WO2020245633A1 - Additive manufacturing system with metal wire - Google Patents

Additive manufacturing system with metal wire Download PDF

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Publication number
WO2020245633A1
WO2020245633A1 PCT/IB2019/054686 IB2019054686W WO2020245633A1 WO 2020245633 A1 WO2020245633 A1 WO 2020245633A1 IB 2019054686 W IB2019054686 W IB 2019054686W WO 2020245633 A1 WO2020245633 A1 WO 2020245633A1
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WO
WIPO (PCT)
Prior art keywords
laser beams
metal wire
wire
laser
metal
Prior art date
Application number
PCT/IB2019/054686
Other languages
French (fr)
Inventor
Abram Kotliar
Ziv Karni
Original Assignee
Zlasers Ltd.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Zlasers Ltd. filed Critical Zlasers Ltd.
Priority to PCT/IB2019/054686 priority Critical patent/WO2020245633A1/en
Publication of WO2020245633A1 publication Critical patent/WO2020245633A1/en

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K26/00Working by laser beam, e.g. welding, cutting or boring
    • B23K26/34Laser welding for purposes other than joining
    • B23K26/342Build-up welding
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K26/00Working by laser beam, e.g. welding, cutting or boring
    • B23K26/02Positioning or observing the workpiece, e.g. with respect to the point of impact; Aligning, aiming or focusing the laser beam
    • B23K26/03Observing, e.g. monitoring, the workpiece
    • B23K26/032Observing, e.g. monitoring, the workpiece using optical means
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K26/00Working by laser beam, e.g. welding, cutting or boring
    • B23K26/02Positioning or observing the workpiece, e.g. with respect to the point of impact; Aligning, aiming or focusing the laser beam
    • B23K26/03Observing, e.g. monitoring, the workpiece
    • B23K26/034Observing the temperature of the workpiece
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K26/00Working by laser beam, e.g. welding, cutting or boring
    • B23K26/02Positioning or observing the workpiece, e.g. with respect to the point of impact; Aligning, aiming or focusing the laser beam
    • B23K26/06Shaping the laser beam, e.g. by masks or multi-focusing
    • B23K26/0604Shaping the laser beam, e.g. by masks or multi-focusing by a combination of beams
    • B23K26/0608Shaping the laser beam, e.g. by masks or multi-focusing by a combination of beams in the same heat affected zone [HAZ]
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K26/00Working by laser beam, e.g. welding, cutting or boring
    • B23K26/02Positioning or observing the workpiece, e.g. with respect to the point of impact; Aligning, aiming or focusing the laser beam
    • B23K26/06Shaping the laser beam, e.g. by masks or multi-focusing
    • B23K26/064Shaping the laser beam, e.g. by masks or multi-focusing by means of optical elements, e.g. lenses, mirrors or prisms
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K26/00Working by laser beam, e.g. welding, cutting or boring
    • B23K26/02Positioning or observing the workpiece, e.g. with respect to the point of impact; Aligning, aiming or focusing the laser beam
    • B23K26/06Shaping the laser beam, e.g. by masks or multi-focusing
    • B23K26/067Dividing the beam into multiple beams, e.g. multifocusing
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K26/00Working by laser beam, e.g. welding, cutting or boring
    • B23K26/14Working by laser beam, e.g. welding, cutting or boring using a fluid stream, e.g. a jet of gas, in conjunction with the laser beam; Nozzles therefor
    • B23K26/1462Nozzles; Features related to nozzles
    • B23K26/1464Supply to, or discharge from, nozzles of media, e.g. gas, powder, wire
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C64/00Additive manufacturing, i.e. manufacturing of three-dimensional [3D] objects by additive deposition, additive agglomeration or additive layering, e.g. by 3D printing, stereolithography or selective laser sintering
    • B29C64/30Auxiliary operations or equipment
    • B29C64/386Data acquisition or data processing for additive manufacturing
    • B29C64/393Data acquisition or data processing for additive manufacturing for controlling or regulating additive manufacturing processes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B33ADDITIVE MANUFACTURING TECHNOLOGY
    • B33YADDITIVE MANUFACTURING, i.e. MANUFACTURING OF THREE-DIMENSIONAL [3-D] OBJECTS BY ADDITIVE DEPOSITION, ADDITIVE AGGLOMERATION OR ADDITIVE LAYERING, e.g. BY 3-D PRINTING, STEREOLITHOGRAPHY OR SELECTIVE LASER SINTERING
    • B33Y30/00Apparatus for additive manufacturing; Details thereof or accessories therefor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B33ADDITIVE MANUFACTURING TECHNOLOGY
    • B33YADDITIVE MANUFACTURING, i.e. MANUFACTURING OF THREE-DIMENSIONAL [3-D] OBJECTS BY ADDITIVE DEPOSITION, ADDITIVE AGGLOMERATION OR ADDITIVE LAYERING, e.g. BY 3-D PRINTING, STEREOLITHOGRAPHY OR SELECTIVE LASER SINTERING
    • B33Y50/00Data acquisition or data processing for additive manufacturing
    • B33Y50/02Data acquisition or data processing for additive manufacturing for controlling or regulating additive manufacturing processes

