Methods and systems for modeling apertures for additive manufacturing
In an example, systems and methods for modeling apertures for additive manufacturing is disclosed. In an example, a computing device includes a processor configured to carry out operations. The operations include generating a computational model of a three-dimensional structure. The three-dimensional structure includes a first group of slats including a first plurality of slats substantially parallel to each other along a first axis and a second group of slats comprising a second plurality of slats substantially parallel to each other along a second axis, wherein the second group of slats intersects the first group of slats. The operations include outputting instructions for manufacturing a substrate in accordance with the generated computation model of the three-dimensional structure. The system includes an additive manufacturing apparatus communicatively coupled to the computing device and configured to receive the instructions and manufacture the substrate in accordance with the generated computation model of the three-dimensional structure.
1 . A system comprising:
a computing device comprising a processor, the processor configured to carry out operations, the operations comprising:
generating a computational model of a three-dimensional structure, the three-dimensional structure comprising:
a first group of slats comprising a first plurality of slats substantially parallel to each other along a first axis; and
a second group of slats comprising a second plurality of slats substantially parallel to each other along a second axis, wherein the second group of slats intersects the first group of slats such that the second axis intersects the first axis at an angle between 30 degrees and 150 degrees relative to the first axis; and
outputting instructions for manufacturing a substrate in accordance with the generated computation model of the three-dimensional structure; and
an additive manufacturing apparatus communicatively coupled to the computing device and configured to receive the instructions and manufacture the substrate in accordance with the generated computation model of the three-dimensional structure,
wherein the generated computational model of the three-dimensional structure includes overlapping areas where the first group of slats intersect with the second group of slats,
wherein the additive manufacturing apparatus determines from the computational model for each layer to be deposited, whether there is material or empty space,
wherein the additive manufacturing apparatus does not distinguish overlapping areas from the computational model, and
wherein the computational model does not model a substrate having individual perforations without overlapping slats.
2 . The system of claim 1 , wherein generating the computational model comprises generating each of the first plurality of the first group of slats with a first height perpendicular to the first axis, wherein generating the computational model comprises generating each of the second plurality of slats with a second height perpendicular to the second axis, and wherein the first height and the second height are equal.
3 . The system of claim 1 , wherein generating the computational model of the three-dimensional structure further comprises generating a third group of slats comprising a third plurality of slats substantially parallel to each other along a third axis, and wherein the third group of slats intersects the first group of slats and the second group of slats such that the third axis intersects the first axis at a second angle, different than the first angle.
4 . The system of claim 3 , wherein the first group of slats has a first height perpendicular to the first axis, the second group of slats has a second height perpendicular to the second axis, and the third group of slats has a third height perpendicular to the third axis, and wherein the first height, the second height, and the third height are equal.
5 . The system of claim 1 , wherein the substrate comprises a septum of a cell of an acoustic panel.
6 . The system of claim 1 , wherein generating the computational model comprises generating a first gap between each slat of the first plurality of slats, and generating the computational model comprises generating a second gap between each slat of the second plurality of slats.
7 . The system of claim 6 , wherein the first gap and the second gap are equal and the intersections of each first gap between each of the first plurality of slats with each second gap between each of the second plurality of slats define a plurality of apertures in the three-dimensional structure.
8 . The system of claim 7 , wherein the three-dimensional structure comprises a plurality of apertures that are generally prism-shaped, the apertures being identical to each other.
9 . The system of claim 1 , wherein generating the computational model of the three-dimensional structure further comprises generating:
a first planar sheet coupled to a bottom portion of the first group of slats and a bottom portion of the second group of slats, the first planar sheet comprising a first plurality of apertures; and
a second planar sheet coupled to a top portion of the first group of slats and a top portion of the second group of slats, the second planar sheet comprising a second plurality of apertures.
