Method for processing a part with an energy beam
10076786 ยท 2018-09-18
Assignee
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B23K26/082
PERFORMING OPERATIONS; TRANSPORTING
B23K25/005
PERFORMING OPERATIONS; TRANSPORTING
F05D2230/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F10/28
PERFORMING OPERATIONS; TRANSPORTING
B22F10/366
PERFORMING OPERATIONS; TRANSPORTING
B22F10/25
PERFORMING OPERATIONS; TRANSPORTING
F01D5/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B23K26/08
PERFORMING OPERATIONS; TRANSPORTING
B23K25/00
PERFORMING OPERATIONS; TRANSPORTING
B22F3/105
PERFORMING OPERATIONS; TRANSPORTING
F01D5/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23K26/082
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method of processing a component (10) with an energy beam (13) comprises simultaneously scanning and heating a first portion (12) and second adjacent portion (14) of the component with an energy beam (13) At a point or area of divergence of the portions of the component, the energy beam is controlled to repeatedly move back and forth between the portions of the component. This simultaneous heating of adjacent portions (12, 14) of the component is configured to keep a thermally-induced distortion of the component within a predefined tolerance. This dual-path processing may be performed on a bed of fluidized powdered material including a powdered metal material and a powdered flux material.
Claims
1. A process comprising: providing a powdered metal material to develop adjacent metal substrates; providing a substantially convex metal substrate; providing a substantially concave metal substrate, the convex metal substrate and the concave metal substrate connected to one another at opposite ends to define a continuous metal substrate; selecting a first beam path starting point for a first beam path and a second beam path starting point for a second beam path; activating and directing an energy beam at the first beam path starting point and traversing a portion of the first beam path; redirecting the energy beam to the second beam starting point and traversing a portion of the second beam path; and cycling the energy beam back and forth between the first beam path and the second beam path until a layer of material is deposited on the complete continuous metal substrate, wherein one of the first beam path and the second beam path extends substantially along the convex metal substrate and the other of the first beam path and the second beam path extends substantially along the concave metal substrate such that the first beam path and the second beam path cooperate to extend along the entire continuous metal substrate, and wherein the simultaneous heating is configured to keep a thermally-induced distortion of the one or both of the substrates within a predefined tolerance.
2. The process of claim 1 further comprising controlling the energy beam to move repeatedly from one beam path to the other beam path to scan and heat the powdered metal material along the respective beam paths.
3. The process of claim 1 wherein the process further comprises initially scanning the powdered metal material with the energy beam wherein the energy beam has a width dimension to cover both beam paths and then controlling the energy beam to move repeatedly from one beam path to the other beam path beginning at a point of divergence of the beam paths to scan and heat the powdered metal material along both beam paths.
4. The process of claim 3 further comprising decreasing the width dimension of the energy beam when the energy beam is controlled to move repeatedly from one beam path to the other beam path.
5. The process of claim 4 wherein the first and second beam paths converge downstream from the divergence of the beam paths and the process further comprising stopping the repeated movement of the energy beam from one beam path to the other beam path and increasing the width of the energy beam to scan the powdered metal material at the area of convergence of the beam paths.
6. The process of claim 3 wherein a processing power is associated with the energy beam and the process further comprising increasing the processing power of the energy beam during scanning of the powdered metal material when the energy beam is controlled to repeatedly move from one beam path to the other beam path.
7. The process of claim 3 wherein a processing speed is associated with the energy beam when it scans and heats the powered metal material along the beam paths and the process further comprising decreasing the processing speed along the beam paths when the energy beam is controlled to move repeatedly from one beam path to the other beam path.
8. The process of claim 1 wherein the step of selectively scanning and heating the powdered metal material comprises initiating the scanning and heating along one of the beam path and advancing the scanning to a predetermined point before initiating scanning along the other beam path.
9. The process of claim 8 wherein a processing speed of the energy beam along both beams is substantially the same along both beam paths.
10. The process of claim 1 wherein the step of providing the powdered metal material includes providing a bed of powdered metal material.
11. The process of claim 1 wherein the step of providing the powdered metal material comprises feeding the powdered metal material adjacent to the energy beam.
12. A process comprising: providing a metal substrate having a first side and a second side opposite the first side, wherein the first side and the second side join one another at opposite ends to define a closed path; providing a powdered metal material on the metal substrate; scanning and heating a first portion of the first side of the metal substrate with an energy beam; scanning and heating a first portion of the second side of the metal substrate with an energy beam; controlling movement of the energy beam to repeatedly move from the first side to the second side to add a layer of material to the metal substrate along the entire closed path; and wherein the movement of the energy beam is configured to keep a thermally-induced distortion of the component within a predefined tolerance.