Definitions

  • the present invention generally relates to three dimensional (3D) printing or additive manufacturing of metal parts, and more particularly to an additive manufacturing system that melts metal wire to form metal parts.
  • additive manufacturing (AM) methods include 3D printing techniques such as selective laser sintering or selective laser melting in which a 3D part is produced layer by layer by irradiating a powder bed of material with a laser beam.
  • Selective laser sintering such as Direct Metal Laser Sintering (DMLS)
  • DMLS Direct Metal Laser Sintering
  • SLM Selective laser melting
  • SLM is similar but uses a laser to fully melt (rather than sinter) the material together, thus allowing for different properties such as crystal structure, porosity and the like.
  • SLM produces parts from a single metal, while DMLS can produce parts from metal alloys.
  • EBAM Electron Beam Additive Manufacturing
  • Sciaky Inc a type of soldering process, where a very powerful electron beam is used to fuse a metal wire (usually titanium) and the molten metal is shaped into a metal structure.
  • the electron beam is used in a vacuum chamber.
  • the electron beam gun deposits metal, via the wire feedstock, layer by layer, until the part reaches near-net shape, and then afterwards undergoes finish heat treatment and machining.
  • Rapid Plasma Deposition Titanium wire is melted with plasma torches in an inert atmosphere of argon gas and precisely and rapidly built up in layers to a near-net-shape part. Two plasma torches are used, one to pre-heat the substrate or prior layer, and the other to melt the titanium wire quickly and precisely. No vacuum chamber is required for RPD; the process takes place in an argon environment similar to standard TIG (tungsten inert gas) welding.
  • TIG tungsten inert gas
  • LMD-w Laser Metal Deposition-wire
  • a metal wire is fed through a nozzle and is melted by a laser.
  • the process is carried out with inert gas shielding in an open environment (gas surrounding the laser), or in a sealed gas enclosure or chamber.
  • LMD-w uses a robot-manipulated laser to melt the surface of a titanium substrate, creating a localized pool of molten titanium into which titanium wire is fed to form a bead.
  • the melt pool is manipulated along a 3-D path to create a net-shaped (or near-net- shaped) part, bead by bead, onto the substrate in layers.
  • SLM and DMLS have disadvantages in comparison to the metal wire techniques.
  • the powdered metal used in SLM or DMLS is specially made and very expensive.
  • the volume of powder needed to make the part can be five times greater than the volume of the finished part.
  • the majority of the material is not used, and must be reclaimed or discarded.
  • Powder has safety issues. Breathing in fine particles can be harmful so breathing apparatuses and ventilation must be used.
  • some powders are highly flammable, like aluminum or titanium, and some are toxic.
  • AM parts made from metal wire typically have superior strength compared to parts made from powder-based processes.
  • AM parts made from metal wire may suffer from residual stress and distortion due to excessive heat input. They may also have relatively poor part accuracy and poor surface finish, due to the layer thickness of the wire-feed AM technology.
  • the present invention seeks to provide a novel and improved additive manufacturing system and method in which metal wire is melted to form metal parts, as described in detail below.
  • the system and method do not have the abovementioned disadvantages of the prior art.
  • high-power laser beams emanating from multiple directions (e.g., 2-6 or more directions), are directed to a single focal spot on a metal wire.
  • the metal wire may be fed to the focal spot with a wire feeder or other actuator.
  • the tip of the metal wire is maintained at the focal spot of the multi-beam laser.
  • a single laser may be the source of the multiple beams: the single beam emitted by the laser is reflected by reflectors into multiple beams which impinge upon the common focal spot from different directions. This arrangement enables moving the laser beams together to any three-dimensional direction with the same effectivity.
  • a laser beam with a 0.5-10 KW output may be used with a pyramid reflector which reflects the single laser beam into three to six directions (e.g., spaced 120°-60° from each other).
  • Parabolic or other kinds of mirrors may be used to direct and focus the laser beams to the common focal spot at working angles of 5-75°, without limitation.
  • the wire may be fed from a wire feeder at the center of the laser beam array.
  • NA numerical aperture
  • the laser beam can be modified to adapt to different wire materials and different wire diameters.
  • the system may include a laser beam (from the same laser source or different sources) to pre-heat or post-heat the material, for example, to release tension or for metallurgical reasons.
  • the invention can use wires made of single or multiple metals, or wires of different diameters (e.g., without limitation, 100 pm to 5 mm), thereby providing manufacturing flexibility not attainable in the prior art.
  • the method of the invention is not limited to part size or metal material. The method is significantly less expensive than prior art systems.
  • the thermal or electrical contact between the metal wire and the support surface may be measured and monitored with sensors.
  • the sensed information may be used to control the laser beam characteristics or the temperature of the metal wire in order to achieve required properties of the printed part.
  • the temperature measurement may be used in a closed loop control system to change the laser energy at different portions of the parts being created.
