APPARATUS AND METHODS FOR FABRICATING COMPONENTS
20170252966 ยท 2017-09-07
Assignee
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
B29C64/20
PERFORMING OPERATIONS; TRANSPORTING
B29C64/393
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An additive manufacturing method for fabricating a component having a surface substantially free of imperfections may include providing a mold having a configuration corresponding to the component, and depositing a material on at least one surface of the mold to fabricate the component having the surface substantially free of imperfections.
Claims
1. An additive manufacturing method for fabricating a component having a surface substantially free of imperfections, the method comprising: providing a mold having a configuration corresponding to the component; and depositing a material on at least one surface of the mold to fabricate the component having the surface substantially free of imperfections.
2. The additive manufacturing method of claim 1, wherein the at least one surface of the mold defines a cavity in the mold, and wherein the at least one surface includes a concave or convex configuration.
3. The additive manufacturing method of claim 1, wherein the at least one surface is processed to resist adhesion of the material to the at least one surface.
4. The additive manufacturing method of claim 1, wherein the surface substantially free of imperfections is formed without a finishing step.
5. The additive manufacturing method of claim 1, wherein the mold is configured to control a cooling rate of the material deposited on the at least one surface of the mold.
6. The additive manufacturing method of claim 1, wherein the step of depositing the material on the at least one surface of the mold includes extruding the material onto the at least one surface from a nozzle.
7. The additive manufacturing method of claim 6, wherein the at least one surface includes a plurality of curves, and wherein the nozzle is configured for movement relative to the at least one surface such that a centerline of the nozzle remains perpendicular to a tangent plane for each curve of the plurality of curves.
8. The additive manufacturing method of claim 6, wherein the nozzle is configured to translate along a first axis, a second axis perpendicular to the first axis, and a third axis orthogonal to the first and second axes, and wherein the nozzle is configured to rotate in a plane defined by the first and second axes.
9. The additive manufacturing method of claim 1, wherein depositing the material on the at least one surface of the mold includes depositing a plurality of material beads adjacent to one another.
10. The additive manufacturing method of claim 1, wherein the material includes a thermoplastic having a reinforcing material therein.
11. The additive manufacturing method of claim 1, wherein the reinforcing material includes strands of fiber.
12. The additive manufacturing method of claim 1, wherein depositing the material on the at least one surface of the mold includes fusing the material to an adjacent previously deposited bead of material.
13. The additive manufacturing method of claim 6, wherein the nozzle is part of a programmable computer numeric control (CNC) machine.
14. The additive manufacturing method of claim 1, wherein depositing the material on the at least one surface of the mold includes depositing the material in a pattern, wherein the pattern is based on a digital representation of the component.
15. An additive manufacturing system for fabricating a component having a surface substantially free of imperfections, comprising: a programmable computer numeric control (CNC) machine configured to extrude a flowable material; and a mold having a cavity defining at least one surface for receiving a plurality of beads of the flowable material.
16. The additive manufacturing system of claim 15, wherein the computer numeric control (CNC) machine is configured to deposit the flowable material in a pattern based on a digital representation.
17. The additive manufacturing system of claim 15, wherein the programmable computer numeric control (CNC) machine includes a nozzle for extruding the flowable material, and wherein the nozzle is moveable along a first axis, a second axis perpendicular to the first axis, and a third axis orthogonal to the first and second axes, and wherein the nozzle is configured to rotate in a plane defined by the first and second axes.
18. The additive manufacturing system of claim 17, wherein the at least one surface includes a plurality of curves, and wherein the nozzle is configured for movement relative to the at least one surface such that a centerline of the nozzle remains perpendicular to a tangent plane for each curve of the plurality of curves.
19. The additive manufacturing system of claim 15, wherein the mold includes at least one heating element configured to control a rate of cooling of the flowable material.
20. The additive manufacturing system of claim 15, wherein the material includes a thermoplastic.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate exemplary aspects of the present disclosure and together with the description, serve to explain the principles of the disclosure.
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DETAILED DESCRIPTION
[0022] The present disclosure is drawn to, among other things, methods and apparatus for fabricating multiple components via additive manufacturing or 3D printing techniques. More particularly, the methods and apparatus described herein produce components having at least one surface substantially without (or free of) objectionable imperfections, thereby eliminating the need for additional finishing processes during manufacturing. Those of ordinary skill in the art will understand that a surface substantially without (or free of) objectionable imperfections may be a surface ready for use or delivery to a consumer without needing any further processing, such as, e.g., machining, sanding, grinding, etc., to, e.g., remove the imperfections.
