IP Library Granted Patent US 12,697,684
Granted Patent B2
US 12,697,684 · App. 18/216,720 · Granted Aug 4, 2026

Three-dimensional printing systems and methods of their use

Inventors: Benyamin Buller (Cupertino, CA); Zachary Ryan Murphree (San Jose, CA)
Assignee: Velo3D, Inc.
B23K26/342B23K26/0006B23K26/082B23K26/0821B23K26/0853B23K26/127B23K26/142B23K26/707B33Y30/00B23K2103/04B23K2103/05B23K2103/10B23K2103/14B23K2103/26B33Y50/02
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Quick Facts
Patent No.
US 12,697,684
App. No.
18/216,720
Filed
Jun 30, 2023
Granted
Aug 4, 2026
Kind
B2
Art Unit
3761
USPC
219/76.1
Abstract

The present disclosure describes three-dimensional (3D) printing apparatuses, processes, software, and systems for producing high quality 3D objects. Described herein are printing apparatuses features that facilitate control of debris within an enclosure where one or more printing operations are performed.

Claims (25)

1 . An apparatus for three-dimensional (3D) printing a 3D object, the apparatus comprising:

one or more controllers configured to:

(i) couple to a power source;

(ii) operationally coupled with the elevator, the layer forming device, the one or more galvanometer scanners, and the couple with a gas flow system of a 3D printer; and

(iii) the gas flow system to provide flow of gas such that during the printing (A) the flow of the gas is across at least a portion of a processing cone region of an energy beam, the processing cone being in a processing chamber in which the 3D object is printed from a powder bed using the energy beam, and (B) the flow of the gas (I) is maintained at a debris concentration of from about one milligrams per cubic meter to about a thousand milligrams per cubic meter (a) in the processing cone region and (b) at least about 20 millimeters above a surface of the powder bed, (II) maintains a debris concentration for debris particles having a fundamental length scale of at least about 0.5 micrometers at a concentration of about 0.5 particles per cubic centimeter to about 1 , 000 particles per cubic centimeter, (III) a number of debris particles having the fundamental length scale of at least about 0.5 micrometers encountered by the energy beam is from about 10 to about 10,000,

wherein the 3D printing results in the 3D object comprising elemental metal or metal alloy, the 3D object having a porosity of at most about one percent ( 1 %) by volume.

2 . The apparatus of claim 1 , wherein during the printing, the one or more controllers are configured to direct the gas flow system to facilitate movement of the debris at least in the processing cone region; optionally wherein the movement of the debris corresponds to a turbulent movement at least in the processing cone region; and optionally wherein the turbulent movement comprising a cyclic movement.

3 . The apparatus of claim 2 , wherein the one or more controllers are configured to direct the gas flow system to facilitate the turbulent movement comprising a backflow or a standing vortex.

4 . The apparatus of claim 1 , wherein an internal shape of the processing chamber is configured to facilitate movement of the debris.

5 . The apparatus of claim 1 , wherein a wall of the processing chamber is configured to facilitate movement of the debris.

6 . The apparatus of claim 5 , wherein the wall of the processing chamber is a side wall.

7 . The apparatus of claim 1 , wherein the one or more controllers are configured to direct the gas flow such that it has a peak horizontal velocity height that varies along a lateral length of the powder bed and/or a platform supporting the 3D object during the printing.

8 . The apparatus of claim 1 , wherein the debris concentration within the at least the portion of the processing cone region varies during the printing.

9 . The apparatus of claim 1 , wherein the debris within the processing chamber is formed during transformation of at least the portion of the powder bed to a transformed material as part of the 3D object.

10 . The apparatus of claim 1 , wherein the debris concentration is present at a height of at least about 30 millimeters above the surface of the powder bed.

11 . The apparatus of claim 1 , wherein the debris concentration is present at a height of at least about 50 millimeters above the surface of the powder bed.

12 . The apparatus of claim 1 , wherein the gas flow system is configured to provide at least a portion of the flow of the gas in a direction that is substantially parallel to the surface of the powder bed and/or to a platform configured to support the 3D object during the 3D printing; and optionally wherein the flow of gas has a peak horizontal velocity ranging from about 0.2 to about 2 meters per second (m/s).

13 . The apparatus of claim 1 , wherein the flow of gas has a peak horizontal velocity within a height of about 15 and about 100 millimeters (mm) above the surface of the powder bed and/or above a platform configured to support the 3D object during the 3D printing.

14 . The apparatus of claim 1 , wherein the energy beam is configured to generate a laser beam having a power density ranging from about 100 Kilo Watts per centimeter squared (kW/cm 2 ) to about 30,000 kW/cm, as measured at the surface of the powder bed.

15 . The apparatus of claim 11 , further comprising an optical system configured to modify at least one characteristic of the energy beam, wherein the optical system is configured to generate a focused or a defocused energy beam at the surface of the powder bed.

16 . The apparatus of claim 1 , wherein during the printing, the gas flow system is configured change a velocity of the flow of gas within the processing chamber during the 3D printing.

17 . The apparatus of claim 1 , wherein the debris particles comprise at least about 10% metal oxide measured as volume per volume.

18 . The apparatus of claim 1 , wherein during the 3D printing, the one or more controllers are configured to operatively coupled to the energy beam and direct the energy beam to transform least about cubic centimeter per hour (cm 3 /hr) of the molten material per laser.

19 . A method of 3D printing, the method comprising: (a) providing the apparatus of claim 1 , and (b) using the apparatus to print the 3D object.

20 . Non-transitory computer readable program instructions that, when read by one or more processors operatively coupled to the energy beam, cause the one or more processors to execute one or more operations comprising operation (c) of claim 1 , the program instructions being inscribed on at least one non-transitory computer readable medium.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2026
From: BULLER, BENYAMIN; MURPHREE, ZACHARY RYAN
To: VELO3D INC.
Reel/Frame 074975/0218 →
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Dec 12, 2024
From: VELO3D, INC.
To: ARRAYED NOTES ACQUISITION CORP., AS COLLATERAL AGENT
Reel/Frame 069604/0258 →
Continuity (17)
Continuation 18121663 · Mar 15, 2023
Continuation 18070518 · Nov 29, 2022
Continuation 17887660 · Aug 15, 2022
Continuation 17739331 · May 9, 2022
Continuation 17587068 · Jan 28, 2022
Continuation 17502434 · Oct 15, 2021
Continuation 17363607 · Jun 30, 2021
Continuation 17208344 · Mar 22, 2021
Continuation 17117945 · Dec 10, 2020
Continuation 17005454 · Aug 28, 2020
Continuation 16872646 · May 12, 2020
Continuation 16749899 · Jan 22, 2020
Continuation 16590868 · Oct 2, 2019
Continuation 16449965 · Jun 24, 2019
Continuation 16291759 · Mar 4, 2019
Continuation 15855744 · Dec 27, 2017
Related Publication 20240024984A1 · Jan 25, 2024
References Cited (4)
US 20120251378A1 · Abe · 2012 [cited by examiner]
US 20160339639A1 · Chivel · 2016 [cited by examiner]
US 20180015670A1 · Gu · 2018 [cited by examiner]
US 20190232429A1 · Buller · 2019 [cited by examiner]