  • an additive manufacturing system including an array of laser beams emanating from different directions and impinging upon a common focal spot, a feeder configured to feed a portion of a metal wire to the focal spot, the laser beams combining to melt the portion of the metal wire to form a layer of metal on a support substrate, and an actuator configured to cause relative movement between the metal wire and the support substrate to create a 3D object from multiple layers of metal wire melted by the laser beams.
  • the laser beams include beams split from another laser beam, that is, the beams could be split from a single laser beam source or from different laser beam sources.
  • the portion of the wire may be located at a center of the array of laser beams.
  • the embodiment may use wires of different size diameters and/or wires made of different metals.
  • At least one beam modulator modulates the laser beams so as to modify a size of the focal spot.
  • the angle at which the laser beams impinge upon the focal spot may be in a range of 5-75°.
  • the power of the laser beams may be in a range of 0.5-10 KW.
  • a sensor senses electrical conductivity and/or thermal conductivity of metal wire melted by the laser beams, the sensor being in operative communication with a controller configured to control a parameter of the laser beams, or a thickness of any of the layers, in accordance with information sensed by the sensor.
  • the actuator may include an XYZ table, a rotating and/or tilting table, or a multi-axis robot arm.
  • Fig. 1 is a simplified illustration of an additive manufacturing system, constructed and operative in accordance with a non-limiting embodiment of the present invention.
  • Fig. 2 is a simplified illustration of a part being made with the additive manufacturing system and also showing sensors which may be used to control the system.
  • FIG. 1 illustrates an additive manufacturing system 10, constructed and operative in accordance with a non-limiting embodiment of the present invention.
  • the additive manufacturing system 10 may include an array of laser beams 12 emanating from different directions and impinging upon a common focal spot 14.
  • a single laser beam source 16 is used to generate the array of laser beams 12.
  • a fiber-optics laser 16 with a 0.5-10 KW output may be used with a pyramid reflector 18 which reflects a single laser beam 20 into multiple beams 12 (four are shown here, but other amounts may be used as well, spaced equally or non-equally from each other).
  • Parabolic or other kinds of mirrors or other kinds of reflectors 22 may be used to direct and focus the laser beams 12 to the common focal spot 14 at working angles of 5-75°, without limitation.
  • a feeder 24 is arranged to feed a portion of a metal wire 26 to the focal spot 14.
  • Feeder 24 may be located at the center of the laser beam array, but can be located to the side of the array or other locations, too.
  • Positioning the wire vertically at the center of the laser beam array is advantageous because the wire is heated symmetrically and the molten metal is uniformly at the same temperature so that the molten metal is isotropic (same material properties in all directions). If the metal were not vertical, it is more difficult if not impossible to achieve isotropic properties.
  • the laser beams 12 combine to melt the portion of the metal wire 26 which is at the focal spot 14 to form a layer of metal 28 (Fig. 2) on a support substrate 30.
  • the support substrate 30 may be pre-formed or may be formed with the additive manufacturing system 10 as part of the part being manufactured.
  • An actuator 32 causes relative movement between the metal wire 26 and the support substrate 30 to create a 3D object from multiple layers 28 (Fig. 2) of metal wire 26 melted by the laser beams 12.
  • Actuator 32 may include an XYZ table, a rotating and/or tilting table, or a multi-axis robot arm or other suitable devices.
  • CAD computer-aided design
  • a beam modulator 36 may be used to modulate the laser beam 12 so as to modify a size of the focal spot 14. (For simplicity, only one beam modulator 36 is shown in Fig. 1, but it is understood that beam modulators may be used with all or some of the laser beams, the main laser beam or reflected beams.)
  • the laser beams 12 can be modified to adapt to different wire materials and different wire diameters.
  • controller 34 which is in operative communication with the laser 16 (and/or reflectors 22), actuator 32, beam modulator(s) 36, and feeder 24.
  • controller 34 which is in operative communication with the laser 16 (and/or reflectors 22), actuator 32, beam modulator(s) 36, and feeder 24.
  • controller 34 which is in operative communication with the laser 16 (and/or reflectors 22), actuator 32, beam modulator(s) 36, and feeder 24.
  • one or more sensors 38 in operative communication with controller 34, may be used to sense electrical or thermal conductivity of metal POOL melted by the laser beams.
  • controller 34 can control parameters (e.g., power, duration, and others) of the laser beams in accordance with information sensed by the sensor 38.
  • the sensed information may be used to control the laser beam characteristics or the temperature of the metal wire in order to achieve required properties of the printed part.
  • the temperature measurement may be used in a closed loop control system to change the laser energy at different portions of the parts being created.
  • the sensors can be non-contact sensors (e.g., optical or other non-contact electrical conductivity sensors, pyroelectric sensors or thermal radiation sensors) or may be contact sensors (e.g., capacitance or inductance sensors, thermistors, thermocouples, etc.).
  • non-contact sensors e.g., optical or other non-contact electrical conductivity sensors, pyroelectric sensors or thermal radiation sensors
  • contact sensors e.g., capacitance or inductance sensors, thermistors, thermocouples, etc.
  • the system may include a laser beam (from the same laser source or different sources) to pre-heat or post-heat the material, for example, to release tension or for metallurgical reasons.

