Device for planarization of a surface of a material bed
The present disclosure various apparatuses, and systems for 3D printing. The present disclosure provides three-dimensional (3D) printing methods, apparatuses, software and systems for a step and repeat energy irradiation process; controlling material characteristics and/or deformation of the 3D object; reducing deformation in a printed 3D object; and planarizing a material bed.
1 . A device for planarization of a surface of a material bed, the device comprising:
an internal compartment having a long axis configured to be disposed perpendicularly, or substantially perpendicularly, with respect to a direction of movement of the device during operation of the device comprising the planarization of the surface of the material bed, the movement being lateral along the surface of the material bed, the internal compartment being (i) coupled through a connector with a source configured to attract material from the material bed to planarize the surface of the material bed and (ii) narrower towards a distant position from the connector; and
a nozzle operatively coupled with the internal compartment, the nozzle being configured to facilitate removal of the material attracted from the material bed to planarize the surface of the material bed, the removal of the material being through the nozzle.
2 . The device of claim 1 , wherein the nozzle being (a) an asymmetric nozzle and/or (b) a long nozzle that upon the operation of the device is configured for disposition along a horizontal direction.
3 . The device of claim 2 , wherein the nozzle is the asymmetric nozzle.
4 . The device of claim 3 , wherein a vertical cross section of the nozzle is vertically asymmetrical upon the operation of the device.
5 . The device of claim 2 , wherein the nozzle is the long nozzle that upon the operation of the device is configured for disposition along the horizontal direction.
6 . The device of claim 5 , wherein the nozzle is the long nozzle that upon the operation of the device is configured for disposition along the horizontal direction, the nozzle having a long opening port that upon the operation of the device is configured for disposition along the horizontal direction.
7 . The device of claim 1 , wherein the nozzle has an opening port, and wherein fundamental length scales of a cross section of the opening port has an aspect ratio of at least 1:2.
8 . The device of claim 1 , wherein a surface of the internal compartment has a cross-sectional shape comprising a triangle, a trapezoid, an oval, an egg cross section, a spiral cross section, or a crescent.
9 . The device of claim 1 , wherein the source comprises vacuum.
10 . The device of claim 1 , wherein the internal compartment is configured to couple with the source through a channel comprising a flexible channel.
11 . The device of claim 1 , wherein the internal compartment is configured to couple with the source through a channel comprising a non-flexible channel.
12 . The device of claim 1 , wherein a surface of the internal compartment comprises a curved plane.
13 . The device of claim 1 , wherein the internal compartment is configured to allow uniform, or substantially uniform, removal of the material along the long axis.
14 . The device of claim 13 , wherein the device is configured to planarize the surface of the material bed within an error of at most about 20 micrometers.
15 . The device of claim 1 , wherein upon the operation of the device, the nozzle is configured to span at least a portion of the material bed, the portion of the material bed being (a) a width or (b) a length.
16 . The device of claim 1 , wherein a shape of: (i) the internal compartment, (ii) an opening port of the nozzle, (iii) the nozzle, or (iv) any combination of (i), (ii) and (iii), the shape being configured to reduce turbulence of the material as it is attracted into the internal compartment during the operation of the device.
17 . The device of claim 1 , wherein the material comprises a particulate material.
18 . The device of claim 1 , wherein the material comprises an elemental metal, a metal alloy, a ceramic, or an allotrope of elemental carbon.
19 . The device of claim 1 , wherein (A) the device comprises a cyclonic separator and/or (B) the device is configured to (i) with a first force, attract the material from the material bed into the internal compartment and (ii) remove the material from the internal compartment with a second force.
20 . A method for planarization of a surface of a material bed, the method comprising: (a) providing a device as in claim 1 ; and (b) using the device to planarize the surface of the material bed.
21 . The method of claim 20 , wherein the method is utilized during printing of one or more three-dimensional objects from at least a portion of the material bed.
22 . An apparatus for planarization of a surface of a material bed, the apparatus comprising:
at least one controller comprising an electrical connector configured to connect with an electrical power source, the at least one controller being configured to (a) operatively couple with a device as in claim 1 ; and (b) direct the device to planarize the surface of the material bed.
23 . The apparatus of claim 22 , wherein the at least one controller is configured to control, or direct control of, printing of one or more three-dimensional objects from at least a portion of the material bed.
24 . The apparatus of claim 22 , wherein the at least one controller is configured to control, or direct control of, at least one other mechanism utilized in printing of one or more three-dimensional objects from at least a portion of the material bed.
25 . The apparatus of claim 22 , wherein the at least one controller is configured to control, or direct control of, at least one energy beam that traverses along the surface of the material bed to print one or more three-dimensional objects from at least a portion of the material bed.
26 . Non-transitory computer readable program instructions, wherein the program instruction, when read by one or more processors operatively coupled with a device as in claim 1 , instruct the one or more processors to perform one or more operations comprising controlling, or directing control of, the device to planarize the surface of the material bed, the program instructions being inscribed on at least one non-transitory computer readable medium.
27 . The non-transitory computer readable program instructions of claim 26 , wherein the one or more operations comprise controlling, or directing control of, printing of one or more three-dimensional objects from at least a portion of the material bed.
28 . The non-transitory computer readable program instructions of claim 26 , wherein the one or more operations comprise controlling, or directing control of, at least one other mechanism utilized in printing of one or more three-dimensional objects from at least a portion of the material bed.
29 . The non-transitory computer readable program instructions of claim 26 , wherein the one or more operations comprise controlling, or directing control of, at least one energy beam that traverses along the surface of the material bed to print one or more three-dimensional objects from at least a portion of the material bed.
30 . The non-transitory computer readable program instructions of claim 26 , wherein the one or more operations are operations, and wherein during the planarization of the surface of the material bed, the operations comprise (a) directing the movement of the device laterally along the surface of the material bed and (b) directing the removal of the material from the material bed at least in part by directing usage of the source to attract the material along a path comprising (i) from the material bed (ii) through the nozzle, (iii) into the internal compartment, and (iv) through the connector.