Powder feeder system and method for recycling metal powder
12259185 ยท 2025-03-25
Assignee
Inventors
- Paul Meese (Healdsburg, CA, US)
- Matthew Charles (Cloverdale, CA, US)
- Sonia Zacher (Cloverdale, CA, US)
- Daniel Mendez (Healdsburg, CA, US)
Cpc classification
C22B9/22
CHEMISTRY; METALLURGY
F27B3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B14/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B2003/125
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P10/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F27D3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C22B7/003
CHEMISTRY; METALLURGY
International classification
F27B3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C22B34/12
CHEMISTRY; METALLURGY
C22B9/22
CHEMISTRY; METALLURGY
F27B14/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A powder feeder system for a foundry system having a mixing hearth includes a housing assembly, and a feeder assembly in the housing assembly having a moveable barrel feeder for feeding a pre-weighed charge of metal powder into the mixing hearth of the foundry system during operation thereof. A method for recycling metal powder includes the steps of melting a content of the mixing hearth completely; and then feeding the metal powder into the mixing hearth while the contents of the mixing hearth are still molten using the powder feeder system.
Claims
1. A powder feeder system for a foundry system having a mixing hearth configured to form a molten metal comprising: a housing assembly comprising a plurality of tubular members configured to provide a sealed flow path for an additive manufacturing metal powder to the mixing hearth, the tubular members including a discharge conduit configured to discharge the additive manufacturing metal powder into the mixing hearth; and a feeder assembly in the housing assembly comprising a moveable barrel feeder in flow communication with the discharge conduit configured to feed a pre-weighed charge of the additive manufacturing metal powder on demand through the discharge conduit into the mixing hearth of the foundry system during operation thereof, such that the additive manufacturing metal powder penetrates a surface of the molten metal in the mixing hearth.
2. The powder feeder system of claim 1 wherein the feeder assembly comprises a drive assembly configured to position the barrel feeder in a loading position in which the pre-weighed charge of the additive manufacturing metal powder is loaded into the barrel feeder, or a feeding position in which the pre-weighed charge of the additive manufacturing metal powder is discharged through the discharge conduit into the mixing hearth.
3. The powder feeder system of claim 2 wherein the barrel feeder of the feeder assembly comprises a hollow cylindrical member having sidewalls, sealed end plates and an internal chamber for the additive manufacturing metal powder.
4. The powder feeder system of claim 3 wherein the barrel feeder includes a feeder port opening extending through the sidewalls into the internal chamber thereof.
5. The powder feeder system of claim 4 wherein the housing assembly includes a hopper configured to feed the additive manufacturing metal powder into the feeder port opening of the barrel feeder.
6. The powder feeder system of claim 5 wherein the additive manufacturing metal powder comprises a recycled metal powder.
7. The powder feeder system of claim 6 wherein the additive manufacturing metal powder comprises a metal selected from the group consisting of titanium, zirconium, nickel, cobalt and alloys thereof.
8. A powder feeder system for a foundry system having a mixing hearth configured to form a molten metal comprising: a housing assembly comprising a plurality of tubular members configured to provide a sealed flow path for an additive manufacturing metal powder to the mixing hearth, the tubular members including a discharge conduit configured to discharge the additive manufacturing metal powder into the mixing hearth; and a feeder assembly in the housing assembly configured to feed the additive manufacturing metal powder into the mixing hearth of the foundry system during operation thereof, the feeder assembly comprising a moveable barrel feeder in flow communication with the discharge conduit, and a drive assembly configured to position the barrel feeder in a loading position in which a pre-weighed charge of the additive manufacturing metal powder is loaded into the barrel feeder, or a feeding position in which the pre-weighed charge of the metal powder is directed through the discharge conduit into the mixing hearth such that the additive manufacturing metal powder penetrates a surface of the molten metal in the mixing hearth, the barrel feeder comprising a hollow cylindrical member having sidewalls, sealed end plates, an internal chamber for the additive manufacturing metal powder, and a feeder port opening extending through the sidewalls into the internal chamber thereof.
9. A powder feeder system for a foundry system having a mixing hearth comprising: a housing assembly comprising a plurality of tubular members configured to provide a sealed flow path for a metal powder to the mixing hearth, the tubular members including a discharge conduit in proximity to the mixing hearth; and a feeder assembly in the housing assembly configured to feed a metal powder into the mixing hearth of the foundry system during operation thereof, the feeder assembly comprising a moveable barrel feeder in flow communication with the discharge conduit, and a drive assembly configured to position the barrel feeder in a loading position in which a pre-weighed charge of the metal powder is loaded into the barrel feeder, or a feeding position in which the metal powder is inserted into the mixing hearth, the barrel feeder comprising a hollow cylindrical member having sidewalls, sealed end plates, an internal chamber for the metal powder, and a feeder port opening extending through the sidewalls into the internal chamber thereof, wherein the housing assembly comprises a cross fitting wherein the barrel feeder of the feeder assembly is mounted for rotation.
10. A powder feeder system for a foundry system having a mixing hearth comprising: a housing assembly comprising a plurality of tubular members configured to provide a sealed flow path for a metal powder to the mixing hearth, the tubular members including a discharge conduit in proximity to the mixing hearth; and a feeder assembly in the housing assembly configured to feed a metal powder into the mixing hearth of the foundry system during operation thereof, the feeder assembly comprising a moveable barrel feeder in flow communication with the discharge conduit, and a drive assembly configured to position the barrel feeder in a loading position in which a pre-weighed charge of the metal powder is loaded into the barrel feeder, or a feeding position in which the metal powder is inserted into the mixing hearth, the barrel feeder comprising a hollow cylindrical member having sidewalls, sealed end plates, an internal chamber for the metal powder, and a feeder port opening extending through the sidewalls into the internal chamber thereof, wherein the drive assembly comprises a bell crank having a support plate, a hydraulic cylinder attached to the support plate, and at least one linkage attached to a shaft on the barrel feeder.
