B23K15/0026

POLARIZATION COMBINING SYSTEM IN ADDITIVE MANUFACTURING

A method and an apparatus pertaining to polarization combining in additive manufacturing may involve emitting two or more beams of light with a first intensity. Each of the two or more beams of light may be polarized and may have a majority polarization state and a minority polarization state. A respective polarization pattern may be applied on the majority polarization state of each of the two or more beams of light. The two or more beams of light may be combined to provide a single beam of light.

LIGHT RECYCLING FOR ADDITIVE MANUFACTURING OPTIMIZATION

A method and an apparatus pertaining to recycling and reuse of unwanted light in additive manufacturing can multiplex multiple beams of light including at least one or more beams of light from one or more light sources. The multiple beams of light may be reshaped and blended to provide a first beam of light. A spatial polarization pattern may be applied on the first beam of light to provide a second beam of light. Polarization states of the second beam of light may be split to reflect a third beam of light, which may be reshaped into a fourth beam of light. The fourth beam of light may be introduced as one of the multiple beams of light to result in a fifth beam of light.

CHAMBER SYSTEMS FOR ADDITIVE MANUFACTURING

An apparatus and a method for powder bed fusion additive manufacturing involve a multiple-chamber design achieving a high efficiency and throughput. The multiple-chamber design features concurrent printing of one or more print jobs inside one or more build chambers, side removals of printed objects from build chambers allowing quick exchanges of powdered materials, and capabilities of elevated process temperature controls of build chambers and post processing heat treatments of printed objects. The multiple-chamber design also includes a height-adjustable optical assembly in combination with a fixed build platform method suitable for large and heavy printed objects.

Dynamic Optical Assembly For Laser-Based Additive Manufacturing

A method and an apparatus of a powder bed fusion additive manufacturing system that enables a quick change in the optical beam delivery size and intensity across locations of a print surface for different powdered materials while ensuring high availability of the system. A dynamic optical assembly containing a set of lens assemblies of different magnification ratios and a mechanical assembly may change the magnification ratios as needed. The dynamic optical assembly may include a transitional and rotational position control of the optics to minimize variations of the optical beam sizes across the print surface.

Direct Manufacturing Systems and Methods Utilizing Active Guides and Passive Molds
20170106468 · 2017-04-20 ·

In one embodiment, a system includes a deposition system that comprises an energy source, a material feed, and an active guide. The system further includes a base platform and a control system communicatively coupled to the deposition system. The control system is configured to provide instructions to the deposition system to deposit one or more layers of material from the material feed onto a baseplate coupled to the base platform, thereby creating a structure. The control system is further configured to provide instructions to the deposition system to weld the material as it is deposited from the material feed using an energy beam from the energy source and to deploy the active guide to shape the material, thereby forming at least one shaped surface of the structure.

Apparatus for workpiece processing having integrated energy guide and media storage and related system and method

A system includes a machine tool having a clamp. The system also includes a processing head configured to be temporarily held by the clamp of the machine tool. The processing head is also configured to deposit one or more media onto a workpiece. The processing head includes a guide configured to direct energy from an energy source onto the workpiece and/or the one or more media. The processing head also includes one or more supplies including one or more reservoirs within the processing head. The one or more reservoirs are configured to receive the one or more media, store the one or more media as the processing head is moved from one location to another location, and provide the one or more media.

Systems for three-dimensional printing

The present disclosure provides three-dimensional (3D) objects, 3D printing processes, as well as methods, apparatuses and systems for the production of a 3D object. Methods, apparatuses and systems of the present disclosure may reduce or eliminate the need for auxiliary supports. The present disclosure provides three dimensional (3D) objects printed utilizing the printing processes, methods, apparatuses and systems described herein.

Devices, systems, and methods for calibrating and maintaining a temperature of materials in an additive manufacturing build chamber
12257626 · 2025-03-25 · ·

Devices, systems, and methods for calibrating for an electron beam additive manufacturing system. The electron beam manufacturing system includes electron beam guns. A calibration system includes an optical pyrometer. The optical pyrometer captures thermal radiation emitted from raw material. An analysis component is communicatively coupled to the optical pyrometer. The analysis component is programmed to determine calibration parameters from information from the optical pyrometer and a phase transition temperature.

Dynamic optical assembly for laser-based additive manufacturing

A method and an apparatus of a powder bed fusion additive manufacturing system that enables a quick change in the optical beam delivery size and intensity across locations of a print surface for different powdered materials while ensuring high availability of the system. A dynamic optical assembly containing a set of lens assemblies of different magnification ratios and a mechanical assembly may change the magnification ratios as needed. The dynamic optical assembly may include a transitional and rotational position control of the optics to minimize variations of the optical beam sizes across the print surface.

DEVICE AND METHOD FOR PREHEATING A WORKPIECE TO BE WELDED
20250081299 · 2025-03-06 ·

The present invention relates to a device and a method for preheating a workpiece to be welded. The device comprises a liquid-cooled induction coil arrangeable in connection with the workpiece, a power supply unit configured to supply AC power to the liquid-cooled induction coil, and a cooling unit configured to convey cooling liquid through the liquid-cooled induction coil. The present invention also relates to a welding system.