IP Library › Granted Patent US 11,772,194
Granted Patent B2
US 11,772,194 · App. 16/764,328 · Granted Oct 3, 2023

Method for designing laminate molded article, production method, production device, and program

Inventors: Takemasa Yamasaki (Hyogo, JP); Tatsuya Fujii (Hyogo, JP); Shinji Sato (Hyogo, JP); Takeshi Yamada (Hyogo, JP)
Assignee: KOBE STEEL, LTD.
B23K26/342B23K9/0325B23K9/044B23K9/095B23K9/127B33Y10/00B33Y30/00B33Y50/00
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Quick Facts
Patent No.
US 11,772,194
App. No.
16/764,328
Granted
Oct 3, 2023
Kind
B2
Abstract

A method for designing an additively-manufactured object includes: a slicing step of slicing a shape of the additively-manufactured object into weld bead layers each having a height corresponding to one bead layer using data of the shape of the additively-manufactured object, thereby generating a plurality of virtual bead layers; a reference direction setting step of setting, as a reference direction, a direction in which the sliced layer of the additively-manufactured object is continuously provided and extended in an intermediate layer disposed at a deposition-direction center of the plurality of virtual bead layers; and a bead adjusting step of adjusting a bead size of the weld bead to be formed in the plurality of virtual bead layers depending on a bead shape in a section perpendicular to the reference direction.

Claims (27)

1. A method for designing an additively-manufactured object to be built by depositing a plurality of weld bead layers formed of a weld bead formed by melting and solidifying a filler metal, the method comprising:

a slicing step of slicing a shape of the additively-manufactured object into weld bead layers each having a height corresponding to one bead layer using data of the shape of the additively-manufactured object, thereby generating a plurality of virtual bead layers;

a reference direction setting step of setting, as a reference direction, a direction in which the sliced layer of the additively-manufactured object is continuously provided and extended in an intermediate layer disposed at a deposition-direction center of the plurality of virtual bead layers;

a bead adjusting step of adjusting a bead size of the weld bead to be formed in the plurality of virtual bead layers depending on a bead shape in a section perpendicular to the reference direction, and

a controlling step of controlling a weld bead-depositing device to deposit a plurality of weld bead layers to form the additively-manufactured object,

wherein during the setting of the reference direction, the reference direction is set to reduce the total amount of movement that is spent not depositing weld bead layers of the weld bead-depositing device that deposits the plurality of weld bead layers in order to optimize the efficiency of manufacturing the additively-manufactured object, and

wherein the bead adjusting step is performed by changing at least one selected from the group consisting of formation speed of the weld bead, welding current, welding voltage, and applied pulse based on CAD information about coordinates of the outer surface or dimensional information of the additively-manufactured object.

2. The method for designing an additively-manufactured object according to claim 1 , wherein in the bead adjusting step, the bead shape is adjusted by changing at least one of a continuous formation speed of the weld bead and a heat input to the filler metal.

3. The method for designing an additively-manufactured object according to claim 1 , wherein the additively-manufactured object includes at least one protrusion portion that is continuous in the reference direction.

4. The method for designing an additively-manufactured object according to claim 3 , the method comprising a step of dividing the shape of the additively-manufactured object into a blank region serving as a base body of the additively-manufactured object, and an additive manufacturing region including the protrusion portion to be formed on the base body,

wherein the slicing step is a step of slicing the additively manufacturing region into the plurality of virtual bead layers.

5. The method for designing an additively-manufactured object according to claim 3 , wherein the protrusion portion is a plurality of spiral protrusions extending along one axial direction.

6. The method for designing an additively-manufactured object according to claim 4 , wherein the protrusion portion is a plurality of spiral protrusions extending along one axial direction.

7. A computer program product comprising a non-transitory computer readable storage medium having instructions encoded thereon that, when executed by a computer, cause the computer to execute a procedure for designing an additively-manufactured object to be built by depositing a plurality of weld bead layers formed of a weld bead formed by melting and solidifying a filler metal, the procedure comprising:

slicing a shape of the additively-manufactured object into weld bead layers each having a height corresponding to one bead layer using data of the shape of the additively-manufactured object, thereby generating a plurality of virtual bead layers;

setting, as a reference direction, a direction in which the sliced layer of the additively-manufactured object is continuously provided and extended in an intermediate layer disposed at a deposition-direction center of the plurality of virtual bead layers;

adjusting a bead size of the weld bead to be formed in the plurality of virtual bead layers depending on a bead shape in a section perpendicular to the reference direction, and

controlling a weld bead-depositing device to deposit a plurality of weld bead layers to form the additively-manufactured object,

wherein during the setting of the reference direction, the reference direction is set to reduce the total amount of movement that is spent not depositing weld bead layers of the weld bead-depositing device that deposits the plurality of weld bead layers in order to optimize the efficiency of manufacturing the additively-manufactured object, and

wherein the bead adjusting step is performed by changing at least one selected from the group consisting of formation speed of the weld bead, welding current, welding voltage, and applied pulse based on CAD information about coordinates of the outer surface or dimensional information of the additively-manufactured object.

8. The method for designing an additively-manufactured object according to claim 2 , wherein the additively-manufactured object includes at least one protrusion portion that is continuous in the reference direction.

9. The method for designing an additively-manufactured object according to claim 8 , the method comprising a step of dividing the shape of the additively-manufactured object into a blank region serving as a base body of the additively-manufactured object, and an additive manufacturing region including the protrusion portion to be formed on the base body,

wherein the slicing step is a step of slicing the additively manufacturing region into the plurality of virtual bead layers.

10. The method for designing an additively-manufactured object according to claim 8 , wherein the protrusion portion is a plurality of spiral protrusions extending along one axial direction.

11. The method for designing an additively-manufactured object according to claim 9 , wherein the protrusion portion is a plurality of spiral protrusions extending along one axial direction.

12. The method for designing an additively-manufactured object according to claim 4 , wherein the protrusion portion is attached to the base body.

13. The method for designing an additively-manufactured object according to claim 9 , wherein the protrusion portion is attached to the base body.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 14, 2020
From: YAMASAKI, TAKEMASA; FUJII, TATSUYA; SATO, SHINJI; YAMADA, TAKESHI
To: KABUSHIKI KAISHA KOBE SEIKO SHO (KOBE STEEL, LTD.)
Reel/Frame 052667/0608 →
Priority Claims (1)
JP 2017-229606 · Nov 29, 2017 · national
Continuity (1)
Related Publication 20200282497A1 · Sep 10, 2020
Cited By (2)
US 12,330,246 US 12,350,762