Powder regulating device
US-2024316648-A1 · Sep 26, 2024 · US
US2017151610A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2017151610-A1 |
| Application number | US-201615201848-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jul 5, 2016 |
| Priority date | Mar 12, 2013 |
| Publication date | Jun 1, 2017 |
| Grant date | — |
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Official abstract text for this publication.
A 3D printing system may print a desired 3D object. A fusible powder may fuse when subjected to a fusing condition. A deposition system may deposit portions of the fusible powder on a substrate. A fusing system may apply the fusing condition to the deposited fusible powder. Inhibitor material may not fuse when subjected to the fusing condition. An insertion system may insert a portion of the inhibitor material between portions of the deposited fusible powder after having been deposited by the deposition system, but before being fused by the fusing system, so as to form a boundary that defines at least a portion of a surface of the desired 3D object.
Opening claim text (preview).
1 . (canceled) 2 . A 3D printing system for printing a desired 3D object comprising: a deposition system that deposits portions of a first material on a substrate; an insertion system that inserts a portion of a second material between portions of the deposited first material after having been deposited by the deposition system; and a fusing system that applies a fusing condition to the materials, wherein: the insertion system includes a nozzle that has an interior passageway through which the second material travels; the nozzle has a lower end that includes: a leading edge in the shape of a plow that can plow a trough between portions of the deposited first material when the lower end of the nozzle traverses such portions; and a rearward-facing opening though which the second material can be ejected from the nozzle and into the trough immediately after the trough is plowed by the leading edge, thereby filling the trough as the trough is plowed; the insertion system causes: the leading edge to plow through portions of the first material; and the opening to eject the second material from the nozzle immediately after the trough is plowed by the leading edge, thereby filling the trough as the trough is plowed; and application of the fusing condition causes the desired 3D object to fuse. 3 . The 3D printing system of claim 2 wherein the second material is a powder. 4 . The 3D printing system of claim 3 wherein the insertion system includes a vibrating element that controls the flow of the second material. 5 . The 3D printing system of claim 2 wherein the second material is a liquid. 6 . The 3D printing system of claim 2 wherein the insertion system only uses the force of gravity to cause the second material to travel through the passageway and to be ejected into the trough. 7 . The 3D printing system of claim 2 wherein the insertion system includes rotary axis actuator that controllably rotates the leading edge of the nozzle so as cause the leading edge to always be leading the direction of the nozzle movement. 8 . The 3D printing system of claim 2 wherein: the deposition system deposits the first material in stacked layers; and the insertion system inserts the second material between the portions of the first material in each stacked layer after the deposition system deposits the stacked layer into which the second material is inserted and before the deposition system deposits the next stacked layer. 9 . The 3D printing system of claim 2 wherein the insertion system inserts the second material while the lower end of the nozzle is moving horizontally and while the lower end of the nozzle is moving vertically. 10 . The 3D printing system of claim 9 wherein the insertion system inserts the second material between portions of multiple layers of the first material, beginning to do so after all of the multiple layers have been deposited by the 3D printer. 11 . The 3D printing system of claim 10 further comprising guy wires attached to the nozzle that prevent the nozzle from bending while the second material is being inserted. 12 . The 3D printing system of claim 2 wherein the insertion sys e dudes a six-axis gantry control system that separately controls six axes of nozzle movement. 13 . The 3D printing system of claim 2 wherein the rearward-facing opening has an adjustable height. 14 . The 3D printing system of claim 13 wherein the height of the rearward-facing opening is controlled by a movable gate. 15 . The 3D printing system of claim 2 wherein the fusing condition is sintering. 16 . The 3D printing system of claim 15 wherein the first material includes metallic powder. 17 . The 3D printing system of claim 15 wherein the second material is a powdered ceramic. 18 . The 3D printing system of claim 17 wherein the second material includes magnesium oxide or ilmenite. 19 . The 3D printing system of claim 2 wherein the fusible condition is exposure to a liquid. 20 . The 3D printing system of claim 19 wherein the first material and the liquid each include complementary component parts of an epoxy. 21 . The 3D printing system of claim 15 wherein the first material includes CERAMIC powder. 22 . The 3D printing system of claim 15 wherein the second material is a METALLIC powder.
using layers of powder being selectively joined, e.g. by selective laser sintering or melting · CPC title
by jetting of binder onto a bed of metal powder · CPC title
Nozzles · CPC title
comprising a grain growth inhibitor · CPC title
Rapid manufacturing of 3D objects by additive depositing, agglomerating or laminating of material (selective deposition modelling of metallic powder B22F10/00; rapid manufacturing of 3D objects in general and in particular of plastics B29C64/00) · CPC title
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