IP Library Granted Patent US 12,397,372
Granted Patent B2
US 12,397,372 · App. 17/269,654 · Granted Aug 26, 2025

Additive manufacture

Inventors: Stewart Wynn Williams (Cranfield, GB); Wojciech Jerzy Suder (Cranfield, GB)
Assignee: WAAM3D Limited
B23K26/342B22F10/28B22F12/13B22F12/45B22F12/47B22F12/50B23K26/0608B23K26/0626B23K26/08B33Y10/00B33Y30/00
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Quick Facts
Patent No.
US 12,397,372
App. No.
17/269,654
Granted
Aug 26, 2025
Kind
B2
Abstract

A method of producing a 3D article by additive manufacture is provided. The method includes the steps of: forming a meltpool in an already-existing part of the article, and moving the meltpool relative thereto; feeding a directed feedstock into the moving meltpool to deposit and fuse a layer of material on the already-existing part; and repeating the forming and moving and feeding steps to build up successive layers of material. In performance of the forming and moving step: a first energy source impinges at a first region of the already-existing part which moves with and leads the meltpool, whereby the first energy source initiates the formation of the meltpool; and a second energy source impinges at a second region on the already-existing part which moves with and follows the first region, whereby the second energy source grows the lateral width of the meltpool before the feedstock is fed therein.

Claims (56)

1. A method of producing a 3D article by additive manufacture, wherein the method includes the steps of:

forming a meltpool in an already-existing part of the article, and moving the meltpool relative thereto;

feeding a directed feedstock into the moving meltpool to deposit and fuse a layer of material on the already-existing part; and

repeating the forming and moving and feeding steps to build up successive layers of material, and thereby produce the 3D article; and

wherein, in performance of the forming and moving step:

a first energy source is directed onto the already-existing part, the first energy source impinging at a first region which moves with and leads the meltpool, whereby the first energy source initiates the formation of the meltpool, and wherein the first energy source is a plasma transferred arc;

a second energy source is directed onto the already-existing part, the second energy source impinging at a second region which moves with and follows the first region, whereby the second energy source grows the lateral width of the meltpool before the feedstock is fed therein; and

the energy profile of the impinging energy of the second energy source is weighted to opposite lateral sides of the meltpool.

2. The method of claim 1 , wherein the second energy source is one or more lasers.

3. The method of claim 1 , wherein the energy profile or the power of the impinging energy of the second energy source is adjusted to vary the lateral growth of the meltpool.

4. The method claim 1 , wherein the feedstock is a wire or tape feedstock.

5. The method of claim 1 which includes the further step of:

impinging a third energy source onto the directed feedstock to melt the feedstock as it is fed into the moving meltpool.

6. The method of claim 5 , wherein the third energy source is one or more lasers.

7. The method of claim 5 , wherein the energy profile of the impinging energy of the third energy source is adjusted to compensate for changes in the shape, size and/or feed rate of the feedstock.

8. The method of claim 5 , wherein the power of the third energy source is adjusted to compensate for changes in the feed rate of the feedstock.

9. The method of claim 5 , further including the step of preheating the feedstock.

10. A system for producing a 3D article by additive manufacture in which a meltpool is formed in an already-existing part of the article, and moved relative thereto, a directed feedstock is fed into the moving meltpool to deposit and fuse a layer of material on the already-existing part, and the forming and moving and feeding are repeated to build up successive layers of material, and thereby produce the 3D article, the system comprising:

a first energy source configured to be directed onto the already existing part, wherein the first energy source is a plasma transferred arc;

a second energy source configured to be directed onto the already existing part;

a feedstock directing arrangement; and

a computer controller adapted to control movement of the first energy source, the second energy source and the feedstock directing arrangement relative to the already-existing part such that: the first energy source impinges at a first region which moves with and leads the meltpool whereby the first energy source initiates the formation of the meltpool, the second energy source impinges at a second region which moves with and follows the first region to grow the lateral width of the meltpool before receipt of the directed feedstock into the moving meltpool, and the directed feedstock is fed into the moving meltpool;

wherein the energy profile of the impinging energy of the second energy source is weighted to opposite lateral sides of the meltpool.

11. The system of claim 10 , wherein the computer controller is further adapted to adjust the energy profile and/or the power of the impinging energy of the second energy source to vary the growth of the meltpool.

12. The system of claim 10 , wherein the system further comprises a third energy source, and wherein the computer controller is further adapted to control movement of the third energy source relative to the already-existing part such that the third energy source impinges the directed feedstock to melt the feedstock as it is fed into the moving meltpool.

13. The system of 12 , wherein the computer controller is further adapted to adjust the energy profile of the impinging energy of the third energy source to compensate for changes in the shape and/or size of the feedstock.

14. A method of producing a 3D article by additive manufacture, wherein the method includes the steps of:

forming a meltpool in an already-existing part of the article, and moving the meltpool relative thereto;

feeding a directed feedstock into the moving meltpool to deposit and fuse a layer of material on the already-existing part; and

repeating the forming and moving and feeding steps to build up successive layers of material, and thereby produce the 3D article; and

wherein, in performance of the forming and moving step:

a first energy source is directed onto the already-existing part, the first energy source impinging at a first region which moves with and leads the meltpool, whereby the first energy source initiates the formation of the meltpool, and wherein the first energy source is a plasma transferred arc;

a second energy source is directed onto the already-existing part, the second energy source impinging at a second region which moves with and follows the first region, whereby the second energy source grows the lateral width of the meltpool before the feedstock is fed therein; and

the energy profile and/or the power of the impinging energy of the second energy source is adjusted to vary the lateral growth of the meltpool.