[0023] In one aspect, fabrication of components having at least one surface substantially without objectionable imperfections is achieved by providing an open face mold of substantial and stable substructure, of a material that can tolerate a heated thermoplastic material, and upon which layers of flowable material may be deposited and thus stabilized. Such a mold would have one or more of a concave or convex surface that is the inverse of a surface of the article to be fabricated or otherwise replicated. In forming such an article, instead of depositing material in flat, horizontal layers as is traditionally done in the additive manufacturing process, material is deposited onto the surface of the open mold as the centerline of the application nozzle is maintained in substantially perpendicular alignment with the variable tangent plane of the contoured surface. Such a process requires the use of a CNC machine with controlled motion along the X, Y, and Z-axes, as well as an articulated application head with controlled rotational displacement about both the vertical and horizontal axes, essentially providing a flexible head at the output of the extruder through which the flowable material may be deposited upon a surface of the mold. After the flowable material has been deposited over the entire mold surface, and the material has cooled sufficiently to re-harden, the fabricated part can be removed. Since the surface of the part that was in contact with the mold has taken on the shape of the mold, which is the final shape desired, no further machining operations may be necessary.
[0024] Referring to
[0025] Machine 1 includes a bed 20 provided with a pair of transversely spaced side walls 21 and 22, a gantry 23 supported on side walls 21 and 22, carriage 24 mounted on gantry 23, a carrier 25 mounted on carriage 24, and an applicator assembly 26 mounted on carrier 25. Supported on bed 20 between side walls 21 and 22 is a worktable 27 provided with a support surface disposed in an x-y plane, which may be fixed or displaceable along an x-axis. In the displaceable version, the worktable may be displaceable along a set of rails mounted on the bed 20 by means of servomotors and rails 29 mounted on the bed 20 and operatively connected to the worktable 27. Gantry 23 is disposed along a y-axis, supported at the ends thereof on end walls 21 and 22, either fixedly or displaceably along an x-axis on a set of guide rails 28 and 29 provided on the upper ends of side walls 21 and 22. In the displaceable version, the gantry 23 may be displaceable by a set of servomotors mounted on the gantry 23 and operatively connected to tracks provided on the side walls 21 and 22 of the bed 20. Carriage 24 is supported on gantry 23 and is provided with a support member 30 mounted on and displaceable along one or more guide rails 31, 32 and 33 provided on the gantry 23. Carriage 24 may be displaceable along a y-axis on one or more guide rails 31, 32 and 33 by a servomotor mounted on the gantry 23 and operatively connected to support member 30. Carrier 25 is mounted on a set of spaced, vertically disposed guide rails 34 and 35 supported on the carriage 24 for displacement of the carrier 25 relative to the carriage 24 along a z-axis. Carrier 25 may be displaceable along the z-axis by a servomotor mounted on the carriage 24 and operatively connected to the carrier 25.
[0026] As best shown in
[0027] Applicator assembly 26 may include an upper segment 41 and a lower segment 42. Upper segment 41 includes a transverse portion 41a secured to the underside of mounting platform 38 for rotational movement about the z-axis. Upper segment 41 may be provided with an opening therethrough along such z-axis, and a depending portion 41b may be disposed substantially laterally relative to such z-axis. Lower segment 42 includes a housing 42b disposed on an inner side of depending portion 41b. Housing 42b may be mounted on a shaft journalled in a lower end of depending portion 41b, intersecting and disposed perpendicular to the z-axis of carrier 25, and further housing 42b may be provided with a laterally projecting application head 43 at a free end thereof. Mounted on a gearbox 44 provided on an outer side of segment portion 41b is a servomotor 45 operatively connected through gearbox 44 to the shaft journalled in portion 41b. Servomotor 45 may be configured for pivotally displacing lower segment 42 in a y-z plane. A material tamping roller 59 (shown in
[0028] With continuing reference to
[0029] In some examples, machine 1 may include a velocimetry assembly (or multiple velocimetry assemblies) configured to determine flow rates (e.g., velocities and/or volumetric flow rates) of material 53 being delivered from applicator head 43. The velocimetry assembly preferably transmits signals relating to the determined flow rates to the aforementioned controller coupled to machine 1, which may then utilize the received information to compensate for variations in the material flow rates.
[0030] In the course of fabricating a component, pursuant to the methods described herein, the control system of the machine 1, in executing the inputted program, would operate the several servomotors as described to displace the gantry 23 along the x-axis, displace the carriage 24 along the y-axis, displace the carrier 25 along a z-axis, pivot lower applicator segment 42 about an axis disposed in an x-y plane and rotate bracket 47 about a z-axis thereof, in accordance with the inputted program, to provide the desired end product or a near duplicate thereof. A suitable mold (e.g., mold 62) is provided for depositing flowable material 53 thereon. Such a mold 62 may include at least one surface that is the inverse of the article to be produced, in essence, either a convex mold, or a concave mold, commonly referred to as a male mold or a female mold.
[0031] With reference now to
[0032] Referring now to
[0033]
[0034] While principles of the present disclosure are described herein with reference to illustrative embodiments for particular applications, it should be understood that the disclosure is not limited thereto. Those having ordinary skill in the art and access to the teachings provided herein will recognize additional modifications, applications, embodiments, and substitution of equivalents all fall within the scope of the embodiments described herein. Accordingly, the invention is not to be considered as limited by the foregoing description.