11. The powder feeder system of claim 10 wherein the housing assembly includes a hopper configured to feed the metal powder into the feeder port opening of the barrel feeder.
12. A powder feeder system for a foundry system having a mixing hearth comprising: a housing assembly comprising a plurality of tubular members configured to provide a sealed flow path for a metal powder to the mixing hearth, the tubular members including a discharge conduit in proximity to the mixing hearth; and a feeder assembly in the housing assembly configured to feed a metal powder into the mixing hearth of the foundry system during operation thereof, the feeder assembly comprising a moveable barrel feeder in flow communication with the discharge conduit, and a drive assembly configured to position the barrel feeder in a loading position in which a pre-weighed charge of the metal powder is loaded into the barrel feeder, or a feeding position in which the metal powder is inserted into the mixing hearth, the barrel feeder comprising a hollow cylindrical member having sidewalls, sealed end plates, an internal chamber for the metal powder, and a feeder port opening extending through the sidewalls into the internal chamber thereof, wherein the foundry system comprises a view port and the housing assembly is mounted to the view port.
13. The powder feeder system of claim 12 wherein the metal powder comprises a metal selected from the group consisting of titanium, zirconium, nickel, cobalt and alloys thereof.
14. A method for recycling an additive manufacturing metal powder comprising: providing a foundry system comprising a heat source and a mixing hearth contained in a sealed reaction chamber; providing a powder feeder system for the foundry system comprising a housing assembly comprising a plurality of tubular members configured to provide a sealed flow path for the additive manufacturing metal powder to the mixing hearth, and a feeder assembly having a moveable barrel feeder in the housing assembly for feeding a pre-weighed charge of the additive manufacturing metal powder into the mixing hearth of the foundry system during operation thereof; melting a content of the mixing hearth to form a pool of molten metal; and feeding the pre-weighed charge of the additive manufacturing metal powder into the mixing hearth, such that the additive manufacturing metal powder penetrates a surface of the molten metal in the mixing hearth.
15. The method of claim 14 further comprising turning off the heat source during the feeding step.
16. The method of claim 14 wherein the additive manufacturing metal powder comprises a recycled metal powder.
17. The method of claim 14 wherein the additive manufacturing metal powder comprises a metal selected from the group consisting of titanium, zirconium, nickel, cobalt and alloys thereof.
18. The method of claim 14 wherein the additive manufacturing metal powder comprises a recycled metal powder having particles with a diameter of from 1 m to 4760 m.
19. The method of claim 14 wherein the content of the mixing hearth comprises a feed stock or a recycled metal having a desired chemical composition.
20. The method of claim 14 wherein the feeder assembly comprises a drive assembly configured to position the barrel feeder in a loading position in which a pre-weighed charge of the additive manufacturing metal powder is loaded into the barrel feeder, or a feeding position in which the pre-weighed charge of the additive manufacturing metal powder is discharged through the discharge conduit into the mixing hearth.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(14) Referring to
(15) The mixing hearth 16 is contained within a sealed chamber 18 and includes walls 20 configured to form a melting cavity 22 for mixing and melting the metal powder 14 to form a pool of molten metal 24. The mixing hearth 16 also includes a pour notch 26 for pouring the pool of molten metal 24 into another receptacle (not shown) following the melting process. The foundry system 12 also includes a heat source 28, such as a plasma torch system, a plasma transferred arc system, an electric arc system, an induction system, a photon system, or an electron beam energy system, or a combination of one or more of these systems. The foundry system 12 also includes an induction coil 30 on the mixing hearth 16 and an external wall 32. U.S. Pat. No. 9,925,591 B2 to Eonta et al., which is incorporated herein by reference, discloses further components of the foundry system 12.
(16) Still referring to
(17) Referring to
(18) As shown in
(19) As shown in
(20) As shown in
(21) Referring to
(22) In the illustrative embodiment the drive assembly 70 comprises a hyrdraulically actuated bell crank, but can also comprise any other known drive system such as a mechanical and or electrical device which can be used to actuate the barrel feeder 40 on demand. As shown in
(23) As shown in
(24) Referring again to
(25) Method. The powder feeding system 10 (
(26) An operational sequence can include the following steps:
(27) A. Loading the pre-weighed charge 42 (
(28) B. Sealing the reaction chamber 18 (
(29) C. Melting a content of the mixing hearth 16 (
(30) D. Feeding the metal powder 14 (
(31) Example. All testing was done with 2 kg of 75-150 powder Inconel 718 from heat 181229-R1 and a water contaminated Inconel 718 skull from a previous heat. During the initial test, the powder feeder system 10 (
(32) A method for recycling metal powder 14 included the steps of melting the contents of the mixing hearth 16 (
(33) While a number of exemplary aspects and embodiments have been discussed above, those of skill in the art will recognize certain modifications, permutations, additions and subcombinations thereof. It is therefore intended that the following appended claims and claims hereafter introduced are interpreted to include all such modifications, permutations, additions and sub-combinations as are within their true spirit and scope.