10 . A method comprising:
generating a computational model of a three-dimensional structure, the three-dimensional structure comprising:
a first group of slats comprising a first plurality of slats parallel to each other along a first axis; and
a second group of slats comprising a second plurality of slats parallel to each other along a second axis, wherein the second group of slats intersects the first group of slats such that the second axis intersects the first axis at an angle between 30 degrees and 150 degrees relative to the first axis; and
outputting instructions readable by an additive manufacturing apparatus for fabricating a substrate in accordance with the generated computation model of the three-dimensional structure, wherein the computational model of the three-dimensional structure includes overlapping areas where the first group of slats intersect with the second group of slats; and
determining by the additive manufacturing apparatus, from the computational model for each layer to be deposited, whether there is material or empty space, wherein the additive manufacturing apparatus does not distinguish overlapping areas from the computational model, and wherein the computational model does not model a substrate having individual perforations without overlapping slats.
11 . The method according to claim 10 , further comprising:
manufacturing the substrate in accordance with the generated computation model of the three-dimensional structure.
12 . The method according to claim 11 , wherein manufacturing the substrate in accordance with the generated computation model of the three-dimensional structure comprises fabricating a septum of a cell of an acoustic panel.
13 . The method according to claim 10 , wherein generating the first group of slats comprises generating each of the first plurality of the first group of slats with a first height perpendicular to the first axis, wherein generating the second group of slats comprises generating each of the second plurality of slats with a second height perpendicular to the second axis, and wherein the first height and the second height are equal.
14 . The method according to claim 10 , wherein the angle is a first angle, wherein generating the computational model of the three-dimensional structure further comprises generating a third group of slats comprising a third plurality of slats substantially parallel to each other along a third axis, and wherein the third group of slats intersects the first group of slats and the second group of slats such that the third axis intersects first axis at a second angle different than the first angle.
15 . The method of claim 10 , wherein generating a computational model of a three-dimensional structure further comprises generating a first gap between each slat of the first plurality of slats, and generating the second group of slats comprises generating a second gap between each slat of the second plurality of slats, wherein the first gap and the second gap are equal and the intersections of each first gap between each of the first plurality of slats with each second gap between each of the second plurality of slats define a plurality of apertures in the three-dimensional structure.
16 . The method according to claim 10 , wherein generating a computational model of a three-dimensional structure, further comprises generating:
a first planar sheet coupled to a bottom portion of the first group of slats and a bottom portion of the second group of slats, the first planar sheet comprising a first plurality of apertures; and
a second planar sheet coupled to a top portion of the first group of slats and a top portion of the second group of slats, the second planar sheet comprising a second plurality of apertures.
17 . A non-transitory computer-readable media storing instructions executable by one or more signal processors, wherein the instructions, when executed, cause the one or more signal processors to perform functions comprising:
generating a computational model of a three-dimensional structure, the three-dimensional structure comprising:
a first group of slats comprising a first plurality of slats parallel to each other along a first axis; and
a second group of slats comprising a second plurality of slats parallel to each other along a second axis, wherein the second group of slats intersects the first group of slats such that the second axis intersects the first axis at an angle between 30 degrees and 150 degrees relative to the first axis;
outputting instructions readable by an additive manufacturing apparatus for fabricating a substrate in accordance with the generated computation model of the three-dimensional structure, wherein the computational model of the three-dimensional structure includes overlapping areas where the first group of slats intersect with the second group of slats; and
determining by the additive manufacturing apparatus, from the computational model for each layer to be deposited, whether there is material or empty space, wherein the additive manufacturing apparatus does not distinguish overlapping areas from the computational model, and wherein the computational model does not model a substrate having individual perforations without overlapping slat.
18 . The non-transitory computer-readable media according to claim 17 , wherein the functions further comprise:
transmitting the instructions to an additive manufacturing apparatus communicatively coupled to the processor.
19 . The non-transitory computer-readable media according to claim 17 ,
wherein the angle is a first angle,
wherein generating the computational model of the three-dimensional structure further comprises generating:
a third group of slats comprising a third plurality of slats substantially parallel to each other along a third axis, and wherein the third group of slats intersects the first group of slats and the second group of slats such that the third axis intersects the first axis at a second angle different than the first angle.
20 . The non-transitory computer-readable media according to claim 17 , wherein generating a computational model of a three-dimensional structure, further comprises generating:
a first planar sheet coupled to a bottom portion of the first group of slats and a bottom portion of the second group of slats, the first planar sheet comprising a first plurality of apertures; and
a second planar sheet coupled to a top portion of the first group of slats and a top portion of the second group of slats, the second planar sheet comprising a second plurality of apertures.