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Mechanical Engineering (AREA)
  • Plasma & Fusion (AREA)
  • Chemical & Material Sciences (AREA)
  • Materials Engineering (AREA)
  • Manufacturing & Machinery (AREA)
  • Powder Metallurgy (AREA)
  • Laser Beam Processing (AREA)

Abstract

An additive manufacturing system (10) includes an array of laser beams (12) emanating from different directions and impinging upon a common focal spot (14). A feeder (24) feeds a portion of a metal wire (26) to the focal spot (14), and the laser beams (12) combine to melt the portion of the metal wire (26) to form a layer of metal on a support substrate (30). An actuator (32) causes relative movement between the metal wire (26) and the support substrate (30) to create a 3D object from multiple layers of metal wire (26) melted by the laser beams (12).

Description

ADDITIVE MANUFACTURING SYSTEM WITH METAL WIRE
FIELD OF THE INVENTION
The present invention generally relates to three dimensional (3D) printing or additive manufacturing of metal parts, and more particularly to an additive manufacturing system that melts metal wire to form metal parts.
BACKGROUND OF THE INVENTION
Additive manufacturing (AM) methods include 3D printing techniques such as selective laser sintering or selective laser melting in which a 3D part is produced layer by layer by irradiating a powder bed of material with a laser beam. Selective laser sintering, such as Direct Metal Laser Sintering (DMLS), uses a laser to sinter material together. Selective laser melting (SLM) is similar but uses a laser to fully melt (rather than sinter) the material together, thus allowing for different properties such as crystal structure, porosity and the like. SLM produces parts from a single metal, while DMLS can produce parts from metal alloys.
There are additive manufacturing methods that make parts from metal wire. One example is Electron Beam Additive Manufacturing (EBAM), developed by Sciaky Inc. EBAM is a type of soldering process, where a very powerful electron beam is used to fuse a metal wire (usually titanium) and the molten metal is shaped into a metal structure. The electron beam is used in a vacuum chamber. The electron beam gun deposits metal, via the wire feedstock, layer by layer, until the part reaches near-net shape, and then afterwards undergoes finish heat treatment and machining.
Another example is Rapid Plasma Deposition (RPD) technology by Norsk. Titanium wire is melted with plasma torches in an inert atmosphere of argon gas and precisely and rapidly built up in layers to a near-net-shape part. Two plasma torches are used, one to pre-heat the substrate or prior layer, and the other to melt the titanium wire quickly and precisely. No vacuum chamber is required for RPD; the process takes place in an argon environment similar to standard TIG (tungsten inert gas) welding.
Another example is Laser Metal Deposition-wire (LMD-w), in which a metal wire is fed through a nozzle and is melted by a laser. The process is carried out with inert gas shielding in an open environment (gas surrounding the laser), or in a sealed gas enclosure or chamber. LMD-w uses a robot-manipulated laser to melt the surface of a titanium substrate, creating a localized pool of molten titanium into which titanium wire is fed to form a bead. Also using robotics, the melt pool is manipulated along a 3-D path to create a net-shaped (or near-net- shaped) part, bead by bead, onto the substrate in layers. SLM and DMLS have disadvantages in comparison to the metal wire techniques. The powdered metal used in SLM or DMLS is specially made and very expensive. The volume of powder needed to make the part can be five times greater than the volume of the finished part. The majority of the material is not used, and must be reclaimed or discarded. Powder has safety issues. Breathing in fine particles can be harmful so breathing apparatuses and ventilation must be used. In addition, some powders are highly flammable, like aluminum or titanium, and some are toxic. AM parts made from metal wire typically have superior strength compared to parts made from powder-based processes.
However, the prior art wire-based techniques also have disadvantages. AM parts made from metal wire may suffer from residual stress and distortion due to excessive heat input. They may also have relatively poor part accuracy and poor surface finish, due to the layer thickness of the wire-feed AM technology.
SUMMARY OF THE INVENTION
The present invention seeks to provide a novel and improved additive manufacturing system and method in which metal wire is melted to form metal parts, as described in detail below. The system and method do not have the abovementioned disadvantages of the prior art.
