in Patents full text (MLC-0201). Request the full dataset.