System and method for moving a rod of build material using a pusher in a 3d printing system

US2020016836A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2020016836-A1
Application numberUS-201916580818-A
CountryUS
Kind codeA1
Filing dateSep 24, 2019
Priority dateApr 24, 2017
Publication dateJan 16, 2020
Grant date

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A system and corresponding method to move a rod of build material in a three-dimensional (3D) printing system uses a pusher. The rod of build material has distal and proximal ends relative to an extrusion head. The distal and proximal ends having distal and proximal end surfaces, respectively. The pusher engages with the rod and applies an axial force to at least a portion of the distal end surface of the rod for at least a portion of a path the rod travels toward the extrusion head. The axial force actuates the rod of build material without alteration, such as by shaving, fracturing, or otherwise deforming the rod of build material.

First claim

Opening claim text (preview).

1 - 30 . (canceled) 31 . An assembly for use in an additive manufacturing system, the assembly comprising: an extrusion head configured to receive a rod of build material; and an actuation assembly, including a traveling component and a pushing component, configured to move in a first direction toward the extrusion head and in a second direction away from the extrusion head; wherein the pushing component includes a protrusion that extends radially outward from the traveling component, wherein the protrusion includes a pusher interface surface facing the extrusion head and configured to contact an end surface of the rod of build material to apply a force to at least a portion of the end surface of the rod of build material along the first direction when the actuation assembly moves in the first direction, and wherein a surface of the traveling component is disposed further along the first direction than the interface surface. 32 . The assembly of claim 31 , wherein the pusher interface surface is oriented normal relative to a longitudinal axis of the rod of build material. 33 . The assembly of claim 31 , further comprising a lead screw, wherein the actuation assembly is configured to move upon rotation of the lead screw. 34 . The assembly of claim 31 , wherein the actuation assembly further includes a nut. 35 . The assembly of claim 31 , wherein the actuation assembly further includes a linear guide coupled to the traveling component via a linear bearing. 36 . The assembly of claim 31 , further comprising a guide channel configured to receive the rod of build material. 37 . The assembly of claim 36 , wherein the guide channel defines at least one slot configured to receive at least a portion of the protrusion. 38 . The assembly of claim 31 , further comprising a cam arranged to cause the pushing component to transition between a first configuration, in which the pushing component intersects a longitudinal axis of the rod of build material, and a second configuration, in which the pushing component does not intersect the longitudinal axis of the rod of build material. 39 . The assembly of claim 38 , wherein the pushing component and the cam define complementary gear teeth. 40 . An assembly for use in an additive manufacturing system, the assembly comprising: an extrusion head having a first longitudinal axis along which build material is extruded by the extrusion head; and an actuator including: a body that is movable relative to the extrusion head along a second longitudinal axis that is parallel to but not coaxial with the first longitudinal axis; and a protrusion extending radially outward from the body so that the protrusion intersects the first longitudinal axis; wherein the actuator is configured such that the actuator moves in a first direction toward the extrusion head and a second direction away from the extrusion head; wherein the protrusion includes an interface surface oriented normal to the first longitudinal axis, wherein the interface surface is configured to contact the build material to apply a force to the build material along the first longitudinal axis when the actuator moves in the first direction, and wherein a surface of the body is disposed further along the first direction than the interface surface. 41 . The assembly of claim 40 , wherein the actuator further includes a linear guide coupled to the body via a linear bearing. 42 . The assembly of claim 40 , further comprising a guide channel configured to receive the rod of build material. 43 . The assembly of claim 42 , wherein the guide channel defines at least one slot configured to receive at least a portion of the protrusion. 44 . The assembly of claim 40 , further comprising a cam arranged to cause the protrusion to transition between a first configuration, in which the protrusion component intersects the first longitudinal axis, and a second configuration, in which the pushing component does not intersect the first longitudinal axis. 45 . The assembly of claim 44 , wherein the pushing component and the cam define complementary gear teeth. 46 . An assembly for use in an additive manufacturing system, the assembly comprising: an extrusion head configured to receive a rod of build material; and an actuator movable in a first direction toward the extrusion head and a second direction away from the extrusion head, the actuator including: a body; and a protrusion extending radially outward from the body and having an interface surface configured to contact the rod of build material and to apply a force to the rod of build material when the actuator moves in the first direction; wherein a surface of the body is disposed further along the first direction than the interface surface. 47 . The assembly of claim 46 , wherein the actuation assembly further includes a linear guide coupled to the traveling component via a linear bearing. 48 . The assembly of claim 46 , further comprising a guide channel configured to receive the rod of build material. 49 . The assembly of claim 48 , wherein the guide channel defines at least one slot configured to receive at least a portion of the protrusion. 50 . The assembly of claim 46 , further comprising a cam arranged to cause the protrusion to transition between a first configuration, in which the pushing component intersects a longitudinal axis of the rod of build material, and a second configuration, in which the pushing component does not intersect the longitudinal axis of the rod of build material.

Assignees

Inventors

Classifications

  • Driving means · CPC title

  • for controlling or regulating additive manufacturing processes · CPC title

  • Means for applying layers · CPC title

  • using filamentary material being melted, e.g. fused deposition modelling [FDM] · CPC title

  • Processes of additive manufacturing · CPC title

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What does patent US2020016836A1 cover?
A system and corresponding method to move a rod of build material in a three-dimensional (3D) printing system uses a pusher. The rod of build material has distal and proximal ends relative to an extrusion head. The distal and proximal ends having distal and proximal end surfaces, respectively. The pusher engages with the rod and applies an axial force to at least a portion of the distal end sur…
Who is the assignee on this patent?
Desktop Metal Inc
What technology area does this patent fall under?
Primary CPC classification B29C64/209. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Thu Jan 16 2020 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).