Method for printing three-dimensional parts with part strain orientation
US-2017225402-A1 · Aug 10, 2017 · US
US10201940B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10201940-B2 |
| Application number | US-201514939336-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 12, 2015 |
| Priority date | Nov 12, 2015 |
| Publication date | Feb 12, 2019 |
| Grant date | Feb 12, 2019 |
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A computer implemented apparatus and method for receiving tool paths that a dispensing head follows to deposit roads of material for successively building object layers of a 3D object during an additive manufacturing process, generating simulated object layers of a simulated 3D object from the tool paths, wherein the simulated object layers represent an interior geometry of each one of the object layers, determining a contact surface area between adjacent ones of the simulated object layers, and determining a predicted mechanical property of the 3D object from the contact surface area and a material property of the material.
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What is claimed is: 1. A computer implemented method comprising: generating a first simulated object layer representing a first object layer of a three-dimensional object to be build using an additive manufacturing system, said first simulated layer comprising first simulated roads representing a first road geometry of first roads of a material to be deposited by a dispensing head of said additive manufacturing system following a first tool path for building said first object layer; generating a second simulated object layer representing a second object layer of said three-dimensional object to be build using said additive manufacturing system, said second simulated layer comprising second simulated roads representing a second road geometry for second roads of said material to be deposited by said dispensing head following a second tool path for successively building said second object layer on said first object layer; calculating a nominal surface area of a simulated layer interface between said first simulated object layer and said second simulated object layer; calculating a contact surface area of a simulated road interface between said first simulated roads and said second simulated roads; calculating a percentage of said nominal surface area formed by said contact surface area; determining a predicted mechanical property of a layer interface between said first object layer and said second object layer based on a product of a material property of said material and said percentage; selectively moving said dispensing head along said first tool path while depositing said material to form said first roads, having said first road geometry, and build said first object layer using said additive manufacturing system; selectively moving said dispensing head along said second tool path while depositing said material to form said second roads, having said second road geometry, and successively build said second object layer on said first object layer using said additive manufacturing system; and forming said three-dimensional object having a mechanical property of said layer interface between said first object layer and said second object layer equivalent to said predicted mechanical property. 2. The method of claim 1 wherein: said first roads comprise first raster roads; said second roads comprise second raster roads; said first road geometry comprises at least one of first raster widths, first raster-to-raster gap widths, and first raster angles; and said second road geometry comprises at least one of second raster widths, second raster-to-raster gap widths, and second raster angles. 3. The method of claim 1 wherein said contact surface area is a total area of intersection between said first simulated roads and said second simulated roads at said simulated layer interface between said first simulated object layer and said second simulated object layer. 4. The method of claim 1 further comprising establishing said predicted mechanical property of said layer interface between said first simulated object layer and said second simulated object layer as an overall predicted mechanical property of said three-dimensional object. 5. The method of claim 4 further comprising: generating a three-dimensional model representing an exterior geometry of said three-dimensional object; slicing said three-dimensional model into model layers, a first one of said model layers defining a first exterior geometry of said first simulated layer and a second one of said model layers defining a second exterior geometry of said second simulated layer; providing first road geometry data and first tool path data to generate said first simulated roads defining a first interior geometry of said first simulated layer; and providing second road geometry data and second tool path data to generate said second simulated roads defining a second interior geometry of said second simulated layer. 6. The method of claim 4 further comprising: comparing said overall predicted mechanical property of said three-dimensional object to a desired mechanical property of said three-dimensional object; and upon a condition in which said overall predicted mechanical property of said three-dimensional object is less that said desired mechanical property of said three-dimensional object, modifying at least one of said first simulated roads and said second simulated roads to increase said percentage. 7. The method of claim 6 wherein modifying at least one of said first simulated roads and said second simulated roads comprises at least one of: providing at least one of first modified road geometry data and a first modified tool path to generate first modified simulated roads; and providing at least one of a second road geometry data and a second modified tool path to generate second modified simulated roads. 8. The method of claim 7 further comprising generating an output comprising at least one of said first modified road geometry, said first modified tool path, said second modified road geometry, and said second modified tool path to be used for building said three-dimensional object during said additive manufacturing process. 9. The method of claim 1 further comprising: generating a third simulated object layer representing a third object layer of said three-dimensional object, said third simulated layer comprising third simulated roads representing a third road geometry for third roads of said material to be deposited by said dispensing head following a third tool path for successively building said third object layer on said second object layer; calculating a second nominal surface area of a second simulated layer interface between said second simulated object layer and said third simulated object layer; calculating a second contact surface area of a second simulated road interface between said second simulated roads and said third simulated roads; calculating a second percentage of said second nominal surface area formed by said second contact surface area; determining a second predicted mechanical property of a second layer interface between said second object layer and said third object layer based on a product of said material property of said material and said second percentage; selectively moving said dispensing head along said third tool path while depositing said material to form said third roads, having said third road geometry, and successively build said third object layer on said second object layer using said additive manufacturing apparatus; and further forming said three-dimensional object having a second mechanical property of said second layer interface between said second object layer and said third object layer equivalent to said second predicted mechanical property. 10. The method of claim 9 further comprising: comparing said predicted mechanical property of said layer interface between said first simulated object layer and said second simulated object layer and said second predicted mechanical property of said second layer interface between said second simulated object layer and said third simulated object layer; and establishing a lesser one of said predicted mechanical property of said layer interface and said second predicted mechanical property of said second layer interface as an overall predicted mechanical property of said three-dimensional object. 11. An apparatus comprising: an additive manufacturing system comprising a dispensing head configured to dispense a material during an additive manufacturing process; a processor; and a non-transitory memory storing program code executable by said processor to perform steps comprising: generating a first simulated object layer repres
Data acquisition or data processing for additive manufacturing · CPC title
for controlling or regulating additive manufacturing processes · CPC title
Manufacturability analysis or optimisation for manufacturability · CPC title
Making, forming 3-D object, model, surface · CPC title
for controlling or regulating additive manufacturing processes · CPC title
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