In an embodiment of the invention, high-power laser beams, emanating from multiple directions (e.g., 2-6 or more directions), are directed to a single focal spot on a metal wire. The metal wire may be fed to the focal spot with a wire feeder or other actuator. The tip of the metal wire is maintained at the focal spot of the multi-beam laser. A single laser may be the source of the multiple beams: the single beam emitted by the laser is reflected by reflectors into multiple beams which impinge upon the common focal spot from different directions. This arrangement enables moving the laser beams together to any three-dimensional direction with the same effectivity.
For example, without limitation, a laser beam with a 0.5-10 KW output may be used with a pyramid reflector which reflects the single laser beam into three to six directions (e.g., spaced 120°-60° from each other). Parabolic or other kinds of mirrors may be used to direct and focus the laser beams to the common focal spot at working angles of 5-75°, without limitation. The wire may be fed from a wire feeder at the center of the laser beam array.
For example, without limitation, in the case of a fiber optics laser, the laser spot size diameter can be varied by moving the position of the exit pupil of the fiber optics (e.g., without limitation, 100 or 200 mih in core diameter with numerical aperture (NA) = 0.22). In this manner, the laser beam can be modified to adapt to different wire materials and different wire diameters. As another option, the system may include a laser beam (from the same laser source or different sources) to pre-heat or post-heat the material, for example, to release tension or for metallurgical reasons.
The invention can use wires made of single or multiple metals, or wires of different diameters (e.g., without limitation, 100 pm to 5 mm), thereby providing manufacturing flexibility not attainable in the prior art. The method of the invention is not limited to part size or metal material. The method is significantly less expensive than prior art systems.
In one embodiment of the invention, the thermal or electrical contact between the metal wire and the support surface may be measured and monitored with sensors. The sensed information may be used to control the laser beam characteristics or the temperature of the metal wire in order to achieve required properties of the printed part. For example, the temperature measurement may be used in a closed loop control system to change the laser energy at different portions of the parts being created.
There is thus provided in accordance with a non-limiting embodiment of the present invention an additive manufacturing system including an array of laser beams emanating from different directions and impinging upon a common focal spot, a feeder configured to feed a portion of a metal wire to the focal spot, the laser beams combining to melt the portion of the metal wire to form a layer of metal on a support substrate, and an actuator configured to cause relative movement between the metal wire and the support substrate to create a 3D object from multiple layers of metal wire melted by the laser beams.
In accordance with a non-limiting embodiment of the present invention the laser beams include beams split from another laser beam, that is, the beams could be split from a single laser beam source or from different laser beam sources. The portion of the wire may be located at a center of the array of laser beams. The embodiment may use wires of different size diameters and/or wires made of different metals.
In accordance with a non-limiting embodiment of the present invention at least one beam modulator modulates the laser beams so as to modify a size of the focal spot.
The angle at which the laser beams impinge upon the focal spot may be in a range of 5-75°. The power of the laser beams may be in a range of 0.5-10 KW. In accordance with a non-limiting embodiment of the present invention a sensor senses electrical conductivity and/or thermal conductivity of metal wire melted by the laser beams, the sensor being in operative communication with a controller configured to control a parameter of the laser beams, or a thickness of any of the layers, in accordance with information sensed by the sensor.
In accordance with a non-limiting embodiment of the present invention the actuator may include an XYZ table, a rotating and/or tilting table, or a multi-axis robot arm.
BRIEF DESCRIPTION OF THE DRAWINGS
The present invention will be understood and appreciated more fully from the following detailed description, taken in conjunction with the drawings in which:
Fig. 1 is a simplified illustration of an additive manufacturing system, constructed and operative in accordance with a non-limiting embodiment of the present invention; and
Fig. 2 is a simplified illustration of a part being made with the additive manufacturing system and also showing sensors which may be used to control the system.
