B29C64/159

SYSTEM AND METHOD FOR AUTHENTICATING COMPONENTS
20180292337 · 2018-10-11 ·

A system and method for manufacturing and authenticating a component is provided. The method includes forming a component having an identifying region that contains two or more materials having different conductivities such that the identifying region generates an eddy current response signature that defines a component identifier of the component. The method further includes interrogating the identifying region of the surface with an eddy current probe to determine the component identifier. The component identifier may be stored in a database as a reference identifier and may be used for authenticating components.

NON-WOVEN MICRO-TRELLIS FABRICS AND COMPOSITE OR HYBRID-COMPOSITE MATERIALS REINFORCED THEREWITH

A non-woven fabric is provided which includes a three-dimensional array of fibers. The three-dimensional array of fibers includes an array of standing fibers extending perpendicular to a plane of the non-woven fabric and attached to a base substrate, where the base substrate is one or more of an expendable film substrate, a metal base substrate, or a mandrel substrate. Further, the three-dimensional array of fibers includes multiple layers of non-woven parallel fibers running parallel to the plane of the non-woven fiber in between the array of standing fibers in a defined pattern of fiber layer orientations. In implementation, the array of standing fibers are grown to extend from the base substrate using laser-assisted chemical vapor deposition (LCVD).

Gas Phase Integrated Multimaterial Printhead for Additive Manufacturing
20180200954 · 2018-07-19 ·

Sputtering printheads, additive manufacturing systems comprising the same, and methods for additive manufacturing are provided. Sputtering printheads of the present invention use a plasma to sputter a feedstock material which is directed towards a target. A printhead can include a heater to heat the feedstock to, or near, the material's melting point as it is being sputtered to increase the deposition rate. A convergent nozzle can also increase the deposition rate. Printheads of the present invention are readily reconfigurable such that the same printhead can be used to deposit different materials, such as metals and non-metals, in succession by replacing the feedstock material and making changes to a few settings. Additive manufacturing systems of the present invention can be operated at normal room temperatures and pressure.

Gas Phase Integrated Multimaterial Printhead for Additive Manufacturing
20180200954 · 2018-07-19 ·

Sputtering printheads, additive manufacturing systems comprising the same, and methods for additive manufacturing are provided. Sputtering printheads of the present invention use a plasma to sputter a feedstock material which is directed towards a target. A printhead can include a heater to heat the feedstock to, or near, the material's melting point as it is being sputtered to increase the deposition rate. A convergent nozzle can also increase the deposition rate. Printheads of the present invention are readily reconfigurable such that the same printhead can be used to deposit different materials, such as metals and non-metals, in succession by replacing the feedstock material and making changes to a few settings. Additive manufacturing systems of the present invention can be operated at normal room temperatures and pressure.

SYSTEM FOR AND METHOD OF MANUFACTURING THREE-DIMENSIONAL STRUCTURE

Disclosed are a system for and a method of manufacturing a three-dimensional (3D) structure. The method may include injecting a fluid with a first pressure toward a surface of a first output layer to form a softening layer in the first output layer, injecting the fluid with a second pressure toward the softening layer to form an uneven structure in the softening layer, the second pressure being higher than the first pressure, and forming a second output layer on the softening layer with the uneven structure.

THREE-DIMENSIONAL PRINTING

The present disclosure provides various three-dimensional (3D) objects, some of which comprise a wire or 3D plane. Disclosed herein are methods, apparatus, software, and systems for their generation that may reduce or eliminate the need for auxiliary support during the formation of the 3D objects. The methods, apparatuses, software, and systems of the present disclosure may allow the formation of objects with short, diminished number, and/or spaced apart auxiliary support structures. These 3D objects may be objects with adjacent surfaces such as hanging structures and planar hollow 3D objects.

PRINTHEAD, SYSTEM AND METHOD FOR DIRECT WRITE VAPOR DEPOSITION
20240375348 · 2024-11-14 ·

A printhead for direct write vapor deposition comprises a nozzle body including a reservoir for holding a material to be printed and a nozzle head protruding from the nozzle body. The nozzle head includes a nozzle opening for ejection of the material as a vapor-phase ink. The nozzle opening is in fluid communication with the reservoir. The nozzle head may protrude from the nozzle body a distance of at least 10 microns. A system for direct write vapor deposition includes the printhead, a heat source positioned to heat the printhead, a substrate in opposition to the nozzle opening for deposition of the vapor-phase ink, and an x-y-z motion stage configured to move the substrate relative to the printhead.

PRINTHEAD, SYSTEM AND METHOD FOR DIRECT WRITE VAPOR DEPOSITION
20240375348 · 2024-11-14 ·

A printhead for direct write vapor deposition comprises a nozzle body including a reservoir for holding a material to be printed and a nozzle head protruding from the nozzle body. The nozzle head includes a nozzle opening for ejection of the material as a vapor-phase ink. The nozzle opening is in fluid communication with the reservoir. The nozzle head may protrude from the nozzle body a distance of at least 10 microns. A system for direct write vapor deposition includes the printhead, a heat source positioned to heat the printhead, a substrate in opposition to the nozzle opening for deposition of the vapor-phase ink, and an x-y-z motion stage configured to move the substrate relative to the printhead.

Method and Apparatus for Generatively Manufacturing a Three-Dimensional Object

The invention refers to a method of generatively manufacturing a three-dimensional object (2) in a process chamber (3) of a generative manufacturing apparatus (1) by a layer-by-layer application and selective solidification of a building material (13) within a build area (10) arranged in the process chamber. In the course of this, while the object is being manufactured, a process gas is supplied to the process chamber by means of a gas supply device and is discharged from the process chamber via an outlet (42a, 42b). According to the invention, the gas supply device is designed and/or arranged relatively to the build area and/or controlled such that a gas stream (40) of the process gas streaming through the process chamber is shaped in such a manner that a substantially elongate oval impingement area (A3) of the gas stream (40) is generated within the build area (10).

Method and Apparatus for Generatively Manufacturing a Three-Dimensional Object

The invention refers to a method of generatively manufacturing a three-dimensional object (2) in a process chamber (3) of a generative manufacturing apparatus (1) by a layer-by-layer application and selective solidification of a building material (13) within a build area (10) arranged in the process chamber. In the course of this, while the object is being manufactured, a process gas is supplied to the process chamber by means of a gas supply device and is discharged from the process chamber via an outlet (42a, 42b). According to the invention, the gas supply device is designed and/or arranged relatively to the build area and/or controlled such that a gas stream (40) of the process gas streaming through the process chamber is shaped in such a manner that a substantially elongate oval impingement area (A3) of the gas stream (40) is generated within the build area (10).