15. A method of producing a 3D article by additive manufacture, wherein the method includes the steps of:

forming a meltpool in an already-existing part of the article, and moving the meltpool relative thereto;

feeding a directed feedstock into the moving meltpool to deposit and fuse a layer of material on the already-existing part; and

repeating the forming and moving and feeding steps to build up successive layers of material, and thereby produce the 3D article; and

wherein, in performance of the forming and moving step:

a first energy source is directed onto the already-existing part, the first energy source impinging at a first region which moves with and leads the meltpool, whereby the first energy source initiates the formation of the meltpool, and wherein the first energy source is a plasma transferred arc; and

a second energy source is directed onto the already-existing part, the second energy source impinging at a second region which moves with and follows the first region, whereby the second energy source grows the lateral width of the meltpool before the feedstock is fed therein; and

wherein the method includes the further step of:

impinging a third energy source onto the directed feedstock to melt the feedstock as it is fed into the moving meltpool.

16. A system for producing a 3D article by additive manufacture in which a meltpool is formed in an already-existing part of the article, and moved relative thereto, a directed feedstock is fed into the moving meltpool to deposit and fuse a layer of material on the already-existing part, and the forming and moving and feeding are repeated to build up successive layers of material, and thereby produce the 3D article, the system comprising:

a first energy source configured to be directed onto the already-existing part, wherein the first energy source is a plasma transferred arc;

a second energy source configured to be directed onto the already-existing part;

a feedstock directing arrangement; and

a computer controller adapted to control movement of the first energy source, the second energy source and the feedstock directing arrangement relative to the already-existing part such that: the first energy source impinges at a first region which moves with and leads the meltpool whereby the first energy source initiates the formation of the meltpool, the second energy source impinges at a second region which moves with and follows the first region to grow the lateral width of the meltpool before receipt of the directed feedstock into the moving meltpool, and the directed feedstock is fed into the moving meltpool;

wherein the computer controller is further adapted to adjust the energy profile and/or the power of the impinging energy of the second energy source to vary the growth of the meltpool.

17. A system for producing a 3D article by additive manufacture in which a meltpool is formed in an already-existing part of the article, and moved relative thereto, a directed feedstock is fed into the moving meltpool to deposit and fuse a layer of material on the already-existing part, and the forming and moving and feeding are repeated to build up successive layers of material, and thereby produce the 3D article, the system comprising:

a first energy source configured to be directed onto the already-existing-pa part, wherein the first energy source is a plasma transferred arc;

a second energy source configured to be directed onto the already-existing part;

a feedstock directing arrangement;

a computer controller adapted to control movement of the first energy source, the second energy source and the feedstock directing arrangement relative to the already-existing part such that: the first energy source impinges at a first region which moves with and leads the meltpool whereby the first energy source initiates the formation of the meltpool, the second energy source impinges at a second region which moves with and follows the first region to grow the lateral width of the meltpool before receipt of the directed feedstock into the moving meltpool, and the directed feedstock is fed into the moving meltpool; and

a third energy source;

wherein the computer controller is further adapted to control movement of the third energy source relative to the already-existing part such that the third energy source impinges the directed feedstock to melt the feedstock as it is fed into the moving meltpool.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2023
From: CRANFIELD UNIVERSITY
To: WAAM3D LIMITED
Reel/Frame 063305/0663 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 20, 2021
From: WILLIAMS, STEWART WYNN; SUDER, WOJCIECH JERZY
To: CRANFIELD UNIVERSITY
Reel/Frame 056306/0148 →
Priority Claims (1)
GB 1813834 · Aug 24, 2018 · national
Continuity (1)
Related Publication 20210252642A1 · Aug 19, 2021
References Cited (19)
US 20020166896A1 · Mazumder · 2002 [cited by examiner]
US 20070023403A1 · Emiljanow · 2007 [cited by examiner]
US 20110215074A1 · Wang · 2011 [cited by examiner]
US 20130105447A1 · Haake · 2013 [cited by examiner]
US 20140008334A1 · Ash · 2014 [cited by examiner]
US 20160318130A1 · Stempfer · 2016 [cited by examiner]
US 20170304923A1 · Ash · 2017 [cited by applicant]
US 20170341180A1 · Zediker et al. · 2017 [cited by applicant]
US 20170368637A1 · Giese · 2017 [cited by examiner]
US 20190176267A1 · Crews · 2019 [cited by examiner]
CN 104985327A · 2015 [cited by applicant]
EP 3184208 · 2017 [cited by applicant]
EP 3196001 · 2017 [cited by applicant]
WO WO2006133034 · 2006 [cited by applicant]
WO WO2006133034A1 · 2006 [cited by examiner]
International Search Report and Written Opinion, International Application No. PCT/EP2019/069595, mailed on Oct. 9, 2019, 13 pages. [cited by applicant]
UKIPO Search Report, Application No. GB113834.7, dated Jan. 23, 2019, 5 pages. [cited by applicant]
Chinese First Office Action, Application No. 201980056006.1, dated Mar. 16, 2022, 14 pages. Machine translation. [cited by applicant]
IP India Office Action, Application No. 202117007315, dated Sep. 13, 2022, 6 pages. English translation. [cited by applicant]