DETAIFED DESCRIPTION OF EMBODIMENTS
Reference is now made to Fig. 1, which illustrates an additive manufacturing system 10, constructed and operative in accordance with a non-limiting embodiment of the present invention.
The additive manufacturing system 10 may include an array of laser beams 12 emanating from different directions and impinging upon a common focal spot 14. Without limitation, a single laser beam source 16 is used to generate the array of laser beams 12. For example, a fiber-optics laser 16 with a 0.5-10 KW output may be used with a pyramid reflector 18 which reflects a single laser beam 20 into multiple beams 12 (four are shown here, but other amounts may be used as well, spaced equally or non-equally from each other). Parabolic or other kinds of mirrors or other kinds of reflectors 22 may be used to direct and focus the laser beams 12 to the common focal spot 14 at working angles of 5-75°, without limitation.
A feeder 24 is arranged to feed a portion of a metal wire 26 to the focal spot 14. Feeder 24 may be located at the center of the laser beam array, but can be located to the side of the array or other locations, too. Positioning the wire vertically at the center of the laser beam array is advantageous because the wire is heated symmetrically and the molten metal is uniformly at the same temperature so that the molten metal is isotropic (same material properties in all directions). If the metal were not vertical, it is more difficult if not impossible to achieve isotropic properties. The laser beams 12 combine to melt the portion of the metal wire 26 which is at the focal spot 14 to form a layer of metal 28 (Fig. 2) on a support substrate 30. The support substrate 30 may be pre-formed or may be formed with the additive manufacturing system 10 as part of the part being manufactured.
An actuator 32 causes relative movement between the metal wire 26 and the support substrate 30 to create a 3D object from multiple layers 28 (Fig. 2) of metal wire 26 melted by the laser beams 12. Actuator 32 may include an XYZ table, a rotating and/or tilting table, or a multi-axis robot arm or other suitable devices.
Numerous layers of metal can be deposited and machined to form complex 3D metal parts that have exact tolerances. The same CAD (computer-aided design) software that was used to design the part may be used as the database for a controller 34 that controls the movement of the actuator 32.
As seen in Fig. 1, a beam modulator 36 may be used to modulate the laser beam 12 so as to modify a size of the focal spot 14. (For simplicity, only one beam modulator 36 is shown in Fig. 1, but it is understood that beam modulators may be used with all or some of the laser beams, the main laser beam or reflected beams.)
For example, without limitation, in the case of a fiber optics laser, the laser spot size diameter can be varied by moving the position of the exit pupil of the fiber optics (e.g., without limitation, 100 or 200 pm in core diameter with numerical aperture (NA) = 0.22). In this manner, the laser beams 12 can be modified to adapt to different wire materials and different wire diameters. For example, it is possible to combine two or more different metal alloys from two or more different metal wire feeds into a single melted bead at the focus spot 14, with the feed rates and laser beam characteristics controlled by controller 34, which is in operative communication with the laser 16 (and/or reflectors 22), actuator 32, beam modulator(s) 36, and feeder 24. In this way, it is possible to change the mixture ratio of the different materials, or to alternate between different wire gauges for finer deposition features (thin wire) and gross deposition features (thick wire).
As seen in Fig. 2, one or more sensors 38, in operative communication with controller 34, may be used to sense electrical or thermal conductivity of metal POOL melted by the laser beams. In this manner, controller 34 can control parameters (e.g., power, duration, and others) of the laser beams in accordance with information sensed by the sensor 38. The sensed information may be used to control the laser beam characteristics or the temperature of the metal wire in order to achieve required properties of the printed part. For example, the temperature measurement may be used in a closed loop control system to change the laser energy at different portions of the parts being created.
The sensors can be non-contact sensors (e.g., optical or other non-contact electrical conductivity sensors, pyroelectric sensors or thermal radiation sensors) or may be contact sensors (e.g., capacitance or inductance sensors, thermistors, thermocouples, etc.).
As another option, the system may include a laser beam (from the same laser source or different sources) to pre-heat or post-heat the material, for example, to release tension or for metallurgical reasons.

