IP Library Granted Patent US 11,660,820
Granted Patent B2
US 11,660,820 · App. 16/885,428 · Granted May 30, 2023

Three-dimensional shaped object manufacturing method and three-dimensional shaping device

Inventor: Satoshi Yamazaki (Matsumoto, JP)
B29C64/393B33Y30/00B33Y50/02
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Quick Facts
Patent No.
US 11,660,820
App. No.
16/885,428
Granted
May 30, 2023
Kind
B2
Abstract

Provided is a three-dimensional shaped object manufacturing method. The manufacturing method includes a first step of generating intermediate data including (i) path data indicating, by a plurality of partial paths, a path through which the discharge unit discharges a shaping material while being moved and (ii) discharge control data including at least one of discharge amount information indicating a discharge amount of the shaping material in each of the partial paths and moving speed information indicating a moving speed of the discharge unit in each of the partial path, a second step of analyzing the intermediate data to specify a gap portion interposed between a first partial path and a second partial path, a third step of generating shaping data from the intermediate data by changing the discharge control data corresponding to the second partial path so as to increase, in the second partial path, a width of the shaping material stacked on a stage or on a layer that is previously formed, and a fourth step of shaping a three-dimensional shaped object by controlling the discharge unit according to the shaping data.

Claims (29)

1. A three-dimensional shaped object manufacturing method for manufacturing a three-dimensional shaped object by discharging a shaping material from a discharge unit towards a stage to stack a layer, the shaping material passing through a flow path having a valve, the three-dimensional shaped object manufacturing method comprising:

a first step of generating intermediate data including (i) path data indicating, by a plurality of partial paths, a path through which the discharge unit discharges the shaping material while being moved and (ii) discharge control data including at least one of discharge amount information indicating a discharge amount of the shaping material in each of the partial paths and moving speed information indicating a moving speed of the discharge unit in each of the partial paths;

a second step of analyzing the intermediate data to specify a gap portion interposed between a first partial path and a second partial path through which the shaping material is discharged from the discharge unit later than through the first partial path;

a third step of generating shaping data from the intermediate data by changing the discharge control data corresponding to the second partial path so as to increase, in the second partial path, a reference width of the shaping material stacked on the stage or on the layer that is previously formed; and

a fourth step of shaping the three-dimensional shaped object by controlling the discharge unit according to the shaping data,

wherein the reference width of the shaping material is changed by controlling the discharge amount of the shaping material via the valve,

in a case in which a relationship of W≤Smax−Ss is satisfied, the discharge control data corresponding to only the second partial path is changed to increase the reference with of the shaping material of the second partial path in the third step,

in a case in which a relationship of W>Smax−Ss is satisfied, the discharge control data corresponding to both the first partial path and the second partial path is changed to increase the reference with of the shaping material of the first and second partial paths in the third step, and

the Ss is the reference width, the Smax is a maximum width of the shaping material, and the W is the width of the gap portion.

2. The three-dimensional shaped object manufacturing method according to claim 1 , wherein

the first partial path is a part of a path for shaping an outer shell area along an outer shell of the three-dimensional shaped object, and

the second partial path is a part of a path for shaping an inner area which is an area other than the outer shell area in the three-dimensional shaped object.

3. The three-dimensional shaped object manufacturing method according to claim 2 , wherein

the shaping data is generated in the third step such that the path for shaping the outer shell area and the path for shaping the inner area are continuous paths.

4. The three-dimensional shaped object manufacturing method according to claim 1 , wherein

the shaping data is generated in the third step such that the reference width of the shaping material stacked on the stage or on the layer that is previously formed in the second partial path is changed according to a width change of the gap portion.

5. The three-dimensional shaped object manufacturing method according to claim 1 , wherein

the shaping data is generated in the third step such that the second partial path included in the path data is changed according to a shape of the gap portion.

6. A three-dimensional shaped object manufacturing method for manufacturing a three-dimensional shaped object by discharging a shaping material from a discharge unit towards a stage to stack a layer, the shaping material passing through a flow path having a valve, the three-dimensional shaped object manufacturing method comprising:

a first part shaping step of shaping a first part of the three-dimensional shaped object by moving the discharge unit on the stage while discharging the shaping material from the discharge unit such that an interval between adjacent stacked shaping materials is a first interval; and

a second part shaping step of shaping a second part other than the first part on the layer such that the second part is in contact with the first part by discharging the shaping material from the discharge unit such that a width of the shaping material stacked on the stage or on the layer that is previously formed is larger than a width of the shaping material stacked on the stage or on the layer that is previously formed in the first part shaping step,

wherein the width of the shaping material is changed by controlling a discharge amount of the shaping material via the valve, a gap portion is interposed between a first partial path and a second partial path through which the shaping material is discharged from the discharge unit later than through the first partial path,

in a case in which a relationship of W≤Smax−Ss is satisfied, only the width of the shaping material for the second partial path is increased,

in a case in which a relationship of W>Smax−Ss is satisfied, the width of the shaping material for both the first partial path and the second partial path is increased, and

the Ss is the width, the Smax is a maximum width of the shaping material, and the W is a width of the gap portion.

7. The three-dimensional shaped object manufacturing method according to claim 1 ,

wherein, in the third step, when a length of the gap portion is equal to or less than a first threshold and the gap portion is surrounded by a one-stroke path, the discharge control data corresponding to all paths that form the one-stroke path is changed so as to increase the reference width of the shaping material stacked on the stage or on the layer that is previously formed.

8. The three-dimensional shaped object manufacturing method according to claim 6 ,

wherein, when a length of the gap portion is equal to or less than a first threshold and the gap portion is surrounded by a one-stroke path, the width of the shaping material for all paths that form the one-stroke path is increased.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 28, 2020
From: YAMAZAKI, SATOSHI
To: SEIKO EPSON CORPORATION
Reel/Frame 052771/0864 →
Priority Claims (1)
JP JP2019-099944 · May 29, 2019 · national
Continuity (1)
Related Publication 20200376774A1 · Dec 3, 2020