13. The process of claim 12 further comprising first scanning and heating the component with the energy beam without the repeated movement of the energy beam and then controlling the repeated movement of the energy beam from the first portion to the second portion of the component at a point of divergence of the portions according to the predetermined profile of the component.
14. The process of claim 13 wherein the energy beam has a first width dimension before it is controlled to repeatedly move from the first portion to the second portion, and the process further comprising reducing the width dimension of the energy beam when it is controlled to repeatedly move from the first portion to the second portion of the component.
15. The process of claim 14 further comprising initiating the scanning with energy beam along one of the first or second portions and advancing the energy beam to a predetermined point before initiating scanning along the other of the first or second portions.
16. The process of claim 14, controlling a processing speed of the scanning to advance along both portions at substantially the same processing speed.
17. A process comprising: fluidizing a bed of powdered material comprising powdered metal material and powdered flux material; alternately scanning the powdered material with an energy beam along portions of a first beam path and portions of a second beam path opposite to the first beam path to simultaneously form a metal component having a first side corresponding to the first beam path and a second side opposite the first side corresponding to the second beam path, wherein the first beam path and the second beam path join one another to define a closed path; and controlling movement of the energy beam to repeatedly move back and forth between the first beam path and second beam path to scan and heat the portions of the powdered metal material to add a layer to the metal substrate according to a predetermined shape of the component that corresponds to the closed path while keeping a thermally-induced distortion within a predefined tolerance.
18. The process of claim 17 further comprising controlling movement of the energy beam along an initial beam path to a point of divergence of the initial beam path according to the predetermined shape of the component and then controlling the repeated movement of the energy beam between the first and second beam paths.
19. The process of claim 18 wherein the energy beam at the initial beam path has a width dimension, and the process further comprises reducing the width of the energy beam to a predetermined width when it is controlled to move repeatedly from the first beam path to the second beam path.
20. The process of claim 17 further comprising initiating the scanning of the powdered material along one of the beam paths for a predetermined time or distance before initiating the scanning of the powdered material along the other beam path.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is explained in the following description in view of the drawings that show:
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DETAILED DESCRIPTION OF THE INVENTION
(7) The present inventors have innovatively recognized certain limitations in connection with known techniques that utilize a beam of energy, e g, lasing energy or other modalities of energy, for processing a component that may involve a relatively complex geometry For example, airfoils of blades, vanes, etc., that may be used in a combustion turbine engine involve such complex geometries. Non-limiting applications may include various additive manufacturing processes, including without limitation laser cladding, selective laser melting (SLM) or selective laser sintering (SLS) as may be used to fuse and deposit a layer of superalloy powder onto a superalloy substrate, etc.
(8) In
(9) The inventors have discovered that the simultaneous scanning and heating of the both convex edge 12 and the concave edge 14 results in balanced strains, reducing distortion of the edges 12, 14. With respect to
(10) The beam 13 is controlled to stop the movement between the edges 12, 14 and is widened into (e.g. 12 mm wide) as the beam 13 approaches end point D and then is tapered into a smaller width beam (e.g 4 mm) onto for example a run-off tab The movement and rastering of the beam 13 may be accomplished with known multi-dimensional galvanometer-driven laser scanning optics.
(11) This simultaneous heating and cladding of both the convex and concave edges 12, 14 of the blade tip 10 provides balanced shrinkage resulting in balanced strains, and reduced distortion thereby preventing the above-described misalignment. Another advantage of this multi-path simultaneous scanning and heating is that it involves a single pass/single layer and melted metal deposits do not overlap a previously solidified metal deposit. With respect to
(12) A solution to this problem is illustrated in
(13) In the embodiment shown in
(14) In the manufacture or repair of a blade tip 10, also referred to as a squealer, the above described staggered delayed start, re-melting does occur at point H. This is due, at least in part, because the blade tip often has a short (e.g. 10 or 20 mm) gap along the concave edge 14 where no tip is required. So a second start is actually occurring at point H that is not connected with the path 16A along the convex edge 12
(15) Another embodiment of a dual-path processing method is illustrated in
(16) The concave path 16C is shorter than the convex path 16D so for equal path travel speeds, the concave path 16C finishes first. To further illustrate this staggered finish in reference to
(17) The above-described embodiments of dual-path energy beam processing may be performed in a preplaced bed or fluidized bed of powdered metal material and powdered flux material or by specialized feeding of such powders. In case multiple pass deposits are required, and because a layer of slag will form over the metal deposit, a slag removal tool may be provided to remove slag from the deposited metal layers
(18) While various embodiments of the present invention have been shown and described herein, it will be obvious that such embodiments are provided by way of example only. Numerous variations, changes and substitutions may be made without departing from the invention herein. Accordingly, it is intended that the invention be limited only by the spirit and scope of the appended claims.