Claims

CLAIMS What is claimed is:
1. An additive manufacturing system (10) comprising:
an array of laser beams (12) emanating from different directions and impinging upon a common focal spot (14);
a feeder (24) configured to feed a portion of a metal wire (26) to said focal spot (14), said laser beams (12) combining to melt said portion of said metal wire (26) to form a layer of metal (28) on a support substrate (30); and
an actuator (32) configured to cause relative movement between said metal wire (26) and said support substrate (30) to create a 3D object from multiple layers (28) of metal wire (26) melted by said laser beams (12).
2. The system (10) according to claim 1, wherein said laser beams (12) comprise beams split from another laser beam (20).
3. The system (10) according to claim 1, wherein said portion of said wire (26) is located at a center of the array of laser beams (12).
4. The system (10) according to claim 1, wherein said portion of said wire (26) is located vertically at a center of the array of laser beam (12) and is heated symmetrically.
5. The system (10) according to claim 1, wherein said wire (26) comprises wires of different size diameters.
6. The system (10) according to claim 1, wherein said wire (26) comprises wires made of different metals.
7. The system (10) according to claim 1, further comprising at least one beam modulator (36) configured to modulate said laser beams (12) so as to modify a size of said focal spot (14).
8. The system (10) according to claim 1, wherein an angle at which said laser beams (12) impinge upon said focal spot (14) is in a range of 5-75°.
9. The system (10) according to claim 1, wherein a power of said laser beams (12) is in a range of 0.5-10 KW.
10. The system (10) according to claim 1, further comprising a sensor (38) configured to sense electrical conductivity of metal wire (26) melted by said laser beams (12), said sensor (38) being in operative communication with a controller (34) configured to control a parameter of said laser beams (12), or a thickness of any of said layers (28), in accordance with information sensed by said sensor (38).
11. The system (10) according to claim 1, further comprising a sensor (38) configured to sense thermal conductivity of metal wire (26) melted by said laser beams, said sensor (38) being in operative communication with a controller (34) configured to control a parameter of said laser beams (12), or a thickness of any of said layers (28), in accordance with information sensed by said sensor (38).
12. The system (10) according to claim 1, wherein said actuator (32) comprises an XYZ table or a rotating and/or tilting table.
13. The system (10) according to claim 1, wherein said actuator (32) comprises a multi-axis robot arm.
PCT/IB2019/054686 2019-06-05 2019-06-05 Additive manufacturing system with metal wire WO2020245633A1 (en)

