IP Library Granted Patent US 11,734,466
Granted Patent B2
US 11,734,466 · App. 16/878,810 · Granted Aug 22, 2023

Method and apparatus for providing pre-manufacturing feedback on the design of an object to be formed through solidification of a fluid in a mold

Inventor: Eelco Hoogendoorn (Amsterdam, NL)
Assignee: 3D Hubs B.V.
G06F30/12G06F2111/10G06F2119/08G06F2119/18
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Quick Facts
Patent No.
US 11,734,466
App. No.
16/878,810
Granted
Aug 22, 2023
Kind
B2
Abstract

A computer-implemented method, computer program, system and apparatus for computing a thermal thickness and providing pre-manufacturing feedback on a design of a three-dimensional physical object that is to be formed by solidification of a fluid in a mold. An equation is solved, representing heat release through the cavity-mold interface when the object is formed. The thermal thickness and its uniformity provide insight in the manufacturability of the object, and may be used to automatically generate pre-manufacturing feedback. The thermal thickness and pre-manufacturing feedback are transmitted or displayed to a user.

Claims (35)

1. A manufacturing process for a three-dimensional physical object comprising the steps of

providing pre-manufacturing feedback on a design of the three-dimensional physical object that is to be formed through solidification of a fluid in a cavity of a mold, and

manufacturing the three-dimensional physical object using the pre-manufacturing feedback,

wherein providing pre-manufacturing feedback comprises the steps of:

receiving a digital model representing the mold or the three-dimensional physical object to be formed in the mold;

determining, by a processor, a solution domain for a cavity-mold interface, wherein the cavity-mold interface may represent the inner surface of the mold or the exterior surface of the three-dimensional physical object;

defining, using the processor, a computational grid in the solution domain;

solving, using the processor, an equation on the computational grid, wherein the equation represents heat release through the cavity-mold interface when the three-dimensional physical object is formed through solidification of the fluid in the cavity of the mold;

computing, using the processor, a thermal thickness defined as a numerical approximation of the temperature gradient in the outward normal direction at the cavity-mold interface;

comparing the thermal thickness with a data set stored on a memory connected to the processor, the data set comprising data on the thermal thickness of a plurality of reference objects and the manufacturability of each of the plurality of reference objects;

generating pre-manufacturing feedback by, using the processor, based on the comparison;

transmitting or displaying the pre-manufacturing feedback,

wherein the pre-manufacturing feedback comprises at least one of: information on the manufacturability of the design, expected quality of the three-dimensional physical object, approximate production time, or an approximation for production cost.

2. The manufacturing process according to claim 1 , wherein the manufacturing process further comprises comparing a measure of uniformity of the thermal thickness with a feasibility range for the uniformity of the thermal thickness.

3. The manufacturing process according to claim 1 , wherein the manufacturing process further comprises comparing the thermal thickness with a feasibility range for the thermal thickness.

4. The manufacturing process according to claim 1 , wherein the manufacturing process further comprises comparing the thermal thickness with the thermal thickness of a plurality of reference objects, and using data on the manufacturability of each of the reference objects to assess the manufacturability of the three-dimensional physical object.

5. The manufacturing process according claim 1 , wherein the manufacturing process further comprises

defining and computing an indicator variable on the cavity-mold interface, indicating where defects are likely to show;

transmitting the indicator variable to a graphical user interface (GUI), or projecting the indicator variable on the cavity-mold interface and displaying the projection on the GUI.

6. The manufacturing process according to claim 1 , wherein the manufacturing process further comprises using the thermal thickness as an input variable to estimate a cycle time for the mold.

7. The manufacturing process according to claim 1 , wherein the equation is a steady-state screened-Poisson equation.

8. The manufacturing process according to claim 1 , wherein the equation accounts for heat resistance of the mold.

9. The manufacturing process according to claim 1 , wherein a relative thermal conductivity of the mold is imposed, defined as the ratio between the thermal conductivity of the mold and the thermal conductivity of the material inside the mold.

10. The manufacturing process according claim 1 , wherein the thermal thickness is a variable that is independent of the material properties of the material in the cavity of the mold.

11. The manufacturing process according to claim 1 , wherein the manufacturing process further comprises using the thermal thickness to select a suitable material for manufacture.

12. The manufacturing process according to claim 1 , wherein the thermal thickness is a continuous variable.

13. The manufacturing process according to claim 1 , wherein the pre-manufacturing feedback is configured to display the feasibility of manufacturing the three-dimensional physical object based on the digital model; and

relying on the pre-manufacturing feedback to determine whether or not to produce the three-dimensional physical object.

14. The manufacturing process according to claim 1 , wherein the thermal thickness computation is independent of the configuration of injection gates and other injection molding process variables.

15. The manufacturing process according to claim 1 , wherein the three-dimensional physical object is to be manufactured through an investment casting process by pouring the fluid into the mold, which is subsequently destroyed.

16. The manufacturing process according to claim 1 wherein the manufacturing process further comprises applying a mapping to the thermal thickness before displaying it to the GUI.

17. The manufacturing process according to claim 1 , wherein the pre-manufacturing feedback is transmitted or displayed to the GUI in less than 20 seconds.

18. The manufacturing process according to claim 1 , wherein the pre-manufacturing feedback comprises information on the manufacturability of the design, the manufacturing process further comprising:

receiving an approval for manufacture based on the pre-manufacturing feedback; and

sending a request, in response to the approval, to a supply chain for manufacturing the three-dimensional physical object through injection molding.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2022
From: HOOGENDOORN, EELCO
To: 3D HUBS B.V.
Reel/Frame 059383/0861 →
TERMINATION AND RELEASE OF INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Jan 25, 2021
From: KREOS CAPITAL VI (UK) LIMITED
To: 3D HUBS B.V.
Reel/Frame 055096/0039 →
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Aug 13, 2020
From: 3D HUBS, B.V.
To: KREOS CAPITAL VI (UK) LIMITED, AS COLLATERAL AGENT
Reel/Frame 053490/0400 →
Continuity (1)
Related Publication 20210365598A1 · Nov 25, 2021