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113699525A (en) * 2021-07-29 2021-11-26 陕西中科中美激光科技有限公司 Multi-beam wire feeding laser cladding device surrounding center
CN115029692A (en) * 2022-03-09 2022-09-09 南京辉锐光电科技有限公司 Copper substrate and preparation method of silver coating on surface of copper substrate
FR3125240A1 (en) * 2021-07-15 2023-01-20 Airbus Operations (S.A.S.) Additive manufacturing process using a focused energy source, said process being regulated according to the intensity of a control current of said focused energy source
JP7515722B2 (en) 2021-06-29 2024-07-12 三菱電機株式会社 Processing head and additive manufacturing device

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105499791A (en) * 2015-12-22 2016-04-20 中国航空工业集团公司北京航空制造工程研究所 Split laser focusing and coaxial fusing laser head and coaxial laser fused modeling device
US20170297140A1 (en) * 2016-04-15 2017-10-19 U.S.A. As Represented By The Administrator Of The National Aeronautics And Space Administration Process Control of Electron Beam Wire Additive Manufacturing
US20180318929A1 (en) * 2017-05-02 2018-11-08 Additec Additive Technologies, LLC Smart additive manufacturing device
US20180354075A1 (en) * 2017-06-09 2018-12-13 Illinois Tool Works Inc. Coaxial laser hotwire head

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105499791A (en) * 2015-12-22 2016-04-20 中国航空工业集团公司北京航空制造工程研究所 Split laser focusing and coaxial fusing laser head and coaxial laser fused modeling device
US20170297140A1 (en) * 2016-04-15 2017-10-19 U.S.A. As Represented By The Administrator Of The National Aeronautics And Space Administration Process Control of Electron Beam Wire Additive Manufacturing
US20180318929A1 (en) * 2017-05-02 2018-11-08 Additec Additive Technologies, LLC Smart additive manufacturing device
US20180354075A1 (en) * 2017-06-09 2018-12-13 Illinois Tool Works Inc. Coaxial laser hotwire head

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP7515722B2 (en) 2021-06-29 2024-07-12 三菱電機株式会社 Processing head and additive manufacturing device
FR3125240A1 (en) * 2021-07-15 2023-01-20 Airbus Operations (S.A.S.) Additive manufacturing process using a focused energy source, said process being regulated according to the intensity of a control current of said focused energy source
EP4129560A1 (en) * 2021-07-15 2023-02-08 Airbus Operations (S.A.S.) Additive manufacturing method using a focused power source, said method being controlled according to the intensity of a control current of said focused power source
US11806938B2 (en) 2021-07-15 2023-11-07 Airbus Operations Sas Additive manufacturing method using a focused energy source, said method being regulated according to the intensity of a control current of said focused energy source
CN113699525A (en) * 2021-07-29 2021-11-26 陕西中科中美激光科技有限公司 Multi-beam wire feeding laser cladding device surrounding center
CN115029692A (en) * 2022-03-09 2022-09-09 南京辉锐光电科技有限公司 Copper substrate and preparation method of silver coating on surface of copper substrate

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